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Optimizing the Energy Efficiency of Capacitive Deionization Reactors Working under Real-World Conditions

机译:在实际条件下优化电容去离子反应器的能效

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摘要

Capacitive deionization (CDI) is a rapidly emerging desalination technology that promises to deliver clean water while storing energy in the electrical double layer (EDL) near a charged surface in a capacitive format. Whereas most research in this subject area has been devoted to using CDI for removing salts, little attention has been paid to the energy storage aspect of the technology. However, it is energy storage that would allow this technology to compete with other desalination processes if this energy could be stored and reused efficiendy. This requires that the operational aspects of CDI be optimized with respect to energy used both during the removal of ions as well as during the regeneration cycle. This translates into the feet that currents applied during deionization (charging the EDL) will be different from those used in regeneration (discharge). This paper provides a mechanistic analysis of CDI in terms of energy consumption and energy efficiencies during the charging and discharging of the system under several scenarios. In a previous study, we proposed an operational buffer mode in which an effective separation of deionization and regeneration steps would allow one to better define the energy balance of this CDI process. This paper reports on using this concept, for optimizing energy efficiency, as well as to improve upon the electro-adsorption of ions and system lifetime. Results obtained indicate that real-world operational modes of running CDI systems promote the development of new and unexpected behavior not previously found, mainly associated with the inhomogeneous distribution of ions across the structure of the electrodes.
机译:电容去离子(CDI)是一种迅速兴起的脱盐技术,该技术有望提供清洁的水,同时以电容形式将能量存储在带电表面附近的双电层(EDL)中。尽管该主题领域的大多数研究都致力于使用CDI去除盐,但很少关注该技术的能量存储方面。但是,如果能有效地存储和再利用该能量,则能量存储将使该技术与其他脱盐工艺竞争。这就要求CDI的操作方面要在离子去除过程中以及再生周期中相对于所使用的能量进行优化。这就意味着在去离子(对EDL充电)过程中施加的电流将与在再生(放电)过程中使用的电流不同。本文在几种情况下,对系统充放电期间的能耗和能效进行了CDI的机械分析。在先前的研究中,我们提出了一种操作缓冲模式,其中有效分离去离子步骤和再生步骤将使人们可以更好地定义此CDI过程的能量平衡。本文报告了使用该概念来优化能源效率,以及改善离子的电吸附和系统寿命。获得的结果表明,运行的CDI系统的实际操作模式促进了以前未发现的新的和意外的行为的发展,这主要与离子在整个电极结构上的不均匀分布有关。

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  • 来源
    《Environmental Science & Technology》 |2013年第20期|11866-11872|共7页
  • 作者单位

    Electrochemical Processes Unit, IMDEA Energy Institute, Ave. Ramon de la Sagra 3, Mostoles Technology Park E28935, Mostoles,Spain;

    Electrochemical Processes Unit, IMDEA Energy Institute, Ave. Ramon de la Sagra 3, Mostoles Technology Park E28935, Mostoles,Spain;

    IMDEA Water Institute, Scientific Technology Park - Alcala University, E-28805, Alcala de Henares, Spain;

    Electrochemical Processes Unit, IMDEA Energy Institute, Ave. Ramon de la Sagra 3, Mostoles Technology Park E28935, Mostoles,Spain;

    Electrochemical Processes Unit, IMDEA Energy Institute, Ave. Ramon de la Sagra 3, Mostoles Technology Park E28935, Mostoles,Spain Environmental Chemistry and Technology Program, University of Wisconsin-Madison, Madison, Wisconsin, 53706, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-17 14:02:16

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