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Thermal Performance Of A Commercial Alkaline Water Electrolyzer: Experimental Study And Mathematical Modeling

机译:商用碱性水电解槽的热性能:实验研究和数学建模

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In this paper a study of the thermal performance of a commercial alkaline water electrolyzer (HySTAT from Hydrogenics) designed for a rated hydrogen production of 1 N m~3 H_2/h at an overall power consumption of 4.90 kWh/N m~3 H_2 is presented. The thermal behaviour of the electrolyzer has been analyzed under different operating conditions with an IR camera and several thermocouples placed on the external surface of the main electrolyzer components. It has been found that the power dissipated as heat can be reduced by 50-67% replacing the commercial electric power supply unit provided together with the electrolyzer by an electronic converter capable of supplying the electrolyzer with a truly constant DC current. A lumped capacitance method has been adopted to mathematically describe the thermal performance of the electrolyzer, resulting in a thermal capacitance of 174 kJ ℃~(-1). The effect of the AC/DC converter characteristics on the power dissipated as heat has been considered. Heat losses to the ambient were governed by natural convection and have been modeled through an overall heat transfer coefficient that has been found to be 4.3 Wm~(-2) ℃~(-1). The model has been implemented using ANSYS~R V10.0 software code, reasonably describing the performance of the electrolyzer. A significant portion of the energy dissipated as heat allows the electrolyzer operating at temperatures suitable to reduce the cell overvoltages.
机译:本文研究了设计用于在总功耗为4.90 kWh / N m〜3 H_2的情况下额定氢产量为1 N m〜3 H_2 / h的商业碱性水电解槽(HySTAT的HySTAT)的热性能。提出了。已使用红外热像仪和放置在主要电解槽组件外表面的几个热电偶在不同的运行条件下分析了电解槽的热性能。已经发现,通过能够向电解器提供真正恒定的DC电流的电子转换器代替与电解器一起提供的商用电源单元,可以将由于散热而耗散的功率降低50-67%。采用集总电容法数学上描述了电解槽的热性能,得出的热电容为174 kJ℃〜(-1)。已经考虑了AC / DC转换器特性对功耗的影响,即散热。到环境的热损失是由自然对流控制的,并通过总传热系数进行了建模,总传热系数为4.3 Wm〜(-2)℃〜(-1)。该模型已使用ANSYS〜R V10.0软件代码实现,合理地描述了电解槽的性能。随着热量散发的大部分能量使电解槽在适合降低电池过电压的温度下运行。

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