环境科学
植被(病理学)
干旱
光伏系统
蒸腾作用
生态系统
沙漠气候
底纹
归一化差异植被指数
生态学
气候变化
全球变暖
沙漠(哲学)
水文学(农业)
恢复生态学
生物圈
小气候
水分
大气科学
扰动(地质)
胡杨
蒸散量
含水量
湿度
荒漠化
作者
Yu-Jun Cui,Hongyuan Ma,Deli Ye,Jiachen Zhang,Zhongxue Ma,Feifei Tang
标识
DOI:10.5194/egusphere-egu26-21603
摘要
To investigate the differences in microclimatic and eco-environmental effects of centralized photovoltaic (PV) power stations under diverse climatic backgrounds, high-altitude desert PV stations in Qinghai Province representing hyper-arid, arid, and semi-arid climates were selected. Micro-meteorology factors and vegetation evolution characteristics inside and outside the PV arrays were analyzed by employing paired inside-outside observations and long-time-series NDVI retrieval. It is indicated that the micro-meteorology and eco-environmental effects exhibit differential responses along the aridity gradient, with water availability identified as the core regulatory factor. A significant “heat island effect” with no vegetation recovery was observed in the hyper-arid zone; nocturnal warming and slight humidification with a trend of vegetation recovery were exhibited in the arid zone; while positive ecosystem feedback was demonstrated in the semi-arid zone, where the shading and wind-blocking effects of PV modules facilitated soil moisture conservation, leading to rapid vegetation recovery that offset physical warming through transpiration cooling. The evolutionary pattern of PV ecological effects transitioning from physical disturbance to ecological regulation is elucidated, and the feasibility of synergy between PV development and ecological restoration under suitable water conditions is confirmed.
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