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Vanadium Redox Flow Batteries for Electrical Energy Storage: Challenges and Opportunities

机译:用于电能存储的钒氧化还原流量:挑战和机遇

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A Flow-Battery System is an Electrical Energy Storage approach that was originally conceived by NASA during the energy crises of the 1970s. A flow battery utilizes reversible redox couples on two electrodes to store chemical energy. However, instead of storing the electrochemical reactants within the electrode, as in a conventional battery, the reactants are dissolved in electrolytic solutions and stored in tanks external to the flow battery stack. Flow batteries are emerging as a potential electricity storage technology to support a more efficient, reliable, and cleaner electrical energy market. Some of the promising applications of flow batteries are related to load management of large-scale electricity supply to the grid (e.g., peak shaving, power quality, spinning reserves). Flow battery technology can also offer solutions to issues associated with the integration of intermittent renewable energy resources (e.g., wind, solar) with the power grid by making these power resources more stable, dependable, and dispachable. The objective of this paper is to provide an overview, status, and challenges of the flow-battery technology with an emphasis on vanadium redox-based system, which will also include an examination of recent results demonstrated by the United Technologies Research Center. Progress in the area of membranes for vanadium redox flow battery applications will be highlighted including a discussion of the important membrane improvements that would enable significantly higher power density which is needed to accelerate the commercialization of flow-battery technology.
机译:电流电池系统是一种电能存储方法,最初由NASA在20世纪70年代的能量危机期间构思。流电池利用两个电极上的可逆氧化还原耦合来存储化学能。然而,不是将电极内的电化学反应物储存在常规电池中,而是将反应物溶解在电解溶液中并储存在流电池堆外部的罐中。流动电池作为潜在的电力存储技术,以支持更有效,可靠和更清晰的电气能源市场。流动电池的一些有希望的应用与大规模电力供应的负载管理有关(例如,峰值剃须,电源质量,纺纱储量)。流量电池技术还可以通过使这些电力资源更稳定,可靠和分钟,提供与电网与电网集成相关的问题的解决方案。本文的目的是提供流动电池技术的概述,状态和挑战,重点是基于钒氧化还原的系统,这还将包括对联合技术研究中心证明最近结果的检查。将突出钒氧化还原流电池应用的膜的进展,包括讨论将实现加速流动技术的商业化所需的显着更高的功率密度的重要膜改善。

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