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IR Spectroscopy as a Method for Online Electrolyte State Assessment in RFBs

机译:IR光谱作为RFBS在线电解质状态评估的方法

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摘要

The transition from fossil to renewable energy sources requires adequate storage technologies due to the intermittency of the supplied energy. With respect to this, organic redox-flow batteries (ORFBs) represent a promising concept for the storage of electricity on a large scale at economically justifiable costs. However, these storage technologies can only be operated reliably if parameters representing the actual condition of the storage medium (i.e., the electrolyte) can be accurately assessed. These so-called electrolyte state variables are represented by two key figures of merit: state of charge (SOC), a measure of the amount of charge that the electrolyte currently holds; and state of health (SOH), representing the amount of charge that the electrolyte is able to store given its current condition. The herein presented IR-based approach is able to simultaneously provide reliable, fast, accurate, and precise estimates for both SOC and SOH parameters at any point in time and independent of the current battery status. The method is able to provide a time resolution in the range of minutes, is independent of the electrolyte temperature and can be applied to nearly all organic-based redox-active materials and solvents, while potentially being applicable to inorganic RFBs, such as vanadium-based systems, as well.
机译:由于所提供的能量间歇性,从化石到可再生能源的过渡需要足够的储存技术。关于此,有机氧化还原电池(ORFB)代表了在经济地合理的成本下大规模地存储电力的有希望的概念。然而,如果可以准确地评估表示存储介质(即,电解质)的实际条件的参数,则只能可靠地操作这些存储技术。这些所谓的电解质状态变量由功绩的两个关键图表示:充电状态(SOC),电解质目前持有的电荷量的量度;和健康状况(SOH),代表电解质能够储存其当前条件的充电量。本文呈现的基于IR的方法能够在任何时间点同时为SOC和SOH参数提供可靠,快速,准确,精确的估计,并且独立于电流电池状态。该方法能够在分钟范围内提供时间分辨率,与电解质温度无关,并且可以应用于几乎所有有机基氧化还原活性材料和溶剂,同时可能适用于无机RFB,例如钒 - 基于系统也是如此。

著录项

  • 来源
    《Advanced energy materials》 |2021年第28期|2100931.1-2100931.11|共11页
  • 作者单位

    Friedrich Schiller Univ Jena Lab Organ & Macromol Chem IOMC Humboldtstr 10 D-07743 Jena Germany|Friedrich Schiller Univ Jena Jena Ctr Soft Matter JCSM Philosophenweg 7 D-07743 Jena Germany|Friedrich Schiller Univ Jena Ctr Energy & Environm Chem Jena CEEC Jena Philosophenweg 7a D-07743 Jena Germany;

    Friedrich Schiller Univ Jena Lab Organ & Macromol Chem IOMC Humboldtstr 10 D-07743 Jena Germany|Friedrich Schiller Univ Jena Jena Ctr Soft Matter JCSM Philosophenweg 7 D-07743 Jena Germany|Friedrich Schiller Univ Jena Ctr Energy & Environm Chem Jena CEEC Jena Philosophenweg 7a D-07743 Jena Germany;

    Friedrich Schiller Univ Jena Lab Organ & Macromol Chem IOMC Humboldtstr 10 D-07743 Jena Germany|Friedrich Schiller Univ Jena Jena Ctr Soft Matter JCSM Philosophenweg 7 D-07743 Jena Germany|Friedrich Schiller Univ Jena Ctr Energy & Environm Chem Jena CEEC Jena Philosophenweg 7a D-07743 Jena Germany;

    Friedrich Schiller Univ Jena Lab Organ & Macromol Chem IOMC Humboldtstr 10 D-07743 Jena Germany|Friedrich Schiller Univ Jena Jena Ctr Soft Matter JCSM Philosophenweg 7 D-07743 Jena Germany|Friedrich Schiller Univ Jena Ctr Energy & Environm Chem Jena CEEC Jena Philosophenweg 7a D-07743 Jena Germany;

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  • 正文语种 eng
  • 中图分类
  • 关键词

    electrolyte state assessment; IR spectroscopy; online monitoring; redox-flow battery; SOC and SOH determination;

    机译:电解质状态评估;IR光谱;在线监测;氧化还原电池;SOC和SOH的决心;

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