Open Access
Issue |
Sci. Tech. Energ. Transition
Volume 80, 2025
Innovative Strategies and Technologies for Sustainable Renewable Energy and Low-Carbon Development
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Article Number | 25 | |
Number of page(s) | 16 | |
DOI | https://doi.org/10.2516/stet/2025004 | |
Published online | 18 February 2025 |
- Liu Q., Ren J. (2020) Research on the building energy efficiency design strategy of Chinese universities based on green performance analysis, Energy Build. 224, 1–29. [Google Scholar]
- Yüksek I., Karadayi T.T. (2017) Energy-efficient building design in the context of building life cycle, in: Yap E.H.(ed), Energy efficient buildings, IntechOpen, United Kingdom, pp. 93–123. [Google Scholar]
- Kanika, Singh K., Rana K., Dahiya M. (2016) A comparative study on green and conventional buildings, Int. J. Home Sc. 2, 2, 338–343. [Google Scholar]
- Corinaldesi V., Moriconi G., Naik T.R. (2010) Characterization of marble powder for its use in mortar and concrete, Construct. Build. Mater. 24, 113–117. [CrossRef] [Google Scholar]
- Malpani R., Jegarkal S.K., Shepur R., Ravi Kiran H.N.R.K., Adi V.K. (2014) Effect of marble sludge powder and quarry rock dust as partial replacement for fine aggregates on properties of concrete, Int. J. Innovat. Technol. Explor. Eng. 4, 1, 39–42. [Google Scholar]
- Admute A., Nagarkar V., Padalkar P., Bhamre S., Tupe A. (2017) Experimental study on green concrete, Int. Res. J. Eng. Technol. 4, 4, 1182–1186. [Google Scholar]
- Dhoka M.C. (2013) Green concrete: using industrial waste of marble powder, quarry dust and paper pulp, Int. J. Eng. Sci. Invent. 2, 10, 67–70. [Google Scholar]
- Reddy G.J., Mastan S.A. (2017) Experimental study on green concrete, Int. J. Technol. Res. Eng. 5, 3, 2963–2968. [Google Scholar]
- Khan S., Maheshwari N., Aglave G., Arora A. (2020) Experimental design of green concrete and assessing its suitability as a sustainable building material, Mater. Today Proc. 26, 2, 1126–1130. [CrossRef] [Google Scholar]
- Kiran Kumar G., Saboor S., Babu T.P.A. (2017) Thermal analysis of wall and window glass materials for cooling load reduction in green energy building design, Mater Today Proc. 4, 9, 9514–9518. [CrossRef] [Google Scholar]
- Kung G.T.-C., Tsai C.-T., Chang J.-E., Tang Y.-G. (2012) A strategy for promoting utility of recycling green building materials in Taiwan, Adv. Mater. Res. 512–515, 2943–2948. [CrossRef] [Google Scholar]
- Hsieh T.-T., Chiang C.-M., Ho M.-C., Lai K.-P. (2012) The Application of green building materials to sustainable building for environmental protection in Taiwan, Adv. Mater. Res. 343–344, 267–272. [Google Scholar]
- Shafiei M.W.M., Abadi H. (2017) The importance of green technologies and energy efficiency for environmental protection, Int. J. Appl. Environ. Sci. 12, 5, 937–951. [Google Scholar]
- Shen J., Krietemeyer B., Bartosh A., Gao Z., Zhang J. (2021) Green design studio: a modular-based approach for high-performance building design, Build. Simulat. 14, 2, 241–268. [CrossRef] [Google Scholar]
- Sharovarova E.P., Alekhin V.N., Maltseva I.N. (2017) Green technologies for energy-efficient buildings in cold climate conditions of Russia, IOP Conf. Series Mater. Sc. Eng. 262, 12035, 1–6. [Google Scholar]
- Parashar A.K., Parashar R. (2012) Construction of an eco-friendly building using green building approach, Int. J. Sc. Eng. Res. 3, 6, 1–7. [Google Scholar]
- Ding W., Zhao Y., Ji X. (2013) Analysis of the environmental benefits of green building, Appl. Mechan. Mater. 368–370, 1135–1138. [CrossRef] [Google Scholar]
- Bielek B. (2016) Green building – towards sustainable architecture, Appl. Mechan. Mater. 824, 751–760. [CrossRef] [Google Scholar]
- Zahedi R., Daneshgar S., Farahani O.N., Aslani A. (2023) Thermal analysis model of a building equipped with green roof and its energy optimization, Nature-Based Solut. 3, 100053. [CrossRef] [Google Scholar]
- Rodrigues A.V., Souza D.A.R.D., Garcia F.D.R., Ribeiro S.J.L. (2022) Renewable energy for a green future: electricity produced from efficient luminescent solar concentrators, Solar Energy Adv. 2, 100013. [CrossRef] [Google Scholar]
- Kumar H., Dwivedi E., Yadav R.D., Kapoor T. (2023) Proposing a green model of a conventional building by evaluating energy-efficient design alternatives using Autodesk insight, Int. J. Res. Appl. Sc. Eng. Technol. 11, VII, 1461–1468. [CrossRef] [Google Scholar]
- Sarir P., Sharifzadeh M. (2024) Application of passive and active scenarios to a residential building in a dry and hot climate to achieve a positive energy building (PEB), Heliyon 10, 10, e30694. [CrossRef] [PubMed] [Google Scholar]
- Zhang Y., Wang W., Wang Z., Gao M., Zhu L., Song J. (2021) Green building design based on solar energy utilization: take a kindergarten competition design as an example, Energy Rep. 7, 7, 1297–1307. [CrossRef] [Google Scholar]
- Jeong Y., Lee M., Kim J. (2017) Scenario-based design and assessment of renewable energy supply systems for green building applications, Energy Proc. 136, 27–33. [CrossRef] [Google Scholar]
- Jaradat H., Alshboul O.A.M., Obeidat I.M., Zoubi M.K. (2024) Green building, carbon emission, and environmental sustainability of construction industry in Jordan: Awareness, actions and barriers, Ain Shams Eng. J. 15, 2, 102441. [CrossRef] [Google Scholar]
- Ogur E.O., Mbatia S. (2023) Conversion of kitchen waste into biogas, Int. J. Eng. Sci. 2, 11, 70–76. [Google Scholar]
- He M., Ni R. (2024) Green building interior design based on digital image processing and thermal environment simulation, Therm. Sci. Eng. Prog. 56, 103087. [CrossRef] [Google Scholar]
- Gao X. (2023) Modern design of rural green buildings based on big data technology, Cities 141, 104387. [CrossRef] [Google Scholar]
- Biswas N., Saha P., Mitra S., Majumdar G. (2024) Green building material (GBM) vs conventional building material (CBM) to reduce environmental impact, Comprehensive Materials Processing Second Ed. 8, 109–117. [CrossRef] [Google Scholar]
- Olabi A.G., Shehata N., Issa U.H., Mohamed O.A., Mahmound M., Abdelkareem M.A., Abdelzaher M.A. (2025) The role of green buildings in achieving the sustainable development goals, Int. J. Thermofluids 25, 101002. [CrossRef] [Google Scholar]
- Ragab K.M., Orhan M.F. (2024) Evaluating conventional and renewable energy systems for green buildings: A case study on energy efficiency and cost optimization, Case Studies Thermal Eng. 63, 105233. [CrossRef] [Google Scholar]
- Guidelines for preparation of detailed project reports and selection of technologies for processing and final disposal of municipal solid waste using 12th Finance Commission Grants by Ministry of Housing and Urban Affairs, Government of India. https://mohua.gov.in/upload/uploadfiles/files/93.pdf. [Google Scholar]
- Indian standard specification for coarse and fine aggregates from natural source for concrete, IS:383:1970. https://law.resource.org/pub/in/bis/S03/is.383.1970.pdf. [Google Scholar]
- Schedule of Tariff for supply of energy for FY2024–25, Issued by Uttar Haryana Bijli Vitran Nigam Limited vide sale circular U-08/2024. https://www.uhbvn.org.in/staticContent/documents/circular/SC2024/SC_U_08_2024.pdf. [Google Scholar]
- CO2 baseline database for the Indian power sector, user guide, Version 19.0, December 2023 issued by Government of India, Ministry of Power, Central Electricity Authority Sewa Bhawan, R. K. Puram, New Delhi-110066. https://cea.nic.in/wp-content/uploads/baseline/2024/01/User_Guide__Version_19.0.pdf. [Google Scholar]
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