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A hybrid thermochemical electrolytic process for hydrogen production based on the reverse Deacon reaction

机译:基于逆迪肯反应的混合热化学电解制氢工艺

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Development has been initiated on a three-reaction, hybrid thermochemical-electrolytic process for splitting water into hydrogen and oxygen. This process can be run at 500℃, making it suitable for linking to nuclear reactors that run colder than the very highest temperature gas cooled reactors. This feature also makes the materials requirements less stringent than for high temperature cycles, many of which require temperatures in the range of 800-900℃. The process consists of three reactions- two thermochemical and one electrolytic. The thermochemical reactions sum to the reverse Deacon reaction. The electrolytic step involves the electrolysis of anhydrous HC1. The estimated energy savings for this process relative to electrolysis of water are in the vicinity of 15%, due to the low energy requirements of anhydrous HC1 electrolysis. Preliminary experimental results indicate that a silicalite-supported catalyst for the reverse Deacon reaction has the potential of promoting fast reaction kinetics and long-term stability of the solids.
机译:已经开始开发将水分解为氢和氧的三反应混合热化学-电解方法。该过程可在500℃下运行,使其适合与比最高温度的气冷反应堆运行温度更低的核反应堆连接。此功能还使材料要求不如高温循环严格,高温循环中的许多温度要求在800-900℃范围内。该过程包括三个反应-两个热化学反应和一个电解反应。热化学反应加起来为逆迪肯反应。电解步骤涉及无水HCl的电解。由于无水HCl电解的能源需求低,相对于水电解,此方法的估计节能量约为15%。初步的实验结果表明,用于反向迪肯反应的硅沸石负载催化剂具有促进固体快速反应动力学和长期稳定性的潜力。

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