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Energy Efficient Building Design: Timber Frame Construction Based In Hemp Fiber Insulation

Author

Listed:
  • Shahbaz Nasir Khan

    (Department of Structures and Environmental Engineering, Faculty of Agricultural Engineering and Technology, University of Agriculture Faisalabad, Pakistan.)

  • Muhammad Shahzaib

    (Department of Structures and Environmental Engineering, Faculty of Agricultural Engineering and Technology, University of Agriculture Faisalabad, Pakistan.)

Abstract

Energy efficient building concerns to the structure and using the process that is environmental liable and material efficient all around a building lifecycle. The basic principle of this building to minimize the energy consumption for heating and cooling system. The paper investigates the thermal behavior of hemp fiber insulation in timber framed wall panels for which timber framed structures will be experimented. Steps to enhance the energy performance were applied to building structure, window area, window glazing, lightning, heating ventilation and air conditioning (HVAC) system. We were measured the U-values of timber walls, hemp fiber insulation and window glazing. Results showed that energy efficient building enjoy the benefits of saving 40-50% energy by reducing greenhouse gases emissions into atmosphere. We have discussed about the rating system of energy efficient building or green building. In this paper, information pertaining to building life cycle and detailed explanation regarding fundamentals of building energy will be provided.

Suggested Citation

  • Shahbaz Nasir Khan & Muhammad Shahzaib, 2022. "Energy Efficient Building Design: Timber Frame Construction Based In Hemp Fiber Insulation," Engineering Heritage Journal (GWK), Zibeline International Publishing, vol. 6(1), pages 31-33, October.
  • Handle: RePEc:zib:zbngwk:v:6:y:2022:i:1:p:31-33
    DOI: 10.26480/gwk.01.2022.31.33
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    References listed on IDEAS

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    1. Chan, A.L.S., 2012. "Effect of adjacent shading on the thermal performance of residential buildings in a subtropical region," Applied Energy, Elsevier, vol. 92(C), pages 516-522.
    2. Stein, Jeff Ross & Meier, Alan, 2000. "Accuracy of home energy rating systems," Energy, Elsevier, vol. 25(4), pages 339-354.
    3. Adsten, M & Perers, B & Wäckelgård, E, 2002. "The influence of climate and location on collector performance," Renewable Energy, Elsevier, vol. 25(4), pages 499-509.
    4. Morrissey, J. & Moore, T. & Horne, R.E., 2011. "Affordable passive solar design in a temperate climate: An experiment in residential building orientation," Renewable Energy, Elsevier, vol. 36(2), pages 568-577.
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