Mulville, M and Stravoravdis, S (2016) The impact of regulations on overheating risk in dwellings. Building Research & Information, 44(5-6), pp. 520-534. ISSN 0961-3218
Abstract
Many new and emerging regulations and standards for buildings focus on climate change mitigation through energy and carbon reduction. In cool climates, such reductions are achieved by optimizing the building for heat retention. It is increasingly recognized, however, that some degree of climate change is now inevitable. New and existing buildings need to consider this to ensure resilience and an ability to adapt over time. In this context, the current approach to regulation that largely remains focused on the 'point of handover' may not be fit for purpose. This paper focuses on a 'typical' dwelling designed to a range of standards, representing current or emerging approaches to minimizing energy use, using a range of construction methods, where a number of adaptations are available to occupants. It considers, through the use of building performance simulation, how each configuration is likely to perform thermally over time given current climate change predictions. It is demonstrated that the current approach to assessing overheating risk in dwellings, coupled with the regulatory focus on reducing energy consumption, could result in significant levels of overheating. This overheating could, in the near future, present a risk to health and result in the need for significant interventions.;Many new and emerging regulations and standards for buildings focus on climate change mitigation through energy and carbon reduction. In cool climates, such reductions are achieved by optimizing the building for heat retention. It is increasingly recognized, however, that some degree of climate change is now inevitable. New and existing buildings need to consider this to ensure resilience and an ability to adapt over time. In this context, the current approach to regulation that largely remains focused on the 'point of handover' may not be fit for purpose. This paper focuses on a 'typical' dwelling designed to a range of standards, representing current or emerging approaches to minimizing energy use, using a range of construction methods, where a number of adaptations are available to occupants. It considers, through the use of building performance simulation, how each configuration is likely to perform thermally over time given current climate change predictions. It is demonstrated that the current approach to assessing overheating risk in dwellings, coupled with the regulatory focus on reducing energy consumption, could result in significant levels of overheating. This overheating could, in the near future, present a risk to health and result in the need for significant interventions.;Many new and emerging regulations and standards for buildings focus on climate change mitigation through energy and carbon reduction. In cool climates, such reductions are achieved by optimizing the building for heat retention. It is increasingly recognized, however, that some degree of climate change is now inevitable. New and existing buildings need to consider this to ensure resilience and an ability to adapt over time. In this context, the current approach to regulation that largely remains focused on the point of handover' may not be fit for purpose. This paper focuses on a typical' dwelling designed to a range of standards, representing current or emerging approaches to minimizing energy use, using a range of construction methods, where a number of adaptations are available to occupants. It considers, through the use of building performance simulation, how each configuration is likely to perform thermally over time given current climate change predictions. It is demonstrated that the current approach to assessing overheating risk in dwellings, coupled with the regulatory focus on reducing energy consumption, could result in significant levels of overheating. This overheating could, in the near future, present a risk to health and result in the need for significant interventions.;
| Item Type: | Article |
|---|---|
| Uncontrolled Keywords: | dwellings; adaptation; building simulation; overheating; climate change; building regulations; dynamic building simulation; performance; thermal comfort; adaptations; climate-change impact; heat; construction & building technology; temperatures; energy efficiency; regulation; green buildings |
| Index terms: | climate change, building simulation, mitigation, energy use, retention, building technology, thermal comfort, configuration, energy efficiency, regulation, carbon reduction, building regulation, overheating, adaptation, green building, building performance simulation, energy consumption, construction method, dynamic building simulation |
| Subjects: | climate science, modelling and simulation, engineering systems, sustainability and energy, user focus, energy systems, environmental engineering, financial risk, building construction, thermal systems, systems engineering, political science, management, regulatory law, design practice |
| Topics: | Design Practice, Legal Issues, Human Resources, Engineering Principles, Sustainability, Digital Applications, Governance, Cost Management, Site Management |
| Descriptive scope: | 2 PC |
N.B. Descriptive scope is a count of how many of the five facets of empirical research are indicated by the words used in title, abstract and keywords. It is not intended as a judgement on the research; merely a count of the kind of word we would expect to indicate Phenomenon, Concepts, Theoretical framing, Empirical techniques, Analytical techniques. If all five are present, then a code of “5 PCTEA” will indicate this. If you feel the coding for this record is questionable, we welcome discussion around the terms we matched or the way we categorized them. The facet you would expect may not be coded, or a facet may be coded inappropriately. This can also bear on a larger question, of which facets should be treated as defining in construction management research. Please get in touch, and we will look at it. More details here