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Using solar energy to achieve near-zero energy buildings in Tibetan Plateau

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  • Ye, Anqi
  • Guan, Bowen
  • Liu, Xiaohua
  • Zhang, Tao

Abstract

As the poverty of conventional energy and the abundance of renewable energy coincide in Tibetan plateau, the on-site renewable energy supply is essential for alleviating energy poverty and decarbonizing buildings. For the on-site supply, a prominent issue is the daily and seasonal mismatch between energy supply and demand. To formulate the mismatch issue and achieve near-zero energy in Tibetan plateau, the on-site energy supply and demand characteristics of an office building are investigated based on modelled photovoltaic (PV) power generation with PVsyst software and electricity consumption data from on-site research, and the impact of energy storage on mismatch alleviation is examined in terms of both short-term and trans-seasonal storage. The results reveal that, without energy storage, the carbon emission reduction rate (α) is limited to 58% due to temporal mismatch, when PV generation equals electricity demand. Energy storage can effectively alleviate the daily mismatch, and α can be increased to 93% by short-term storage. Moreover, the seasonal mismatch is pronounced in the plateau as the enormous heating energy consumption occurs in winter while cooling is not required in summer. It is demonstrated in this study that trans-seasonal hydrogen storage could eliminate the seasonal mismatch and further achieve near-zero energy buildings.

Suggested Citation

  • Ye, Anqi & Guan, Bowen & Liu, Xiaohua & Zhang, Tao, 2023. "Using solar energy to achieve near-zero energy buildings in Tibetan Plateau," Renewable Energy, Elsevier, vol. 218(C).
  • Handle: RePEc:eee:renene:v:218:y:2023:i:c:s0960148123012624
    DOI: 10.1016/j.renene.2023.119347
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    References listed on IDEAS

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    1. Dujardin, Jérôme & Schillinger, Moritz & Kahl, Annelen & Savelsberg, Jonas & Schlecht, Ingmar & Lordan-Perret, Rebecca, 2022. "Optimized market value of alpine solar photovoltaic installations," Renewable Energy, Elsevier, vol. 186(C), pages 878-888.
    2. Nestor A. Sepulveda & Jesse D. Jenkins & Aurora Edington & Dharik S. Mallapragada & Richard K. Lester, 2021. "The design space for long-duration energy storage in decarbonized power systems," Nature Energy, Nature, vol. 6(5), pages 506-516, May.
    3. Huber, Matthias & Dimkova, Desislava & Hamacher, Thomas, 2014. "Integration of wind and solar power in Europe: Assessment of flexibility requirements," Energy, Elsevier, vol. 69(C), pages 236-246.
    4. Si, Pengfei & Feng, Ya & Lv, Yuexia & Rong, Xiangyang & Pan, Yungang & Liu, Xichen & Yan, Jinyue, 2017. "An optimization method applied to active solar energy systems for buildings in cold plateau areas – The case of Lhasa," Applied Energy, Elsevier, vol. 194(C), pages 487-498.
    5. Gao, Datong & Kwan, Trevor Hocksun & Hu, Maobin & Pei, Gang, 2022. "The energy, exergy, and techno-economic analysis of a solar seasonal residual energy utilization system," Energy, Elsevier, vol. 248(C).
    6. Ghaleb, Belal & Asif, Muhammad, 2022. "Assessment of solar PV potential in commercial buildings," Renewable Energy, Elsevier, vol. 187(C), pages 618-630.
    7. Myeongchan Oh & Boyoung Kim & Changyeol Yun & Chang Ki Kim & Jin-Young Kim & Su-Jin Hwang & Yong-Heack Kang & Hyun-Goo Kim, 2022. "Spatiotemporal Analysis of Hydrogen Requirement to Minimize Seasonal Variability in Future Solar and Wind Energy in South Korea," Energies, MDPI, vol. 15(23), pages 1-13, November.
    8. Zhao, Jun & Dong, Kangyin & Dong, Xiucheng & Shahbaz, Muhammad, 2022. "How renewable energy alleviate energy poverty? A global analysis," Renewable Energy, Elsevier, vol. 186(C), pages 299-311.
    9. Jack, M.W. & Mirfin, A. & Anderson, B., 2021. "The role of highly energy-efficient dwellings in enabling 100% renewable electricity," Energy Policy, Elsevier, vol. 158(C).
    10. Dong, Kangyin & Jiang, Qingzhe & Shahbaz, Muhammad & Zhao, Jun, 2021. "Does low-carbon energy transition mitigate energy poverty? The case of natural gas for China," Energy Economics, Elsevier, vol. 99(C).
    11. Xiuyan Yue & Yujie Xu & Xuezhi Zhou & Dehou Xu & Haisheng Chen, 2022. "Study on the Performance of a Solar Heating System with Seasonal and Cascade Thermal-Energy Storage," Energies, MDPI, vol. 15(20), pages 1-21, October.
    12. Zhuang, Minghao & Lu, Xi & Peng, Wei & Wang, Yanfen & Wang, Jianxiao & Nielsen, Chris P. & McElroy, Michael B., 2021. "Opportunities for household energy on the Qinghai-Tibet Plateau in line with United Nations’ Sustainable Development Goals," Renewable and Sustainable Energy Reviews, Elsevier, vol. 144(C).
    13. Chen, Qi & Kuang, Zhonghong & Liu, Xiaohua & Zhang, Tao, 2022. "Energy storage to solve the diurnal, weekly, and seasonal mismatch and achieve zero-carbon electricity consumption in buildings," Applied Energy, Elsevier, vol. 312(C).
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