Identifying Warning Signs of Outdated Components

Identifying Warning Signs of Outdated Components

Importance of Safety in Mobile Home HVAC Work

Mobile homes, like any other living spaces, require efficient HVAC (Heating, Ventilation, and Air Conditioning) systems to ensure comfort throughout the year. However, many mobile homes rely on outdated components in their HVAC systems, which can lead to inefficiency, increased energy costs, and even safety hazards. Identifying these warning signs of outdated components is crucial for maintaining a comfortable and safe living environment.


Smart thermostats offer convenient temperature control for mobile homes hvac system for mobile home ultraviolet radiation.

One of the most common outdated components in mobile home HVAC systems is the ductwork. Over time, ducts can become leaky or clogged with debris due to age and lack of maintenance. This results in reduced airflow and uneven heating or cooling throughout the home. A telltale sign of duct problems is inconsistent temperatures from room to room or an increase in dust accumulation within the house. If you notice these issues, it might be time to inspect your ductwork for leaks or blockages.


Another component that often becomes obsolete is the thermostat. Older thermostats may not have modern features such as programmable settings or smart connectivity, which can help optimize energy use. An outdated thermostat may also struggle to maintain accurate temperature readings, leading to frequent cycling of the HVAC system and increased wear and tear on its components. If your thermostat seems unresponsive or if you're still using a manual model without digital capabilities, upgrading could significantly improve your system's efficiency.


The furnace is another critical component that can show signs of aging. An older furnace might emit strange noises during operation-such as banging or rattling-which could indicate worn-out parts like belts or motors. Additionally, rust or soot around the furnace area suggests potential combustion issues that need immediate attention for both efficiency and safety reasons.


Air conditioning units in mobile homes are also susceptible to becoming outdated over time. A major warning sign here includes reduced cooling effectiveness despite regular maintenance efforts like cleaning filters and coils. This could indicate that critical components such as compressors are wearing out due to age. High humidity levels within the home even when the AC is running might also suggest inefficiency stemming from an old system struggling to keep up with demands.


Finally, noticing higher than usual energy bills without any changes in usage patterns can serve as a red flag indicating outdated HVAC components. As these systems age, they tend to consume more power while delivering less effective heating or cooling-a clear indicator that certain elements within the system are no longer functioning optimally.


In conclusion, recognizing warning signs of outdated components in mobile home HVAC systems is essential for ensuring comfort and safety while minimizing energy costs. Regular inspections by qualified professionals can help identify these issues early on before they escalate into more serious problems requiring costly repairs or replacements. By being proactive about maintenance and upgrades where necessary-whether it's replacing old thermostats with modern versions or sealing leaky ducts-homeowners can enjoy more efficient climate control tailored perfectly for their needs.

In the fast-paced world of technology, keeping systems up-to-date is crucial for maintaining optimal performance and ensuring reliability. However, identifying when components become outdated can be challenging. Recognizing signs of inefficiency and performance issues is essential in preventing broader system failures and maintaining a competitive edge.


One of the first indicators that components may be outdated is a noticeable decline in system performance. Slower processing speeds, increased response times, and frequent lags are often symptomatic of underlying hardware or software inefficiencies. These issues can result from technological advancements that render older components less capable of meeting current demands or from accumulated wear and tear over time.


Another warning sign is an increase in system crashes or unexpected shutdowns. This erratic behavior often points to compatibility issues between older components and newer software updates or applications. As software evolves, it typically requires more resources and support for features not available in older hardware configurations. When these needs are unmet, stability suffers.


Moreover, escalating maintenance costs can signal that it's time to evaluate component efficacy. If repairs become frequent or expensive due to sourcing hard-to-find parts for obsolete hardware, this might indicate that upgrading would be more cost-effective than continuous patchwork fixes.


Security vulnerabilities also serve as critical red flags. Outdated components are often unsupported by manufacturers with security patches, leaving systems exposed to cyber threats. In an era where data breaches can have devastating consequences, ignoring these risks could lead to severe financial losses and damage an organization's reputation.


Energy inefficiency adds another layer of concern tied to outdated technology. Older equipment tends to consume more power than modern alternatives optimized for energy conservation. This not only raises operational costs but also contradicts efforts towards sustainability-an increasingly important consideration for businesses globally.


Lastly, user feedback provides valuable insights into potential problems stemming from outdated components. Complaints about slow applications or connectivity issues should not be dismissed lightly; they reflect real-world experiences that highlight areas needing attention.


In conclusion, staying vigilant about the signs of inefficiency and performance issues can help identify outdated components before they cause significant disruptions. By monitoring declines in performance, increasing maintenance demands, security vulnerabilities, energy inefficiencies, and listening to user feedback, organizations can proactively address these challenges. Updating systems not only enhances operational efficiency but also safeguards against potential security threats while aligning with cost-saving strategies and environmental goals.

Steps to Retrofit Legacy HVAC Units While Maintaining Safety Compliance

Steps to Retrofit Legacy HVAC Units While Maintaining Safety Compliance

Retrofitting legacy HVAC units presents unique challenges and opportunities for modernizing building infrastructure while adhering to safety compliance.. As buildings age, their heating, ventilation, and air conditioning systems often become inefficient and outdated.

Posted by on 2024-12-30

Why Safety Compliance is Essential in Mobile Home HVAC Upgrades

Why Safety Compliance is Essential in Mobile Home HVAC Upgrades

Ensuring safety compliance in HVAC projects is a critical aspect that cannot be overlooked, especially when it comes to mobile home upgrades.. Mobile homes, due to their unique construction and space constraints, present distinct challenges that require meticulous attention to safety standards.

Posted by on 2024-12-30

Challenges and Benefits of Retrofitting Mobile Home HVAC Systems

Challenges and Benefits of Retrofitting Mobile Home HVAC Systems

Retrofitting mobile home HVAC systems presents a unique set of challenges and benefits, and examining case studies or examples of successful retrofits can provide valuable insights for those considering this endeavor.. Mobile homes, due to their distinct construction and mobility, often face limitations in terms of space, structural integrity, and energy efficiency.

Posted by on 2024-12-30

Essential Safety Gear and Equipment for Technicians

In the rapidly evolving landscape of technology, efficiency and performance are paramount. The digital devices and systems that power our world today are designed to operate with a fine balance between output and energy consumption. However, as these components age or become outdated, this balance can be disrupted, leading to increased energy consumption-a critical warning sign that should not be overlooked.


Increased energy consumption often serves as an early indicator of underlying issues within technological components. Whether it's a computer system, industrial machinery, or household appliances, all complex systems rely on a multitude of components working in harmony. Over time, wear and tear can degrade their efficiency. For example, in computing devices, outdated processors may struggle to handle modern software demands efficiently. This struggle results in more power being drawn to compensate for the lag, which is reflected in higher electricity bills and heat output.


From an environmental perspective, excessive energy use due to outdated components contributes to unnecessary carbon emissions. In a world increasingly conscious of climate change and environmental sustainability, ignoring the signs of increased energy consumption is both economically and ecologically irresponsible. Companies striving for sustainable operations must prioritize regular assessments of their equipment to ensure they are not inadvertently inflating their carbon footprint due to outdated technology.


Moreover, increased energy usage not only impacts the environment but also financial bottom lines. Businesses often experience significant cost savings by upgrading old systems with more efficient ones rather than maintaining power-hungry legacy technologies. These upgrades are investments that pay off over time through reduced utility costs and improved operational efficiency.


Identifying increased energy consumption as a warning sign requires vigilance and proactive monitoring. Implementing energy audits can help organizations pinpoint which components are drawing more power than necessary. Sophisticated monitoring tools can track real-time energy usage patterns and flag anomalies indicative of failing or obsolete hardware.


In conclusion, while technological advancements have made devices more efficient than ever before, the journey doesn't end at installation. Continuous observation of energy consumption patterns is crucial for maintaining optimal performance levels and ensuring sustainability goals are met. Increased energy usage should never be dismissed as merely an operational quirk; instead, it should serve as a catalyst for action-prompting timely upgrades or replacements that keep systems running smoothly while safeguarding both financial health and environmental integrity. Embracing this mindset will not only extend the lifespan of valuable technology investments but also contribute positively to broader societal efforts toward responsible resource management.

Essential Safety Gear and Equipment for Technicians

Proper Procedures for Handling Refrigerants and Chemicals

In today's fast-paced world, the seamless operation of machinery and technology is critical to both our personal and professional lives. Whether it's the car we drive to work, the computer we use for remote meetings, or the appliances that keep our homes running smoothly, ensuring these components function optimally is paramount. However, nothing lasts forever, and over time, even the most reliable equipment can begin to show signs of wear and tear. Recognizing these warning signs early through frequent repairs and maintenance alerts can save us from unexpected failures and costly replacements.


One of the first indicators that a component may be outdated is an increase in the frequency of repairs. When a piece of machinery or technology requires constant attention just to maintain its basic functionality, it might be a sign that it's nearing the end of its lifecycle. This uptick in maintenance requirements often points to underlying issues related to age or obsolescence. For example, if your office printer frequently jams despite regular servicing, it could indicate that some of its parts are worn out or incompatible with newer software systems.


Another warning sign is decreased efficiency. Outdated components often struggle to perform at their original capacity due to technological advancements that have surpassed them. This inefficiency can manifest as slower processing times on computers, increased energy consumption in household appliances, or reduced fuel economy in vehicles. These symptoms not only impact productivity but also lead to higher operational costs over time.


Noise levels are also a crucial indicator of potential issues with components. Machines typically operate within certain noise thresholds when functioning correctly; any unusual sounds like grinding, knocking, or clicking should not be ignored. These noises can signify mechanical degradation or alignment problems suggesting that parts may be reaching their functional limit.


Additionally, compatibility issues should raise alarms about outdated components. As software updates roll out and new technologies emerge, older systems may struggle to keep up with current standards. This incompatibility might cause frequent system crashes or errors during everyday tasks-a clear signal that it's time for an upgrade.


Finally, visual cues such as rusting metal parts or cracked casings are tangible evidence that a component has seen better days. Regular inspections revealing such deterioration highlight the need for immediate action before minor issues escalate into major failures.


To effectively manage these risks associated with outdated components requires a proactive approach: implementing regular maintenance schedules supported by alert systems designed specifically for identifying early warning signs of failure. By doing so, businesses and individuals alike can extend the lifespan of their equipment while minimizing disruptions caused by unexpected breakdowns.


In conclusion, recognizing frequent repairs and maintenance alerts as indicators of outdated components allows us to address potential problems before they become significant setbacks. Embracing this vigilant mindset not only preserves functionality but also ensures safety and cost-effectiveness in our increasingly tech-reliant lives-a practice well worth adopting in any modern setting.

Electrical Safety Protocols for Mobile Home HVAC Work

In the realm of mechanical systems, whether domestic appliances, vehicles, or industrial machinery, age is a silent factor that gradually erodes efficiency and reliability. As these systems age, they often begin to show subtle signs that can easily be overlooked by an untrained eye or ear. Among these signs are unusual noises and odors-often the first indicators of outdated components struggling to perform.


Unusual noises emanating from a system can range from persistent rattles and hums to high-pitched squeals or grinding sounds. These auditory clues are not merely nuisances but are symptomatic of deeper mechanical issues. For instance, a grinding noise in an automobile might suggest worn-out brake pads or failing bearings. Similarly, in household appliances like washing machines or refrigerators, strange noises may indicate motor wear or imbalance in moving parts. Such sounds often signify increased friction due to lack of lubrication or misalignment-a telltale sign that the component is nearing the end of its operational life.


Odors provide another dimension to diagnosing aging systems. A burnt smell from electrical equipment hints at overheating components, possibly due to faulty wiring or failing insulation. In cars, a sweet scent could be indicative of a coolant leak, while musty odors might suggest mold growth within air conditioning units due to clogged filters and old components unable to maintain proper airflow.


These sensory signals should not be ignored as they serve as early warning signs pointing towards potential failures if left unchecked. Addressing them promptly can prevent minor issues from escalating into major malfunctions requiring costly repairs or replacements.


The presence of unusual noises and odors highlights the importance of regular maintenance and inspection regimes for any mechanical system. By being attentive to these warning signs, users can extend the lifespan of their equipment while ensuring safety and efficiency remain uncompromised.


Ultimately, understanding these indicators requires an appreciation for how mechanical components interact and degrade over time. It demands vigilance and sometimes invokes nostalgia as one reflects on the seamless operation experienced during earlier years when all parts were new and unworn. By heeding these warnings with timely interventions, we honor both technological craftsmanship and our own commitment to preserving smooth functionality amidst inevitable wear and tear brought about by time's relentless march forward.

Best Practices for Ensuring Structural Integrity During Installation and Maintenance

The quality of the air we breathe indoors plays a crucial role in maintaining our overall health and well-being. While many factors contribute to indoor air quality, one often overlooked aspect is the impact of outdated components within our living and working spaces. As buildings age, so do their components, including HVAC systems, filters, and insulation materials. Understanding the warning signs of these outdated components can help us take timely actions to ensure that the air we breathe remains clean and healthy.


One of the most visible indicators of outdated components affecting indoor air quality is a noticeable decline in ventilation efficiency. Over time, HVAC systems can become clogged with dust and debris, significantly reducing their ability to circulate fresh air throughout a building. Inadequate ventilation not only leads to stuffy environments but also allows pollutants such as volatile organic compounds (VOCs) and allergens to accumulate. Occupants may begin experiencing symptoms like headaches, fatigue, or respiratory issues without realizing that an inefficient HVAC system could be at fault.


Another warning sign is an increase in energy bills without any substantial change in usage patterns. Outdated or poorly maintained heating and cooling systems often require more energy to function effectively due to wear and tear on their components. This inefficiency not only impacts financial resources but also contributes indirectly to poor indoor air quality as systems struggle to maintain appropriate humidity levels and filter out contaminants.


Old insulation materials are another culprit when assessing the impact of outdated components on indoor air quality. Insulation that has degraded over time might allow moisture ingress or harbor mold growth-both conditions that compromise air quality by introducing harmful spores into the environment. Furthermore, older buildings may still contain asbestos-based materials if they have not been updated; disturbance during renovations or repairs can release dangerous fibers into the air.


Additionally, frequent maintenance or repair issues signal that certain building elements may no longer be performing optimally. Persistent leaks from plumbing systems or aging roofs can introduce excess moisture into interiors-a breeding ground for mold and mildew which negatively affects both structural integrity and air purity.


In conclusion, recognizing warning signs such as decreased ventilation efficiency, unexplained increases in energy costs, deteriorating insulation effectiveness, and frequent maintenance needs are vital steps towards safeguarding indoor air quality against outdated components' detrimental effects. By remaining vigilant about these indicators-and taking proactive measures like regular inspections-property owners can ensure healthier living environments while also potentially extending their building's lifespan through timely upgrades or repairs where necessary. Investing attention now saves much larger costs later-not just financially but importantly regarding human health too!

Upgrading or replacing outdated HVAC components is a vital task to ensure energy efficiency, comfort, and safety in your home or workplace. Identifying the warning signs of outdated components can save you from unexpected breakdowns and costly repairs. This essay explores common indicators that suggest your HVAC system may be due for an upgrade or replacement.


One of the most telling signs that your HVAC components are outdated is a noticeable decline in performance. If you find that your system struggles to maintain a consistent temperature, it could be an indication that some parts are not functioning as efficiently as they should. An aging system often requires longer cycles to achieve desired temperatures, which not only impacts comfort but also results in higher energy bills.


Another red flag is frequent repairs. While occasional maintenance is normal, repeated service calls and part replacements may indicate that the system's components are nearing the end of their lifespan. In such cases, investing in newer technology might be more cost-effective than continuously patching up an old system.


Unusual noises stemming from the HVAC unit can also signal underlying issues. Rattling, banging, or squealing sounds often point to worn-out parts or mechanical failures within the system. These noises should not be ignored as they can worsen over time and lead to more significant problems if left unaddressed.


Increasing energy costs without a corresponding increase in usage is another sign that your HVAC components may be outdated. Older systems tend to lose efficiency over time, consuming more energy for less output. Upgrading to modern, energy-efficient models can significantly reduce utility bills and have a positive environmental impact.


Additionally, poor air quality inside your space could indicate that your HVAC system isn't operating effectively. Outdated filters and ductwork might fail to remove contaminants adequately, leading to dust accumulation and potential health risks for occupants.


In conclusion, recognizing these warning signs-declining performance, frequent repairs, unusual noises, rising energy costs, and poor air quality-can help determine when it's time to upgrade or replace outdated HVAC components. Addressing these issues promptly will enhance comfort levels while ensuring efficient operation of your heating and cooling systems for years to come. Embracing modern technology not only offers improved functionality but also contributes positively towards sustainability efforts by reducing overall energy consumption.

Mixed-mode ventilation is a hybrid approach to space conditioning that uses a combination of natural ventilation from operable windows (either manually or automatically controlled), and mechanical systems that include air distribution equipment and refrigeration equipment for cooling. A well-designed mixed-mode building begins with intelligent facade design to minimize cooling loads. It then integrates the use of air conditioning when and where it is necessary, with the use of natural ventilation whenever it is feasible or desirable, to maximize comfort while avoiding the significant energy use and operating costs of year-round air conditioning.[1][2]

References

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  1. ^ About Mixed Mode, Center for the Built Environment (CBE), University of California, Berkeley, 2005.
  2. ^ Bienvenido-Huertas, David; de la Hoz-Torres, María Luisa; Aguilar, Antonio J.; Tejedor, Blanca; Sánchez-García, Daniel (2023-11-01). "Holistic overview of natural ventilation and mixed mode in built environment of warm climate zones and hot seasons". Building and Environment. 245: 110942. doi:10.1016/j.buildenv.2023.110942. hdl:10481/88452. ISSN 0360-1323.

 

 

An ab anbar (water reservoir) with double domes and windcatchers (openings near the top of the towers) in the central desert city of Naeen, Iran. Windcatchers are a form of natural ventilation.[1]

Ventilation is the intentional introduction of outdoor air into a space. Ventilation is mainly used to control indoor air quality by diluting and displacing indoor pollutants; it can also be used to control indoor temperature, humidity, and air motion to benefit thermal comfort, satisfaction with other aspects of the indoor environment, or other objectives.

The intentional introduction of outdoor air is usually categorized as either mechanical ventilation, natural ventilation, or mixed-mode ventilation.[2]

  • Mechanical ventilation is the intentional fan-driven flow of outdoor air into and/or out from a building. Mechanical ventilation systems may include supply fans (which push outdoor air into a building), exhaust[3] fans (which draw air out of a building and thereby cause equal ventilation flow into a building), or a combination of both (called balanced ventilation if it neither pressurizes nor depressurizes the inside air,[3] or only slightly depressurizes it). Mechanical ventilation is often provided by equipment that is also used to heat and cool a space.
  • Natural ventilation is the intentional passive flow of outdoor air into a building through planned openings (such as louvers, doors, and windows). Natural ventilation does not require mechanical systems to move outdoor air. Instead, it relies entirely on passive physical phenomena, such as wind pressure, or the stack effect. Natural ventilation openings may be fixed, or adjustable. Adjustable openings may be controlled automatically (automated), owned by occupants (operable), or a combination of both. Cross ventilation is a phenomenon of natural ventilation.
  • Mixed-mode ventilation systems use both mechanical and natural processes. The mechanical and natural components may be used at the same time, at different times of day, or in different seasons of the year.[4] Since natural ventilation flow depends on environmental conditions, it may not always provide an appropriate amount of ventilation. In this case, mechanical systems may be used to supplement or regulate the naturally driven flow.

Ventilation is typically described as separate from infiltration.

  • Infiltration is the circumstantial flow of air from outdoors to indoors through leaks (unplanned openings) in a building envelope. When a building design relies on infiltration to maintain indoor air quality, this flow has been referred to as adventitious ventilation.[5]

The design of buildings that promote occupant health and well-being requires a clear understanding of the ways that ventilation airflow interacts with, dilutes, displaces, or introduces pollutants within the occupied space. Although ventilation is an integral component of maintaining good indoor air quality, it may not be satisfactory alone.[6] A clear understanding of both indoor and outdoor air quality parameters is needed to improve the performance of ventilation in terms of occupant health and energy.[7] In scenarios where outdoor pollution would deteriorate indoor air quality, other treatment devices such as filtration may also be necessary.[8] In kitchen ventilation systems, or for laboratory fume hoods, the design of effective effluent capture can be more important than the bulk amount of ventilation in a space. More generally, the way that an air distribution system causes ventilation to flow into and out of a space impacts the ability of a particular ventilation rate to remove internally generated pollutants. The ability of a system to reduce pollution in space is described as its "ventilation effectiveness". However, the overall impacts of ventilation on indoor air quality can depend on more complex factors such as the sources of pollution, and the ways that activities and airflow interact to affect occupant exposure.

An array of factors related to the design and operation of ventilation systems are regulated by various codes and standards. Standards dealing with the design and operation of ventilation systems to achieve acceptable indoor air quality include the American Society of Heating, Refrigerating and Air-Conditioning Engineers (ASHRAE) Standards 62.1 and 62.2, the International Residential Code, the International Mechanical Code, and the United Kingdom Building Regulations Part F. Other standards that focus on energy conservation also impact the design and operation of ventilation systems, including ASHRAE Standard 90.1, and the International Energy Conservation Code.

When indoor and outdoor conditions are favorable, increasing ventilation beyond the minimum required for indoor air quality can significantly improve both indoor air quality and thermal comfort through ventilative cooling, which also helps reduce the energy demand of buildings.[9][10] During these times, higher ventilation rates, achieved through passive or mechanical means (air-side economizer, ventilative pre-cooling), can be particularly beneficial for enhancing people's physical health.[11] Conversely, when conditions are less favorable, maintaining or improving indoor air quality through ventilation may require increased use of mechanical heating or cooling, leading to higher energy consumption.

Ventilation should be considered for its relationship to "venting" for appliances and combustion equipment such as water heaters, furnaces, boilers, and wood stoves. Most importantly, building ventilation design must be careful to avoid the backdraft of combustion products from "naturally vented" appliances into the occupied space. This issue is of greater importance for buildings with more air-tight envelopes. To avoid the hazard, many modern combustion appliances utilize "direct venting" which draws combustion air directly from outdoors, instead of from the indoor environment.

Design of air flow in rooms

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The air in a room can be supplied and removed in several ways, for example via ceiling ventilation, cross ventilation, floor ventilation or displacement ventilation.[citation needed]

Furthermore, the air can be circulated in the room using vortexes which can be initiated in various ways:

Ventilation rates for indoor air quality

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The ventilation rate, for commercial, industrial, and institutional (CII) buildings, is normally expressed by the volumetric flow rate of outdoor air, introduced to the building. The typical units used are cubic feet per minute (CFM) in the imperial system, or liters per second (L/s) in the metric system (even though cubic meter per second is the preferred unit for volumetric flow rate in the SI system of units). The ventilation rate can also be expressed on a per person or per unit floor area basis, such as CFM/p or CFM/ft², or as air changes per hour (ACH).

Standards for residential buildings

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For residential buildings, which mostly rely on infiltration for meeting their ventilation needs, a common ventilation rate measure is the air change rate (or air changes per hour): the hourly ventilation rate divided by the volume of the space (I or ACH; units of 1/h). During the winter, ACH may range from 0.50 to 0.41 in a tightly air-sealed house to 1.11 to 1.47 in a loosely air-sealed house.[12]

ASHRAE now recommends ventilation rates dependent upon floor area, as a revision to the 62-2001 standard, in which the minimum ACH was 0.35, but no less than 15 CFM/person (7.1 L/s/person). As of 2003, the standard has been changed to 3 CFM/100 sq. ft. (15 L/s/100 sq. m.) plus 7.5 CFM/person (3.5 L/s/person).[13]

Standards for commercial buildings

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Ventilation rate procedure

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Ventilation Rate Procedure is rate based on standard and prescribes the rate at which ventilation air must be delivered to space and various means to the condition that air.[14] Air quality is assessed (through CO2 measurement) and ventilation rates are mathematically derived using constants. Indoor Air Quality Procedure uses one or more guidelines for the specification of acceptable concentrations of certain contaminants in indoor air but does not prescribe ventilation rates or air treatment methods.[14] This addresses both quantitative and subjective evaluations and is based on the Ventilation Rate Procedure. It also accounts for potential contaminants that may have no measured limits, or for which no limits are not set (such as formaldehyde off-gassing from carpet and furniture).

Natural ventilation

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Natural ventilation harnesses naturally available forces to supply and remove air in an enclosed space. Poor ventilation in rooms is identified to significantly increase the localized moldy smell in specific places of the room including room corners.[11] There are three types of natural ventilation occurring in buildings: wind-driven ventilation, pressure-driven flows, and stack ventilation.[15] The pressures generated by 'the stack effect' rely upon the buoyancy of heated or rising air. Wind-driven ventilation relies upon the force of the prevailing wind to pull and push air through the enclosed space as well as through breaches in the building's envelope.

Almost all historic buildings were ventilated naturally.[16] The technique was generally abandoned in larger US buildings during the late 20th century as the use of air conditioning became more widespread. However, with the advent of advanced Building Performance Simulation (BPS) software, improved Building Automation Systems (BAS), Leadership in Energy and Environmental Design (LEED) design requirements, and improved window manufacturing techniques; natural ventilation has made a resurgence in commercial buildings both globally and throughout the US.[17]

The benefits of natural ventilation include:

  • Improved indoor air quality (IAQ)
  • Energy savings
  • Reduction of greenhouse gas emissions
  • Occupant control
  • Reduction in occupant illness associated with sick building syndrome
  • Increased worker productivity

Techniques and architectural features used to ventilate buildings and structures naturally include, but are not limited to:

  • Operable windows
  • Clerestory windows and vented skylights
  • Lev/convection doors
  • Night purge ventilation
  • Building orientation
  • Wind capture façades

Airborne diseases

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Natural ventilation is a key factor in reducing the spread of airborne illnesses such as tuberculosis, the common cold, influenza, meningitis or COVID-19.[18] Opening doors and windows are good ways to maximize natural ventilation, which would make the risk of airborne contagion much lower than with costly and maintenance-requiring mechanical systems. Old-fashioned clinical areas with high ceilings and large windows provide the greatest protection. Natural ventilation costs little and is maintenance-free, and is particularly suited to limited-resource settings and tropical climates, where the burden of TB and institutional TB transmission is highest. In settings where respiratory isolation is difficult and climate permits, windows and doors should be opened to reduce the risk of airborne contagion. Natural ventilation requires little maintenance and is inexpensive.[19]

Natural ventilation is not practical in much of the infrastructure because of climate. This means that the facilities need to have effective mechanical ventilation systems and or use Ceiling Level UV or FAR UV ventilation systems.

Ventilation is measured in terms of air changes per hour (ACH). As of 2023, the CDC recommends that all spaces have a minimum of 5 ACH.[20] For hospital rooms with airborne contagions the CDC recommends a minimum of 12 ACH.[21] Challenges in facility ventilation are public unawareness,[22][23] ineffective government oversight, poor building codes that are based on comfort levels, poor system operations, poor maintenance, and lack of transparency.[24]

Pressure, both political and economic, to improve energy conservation has led to decreased ventilation rates. Heating, ventilation, and air conditioning rates have dropped since the energy crisis in the 1970s and the banning of cigarette smoke in the 1980s and 1990s.[25][26][better source needed]

Mechanical ventilation

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An axial belt-drive exhaust fan serving an underground car park. This exhaust fan's operation is interlocked with the concentration of contaminants emitted by internal combustion engines.

Mechanical ventilation of buildings and structures can be achieved by the use of the following techniques:

  • Whole-house ventilation
  • Mixing ventilation
  • Displacement ventilation
  • Dedicated subaerial air supply

Demand-controlled ventilation (DCV)

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Demand-controlled ventilation (DCV, also known as Demand Control Ventilation) makes it possible to maintain air quality while conserving energy.[27][28] ASHRAE has determined that "It is consistent with the ventilation rate procedure that demand control be permitted for use to reduce the total outdoor air supply during periods of less occupancy."[29] In a DCV system, CO2 sensors control the amount of ventilation.[30][31] During peak occupancy, CO2 levels rise, and the system adjusts to deliver the same amount of outdoor air as would be used by the ventilation-rate procedure.[32] However, when spaces are less occupied, CO2 levels reduce, and the system reduces ventilation to conserves energy. DCV is a well-established practice,[33] and is required in high occupancy spaces by building energy standards such as ASHRAE 90.1.[34]

Personalized ventilation

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Personalized ventilation is an air distribution strategy that allows individuals to control the amount of ventilation received. The approach delivers fresh air more directly to the breathing zone and aims to improve the air quality of inhaled air. Personalized ventilation provides much higher ventilation effectiveness than conventional mixing ventilation systems by displacing pollution from the breathing zone with far less air volume. Beyond improved air quality benefits, the strategy can also improve occupants' thermal comfort, perceived air quality, and overall satisfaction with the indoor environment. Individuals' preferences for temperature and air movement are not equal, and so traditional approaches to homogeneous environmental control have failed to achieve high occupant satisfaction. Techniques such as personalized ventilation facilitate control of a more diverse thermal environment that can improve thermal satisfaction for most occupants.

Local exhaust ventilation

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Local exhaust ventilation addresses the issue of avoiding the contamination of indoor air by specific high-emission sources by capturing airborne contaminants before they are spread into the environment. This can include water vapor control, lavatory effluent control, solvent vapors from industrial processes, and dust from wood- and metal-working machinery. Air can be exhausted through pressurized hoods or the use of fans and pressurizing a specific area.[35]
A local exhaust system is composed of five basic parts:

  1. A hood that captures the contaminant at its source
  2. Ducts for transporting the air
  3. An air-cleaning device that removes/minimizes the contaminant
  4. A fan that moves the air through the system
  5. An exhaust stack through which the contaminated air is discharged[35]

In the UK, the use of LEV systems has regulations set out by the Health and Safety Executive (HSE) which are referred to as the Control of Substances Hazardous to Health (CoSHH). Under CoSHH, legislation is set to protect users of LEV systems by ensuring that all equipment is tested at least every fourteen months to ensure the LEV systems are performing adequately. All parts of the system must be visually inspected and thoroughly tested and where any parts are found to be defective, the inspector must issue a red label to identify the defective part and the issue.

The owner of the LEV system must then have the defective parts repaired or replaced before the system can be used.

Smart ventilation

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Smart ventilation is a process of continually adjusting the ventilation system in time, and optionally by location, to provide the desired IAQ benefits while minimizing energy consumption, utility bills, and other non-IAQ costs (such as thermal discomfort or noise). A smart ventilation system adjusts ventilation rates in time or by location in a building to be responsive to one or more of the following: occupancy, outdoor thermal and air quality conditions, electricity grid needs, direct sensing of contaminants, operation of other air moving and air cleaning systems. In addition, smart ventilation systems can provide information to building owners, occupants, and managers on operational energy consumption and indoor air quality as well as a signal when systems need maintenance or repair. Being responsive to occupancy means that a smart ventilation system can adjust ventilation depending on demand such as reducing ventilation if the building is unoccupied. Smart ventilation can time-shift ventilation to periods when a) indoor-outdoor temperature differences are smaller (and away from peak outdoor temperatures and humidity), b) when indoor-outdoor temperatures are appropriate for ventilative cooling, or c) when outdoor air quality is acceptable. Being responsive to electricity grid needs means providing flexibility to electricity demand (including direct signals from utilities) and integration with electric grid control strategies. Smart ventilation systems can have sensors to detect airflow, systems pressures, or fan energy use in such a way that systems failures can be detected and repaired, as well as when system components need maintenance, such as filter replacement.[36]

Ventilation and combustion

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Combustion (in a fireplace, gas heater, candle, oil lamp, etc.) consumes oxygen while producing carbon dioxide and other unhealthy gases and smoke, requiring ventilation air. An open chimney promotes infiltration (i.e. natural ventilation) because of the negative pressure change induced by the buoyant, warmer air leaving through the chimney. The warm air is typically replaced by heavier, cold air.

Ventilation in a structure is also needed for removing water vapor produced by respiration, burning, and cooking, and for removing odors. If water vapor is permitted to accumulate, it may damage the structure, insulation, or finishes. [citation needed] When operating, an air conditioner usually removes excess moisture from the air. A dehumidifier may also be appropriate for removing airborne moisture.

Calculation for acceptable ventilation rate

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Ventilation guidelines are based on the minimum ventilation rate required to maintain acceptable levels of effluents. Carbon dioxide is used as a reference point, as it is the gas of highest emission at a relatively constant value of 0.005 L/s. The mass balance equation is:

Q = G/(Ci − Ca)

  • Q = ventilation rate (L/s)
  • G = CO2 generation rate
  • Ci = acceptable indoor CO2 concentration
  • Ca = ambient CO2 concentration[37]

Smoking and ventilation

[edit]

ASHRAE standard 62 states that air removed from an area with environmental tobacco smoke shall not be recirculated into ETS-free air. A space with ETS requires more ventilation to achieve similar perceived air quality to that of a non-smoking environment.

The amount of ventilation in an ETS area is equal to the amount of an ETS-free area plus the amount V, where:

V = DSD × VA × A/60E

  • V = recommended extra flow rate in CFM (L/s)
  • DSD = design smoking density (estimated number of cigarettes smoked per hour per unit area)
  • VA = volume of ventilation air per cigarette for the room being designed (ft3/cig)
  • E = contaminant removal effectiveness[38]

History

[edit]
This ancient Roman house uses a variety of passive cooling and passive ventilation techniques. Heavy masonry walls, small exterior windows, and a narrow walled garden oriented N-S shade the house, preventing heat gain. The house opens onto a central atrium with an impluvium (open to the sky); the evaporative cooling of the water causes a cross-draft from atrium to garden.

Primitive ventilation systems were found at the Pločnik archeological site (belonging to the Vinča culture) in Serbia and were built into early copper smelting furnaces. The furnace, built on the outside of the workshop, featured earthen pipe-like air vents with hundreds of tiny holes in them and a prototype chimney to ensure air goes into the furnace to feed the fire and smoke comes out safely.[39]

Passive ventilation and passive cooling systems were widely written about around the Mediterranean by Classical times. Both sources of heat and sources of cooling (such as fountains and subterranean heat reservoirs) were used to drive air circulation, and buildings were designed to encourage or exclude drafts, according to climate and function. Public bathhouses were often particularly sophisticated in their heating and cooling. Icehouses are some millennia old, and were part of a well-developed ice industry by classical times.

The development of forced ventilation was spurred by the common belief in the late 18th and early 19th century in the miasma theory of disease, where stagnant 'airs' were thought to spread illness. An early method of ventilation was the use of a ventilating fire near an air vent which would forcibly cause the air in the building to circulate. English engineer John Theophilus Desaguliers provided an early example of this when he installed ventilating fires in the air tubes on the roof of the House of Commons. Starting with the Covent Garden Theatre, gas burning chandeliers on the ceiling were often specially designed to perform a ventilating role.

Mechanical systems

[edit]
The Central Tower of the Palace of Westminster. This octagonal spire was for ventilation purposes, in the more complex system imposed by Reid on Barry, in which it was to draw air out of the Palace. The design was for the aesthetic disguise of its function.[40][41]

A more sophisticated system involving the use of mechanical equipment to circulate the air was developed in the mid-19th century. A basic system of bellows was put in place to ventilate Newgate Prison and outlying buildings, by the engineer Stephen Hales in the mid-1700s. The problem with these early devices was that they required constant human labor to operate. David Boswell Reid was called to testify before a Parliamentary committee on proposed architectural designs for the new House of Commons, after the old one burned down in a fire in 1834.[40] In January 1840 Reid was appointed by the committee for the House of Lords dealing with the construction of the replacement for the Houses of Parliament. The post was in the capacity of ventilation engineer, in effect; and with its creation there began a long series of quarrels between Reid and Charles Barry, the architect.[42]

Reid advocated the installation of a very advanced ventilation system in the new House. His design had air being drawn into an underground chamber, where it would undergo either heating or cooling. It would then ascend into the chamber through thousands of small holes drilled into the floor, and would be extracted through the ceiling by a special ventilation fire within a great stack.[43]

Reid's reputation was made by his work in Westminster. He was commissioned for an air quality survey in 1837 by the Leeds and Selby Railway in their tunnel.[44] The steam vessels built for the Niger expedition of 1841 were fitted with ventilation systems based on Reid's Westminster model.[45] Air was dried, filtered and passed over charcoal.[46][47] Reid's ventilation method was also applied more fully to St. George's Hall, Liverpool, where the architect, Harvey Lonsdale Elmes, requested that Reid should be involved in ventilation design.[48] Reid considered this the only building in which his system was completely carried out.[49]

Fans

[edit]

With the advent of practical steam power, ceiling fans could finally be used for ventilation. Reid installed four steam-powered fans in the ceiling of St George's Hospital in Liverpool, so that the pressure produced by the fans would force the incoming air upward and through vents in the ceiling. Reid's pioneering work provides the basis for ventilation systems to this day.[43] He was remembered as "Dr. Reid the ventilator" in the twenty-first century in discussions of energy efficiency, by Lord Wade of Chorlton.[50]

History and development of ventilation rate standards

[edit]

Ventilating a space with fresh air aims to avoid "bad air". The study of what constitutes bad air dates back to the 1600s when the scientist Mayow studied asphyxia of animals in confined bottles.[51] The poisonous component of air was later identified as carbon dioxide (CO2), by Lavoisier in the very late 1700s, starting a debate as to the nature of "bad air" which humans perceive to be stuffy or unpleasant. Early hypotheses included excess concentrations of CO2 and oxygen depletion. However, by the late 1800s, scientists thought biological contamination, not oxygen or CO2, was the primary component of unacceptable indoor air. However, it was noted as early as 1872 that CO2 concentration closely correlates to perceived air quality.

The first estimate of minimum ventilation rates was developed by Tredgold in 1836.[52] This was followed by subsequent studies on the topic by Billings [53] in 1886 and Flugge in 1905. The recommendations of Billings and Flugge were incorporated into numerous building codes from 1900–the 1920s and published as an industry standard by ASHVE (the predecessor to ASHRAE) in 1914.[51]

The study continued into the varied effects of thermal comfort, oxygen, carbon dioxide, and biological contaminants. The research was conducted with human subjects in controlled test chambers. Two studies, published between 1909 and 1911, showed that carbon dioxide was not the offending component. Subjects remained satisfied in chambers with high levels of CO2, so long as the chamber remained cool.[51] (Subsequently, it has been determined that CO2 is, in fact, harmful at concentrations over 50,000ppm[54])

ASHVE began a robust research effort in 1919. By 1935, ASHVE-funded research conducted by Lemberg, Brandt, and Morse – again using human subjects in test chambers – suggested the primary component of "bad air" was an odor, perceived by the human olfactory nerves.[55] Human response to odor was found to be logarithmic to contaminant concentrations, and related to temperature. At lower, more comfortable temperatures, lower ventilation rates were satisfactory. A 1936 human test chamber study by Yaglou, Riley, and Coggins culminated much of this effort, considering odor, room volume, occupant age, cooling equipment effects, and recirculated air implications, which guided ventilation rates.[56] The Yaglou research has been validated, and adopted into industry standards, beginning with the ASA code in 1946. From this research base, ASHRAE (having replaced ASHVE) developed space-by-space recommendations, and published them as ASHRAE Standard 62-1975: Ventilation for acceptable indoor air quality.

As more architecture incorporated mechanical ventilation, the cost of outdoor air ventilation came under some scrutiny. In 1973, in response to the 1973 oil crisis and conservation concerns, ASHRAE Standards 62-73 and 62–81) reduced required ventilation from 10 CFM (4.76 L/s) per person to 5 CFM (2.37 L/s) per person. In cold, warm, humid, or dusty climates, it is preferable to minimize ventilation with outdoor air to conserve energy, cost, or filtration. This critique (e.g. Tiller[57]) led ASHRAE to reduce outdoor ventilation rates in 1981, particularly in non-smoking areas. However subsequent research by Fanger,[58] W. Cain, and Janssen validated the Yaglou model. The reduced ventilation rates were found to be a contributing factor to sick building syndrome.[59]

The 1989 ASHRAE standard (Standard 62–89) states that appropriate ventilation guidelines are 20 CFM (9.2 L/s) per person in an office building, and 15 CFM (7.1 L/s) per person for schools, while 2004 Standard 62.1-2004 has lower recommendations again (see tables below). ANSI/ASHRAE (Standard 62–89) speculated that "comfort (odor) criteria are likely to be satisfied if the ventilation rate is set so that 1,000 ppm CO2 is not exceeded"[60] while OSHA has set a limit of 5000 ppm over 8 hours.[61]

Historical ventilation rates
Author or source Year Ventilation rate (IP) Ventilation rate (SI) Basis or rationale
Tredgold 1836 4 CFM per person 2 L/s per person Basic metabolic needs, breathing rate, and candle burning
Billings 1895 30 CFM per person 15 L/s per person Indoor air hygiene, preventing spread of disease
Flugge 1905 30 CFM per person 15 L/s per person Excessive temperature or unpleasant odor
ASHVE 1914 30 CFM per person 15 L/s per person Based on Billings, Flugge and contemporaries
Early US Codes 1925 30 CFM per person 15 L/s per person Same as above
Yaglou 1936 15 CFM per person 7.5 L/s per person Odor control, outdoor air as a fraction of total air
ASA 1946 15 CFM per person 7.5 L/s per person Based on Yahlou and contemporaries
ASHRAE 1975 15 CFM per person 7.5 L/s per person Same as above
ASHRAE 1981 10 CFM per person 5 L/s per person For non-smoking areas, reduced.
ASHRAE 1989 15 CFM per person 7.5 L/s per person Based on Fanger, W. Cain, and Janssen

ASHRAE continues to publish space-by-space ventilation rate recommendations, which are decided by a consensus committee of industry experts. The modern descendants of ASHRAE standard 62-1975 are ASHRAE Standard 62.1, for non-residential spaces, and ASHRAE 62.2 for residences.

In 2004, the calculation method was revised to include both an occupant-based contamination component and an area–based contamination component.[62] These two components are additive, to arrive at an overall ventilation rate. The change was made to recognize that densely populated areas were sometimes overventilated (leading to higher energy and cost) using a per-person methodology.

Occupant Based Ventilation Rates,[62] ANSI/ASHRAE Standard 62.1-2004

IP Units SI Units Category Examples
0 cfm/person 0 L/s/person Spaces where ventilation requirements are primarily associated with building elements, not occupants. Storage Rooms, Warehouses
5 cfm/person 2.5 L/s/person Spaces occupied by adults, engaged in low levels of activity Office space
7.5 cfm/person 3.5 L/s/person Spaces where occupants are engaged in higher levels of activity, but not strenuous, or activities generating more contaminants Retail spaces, lobbies
10 cfm/person 5 L/s/person Spaces where occupants are engaged in more strenuous activity, but not exercise, or activities generating more contaminants Classrooms, school settings
20 cfm/person 10 L/s/person Spaces where occupants are engaged in exercise, or activities generating many contaminants dance floors, exercise rooms

Area-based ventilation rates,[62] ANSI/ASHRAE Standard 62.1-2004

IP Units SI Units Category Examples
0.06 cfm/ft2 0.30 L/s/m2 Spaces where space contamination is normal, or similar to an office environment Conference rooms, lobbies
0.12 cfm/ft2 0.60 L/s/m2 Spaces where space contamination is significantly higher than an office environment Classrooms, museums
0.18 cfm/ft2 0.90 L/s/m2 Spaces where space contamination is even higher than the previous category Laboratories, art classrooms
0.30 cfm/ft2 1.5 L/s/m2 Specific spaces in sports or entertainment where contaminants are released Sports, entertainment
0.48 cfm/ft2 2.4 L/s/m2 Reserved for indoor swimming areas, where chemical concentrations are high Indoor swimming areas

The addition of occupant- and area-based ventilation rates found in the tables above often results in significantly reduced rates compared to the former standard. This is compensated in other sections of the standard which require that this minimum amount of air is delivered to the breathing zone of the individual occupant at all times. The total outdoor air intake of the ventilation system (in multiple-zone variable air volume (VAV) systems) might therefore be similar to the airflow required by the 1989 standard.
From 1999 to 2010, there was considerable development of the application protocol for ventilation rates. These advancements address occupant- and process-based ventilation rates, room ventilation effectiveness, and system ventilation effectiveness[63]

Problems

[edit]
  • In hot, humid climates, unconditioned ventilation air can daily deliver approximately 260 milliliters of water for each cubic meters per hour (m3/h) of outdoor air (or one pound of water each day for each cubic feet per minute of outdoor air per day), annual average.[citation needed] This is a great deal of moisture and can create serious indoor moisture and mold problems. For example, given a 150 m2 building with an airflow of 180 m3/h this could result in about 47 liters of water accumulated per day.
  • Ventilation efficiency is determined by design and layout, and is dependent upon the placement and proximity of diffusers and return air outlets. If they are located closely together, supply air may mix with stale air, decreasing the efficiency of the HVAC system, and creating air quality problems.
  • System imbalances occur when components of the HVAC system are improperly adjusted or installed and can create pressure differences (too much-circulating air creating a draft or too little circulating air creating stagnancy).
  • Cross-contamination occurs when pressure differences arise, forcing potentially contaminated air from one zone to an uncontaminated zone. This often involves undesired odors or VOCs.
  • Re-entry of exhaust air occurs when exhaust outlets and fresh air intakes are either too close, prevailing winds change exhaust patterns or infiltration between intake and exhaust air flows.
  • Entrainment of contaminated outdoor air through intake flows will result in indoor air contamination. There are a variety of contaminated air sources, ranging from industrial effluent to VOCs put off by nearby construction work.[64] A recent study revealed that in urban European buildings equipped with ventilation systems lacking outdoor air filtration, the exposure to outdoor-originating pollutants indoors resulted in more Disability-Adjusted Life Years (DALYs) than exposure to indoor-emitted pollutants.[65]

See also

[edit]
  • Architectural engineering
  • Biological safety
  • Cleanroom
  • Environmental tobacco smoke
  • Fume hood
  • Head-end power
  • Heating, ventilation, and air conditioning
  • Heat recovery ventilation
  • Mechanical engineering
  • Room air distribution
  • Sick building syndrome
  • Siheyuan
  • Solar chimney
  • Tulou
  • Windcatcher

References

[edit]
  1. ^ Malone, Alanna. "The Windcatcher House". Architectural Record: Building for Social Change. McGraw-Hill. Archived from the original on 22 April 2012.
  2. ^ ASHRAE (2021). "Ventilation and Infiltration". ASHRAE Handbook—Fundamentals. Peachtree Corners, GA: ASHRAE. ISBN 978-1-947192-90-4.
  3. ^ a b Whole-House Ventilation | Department of Energy
  4. ^ de Gids W.F., Jicha M., 2010. "Ventilation Information Paper 32: Hybrid Ventilation Archived 2015-11-17 at the Wayback Machine", Air Infiltration and Ventilation Centre (AIVC), 2010
  5. ^ Schiavon, Stefano (2014). "Adventitious ventilation: a new definition for an old mode?". Indoor Air. 24 (6): 557–558. Bibcode:2014InAir..24..557S. doi:10.1111/ina.12155. ISSN 1600-0668. PMID 25376521.
  6. ^ ANSI/ASHRAE Standard 62.1, Ventilation for Acceptable Indoor Air Quality, ASHRAE, Inc., Atlanta, GA, US
  7. ^ Belias, Evangelos; Licina, Dusan (2024). "European residential ventilation: Investigating the impact on health and energy demand". Energy and Buildings. 304. Bibcode:2024EneBu.30413839B. doi:10.1016/j.enbuild.2023.113839.
  8. ^ Belias, Evangelos; Licina, Dusan (2022). "Outdoor PM2. 5 air filtration: optimising indoor air quality and energy". Building & Cities. 3 (1): 186–203. doi:10.5334/bc.153.
  9. ^ Belias, Evangelos; Licina, Dusan (2024). "European residential ventilation: Investigating the impact on health and energy demand". Energy and Buildings. 304. Bibcode:2024EneBu.30413839B. doi:10.1016/j.enbuild.2023.113839.
  10. ^ Belias, Evangelos; Licina, Dusan (2023). "Influence of outdoor air pollution on European residential ventilative cooling potential". Energy and Buildings. 289. Bibcode:2023EneBu.28913044B. doi:10.1016/j.enbuild.2023.113044.
  11. ^ a b Sun, Y., Zhang, Y., Bao, L., Fan, Z. and Sundell, J., 2011. Ventilation and dampness in dorms and their associations with allergy among college students in China: a case-control study. Indoor Air, 21(4), pp.277-283.
  12. ^ Kavanaugh, Steve. Infiltration and Ventilation In Residential Structures. February 2004
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  17. ^ Shaqe, Erlet. Sustainable Architectural Design.
  18. ^ "Natural Ventilation for Infection Control in Health-Care Settings" (PDF). World Health Organization (WHO), 2009. Retrieved 5 July 2021.
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  20. ^ Centers For Disease Control and Prevention (CDC) "Improving Ventilation In Buildings". 11 February 2020.
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  22. ^ Dr. Edward A. Nardell Professor of Global Health and Social Medicine, Harvard Medical School "If We're Going to Live With COVID-19, It's Time to Clean Our Indoor Air Properly". Time. February 2022.
  23. ^ "A Paradigm Shift to Combat Indoor Respiratory Infection - 21st century" (PDF). University of Leeds., Morawska, L, Allen, J, Bahnfleth, W et al. (36 more authors) (2021) A paradigm shift to combat indoor respiratory infection. Science, 372 (6543). pp. 689-691. ISSN 0036-8075
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  25. ^ Mudarri, David (January 2010). Public Health Consequences and Cost of Climate Change Impacts on Indoor Environments (PDF) (Report). The Indoor Environments Division, Office of Radiation and Indoor Air, U.S. Environmental Protection Agency. pp. 38–39, 63.
  26. ^ "Climate Change a Systems Perspective". Cassbeth.
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  28. ^ Mansson L.G., Svennberg S.A., Liddament M.W., 1997: "Technical Synthesis Report. A Summary of IEA Annex 18. Demand Controlled Ventilating Systems Archived 2016-03-04 at the Wayback Machine", UK, Air Infiltration and Ventilation Centre (AIVC), 1997
  29. ^ ASHRAE (2006). "Interpretation IC 62.1-2004-06 Of ANSI/ASHRAE Standard 62.1-2004 Ventilation For Acceptable Indoor Air Quality" (PDF). American Society of Heating, Refrigerating, and Air-Conditioning Engineers. p. 2. Archived from the original (PDF) on 12 August 2013. Retrieved 10 April 2013.
  30. ^ Fahlen P., Andersson H., Ruud S., 1992: "Demand Controlled Ventilation Systems: Sensor Tests Archived 2016-03-04 at the Wayback Machine", Swedish National Testing and Research Institute, Boras, 1992
  31. ^ Raatschen W., 1992: "Demand Controlled Ventilation Systems: Sensor Market Survey Archived 2016-03-04 at the Wayback Machine", Swedish Council for Building Research, 1992
  32. ^ Mansson L.G., Svennberg S.A., 1993: "Demand Controlled Ventilation Systems: Source Book Archived 2016-03-04 at the Wayback Machine", Swedish Council for Building Research, 1993
  33. ^ Lin X, Lau J & Grenville KY. (2012). "Evaluation of the Validity of the Assumptions Underlying CO2-Based Demand-Controlled Ventilation by a Literature review" (PDF). ASHRAE Transactions NY-14-007 (RP-1547). Archived from the original (PDF) on 14 July 2014. Retrieved 10 July 2014.
  34. ^ ASHRAE (2010). "ANSI/ASHRAE Standard 90.1-2010: Energy Standard for Buildings Except for Low-Rise Residential Buildings". American Society of Heating Ventilation and Air Conditioning Engineers, Atlanta, GA.
  35. ^ a b "Ventilation. - 1926.57". Osha.gov. Archived from the original on 2 December 2012. Retrieved 10 November 2012.
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  37. ^ "Home". Wapa.gov. Archived from the original on 26 July 2011. Retrieved 10 November 2012.
  38. ^ ASHRAE, Ventilation for Acceptable Indoor Air Quality. American Society of Heating, Refrigerating and Air-Conditioning Engineers, Inc, Atlanta, 2002.
  39. ^ "Stone Pages Archaeo News: Neolithic Vinca was a metallurgical culture". www.stonepages.com. Archived from the original on 30 December 2016. Retrieved 11 August 2016.
  40. ^ a b Porter, Dale H. (1998). The Life and Times of Sir Goldsworthy Gurney: Gentleman scientist and inventor, 1793–1875. Associated University Presses, Inc. pp. 177–79. ISBN 0-934223-50-5.
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  44. ^ Russell, Colin A; Hudson, John (2011). Early Railway Chemistry and Its Legacy. Royal Society of Chemistry. p. 67. ISBN 978-1-84973-326-7. Retrieved 29 December 2011.
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  49. ^ Lee, Sidney, ed. (1896). "Reid, David Boswell" . Dictionary of National Biography. Vol. 47. London: Smith, Elder & Co.
  50. ^ Great Britain: Parliament: House of Lords: Science and Technology Committee (15 July 2005). Energy Efficiency: 2nd Report of Session 2005–06. The Stationery Office. p. 224. ISBN 978-0-10-400724-2. Retrieved 29 December 2011.
  51. ^ a b c Janssen, John (September 1999). "The History of Ventilation and Temperature Control" (PDF). ASHRAE Journal. American Society of Heating Refrigeration and Air Conditioning Engineers, Atlanta, GA. Archived (PDF) from the original on 14 July 2014. Retrieved 11 June 2014.
  52. ^ Tredgold, T. 1836. "The Principles of Warming and Ventilation – Public Buildings". London: M. Taylor
  53. ^ Billings, J.S. 1886. "The principles of ventilation and heating and their practical application 2d ed., with corrections" Archived copy. OL 22096429M.
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  55. ^ Lemberg WH, Brandt AD, and Morse, K. 1935. "A laboratory study of minimum ventilation requirements: ventilation box experiments". ASHVE Transactions, V. 41
  56. ^ Yaglou CPE, Riley C, and Coggins DI. 1936. "Ventilation Requirements" ASHVE Transactions, v.32
  57. ^ Tiller, T.R. 1973. ASHRAE Transactions, v. 79
  58. ^ Berg-Munch B, Clausen P, Fanger PO. 1984. "Ventilation requirements for the control of body odor in spaces occupied by women". Proceedings of the 3rd Int. Conference on Indoor Air Quality, Stockholm, Sweden, V5
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  61. ^ Apte, Michael G. Associations between indoor CO2 concentrations and sick building syndrome symptoms in U.S. office buildings: an analysis of the 1994–1996 BASE study data." Indoor Air, Dec 2000: 246–58.
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  63. ^ Stanke, DA. 2007. "Standard 62.1-2004: Stricter or Not?" ASHRAE IAQ Applications, Spring 2006. "Archived copy" (PDF). Archived from the original (PDF) on 14 July 2014. Retrieved 12 June 2014.cite web: CS1 maint: archived copy as title (link) accessed 11 June 2014
  64. ^ US EPA. Section 2: Factors Affecting Indoor Air Quality. "Archived copy" (PDF). Archived (PDF) from the original on 24 October 2008. Retrieved 30 April 2009.cite web: CS1 maint: archived copy as title (link)
  65. ^ Belias, Evangelos; Licina, Dusan (2024). "European residential ventilation: Investigating the impact on health and energy demand". Energy and Buildings. 304. Bibcode:2024EneBu.30413839B. doi:10.1016/j.enbuild.2023.113839.
[edit]

Air Infiltration & Ventilation Centre (AIVC)

[edit]
  • Publications from the Air Infiltration & Ventilation Centre (AIVC)

International Energy Agency (IEA) Energy in Buildings and Communities Programme (EBC)

[edit]
  • Publications from the International Energy Agency (IEA) Energy in Buildings and Communities Programme (EBC) ventilation-related research projects-annexes:
    • EBC Annex 9 Minimum Ventilation Rates
    • EBC Annex 18 Demand Controlled Ventilation Systems
    • EBC Annex 26 Energy Efficient Ventilation of Large Enclosures
    • EBC Annex 27 Evaluation and Demonstration of Domestic Ventilation Systems
    • EBC Annex 35 Control Strategies for Hybrid Ventilation in New and Retrofitted Office Buildings (HYBVENT)
    • EBC Annex 62 Ventilative Cooling

International Society of Indoor Air Quality and Climate

[edit]
  • Indoor Air Journal
  • Indoor Air Conference Proceedings

American Society of Heating, Refrigerating and Air-Conditioning Engineers (ASHRAE)

[edit]
  • ASHRAE Standard 62.1 – Ventilation for Acceptable Indoor Air Quality
  • ASHRAE Standard 62.2 – Ventilation for Acceptable Indoor Air Quality in Residential Buildings

 

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Frequently Asked Questions

Look for signs such as reduced airflow, unusual noises (like rattling or squeaking), frequent cycling on and off, inconsistent temperatures across rooms, and higher than usual energy bills. These symptoms can suggest parts of your HVAC system may be outdated or malfunctioning.
Check the age of your system; if it’s over 10-15 years old, it may be time to consider updating. Additionally, compare its performance with newer models in terms of SEER (Seasonal Energy Efficiency Ratio) ratings. Inefficiency is also evident if repairs become frequent or costly compared to investing in a new unit.
Start by scheduling a professional inspection to assess the condition of the entire system. A technician can identify specific outdated parts and recommend replacements or upgrades. Regular maintenance like cleaning filters and ducts can also help improve efficiency temporarily while you plan for updates.