首页> 外文会议>14th International Conference on Nuclear Engineering 2006(ICONE14) vol.3 >A PROCESS MODEL FOR THE PRODUCTION OF HYDROGEN USING HIGH TEMPERATURE ELECTROLYSIS
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A PROCESS MODEL FOR THE PRODUCTION OF HYDROGEN USING HIGH TEMPERATURE ELECTROLYSIS

机译:高温电解制氢过程模型

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High temperature electrolysis (HTE) involves the splitting of steam into hydrogen and oxygen at high temperatures. The primary advantage of HTE over conventional low temperature electrolysis is that considerably higher hydrogen production efficiencies can be achieved. Performing the electrolysis process at high temperatures results in more favorable thermodynamics for electrolysis, more efficient production of electricity, and allows direct use of process heat to generate steam. This paper presents the results of process analyses performed to evaluate the hydrogen production efficiencies of an HTE plant coupled to a 600 MWt Modular Helium Reactor (MHR) that supplies both the electricity and process heat needed to drive the process. The MHR operates with a coolant outlet temperature of 950 C. Approximately 87% of the high-temperature heat is used to generate electricity at high efficiency using a direct, Brayton-cycle power conversion system. The remaining high-temperature heat is used to generate a superheated steam / hydrogen mixture that is supplied to the electrolyzers. The analyses were performed using the HYSYS process modeling software. The model used to perform the analyses consisted of three loops; a primary high temperature helium loop, a secondary helium loop and the HTE process loop. The detailed model included realistic representations of all major components in the system, including pumps, compressors, heat exchange equipment, and the electrolysis stack. The design of the hydrogen production process loop also included a steam-sweep gas system to remove oxygen from the electrolysis stack so that it can be recovered and used for other applications. Results of the process analyses showed that hydrogen production efficiencies in the range of 45% to 50% are achievable with this system.
机译:高温电解(HTE)涉及在高温下将蒸汽分解为氢气和氧气。与常规的低温电解相比,HTE的主要优势在于可以实现更高的制氢效率。在高温下执行电解过程会产生更有利于电解的热力学,更高效的电力生产,并允许直接利用过程热产生蒸汽。本文介绍了过程分析的结果,以评估与600 MWt模块化氦反应堆(MHR)相连的HTE工厂的制氢效率,该反应堆提供驱动过程所需的电力和过程热量。 MHR在冷却液出口温度为950 C的情况下运行。使用直接的布雷顿循环功率转换系统,大约87%的高温热量用于高效发电。剩余的高温热量用于产生过热的蒸汽/氢气混合物,并提供给电解槽。使用HYSYS过程建模软件进行分析。用于执行分析的模型包括三个循环。主要高温氦气回路,次要氦气回路和HTE工艺回路。详细模型包括系统中所有主要组件的真实表示,包括泵,压缩机,热交换设备和电解堆。制氢工艺回路的设计还包括蒸汽吹扫气体系统,用于从电解堆中除去氧气,以便可以回收氧气并将其用于其他应用。过程分析的结果表明,使用该系统可实现45%至50%的制氢效率。

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