Life Cycle Assessment of Closed-Loop Pumped Storage Hydropower in the United States

核退役 可再生能源 环境科学 温室气体 水力发电 生命周期评估 储能 电网连接 环境经济学 能量建模 工程类 环境工程 废物管理 风力发电 高效能源利用 生产(经济) 电气工程 物理 宏观经济学 经济 功率(物理) 生物 量子力学 生态学
作者
Timothy R. Simon,Daniel Inman,Rebecca Hanes,G. Brooks Avery,Dylan Hettinger,Garvin Heath
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:57 (33): 12251-12258
标识
DOI:10.1021/acs.est.2c09189
摘要

The United States has begun unprecedented efforts to decarbonize all sectors of the economy by 2050, requiring rapid deployment of variable renewable energy technologies and grid-scale energy storage. Pumped storage hydropower (PSH) is an established technology capable of providing grid-scale energy storage and grid resilience. There is limited information about the life cycle of greenhouse gas emissions associated with state-of-the-industry PSH technologies. The objective of this study is to perform a full life cycle assessment of new closed-loop PSH in the United States and assess the global warming potential (GWP) attributed to 1 kWh of stored electricity delivered to the nearest grid substation connection point. For this study, we use publicly available data from PSH facilities that are in the preliminary permitting phase. The modeling boundary is from facility construction to decommissioning. Our results estimate that the GWP of closed-loop PSH in the United States ranges from 58 to 530 g CO2e kWh-1, with the stored electricity grid mix having the largest impact, followed by concrete used in facility construction. Additionally, PSH site characteristics can have a substantive impact on GWP, with brownfield sites resulting in a 20% lower GWP compared to greenfield sites. Our results suggest that closed-loop PSH offers climate benefits over other energy storage technologies.

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