DOI QR코드

DOI QR Code

Impact of standard construction specification on thermal comfort in UK dwellings

  • Amoako-Attah, Joseph (University of West London, School of Computing and Technology, Dept. of the Built Environment) ;
  • B-Jahromi, Ali (University of West London, School of Computing and Technology, Dept. of the Built Environment)
  • 투고 : 2014.01.18
  • 심사 : 2014.05.28
  • 발행 : 2014.09.25

초록

The quest for enhanced thermal comfort for dwellings encompasses the holistic utilization of improved building fabric, impact of weather variation and amongst passive cooling design consideration the provision of appropriate ventilation and shading strategy. Whilst thermal comfort is prime to dwellings considerations, limited research has been done in this area with the attention focused mostly on non-dwellings. This paper examines the current and future thermal comfort implications of four different standard construction specifications which show a progressive increase in thermal mass and airtightness and is underpinned by the newly developed CIBSE adaptive thermal comfort method for assessing the risk of overheating in naturally ventilated dwellings. Interactive investigation on the impact of building fabric variation, natural ventilation scenarios, external shading and varying occupants' characteristics to analyse dwellings thermal comfort based on non-heating season of current and future weather patterns of London and Birmingham is conducted. The overheating analysis focus on the whole building and individual zones. The findings from the thermal analysis simulation are illustrated graphically coupled with statistical analysis of data collected from the simulation. The results indicate that, judicious integrated approach of improved design options could substantially reduce the operating temperatures in dwellings and enhance thermal comfort.

키워드

참고문헌

  1. Ali, A.A.M. and Ahmed, T.M.F. (2012), "Evaluating the impact of shading devices on the indoor thermal comfort of residential buildings in Egypt", Fifth National Conference of IBPSA-USA, Madison, WI, USA, August.
  2. Amoako-Attah, J. and B-Jahromi, A. (2013), "Impact of future climate change on UK building performance", Adv. Environ. Res., Int. J., 2(3), 203-227. https://doi.org/10.12989/aer.2013.2.3.203
  3. Anh-Tuan, N. and Reiter, S. (2014), "Passive designs and strategies for low-cost housing using simulationbased optimization and different comfort criteria", J. Build. Perform. Simul., 7(1), 68-81. https://doi.org/10.1080/19401493.2013.770067
  4. ASHRAE (1992), "Thermal Environmental Conditions for Human Occupancy", ANSI/ASHRAE 55, American Society of Heating, Refrigerating and Air Conditioning Engineers, Atlanta, USA.
  5. ASHRAE (2004), "Thermal Environmental Conditions for Human Occupancy", ANSI/ASHRAE 55, American Society of Heating, Refrigerating and Air Conditioning Engineers, Atlanta, USA.
  6. ASHRAE (2010), "Thermal Environmental Conditions for Human Occupancy", ANSI/ASHRAE 55, American Society of Heating, Refrigerating and Air Conditioning Engineers, Atlanta, USA.
  7. Barclays, M., Sharples, S., Kang, J. and Watkins, R. (2012), "The natural ventilation performance of buildings under alternative future weather projections", Build. Services Eng. Res. Tech., 33(1), 35-50. https://doi.org/10.1177/0143624411427460
  8. Bessoudo, M., Tzemelikos, A., Athientis, A.K., and Zmeureanu, R. (2010), "Indoor thermal environment conditions near glazed facades with shading devices - Part I: Experiments and building thermal model", Build. Environ., 45(11), 2506-2516. https://doi.org/10.1016/j.buildenv.2010.05.013
  9. BSI (2005), BS EN ISO 7730: 2005; Ergonomics of the thermal environment, Analytical determination and interpretation of thermal comfort using calculation of the PMV and PPD indices and local thermal comfort criteria. London: British Standard Institution.
  10. BSI (2007), BS EN 15251: 2007: Indoor environmental input parameters for design and assessment of energy performance of buildings addressing indoor air quality, thermal environment, lightning and acoustics. London: British Standard Institution.
  11. Carlucci, S., Pagliano, L. and Sangalli, A. (2014), "Statistical analysis of ranking capability of long-term thermal discomfort indices and their adoption in optimization processes to support building design", Build. Environ., 75, 114-131. Available at: http://www.sciencedirect.com/science/article/pii/S0360132313003739. Accessed 20 January 2014 https://doi.org/10.1016/j.buildenv.2013.12.017
  12. Chen, Q. (2009), "Ventilation performance prediction for buildings: A method overview and recent applications", Build. Environ., 44(4), 848-858. https://doi.org/10.1016/j.buildenv.2008.05.025
  13. CIBSE (2005), "Climate change and the indoor environment: impacts and adaptation CIBSE TM36", Chartered Institution of Building Services Engineers.
  14. CIBSE (2006), CIBSE Guide A - Environmental Design. London: Chartered Institution of Building Services Engineers.
  15. CIBSE (2013), "The limits of thermal comfort: avoiding overheating in European buildings CIBSE TM52", Chartered Institution of Building Services Engineers.
  16. CLG (2007), "Building a Greener Future: Policy Statement, Communities and Local Government", Communities and Local Government, UK
  17. Climate Change Act (2008), Available at: http://www.legislation.gov.uk/ukpga/2008/27/contents (Accessed 20 April 2013).
  18. DCLG (2013), Proposed Changes to Part L of the Building Regulations 2013, Department of Communities and Local Government. Available at: http://www.gov.uk/government/uploads/system/uploads/attachment_data/file/226965/Part_L_2013_IA.pdf (Accessed 20 December, 2013).
  19. DCLG, AECOM (2012), Department of Communities and Local Government, AECOM, Investigation into overheating in homes. Literature review, Available at: http://www.gov.uk/government/uploads/system/up loads/system/uploads/attachment_data/file/7604/2185850.pdf (Accessed 17 October 2013).
  20. de Dear, R.J. and Brager, G.S. (1998), "Developing an adaptive model of thermal comfort and preference", Proceedings of the 1998 ASHRAE Winter Meeting, San Francisco, CA, USA; Ashrae Transactions, 104(1), 145-167.
  21. EN Standards (2007), "Indoor Environmental Input Parameters for Design and Assessment of Energy Performance of Buildings Addressing Indoor Air Quality", Thermal Environment, Lighting and Acoustics. Brussels. Belgium, European Committee for Standardization
  22. Fanger, P.O. (1970), "Thermal comfort: Analysis and applications in environmental engineering", Danish Technical Press, 92(3), 164.
  23. Gan, G. (2001), "Analysis of mean radiant temperature and thermal comfort", Build. Services Eng. Res. Tech., 22(2), 95-101. https://doi.org/10.1191/014362401701524154
  24. Haase, M., da Silva, F.M. and Amato, A. (2009), "Simulation of ventilated facades in hot and humid climates", Energy Build., 41(4), 361-373. https://doi.org/10.1016/j.enbuild.2008.11.008
  25. Hacker, J.N., Belcher, S.E. and Connell, R.K. (2005), "Beating the heat. Keeping UK buildings cool in a warming climate", UKCIP Briefing Report, United Kingdom Climate Impact Programme (UKCIP), Oxford, UK.
  26. Hacker, J.N., De Saullers, T.P., Minson, A.J. and Holmes, M.J. (2008), "Embodied and operational carbon dioxide emissions from housing: A case study on the effects of thermal mass and climate change", Energy Build., 40(3), 375-384. https://doi.org/10.1016/j.enbuild.2007.03.005
  27. Intergovernmental Panel on Climate Change (2001), Climate Change 2001, Impacts, Adaptation and Vulnerability, Cambridge: Cambridge University Press.
  28. International Organization for Standardization (ISO), ISO 7730: 2005. Ergonomics of the Thermal Environment - Analytical Determination and Interpretation of Thermal Comfort Using Calculation of the PMV And PPD Indices and Local Thermal Comfort Criteria, (Geneva: International Organization for Standardization, 2005).
  29. IPCC (2013), Intergovernmental Panel on Climate Change. Climate Change 2013; The Physical Science Basis. Working Group 1 Contribution to the Fifth Assessment Report of the IPCC. Available at: http://www.climatechange2013.org/images/uploads/WG1_AR5_SPM_brochure.pdf (Accessed January 19, 2014).
  30. Jenkins, D.P., Patidar, S., Gibson, G. and Banfill, P. (2010), "Translating probabilistic climate predictions for use in building simulation", Proceedings of Conference: Adapting to Change: New Thinking on Comfort, Network for Comfort and Energy Use in Buildings, Cumberland Lodge, Windsor, UK, April.
  31. Kamal, M.A. (2012), "An overview of passive cooling techniques in buildings: Design concepts and architectural interventions", Acta Technica Napocensis, Civil Eng. Arch., 55(1), 84-97.
  32. Kim, T., Song, D., Kato, S. and Murakami, S. (2007), "Two-step optimal design method using genetic algorithms and CFD-coupled simulation for indoor thermal environments", Appl. Thermal Eng., 27(1), 3-11. https://doi.org/10.1016/j.applthermaleng.2006.05.022
  33. Kolokotroni, M. (2001), "Night ventilation cooling of office buildings: parametric analysis of conceptual energy impacts", Ashrae Transactions, 107(1), 479-489.
  34. Lomas, K.J. and Ji, Y. (2009), "Resilience of naturally ventilated buildings to climate change: Advanced natural ventilation and hospital wards", Energy Build., 41(6), 629-653. https://doi.org/10.1016/j.enbuild.2009.01.001
  35. Met Office Climate Averages (1981-2010), Available at: www.metoffice.gov.uk/climate/uk/averages/19812010/england.html (Accessed June 9, 2013).
  36. Nicol, J.F. and Humphreys, M.A. (2002), "Adaptive thermal comfort and sustainable thermal standards for buildings", Energy Build., 34(6), 563-572. https://doi.org/10.1016/S0378-7788(02)00006-3
  37. Palmer, J.M., Curtis, S.G. and Pane, W. (2005), "Thermal mass in buildings - Practical issues with concrete construction", CTU Congress, City of Dundee, Scotland, July.
  38. Patidar, S., Jenkins, D., Gibson, G.J. and Banfill, P. (2011), "Statistical techniques to emulate dynamic building simulations for overheating analyses in future probabilistic climate", J. Building Perform. Sim., 4(3), 217-284.
  39. Peeters, L., de Dear, R., Hensen, J. and D'haeseleer, W. (2009), "Thermal comfort in residential buildings: Comfort values and scales for building energy simulation", Appl. Energy, 86(5), 772-780. https://doi.org/10.1016/j.apenergy.2008.07.011
  40. Stegou-Sagia, A., Antonopoulos, K., Angelopoulou, C. and Kotsiovelos, G. (2007), "The impact of glazing on energy consumption and comfort", Energy Convers. Manage., 48(11), 2844-2852. https://doi.org/10.1016/j.enconman.2007.07.005
  41. Stravrakakis, G.M., Koukou, M.K., Vrachopoulos, M.G. and Markatos, N.C. (2008), "Natural crossventilation in buildings: Building-scale experiments, numerical simulation and thermal comfort evaluation", Energy Build., 40(9), 1666-1681. https://doi.org/10.1016/j.enbuild.2008.02.022
  42. Taleghani, M., Sailor, D., Tenpierik, M. and Dobbelsteen, A. (2014), "Thermal assessment of heat mitigation strategies: The case of Portland State University, Oregon, USA", Build. Environ., 73, 138-150. https://doi.org/10.1016/j.buildenv.2013.12.006
  43. Toftum, J., Andersen, R.V. and Jensen, K.L (2009), "Occupant performance and building energy consumption with different philosophies of determining acceptable thermal conditions", Build. Environ., 44(10), 2009-2016. https://doi.org/10.1016/j.buildenv.2009.02.007
  44. Tzemelikos, A., Bessoudo, M., Athientis, A.K. and Zmeureanu, R. (2010), "Indoor thermal environment conditions near glazed facades with shading devices - Part II: Thermal comfort simulation and impact of glazing and shading properties", Build. Environ., 45(11), 2517-2525. https://doi.org/10.1016/j.buildenv.2010.05.014
  45. Williams, D., Elghali, L., France, C. and Wheeler, R.C. (2011), "Projecting building energy demand using probabilistic weather conditions accounting for climate change", CIBSE Technical Symposium, De Montfort University, Leicester, UK, September.
  46. Yao, R., Li, B. and Liu, J. (2009), "A theoretical adaptive model of thermal comfort - Adaptive Predictive Mean Vote (aPMV)", Build. Environ., 44(10), 2089-2096. https://doi.org/10.1016/j.buildenv.2009.02.014
  47. Zanghirella, F., Perino, M. and Serra, V. (2011), "A numerical model to evaluate the thermal behaviour of active transparent facades", Energy Build., 43(5), 1123-1138. https://doi.org/10.1016/j.enbuild.2010.08.031
  48. ZCH (2009), Defining a Fabric Energy Efficiency Standard for Zero Carbon Homes, Appendix A. Work Group 1 Form and Fabric. Zero Carbon Hub (ZCH); National House-Building Council (NHBC) Foundation, London and Milton Keynes, UK.
  49. ZCH (2010), Carbon Compliance - Topic 3 - Future Climate Change, Zero Carbon Hub (ZCH); National House-Building Council (NHBC) Foundation, London and Milton Keynes, UK. Available at: http://www.zerocarbonhub.org/resourcefiles/TOPIC3_ORANGE_5August.pdf (Accessed November 6, 2013).
  50. ZCH (2012), Overheating in Homes: An introduction for planners, designers and property owners, Zero Carbon Hub (ZCH); National House-Building Council (NHBC) Foundation, London and Milton Keynes, UK.

피인용 문헌

  1. Impact of conservatory as a passive solar design of UK dwellings vol.169, pp.5, 2016, https://doi.org/10.1680/jensu.14.00040
  2. Estimation and Validation of Energy Consumption in UK Existing Hotel Building Using Dynamic Simulation Software vol.9, pp.8, 2017, https://doi.org/10.3390/su9081391
  3. Energy performance of windows under climate change in Turkey vol.168, pp.3, 2015, https://doi.org/10.1680/ensu.14.00045
  4. The Impact of Different Weather Files on London Detached Residential Building Performance—Deterministic, Uncertainty, and Sensitivity Analysis on CIBSE TM48 and CIBSE TM49 Future Weather Variables Using CIBSE TM52 as Overheating Criteria vol.8, pp.12, 2016, https://doi.org/10.3390/su8111194
  5. Comparison and Evaluation of the Potential Energy, Carbon Emissions, and Financial Impacts from the Incorporation of CHP and CCHP Systems in Existing UK Hotel Buildings vol.11, pp.5, 2018, https://doi.org/10.3390/en11051219
  6. Evaluation of thermal comfort and cooling loads for a multistory building vol.5, pp.1, 2014, https://doi.org/10.12989/eri.2017.5.1.065
  7. Retrofit of a UK residential property to achieve nearly zero energy building standard vol.7, pp.1, 2014, https://doi.org/10.12989/aer.2018.7.1.013
  8. Investigating the potential impact of energy-efficient measures for retrofitting existing UK hotels to reach the nearly zero energy building (nZEB) standard vol.12, pp.6, 2014, https://doi.org/10.1007/s12053-019-09801-2
  9. Impact of Low-E Window Films on Energy Consumption and CO2 Emissions of an Existing UK Hotel Building vol.11, pp.16, 2019, https://doi.org/10.3390/su11164265
  10. Life-cycle cost analysis of retrofit scenarios for a UK residential dwelling vol.173, pp.2, 2020, https://doi.org/10.1680/jensu.18.00055
  11. Impact of Adding Comfort Cooling Systems on the Energy Consumption and EPC Rating of an Existing UK Hotel vol.12, pp.7, 2020, https://doi.org/10.3390/su12072950
  12. Uncertainties in Non-Domestic Energy Performance Certificate Generating in the UK vol.13, pp.14, 2014, https://doi.org/10.3390/su13147607