Microwave Plasma Enhancing Mg-Based Hydrogen Storage: Thermodynamics Evaluation and Economic Analysis of Coupling SOFC for Heat and Power Generation

Huan Wang, Hongli Yan, J. Ren, B. Li, S. Nyallang Nyamsi, Zhen Wu
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Abstract

Graphical Abstract Hydrogen, as a kind of green and efficient energy, plays an increasingly important role in current social development. Hydrogen storage technology is considered to be one of the main bottlenecks in limiting the large-scale application of hydrogen energy. The solid-state hydrogen storage technology based on Mg-based materials has received extensive attention due to its advantages of high hydrogen capacity, good reversibility, and low cost, but there are still shortcomings such as high reaction temperature, large energy consumption, and slow reaction kinetics. In order to solve these problems, this article proposes a new method of using microwave plasma to ionize hydrogen into H− ion. The possible activation mechanism of microwave plasma to improve the hydrogen storage properties is put forward. Based on the activation mechanism, the thermodynamic performance of Mg-based hydrogen storage is evaluated using density functional theory. It is concluded that the reaction temperature is significantly reduced from 339°C to 109°C with the help of microwave plasma. In addition, the comparison between the conventional heating hydrogen storage process based on MgH2 and microwave enhanced advanced hydrogen storage process based on MgH2 systems coupled with solid oxide fuel cells for heat and power generation is conducted to evaluate the economic feasibility. The results show that the energy consumption cost of the proposed microwave plasma enhancing hydrogen storage system is approximately 1.71 $/kgH2, which is about 50% of the energy consumption cost of the conventional system.
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微波等离子体增强镁基储氢:热电耦合SOFC热力学评价与经济分析
氢作为一种绿色高效的能源,在当今社会发展中发挥着越来越重要的作用。储氢技术被认为是限制氢能大规模应用的主要瓶颈之一。基于镁基材料的固态储氢技术因其储氢能力高、可逆性好、成本低等优点而受到广泛关注,但仍存在反应温度高、能耗大、反应动力学慢等缺点。为了解决这些问题,本文提出了一种利用微波等离子体将氢电离成氢离子的新方法。提出了微波等离子体激活以提高储氢性能的可能机理。基于活化机理,利用密度泛函理论对镁基储氢材料的热力学性能进行了评价。结果表明,在微波等离子体的帮助下,反应温度从339°C显著降低到109°C。此外,对基于MgH2的传统加热储氢工艺和基于MgH2系统的微波增强高级储氢工艺与固体氧化物燃料电池耦合用于加热和发电进行了比较,以评估其经济可行性。结果表明,所提出的微波等离子体增强储氢系统的能耗成本约为1.71$/kgH2,约为传统系统能耗成本的50%。
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