可再生能源
极端天气
气候变化
城市气候
能量转换
城市复原力
风力发电
城市热岛
灵活性(工程)
环境资源管理
环境科学
城市规划
气象学
地理
土木工程
经济
工程类
医学
生态学
替代医学
管理
病理
电气工程
生物
灵丹妙药
作者
A.T.D. Perera,Kavan Javanroodi,Dasaraden Mauree,Vahid M. Nik,Pietro Florio,Tianzhen Hong,Deliang Chen
出处
期刊:Nature Energy
[Nature Portfolio]
日期:2023-04-10
卷期号:8 (4): 397-412
被引量:49
标识
DOI:10.1038/s41560-023-01232-9
摘要
Dense urban morphologies further amplify extreme climate events due to the urban heat island phenomenon, rendering cities more vulnerable to extreme climate events. Here we develop a modelling framework using multi-scale climate and energy system models to assess the compound impact of future climate variations and urban densification on renewable energy integration for 18 European cities. We observe a marked change in wind speed and temperature due to the aforementioned compound impact, resulting in a notable increase in both peak and annual energy demand. Therefore, an additional cost of 20‒60% will be needed during the energy transition (without technology innovation in building) to guarantee climate resilience. Failure to consider extreme climate events will lower power supply reliability by up to 30%. Energy infrastructure in dense urban areas of southern Europe is more vulnerable to the compound impact, necessitating flexibility improvements at the design phase when improving renewable penetration levels. Understanding the impact of future climate variations and urban densification is key to planning renewable energy integration. By developing a multi-scale spatio-temporal modelling framework, Perera et al. reveal changes in wind speed and temperature across European cities.
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