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首页> 外文期刊>Sustainable Energy Technologies and Assessments >Life cycle assessment of lithium-ion batteries and vanadium redox flow batteries-based renewable energy storage systems
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Life cycle assessment of lithium-ion batteries and vanadium redox flow batteries-based renewable energy storage systems

机译:锂离子电池的生命周期评估和钒氧化铈流量电池的可再生能量存储系统

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Renewable energy has become an important alternative to fossil energy, as it is associated with lower greenhouse gas emissions. However, the intermittent characteristic of renewables urges for energy storage systems, which play an important role in matching the supply and demand of renewable-based electricity. The life cycle of these storage systems results in environmental burdens, which are investigated in this study, focusing on lithium-ion and vanadium flow batteries for renewable energy (solar and wind) storage for grid applications. The impacts are assessed through a life cycle assessment covering the batteries supply phase, their use and end-of-life, with experimental data from test set-ups. The battery composition is investigated in detail as a factor for the final impacts, by comparing two types of cathodes for the lithium-ion battery and the use of recycled electrolyte for the vanadium flow battery. Results indicate that the vanadium-based storage system results in overall lower impacts when manufactured with 100% fresh raw materials, but the impacts are significantly lowered if 50% recycled electrolyte is used, with up to 45.2% lower acidification and 11.1% lower global warming potential. The new lithium-ion battery cathode chemistry results in overall higher impacts, with 41.7% more particulate matter and 52.2% more acidification.
机译:可再生能源已成为化石能源的重要替代品,因为它与温室气体排放较低的替代品。然而,可再生能源的间歇性特征促使能量存储系统,这在匹配基于可再生电力的供需中起着重要作用。这些储存系统的生命周期导致环境负担,这在本研究中调查,专注于用于网格应用的可再生能源(太阳能和风)储存的锂离子和钒流量。通过覆盖电池供应阶段的生命周期评估,其使用和寿命终止,从测试设置的实验数据进行评估。通过比较锂离子电池的两种阴极以及用于钒流电池的再生电解质,将电池组合物作为最终影响的因素作为最终影响的因素。结果表明,基于钒的储存系统在用100%新鲜原料制造时导致整体较低的冲击,但如果使用50%的再生电解质,则造成的影响显着降低,酸化率高达45.2%,全球变暖较低11.1%潜在的。新的锂离子电池阴极化学导致整体较高的影响,颗粒物质更多的颗粒物质和52.2%的酸化。

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