Power outages can pose significant challenges for residents of mobile homes, particularly when it comes to maintaining adequate heating during colder months. Understanding the common causes of these outages is essential for preparing and managing such situations effectively.
One of the primary causes of power outages affecting mobile homes is severe weather. Mobile homes are often located in areas more susceptible to harsh weather conditions, such as thunderstorms, high winds, and ice storms. Airflow balance is critical for consistent heating and cooling in mobile homes Mobile Home Air Conditioning Installation Services energy. These weather events can lead to downed power lines or blown transformers, disrupting the electrical supply. For instance, strong winds might topple trees onto power lines, cutting off electricity to entire neighborhoods that include mobile home communities.
Another common cause of power outages is equipment failure. Aging infrastructure and lack of maintenance can lead to breakdowns in the power grid that affect service delivery to mobile homes. Transformers and substations that have not been upgraded or properly maintained are prone to failures that can leave residents without power for extended periods.
Human error also contributes significantly to power disruptions. Construction work near mobile home parks may inadvertently damage underground cables or overhead lines, leading to unintended outages. Additionally, accidents involving vehicles colliding with utility poles can cause localized outages that impact mobile home residents.
Furthermore, issues with overloading the electrical system should not be overlooked. During peak usage times, especially in extreme temperatures when heating systems are running at full capacity, the demand on the electrical grid can exceed its capacity. This overload may trigger automatic shut-offs or even lead to equipment damage if not managed properly.
Understanding these common causes allows residents and community managers in mobile home parks to take precautionary measures aimed at minimizing disruption during a power outage. Investing in backup generators or alternative heating solutions like propane heaters ensures that critical services remain operational even when electrical service is interrupted.
In conclusion, while power outages cannot always be prevented due to uncontrollable factors like severe weather and human error, awareness and preparation remain key strategies for managing their impact on mobile home heating systems. By identifying potential risks and implementing proactive solutions, individuals living in mobile homes can ensure they remain warm and safe during unexpected disruptions in their electricity supply.
When a power outage occurs, particularly in the context of mobile home heating systems, it can be both inconvenient and stressful. Mobile homes often rely heavily on electricity for heating, making it crucial to know immediate steps to take to ensure safety and comfort. Here are several actions that can help mitigate the effects of a power outage.
First and foremost, remain calm. Panic can lead to poor decision-making, so it's essential to approach the situation with a clear head. Assess your surroundings and determine whether the outage is localized to your mobile home or if it affects a broader area. This information can usually be obtained by checking outside for any visible signs of power outages in neighboring homes or by using a battery-powered radio to listen for any announcements from local authorities.
Next, prioritize maintaining warmth within your home. Mobile homes typically have less insulation than traditional houses, which means they can lose heat more quickly during an outage. If you anticipate that the power might be out for an extended period, gather everyone into one room-preferably one without windows or with heavy curtains-and close off other areas of the home. This will help conserve body heat.
Consider using alternative sources of heat safely. If you have access to portable propane heaters or wood stoves designed for indoor use, these can be invaluable during a power outage. Be sure to follow all safety guidelines when using these devices; ensure proper ventilation to avoid carbon monoxide buildup and maintain safe distances from flammable materials.
Check on your mobile home's heating system once it is safe and reasonable to do so. When power returns, there may be issues such as tripped breakers or other electrical faults caused by the sudden loss and return of power. Understanding how your system works ahead of time will allow you to troubleshoot minor issues without delay.
In addition, keep communication lines open where possible. Use your phone sparingly if it's not charged fully but consider texting instead of calling as this uses less battery life and may work better when cell towers are overloaded during widespread outages.
Lastly, make sure you have emergency supplies ready before an outage happens again in the future-this includes flashlights with extra batteries, blankets, non-perishable food items, water supplies, and any necessary medications.
By taking these immediate steps when faced with a power outage in a mobile home heating system scenario, you can ensure both safety and comfort until normal conditions resume. Planning ahead with an emergency kit tailored specifically for such incidents will further enhance preparedness for future occurrences.
Exploring energy-efficient solutions and upgrades to enhance the performance of mobile home ductwork is crucial, especially when preparing for the extremes of seasonal weather.. Mobile homes, by design, often face unique challenges in maintaining temperature stability due to their construction and positioning.
Posted by on 2024-12-30
As winter descends, residents of mobile homes face the dual challenge of maintaining warmth and ensuring good indoor air quality.. The importance of implementing energy-efficient solutions without compromising air quality becomes paramount during this season.
Posted by on 2024-12-30
Duct sealing plays a critical role in maintaining optimal airflow within mobile home HVAC systems, ensuring energy efficiency, comfort, and air quality.. Mobile homes often face unique challenges due to their construction and the frequent movement of HVAC components during transportation.
Posted by on 2024-12-30
When living in a mobile home, one of the most critical considerations is ensuring that your heating system can withstand unexpected power outages. These interruptions can occur due to severe weather conditions, infrastructure issues, or maintenance work. To maintain comfort and safety during these times, having reliable backup power options for your mobile home's heating system is essential.
One of the most common and effective backup power solutions is the use of portable generators. These devices can supply electricity to essential appliances, including your heating system. Portable generators are relatively easy to operate and can be stored compactly when not in use. However, it's crucial to ensure proper ventilation when operating a generator to prevent carbon monoxide poisoning. Additionally, regular maintenance checks are necessary to ensure that the generator will function correctly during an outage.
Another viable option for mobile home residents is investing in battery-powered backup systems. These systems store electrical energy and can automatically kick in when there's a loss of power. The advantage of battery backups is their silent operation and ease of use-they require no fuel and minimal maintenance compared to generators. Moreover, advancements in technology have made these systems more efficient and longer-lasting than ever before.
For those interested in sustainable solutions, solar panels paired with battery storage offer a clean energy alternative for powering heating systems during outages. While the initial installation cost might be higher compared to other options, solar energy provides long-term savings on utility bills and reduces dependence on non-renewable resources. This solution also offers resilience by ensuring that as long as there is sunlight, your batteries are being charged.
In regions prone to frequent or prolonged outages, propane heaters present another option worth considering. Propane heaters do not rely on electricity but rather on propane gas tanks which are readily available at many retail locations. These heaters come in various sizes suitable for different space requirements within a mobile home and provide consistent heat output even during extended power interruptions.
Ultimately, selecting the right backup power option depends on factors such as budget, convenience, environmental impact, and personal preferences regarding reliability and ease of use. It's important for mobile home owners to evaluate these criteria carefully while preparing their homes for unforeseen circumstances.
To conclude, handling power outages effectively requires foresight and preparation-especially concerning heating systems vital for maintaining warmth throughout colder months or regions susceptible to extreme weather events affecting grid stability frequently experienced by residents living off-grid communities alike where traditional means may fall short under pressure without proper planning ahead time well spent indeed pays off dividends tenfold later down road ensuring peace mind knowing you're ready face whatever challenges arise head-on confidently equipped necessary tools tackle obstacles effortlessly come what may!
Handling power outages in mobile home heating systems can be a challenging task, especially when you're aiming to ensure the resilience of your HVAC system. Mobile homes have unique characteristics that make them more susceptible to temperature fluctuations during power outages, so it's crucial to maintain your system effectively.
Firstly, regular maintenance is key to ensuring your HVAC system remains reliable. Begin by routinely checking and replacing air filters. Clogged or dirty filters can reduce airflow, making it harder for your system to function efficiently even when the power is on. During an outage, having clean filters ensures that as soon as power returns, your system can operate optimally without unnecessary strain.
Next, inspect the ductwork for leaks or damage. Leaky ducts can lead to significant energy loss and inefficiency. By sealing any gaps with mastic sealant or metal tape, you ensure that once the power is restored, warm air distributes evenly throughout your home without escaping through cracks.
Another essential tip is to install a programmable thermostat with battery backup capabilities. This device allows you to retain programmed settings even during a power outage, helping you manage indoor temperatures more effectively when the electricity comes back on. It's also wise to set it at energy-saving temperatures during winter months when you're not at home.
Ensuring proper insulation in your mobile home is another vital aspect of maintaining HVAC resilience. Adequate insulation helps retain heat longer during an outage and reduces the workload on your heating system once power resumes. Check windows for drafts and use weather stripping as needed; similarly, consider adding insulation under floors and in walls if it's lacking.
Additionally, having alternative heat sources available can be beneficial. Portable heaters or wood stoves provide temporary warmth until full power returns. However, always prioritize safety by ensuring these devices are used according to manufacturer instructions and have proper ventilation.
Finally, consider investing in a generator if frequent outages are common in your area. A generator provides peace of mind by supplying backup electricity to keep essential systems like heating operational during prolonged blackouts.
In conclusion, maintaining HVAC resilience in mobile homes requires proactive measures focused on regular upkeep and strategic planning for disruptions like power outages. By adhering to these maintenance tips-cleaning filters regularly, inspecting ductwork for leaks, using programmable thermostats with battery backup capabilities-and preparing supplementary solutions such as alternative heat sources or generators-you ensure a comfortable environment despite unforeseen electrical interruptions.
In the modern world, where electricity is a staple in our daily lives, a power outage can be more than just an inconvenience; it can pose significant challenges, particularly for residents of mobile homes who rely on electric heating systems. Handling power outages effectively requires both safety precautions and emergency preparedness to ensure that residents remain safe and comfortable during unexpected interruptions.
Firstly, understanding the unique challenges faced by mobile home inhabitants is crucial. Mobile homes, often less insulated than traditional houses, can lose heat rapidly during winter months. This makes it imperative for residents to have a plan in place when their electric heating systems go offline due to a power outage.
One of the primary safety precautions involves maintaining alternative heating sources. Portable propane heaters or wood-burning stoves can serve as backup solutions. However, these alternatives come with their own set of risks, such as carbon monoxide poisoning or fire hazards. Therefore, it's essential to use them wisely and safely. Residents should ensure proper ventilation when using propane heaters and keep flammable materials away from any open flames or heat sources.
Another vital precaution is the installation of smoke detectors and carbon monoxide alarms throughout the mobile home. These devices are critical during power outages when alternative heating methods are employed. Regularly checking their functionality ensures early detection of any dangerous fumes or fires.
Emergency preparedness also includes having an adequate supply of essentials that could last through extended outages. Residents should stock up on non-perishable food items, bottled water, batteries, flashlights, and warm clothing or blankets to mitigate discomfort from loss of heat.
Moreover, creating a communication plan with family members or neighbors can prove invaluable during emergencies. Know how to contact local authorities or utility companies to report outages and receive updates about restoration efforts.
Equally important is staying informed about weather conditions that could lead to prolonged outages through battery-operated radios or apps on smartphones before they lose charge. Planning ahead allows residents to take proactive measures rather than react defensively once an outage occurs.
Lastly, conducting regular maintenance checks on heating systems before winter sets in can prevent some common causes of failures during cold snaps. Ensuring that all components are functioning correctly reduces the risk of losing heat even if power remains available.
In conclusion, while power outages pose particular challenges for those relying on mobile home electric heating systems, taking appropriate safety precautions and preparing for emergencies can significantly reduce risks and enhance resilience against such events. By staying informed and equipped with alternative resources and plans for communication and sustenance needs will help maintain not only comfort but most importantly safety until electricity is restored fully.
In the wake of a power outage, mobile home residents often face the daunting task of determining whether professional assistance is necessary to restore their heating systems. Mobile homes possess unique characteristics that can complicate this decision-making process, such as their smaller size, distinct construction materials, and specific heating system configurations. Evaluating the need for professional help involves several considerations that go beyond simply turning the heat back on.
First and foremost, safety should be paramount. Power outages can sometimes cause damage that is not immediately visible but may have significant implications for a mobile home's heating system. For instance, electrical surges when power is restored can impact the integrity of wiring or damage sensitive components within a furnace or heater. Additionally, if an outage was caused by severe weather conditions like heavy snow or ice storms, there might be structural concerns or external unit obstructions that require safe handling by professionals.
Another crucial factor is the complexity of modern mobile home heating systems themselves. Many rely on integrated technology and smart controls for efficiency and comfort. These systems may require specialized knowledge to diagnose issues properly after an outage has occurred. Attempting do-it-yourself repairs without adequate expertise could lead to further complications or invalidate warranties.
Furthermore, evaluating energy sources used in mobile home heating systems is critical when deciding on professional intervention post-outage. Systems powered by natural gas or propane might necessitate inspections for leaks or burner functionality checks by certified technicians to ensure safe operation upon restarting. Handling these energy sources without proper training poses significant risks both to residents and their property.
Residents must also consider the potential long-term benefits of seeking professional assistance versus addressing immediate concerns independently. A thorough inspection by a qualified technician could uncover underlying problems that may not manifest immediately but could lead to future outages or inefficiencies in heating performance. Professionals can provide preventative maintenance advice and make recommendations tailored specifically for mobile homes' unique needs.
Lastly, peace of mind cannot be underestimated in this evaluation process. Knowing that a trained expert has assessed your heating system post-outage ensures confidence in its reliability during colder months when consistent warmth is essential for comfort and health.
In conclusion, while some minor issues following a power outage might be manageable without external aid, assessing whether professional assistance is needed requires careful consideration of safety risks, system complexity, energy source specifics, long-term benefits versus short-term fixes-and ultimately-a desire for assurance regarding one's heating system's optimal functionality. By weighing these factors thoughtfully against personal capabilities and resources available locally (such as trusted HVAC service providers), mobile home residents can make informed decisions about seeking professional help after experiencing power disruptions impacting their heating setups.
In recent years, the increasing frequency and severity of power outages have highlighted the need for robust solutions to ensure mobile home heating systems remain operational during such events. Mobile homes, often reliant on electric power for heating, face unique challenges in maintaining warmth when the grid goes down. Developing long-term strategies to minimize the impact of these outages is crucial not only for comfort but also for safety.
One effective solution is the integration of alternative energy sources into mobile home setups. Solar panels, coupled with battery storage systems, offer a sustainable way to provide backup power during outages. These systems can be particularly beneficial in areas with ample sunlight. By storing excess solar energy in batteries, homeowners can maintain essential functions like heating even when traditional power sources fail. Over time, advancements in photovoltaic technology and energy storage efficiency are likely to make this a more viable option for many mobile home owners.
Another promising approach involves upgrading insulation and weatherproofing measures within mobile homes. By enhancing thermal efficiency, homes can retain heat better and reduce reliance on active heating systems. High-quality insulation materials and techniques such as double-glazed windows or insulated skirting around the base of the mobile home help to maintain internal temperatures by minimizing heat loss. These upgrades not only provide resilience during power outages but also improve overall energy efficiency throughout the year, offering long-term savings on energy costs.
Investing in versatile heating systems that can operate on multiple fuel types is another strategic measure. For instance, incorporating propane or wood-burning stoves as supplementary heating options provides an additional layer of security against electricity-dependent failures. These alternatives ensure that even if one fuel source becomes unavailable or impractical due to a power outage, another can take its place temporarily.
Furthermore, smart home technology plays an increasingly vital role in mitigating the impacts of power outages on mobile home heating systems. Advanced thermostats and monitoring devices allow homeowners to optimize their energy use based on real-time data and forecasts about potential outages. By pre-heating spaces or adjusting settings remotely via smartphone apps before an anticipated outage occurs, residents can better manage their home's temperature without excessive manual intervention.
Finally, community-based approaches should not be overlooked as part of long-term solutions. Mobile home parks or communities could collectively invest in centralized backup generators or shared solar arrays to ensure consistent access to heat during emergencies. Such communal efforts not only distribute costs more effectively but also foster a sense of shared responsibility and resilience among residents.
In conclusion, while no single solution will completely eliminate the risks posed by future power outages on mobile home heating systems, a combination of renewable energy adoption, improved insulation practices, diverse fuel options, smart technology integration, and community collaboration holds promise for significantly reducing their impact. As climate change continues to challenge existing infrastructure reliability across regions worldwide, these proactive measures become increasingly vital for safeguarding both comfort and safety in vulnerable housing sectors like mobile homes.
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Air pollution is the contamination of air due to the presence of substances called pollutants in the atmosphere that are harmful to the health of humans and other living beings, or cause damage to the climate or to materials.[1] It is also the contamination of the indoor or outdoor environment either by chemical, physical, or biological agents that alters the natural features of the atmosphere.[1] There are many different types of air pollutants, such as gases (including ammonia, carbon monoxide, sulfur dioxide, nitrous oxides, methane and chlorofluorocarbons), particulates (both organic and inorganic) and biological molecules. Air pollution can cause diseases, allergies, and even death to humans; it can also cause harm to other living organisms such as animals and crops, and may damage the natural environment (for example, climate change, ozone depletion or habitat degradation) or built environment (for example, acid rain).[2] Air pollution can be caused by both human activities[3] and natural phenomena.[4]
Air quality is closely related to the Earth's climate and ecosystems globally. Many of the contributors of air pollution are also sources of greenhouse emission i.e., burning of fossil fuel.[1]
Air pollution is a significant risk factor for a number of pollution-related diseases, including respiratory infections, heart disease, chronic obstructive pulmonary disease (COPD), stroke, and lung cancer.[5] Growing evidence suggests that air pollution exposure may be associated with reduced IQ scores, impaired cognition,[6] increased risk for psychiatric disorders such as depression[7] and detrimental perinatal health.[8] The human health effects of poor air quality are far reaching, but principally affect the body's respiratory system and the cardiovascular system.[9][10] Individual reactions to air pollutants depend on the type of pollutant a person is exposed to,[11][12] the degree of exposure, and the individual's health status and genetics.[13]
Air pollution is the largest environmental risk factor for disease and premature death[5][14] and the fourth largest risk factor overall for human health.[15] Air pollution causes the premature deaths of around 7 million people worldwide each year,[5] or a global mean loss of life expectancy (LLE) of 2.9 years,[16] and there has been no significant change in the number of deaths caused by all forms of pollution since at least 2015.[14][17][18] Outdoor air pollution attributable to fossil fuel use alone causes ~3.61 million deaths annually,[19] making it one of the top contributors to human death.[5] Anthropogenic ozone causes around 470,000 premature deaths a year and fine particulate (PM2.5) pollution around another 2.1 million.[20] The scope of the air pollution crisis is large: In 2018, WHO estimated that "9 out of 10 people breathe air containing high levels of pollutants."[21] Although the health consequences are extensive, the way the problem is handled is considered largely haphazard[22][21][23] or neglected.[14]
The World Bank has estimated that welfare losses (premature deaths) and productivity losses (lost labour) caused by air pollution cost the world economy $5 trillion per year.[24][25][26] The costs of air pollution are generally an externality to the contemporary economic system and most human activity, although they are sometimes recovered through monitoring, legislation, and regulation.[27][28]
Many different technologies and strategies are available for reducing air pollution.[29] Although a majority of countries have air pollution laws, according to UNEP, 43 percent of countries lack a legal definition of air pollution, 31 percent lack outdoor air quality standards, 49 percent restrict their definition to outdoor pollution only, and just 31 percent have laws for tackling pollution originating from outside their borders.[30] National air quality laws have often been highly effective, notably the 1956 Clean Air Act in Britain and the US Clean Air Act, introduced in 1963.[31][32] Some of these efforts have been successful at the international level, such as the Montreal Protocol,[33] which reduced the release of harmful ozone depleting chemicals, and the 1985 Helsinki Protocol,[34] which reduced sulfur emissions,[35] while others, such as international action on climate change,[36][37][38] have been less successful.
There are many different sources of air pollution. Some air pollutants (such as nitrogen oxides) originate mainly from human activities,[39] while some (notably radon gas) come mostly from natural sources.[40] However, many air pollutants (including dust and sulfur dioxide) come from a mixture of natural and human sources.[41]
There are also sources from processes other than combustion:
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Air pollutant emission factors are reported representative values that aim to link the quantity of a pollutant released into the ambient air to an activity connected with that pollutant's release.[2][87][88][89] The weight of the pollutant divided by a unit weight, volume, distance, or time of the activity generating the pollutant is how these factors are commonly stated (e.g., kilograms of particulate emitted per tonne of coal burned). These criteria make estimating emissions from diverse sources of pollution easier. Most of the time, these components are just averages of all available data of acceptable quality, and they are thought to be typical of long-term averages.
The Stockholm Convention on Persistent Organic Pollutants identified pesticides and other persistent organic pollutants of concern. These include dioxins and furans which are unintentionally created by combustion of organics, like open burning of plastics, and are endocrine disruptors and mutagens.
The United States Environmental Protection Agency has published a compilation of air pollutant emission factors for a wide range of industrial sources.[90] The United Kingdom, Australia, Canada, and many other countries have published similar compilations, as well as the European Environment Agency.[91][92][93][94]
An air pollutant is a material in the air that can have many effects on humans and the ecosystem.[95] The substance can be solid particles, liquid droplets, or gases, and often takes the form of an aerosol (solid particles or liquid droplets dispersed and carried by a gas).[96] A pollutant can be of natural origin or man-made. Pollutants are classified as primary or secondary. Primary pollutants are usually produced by processes such as ash from a volcanic eruption.
Other examples include carbon monoxide gas from motor vehicle exhausts or sulfur dioxide released from factories. Secondary pollutants are not emitted directly. Rather, they form in the air when primary pollutants react or interact. Ground level ozone is a prominent example of a secondary pollutant. Some pollutants may be both primary and secondary: they are both emitted directly and formed from other primary pollutants.
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This section is in list format but may read better as prose.(April 2023)
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Pollutants emitted into the atmosphere by human activity include:
Secondary pollutants include:
There are many other chemicals classed as hazardous air pollutants. Some of these are regulated in the USA under the Clean Air Act and in Europe under numerous directives (including the Air "Framework" Directive, 96/62/EC, on ambient air quality assessment and management, Directive 98/24/EC, on risks related to chemical agents at work, and Directive 2004/107/EC covering heavy metals and polycyclic aromatic hydrocarbons in ambient air).[128][129]
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Hazardous air pollutants (4 C, 68 P)
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The risk of air pollution is determined by the pollutant's hazard and the amount of exposure to that pollutant. Air pollution exposure can be measured for a person, a group, such as a neighborhood or a country's children, or an entire population. For example, one would want to determine a geographic area's exposure to a dangerous air pollution, taking into account the various microenvironments and age groups. This can be calculated[130] as an inhalation exposure. This would account for daily exposure in various settings, e.g. different indoor micro-environments and outdoor locations. The exposure needs to include different ages and other demographic groups, especially infants, children, pregnant women, and other sensitive subpopulations.[130]
For each specific time that the subgroup is in the setting and engaged in particular activities, the exposure to an air pollutant must integrate the concentrations of the air pollutant with regard to the time spent in each setting and the respective inhalation rates for each subgroup, playing, cooking, reading, working, spending time in traffic, etc. A little child's inhaling rate, for example, will be lower than that of an adult. A young person engaging in strenuous exercise will have a faster rate of breathing than a child engaged in sedentary activity. The daily exposure must therefore include the amount of time spent in each micro-environmental setting as well as the kind of activities performed there. The air pollutant concentration in each microactivity/microenvironmental setting is summed to indicate the exposure.[130]
For some pollutants such as black carbon, traffic related exposures may dominate total exposure despite short exposure times since high concentrations coincide with proximity to major roads or participation in (motorized) traffic.[131] A large portion of total daily exposure occurs as short peaks of high concentrations, but it remains unclear how to define peaks and determine their frequency and health impact.[132]
In 2021, the WHO halved its recommended guideline limit for tiny particles from burning fossil fuels. The new limit for nitrogen dioxide (NO2) is 75% lower.[133] Growing evidence that air pollution—even when experienced at very low levels—hurts human health, led the WHO to revise its guideline (from 10 μg/m3 to 5 μg/m3) for what it considers a safe level of exposure of particulate pollution, bringing most of the world—97.3 percent of the global population—into the unsafe zone.[134]
A lack of ventilation indoors concentrates air pollution where people often spend the majority of their time. Indoor air pollution can pose a significant health risk. According to EPA reports, the concentrations of many air pollutants can be two to five times higher in indoor air than in outdoor air. Indoor air pollutants can be up to 100 times higher in some cases than they are inside. People can spend up to 90% of their time indoors, according to the American Lung Association; the US Consumer Product Safety Commission (CPSC) 2012; and the US Environmental Protection Agency 2012a.[135]
Indoor contaminants that can cause pollution include asbestos, biologic agents, building materials, radon, tobacco smoke, and wood stoves, gas ranges, or other heating systems.[135]
Radon (Rn) gas, a carcinogen, is exuded from the Earth in certain locations and trapped inside houses. Building materials including carpeting and plywood emit formaldehyde (H-CHO) gas. Paint and solvents give off volatile organic compounds (VOCs) as they dry. Lead paint can degenerate into dust and be inhaled.[136][137]
Intentional air pollution is introduced with the use of air fresheners, incense, and other scented items. Controlled wood fires in cook stoves and fireplaces can add significant amounts of harmful smoke particulates into the air, inside and out.[136][137] Indoor pollution fatalities may be caused by using pesticides and other chemical sprays indoors without proper ventilation. Also the kitchen in a modern produce harmful particles and gases, with equipment like toasters being one of the worst sources.[138]
Carbon monoxide poisoning and fatalities are often caused by faulty vents and chimneys, or by the burning of charcoal indoors or in a confined space, such as a tent.[139] Chronic carbon monoxide poisoning can result even from poorly-adjusted pilot lights. Traps are built into all domestic plumbing to keep sewer gas and hydrogen sulfide, out of interiors. Clothing emits tetrachloroethylene, or other dry cleaning fluids, for days after dry cleaning.
Though its use has now been banned in many countries, the extensive use of asbestos in industrial and domestic environments in the past has left a potentially very dangerous material in many localities. Asbestosis is a chronic inflammatory medical condition affecting the tissue of the lungs. It occurs after long-term, heavy exposure to asbestos from asbestos-containing materials in structures. Those with asbestosis have severe dyspnea (shortness of breath) and are at an increased risk regarding several different types of lung cancer. As clear explanations are not always stressed in non-technical literature, care should be taken to distinguish between several forms of relevant diseases. According to the World Health Organization,[140] these may be defined as asbestosis, lung cancer, and peritoneal mesothelioma (generally a very rare form of cancer, when more widespread it is almost always associated with prolonged exposure to asbestos).
Biological sources of air pollution are also found indoors, as gases and airborne particulates. Pets produce dander, people produce dust from minute skin flakes and decomposed hair, dust mites in bedding, carpeting and furniture produce enzymes and micrometre-sized fecal droppings, inhabitants emit methane, mold forms on walls and generates mycotoxins and spores, air conditioning systems can incubate Legionnaires' disease and mold, and houseplants, soil and surrounding gardens can produce pollen, dust, and mold. Indoors, the lack of air circulation allows these airborne pollutants to accumulate more than they would otherwise occur in nature.
Air pollution has both acute and chronic effects on human health, affecting a number of different systems and organs but principally affect the body's respiratory system and the cardiovascular system. Afflictions include minor to chronic upper respiratory irritation such as difficulty in breathing, wheezing, coughing, asthma[141] and heart disease, lung cancer, stroke, acute respiratory infections in children and chronic bronchitis in adults, aggravating pre-existing heart and lung disease, or asthmatic attacks.
Short and long term exposures have been linked with premature mortality and reduced life expectancy[142] and can result in increased medication use, increased doctor or emergency department visits, more hospital admissions and premature death.[130][better source needed] Diseases that develop from persistent exposure to air pollution are environmental health diseases, which develop when a health environment is not maintained.[143]
Even at levels lower than those considered safe by United States regulators, exposure to three components of air pollution, fine particulate matter, nitrogen dioxide and ozone, correlates with cardiac and respiratory illness.[144] Individual reactions to air pollutants depend on the type of pollutant a person is exposed to, the degree of exposure, and the individual's health status and genetics.[130] The most common sources of air pollution include particulates and ozone (often from burning fossil fuels),[145] nitrogen dioxide, and sulfur dioxide. Children aged less than five years who live in developing countries are the most vulnerable population to death attributable to indoor and outdoor air pollution.[146]
Under the Clean Air Act, U.S. EPA sets limits on certain air pollutants, including setting limits on how much can be in the air anywhere in the United States.[147] Mixed exposure to both carbon black and ozone could result in significantly greater health affects.[148]
Estimates of deaths toll due to air pollution vary.[150] In 2014 the World Health Organization estimated that every year air pollution causes the premature death of 7 million people worldwide,[5] 1 in 8 deaths worldwide.[151] A study published in 2019 indicated that in 2015 the number may be closer to 8.8 million, with 5.5 million of these premature deaths due to air pollution from anthropogenic sources.[152][153] A 2022 review concluded that in 2019 air pollution was responsible for approximately 9 million premature deaths. It concluded that since 2015 little real progress against pollution has been made.[14][154] Causes of deaths include strokes, heart disease, COPD, lung cancer, and lung infections.[5] Children are particularly at risk.[155]
In 2021, the WHO reported that outdoor air pollution was estimated to cause 4.2 million premature deaths worldwide in 2019.[156]
The global mean loss of life expectancy (LLE; similar to YPLL) from air pollution in 2015 was 2.9 years, substantially more than, for example, 0.3 years from all forms of direct violence.[16] Communities with persons that live beyond 85 years have low ambient air pollution, suggesting a link between air pollution levels and longevity.[157]
The WHO estimates that in 2016, ~58% of outdoor air pollution-related premature deaths were due to ischaemic heart disease and stroke.[156] The mechanisms linking air pollution to increased cardiovascular mortality are uncertain, but probably include pulmonary and systemic inflammation.[158]
India and China have the highest death rate due to air pollution.[159][160] India also has more deaths from asthma than any other nation according to the World Health Organization. In 2019, 1.6 million deaths in India were caused by air pollution.[161] In 2013, air pollution was estimated to kill 500,000 people in China each year.[162] In 2012, 2.48% of China's total air pollution emissions were caused by exports due to US demand, causing an additional 27,963 deaths across 30 provinces.[163]
Annual premature European deaths caused by air pollution are estimated at 430,000[164] to 800,000.[153] An important cause of these deaths is nitrogen dioxide and other nitrogen oxides (NOx) emitted by road vehicles.[164] Across the European Union, air pollution is estimated to reduce life expectancy by almost nine months.[165] In a 2015 consultation document the UK government disclosed that nitrogen dioxide is responsible for 23,500 premature UK deaths per annum.[166] There is a positive correlation between pneumonia-related deaths and air pollution from motor vehicle emissions in England.[167]
Eliminating energy-related fossil fuel emissions in the United States would prevent 46,900–59,400 premature deaths each year and provide $537–$678 billion in benefits from avoided PM2.5-related illness and death.[168]
A study published in 2023 in Science focused on sulfur dioxide emissions by coal power plants (coal PM2.5) and concluded that "exposure to coal PM2.5 was associated with 2.1 times greater mortality risk than exposure to PM2.5 from all sources."[169] From 1999 to 2020, a total of 460,000 deaths in the US were attributed to coal PM2.5.[169]
The largest cause of air pollution is fossil fuel combustion[171] – mostly the production and use of cars, electricity production, and heating.[172] There are estimated 4.5 million annual premature deaths worldwide due to pollutants released by high-emission power stations and vehicle exhausts.[173]
Diesel exhaust (DE) is a major contributor to combustion-derived particulate matter air pollution. In several human experimental studies, using a well-validated exposure chamber setup, DE has been linked to acute vascular dysfunction and increased thrombus formation.[174][175]
A study concluded that PM2.5 air pollution induced by the contemporary free trade and consumption by the 19 G20 nations causes two million premature deaths annually, suggesting that the average lifetime consumption of about ~28 people in these countries causes at least one premature death (average age ~67) while developing countries "cannot be expected" to implement or be able to implement countermeasures without external support or internationally coordinated efforts.[176][170]
The US EPA has estimated that limiting ground-level ozone concentration to 65 parts per billion (ppb), would avert 1,700 to 5,100 premature deaths nationwide in 2020 compared with the 75 ppb standard. The agency projected the more protective standard would also prevent an additional 26,000 cases of aggravated asthma, and more than a million cases of missed work or school.[177][178] Following this assessment, the EPA acted to protect public health by lowering the National Ambient Air Quality Standards (NAAQS) for ground-level ozone to 70 ppb.[179]
A 2008 economic study of the health impacts and associated costs of air pollution in the Los Angeles Basin and San Joaquin Valley of Southern California shows that more than 3,800 people die prematurely (approximately 14 years earlier than normal) each year because air pollution levels violate federal standards. The number of annual premature deaths is considerably higher than the fatalities related to auto collisions in the same area, which average fewer than 2,000 per year.[180][181][182] A 2021 study found that outdoor air pollution is associated with substantially increased mortality "even at low pollution levels below the current European and North American standards and WHO guideline values" shortly before the WHO adjusted its guidelines.[183][184]
According to the Global Burden of Disease Study, air pollution is responsible for 19% of all cardiovascular deaths.[185][186] There is strong evidence linking both short- and long-term exposure to air pollution with cardiovascular disease mortality and morbidity, stroke, blood pressure, and ischemic heart diseases (IHD).[186]
Air pollution is a leading risk factor for stroke, particularly in developing countries where pollutant levels are highest.[187] A systematic analysis of 17 different risk factors in 188 countries found air pollution is associated with nearly one in three strokes (29%) worldwide (33.7% of strokes in developing countries versus 10.2% in developed countries).[187][188] In women, air pollution is not associated with hemorrhagic but with ischemic stroke.[189] Air pollution was found to be associated with increased incidence and mortality from coronary stroke.[190] Associations are believed to be causal and effects may be mediated by vasoconstriction, low-grade inflammation and atherosclerosis.[191] Other mechanisms such as autonomic nervous system imbalance have also been suggested.[192][193]
Research has demonstrated increased risk of developing asthma[194] and chronic obstructive pulmonary disease (COPD)[195] from increased exposure to traffic-related air pollution. Air pollution has been associated with increased hospitalization and mortality from asthma and COPD.[196][197]
COPD comprises a spectrum of clinical disorders that include emphysema, bronchiectasis, and chronic bronchitis.[198] COPD risk factors are both genetic and environmental. Elevated particle pollution contributes to the exacerbation of this disease and likely its pathogenesis.[199]
The risk of lung disease from air pollution is greatest for infants and young children, whose normal breathing is faster than that of older children and adults; the elderly; those who work outside or spend a lot of time outside; and those who have heart or lung disease comorbidities.[200]
A study conducted in 1960–1961 in the wake of the Great Smog of 1952 compared 293 London residents with 477 residents of Gloucester, Peterborough, and Norwich, three towns with low reported death rates from chronic bronchitis. All subjects were male postal truck drivers aged 40 to 59. Compared to the subjects from the outlying towns, the London subjects exhibited more severe respiratory symptoms (including cough, phlegm, and dyspnea), reduced lung function (FEV1 and peak flow rate), and increased sputum production and purulence. The differences were more pronounced for subjects aged 50 to 59. The study controlled for age and smoking habits, so concluded that air pollution was the most likely cause of the observed differences.[201] More studies have shown that air pollution exposure from traffic reduces lung function development in children[202] and lung function may be compromised by air pollution even at low concentrations.[203]
It is believed that, much like cystic fibrosis, serious health hazards become more apparent when living in a more urban environment. Studies have shown that in urban areas people experience mucus hypersecretion, lower levels of lung function, and more self-diagnosis of chronic bronchitis and emphysema.[204]
Around 300,000 lung cancer deaths were attributed globally in 2019 to exposure to fine particulate matter, PM2.5, suspended in the air.[205] PM2.5 exposure, such as from car exhausts, activates dormant mutations in lung cells, causing them to become cancerous.[206][205] Unprotected exposure to PM2.5 air pollution can be equivalent to smoking multiple cigarettes per day,[207][dead link ] potentially increasing the risk of cancer, which is mainly the result of environmental factors.[208]
Long-term exposure to PM2.5 (fine particulates) increases the overall risk of non-accidental mortality by 6% per 10 μg/m3 increase. Exposure to PM2.5 is also associated with an increased risk of mortality from lung cancer (range: 15–21% per 10 μg/m3 increase) and total cardiovascular mortality (range: 12–14% per 10 μg/m3 increase).[209]
The review further noted that living close to busy traffic appears to be associated with elevated risks of these three outcomes – increase in lung cancer deaths, cardiovascular deaths, and overall non-accidental deaths. The reviewers also found suggestive evidence that exposure to PM2.5 is positively associated with mortality from coronary heart diseases and exposure to SO2 increases mortality from lung cancer, but the data was insufficient to provide solid conclusions.[209] Another investigation showed that higher activity level increases deposition fraction of aerosol particles in human lung and recommended avoiding heavy activities like running in outdoor space at polluted areas.[210]
In 2011, a large Danish epidemiological study found an increased risk of lung cancer for people who lived in areas with high nitrogen oxide concentrations.[211] Another Danish study, likewise noted evidence of possible associations between air pollution and other forms of cancer, including cervical cancer and brain cancer.[212]
A study of 163,197 Taiwanese residents over the period of 2001–2016 estimated that every 5 μg/m3 decrease (from an approximate peak of 30μg/m3) in the ambient concentration of PM2.5 was associated with a 25% reduced risk of chronic kidney disease development.[213] According to a cohort study involving 10,997 atherosclerosis patients, higher PM 2.5 exposure is associated with increased albuminuria.[214]
An increase in NO2 is significantly associated with a lower live birth rate in women undergoing IVF treatment.[215] In the general population, there is a significant increase in miscarriage rate in women exposed to NO2 compared to those not exposed.[215]
CO exposure is significantly associated with stillbirth in the second and third trimester.[215]
Polycyclic aromatic hydrocarbons (PAHs) have been associated with reduced fertility. Benzo(a)pyrene (BaP) is a well-known PAH and carcinogen which is often found in exhaust fumes and cigarette smoke.[216] PAHs have been reported to administer their toxic effects through oxidative stress by increasing the production of Reactive Oxygen Species (ROS) which can result in inflammation and cell death. More long-term exposure to PAHs can result in DNA damage and reduced repair.[217]
Exposure to BaP has been reported to reduce sperm motility and increasing the exposure worsens this effect. Research has demonstrated that more BaPs were found in men with reported fertility issues compared to men without.[218]
Studies have shown that BaPs can affect folliculogenesis and ovarian development by reducing the number of ovarian germ cells via triggering cell death pathways and inducing inflammation which can lead to ovarian damage.[219]
Particulate matter (PM) refers to the collection of solids and liquids suspended in the air. These can be harmful to humans, and more research has shown that these effects may be more extensive than first thought; particularly on male fertility. PM can be different sizes, such as PM2.5 which are tiny particles of 2.5 microns in width or smaller, compared with PM10 which are classified as 10 microns in diameter or less.
A study in California found that increased exposure to PM2.5 led to decreased sperm motility and increased abnormal morphology. Similarly, in Poland exposure to PM2.5 and PM10 led to an increase in the percentage of cells with immature chromatin (DNA that has not fully developed or has developed abnormally).[220]
In Turkey, a study examined the fertility of men who work as toll collectors and are therefore exposed to high levels of traffic pollutants daily. Traffic pollution often has high levels of PM10 alongside carbon monoxide and nitrogen oxides.[220] There were significant differences in sperm count and motility in this study group compared to a control group with limited air pollution exposure.
In women, while overall effects on fertility do not appear significant there is an association between increased exposure to PM10 and early miscarriage. Exposure to smaller particulate matter, PM2.5, appears to have an effect on conception rates in women undergoing IVF but does not affect live birth rates.[215]
Ground-level ozone (O3), when in high concentrations, is regarded as an air pollutant and is often found in smog in industrial areas.
There is limited research about the effect that ozone pollution has on fertility.[215] At present, there is no evidence to suggest that ozone exposure poses a deleterious effect on spontaneous fertility in either females or males. However, there have been studies which suggest that high levels of ozone pollution, often a problem in the summer months, exert an effect on in vitro fertilisation (IVF) outcomes. Within an IVF population, NOx and ozone pollutants were linked with reduced rates of live birth.[215]
While most research on this topic is focused on the direct human exposure of air pollution, other studies have analysed the impact of air pollution on gametes and embryos within IVF laboratories. Multiple studies have reported a marked improvement in embryo quality, implantation and pregnancy rates after IVF laboratories have implemented air filters in a concerted effort to reduce levels of air pollution.[221] Therefore, ozone pollution is considered to have a negative impact on the success of assisted reproductive technologies (ART) when occurring at high levels.
Ozone is thought to act in a biphasic manner where a positive effect on live birth is observed when ozone exposure is limited to before IVF embryo implantation. Conversely, a negative effect is demonstrated upon exposure to ozone after embryo implantation. However, after adjusting for NO2, the association between O3 and IVF live birth rate was no longer significant.[222][223]
In terms of male fertility, ozone is reported to cause a significant decrease in the concentration and count of sperm in semen after exposure.[224] Similarly, sperm vitality, the proportion of live spermatozoa in a sample, was demonstrated to be diminished as a result of exposure to air pollution.[223] However, findings on the effect of ozone exposure on male fertility are somewhat discordant, highlighting the need for further research.[223]
Children and infants are among the most vulnerable to air pollution. Polluted air leads to the poisoning of millions of children under the age of 15, resulting in the death of some 600,000 children annually (543,000 under 5 years of age and 52,000 aged 5-15 years).[225] Children in low or middle income countries are exposed to higher levels of fine particulate matter than those in high income countries.[225]
Health effects of air pollution on children include asthma, pneumonia and lower respiratory tract infections and low birth weight.[226] A study in Europe found that exposure to ultrafine particles can increase blood pressure in children.[227]
Prenatal exposure to polluted air has been linked to a variety of neurodevelopmental disorders in children. For example, exposure to polycyclic aromatic hydrocarbons (PAH) was associated with reduced IQ scores and symptoms of anxiety and depression.[228] They can also lead to detrimental perinatal health outcomes that are often fatal in developing countries.[8] A 2014 study found that PAHs might play a role in the development of childhood attention deficit hyperactivity disorder (ADHD).[229]
Researchers have found a correlation between air pollution and risk of autism spectrum disorder (ASD) diagnosis, although definitive causality has not yet been established. In Los Angeles, children living in areas with high levels of traffic-related air pollution were more likely to be diagnosed with autism between three–five years of age.[230] A cohort study in Southern California linked in-utero exposure to near-roadway air pollution to an increased risk of ASD diagnosis[231] and a study in Sweden concluded that exposure to PM2.5 during pregnancy was associated with ASD.[232] A Danish study linked exposure to air pollution during infancy, but not during pregnancy, to an increased risk of ASD diagnosis.[233]
The connection between air pollution and neurodevelopmental disorders in children is thought to be related to epigenetic dysregulation of the primordial germ cells, embryo, and fetus during a critical period. Some PAHs are considered endocrine disruptors and are lipid soluble. When they build up in adipose tissue they can be transferred across the placenta can exert a genotoxic effect, cauding DNA damange and mutations.[234] Air pollution has been associated with the prevalence of preterm births.[235]
Ambient levels of air pollution have been associated with preterm birth and low birth weight. A 2014 WHO worldwide survey on maternal and perinatal health found a statistically significant association between low birth weights (LBW) and increased levels of exposure to PM2.5. Women in regions with greater than average PM2.5 levels had statistically significant higher odds of pregnancy resulting in a low-birth weight infant even when adjusted for country-related variables.[236] The effect is thought to be from stimulating inflammation and increasing oxidative stress.
A study found that in 2010 exposure to PM2.5 was strongly associated with 18% of preterm births globally, which was approximately 2.7 million premature births. The countries with the highest air pollution associated preterm births were in South and East Asia, the Middle East, North Africa, and West sub-Saharan Africa.[237] In 2019, ambient particulate matter pollution in Africa resulted in at least 383,000 early deaths, according to new estimates of the cost of air pollution in the continent. This increased from 3.6% in 1990 to around 7.4% of all premature deaths in the area.[238][239][240]
The source of PM2.5 differs greatly by region. In South and East Asia, pregnant women are frequently exposed to indoor air pollution because of wood and other biomass fuels being used for cooking, which are responsible for more than 80% of regional pollution. In the Middle East, North Africa and West sub-Saharan Africa, fine PM comes from natural sources, such as dust storms.[237] The United States had an estimated 50,000 preterm births associated with exposure to PM2.5 in 2010.[237]
A study between 1988 and 1991 found a correlation between sulfur dioxide (SO2) and total suspended particulates (TSP) and preterm births and low birth weights in Beijing. A group of 74,671 pregnant women, in four separate regions of Beijing, were monitored from early pregnancy to delivery along with daily air pollution levels of SO2 and TSP (along with other particulates). The estimated reduction in birth weight was 7.3 g for every 100 μg/m3 increase in SO2 and 6.9 g for each 100 μg/m3 increase in TSP. These associations were statistically significant in both summer and winter, although summer was greater. The proportion of low birth weight attributable to air pollution, was 13%. This is the largest attributable risk ever reported for the known risk factors of low birth weight.[241] Coal stoves, which are in 97% of homes, are a major source of air pollution in this area.
Brauer et al. studied the relationship between air pollution and proximity to a highway with pregnancy outcomes in a Vancouver cohort of pregnant women using addresses to estimate exposure during pregnancy. Exposure to NO, NO2, CO, PM10 and PM2.5 were associated with infants born small for gestational age (SGA). Women living less than 50 meters away from an expressway or highway were 26% more likely to give birth to a SGA infant.[242]
Data is accumulating that air pollution exposure also affects the central nervous system.[243]
Air pollution increases the risk of dementia in people over 50 years old.[244] Indoor air pollution exposure during childhood may negatively affect cognitive function and neurodevelopment.[245][246] Prenatal exposure may also affect neurodevelopment.[247][248] Studies show that air pollution is associated with a variety of developmental disabilities, oxidative stress, and neuro-inflammation and that it may contribute to Alzheimer's disease and Parkinson's disease.[246]
Researchers found that early exposure to air pollution causes the same changes in the brain as autism and schizophrenia in mice. It also showed that air pollution also affected short-term memory, learning ability, and impulsivity. In this study, air pollution had a larger negative impact on male mice than on females.[249][250] Lead researcher on the study, Deborah Cory-Slechta, said that:[251]
When we looked closely at the ventricles, we could see that the white matter that normally surrounds them hadn't fully developed. It appears that inflammation had damaged those brain cells and prevented that region of the brain from developing, and the ventricles simply expanded to fill the space. Our findings add to the growing body of evidence that air pollution may play a role in autism, as well as in other neurodevelopmental disorders.
Exposure to fine particulate matter can increase levels of cytokines - neurotransmitters produced in response to infection and inflammation that are also associated with depression and suicide. Pollution has been associated with inflammation of the brain, which may disrupt mood regulation. Heightened PM2.5 levels are linked to more self-reported depressive symptoms, and increases in daily suicide rates.[252][253]
In 2015, experimental studies reported the detection of significant episodic (situational) cognitive impairment from impurities in indoor air breathed by test subjects who were not informed about changes in the air quality. Significant deficits were observed in the performance scores achieved in increasing concentrations of either volatile organic compounds (VOCs) or carbon dioxide, while keeping other factors constant. The highest impurity levels reached are not uncommon in some classroom or office environments.[254][255] Higher PM2.5 and CO2 concentrations were shown to be associated with slower response times and reduced accuracy in tests.[256]
Even in areas with relatively low levels of air pollution, public health effects can be significant and costly, since a large number of people breathe in such pollutants. A study found that even in areas of the U.S. where ozone and PM2.5 meet federal standards, Medicare recipients who are exposed to more air pollution have higher mortality rates.[257]
Rural populations in India, like those in urban areas, are also exposed to high levels of air pollution.[258] In 2020, scientists found that the boundary layer air over the Southern Ocean around Antarctica is 'unpolluted' by humans.[259]
Various studies have estimated the impacts of air pollution on agriculture, especially ozone. A 2020 study showed that ozone pollution in California may reduce yields of certain perennial crops such as table grapes by as much as 22% per year, translating into economic damages of more than $1 billion per year.[260] After air pollutants enter the agricultural environment, they not only directly affect agricultural production and quality, but also enter agricultural waters and soil.[261] The COVID-19 induced lockdown served as a natural experiment to expose the close links between air quality and surface greenness. In India, the lockdown induced improvement in air quality, enhanced surface greenness and photosynthetic activity, with the positive response of vegetation to reduce air pollution was dominant in croplands.[262] On the other hand, agriculture in its traditional form is one of the primary contributors to the emission of trace gases like atmospheric ammonia.[263]
Air pollution costs the world economy $5 trillion per year as a result of productivity losses and degraded quality of life.[24][25][26] These productivity losses are caused by deaths due to diseases caused by air pollution. One out of ten deaths in 2013 was caused by diseases associated with air pollution and the problem is getting worse.
A small improvement in air quality (1% reduction of ambient PM2.5 and ozone concentrations) would produce $29 million in annual savings in the lower Fraser Valley region in 2010.[264] This finding is based on health valuation of lethal (death) and sub-lethal (illness) affects.
The problem is even more acute in the developing world. "Children under age 5 in lower-income countries are more than 60 times as likely to die from exposure to air pollution as children in high-income countries."[24][25] The report states that additional economic losses caused by air pollution, including health costs[265] and the adverse effect on agricultural and other productivity were not calculated in the report, and thus the actual costs to the world economy are far higher than $5 trillion.
A study published in 2022 found "a strong and significant connection between air pollution and construction site accidents" and that "a 10-ppb increase in NO2 levels increases the likelihood of an accident by as much as 25%".[266]
Artificial air pollution may be detectable on Earth from distant vantage points such as other planetary systems via atmospheric SETI – including NO2 pollution levels and with telescopic technology close to today. It may also be possible to detect extraterrestrial civilizations this way.[267][268][269]
The world's worst short-term civilian pollution crisis was the 1984 Bhopal Disaster in India.[270] Leaked industrial vapours from the Union Carbide factory, belonging to Union Carbide, Inc., U.S.A. (later bought by Dow Chemical Company), killed at least 3787 people and injured from 150,000 to 600,000. The United Kingdom suffered its worst air pollution event when the 4 December Great Smog of 1952 formed over London. In six days more than 4,000 died and more recent estimates put the figure at nearer 12,000.[271]
An accidental leak of anthrax spores from a biological warfare laboratory in the former USSR in 1979 near Yekaterinburg (formerly Sverdlovsk) is believed to have caused at least 64 deaths.[272] The worst single incident of air pollution to occur in the US occurred in Donora, Pennsylvania, in late October 1948, when 20 people died and over 7,000 were injured.[273]
Global depletion of the surrounding air pollution will require valiant leadership, a surplus of combined resources from the international community, and extensive societal changes.[274] Pollution prevention seeks to prevent pollution such as air pollution and could include adjustments to industrial and business activities such as designing sustainable manufacturing processes (and the products' designs)[275] and related legal regulations as well as efforts towards renewable energy transitions.[276][277]
Efforts to reduce particulate matter in the air may result in better health.[278]
The 9-Euro-Ticket scheme in Germany which allowed people to buy a monthly pass allowing use on all local and regional transport (trains, trams and busses) for 9 euro (€) for one month of unlimited travel saved 1.8 million tons of CO2 emissions during its three-month implementation from June to August 2022.[279]
Various pollution control technologies and strategies are available to reduce air pollution.[280][281] At its most basic level, land-use planning is likely to involve zoning and transport infrastructure planning. In most developed countries, land-use planning is an important part of social policy, ensuring that land is used efficiently for the benefit of the wider economy and population, as well as to protect the environment.[282] Stringent environmental regulations, effective control technologies and shift towards the renewable source of energy also helping countries like China and India to reduce their sulfur dioxide pollution.[283]
Titanium dioxide has been researched for its ability to reduce air pollution. Ultraviolet light will release free electrons from material, thereby creating free radicals, which break up VOCs and
NOx gases. One form is superhydrophilic.[284]
Pollution-eating nanoparticles placed near a busy road were shown to absorb toxic emission from around 20 cars each day.[285]
Since a large share of air pollution is caused by combustion of fossil fuels such as coal and oil, the reduction of these fuels can reduce air pollution drastically. Most effective is the switch to clean power sources such as wind power, solar power, hydro power which do not cause air pollution.[286] Efforts to reduce pollution from mobile sources includes expanding regulation to new sources (such as cruise and transport ships, farm equipment, and small gas-powered equipment such as string trimmers, chainsaws, and snowmobiles), increased fuel efficiency (such as through the use of hybrid vehicles), conversion to cleaner fuels, and conversion to electric vehicles. For example, buses in New Delhi, India, have run on compressed natural gas since 2000, to help eliminate the city's "pea-soup" smog.[226][287]
A very effective means to reduce air pollution is the transition to renewable energy. According to a study published in Energy and Environmental Science in 2015 the switch to 100% renewable energy in the United States would eliminate about 62,000 premature mortalities per year and about 42,000 in 2050, if no biomass were used. This would save about $600 billion in health costs a year due to reduced air pollution in 2050, or about 3.6% of the 2014 U.S. gross domestic product.[286] Air quality improvement is a near-term benefit among the many societal benefits from climate change mitigation.
There are now practical alternatives to the principal causes of air pollution:
The following items are commonly used as pollution control devices in industry and transportation. They can either destroy contaminants or remove them from an exhaust stream before it is emitted into the atmosphere.
Spatiotemporal monitoring of air quality may be necessary for improving air quality, and thereby the health and safety of the public, and assessing impacts of interventions.[301] Such monitoring is done to different extents with different regulatory requirements with discrepant regional coverage by a variety of organizations and governance entities such as using a variety of technologies for use of the data and sensing such mobile IoT sensors,[302][303] satellites,[304][305][306] and monitoring stations.[307][308] Some websites attempt to map air pollution levels using available data.[309][310][311]
Numerical models either on a global scale using tools such as GCMs (general circulation models coupled with a pollution module) or CTMs (Chemical transport model) can be used to simulate the levels of different pollutants in the atmosphere. These tools can have several types (Atmospheric model) and different uses. These models can be used in forecast mode which can help policy makers to decide on appropriate actions when an air pollution episode is detected. They can also be used for climate modeling including evolution of air quality in the future, for example the IPCC (Intergovernmental Panel on Climate Change) provides climate simulations including air quality assessments in their reports (latest report accessible through their site).
In general, there are two types of air quality standards. The first class of standards (such as the U.S. National Ambient Air Quality Standards and E.U. Air Quality Directive[312]) set maximum atmospheric concentrations for specific pollutants. Environmental agencies enact regulations which are intended to result in attainment of these target levels. The second class (such as the North American air quality index) take the form of a scale with various thresholds, which is used to communicate to the public the relative risk of outdoor activity. The scale may or may not distinguish between different pollutants.
In Canada, air pollution and associated health risks are measured with the Air Quality Health Index (AQHI).[313] It is a health protection tool used to make decisions to reduce short-term exposure to air pollution by adjusting activity levels during increased levels of air pollution.
The AQHI is a federal program jointly coordinated by Health Canada and Environment Canada. However, the AQHI program would not be possible without the commitment and support of the provinces, municipalities and NGOs. From air quality monitoring to health risk communication and community engagement, local partners are responsible for the vast majority of work related to AQHI implementation. The AQHI provides a number from 1 to 10+ to indicate the level of health risk associated with local air quality. Occasionally, when the amount of air pollution is abnormally high, the number may exceed 10. The AQHI provides a local air quality current value as well as a local air quality maximums forecast for today, tonight and tomorrow and provides associated health advice.
1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | + |
Risk: | Low (1–3) | Moderate (4–6) | High (7–10) | Very high (above 10) |
As it is now known that even low levels of air pollution can trigger discomfort for the sensitive population, the index has been developed as a continuum: The higher the number, the greater the health risk and need to take precautions. The index describes the level of health risk associated with this number as 'low', 'moderate', 'high' or 'very high', and suggests steps that can be taken to reduce exposure.[314]
Health risk | Air Quality Health Index | Health messages[315] | |
---|---|---|---|
At risk population | General population | ||
Low | 1–3 | Enjoy your usual outdoor activities. | Ideal air quality for outdoor activities |
Moderate | 4–6 | Consider reducing or rescheduling strenuous activities outdoors if you are experiencing symptoms. | No need to modify your usual outdoor activities unless you experience symptoms such as coughing and throat irritation. |
High | 7–10 | Reduce or reschedule strenuous activities outdoors. Children and the elderly should also take it easy. | Consider reducing or rescheduling strenuous activities outdoors if you experience symptoms such as coughing and throat irritation. |
Very high | Above 10 | Avoid strenuous activities outdoors. Children and the elderly should also avoid outdoor physical exertion and should stay indoors. | Reduce or reschedule strenuous activities outdoors, especially if you experience symptoms such as coughing and throat irritation. |
The measurement is based on the observed relationship of nitrogen dioxide (NO2), ground-level ozone (O3) and particulates (PM2.5) with mortality, from an analysis of several Canadian cities. Significantly, all three of these pollutants can pose health risks, even at low levels of exposure, especially among those with pre-existing health problems.
When developing the AQHI, Health Canada's original analysis of health effects included five major air pollutants: particulates, ozone, and nitrogen dioxide (NO2), as well as sulfur dioxide (SO2), and carbon monoxide (CO). The latter two pollutants provided little information in predicting health effects and were removed from the AQHI formulation.
The AQHI does not measure the effects of odour, pollen, dust, heat or humidity.
TA Luft is the German air quality regulation.[316]
In Europe, Council Directive 96/62/EC on ambient air quality assessment and management provides a common strategy against which member states can "set objectives for ambient air quality in order to avoid, prevent or reduce harmful effects on human health and the environment ... and improve air quality where it is unsatisfactory".[317]
In July 2008, in the case Dieter Janecek v. Freistaat Bayern, the European Court of Justice ruled that under this directive[317] citizens have the right to require national authorities to implement a short term action plan that aims to maintain or achieve compliance to air quality limit values.[318][319]
This important case law appears to confirm the role of the EC as centralised regulator to European nation-states as regards air pollution control. It places a supranational legal obligation on the UK to protect its citizens from dangerous levels of air pollution, furthermore superseding national interests with those of the citizen.
In 2010, the European Commission (EC) threatened the UK with legal action against the successive breaching of PM10 limit values.[320] The UK government has identified that if fines are imposed, they could cost the nation upwards of £300 million per year.[321]
In March 2011, the Greater London Built-up Area remained the only UK region in breach of the EC's limit values, and was given three months to implement an emergency action plan aimed at meeting the EU Air Quality Directive.[322] The City of London has dangerous levels of PM10 concentrations, estimated to cause 3000 deaths per year within the city.[323] As well as the threat of EU fines, in 2010 it was threatened with legal action for scrapping the western congestion charge zone, which is claimed to have led to an increase in air pollution levels.[324]
In response to these charges, mayor of London Boris Johnson has criticised the current need for European cities to communicate with Europe through their nation state's central government, arguing that in future "A great city like London" should be permitted to bypass its government and deal directly with the European Commission regarding its air quality action plan.[322]
This can be interpreted as recognition that cities can transcend the traditional national government organisational hierarchy and develop solutions to air pollution using global governance networks, for example through transnational relations. Transnational relations include but are not exclusive to national governments and intergovernmental organisations,[325] allowing sub-national actors including cities and regions to partake in air pollution control as independent actors.
Global city partnerships can be built into networks, for example the C40 Cities Climate Leadership Group, of which London is a member. The C40 is a public 'non-state' network of the world's leading cities that aims to curb their greenhouse emissions.[326] The C40 has been identified as 'governance from the middle' and is an alternative to intergovernmental policy.[327] It has the potential to improve urban air quality as participating cities "exchange information, learn from best practices and consequently mitigate carbon dioxide emissions independently from national government decisions".[326] A criticism of the C40 network is that its exclusive nature limits influence to participating cities and risks drawing resources away from less powerful city and regional actors.
Because Indigenous people[328] frequently experience a disproportionate share of the effects of environmental degradation and climate change, even while they have made very little contribution to the processes causing these changes, environmental justice is especially important to them. Indigenous peoples have been marginalized and their lands and resources have been exploited as a result of historical and continuing colonization, institutional injustices, and inequality.
Indigenous groups frequently lack the political and financial clout to influence policy decisions that impact their lands and means of subsistence or to lessen the effects of climate change. This makes the already-existing inequalities in these communities' social, economic, and health conditions worse. Furthermore, traditional ecological knowledge and Indigenous knowledge systems provide insightful information about sustainable resource management and climate change adaptation techniques. To promote persistence and environmental justice, Indigenous viewpoints must be acknowledged and integrated into efforts to mitigate the effects of climate change and adapt to them.
Combating climate change necessitates an all-encompassing strategy that recognizes the interdependence of social, economic, and environmental elements. This entails defending treaty rights, advancing Indigenous sovereignty and self-determination, and aiding Indigenous-led projects for sustainable development and environmental preservation.
Air pollution hotspots are areas where air pollution emissions expose individuals to increased negative health effects.[329] They are particularly common in highly populated, urban areas, where there may be a combination of stationary sources (e.g. industrial facilities) and mobile sources (e.g. cars and trucks) of pollution. Emissions from these sources can cause respiratory disease, childhood asthma,[141] cancer, and other health problems. Fine particulate matter such as diesel soot, which contributes to more than 3.2 million premature deaths around the world each year, is a significant problem. It is very small and can lodge itself within the lungs and enter the bloodstream. Diesel soot is concentrated in densely populated areas, and one in six people in the U.S. live near a diesel pollution hot spot.[330]
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While air pollution hotspots affect a variety of populations, some groups are more likely to be located in hotspots. Previous studies have shown disparities in exposure to pollution by race and/or income. Hazardous land uses (toxic storage and disposal facilities, manufacturing facilities, major roadways) tend to be located where property values and income levels are low. Low socioeconomic status can be a proxy for other kinds of social vulnerability, including race, a lack of ability to influence regulation and a lack of ability to move to neighborhoods with less environmental pollution. These communities bear a disproportionate burden of environmental pollution and are more likely to face health risks such as cancer or asthma.[332]
Studies show that patterns in race and income disparities not only indicate a higher exposure to pollution but also higher risk of adverse health outcomes.[333] Communities characterized by low socioeconomic status and racial minorities can be more vulnerable to cumulative adverse health impacts resulting from elevated exposure to pollutants than more privileged communities.[333] Blacks and Latinos generally face more pollution than Whites and Asians, and low-income communities bear a higher burden of risk than affluent ones.[332] Racial discrepancies are particularly distinct in suburban areas of the Southern United States and metropolitan areas of the Midwestern and Western United States.[334] Residents in public housing, who are generally low-income and cannot move to healthier neighborhoods, are highly affected by nearby refineries and chemical plants.[335]
Air pollution is usually concentrated in densely populated metropolitan areas, especially in developing countries where cities are experiencing rapid growth and environmental regulations are relatively lax or nonexistent. Urbanization leads to a rapid rise in premature mortality due to anthropogenic air pollution in fast-growing tropical cities.[336] However, even populated areas in developed countries attain unhealthy levels of pollution, with Los Angeles and Rome being two examples.[337] Between 2002 and 2011 the incidence of lung cancer in Beijing near doubled. While smoking remains the leading cause of lung cancer in China, the number of smokers is falling while lung cancer rates are rising .[338]
World's Most Polluted Cities 2020 | 2020 Average | 2019 Average |
---|---|---|
Hotan, China | 110.2 | 110.1 |
Ghaziabad, India | 106.6 | 110.2 |
Bulandshahr, India | 98.4 | 89.4 |
Bisrakh Jalalpur, India | 96.0 | - |
Bhiwadi, India | 95.5 | 83.4 |
Tehran was declared the most polluted city in the world on May 24, 2022.[340]
In a 2019 projection, by 2030 half of the world's pollution emissions could be generated by Africa.[341] Potential contributors to such an outcome include increased burning activities (such as the burning of open waste), traffic, agri-food and chemical industries, sand dust from the Sahara, and overall population growth.
In a 2012 study, by 2050 outdoor air pollution (particulate matter and ground-level ozone) is projected to become the top cause of environmentally related deaths worldwide.[342]
Source
Measurement
Others
... it is estimated that 40 percent of all China's factories have been shut down at some point in order to be inspected... [and] over 80,000 factories have been hit with fines and criminal offenses as a result of their emissions.
"... most furnaces, wood stoves, fireplaces, gas water heaters, and gas clothes dryers, usually vent (exhaust) the combustion pollutants directly to the outdoors. However, if the vent system is not properly designed, installed, and maintained, indoor pollutants can build up quickly inside the home.
Landfill gas (LFG) is a natural byproduct of the decomposition of organic material in landfills. LFG is composed of roughly 50 percent methane...
Whereas in much of the USA and in a few other countries emissions from traffic and power generation are important, in eastern USA, Europe, Russia and East Asia agricultural emissions make the largest relative contribution to PM2.5, with the estimate of overall health impact depending on assumptions regarding particle toxicity.
For over a century CO2 has been recognised as a workplace hazard at high concentrations. CO2 is naturally present in the air we breathe at a concentration of about 0.037% and is not harmful to health at low concentrations.
Some pollutants, and especially those associated with greenhouse warming effects (carbon dioxide, nitrous oxide and methane)...
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A modular building is a prefabricated building that consists of repeated sections called modules.[1] Modularity involves constructing sections away from the building site, then delivering them to the intended site. Installation of the prefabricated sections is completed on site. Prefabricated sections are sometimes placed using a crane. The modules can be placed side-by-side, end-to-end, or stacked, allowing for a variety of configurations and styles. After placement, the modules are joined together using inter-module connections, also known as inter-connections. The inter-connections tie the individual modules together to form the overall building structure.[2]
Modular buildings may be used for long-term, temporary or permanent facilities, such as construction camps, schools and classrooms, civilian and military housing, and industrial facilities. Modular buildings are used in remote and rural areas where conventional construction may not be reasonable or possible, for example, the Halley VI accommodation pods used for a BAS Antarctic expedition.[3] Other uses have included churches, health care facilities, sales and retail offices, fast food restaurants and cruise ship construction. They can also be used in areas that have weather concerns, such as hurricanes. Modular buildings are often used to provide temporary facilities, including toilets and ablutions at events. The portability of the buildings makes them popular with hire companies and clients alike. The use of modular buildings enables events to be held at locations where existing facilities are unavailable, or unable to support the number of event attendees.
Construction is offsite, using lean manufacturing techniques to prefabricate single or multi-story buildings in deliverable module sections. Often, modules are based around standard 20 foot containers, using the same dimensions, structures, building and stacking/placing techniques, but with smooth (instead of corrugated) walls, glossy white paint, and provisions for windows, power, potable water, sewage lines, telecommunications and air conditioning. Permanent Modular Construction (PMC) buildings are manufactured in a controlled setting and can be constructed of wood, steel, or concrete. Modular components are typically constructed indoors on assembly lines. Modules' construction may take as little as ten days but more often one to three months. PMC modules can be integrated into site built projects or stand alone and can be delivered with MEP, fixtures and interior finishes.
The buildings are 60% to 90% completed offsite in a factory-controlled environment, and transported and assembled at the final building site. This can comprise the entire building or be components or subassemblies of larger structures. In many cases, modular contractors work with traditional general contractors to exploit the resources and advantages of each type of construction. Completed modules are transported to the building site and assembled by a crane.[4] Placement of the modules may take from several hours to several days. Off-site construction running in parallel to site preparation providing a shorter time to project completion is one of the common selling points of modular construction. Modular construction timeline
Permanent modular buildings are built to meet or exceed the same building codes and standards as site-built structures and the same architect-specified materials used in conventionally constructed buildings are used in modular construction projects. PMC can have as many stories as building codes allow. Unlike relocatable buildings, PMC structures are intended to remain in one location for the duration of their useful life.
The entire process of modular construction places significance on the design stage. This is where practices such as Design for Manufacture and Assembly (DfMA) are used to ensure that assembly tolerances are controlled throughout manufacture and assembly on site. It is vital that there is enough allowance in the design to allow the assembly to take up any "slack" or misalignment of components. The use of advanced CAD systems, 3D printing and manufacturing control systems are important for modular construction to be successful. This is quite unlike on-site construction where the tradesman can often make the part to suit any particular installation.
The development of factory facilities for modular homes requires significant upfront investment. To help address housing shortages in the 2010s, the United Kingdom Government (via Homes England) invested in modular housing initiatives. Several UK companies (for example, Ilke Homes, L&G Modular Homes, House by Urban Splash, Modulous, TopHat and Lighthouse) were established to develop modular homes as an alternative to traditionally-built residences, but failed as they could not book revenues quickly enough to cover the costs of establishing manufacturing facilities.
IIke Homes opened a factory in Knaresborough, Yorkshire in 2018, and Homes England invested £30m in November 2019,[5] and a further £30m in September 2021.[6] Despite a further fund-raising round, raising £100m in December 2022,[7][8] Ilke Homes went into administration on 30 June 2023,[9][10] with most of the company's 1,150 staff made redundant,[11] and debts of £320m,[12] including £68m owed to Homes England.[13]
In 2015 Legal & General launched a modular homes operation, L&G Modular Homes, opening a 550,000 sq ft factory in Sherburn-in-Elmet, near Selby in Yorkshire.[14] The company incurred large losses as it invested in its factory before earning any revenues; by 2019, it had lost over £100m.[15] Sales revenues from a Selby project, plus schemes in Kent and West Sussex, started to flow in 2022, by which time the business's total losses had grown to £174m.[16] Production was halted in May 2023, with L&G blaming local planning delays and the COVID-19 pandemic for its failure to grow its sales pipeline.[17][18] The enterprise incurred total losses over seven years of £295m.[19]
Some home buyers and some lending institutions resist consideration of modular homes as equivalent in value to site-built homes.[citation needed] While the homes themselves may be of equivalent quality, entrenched zoning regulations and psychological marketplace factors may create hurdles for buyers or builders of modular homes and should be considered as part of the decision-making process when exploring this type of home as a living and/or investment option. In the UK and Australia, modular homes have become accepted in some regional areas; however, they are not commonly built in major cities. Modular homes are becoming increasingly common in Japanese urban areas, due to improvements in design and quality, speed and compactness of onsite assembly, as well as due to lowering costs and ease of repair after earthquakes. Recent innovations allow modular buildings to be indistinguishable from site-built structures.[20] Surveys have shown that individuals can rarely tell the difference between a modular home and a site-built home.[21]
Differences include the building codes that govern the construction, types of material used and how they are appraised by banks for lending purposes. Modular homes are built to either local or state building codes as opposed to manufactured homes, which are also built in a factory but are governed by a federal building code.[22] The codes that govern the construction of modular homes are exactly the same codes that govern the construction of site-constructed homes.[citation needed] In the United States, all modular homes are constructed according to the International Building Code (IBC), IRC, BOCA or the code that has been adopted by the local jurisdiction.[citation needed] In some states, such as California, mobile homes must still be registered yearly, like vehicles or standard trailers, with the Department of Motor Vehicles or other state agency. This is true even if the owners remove the axles and place it on a permanent foundation.[23]
A mobile home should have a small metal tag on the outside of each section. If a tag cannot be located, details about the home can be found in the electrical panel box. This tag should also reveal a manufacturing date.[citation needed] Modular homes do not have metal tags on the outside but will have a dataplate installed inside the home, usually under the kitchen sink or in a closet. The dataplate will provide information such as the manufacturer, third party inspection agency, appliance information, and manufacture date.
The materials used in modular buildings are of the same quality and durability as those used in traditional construction, preserving characteristics such as acoustic insulation and energy efficiency, as well as allowing for attractive and innovative designs thanks to their versatility.[24] Most commonly used are steel, wood and concrete.[25]
Wood-frame floors, walls and roof are often utilized. Some modular homes include brick or stone exteriors, granite counters and steeply pitched roofs. Modulars can be designed to sit on a perimeter foundation or basement. In contrast, mobile homes are constructed with a steel chassis that is integral to the integrity of the floor system. Modular buildings can be custom built to a client's specifications. Current designs include multi-story units, multi-family units and entire apartment complexes. The negative stereotype commonly associated with mobile homes has prompted some manufacturers to start using the term "off-site construction."
New modular offerings include other construction methods such as cross-laminated timber frames.[27]
Mobile homes often require special lenders.[28]
Modular homes on the other hand are financed as site built homes with a construction loan
Typically, modular dwellings are built to local, state or council code, resulting in dwellings from a given manufacturing facility having differing construction standards depending on the final destination of the modules.[29] The most important zones that manufacturers have to take into consideration are local wind, heat, and snow load zones.[citation needed] For example, homes built for final assembly in a hurricane-prone, earthquake or flooding area may include additional bracing to meet local building codes. Steel and/or wood framing are common options for building a modular home.
Some US courts have ruled that zoning restrictions applicable to mobile homes do not apply to modular homes since modular homes are designed to have a permanent foundation.[citation needed] Additionally, in the US, valuation differences between modular homes and site-built homes are often negligible in real estate appraisal practice; modular homes can, in some market areas, (depending on local appraisal practices per Uniform Standards of Professional Appraisal Practice) be evaluated the same way as site-built dwellings of similar quality. In Australia, manufactured home parks are governed by additional legislation that does not apply to permanent modular homes. Possible developments in equivalence between modular and site-built housing types for the purposes of real estate appraisals, financing and zoning may increase the sales of modular homes over time.[30]
The Consortium of Local Authorities Special Programme (abbreviated and more commonly referred to as CLASP) was formed in England in 1957 to combine the resources of local authorities with the purpose of developing a prefabricated school building programme. Initially developed by Charles Herbert Aslin, the county architect for Hertfordshire, the system was used as a model for several other counties, most notably Nottinghamshire and Derbyshire. CLASP's popularity in these coal mining areas was in part because the system permitted fairly straightforward replacement of subsidence-damaged sections of building.
Modular homes are designed to be stronger than traditional homes by, for example, replacing nails with screws, adding glue to joints, and using 8–10% more lumber than conventional housing.[31] This is to help the modules maintain their structural integrity as they are transported on trucks to the construction site. However, there are few studies on the response of modular buildings to transport and handling stresses. It is therefore presently difficult to predict transport induced damage.[1]
When FEMA studied the destruction wrought by Hurricane Andrew in Dade County Florida, they concluded that modular and masonry homes fared best compared to other construction.[32]
The CE mark is a construction norm that guarantees the user of mechanical resistance and strength of the structure. It is a label given by European community empowered authorities for end-to-end process mastering and traceability.[citation needed]
All manufacturing operations are being monitored and recorded:
This ID and all the details are recorded in a database, At any time, the producer has to be able to answer and provide all the information from each step of the production of a single unit, The EC certification guaranties standards in terms of durability, resistance against wind and earthquakes.[citation needed]
The term Modularity can be perceived in different ways. It can even be extended to building P2P (peer-to-peer) applications; where a tailored use of the P2P technology is with the aid of a modular paradigm. Here, well-understood components with clean interfaces can be combined to implement arbitrarily complex functions in the hopes of further proliferating self-organising P2P technology. Open modular buildings are an excellent example of this. Modular building can also be open source and green. Bauwens, Kostakis and Pazaitis[33] elaborate on this kind of modularity. They link modularity to the construction of houses.
This commons-based activity is geared towards modularity. The construction of modular buildings enables a community to share designs and tools related to all the different parts of house construction. A socially-oriented endeavour that deals with the external architecture of buildings and the internal dynamics of open source commons. People are thus provided with the tools to reconfigure the public sphere in the area where they live, especially in urban environments. There is a robust socializing element that is reminiscent of pre-industrial vernacular architecture and community-based building.[34]
Some organisations already provide modular housing. Such organisations are relevant as they allow for the online sharing of construction plans and tools. These plans can be then assembled, through either digital fabrication like 3D printing or even sourcing low-cost materials from local communities. It has been noticed that given how easy it is to use these low-cost materials are (for example: plywood), it can help increase the permeation of these open buildings to areas or communities that lack the know-how or abilities of conventional architectural or construction firms. Ergo, it allows for a fundamentally more standardised way of constructing houses and buildings. The overarching idea behind it remains key - to allow for easy access to user-friendly layouts which anyone can use to build in a more sustainable and affordable way.
Modularity in this sense is building a house from different standardised parts, like solving a jigsaw puzzle.
3D printing can be used to build the house.
The main standard is OpenStructures and its derivative Autarkytecture.[35]
Modular construction is the subject of continued research and development worldwide as the technology is applied to taller and taller buildings. Research and development is carried out by modular building companies and also research institutes such as the Modular Building Institute[36] and the Steel Construction Institute.[37]
34 - "Volumetric modular construction trend gaining groun d". https://www.aa.com.tr/en/corporate-news/volumetric-modular-construction-trend-gaining-ground/2357158 06.09.2021
I was in need of some items for a double wide that I am remodeling and this place is the only place in town that had what I needed ( I didn't even try the other rude place )while I was there I learned the other place that was in Tulsa that also sold mobile home supplies went out of business (no wonder the last time I was in there they were VERY RUDE and high priced) I like the way Dunham does business they answered all my questions and got me the supplies I needed, very friendly, I will be back to purchase the rest of my items when the time comes.
We will see, the storm door I bought says on the tag it's 36x80, but it's 34x80. If they return it.......they had no problems returning it. And it was no fault of there's, you measure a mobile home door different than a standard door!
Durham supply and Royal supply seems to find the most helpful and friendly people to work in their stores, we are based out of Kansas City out here for a few remodels and these guys treated us like we've gone there for years.