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Relationship Between the Redox Reactions on a Bipolar Plate and Reverse Current After Alkaline Water Electrolysis

机译:双极板氧化还原反应与碱性水电解后反向电流之间的关系

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In order to efficiently operate the alkaline water electrolyzers with renewable energy, behaviors of the electrolyzer during start-up or shut-down must be unveiled, because they might be suffered by reverse current that naturally flows. The mechanism of the reverse current in alkaline water electrolyzer having relation between the electrolyzer operating conditions and cell voltage has been investigated using a bipolar-type electrolyzer which consists of two cells. The electrodes were nickel mesh, which are conventional electrodes for alkaline water electrolyzer. The amount of natural reverse current measured during off-load was proportional to the current loaded until just before stopping the operation. The increase in the charge would result from the increasing oxide on the anode of the bipolar plate. Cell voltages were above 1.4 V at all cases just when the electrolyzer is forcibly opened the circuit to stop. The major redox couple of the reverse current would be [NiO2/NiOOH] and [H-2/H2O] due to the cell voltage and the redox couples. The open circuit cell voltage of the cathode terminal side cell gradually decreased to 0.3 V, while that of the anode terminal side cell was maintained above 1.1 V. Therefore, nickel oxides on the anode of the bipolar plate would be reduced, and the cathodic active material of hydrogen and nickel for the cathode side of the bipolar plate would be oxidized during the reverse current flows. Ultimately, the reverse current would stop when the redox state of both sides of the bipolar plate had the same oxidation state.
机译:为了有效地操作具有可再生能量的碱性水电解器,必须揭开在启动或关闭期间的电解槽的行为,因为它们可能被自然流动的反向电流遭受。使用由两个电池组成的双极式电解槽研究了具有电解槽操作条件和电池电压之间的碱性水电解槽的反向电流的机理。电极是镍网,其是碱性水电解槽的常规电极。在卸载期间测量的自然反向电流的量与加载的电流成比例,直到在停止操作之前。电荷的增加将是由于双极板阳极上的增加的氧化物。在所有情况下,电池电压高于1.4V,只需在电解槽被强制打开电路即可停止时。由于电池电压和氧化还原耦合,反向电流的主要氧化还原耦合是[NiO2 / NiOOH]和[H-2 / H2O]。阴极端子侧电池的开路电池电压逐渐降低至0.3V,而阳极端子侧电池的保持高于1.1V。因此,将减少双极板的阳极上的镍氧化物,并且阴极活性双极板的阴极侧的氢和镍的材料将在反向电流流动期间氧化。最终,当双极板两侧的氧化还原状态具有相同的氧化状态时,反向电流将停止。

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