With the rapid development of urbanization, the Chinese government has put equal emphasis on construction and retrofitting. But those projects did not achieve optimal effect because of the lack of targeted and systematic design guidance system. In this study, it first analyzes existing retrofitting methods and sorts into five retrofitting types as a basis, and then, captures the combi-nations and permutations of retrofitting methods and materials by parts and layers to build a database. After that, it combines different kinds of ap-proaches by hierarchical matrix method to conclude the most efficient strat-egy. This study also selects typical residential buildings built between 1980 and 2000 in cold climate area of Northeast China as the research objects to test the integrity and effectiveness. As the results of this paper, it provides systematic guidance and multiple performance-based retrofitting strategies of the existing residential envelope system, which can improve indoor ther-mal comfort with low energy consumption.
References
[1]
Jun, W. (2015) China Building Renovation. http://www.chinabrn.cn/index.php/Home/search/olddetails?type=2&&id=354
[2]
Jiang, Y. (2005) Current Building Energy Consumption in China and Effective Energy Efficiency Measures. Heating Ventilating Air Conditioning, 5, 30-40.
[3]
Habraken, N.J. (1972) Supports: An Alternative to Mass Housing. Urban International Press, UK.
[4]
Duffy, F. (1990) Measuring Building Performance. Facilities, 8, 17-20. https://doi.org/10.1108/EUM0000000002112
[5]
Brand, S. (1995) How Buildings Learn: What Happens after They’re Built. Penguin Books, New York.
Fan, Y., Li, Z.B. and Dong, L. (2018) The Environment Quality connection and Regeneration Mode for the Existing Community Residential Building of China. New Architectural, 2, 46-49.
[8]
Matsumura, S.C. (2008) Community Regeneration. China Machine Press, Beijing.
[9]
Fan, Y., Li, Z.B. and Zhang, Q. (2020) Research on Scientific Framework and Knowledge Base System of Maintenance Regeneration on Existing Residential Buildings. Time+Architecture, 1, 6-9.
[10]
Suo, J., Zhou, Q. and Fan, Y. (2018) Thoughts on the Practice and Existing Problems of Urban Housing Quality Improvement in China. Journal of Human Settlements in West China, 33, 1-5.
[11]
Carletti, C., Sciurpi, F. and Pierangioli, L. (2014) The Energy Upgrading of Existing Buildings: Window and Shading Device Typologies for Energy Efficiency Refurbishment. Sustainability, 6, 5354-5377. https://doi.org/10.3390/su6085354
[12]
Leskovar, V.Z. and Premrov, M. (2012) Influence of Glazing Size on Energy Efficiency of Timber-Frame Buildings. Construction and Building Materials, 30, 92-99. https://doi.org/10.1016/j.conbuildmat.2011.11.020
[13]
Cui, L.Q. (2007) Research on Energy-Saving Reform of Window for Existing Residential Buildings in Handan City. MA Thesis, Hebei University of Engineering, Hebei.
[14]
Zhu, N. (2017) Research on the Reconstruction Technology of Batch Assembly of Residential Houses in Old Urban Districts. MA Thesis, Tsinghua University, Beijing.
[15]
Xu, C.T. (2008) Influence of External Enclosure Structure of the Residential Building to the Indoor Thermal Environment and Building Energy Consumption. MA Thesis, Chongqing University, Chongqing.
[16]
Peuhkuri, R., et al. (2011) Guidelines for the Use of Building Physical Modelling Methods and Tools in the Development of Sustainable Refurbishment Technologies for External Walls. SUSREF Deliverable2.2. https://www.semanticscholar.org/paper/Deliverable-%3A-D-2-.-2-Title-%3A-Guidelines-for-the-of-Peuhkuri-Hol%C3%B8s/5e43f427f2a674cbaa7e5f9d7d30d0171a0104b4#paper-header
[17]
Liang, X.C. (2010) Research on Energy-Efficiency Renovation of Urban Existing House. Housing Science. 30, 38-40.
[18]
Liu, J.R. (2010) Study on Energy Efficiency Renovation of Exiting Residential Buildings in Heating Areas in North China. China Educational Technology & Equipment, 30, 78-79.
[19]
Tommerup, H. and Svendsen, S. (2006) Energy Savings in Danish Residential Building Stock. Energy and Buildings, 38, 618-626. https://doi.org/10.1016/j.enbuild.2005.08.017
[20]
Arslan, O. and Kose, R. (2006) Thermo-Economic Optimization of Insulation Thickness Considering Condensed Vapor in Buildings. Energy and Buildings, 38, 1400-1408. https://doi.org/10.1016/j.enbuild.2006.02.012
[21]
Verbeeck, G. and Hens, H. (2005) Energy Savings in Retrofitted Dwellings: Economically Viable. Energy and Buildings, 37, 747-754. https://doi.org/10.1016/j.enbuild.2004.10.003
[22]
Siller, T. (2007) Long-Term Energy Savings and Greenhouse Gas Emission Reductions in the Swiss Residential Sector. Energy Policy, 35, 529-539. https://doi.org/10.1016/j.enpol.2005.12.021
[23]
Häkkinen, T. (2012) Systematic Method for the Sustainability Analysis of Refurbishment Concepts of Exterior Walls. Construction and Building Materials, 37, 783–790. https://doi.org/10.1016/j.conbuildmat.2012.07.084
[24]
Konstantinou, T. (2014) Facade Refurbishment Toolbox: Supporting the Design of Residential Energy Upgrades. Architecture and the Built Environment.
[25]
Wang, P.P. (2017) Study on Energy-Saving Design for Passive House Envelope in Cold Region. MA Thesis, Southwest Jiaotong University, Chengdu.
[26]
Knaack, U., Klein, T., Bilow, M., and Auer, T. (2007) Façades Principles of Construction. Birkhäuser, Basel.
Tadeu, A.J.B. and Mateus, D.M.R. (2001) Sound Transmission through Single, Double and Triple Glazing. Experimental Evaluation. Applied Acoustics, 62, 307-325. https://doi.org/10.1016/S0003-682X(00)00032-3
[29]
Yuan, T.J. (2010) Research on Energy-Saving Renovation Technology of Enclosure Structure of Existing Residential Buildings in Jinan City. MA Thesis, Shandong Jianzhu University, Jinan.
[30]
McMullan, R. (2002) Environmental Science in Building. Palgrave, Basingstoke.
[31]
Baetens, R., Jelle, B.P. and Gustavsen, A. (2011) Aerogel Insulation for Building Applications: A State-of-the-Art Review. Energy and Buildings, 43, 761-769. https://doi.org/10.1016/j.enbuild.2010.12.012
[32]
Ministry of Housing and Urban-Rural Development of the People’s Republic of China (2014) Vacuum insulation board for building. JG/T 438-2014, Ministry of Housing and Urban-Rural Development of the People’s Republic of China, Beijing.
[33]
Koebel, M.M., Manz, H., Emanuel Mayerhofer, K. and Keller, B. (2010) Service-Life Limitations in Vacuum Glazing: A Transient Pressure Balance Model. Solar Energy Materials and Solar Cells, 94, 1015-1024. https://doi.org/10.1016/j.solmat.2010.02.003
[34]
Chen, R.G., Chen, Y.L., Liu, X.Z. and Wu, W.Q. (2015) Advancement of Phase Change Materials and its Application in Building Energy Efficiency. Materials Reports, 29, 51-57.