Advanced Energy Systems Graduate Program, Colorado School of Mines, Golden, Colorado, United States of America.
National Renewable Energy Laboratory, Golden, Colorado, United States of America.
PLoS One. 2022 Sep 9;17(9):e0274351. doi: 10.1371/journal.pone.0274351. eCollection 2022.
Among the many ambitious decarbonization goals globally, the US intends grid decarbonization by 2035, requiring 1 TW of installed photovoltaics (PV), up from ~110 GW in 2021. This unprecedented global scale-up will stress existing PV supply chains with increased material and energy demands. By 2050, 1.75 TW of PV in the US cumulatively demands 97 million metric tonnes of virgin material and creates 8 million metric tonnes of life cycle waste. This analysis leverages the PV in Circular Economy tool (PV ICE) to evaluate two circular economy approaches, lifetime extension and closed-loop recycling, on their ability to reduce virgin material demands and life cycle wastes while meeting capacity goals. Modules with 50-year lifetimes can reduce virgin material demand by 3% through reduced deployment. Modules with 15-year lifetimes require an additional 1.2 TW of replacement modules to maintain capacity, increasing virgin material demand and waste unless >90% of module mass is closed-loop recycled. Currently, no PV technology is more than 90% closed-loop recycled. Glass, the majority of mass in all PV technologies and an energy intensive component with a problematic supply chain, should be targeted for a circular redesign. Our work contributes data-backed insights prioritizing circular PV strategies for a sustainable energy transition.
在全球众多雄心勃勃的脱碳目标中,美国计划到 2035 年实现电网脱碳,这需要安装 1 太瓦的光伏(PV),高于 2021 年的约 110 吉瓦。这种前所未有的全球规模扩张将增加对材料和能源的需求,给现有的光伏供应链带来压力。到 2050 年,美国累计 1.75 太瓦的光伏将需要 9700 万吨原始材料,并产生 800 万吨生命周期废物。本分析利用光伏在循环经济工具(PV ICE)评估两种循环经济方法,即寿命延长和闭环回收,以评估它们在满足产能目标的同时减少原始材料需求和生命周期废物的能力。寿命为 50 年的模块通过减少部署可减少 3%的原始材料需求。寿命为 15 年的模块需要额外的 1.2 太瓦的替换模块来维持容量,除非超过 90%的模块质量进行闭环回收,否则会增加原始材料需求和废物。目前,没有任何光伏技术的闭环回收率超过 90%。玻璃是所有光伏技术中大部分的质量,是一种能源密集型组件,其供应链存在问题,应成为循环再设计的目标。我们的工作提供了数据支持的见解,为可持续能源转型确定了优先考虑的循环光伏策略。