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Erschienen in: The International Journal of Life Cycle Assessment 6/2008

01.09.2008 | Case Study

Environmental life cycle assessment of a commercial office building in Thailand

verfasst von: Oyeshola F. Kofoworola, Shabbir H. Gheewala

Erschienen in: The International Journal of Life Cycle Assessment | Ausgabe 6/2008

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Abstract

Background, aim, and scope

To minimize the environmental impacts of construction and simultaneously move closer to sustainable development in the society, the life cycle assessment of buildings is essential. This article provides an environmental life cycle assessment (LCA) of a typical commercial office building in Thailand. Almost all commercial office buildings in Thailand follow a similar structural, envelope pattern as well as usage patterns. Likewise, almost every office building in Thailand operates on electricity, which is obtained from the national grid which limits variability. Therefore, the results of the single case study building are representative of commercial office buildings in Thailand. Target audiences are architects, building construction managers and environmental policy makers who are interested in the environmental impact of buildings.

Materials and methods

In this work, a combination of input–output and process analysis was used in assessing the potential environmental impact associated with the system under study according to the ISO14040 methodology. The study covered the whole life cycle including material production, construction, occupation, maintenance, demolition, and disposal. The inventory data was simulated in an LCA model and the environmental impacts for each stage computed. Three environmental impact categories considered relevant to the Thailand context were evaluated, namely, global warming potential, acidification potential, and photo-oxidant formation potential. A 50-year service time was assumed for the building.

Results

The results obtained showed that steel and concrete are the most significant materials both in terms of quantities used, and also for their associated environmental impacts at the manufacturing stage. They accounted for 24% and 47% of the global warming potential, respectively. In addition, of the total photo-oxidant formation potential, they accounted for approximately 41% and 30%; and, of the total acidification potential, 37% and 42%, respectively. Analysis also revealed that the life cycle environmental impacts of commercial buildings are dominated by the operation stage, which accounted for approximately 52% of the total global warming potential, about 66% of the total acidification potential, and about 71% of the total photo-oxidant formation potential, respectively. The results indicate that the principal contributor to the impact categories during the operation phase were emissions related to fossil fuel combustion, particularly for electricity production.

Discussion

The life cycle environmental impacts of commercial buildings are dominated by the operation stage, especially electricity consumption. Significant reductions in the environmental impacts of buildings at this stage can be achieved through reducing their operating energy. The results obtained show that increasing the indoor set-point temperature of the building by 2°C, as well as the practice of load shedding, reduces the environmental burdens of buildings at the operation stage. On a national scale, the implementation of these simple no-cost energy conservation measures have the potential to achieve estimated reductions of 10.2% global warming potential, 5.3% acidification potential, and 0.21% photo-oxidant formation potential per year, respectively, in emissions from the power generation sector. Overall, the measures could reduce approximately 4% per year from the projected global warming potential of 211.51 Tg for the economy of Thailand.

Conclusions

Operation phase has the highest energy and environmental impacts, followed by the manufacturing phase. At the operation phase, significant reductions in the energy consumption and environmental impacts can be achieved through the implementation of simple no-cost energy conservation as well as energy efficiency strategies. No-cost energy conservation policies, which minimize energy consumption in commercial buildings, should be encouraged in combination with already existing energy efficiency measures of the government.

Recommendations and perspectives

In the long run, the environmental impacts of buildings will need to be addressed. Incorporation of environmental life cycle assessment into the current building code is proposed. It is difficult to conduct a full and rigorous life cycle assessment of an office building. A building consists of many materials and components. This study made an effort to access reliable data on all the life cycle stages considered. Nevertheless, there were a number of assumptions made in the study due to the unavailability of adequate data. In order for life cycle modeling to fulfill its potential, there is a need for detailed data on specific building systems and components in Thailand. This will enable designers to construct and customize LCAs during the design phase to enable the evaluation of performance and material tradeoffs across life cycles without the excessive burden of compiling an inventory. Further studies with more detailed, reliable, and Thailand-specific inventories for building materials are recommended.

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Literatur
Zurück zum Zitat Abeysundra UGY, Babel S, Gheewala SH (2007) A decision making matrix with life cycle perspective of materials for roofs in Sri Lanka. Mater Des 28(9):2478–2487 Abeysundra UGY, Babel S, Gheewala SH (2007) A decision making matrix with life cycle perspective of materials for roofs in Sri Lanka. Mater Des 28(9):2478–2487
Zurück zum Zitat Adalberth K (1997a) Energy use during the life cycle of buildings: a method. Build Environ 32(4):317–320CrossRef Adalberth K (1997a) Energy use during the life cycle of buildings: a method. Build Environ 32(4):317–320CrossRef
Zurück zum Zitat Adalberth K (1997b) Energy use during the life cycle of single unit dwellings: examples. Build Environ 32(4):321–329CrossRef Adalberth K (1997b) Energy use during the life cycle of single unit dwellings: examples. Build Environ 32(4):321–329CrossRef
Zurück zum Zitat ASHRAE (2004) ANSI/ASHRAE Standard 55–2004 Thermal Environmental Conditions for Human Occupancy, Atlanta GA, American Society of Heating, Refrigerating and Air-conditioning Engineers Inc, 26 pp (Accessed, 31 March 2007) ASHRAE (2004) ANSI/ASHRAE Standard 55–2004 Thermal Environmental Conditions for Human Occupancy, Atlanta GA, American Society of Heating, Refrigerating and Air-conditioning Engineers Inc, 26 pp (Accessed, 31 March 2007)
Zurück zum Zitat Baldo GL, Rollino S, Stimmeder G, Fieschi M (2002) The use of LCA to develop eco-label criteria for hard floor coverings on behalf of the European flower. Int J Life Cycle Assess 7(5):269–275 Baldo GL, Rollino S, Stimmeder G, Fieschi M (2002) The use of LCA to develop eco-label criteria for hard floor coverings on behalf of the European flower. Int J Life Cycle Assess 7(5):269–275
Zurück zum Zitat Beatriz R, Almudena H, Teresa M, Gumersindo F (2006) Life cycle inventory of particleboard: a case study in the wood sector. Int J Life Cycle Assess 11(2):106–113CrossRef Beatriz R, Almudena H, Teresa M, Gumersindo F (2006) Life cycle inventory of particleboard: a case study in the wood sector. Int J Life Cycle Assess 11(2):106–113CrossRef
Zurück zum Zitat Buchanan AH, Levine SB (2000) Wood based building materials and atmospheric carbon emissions. Environ Sci Policy 2:427–437CrossRef Buchanan AH, Levine SB (2000) Wood based building materials and atmospheric carbon emissions. Environ Sci Policy 2:427–437CrossRef
Zurück zum Zitat Bullard C, Herendeen R (1975) The energy cost of goods and services. Energy Policy 3(4):268–278CrossRef Bullard C, Herendeen R (1975) The energy cost of goods and services. Energy Policy 3(4):268–278CrossRef
Zurück zum Zitat Cheng EWL, Chiang YH, Tang BS (2006) Exploring the economic impact of construction pollution by disaggregating the construction sector of the input–output table. Build Environ 4:1940–1951CrossRef Cheng EWL, Chiang YH, Tang BS (2006) Exploring the economic impact of construction pollution by disaggregating the construction sector of the input–output table. Build Environ 4:1940–1951CrossRef
Zurück zum Zitat Chirarattananon S, Rakwamsuk P, Hien VD, Taweekun J (2004) Development of building energy code for new buildings in Thailand. Proceedings of the Joint International Conf on Sustainable Energy and Environment (SEE) Thailand, 859–867 Chirarattananon S, Rakwamsuk P, Hien VD, Taweekun J (2004) Development of building energy code for new buildings in Thailand. Proceedings of the Joint International Conf on Sustainable Energy and Environment (SEE) Thailand, 859–867
Zurück zum Zitat Department of Alternative Energy Development and Efficiency (2005) Energy profile for designated buildings. DEDE Archives, Bangkok, 2005 Department of Alternative Energy Development and Efficiency (2005) Energy profile for designated buildings. DEDE Archives, Bangkok, 2005
Zurück zum Zitat ES-2002, In: Plan of implementation, Earth Summit 2002, Johannesburg, September 2002 (accessed April 2007) ES-2002, In: Plan of implementation, Earth Summit 2002, Johannesburg, September 2002 (accessed April 2007)
Zurück zum Zitat Facanha C, Horvath A (2006) Environmental assessment of freight transportation in the U.S. Int J Life Cycle Assess 11(4):229–239CrossRef Facanha C, Horvath A (2006) Environmental assessment of freight transportation in the U.S. Int J Life Cycle Assess 11(4):229–239CrossRef
Zurück zum Zitat Griffin JM, Steele HB (1980) Energy, economics and policy. Academy Press, New York, USA Griffin JM, Steele HB (1980) Energy, economics and policy. Academy Press, New York, USA
Zurück zum Zitat Gunther A, Langowski HC (1997) Life cycle assessment study on resilient floor coverings. Int J Life Cycle Assess 2:73–80 Gunther A, Langowski HC (1997) Life cycle assessment study on resilient floor coverings. Int J Life Cycle Assess 2:73–80
Zurück zum Zitat Heijungs R, Suh S (2002) The computational structure of life cycle assessment. Kluwer Academic Publisher, Dordrecht, The Netherlands Heijungs R, Suh S (2002) The computational structure of life cycle assessment. Kluwer Academic Publisher, Dordrecht, The Netherlands
Zurück zum Zitat Hendrickson C, Horvath A, Joshi S, Lave L (1998) Economic input-output models for environmental life-cycle assessment. Environ Sci Technol 32(4):184–191 Hendrickson C, Horvath A, Joshi S, Lave L (1998) Economic input-output models for environmental life-cycle assessment. Environ Sci Technol 32(4):184–191
Zurück zum Zitat Hetherington R (1996) An input–output analysis of carbon dioxide emissions for the UK. Energy Convers Manag 37:979–984CrossRef Hetherington R (1996) An input–output analysis of carbon dioxide emissions for the UK. Energy Convers Manag 37:979–984CrossRef
Zurück zum Zitat Hondo H (2006) A method for technology selection considering environmental and socio-economic impacts input–output optimization model and its application to housing policy. Int J Life Cycle Assess 11(6):383–393CrossRef Hondo H (2006) A method for technology selection considering environmental and socio-economic impacts input–output optimization model and its application to housing policy. Int J Life Cycle Assess 11(6):383–393CrossRef
Zurück zum Zitat ISO 14040 (1997) Environmental Management—Life Cycle Assessment—Principles and Framework. International Organization for Standardization (ISO), Paris ISO 14040 (1997) Environmental Management—Life Cycle Assessment—Principles and Framework. International Organization for Standardization (ISO), Paris
Zurück zum Zitat Jönsson Å, Björklund T, Tillman A-M (1998) LCA of concrete and steel building frames. Int J Life Cycle Assess 3(4):216–224 Jönsson Å, Björklund T, Tillman A-M (1998) LCA of concrete and steel building frames. Int J Life Cycle Assess 3(4):216–224
Zurück zum Zitat Keoleian GA, Blanchard S, Reppe P (2001) Life-cycle energy, costs, and strategies for improving a single-family house. J Ind Ecol 4(2):135–156CrossRef Keoleian GA, Blanchard S, Reppe P (2001) Life-cycle energy, costs, and strategies for improving a single-family house. J Ind Ecol 4(2):135–156CrossRef
Zurück zum Zitat Lenzen M (1998) Primary energy and greenhouse gases embodied in Australian final consumption: an input–output analysis. Energy Policy 26:495–506CrossRef Lenzen M (1998) Primary energy and greenhouse gases embodied in Australian final consumption: an input–output analysis. Energy Policy 26:495–506CrossRef
Zurück zum Zitat Lenzen M (2001) A generalized input–output multiplier calculus for Australia. Econ Syst Res 13(1):65–92CrossRef Lenzen M (2001) A generalized input–output multiplier calculus for Australia. Econ Syst Res 13(1):65–92CrossRef
Zurück zum Zitat Limmeechokchai B, Suksuntornsiri P (2007) Embedded energy and total greenhouse gas emissions in final consumptions within Thailand. Renew Sustain Energy Rev 11(2):259–281CrossRef Limmeechokchai B, Suksuntornsiri P (2007) Embedded energy and total greenhouse gas emissions in final consumptions within Thailand. Renew Sustain Energy Rev 11(2):259–281CrossRef
Zurück zum Zitat Matsuno Y, Betz M (2000) Development of life cycle inventories for electricity grid mixes in Japan. Int J Life Cycle Assess 5(5):295–305 Matsuno Y, Betz M (2000) Development of life cycle inventories for electricity grid mixes in Japan. Int J Life Cycle Assess 5(5):295–305
Zurück zum Zitat Miller RE, Blair PB (1985) Input–output analysis: Foundation and extensions. Englewood Cliffs, NJ, Prentice-Hall Miller RE, Blair PB (1985) Input–output analysis: Foundation and extensions. Englewood Cliffs, NJ, Prentice-Hall
Zurück zum Zitat Mithraratne N, Vale B (2004) Life cycle analysis model for New Zealand houses. Build Environ 39:483–492CrossRef Mithraratne N, Vale B (2004) Life cycle analysis model for New Zealand houses. Build Environ 39:483–492CrossRef
Zurück zum Zitat Myer A, Chaffee C (1997) Life cycle analysis for design of the Sydney olympic stadium. Renew Energy 10:169–172CrossRef Myer A, Chaffee C (1997) Life cycle analysis for design of the Sydney olympic stadium. Renew Energy 10:169–172CrossRef
Zurück zum Zitat Nebell B, Zimmer B, Wegener G (2006) Life cycle assessment of wood floor coverings. A representative study for the German flooring industry. Int J Life Cycle Assess 11(3):172–182CrossRef Nebell B, Zimmer B, Wegener G (2006) Life cycle assessment of wood floor coverings. A representative study for the German flooring industry. Int J Life Cycle Assess 11(3):172–182CrossRef
Zurück zum Zitat Oka T, Suzuki M, Konnya T (1993) The estimation of energy consumption and amounts of pollutants due to construction of buildings. Energy Build 19:303–311CrossRef Oka T, Suzuki M, Konnya T (1993) The estimation of energy consumption and amounts of pollutants due to construction of buildings. Energy Build 19:303–311CrossRef
Zurück zum Zitat Osman A, Ries R (2007) Life cycle assessment of electrical and thermal energy systems for commercial buildings. Int J Life Cycle Assess 12(5):308–316CrossRef Osman A, Ries R (2007) Life cycle assessment of electrical and thermal energy systems for commercial buildings. Int J Life Cycle Assess 12(5):308–316CrossRef
Zurück zum Zitat Pan X, Kraines S (2001) Environmental input–output models for life cycle analysis. Environ Resour Econ 20:61–72CrossRef Pan X, Kraines S (2001) Environmental input–output models for life cycle analysis. Environ Resour Econ 20:61–72CrossRef
Zurück zum Zitat Petersen AK, Solberg B (2005) Environmental and economic impacts of substitution between wood products and alternative materials. A review of micro-level analyses from Norway and Sweden. Forest Policy and Economics 7:249–259CrossRef Petersen AK, Solberg B (2005) Environmental and economic impacts of substitution between wood products and alternative materials. A review of micro-level analyses from Norway and Sweden. Forest Policy and Economics 7:249–259CrossRef
Zurück zum Zitat Pullen S (2000) Energy assessment of institutional buildings. Proceedings of Anzasca 2000. 34th Annual Conf of the Australia & New Zealand Architectural Science Association Adelaide, Australia Pullen S (2000) Energy assessment of institutional buildings. Proceedings of Anzasca 2000. 34th Annual Conf of the Australia & New Zealand Architectural Science Association Adelaide, Australia
Zurück zum Zitat Reddy BVV, Jagadish KS (2003) Embodied energy of common and alternative building materials and technologies. Energy Build 35:129–137CrossRef Reddy BVV, Jagadish KS (2003) Embodied energy of common and alternative building materials and technologies. Energy Build 35:129–137CrossRef
Zurück zum Zitat Scheuer C, Keoleian GA, Reppe P (2003) Life cycle energy and environmental performance of a new university building. Modeling challenges and design implications. Energy Build 35:1049–1064CrossRef Scheuer C, Keoleian GA, Reppe P (2003) Life cycle energy and environmental performance of a new university building. Modeling challenges and design implications. Energy Build 35:1049–1064CrossRef
Zurück zum Zitat Schmidt A, Jensen AA, Clausen A, Kamstrup O, Postlethwaite D (2004a) A comparative life cycle assessment of building insulation products made of stone wool, paper wool and flax. Part 1: Background, goal and scope, life cycle inventory, impact assessment and interpretation. Int J Life Cycle Assess 9(1):53–66 Schmidt A, Jensen AA, Clausen A, Kamstrup O, Postlethwaite D (2004a) A comparative life cycle assessment of building insulation products made of stone wool, paper wool and flax. Part 1: Background, goal and scope, life cycle inventory, impact assessment and interpretation. Int J Life Cycle Assess 9(1):53–66
Zurück zum Zitat Schmidt A, Jensen AA, Clausen A, Kamstrup O, Postlethwaite D (2004b) a comparative life cycle assessment of building insulation products made of stone wool, paper wool and flax. Part 2: Comparative assessment. Int J Life Cycle Assess 9(2):122–129CrossRef Schmidt A, Jensen AA, Clausen A, Kamstrup O, Postlethwaite D (2004b) a comparative life cycle assessment of building insulation products made of stone wool, paper wool and flax. Part 2: Comparative assessment. Int J Life Cycle Assess 9(2):122–129CrossRef
Zurück zum Zitat Suh S, Huppes G (2005) Methods for life cycle inventory of a product. J Clean Prod 13:687–697CrossRef Suh S, Huppes G (2005) Methods for life cycle inventory of a product. J Clean Prod 13:687–697CrossRef
Zurück zum Zitat Thomas B, Jonsson A, Tillman A-M (1996) LCA of building frame structures. Technical Environment Planning Report, Teborg G, Sweden, 113 Thomas B, Jonsson A, Tillman A-M (1996) LCA of building frame structures. Technical Environment Planning Report, Teborg G, Sweden, 113
Zurück zum Zitat Thormark C (2001) A low energy building in a life cycle. Its embodied energy, energy need for operation and recycling potential. Build Environ 37:429–435CrossRef Thormark C (2001) A low energy building in a life cycle. Its embodied energy, energy need for operation and recycling potential. Build Environ 37:429–435CrossRef
Zurück zum Zitat Treloar GJ (1997) Extracting embodied energy paths from input–output tables. Towards an input–output based hybrid energy analysis method. Econ Syst Res 9(4):375–391CrossRef Treloar GJ (1997) Extracting embodied energy paths from input–output tables. Towards an input–output based hybrid energy analysis method. Econ Syst Res 9(4):375–391CrossRef
Zurück zum Zitat Treloar GJ, Love ED, Iyer-Raniga U, Faniran OO (2000) A hybrid life cycle assessment method for construction. Constr Manag Econ 18:5–9CrossRef Treloar GJ, Love ED, Iyer-Raniga U, Faniran OO (2000) A hybrid life cycle assessment method for construction. Constr Manag Econ 18:5–9CrossRef
Zurück zum Zitat Tucker S, Treloar GJ (1994) Embodied energy in construction and refurbishment of buildings. Proceedings of CIB International Conf on Buildings and the Environment. BRE, Garston, UK Tucker S, Treloar GJ (1994) Embodied energy in construction and refurbishment of buildings. Proceedings of CIB International Conf on Buildings and the Environment. BRE, Garston, UK
Zurück zum Zitat Udo de Haes H, Heijungs R, Suh S, Huppes G (2004) Three strategies to overcome the limitations of life-cycle assessment. J Ind Ecol 8(3):19–32CrossRef Udo de Haes H, Heijungs R, Suh S, Huppes G (2004) Three strategies to overcome the limitations of life-cycle assessment. J Ind Ecol 8(3):19–32CrossRef
Zurück zum Zitat Winistorfer P, Chen Z, Lippke B, Stevens N (2005) Energy consumption and greenhouse gas emissions related to the use, maintenance, and disposal of a residential structure. Wood Fiber Sci 37:128–139 Winistorfer P, Chen Z, Lippke B, Stevens N (2005) Energy consumption and greenhouse gas emissions related to the use, maintenance, and disposal of a residential structure. Wood Fiber Sci 37:128–139
Zurück zum Zitat Yamtraipat N, Khedari J, Hirunlabh J, Kunchornrat J (2006) Assessment of Thailand indoor set-point impact on energy consumption and environment. Energy Policy 34:765–770CrossRef Yamtraipat N, Khedari J, Hirunlabh J, Kunchornrat J (2006) Assessment of Thailand indoor set-point impact on energy consumption and environment. Energy Policy 34:765–770CrossRef
Zurück zum Zitat Zapata P, Gambatese JA (2005) Energy consumption of asphalt and reinforced concrete pavement materials and construction. J Infrastruct Syst 111:9–20CrossRef Zapata P, Gambatese JA (2005) Energy consumption of asphalt and reinforced concrete pavement materials and construction. J Infrastruct Syst 111:9–20CrossRef
Zurück zum Zitat Zola AM, Lim C (eds) (2000) Thailand’s Initial National Communication under the United Nations Framework Convention on Climate Change. Office of Environmental Policy and Planning, Ministry of Science, Technology and Environment, Thailand Zola AM, Lim C (eds) (2000) Thailand’s Initial National Communication under the United Nations Framework Convention on Climate Change. Office of Environmental Policy and Planning, Ministry of Science, Technology and Environment, Thailand
Metadaten
Titel
Environmental life cycle assessment of a commercial office building in Thailand
verfasst von
Oyeshola F. Kofoworola
Shabbir H. Gheewala
Publikationsdatum
01.09.2008
Verlag
Springer-Verlag
Erschienen in
The International Journal of Life Cycle Assessment / Ausgabe 6/2008
Print ISSN: 0948-3349
Elektronische ISSN: 1614-7502
DOI
https://doi.org/10.1007/s11367-008-0012-1

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