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Canadian advances in the copper-chlorine thermochemical cycle for clean hydrogen production: A focus on electrolysis

机译:加拿大铜氯热化学循环的进展,用于清洁氢气生产:专注于电解

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摘要

Hydrogen is a clean energy carrier that can help mitigate greenhouse gas (GHG) emissions if it is used to replace fossil fuels for power production. One way to produce hydrogen on a large scale is through the use of water splitting thermochemical cycles such as the hybrid copper chlorine (Cu-Cl) cycle. Canadian Nuclear Laboratories Ltd. (CNL) chose to develop the Cu-Cl cycle because the highest temperature required by this cycle is about 530 degrees C, compatible with the Canadian Super Critical Water Reactor (SCWR) or some small modular reactors (SMR). The on-going effort at CNL is to demonstrate a fully integrated Cu-Cl cycle at laboratory scale with a hydrogen production rate of 50 L/h. Some recent experimental results of the electrolysis step, one of the main steps of the cycle, are discussed in this paper. The anode reaction of CuCl oxidation was investigated using a three-electrode electrochemical cell. Half-cell experiments found that CuCl oxidation did not require noble metals as catalyst. The CuCl oxidation on carbon was found to be a mass-transfer controlled process. Hence the limiting current density increased with increasing turbulence on the electrode surface. Increasing the CuCl concentration and the solution temperature also resulted in higher limiting current densities. A current density of 0.53 A/cm(2) was achieved for a 1.0 M CuCl solution at 80 degrees C. Single cells with electrode areas up to 100 cm(2) were used to establish the operating conditions for the electrolysis step. The effects of flow rate, temperature, and current density on the cell voltage were studied. A hydrogen production rate of 50 L/h was successfully achieved at 0.4 A/cm(2) in a 2.0 M CuCl solution at 80 degrees C. The electrolysis step is fully developed for integration in a laboratory-scale demonstration of the Cu-Cl cycle. (c) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:氢气是一种清洁能源载体,如果用于代替电力生产的化石燃料,可以帮助减轻温室气体(GHG)排放。在大规模生产氢的一种方法是通过使用水分裂热化学循环,例如杂交铜氯(Cu-Cl)循环。加拿大核实验室有限公司(CNL)选择开发CU-CL循环,因为该循环所需的最高温度约为530℃,与加拿大超临界水反应器(SCWR)或一些小模块化反应器(SMR)兼容。 CNL的持续努力是在实验室规模上展示完全集成的Cu-Cl周期,氢气产生率为50L / h。本文讨论了电解步骤的一些最近的电解步骤的实验结果,是循环的主要步骤之一。使用三电极电化学电池研究CuCl氧化的阳极反应。半细胞实验发现CuCl氧化不需要贵金属作为催化剂。发现CuCl氧化在碳上是传质控制过程。因此,随着电极表面上的湍流增加,限制电流密度增加。增加CuCl浓度和溶液温度也导致更高限制电流密度。在80℃下,在80μl的1.0μlCCCL溶液中实现了0.53A / cm(2)的电流密度。使用高达100cm(2)的电极区域的单细胞来建立电解步骤的操作条件。研究了流速,温度和电流密度对电池电压的影响。在80℃下在2.0μmCCL溶液中成功实现50l / h的氢气产生速率。在80℃下,电解步骤完全开发用于Cu-Cl的实验室规模示范中的集成循环。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

著录项

  • 来源
    《International journal of hydrogen energy》 |2020年第58期|33037-33046|共10页
  • 作者单位

    Canadian Nucl Labs Ltd 286 Plant Rd Chalk River ON K0J 1J0 Canada;

    Canadian Nucl Labs Ltd 286 Plant Rd Chalk River ON K0J 1J0 Canada;

    Canadian Nucl Labs Ltd 286 Plant Rd Chalk River ON K0J 1J0 Canada;

    Canadian Nucl Labs Ltd 286 Plant Rd Chalk River ON K0J 1J0 Canada;

    Canadian Nucl Labs Ltd 286 Plant Rd Chalk River ON K0J 1J0 Canada;

    Canadian Nucl Labs Ltd 286 Plant Rd Chalk River ON K0J 1J0 Canada;

    Canadian Nucl Labs Ltd 286 Plant Rd Chalk River ON K0J 1J0 Canada;

    Canadian Nucl Labs Ltd 286 Plant Rd Chalk River ON K0J 1J0 Canada;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Thermochemical cycle; Hydrogen production; Cu-Cl cycle; CuCl electrolysis;

    机译:热化学循环;氢气生产;CU-CL循环;CUCL电解;
  • 入库时间 2022-08-18 23:01:24

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