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Impact of typical and actual weather years on the energy simulation of buildings with different construction features and under different climates

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  • Moradi, Amir
  • Kavgic, Miroslava
  • Costanzo, Vincenzo
  • Evola, Gianpiero

Abstract

Climate has the most profound impact on the buildings' energy performance, especially now due to the ongoing global weather changes. Therefore, selecting appropriate weather data for building energy simulation is crucial. This paper aims to advance the knowledge about the use of different weather datasets for building performance simulation by addressing the following research objectives: (i) understanding the statistical relevance of using a typical weather year (TWY) for running building energy simulations, if compared to a series of actual weather years (AWY), for different buildings' typologies and under different climate conditions; (ii) verifying the role of building features on the discrepancies between TWY-based and AWY-based simulations. Tackling these objectives implied simulating a complex university building and a typical single-family dwelling by using two TWYs and ten AWYs pertaining to data recorded from 2010 to 2019 in both cold (i.e., Winnipeg, Canada) and warm (i.e., Catania, Italy) climates. Results show that in Winnipeg, TWYs predicted from 2.7% to 11.3% lower heating demand and from 10.5% to 82.4% higher cooling demand than the average long-term from AWYs, while in Catania TWYs predicted from 1.8% to 8.7% lower cooling demand and from 2.8% to 82.4% higher heating demand, suggesting that buildings designed using TWYs might not perform as modelled under actual weather conditions.

Suggested Citation

  • Moradi, Amir & Kavgic, Miroslava & Costanzo, Vincenzo & Evola, Gianpiero, 2023. "Impact of typical and actual weather years on the energy simulation of buildings with different construction features and under different climates," Energy, Elsevier, vol. 270(C).
  • Handle: RePEc:eee:energy:v:270:y:2023:i:c:s0360544223002694
    DOI: 10.1016/j.energy.2023.126875
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    References listed on IDEAS

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    1. Probst, Oliver, 2004. "Cooling load of buildings and code compliance," Applied Energy, Elsevier, vol. 77(2), pages 171-186, February.
    2. Hong, Tianzhen & Chang, Wen-Kuei & Lin, Hung-Wen, 2013. "A fresh look at weather impact on peak electricity demand and energy use of buildings using 30-year actual weather data," Applied Energy, Elsevier, vol. 111(C), pages 333-350.
    3. Vahidi, Ehsan & Kirchain, Randolph & Burek, Jasmina & Gregory, Jeremy, 2021. "Regional variation of greenhouse gas mitigation strategies for the United States building sector," Applied Energy, Elsevier, vol. 302(C).
    4. Evola, Gianpiero & Costanzo, Vincenzo & Infantone, Marco & Marletta, Luigi, 2021. "Typical-year and multi-year building energy simulation approaches: A critical comparison," Energy, Elsevier, vol. 219(C).
    5. Dharm P. S. Bhawuk, 2021. "Building Cultural Bridges Between China and India," Psychology and Developing Societies, , vol. 33(1), pages 103-120, March.
    6. Gupta, Rajat & Kotopouleas, Alkis, 2018. "Magnitude and extent of building fabric thermal performance gap in UK low energy housing," Applied Energy, Elsevier, vol. 222(C), pages 673-686.
    7. ., 2021. "Building sustainable supply chains," Chapters, in: Sustainable Consumption, Production and Supply Chain Management, chapter 16, pages 96-101, Edward Elgar Publishing.
    8. Giovanni Pernigotto & Alessandro Prada & Francesca Cappelletti & Andrea Gasparella, 2017. "Impact of Reference Years on the Outcome of Multi-Objective Optimization for Building Energy Refurbishment," Energies, MDPI, vol. 10(11), pages 1-23, November.
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