通过屋顶光伏升级实现自下而上的能源转型:在不同气候条件下实现 NZEBs 的剩余问题和新升级

Vasileios Kapsalis , Carmen Maduta , Nikolaos Skandalos , Sushant Suresh Bhuvad , Delia D'Agostino , Rebecca Jing Yang , Udayraj , Danny Parker , Dimitris Karamanis
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引用次数: 0

摘要

为支持逐步淘汰化石燃料,屋顶光伏发电(RTPV)已在全球范围内得到采用,作为自下而上推动公民转型的重要一步,使其成为当地建筑环境社区内的净能源生产者。然而,这种环境的不同生物气候条件可能会影响 RTPV 的最佳实施。与气候相关的特征和区域适应性有助于实现这一点。因此,我们对作为全球水平辐照(GHI)函数的全球建筑环境、不同气候区的当地环境参数以及相关技术发展进行了调查。通过在 RTPV 下方采用适当的隔热材料,可以避免在寒冷气候条件下增加冬季供暖需求或夏季增加夜间制冷需求。为了设计低能耗建筑,我们提出了一个基于 RTPV 空间能量覆盖率和全球水平辐照度的分析框架。此外,高温下的 RTPV 冷却可提高效率达 20%,增加发电量达 15%。利用新兴技术提高 RTPV 的效率,可以通过节能和 RTPV 措施扩大高层建筑的脱碳范围。为加快清洁能源转型,应在可持续太阳能建筑应用中广泛采用屋顶光伏。与电力储存相结合,这将使可再生能源资源能够满足未来全球建筑能源需求的很大一部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bottom-up energy transition through rooftop PV upscaling: Remaining issues and emerging upgrades towards NZEBs at different climatic conditions

In supporting the phase-out of the fossil fuels, Roof Top Photovoltaic (RTPV) deployment has been adopted worldwide as an important step of a bottom-up driving pathway of citizens’ transformation to become net energy producers within the community of their localized building environment. However, the diverse bioclimatic conditions of this environment may affect the best RTPV implementation. This is facilitated by climate-related characterization and regional adaptation. Hence, the built environment globally as a function of the global horizontal irradiation (GHI), the local environmental parameters of the different climatic zones and the associated technological developments are surveyed.

In this work, we have critically assessed the RTPV effect on the building's overall energy performance and found beneficial over a diverse range of moderate and warm climates. By applying adequate insulation beneath the RTPVs, the increased heating needs in winter in cold climates or higher nighttime cooling needs in summertime can be avoided. To design low-energy buildings, we propose an analytical framework based on the space energy coverage by RTPV and the global horizontal irradiation. Moreover, RTPV cooling at elevated temperatures improves the efficiency up to 20 % and increases the generated electricity up to 15 %. Increasing the RTPV efficiency with emerging technologies could extend the decarbonization of high-rise buildings with energy efficiency and RTPV measures. To accelerate the clean energy transition, rooftop PVs should be widely adopted for sustainable solar building applications. Combined with electrical storage, this will allow renewable energy resources to cover a large fraction of future building energy needs worldwide.

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