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Trends and challenges of the interactions between microclimate and electric power systems

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  • Corresponding author: xueyusheng@sgepri.sgcc.com.cn 
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    1. The interactions between microclimate and electric power systems are overviewed.

      Advanced applications and cutting-edge techniques of the interactions are summarized.

      Challenges and perspectives are introduced and envisioned.

  • The increasing penetration of renewables has made electric power systems meteorology-sensitive. Meteorology has become one of the decisive factors and the key source of uncertainty in the power balance. Macro-scale meteorology might not fully represent the actual ambient conditions of the loads, renewables, and power equipment, thus hindering an accurate description of load and renewables output fluctuation, and the causes of power equipment ageing and failure. Understanding the interactions between microclimate and electric power systems, and making decisions grounded on such knowledge, is a key to realising the sustainability of the future electric power systems. This review explores key interactions between microclimate and electric power systems across loads, renewables, and connecting transmission lines. The microclimate-based applications in electric power systems and related technologies are described. We also provide a framework for future research on the impact of microclimate on electric power systems mainly powered by renewables.
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  • Cite this article:

    Li C., Cheng Y., Xue Y., et al., (2024). Trends and challenges of the interactions between microclimate and electric power systems. The Innovation Energy 1(4): 100046. https://doi.org/10.59717/j.xinn-energy.2024.100046
    Li C., Cheng Y., Xue Y., et al., (2024). Trends and challenges of the interactions between microclimate and electric power systems. The Innovation Energy 1(4): 100046. https://doi.org/10.59717/j.xinn-energy.2024.100046

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