Affordable construction towards sustainable buildings: review on embodied energy in building materials
Tài liệu tham khảo
Dakwale, 2011, Improving environmental performance of building through increased energy efficiency: a review, Sust Cities Soc, 1, 211, 10.1016/j.scs.2011.07.007
Hammond, 2008, Embodied energy and carbon in construction materials, Proc Inst Civil Eng Energy, 161, 87
Hammond, 2000, Energy, environment and sustainable development: a UK perspective, Process Saf Environ, 78, 304, 10.1205/095758200530826
Yu, 2011, Green design in low carbon environment
Slesser, 1988
Reddy, 2003, Embodied energy of common and alternative building materials and technologies, Energy Build, 35, 129, 10.1016/S0378-7788(01)00141-4
Chani, 2005, Comparative analysis of embodied energy rates for walling elements in India, IE (I) J–AR, 84, 47
Jiao, 2011, Carbon emissions assessment of autoclaved building materials
Sugirtha, 2010, Low carbon roadmap: guiding our country onto the low-carbon building materials industry, China Construction News
Wallbaum, 2012, Indicator based sustainability assessment tool for affordable housing construction technologies, Ecol Indicators, 18, 353, 10.1016/j.ecolind.2011.12.005
Koskela, 1992
Gonzalez, 2006, Assessment of the decrease of CO2 emissions in the construction field through the selection of materials: practical case studies of three houses of low environmental impact, Build Environ, 41, 902, 10.1016/j.buildenv.2005.04.006
Slesser, 1978
Gatner, 1976, Energy costs of house construction, Energy Policy, 4, 144, 10.1016/0301-4215(76)90007-0
Wilson, 1996, The embodied energy payback period of photovoltaic installations applied to buildings in the UK, Build Environ, 31, 299, 10.1016/0360-1323(95)00053-4
Howard, 1999
Thormak, 2002, A low energy building in a life cycle—its embodied energy, energy need for operation and recycling potential, Build Environ, 37, 429, 10.1016/S0360-1323(01)00033-6
Rawlinson, 2007, Sustainability: embodied carbon, Build Mag, 41, 88
Menzies, 2007, Life-cycle assessment and embodied energy: a review, Proc Inst Civil Eng Constr Mater, 160, 135, 10.1680/coma.2007.160.4.135
Crowther, 1999, Design for disassembly to recover embodied energy
Sartori, 2007, Energy use in the life cycle of conventional and low energy buildings: a review article, Energy Build, 39, 249, 10.1016/j.enbuild.2006.07.001
Keoleian, 2000, Life-cycle energy, costs, and strategies for improving a single family house, J Ind Ecol, 4, 135, 10.1162/108819800569726
Hannon, 1978, Energy and labor in the construction sector, Science, 202, 837, 10.1126/science.202.4370.837
Nassen, 2007, Direct and indirect energy use and carbon emissions in the production phase of buildings: an input output analysis, Energy, 32, 1593, 10.1016/j.energy.2007.01.002
Spence, 1995, Sustainable development and the construction industry, Habitat Int, 19, 279, 10.1016/0197-3975(94)00071-9
Langston, 2008, Reliability of building embodied energy modeling: an analysis of 30 Melbourne case studies, Constr Manag Econ, 26, 147, 10.1080/01446190701716564
Treloar, 2001, Building materials selection: greenhouse strategies for built facilities, Facilities, 19, 139, 10.1108/02632770110381694
Miller, 2001
Lenzen, 2006, Errors in conventional and input output base life cycle inventories, J Ind Ecol, 4, 128
Dixit, 2010, Identification of parameters for embodied energy measurement: a literature review, Energy Build, 42, 1238, 10.1016/j.enbuild.2010.02.016
Dixit, 2012, Need for an embodied energy measurement protocol for buildings: a review, Renew Sust Energy Rev, 16, 3730, 10.1016/j.rser.2012.03.021
Monkman, 2010, Integration of carbon sequestration into curing process of precast concrete, Can J Civil Eng, 37, 302, 10.1139/L09-140
Crawford, 2003, Validation of the use of Australian input output data for building embodied energy simulation
Pullen, 2006, Energy profiles of selected residential developments in Sydney with special reference to embodied energy
Aye, 2012, Life cycle greenhouse gas emissions and energy analysis of prefabricated reusable building modules, Energy Build, 47, 159, 10.1016/j.enbuild.2011.11.049
Rincón, 2013, Service life of the dwelling stock in Spain, Int J Life Cycle Assess, 10.1007/s11367-013-0552-x
El-Dash, 2011, Service life prediction for buildings exposed to severe weather, J Asian Arch Build Eng, 10, 211, 10.3130/jaabe.10.211
Talukdar, 2011, Development of a lightweight low-carbon footprint concrete containing recycled waste materials, Adv Civil Eng, 2011, 10.1155/2011/594270
Jiao, 2011, Impact research of solid waste on the strength of low carbon building materials
Reddy, 2010, Embodied energy in cement stabilised rammed earth walls, Energy Build, 42, 380, 10.1016/j.enbuild.2009.10.005
Crishna, 2011, Embodied energy and CO2 in UK dimension stone, Resour Conserv Recy, 55, 1265, 10.1016/j.resconrec.2011.06.014
Yu, 2011, A future bamboo-structure residential buildings prototype in China: life cycle assessment of energy use of carbon emission, Energy Build, 43, 2638, 10.1016/j.enbuild.2011.06.013
Nath, 2012, Ecological implications of village bamboo as global climate change mitigation strategy: a case study in Barak Valley, Assam, North East India, Int J Climate Change Manag, 4, 201, 10.1108/17568691211223169
Buchanan, 1999, Wood-based building materials and atmospheric carbon emissions, Environ Sci Policy, 2, 427, 10.1016/S1462-9011(99)00038-6
Nässén, 2012, Concrete vs. wood in buildings—an energy system approach, Build Environ, 51, 361, 10.1016/j.buildenv.2011.11.011
Tiwari, 2013, Global housing challenge: a case study of CO2 emissions in India, Spandrel
Rossi, 2012, Life-cycle assessment of residential buildings in three different European locations, case study, Build Environ, 51, 402, 10.1016/j.buildenv.2011.11.002
Nordby, 2011, Carbon reductions and building regulations: the case of Norwegian mountain cabins, Build Res Inform, 39, 553, 10.1080/09613218.2011.604280
UKWIR, 2008
Ramesh, 2010, Life cycle energy analysis of buildings: an overview, Energy Build, 42, 1592, 10.1016/j.enbuild.2010.05.007
Chen, 2001, Analysis of embodied energy use in the residential building of Hong Kong, Energy, 26, 323, 10.1016/S0360-5442(01)00006-8
British Standards Institution, 2008
British Standards Institution, 2008
Lee, 2011, Embodied energy of building materials and green building rating systems—a case study for industrial halls, Sust Cities Soc, 1, 67, 10.1016/j.scs.2011.02.002
NHBC, 2009, 52