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Life cycle assessment of high temperature electrolysis for hydrogen production via nuclear energy

机译:核能制氢用高温电解的生命周期评估

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A life cycle assessment (LCA) of one proposed method of hydrogen production—the high temperature electrolysis of water vapor—is presented in this paper. High temperature electrolysis offers an advantage of higher energy efficiency over the conventional low-temperature alkaline electrolysis due to reduced cell potential and consequent electrical energy requirements. The primary energy source for the electrolysis will be advanced nuclear reactors operating at temperatures corresponding to those required for the high temperature electrolysis. The LCA examines the environmental impact of the combined advanced nuclear-high temperature electrolysis plant, focusing upon quantifying the emissions of carbon dioxide, sulfur dioxide, and nitrogen oxides per kilogram of hydrogen produced. The results are presented in terms of the global warming potential (GWP) and the acidification potential (AP) of the system. The GWP for the system is 2000 g carbon dioxide equivalent and the AP, 0.15 g equivalents of hydrogen ion equivalent per kilogram of hydrogen produced. The GWP and AP of this process are one-sixth and one-third, respectively, of those for the hydrogen production by steam reforming of natural gas, and are comparable to producing hydrogen from wind- or hydro-electricity powered conventional electrolysis.
机译:本文提出了一种提出的制氢方法(水蒸气的高温电解)的生命周期评估(LCA)。由于降低了电池电势并因此产生了电能需求,因此高温电解具有比常规低温碱性电解更高的能量效率的优点。电解的主要能源将是先进的核反应堆,其工作温度与高温电解所需的温度相对应。 LCA检查了先进的核高温电解联合装置对环境的影响,重点是量化每产生一千克氢气产生的二氧化碳,二氧化硫和氮氧化物的排放量。结果以系统的全球变暖潜能值(GWP)和酸化潜能值(AP)表示。该系统的全球升温潜能值为2000克二氧化碳当量,而AP则为每千克产生的氢气0.15克当量氢离子当量。该方法的GWP和AP分别是天然气蒸汽重整制氢所产氢的六分之一和三分之一,可与风能或水力发电的常规电解法制氢相媲美。

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