- Abanda, F. H., Oti, A. H., & Tah, J. H. M. (2017). Integrating BIM and new rules of measurement for embodied energy and CO2 assessment. Journal of Building Engineering, 12, 288–305. https://doi.org/10.1016/j.jobe.2017.06.017 .
Paper not yet in RePEc: Add citation now
- Abbasi, S. (2022). The sustainable supply chain of CO2 emissions during the coronavirus disease (COVID-19) pandemic. Retrieved from, https://www.researchgate.net/publication/365198063 .
Paper not yet in RePEc: Add citation now
- Abbasi, S., & Ahmadi Choukolaei, H. (2023). A systematic review of green supply chain network design literature focusing on carbon policy. Decision Analytics Journal. https://doi.org/10.1016/j.dajour.2023.100189 .
Paper not yet in RePEc: Add citation now
Abbasi, S., & Erdebilli, B. (2023). Green closed-loop supply chain networks’ response to various carbon policies during COVID-19. Sustainability (Switzerland). https://doi.org/10.3390/su15043677 .
- Abbasi, S., & Noorzai, E. (2021). The BIM-Based multi-optimization approach in order to determine the trade-off between embodied and operation energy focused on renewable energy use. Journal of Cleaner Production, 281, 125359. https://doi.org/10.1016/j.jclepro.2020.125359 .
Paper not yet in RePEc: Add citation now
- Abbasi, S., Daneshmand-Mehr, M., & Ghane Kanafi, A. (2022b). Designing sustainable recovery network of end-of-life product during the COVID-19 pandemic: A real and applied case study. Discrete Dynamics in Nature and Society. https://doi.org/10.1155/2022/6967088 .
Paper not yet in RePEc: Add citation now
- Abbasi, S., Daneshmand-Mehr, M., & Ghane Kanafi, A. (2023). Green closed-loop supply chain network design during the coronavirus (COVID-19) pandemic: A case study in the Iranian automotive industry. Environmental Modeling and Assessment, 28(1), 69–103. https://doi.org/10.1007/s10666-022-09863-0 .
Paper not yet in RePEc: Add citation now
- Abbasi, S., Khalili, H. A., Daneshmand-Mehr, M., & Hajiaghaei-Keshteli, M. (2022a). Performance measurement of the sustainable supply chain during the COVID-19 pandemic: A real-life case study. Foundations of Computing and Decision Sciences, 47(4), 327–358. https://doi.org/10.2478/fcds-2022-0018 .
Paper not yet in RePEc: Add citation now
- Abbate, S., Centobelli, P., & Cerchione, R. (2023b). The digital and sustainable transition of the agri-food sector. Technological Forecasting and Social Change. https://doi.org/10.1016/j.techfore.2022.122222 .
Paper not yet in RePEc: Add citation now
- Abbate, S., Centobelli, P., Cerchione, R., Giardino, G., & Passaro, R. (2023c). Coming out the egg: Assessing the benefits of circular economy strategies in agri-food industry. Journal of Cleaner Production. https://doi.org/10.1016/j.jclepro.2022.135665 .
Paper not yet in RePEc: Add citation now
- Abbate, S., Centobelli, P., Cerchione, R., Nadeem, S. P., & Riccio, E. (2023a). Sustainability trends and gaps in the textile, apparel and fashion industries. Environment, Development and Sustainability. https://doi.org/10.1007/s10668-022-02887-2 .
Paper not yet in RePEc: Add citation now
- Abbate, S., Centobelli, P., Cerchione, R., Oropallo, E., & Riccio, E. (2022). Investigating healthcare 4.0 transition through a knowledge management perspective. IEEE Transactions on Engineering Management. https://doi.org/10.1109/TEM.2022.3200889 .
Paper not yet in RePEc: Add citation now
- Abdelaal, F., & Guo, B. H. (2022). Stakeholders’ perspectives on BIM and LCA for green buildings. Journal of Building Engineering, 48, 103931. https://doi.org/10.1016/j.jobe.2021.103931 .
Paper not yet in RePEc: Add citation now
Abouhamad, M., & Abu-Hamd, M. (2021). Life cycle assessment framework for embodied environmental impacts of building construction systems. Sustainability, 13(2), 461. https://doi.org/10.3390/su13020461 .
- Adalberth, K. (1997a). Energy use during the life cycle of buildings: A method. Building and Environment, 32(4), 317–320. https://doi.org/10.1016/S0360-1323(96)00068-6 .
Paper not yet in RePEc: Add citation now
- Adalberth, K. (1997b). Energy use during the life cycle of single-unit dwellings: Examples. Building and Environment, 32(4), 321–329. https://doi.org/10.1016/S0360-1323(96)00069-8 .
Paper not yet in RePEc: Add citation now
- Adalberth, K., Almgren, A., & Petersen, E. H. (2001). Life cycle assessment of four multi-family buildings. International Journal of Low Energy and Sustainable Buildings, 2, 1–21.
Paper not yet in RePEc: Add citation now
- Ajayi, S. O., Oyedele, L. O., & Ilori, O. M. (2019). Changing significance of embodied energy: A comparative study of material specifications and building energy sources. Journal of Building Engineering, 23, 324–333. https://doi.org/10.1016/j.jobe.2019.02.008 .
Paper not yet in RePEc: Add citation now
- Alcalá, J., González-Vidosa, F., Yepes, V., & Martí, J. V. (2018). Embodied energy optimization of prestressed concrete slab bridge decks. Technologies, 6(2), 43. https://doi.org/10.3390/technologies6020043 .
Paper not yet in RePEc: Add citation now
Alcorn, J. A., & Baird, G. (1996). Use of a hybrid energy analysis method for evaluating the embodied energy of building materials. Renewable Energy, 8(1–4), 319–322. https://doi.org/10.1016/0960-1481(96)88869-0 .
- Almeida, M., Ferreira, M., & Barbosa, R. (2018). Relevance of embodied energy and carbon emissions on assessing cost effectiveness in building renovation: Contribution from the analysis of case studies in six European countries. Buildings, 8(8), 103. https://doi.org/10.3390/buildings8080103 .
Paper not yet in RePEc: Add citation now
- Alwan, Z., & Jones, P. (2014). The importance of embodied energy in carbon footprint assessment. Structural Survey, 32(1), 49–60. https://doi.org/10.1108/SS-01-2013-0012 .
Paper not yet in RePEc: Add citation now
- Alwan, Z., Nawarathna, A., Ayman, R., Zhu, M., & ElGhazi, Y. (2021). Framework for parametric assessment of operational and embodied energy impacts utilising BIM. Journal of Building Engineering, 42, 102768. https://doi.org/10.1016/j.jobe.2021.102768 .
Paper not yet in RePEc: Add citation now
- Aneesh, N. R., Shivaprasad, K. N., & Das, B. B. (2018). Life cycle energy analysis of a metro station building envelope through computer based simulation. Sustainable Cities and Society, 39, 135–143. https://doi.org/10.1016/j.scs.2018.02.006 .
Paper not yet in RePEc: Add citation now
- Angeles, K., Patsialis, D., Taflanidis, A. A., Kijewski-Correa, T. L., Buccellato, A., & Vardeman, C. (2021). Advancing the design of resilient and sustainable buildings: An integrated life-cycle analysis. Journal of Structural Engineering, 147(3), 04020341. https://doi.org/10.1061/(ASCE)ST.1943-541X.0002910 .
Paper not yet in RePEc: Add citation now
- Ansah, M. K., Chen, X., Yang, H., Lu, L., & Lam, P. T. (2021). Developing an automated BIM-based life cycle assessment approach for modularly designed high-rise buildings. Environmental Impact Assessment Review, 90, 106618. https://doi.org/10.1016/j.eiar.2021.106618 .
Paper not yet in RePEc: Add citation now
Asdrubali, F., Grazieschi, G., Roncone, M., Thiebat, F., & Carbonaro, C. (2023). Sustainability of building materials: Embodied energy and embodied carbon of masonry. Energies. https://doi.org/10.3390/en16041846 .
- ASHRAE, A. ASHRAE/IES Standard 90.1-2016: Energy standard for buildings except low-rise residential buildings. In 2016. American Society of Heating, Refrigerating and Air-Conditioning Engineers. Atlanta.
Paper not yet in RePEc: Add citation now
- Atkinson, C., Hobbs, S., West, J., & Edwards, S. (1996). Life cycle embodied energy and carbon dioxide emissions in buildings. Industry and Environment, 19(2), 29–31.
Paper not yet in RePEc: Add citation now
- Aye, L., Ngo, T., Crawford, R. H., Gammampila, R., & Mendis, P. (2012). Life cycle greenhouse gas emissions and energy analysis of prefabricated reusable building modules. Energy and Buildings, 47, 159–168. https://doi.org/10.1016/j.enbuild.2011.11.049 .
Paper not yet in RePEc: Add citation now
- Azari, R., & Abbasabadi, N. (2018). Embodied energy of buildings: A review of data, methods, challenges, and research trends. Energy and Buildings, 168, 225–235. https://doi.org/10.1016/j.enbuild.2018.03.003 .
Paper not yet in RePEc: Add citation now
- Baduge, S. K., Thilakarathna, S., Perera, J. S., Arashpour, M., Sharafi, P., Teodosio, B., Shringi, A., & Mendis, P. (2022). Artificial intelligence and smart vision for building and construction 4.0: Machine and deep learning methods and applications. Automation in Construction. https://doi.org/10.1016/j.autcon.2022.104440 .
Paper not yet in RePEc: Add citation now
- Bahramian, M., & Yetilmezsoy, K. (2020). Life cycle assessment of the building industry: An overview of two decades of research (1995–2018). Energy and Buildings, 219, 109917. https://doi.org/10.1016/j.enbuild.2020.109917 .
Paper not yet in RePEc: Add citation now
- Balouktsi, M., & Lützkendorf, T. (2016). Energy efficiency of buildings: The aspect of embodied energy. Energy Technology, 4(1), 31–43. https://doi.org/10.1002/ente.201500265 .
Paper not yet in RePEc: Add citation now
- Bansal, D., Minocha, V. K., Kaur, A., Dakwale, V. A., & Ralegaonkar, R. V. (2021). Reduction of embodied energy and construction cost of affordable houses through efficient architectural design: A case study in Indian scenario. Advances in Civil Engineering, 2021, 1–11. https://doi.org/10.1155/2021/5693101 .
Paper not yet in RePEc: Add citation now
- Bansal, D., Singh, R., & Sawhney, R. L. (2014). Effect of construction materials on embodied energy and cost of buildings: A case study of residential houses in India up to 60 m2 of plinth area. Energy and Buildings, 69, 260–266. https://doi.org/10.1016/j.enbuild.2013.11.006 .
Paper not yet in RePEc: Add citation now
- Bapat, H., Sarkar, D., & Gujar, R. (2021). Selection of sustainable materials for energy savings of infrastructure-transportation project in Ahmedabad, India using BIM and FCM. Journal of Construction in Developing Countries, 26(2), 135–161. https://doi.org/10.21315/jcdc2021.26.2.7 .
Paper not yet in RePEc: Add citation now
- Bardhan, S. (2011). Embodied energy analysis of multi storied residential buildings in urban India. WIT Transactions on Ecology and the Environment, 143, 411–421. https://doi.org/10.2495/ESUS110351 .
Paper not yet in RePEc: Add citation now
- Basbagill, J., Flager, F., Lepech, M., & Fischer, M. (2013). Application of life-cycle assessment to early stage building design for reduced embodied environmental impacts. Building and Environment, 60, 81–92. https://doi.org/10.1016/j.buildenv.2012.11.009 .
Paper not yet in RePEc: Add citation now
- Biswas, W. K. (2014). Carbon footprint and embodied energy consumption assessment of building construction works in Western Australia. International Journal of Sustainable Built Environment, 3(2), 179–186. https://doi.org/10.1016/j.ijsbe.2014.11.004 .
Paper not yet in RePEc: Add citation now
- Bocchini, P., Frangopol, D. M., Ummenhofer, T., & Zinke, T. (2014). Resilience and sustainability of civil infrastructure: Toward a unified approach. Journal of Infrastructure Systems, 20(2), 04014004. https://doi.org/10.1061/(ASCE)IS.1943-555X.0000177 .
Paper not yet in RePEc: Add citation now
- Brooks, E., & Davoudi, S. (2014). Climate justice and retrofitting for energy efficiency: Examples from the UK and China. disP-The Planning Review, 50(3), 101–110. https://doi.org/10.1080/02513625.2014.979048 .
Paper not yet in RePEc: Add citation now
- Cabeza, L. F., Barreneche, C., Miro, L., Martínez, M., Fernandez, A. I., & Urge-Vorsatz, D. (2013a). Affordable construction towards sustainable buildings: Review on embodied energy in building materials. Current Opinion in Environmental Sustainability, 5(2), 229–236. https://doi.org/10.1016/j.cosust.2013.05.005 .
Paper not yet in RePEc: Add citation now
- Cabeza, L. F., Barreneche, C., Miró, L., Morera, J. M., Bartolí, E., & Fernández, A. I. (2013b). Low carbon and low embodied energy materials in buildings: A review. Renewable and Sustainable Energy Reviews, 23, 536–542. https://doi.org/10.1016/j.rser.2013.03.017 .
Paper not yet in RePEc: Add citation now
- Cabeza, L. F., Boquera, L., Chàfer, M., & Vérez, D. (2021). Embodied energy and embodied carbon of structural building materials: Worldwide progress and barriers through literature map analysis. Energy and Buildings, 231, 110612. https://doi.org/10.1016/j.enbuild.2020.110612 .
Paper not yet in RePEc: Add citation now
- Cabeza, L. F., Rincón, L., Vilariño, V., Pérez, G., & Castell, A. (2014). Life cycle assessment (LCA) and life cycle energy analysis (LCEA) of buildings and the building sector: A review. Renewable and Sustainable Energy Reviews, 29, 394–416. https://doi.org/10.1016/j.rser.2013.08.037 .
Paper not yet in RePEc: Add citation now
Caldas, L. R., Silva, M. V., Silva, V. P., Carvalho, M. T. M., & Toledo Filho, R. D. (2022). How different tools contribute to climate change mitigation in a circular building environment? A systematic literature review. Sustainability, 14(7), 3759. https://doi.org/10.3390/su14073759 .
- Carvalho, J. P., Almeida, M., Bragança, L., & Mateus, R. (2021). Bim-based energy analysis and sustainability assessment: Application to Portuguese buildings. Buildings, 11(6), 246. https://doi.org/10.3390/buildings11060246 .
Paper not yet in RePEc: Add citation now
- Cellura, M., Guarino, F., Longo, S., & Mistretta, M. (2014). Energy life-cycle approach in Net zero energy buildings balance: Operation and embodied energy of an Italian case study. Energy and Buildings, 72, 371–381. https://doi.org/10.1016/j.enbuild.2013.12.046 .
Paper not yet in RePEc: Add citation now
- Chang, Y., Ries, R. J., & Lei, S. (2012). The embodied energy and emissions of a high-rise education building: A quantification using process-based hybrid life cycle inventory model. Energy and Buildings, 55, 790–798. https://doi.org/10.1016/j.enbuild.2012.10.019 .
Paper not yet in RePEc: Add citation now
- Chastas, P., Theodosiou, T., & Bikas, D. (2016). Embodied energy in residential buildings-towards the nearly zero energy building: A literature review. Building and environment, 105, 267–282.
Paper not yet in RePEc: Add citation now
- Chastas, P., Theodosiou, T., Bikas, D., & Kontoleon, K. (2017). Embodied energy and nearly zero energy buildings: A review in residential buildings. Procedia Environmental Sciences, 38, 554–561. https://doi.org/10.1016/j.proenv.2017.03.123 .
Paper not yet in RePEc: Add citation now
Chau, C. K., Leung, T. M., & Ng, W. Y. (2015). A review on life cycle assessment, life cycle energy assessment and life cycle carbon emissions assessment on buildings. Applied Energy, 143, 395–413. https://doi.org/10.1016/j.apenergy.2015.01.023 .
- Chaudhary, M. T. A., & Piracha, A. (2013). Examining the role of structural engineers in green building ratings and sustainable development. Australian Journal of Structural Engineering, 14(3), 217–228. https://doi.org/10.7158/13287982.2013.11465134 .
Paper not yet in RePEc: Add citation now
- Cheng, B., Lu, K., Li, J., Chen, H., Luo, X., & Shafique, M. (2022). Comprehensive assessment of embodied environmental impacts of buildings using normalized environmental impact factors. Journal of Cleaner Production, 334, 130083. https://doi.org/10.1016/j.jclepro.2021.130083 .
Paper not yet in RePEc: Add citation now
- Cherian, P., Palaniappan, S., Menon, D., & Anumolu, M. P. (2020). Comparative study of embodied energy of affordable houses made using GFRG and conventional building technologies in India. Energy and Buildings, 223, 110138. https://doi.org/10.1016/j.enbuild.2020.110138 .
Paper not yet in RePEc: Add citation now
- Çimen, Ö. (2021). Construction and built environment in circular economy: A comprehensive literature review. Journal of Cleaner Production. https://doi.org/10.1016/j.jclepro.2021.127180 .
Paper not yet in RePEc: Add citation now
- Costanza, R. (1980). Embodied energy and economic valuation. Science, 210(4475), 1219–1224. https://doi.org/10.1126/science.210.4475.1219 .
Paper not yet in RePEc: Add citation now
- Crawford, R. (2011). Life cycle assessment in the built environment. Routledge. https://doi.org/10.4324/9780203868171 .
Paper not yet in RePEc: Add citation now
- Crawford, R. H. (2005). Validation of the use of input-output data for embodied energy analysis of the Australian construction industry. Journal of Construction Research, 6(01), 71–90. https://doi.org/10.1142/S1609945105000250 .
Paper not yet in RePEc: Add citation now
- Crawford, R. H., & Stephan, A. (2013). The significance of embodied energy in certified passive houses. International Journal of Architectural and Environmental Engineering, 7(6), 427–433.
Paper not yet in RePEc: Add citation now
- Crawford, R. H., & Treloar, G. J. (2003). Validation of the use of Australian input output data for building embodied energy simulation. In Eighth international IBPSA conference (pp. 235–242). Netherlands: Eindhoven.
Paper not yet in RePEc: Add citation now
- Danatzko, J. M., & Sezen, H. (2011). Sustainable structural design methodologies. Practice Periodical on Structural Design and Construction, 16(4), 186–190. https://doi.org/10.1061/(ASCE)SC.1943-5576.0000095 .
Paper not yet in RePEc: Add citation now
- Dascalaki, E. G., Argiropoulou, P., Balaras, C. A., Droutsa, K. G., & Kontoyiannidis, S. (2021). Analysis of the embodied energy of construction materials in the life cycle assessment of Hellenic residential buildings. Energy and Buildings, 232, 110651. https://doi.org/10.1016/j.enbuild.2020.110651 .
Paper not yet in RePEc: Add citation now
- Dauletbek, A., & Zhou, P. (2022). BIM-based LCA as a comprehensive method for the refurbishment of existing dwellings considering environmental compatibility, energy efficiency, and profitability: A case study in China. Journal of Building Engineering, 46, 103852. https://doi.org/10.1016/j.jobe.2021.103852 .
Paper not yet in RePEc: Add citation now
Davies, P. J., Emmitt, S., & Firth, S. K. (2014). Challenges for capturing and assessing initial embodied energy: A contractor’s perspective. Construction Management and Economics, 32(3), 290–308. https://doi.org/10.1080/01446193.2014.884280 .
- de Lassio, J., & França, J. (2016). Kárida Espirito Santo, Assed Haddad, “Case study: LCA methodology applied to materials management in a Brazilian residential construction site.” Journal of Engineering, 2016, 8513293. https://doi.org/10.1155/2016/8513293 .
Paper not yet in RePEc: Add citation now
- Debnath, A., Singh, S. V., & Singh, Y. P. (1995). Comparative assessment of energy requirements for different types of residential buildings in India. Energy and Buildings, 23(2), 141–146. https://doi.org/10.1016/0378-7788(95)00939-6 .
Paper not yet in RePEc: Add citation now
- Devi, P., & Palaniappan, S. (2014). A case study on life cycle energy use of residential building in Southern India. Energy and Buildings, 80, 247–259. https://doi.org/10.1016/j.enbuild.2014.05.034 .
Paper not yet in RePEc: Add citation now
- Dissanayake, D. M. K. W., Jayasinghe, C., & Jayasinghe, M. T. R. (2017). A comparative embodied energy analysis of a house with recycled expanded polystyrene (EPS) based foam concrete wall panels. Energy and Buildings, 135, 85–94. https://doi.org/10.1016/j.enbuild.2016.11.044 .
Paper not yet in RePEc: Add citation now
- Dixit, M. K. (2017a). Life cycle embodied energy analysis of residential buildings: A review of literature to investigate embodied energy parameters. Renewable and Sustainable Energy Reviews, 79, 390–413. https://doi.org/10.1016/j.rser.2017.05.051 .
Paper not yet in RePEc: Add citation now
Dixit, M. K. (2017b). Embodied energy analysis of building materials: An improved IO-based hybrid method using sectoral disaggregation. Energy, 124, 46–58. https://doi.org/10.1016/j.energy.2017.02.047 .
- Dixit, M. K. (2017c). Embodied energy and cost of building materials: correlation analysis. Building Research & Information, 45(5), 508–523. https://doi.org/10.1080/09613218.2016.1191760 .
Paper not yet in RePEc: Add citation now
- Dixit, M. K., & Singh, S. (2018). Embodied energy analysis of higher education buildings using an input-output-based hybrid method. Energy and Buildings, 161, 41–54. https://doi.org/10.1016/j.enbuild.2017.12.022 .
Paper not yet in RePEc: Add citation now
- Dixit, M. K., Culp, C. H., & Fernández-Solís, J. L. (2013). System boundary for embodied energy in buildings: A conceptual model for definition. Renewable and Sustainable Energy Reviews, 21, 153–164. https://doi.org/10.1016/j.rser.2012.12.037 .
Paper not yet in RePEc: Add citation now
- Dixit, M. K., Culp, C. H., & Fernandez-Solis, J. L. (2015). Embodied energy of construction materials: Integrating human and capital energy into an IO-based hybrid model. Environmental Science & Technology, 49(3), 1936–1945. https://doi.org/10.1021/es503896v .
Paper not yet in RePEc: Add citation now
- Dixit, M. K., Fernández-Solís, J. L., Lavy, S., & Culp, C. H. (2010). Identification of parameters for embodied energy measurement: A literature review. Energy and Buildings, 42(8), 1238–1247. https://doi.org/10.1016/j.enbuild.2010.02.016 .
Paper not yet in RePEc: Add citation now
- Dixit, M. K., Fernández-Solís, J. L., Lavy, S., & Culp, C. H. (2012). Need for an embodied energy measurement protocol for buildings: A review paper. Renewable and Sustainable Energy Reviews, 16(6), 3730–3743. https://doi.org/10.1016/j.rser.2012.03.021 .
Paper not yet in RePEc: Add citation now
- EN 15804:2012 (2012). Sustainability of construction works. Environmental product declarations. Core rules for the product category of construction products. BSI.
Paper not yet in RePEc: Add citation now
- EN 15978:2011. (2011). Sustainability of construction works—Assessment of environmental performance of buildings—Calculation method. European Standard: Brussels, Belgium.
Paper not yet in RePEc: Add citation now
- Fay, R., & Treloar, G. (2003). Life cycle energy analysis—A measure of the environmental impact of buildings. In Environment design guide (pp. 1–7). Retrieved from, https://www.jstor.org/stable/26148428 .
Paper not yet in RePEc: Add citation now
- Fay, R., Treloar, G., & Iyer-Raniga, U. (2000). Life-cycle energy analysis of buildings: A case study. Building Research & Information, 28(1), 31–41. https://doi.org/10.1080/096132100369073 .
Paper not yet in RePEc: Add citation now
- Ferdosi, H., Abbasianjahromi, H., Banihashemi, S., & Ravanshadnia, M. (2022). BIM applications in sustainable construction: scientometric and state-of-the-art review. International Journal of Construction Management. https://doi.org/10.1080/15623599.2022.2029679 .
Paper not yet in RePEc: Add citation now
- Foraboschi, P., Mercanzin, M., & Trabucco, D. (2014). Sustainable structural design of tall buildings based on embodied energy. Energy and Buildings, 68, 254–269. https://doi.org/10.1016/j.enbuild.2013.09.003 .
Paper not yet in RePEc: Add citation now
- Gan, V. J., Deng, M., Tse, K. T., Chan, C. M., Lo, I. M., & Cheng, J. C. (2018). Holistic BIM framework for sustainable low carbon design of high-rise buildings. Journal of Cleaner Production, 195, 1091–1104. https://doi.org/10.1016/j.jclepro.2018.05.272 .
Paper not yet in RePEc: Add citation now
- Gaspar, P. L., & Santos, A. L. (2015). Embodied energy on refurbishment vs. demolition: A southern Europe case study. Energy and Buildings, 87, 386–394. https://doi.org/10.1016/j.enbuild.2014.11.040 .
Paper not yet in RePEc: Add citation now
- Gharehbaghi, K., Farnes, K., Kucharski, L., & Fragomeni, S. (2022). The adaptability of evolving green high-rise construction: Embodied energy dynamics in Australian high-rise buildings. International Journal of Sustainable Energy, 41(10), 1383–1398. https://doi.org/10.1080/14786451.2022.2052291 .
Paper not yet in RePEc: Add citation now
- Giordano, R., Serra, V., Demaria, E., & Duzel, A. (2017). Embodied energy versus operational energy in a nearly zero energy building case study. Energy Procedia, 111, 367–376. https://doi.org/10.1016/j.egypro.2017.03.198 .
Paper not yet in RePEc: Add citation now
- Giordano, R., Serra, V., Tortalla, E., Valentini, V., & Aghemo, C. (2015). Embodied energy and operational energy assessment in the framework of nearly zero energy building and building energy rating. Energy Procedia, 78, 3204–3209. https://doi.org/10.1016/j.egypro.2015.11.781 .
Paper not yet in RePEc: Add citation now
- Goggins, J., Keane, T., & Kelly, A. (2010). The assessment of embodied energy in typical reinforced concrete building structures in Ireland. Energy and Buildings, 42(5), 735–744. https://doi.org/10.1016/j.enbuild.2009.11.013 .
Paper not yet in RePEc: Add citation now
- Gustavsson, L., & Joelsson, A. (2010). Life cycle primary energy analysis of residential buildings. Energy and Buildings, 42(2), 210–220. https://doi.org/10.1016/j.enbuild.2009.08.017 .
Paper not yet in RePEc: Add citation now
- Haddad, A. N., Sedrez, M. M., Najjar, M. K., Hammad, A. W. A., & Soares, C. A. P. (2023). Characterising embodied energy in construction activities using energy inventory life cycle assessment method. Buildings. https://doi.org/10.3390/buildings13010052 .
Paper not yet in RePEc: Add citation now
- Hammond, G. P., & Jones, C. I. (2008). Embodied energy and carbon in construction materials. Proceedings of the Institution of Civil Engineers-Energy, 161(2), 87–98. https://doi.org/10.1680/ener.2008.161.2.87 .
Paper not yet in RePEc: Add citation now
- Henry, A. F., Elambo, N. G., Tah, J. H. M., Fabrice, O. E., & Blanche, M. M. (2014). Embodied energy and CO2 analyses of mud-brick and cement-block houses. Aims’s Energy, 2(1), 18–40. https://doi.org/10.3934/energy.2014.1.18 .
Paper not yet in RePEc: Add citation now
- Hong, T., Ji, C., Jang, M., & Park, H. (2014). Assessment model for energy consumption and greenhouse gas emissions during building construction. Journal of Management in Engineering, 30(2), 226–235. https://doi.org/10.1061/(ASCE)ME.1943-5479.0000199 .
Paper not yet in RePEc: Add citation now
Hu, M. (2020). A Building life-cycle embodied performance index—The relationship between embodied energy, embodied carbon and environmental impact. Energies, 13(8), 1905. https://doi.org/10.3390/en13081905 .
- Hu, M., & Milner, D. (2020). Visualizing the research of embodied energy and environmental impact research in the building and construction field: A bibliometric analysis. Developments in the Built Environment, 3, 100010. https://doi.org/10.1016/j.dibe.2020.100010 .
Paper not yet in RePEc: Add citation now
- Ismail, M. A., & Mueller, C. T. (2021). Minimizing embodied energy of reinforced concrete floor systems in developing countries through shape optimization. Engineering Structures, 246, 112955. https://doi.org/10.1016/j.engstruct.2021.112955 .
Paper not yet in RePEc: Add citation now
- ISO 14025:2006 (2006). Environmental labels and declarations: Type III environmental declarations—Principles and procedures.
Paper not yet in RePEc: Add citation now
- ISO 14040:2006 (2006). Environmental management—Life cycle assessment—Principles and framework. International Organization for Standardization (ISO). Geneva, Switzerland.
Paper not yet in RePEc: Add citation now
- ISO 14044:2006 (2006). Environmental management—Life cycle assessment—Requirements and guidelines. International Organization for Standardization (ISO). Geneva, Switzerland.
Paper not yet in RePEc: Add citation now
- Jiao, Y., Lloyd, C. R., & Wakes, S. J. (2012). The relationship between total embodied energy and cost of commercial buildings. Energy and Buildings, 52, 20–27. https://doi.org/10.1016/j.enbuild.2012.05.028 .
Paper not yet in RePEc: Add citation now
- Jrade, A., & Jalaei, F. (2013). Integrating building information modelling with sustainability to design building projects at the conceptual stage. Building Simulation, 6, 429–444. https://doi.org/10.1007/s12273-013-0120-0 .
Paper not yet in RePEc: Add citation now
- Keoleian, G. A., Blanchard, S., & Reppe, P. (2001). Life-cycle energy, costs, and strategies for improving a single-family house. Journal of Industrial Ecology, 4(2), 135–156. https://doi.org/10.1162/108819800569726 .
Paper not yet in RePEc: Add citation now
- Kim, K., & Yu, J. (2016). BIM-based building energy load calculation system for designers. KSCE Journal of Civil Engineering, 20, 549–563. https://doi.org/10.1007/s12205-015-1625-0 .
Paper not yet in RePEc: Add citation now
- Kneifel, J., O’Rear, E., Webb, D., & O’Fallon, C. (2018). An exploration of the relationship between improvements in energy efficiency and life-cycle energy and carbon emissions using the BIRDS low-energy residential database. Energy and Buildings, 160, 19–33. https://doi.org/10.1016/j.enbuild.2017.11.030 .
Paper not yet in RePEc: Add citation now
- Koezjakov, A., Urge-Vorsatz, D., Crijns-Graus, W., & Van den Broek, M. (2018). The relationship between operational energy demand and embodied energy in Dutch residential buildings. Energy and Buildings, 165, 233–245. https://doi.org/10.1016/j.enbuild.2018.01.036 .
Paper not yet in RePEc: Add citation now
- Kumar, P. P., Venkatraj, V., & Dixit, M. K. (2022). Evaluating the temporal representativeness of embodied energy data: A case study of higher education buildings. Energy and Buildings, 254, 111596. https://doi.org/10.1016/j.enbuild.2021.111596 .
Paper not yet in RePEc: Add citation now
- Kupwade-Patil, K., De Wolf, C., Chin, S., Ochsendorf, J., Hajiah, A. E., Al-Mumin, A., & Büyüköztürk, O. (2018). Impact of embodied energy on materials/buildings with partial replacement of ordinary Portland cement (OPC) by natural Pozzolanic Volcanic Ash. Journal of Cleaner Production, 177, 547–554. https://doi.org/10.1016/j.jclepro.2017.12.234 .
Paper not yet in RePEc: Add citation now
Kurian, R., Kulkarni, K. S., Ramani, P. V., Meena, C. S., Kumar, A., & Cozzolino, R. (2021). Estimation of carbon footprint of residential building in warm humid climate of India through BIM. Energies, 14(14), 4237. https://doi.org/10.3390/en14144237 .
Langston, Y. L., & Langston, C. A. (2008). Reliability of building embodied energy modelling: An analysis of 30 Melbourne case studies. Construction Management and Economics, 26(2), 147–160. https://doi.org/10.1080/01446190701716564 .
- Lenzen, M. (2001). Errors in conventional and Input-Output-based life—Cycle inventories. Journal of Industrial Ecology, 4(4), 127–148. https://doi.org/10.1162/10881980052541981 .
Paper not yet in RePEc: Add citation now
- Lolli, N., Fufa, S. M., & Inman, M. (2017). A parametric tool for the assessment of operational energy use, embodied energy and embodied material emissions in building. Energy Procedia, 111, 21–30. https://doi.org/10.1016/j.egypro.2017.03.004 .
Paper not yet in RePEc: Add citation now
- Lotteau, M., Loubet, P., & Sonnemann, G. (2017). An analysis to understand how the shape of a concrete residential building influences its embodied energy and embodied carbon. Energy and Buildings, 154, 1–11. https://doi.org/10.1016/j.enbuild.2017.08.048 .
Paper not yet in RePEc: Add citation now
- Lotteau, M., Loubet, P., Pousse, M., Dufrasnes, E., & Sonnemann, G. (2015). Critical review of life cycle assessment (LCA) for the built environment at the neighborhood scale. Building and Environment, 93, 165–178. https://doi.org/10.1016/j.buildenv.2015.06.029 .
Paper not yet in RePEc: Add citation now
- Lu, Z. H., & Omar, W. M. S. W. (2019). Environmental impact assessment of tall building structural design with precast and conventional building system on embodied energy and carbon emission. AIP Conference Proceedings, 2157(1), 020039. https://doi.org/10.1063/1.5126574 .
Paper not yet in RePEc: Add citation now
- Lukić, I., Premrov, M., Passer, A., & Leskovar, V. Ž. (2021). Embodied energy and GHG emissions of residential multi-storey timber buildings by height: A case with structural connectors and mechanical fasteners. Energy and Buildings, 252, 111387. https://doi.org/10.1016/j.enbuild.2021.111387 .
Paper not yet in RePEc: Add citation now
- Luo, Z., Lu, Y., Cang, Y., & Yang, L. (2022). Study on dual-objective optimization method of life cycle energy consumption and economy of office building based on HypE genetic algorithm. Energy and Buildings. https://doi.org/10.1016/j.enbuild.2021.111749 .
Paper not yet in RePEc: Add citation now
- Ma, L. (2021). A BIM-based life cycle assessment tool of embodied energy and environmental impacts of tall buildings. Prometheus.
Paper not yet in RePEc: Add citation now
- Malmqvist, T., Nehasilova, M., Moncaster, A., Birgisdottir, H., Rasmussen, F. N., Wiberg, A. H., & Potting, J. (2018). Design and construction strategies for reducing embodied impacts from buildings–Case study analysis. Energy and Buildings, 166, 35–47. https://doi.org/10.1016/j.enbuild.2018.01.033 .
Paper not yet in RePEc: Add citation now
- Martí, J. V., García-Segura, T., & Yepes, V. (2016). Structural design of precast-prestressed concrete U-beam road bridges based on embodied energy. Journal of Cleaner Production, 120, 231–240. https://doi.org/10.1016/j.jclepro.2016.02.024 .
Paper not yet in RePEc: Add citation now
- Mehrvarz, N., Barati, K., & Shen, X. (2021). Embodied energy modeling of modular residential projects using BIM. In ISARC. Proceedings of the international symposium on automation and robotics in construction, vol. 38 (pp. 483–490).
Paper not yet in RePEc: Add citation now
- Menoufi, K. A. I. (2011). Life cycle analysis and life cycle impact assessment methodologies: A state of the art. Retrieved from, http://hdl.handle.net/10459.1/45831 .
Paper not yet in RePEc: Add citation now
- Miller, D., & Doh, J. H. (2015). Incorporating sustainable development principles into building design: A review from a structural perspective including case study. The Structural Design of Tall and Special Buildings, 24(6), 421–439. https://doi.org/10.1002/tal.1172 .
Paper not yet in RePEc: Add citation now
- Miller, D., Doh, J. H., Lima, M. M., & van Oers, N. V. (2014). Embodied energy assessment of the structural system in concrete buildings: A case study on 7 South East Queensland structures. In Proceedings of 23 rd Australasian conference on the mechanics of structures and materials, Southern Cross University, Byron Bay, NSW, Australia.
Paper not yet in RePEc: Add citation now
- Minunno, R., O’Grady, T., Morrison, G. M., & Gruner, R. L. (2021). Investigating the embodied energy and carbon of buildings: A systematic literature review and meta-analysis of life cycle assessments. Renewable and Sustainable Energy Reviews, 143, 110935. https://doi.org/10.1016/j.rser.2021.110935 .
Paper not yet in RePEc: Add citation now
- Mitterpach, J., Vaňová, R., Šedivka, P., & Štefko, J. (2022). A comparison of the environmental performance between construction materials and operational energy of nearly zero-energy wood-based educational building. Forests, 13(2), 220. https://doi.org/10.3390/f13020220 .
Paper not yet in RePEc: Add citation now
- Mohammed, A. B. (2019). Applying BIM to achieve sustainability throughout a building life cycle towards a sustainable BIM model. International Journal of Construction Management. https://doi.org/10.1080/15623599.2019.1615755 .
Paper not yet in RePEc: Add citation now
- Monahan, J., & Powell, J. C. (2011). An embodied carbon and energy analysis of modern methods of construction in housing: A case study using a lifecycle assessment framework. Energy and Buildings, 43(1), 179–188. https://doi.org/10.1016/j.enbuild.2010.09.005 .
Paper not yet in RePEc: Add citation now
- Moncaster, A. M., & Song, J. Y. (2012). A comparative review of existing data and methodologies for calculating embodied energy and carbon of buildings. International Journal of Sustainable Building Technology and Urban Development, 3(1), 26–36. https://doi.org/10.1080/2093761X.2012.673915 .
Paper not yet in RePEc: Add citation now
- Monteiro, H., Fernandez, J. E., & Freire, F. (2016). Comparative life-cycle energy analysis of a new and an existing house: The significance of occupant’s habits, building systems and embodied energy. Sustainable Cities and Society, 26, 507–518. https://doi.org/10.1016/j.scs.2016.06.002 .
Paper not yet in RePEc: Add citation now
- Mukkavaara, J., & Shadram, F. (2021). An integrated optimization and sensitivity analysis approach to support the life cycle energy trade-off in building design. Energy and Buildings, 253, 111529. https://doi.org/10.1016/j.enbuild.2021.111529 .
Paper not yet in RePEc: Add citation now
- Najjar, N., Figueiredo, K., Palumbo, M., & Haddad, A. (2017). Integration of BIM and LCA: Evaluating the environmental impacts of building materials at an early stage of designing a typical office building. Journal of Building Engineering, 14, 115–126. https://doi.org/10.1016/j.jobe.2017.10.005 .
Paper not yet in RePEc: Add citation now
Nässén, J., Holmberg, J., Wadeskog, A., & Nyman, M. (2007). Direct and indirect energy use and carbon emissions in the production phase of buildings: An input–output analysis. Energy, 32(9), 1593–1602. https://doi.org/10.1016/j.energy.2007.01.002 .
- Naveen Kishore, K., & Chouhan, J. S. (2014). Embodied energy assessment and comparisons for a residential building using conventional and alternative materials in Indian context. Journal of The Institution of Engineers (India) Series A, 95, 117–127. https://doi.org/10.1007/s40030-014-0075-x .
Paper not yet in RePEc: Add citation now
- Nizam, R. S., Zhang, C., & Tian, L. (2018). A BIM based tool for assessing embodied energy for buildings. Energy and Buildings, 170, 1–14. https://doi.org/10.1016/j.enbuild.2018.03.067 .
Paper not yet in RePEc: Add citation now
- Pakdel, A., Ayatollahi, H., & Sattary, S. (2021). Embodied energy and CO2 emissions of life cycle assessment (LCA) in the traditional and contemporary Iranian construction systems. Journal of Building Engineering, 39, 102310. https://doi.org/10.1016/j.jobe.2021.102310 .
Paper not yet in RePEc: Add citation now
- Peet, J. (1993). Input–output methods of energy analysis. International Journal of Global Energy Issues, 5(1), 10–18. https://doi.org/10.1504/IJGEI.1993.063626 .
Paper not yet in RePEc: Add citation now
- Pongiglione, M., & Calderini, C. (2016). Sustainable structural design: Comprehensive literature review. Journal of Structural Engineering, 142(12), 04016139. https://doi.org/10.1061/(ASCE)ST.1943-541X.0001621 .
Paper not yet in RePEc: Add citation now
- Praseeda, K. I., Mani, M., & Reddy, B. V. (2014). Assessing impact of material transition and thermal comfort models on embodied and operational energy in vernacular dwellings (India). Energy Procedia, 54, 342–351. https://doi.org/10.1016/j.egypro.2014.07.277 .
Paper not yet in RePEc: Add citation now
- Primasetra, A., & Larasati, D. (2021). Development of the life cycle analysis (LCA) method in calculating embodied energy materials on residential buildings. IOP Conference Series: Earth and Environmental Science, 738(1), 012014. https://doi.org/10.1088/1755-1315/738/1/012014 .
Paper not yet in RePEc: Add citation now
- Primasetra, A., Larasati, D., & Zuraida, S. (2021). BIM implementation on design phase toward low embodied energy apartment: comparative study on 3 alternatives architectural wall materials. IOP Conference Series: Earth and Environmental Science, 738(1), 012020. https://doi.org/10.1088/1755-1315/738/1/012020 .
Paper not yet in RePEc: Add citation now
- Pullen, S. (2000). Estimating the embodied energy of timber building products. Journal of the Institute of Wood Science, 15(3), 147–151.
Paper not yet in RePEc: Add citation now
- Ramesh, T., Prakash, R., & Shukla, K. K. (2014). Life cycle energy of low rise residential buildings in Indian context. Open Journal of Energy Efficiency, 3(04), 108.
Paper not yet in RePEc: Add citation now
- Rasmussen, F. N., Malmqvist, T., Moncaster, A., Wiberg, A. H., & Birgisdóttir, H. (2018). Analysing methodological choices in calculations of embodied energy and GHG emissions from buildings. Energy and Buildings, 158, 1487–1498. https://doi.org/10.1016/j.enbuild.2017.11.013 .
Paper not yet in RePEc: Add citation now
Rauf, A., & Crawford, R. H. (2015). Building service life and its effect on the life cycle embodied energy of buildings. Energy, 79, 140–148. https://doi.org/10.1016/j.energy.2014.10.093 .
- Reddy, B. V. (2009). Sustainable materials for low carbon buildings. International Journal of Low-Carbon Technologies, 4, 175–181. https://doi.org/10.1093/ijlct/ctp025 .
Paper not yet in RePEc: Add citation now
- Reddy, B. V., & Jagadish, K. S. (2003). Embodied energy of common and alternative building materials and technologies. Energy and Buildings, 35(2), 129–137. https://doi.org/10.1016/S0378-7788(01)00141-4 .
Paper not yet in RePEc: Add citation now
- Reddy, B. V., Leuzinger, G., & Sreeram, V. S. (2014). Low embodied energy cement stabilised rammed earth building: A case study. Energy and Buildings, 68, 541–546. https://doi.org/10.1016/j.enbuild.2013.09.051 .
Paper not yet in RePEc: Add citation now
- Safari, K., & AzariJafari, H. (2021). Challenges and opportunities for integrating BIM and LCA: Methodological choices and framework development. Sustainable Cities and Society, 67, 102728. https://doi.org/10.1016/j.scs.2021.102728 .
Paper not yet in RePEc: Add citation now
- Salehian, S., Ismail, M. A., & Ariffin, A. R. M. (2020). Assessment on embodied energy of non-load bearing walls for office buildings. Buildings, 10(4), 79. https://doi.org/10.3390/buildings10040079 .
Paper not yet in RePEc: Add citation now
- Shadram, F., & Mukkavaara, J. (2018). An integrated BIM-based framework for the optimization of the trade-off between embodied and operational energy. Energy and Buildings, 158, 1189–1205. https://doi.org/10.1016/j.enbuild.2017.11.017 .
Paper not yet in RePEc: Add citation now
- Shadram, F., Johansson, T. D., Lu, W., Schade, J., & Olofsson, T. (2016). An integrated BIM-based framework for minimizing embodied energy during building design. Energy and Buildings, 128, 592–604. https://doi.org/10.1016/j.enbuild.2016.07.007 .
Paper not yet in RePEc: Add citation now
- Sharma, A., & Marwaha, B. M. (2017). A methodology for energy performance classification of residential building stock of Hamirpur. HBRC Journal, 13(3), 337–352. https://doi.org/10.1016/j.hbrcj.2015.11.003 .
Paper not yet in RePEc: Add citation now
- Shirazi, A., & Ashuri, B. (2018). Embodied life cycle assessment comparison of single-family residential houses considering the 1970s transition in construction industry: Atlanta case study. Building and Environment, 140, 55–67. https://doi.org/10.1016/j.buildenv.2018.05.021 .
Paper not yet in RePEc: Add citation now
- Shrivastava, S., & Chini, A. (2012). Using building information modeling to assess the initial embodied energy of a building. International Journal of Construction Management, 12(1), 51–63. https://doi.org/10.1080/15623599.2012.10773184 .
Paper not yet in RePEc: Add citation now
Shukla, A., Tiwari, G. N., & Sodha, M. S. (2009). Embodied energy analysis of adobe house. Renewable Energy, 34(3), 755–761. https://doi.org/10.1016/j.renene.2008.04.002 .
Sicignano, E., Di Ruocco, G., & Melella, R. (2019). Mitigation strategies for reduction of embodied energy and carbon, in the construction systems of contemporary quality architecture. Sustainability, 11(14), 3806. https://doi.org/10.3390/su11143806 .
- Singh, A., Berghorn, G., Joshi, S., & Syal, M. (2011). Review of life-cycle assessment applications in building construction. Journal of Architectural Engineering, 17(1), 15–23. https://doi.org/10.1061/(ASCE)AE.1943-5568.0000026 .
Paper not yet in RePEc: Add citation now
- Stendahl, M. F., Dubois, M. C., Forgues, D., & Hjelseth, E. (2022). Building information modeling for environmental impact assessment in early design phases: A literature review. Open Journal of Applied Sciences, 12(1), 59–81. https://doi.org/10.4236/ojapps.2022.121006 .
Paper not yet in RePEc: Add citation now
Stephan, A., & Stephan, L. (2016). Life cycle energy and cost analysis of embodied, operational and user-transport energy reduction measures for residential buildings. Applied Energy, 161, 445–464. https://doi.org/10.1016/j.apenergy.2015.10.023 .
- Su, X., & Zhang, X. (2016). A detailed analysis of the embodied energy and carbon emissions of steel-construction residential buildings in China. Energy and Buildings, 119, 323–330. https://doi.org/10.1016/j.enbuild.2016.03.070 .
Paper not yet in RePEc: Add citation now
- Takano, A., Pal, S. K., Kuittinen, M., & Alanne, K. (2015). Life cycle energy balance of residential buildings: A case study on hypothetical building models in Finland. Energy and Buildings, 105, 154–164. https://doi.org/10.1016/j.enbuild.2015.07.060 .
Paper not yet in RePEc: Add citation now
- Talakonukula, R., Ravi, P., & Karunesh, K. S. (2013). Life cycle energy analysis of a multifamily residential house: a case study in Indian context. Open Journal of Energy Efficiency. http://www.scirp.org/journal/PaperInformation.aspx?PaperID=29012 .
Paper not yet in RePEc: Add citation now
- Tam, V. W., Zhou, Y., Illankoon, C., & Le, K. N. (2022). A critical review on BIM and LCA integration using the ISO 14040 framework. Building and Environment, 213, 108865. https://doi.org/10.1016/j.buildenv.2022.108865 .
Paper not yet in RePEc: Add citation now
- Tarabieh, K., & Khorshed, M. (2019). Optimizing evaluation methods for the embodied energy and carbon management of existing buildings in Egypt. Buildings, 9(4), 90. https://doi.org/10.3390/buildings9040090 .
Paper not yet in RePEc: Add citation now
- Tavares, V., & Freire, F. (2022). Life cycle assessment of a prefabricated house for seven locations in different climates. Journal of Building Engineering, 53, 104504. https://doi.org/10.1016/j.jobe.2022.104504 .
Paper not yet in RePEc: Add citation now
- Tavares, V., Lacerda, N., & Freire, F. (2019). Embodied energy and greenhouse gas emissions analysis of a prefabricated modular house: The “Moby” case study. Journal of Cleaner Production, 212, 1044–1053. https://doi.org/10.1016/j.jclepro.2018.12.028 .
Paper not yet in RePEc: Add citation now
- Thormark, C. (2002). A low energy building in a life cycle: Its embodied energy, energy need for operation and recycling potential. Building and Environment, 37(4), 429–435. https://doi.org/10.1016/S0360-1323(01)00033-6 .
Paper not yet in RePEc: Add citation now
- Treloar, G. J. (1997). Extracting embodied energy paths from input–output tables: Towards an input–output-based hybrid energy analysis method. Economic Systems Research, 9(4), 375–391. https://doi.org/10.1080/09535319700000032 .
Paper not yet in RePEc: Add citation now
- Treloar, G. J. (1998). A comprehensive embodied energy analysis framework. Ph.D. Thesis. Deakin University, Victoria, Australia.
Paper not yet in RePEc: Add citation now
Treloar, G. J., Love, P. E. D., Faniran, O. O., & Iyer-Raniga, U. (2000). A hybrid life cycle assessment method for construction. Construction Management & Economics, 18(1), 5–9. https://doi.org/10.1080/014461900370898 .
Treloar, G. J., Love, P. E., & Holt, G. D. (2001). Using national input/output data for embodied energy analysis of individual residential buildings. Construction Management and Economics, 19(1), 49–61. https://doi.org/10.1080/014461901452076 .
- Tricoire, J.-P. (2021). Why buildings are the foundation of an energy-efficient future. Energy transition. World economic Forum. Retrieved from, https://www.weforum.org/agenda/2021/02/why-the-buildings-of-the-future-are-key-to-an-efficient-energy-ecosystem/ .
Paper not yet in RePEc: Add citation now
- Tumminia, G., Guarino, F., Longo, S., Mistretta, M., Cellura, M., Aloisio, D., & Antonucci, V. (2017). Life cycle energy performances of a net zero energy prefabricated building in Sicily. Energy Procedia, 140, 486–494. https://doi.org/10.1016/j.egypro.2017.11.160 .
Paper not yet in RePEc: Add citation now
- Tushar, Q., Bhuiyan, M. A., Zhang, G., & Maqsood, T. (2021). An integrated approach of BIM-enabled LCA and energy simulation: The optimized solution towards sustainable development. Journal of Cleaner Production, 289, 125622. https://doi.org/10.1016/j.jclepro.2020.125622 .
Paper not yet in RePEc: Add citation now
- Tyréns, A. (2014). Product category rules according to ISO 14025:2006 Product group-2014:02. 2014-02-26 valid until 2017-02-26 .
Paper not yet in RePEc: Add citation now
- Udawattha, C., & Halwatura, R. (2016). Embodied energy of mud concrete block (MCB) versus brick and cement blocks. Energy and Buildings, 126, 28–35. https://doi.org/10.1016/j.enbuild.2016.04.059 .
Paper not yet in RePEc: Add citation now
- Uddin, M. N., Wei, H. H., Chi, H. L., Ni, M., & Elumalai, P. (2021). Building information modeling (BIM) incorporated green building analysis: An application of local construction materials and sustainable practice in the built environment. Journal of Building Pathology and Rehabilitation, 6, 1–25. https://doi.org/10.1007/s41024-021-00106-5 .
Paper not yet in RePEc: Add citation now
- United Nations Department of Economic and Social Affairs, Population Division (2022). World Population Prospects 2022: Summary of Results. UN DESA/POP/2022/TR/NO. 3. Retrieved December 1, 2022, from https://www.un.org/development/desa/pd/sites/www.un.org.development.desa.pd/files/wpp2022_summary_of_results.pdf .
Paper not yet in RePEc: Add citation now
- Upton, B., Miner, R., Spinney, M., & Heath, L. S. (2008). The greenhouse gas and energy impacts of using wood instead of alternatives in residential construction in the United States. Biomass and Bioenergy, 32(1), 1–10. https://doi.org/10.1016/j.biombioe.2007.07.001 .
Paper not yet in RePEc: Add citation now
- Utama, A., & Gheewala, S. H. (2009). Indonesian residential high rise buildings: A life cycle energy assessment. Energy and Buildings, 41(11), 1263–1268. https://doi.org/10.1016/j.enbuild.2009.07.025 .
Paper not yet in RePEc: Add citation now
- Venkatraj, V., & Dixit, M. K. (2021). Life cycle embodied energy analysis of higher education buildings: A comparison between different LCI methodologies. Renewable and Sustainable Energy Reviews, 144, 110957. https://doi.org/10.1016/j.rser.2021.110957 .
Paper not yet in RePEc: Add citation now
- Venkatraj, V., Dixit, M. K., Yan, W., & Lavy, S. (2020). Evaluating the impact of operating energy reduction measures on embodied energy. Energy and Buildings, 226, 110340. https://doi.org/10.1016/j.enbuild.2020.110340 .
Paper not yet in RePEc: Add citation now
- Vukotic, L., Fenner, R. A., & Symons, K. (2010). Assessing embodied energy of building structural elements. Proceedings of the Institution of Civil Engineers-Engineering Sustainability, 163(3), 147–158. https://doi.org/10.1680/ensu.2010.163.3.147 .
Paper not yet in RePEc: Add citation now
- Wen, T. J., Siong, H. C., & Noor, Z. Z. (2015). Assessment of embodied energy and global warming potential of building construction using life cycle analysis approach: Case studies of residential buildings in Iskandar Malaysia. Energy and Buildings, 93, 295–302. https://doi.org/10.1016/j.enbuild.2014.12.002 .
Paper not yet in RePEc: Add citation now
Whitworth, A. H., & Tsavdaridis, K. D. (2020). Genetic algorithm for embodied energy optimisation of steel-concrete composite beams. Sustainability, 12(8), 3102. https://doi.org/10.3390/su12083102 .
- Wise, F., Moncaster, A., Jones, D., & Dewberry, E. (2019). Considering embodied energy and carbon in heritage buildings–a review. IOP Conference Series: Earth and Environmental Science, 329(1), 012002. https://doi.org/10.1088/1755-1315/329/1/012002 .
Paper not yet in RePEc: Add citation now
- Wong, J. K. W., & Zhou, J. (2015). Enhancing environmental sustainability over building life cycles through green BIM: A review. Automation in Construction, 57, 156–165. https://doi.org/10.1016/j.autcon.2015.06.003 .
Paper not yet in RePEc: Add citation now
- Yeo, D., & Gabbai, R. D. (2011). Sustainable design of reinforced concrete structures through embodied energy optimization. Energy and Buildings, 43(8), 2028–2033. https://doi.org/10.1016/j.enbuild.2011.04.014 .
Paper not yet in RePEc: Add citation now
Yohanis, Y. G., & Norton, B. (2002). Life-cycle operational and embodied energy for a generic single-storey office building in the UK. Energy, 27(1), 77–92. https://doi.org/10.1016/S0360-5442(01)00061-5 .
- Yoon, Y. C., Kim, K. H., Lee, S. H., & Yeo, D. (2018). Sustainable design for reinforced concrete columns through embodied energy and CO2 emission optimization. Energy and Buildings, 174, 44–53. https://doi.org/10.1016/j.enbuild.2018.06.013 .
Paper not yet in RePEc: Add citation now
- Yu, R., Chen, L., Zhang, D., & Wang, Z. (2020). Life cycle embodied energy analysis of RC structures considering chloride-induced corrosion in seismic regions. Structures, 25, 839–848. https://doi.org/10.1016/j.istruc.2020.03.049 .
Paper not yet in RePEc: Add citation now
- Zeitz, A., Griffin, C. T., & Dusicka, P. (2019). Comparing the embodied carbon and energy of a mass timber structure system to typical steel and concrete alternatives for parking garages. Energy and Buildings, 199, 126–133. https://doi.org/10.1016/j.enbuild.2019.06.047 .
Paper not yet in RePEc: Add citation now
- Zeng, R., & Chini, A. (2017). A review of research on embodied energy of buildings using bibliometric analysis. Energy and Buildings, 155, 172–184. https://doi.org/10.1016/j.enbuild.2017.09.025 .
Paper not yet in RePEc: Add citation now
- Zilberberg, E., Trapper, P., Meir, I. A., & Isaac, S. (2021). The impact of thermal mass and insulation of building structure on energy efficiency. Energy and Buildings, 241, 110954. https://doi.org/10.1016/j.enbuild.2021.110954 .
Paper not yet in RePEc: Add citation now