Building-integrated photovoltaics (BIPV) is critical for urban decarbonization, while national-scale assessments covering rooftops, multi-directional facades and urban heterogeneity are lacking.
This study adopts 3D building data, PV_LIB model and ERA5 data to simulate BIPV output across 361 Chinese cities, achieving an annual potential of 13,518 TWh.
Facade-integrated photovoltaics (FIPV) can boost BIPV power generation by 60% compared with rooftop-only photovoltaic systems.
Rooftop-integrated photovoltaic (RIPV) and south-facing FIPV reduce the levelized cost of energy (LCOE) by 30%, optimizing urban BIPV economic performance.
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Framework for assessing the potential of BIPV at the city level based on geographical and environmental factors
BIPV Power Generation at Provincial and Municipal Levels
Key indicators for assessing the BIPV potential of 361 prefecture-level cities in China
Clustering analysis of cities, based on location conditions that determine the BIPV potential
Spatial heterogeneity analysis of the 3E potential of urban BIPV
Energy output and economic performance potential of building facades