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Life Cycle Cost Optimization of Residential Buildings in Bulgaria: a Case Study of the Building Envelope


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[1] Buildings Performance Institute Europe, Accelerating the renovation of the Bulgarian building stock. The present and future of the national energy efficiency programme for multifamily residential buildings, 2016, [Online], Available: http://bpie.eu/wp-content/uploads/2016/05/Accelerating-the-renovation-of-the-Bulgarian-building-stock_EN.pdf. Search in Google Scholar

[2] NASROLLAHI, F. – NOORAEI, M.: Relationship between U-Values, Energy Demand and Life Cycle Costs in Office Buildings. Universitätsverlag der TU Berlin, 2013. Search in Google Scholar

[3] LOUKAIDOU, K. - MICHOPOULOS, A. - ZACHARIADIS, T.: Nearly-Zero Energy Buildings: Cost-Optimal Analysis of Building Envelope Characteristics. Procedia Environmental Sciences, Vol. 38, 2017, pp. 20 – 27.10.1016/j.proenv.2017.03.069 Search in Google Scholar

[4] DOMBAYCI, Ö. - ATALAY, Ö. - ACAR, S. - ULU, E. - OZTURK, H.: Thermoeconomic method for determination of optimum insulation thickness of external walls for the houses: Case study for Turkey. Journal of Sustainable Energy Technologies and Assessments, Vol. 22, 2017, pp. 1-8.10.1016/j.seta.2017.05.005 Search in Google Scholar

[5] DOSEVA, N. – CHAKYROVA, D.: Life cycle cost optimization of residential buildings. Part I: a case study of external walls. Annual Journal of Technical University of Varna, Bulgaria, Vol. 2 Iss. 2, 2018, pp. 62-69.10.29114/ajtuv.vol2.iss2.94 Search in Google Scholar

[6] Guidelines for Life Cycle Cost Analysis. Stanford University, Land and Buildings, 2005, [Online], Available: https://sustainable.stanford.edu. Search in Google Scholar

[7] Ministry of Regional Development and Public Works, Regulation №7 for energy efficiency in buildings, National newspaper, Vol. 93, 2017. Search in Google Scholar

[8] ISO 52016-1:2018, International Organization for Standardisation. Energy performance of buildings - Energy needs for heating and cooling, internal temperatures and sensible and latent heat loads -Part 1: Calculation procedures, 2018. Search in Google Scholar

[9] European Parliament, Commission delegated regulation (EU) 2010/31/EU of the European Parliament and of the Council on the energy performance of buildings, 2010. Search in Google Scholar

[10] YU, J. - TIAN, L. - YANG, C. - XU, X. - WANG, J.: Sensitivity analysis of energy performance for high-rise residential envelope in hot summer and cold winter zone of China. Energy and Buildings, Vol. 64, 2013, pp. 264-274.10.1016/j.enbuild.2013.05.018 Search in Google Scholar

[11] LAM, J.C. - HUI, S.C.M.: Sensitivity analysis of energy performance of office buildings. Building and Environment, Vol. 31, Iss. 1, 1996, pp. 27-39.10.1016/0360-1323(95)00031-3 Search in Google Scholar

[12] BOERMANS, T. – PETERSDORFF, C.: U-values for better energy performance of buildings. The report established by ECOFYS for EURIMA, (Online), Available: https://www.eurima.org. Search in Google Scholar

[13] GIESELER, U. D. J. - HEIDT, F. D. – BIER, W.: Evaluation of the cost efficiency of an Energy efficient building. Renewable Energy Journal, Vol. 29, 2004, pp. 369-376.10.1016/S0960-1481(03)00254-4 Search in Google Scholar

[14] ZHANG, C. – ONG, L.: Sensitivity analysis of building envelope elements impact on energy consumptions using BIM. Civil Engineering, Vol. 7, 2017, pp. 488-508.10.4236/ojce.2017.73033 Search in Google Scholar

[15] EN 12831-1 Energy performance of buildings - method for calculation of the design heat load -Part 1: space heating load, module M3-3. TC-41 heating, ventilating, air-conditioning and cleaning equipment, Bulgarian institute for standardization, 2017. Search in Google Scholar

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