利用先进的3D打印技术制造液流电池——综述

IF 2.5 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Ji Wu, Shaowen Xu
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引用次数: 0

摘要

在过去的十年中,诸如可充电电池之类的电化学储能系统已经被探索为大规模存储间歇性电源的潜在候选者。其中,氧化还原液流电池因其低制造成本、高可扩展性和长循环寿命而脱颖而出。世界范围内已经建成了几个MWh容量的氧化还原液流电池中试工厂,尽管它们的商业盈利能力目前还在调查中。与传统的自上而下的制造技术相比,3D打印作为一种新兴技术,在优化氧化还原液流电池的设计、性能和制造成本方面提供了无限的机会。本文讨论了各种氧化还原液流电池和3D打印技术的原理,然后解释了使用3D打印技术构建高效氧化还原液流电池的优点、缺点和主要考虑因素。总结了近十年来3D打印技术在不同氧化还原化学物质氧化还原液流电池中的实际应用,包括经典的全钒电池、锌/溴电池和新型竞争电池。最后,总结和展望可能为对这一研究前沿感兴趣的科学家提供有价值的指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Manufacturing flow batteries using advanced 3D printing technology—A review
In the past decade, electrochemical energy storage systems such as rechargeable batteries have been explored as potential candidates for the large-scale storage of intermittent power sources. Among these, redox flow batteries stand out due to their low fabrication costs, high scalability, and long cycle life. Several redox flow battery pilot plants with MWh capacity have been constructed worldwide, although their commercial profitability is currently under investigation. 3D printing as a burgeoning technology offers unlimited opportunities in the process of optimizing the design, performance, and fabrication cost of redox flow batteries as compared to traditional top-down manufacturing techniques. This review discusses the principles of various redox flow batteries and 3D printing techniques, followed by explaining the advantages, disadvantages, and major factors to consider when using 3D printing in the construction of efficient redox flow batteries. The practical applications of 3D printing for redox flow batteries with different redox chemistries in the past decade are critically summarized, including classical all-vanadium, Zn/Br, and novel competitors. Lastly, a summary is provided along with outlooks that may provide valuable guidance for scientists interested in this research frontier.
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来源期刊
CiteScore
3.50
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