金属氢化物可持续储氢研究进展

IF 4.3 3区 工程技术 Q2 ENERGY & FUELS International Journal of Energy Research Pub Date : 2025-02-03 DOI:10.1155/er/6300225
E. Nemukula, C. B. Mtshali, F. Nemangwele
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引用次数: 0

摘要

在金属中储存氢由于其安全储存的优点而受到广泛关注。这是一种很有前途的储氢方法,消除了在高压下储存氢气的挑战,包括材料耐久性、储罐安全性和整体重量。在过去的十年里,为了使这种方法更接近大规模应用,已经做了很多工作。然而,在提高储氢材料的体积和重量容量、氢吸附/解吸动力学、材料生命周期和反应热力学等方面,还需要进行大量的实验研究。其他需要考虑的重要性质包括瞬态性能、废储存材料的再生过程、与活化能相关的有效吸附温度、材料的诱导孔径、增加的孔隙体积和表面积以及材料的致密性。近年来,这种固态存储在接近正常大气压和温度的条件下取得了进展,金属氢化物(mh)成为一种有前途的选择。其单位体积的高储存密度、体积储存能力以及在保持稳定性的同时逆转过程的能力,使mh具备了低压储存和满足储氢要求的资格。然而,理解动力学和热力学原理对于理解氢原子吸收和释放氢的反应是至关重要的。本文综述了目前的储氢方法、不同类型的氢能、它们的热力学和动力学,以及它们的应用和挑战。为进一步推进该领域的研究,对今后的工作和研究提出了建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Metal Hydrides for Sustainable Hydrogen Storage: A Review

Storing hydrogen in metals has received much attention due to the advantages of this approach for safely storing. It is a promising method of storing hydrogen and eliminates the challenges associated with storing hydrogen gas at high pressure, which includes material durability, tank safety, and overall weight. Much work has been done for the past decade to bring this approach closer to wide-scale application. However, much experimental research is needed to improve the volumetric and gravimetric capacity, hydrogen adsorption/desorption kinetics, material life cycle, and reaction thermodynamics of potential materials for hydrogen storage. Other important properties to consider are transient performance, the regeneration process of spent storage materials, effective adsorption temperature associated with activation energy, induced pore sizes in materials, increasing pore volume and surface area, and materials densification. In recent years, this solid-state storage has progressed at conditions close to normal atmospheric pressure and temperature, with metal hydrides (MHs) emerging as a promising option. Their high storage density per unit volume, volume storage capabilities, and their ability to reverse the process while maintaining stability have qualified the MHs for low-pressure storage and fulfilling the hydrogen storing requirements. However, understanding the principles of kinetics and thermodynamics is crucial for understanding the reactions of MHs as they absorb and release hydrogen. This review evaluates the current hydrogen storage methods, the different types of MHs, their thermodynamics and kinetics, as well as their applications and challenges. For the advancement of further research in this field of study, suggestions for future work and studies are also provided.

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来源期刊
International Journal of Energy Research
International Journal of Energy Research 工程技术-核科学技术
CiteScore
9.80
自引率
8.70%
发文量
1170
审稿时长
3.1 months
期刊介绍: The International Journal of Energy Research (IJER) is dedicated to providing a multidisciplinary, unique platform for researchers, scientists, engineers, technology developers, planners, and policy makers to present their research results and findings in a compelling manner on novel energy systems and applications. IJER covers the entire spectrum of energy from production to conversion, conservation, management, systems, technologies, etc. We encourage papers submissions aiming at better efficiency, cost improvements, more effective resource use, improved design and analysis, reduced environmental impact, and hence leading to better sustainability. IJER is concerned with the development and exploitation of both advanced traditional and new energy sources, systems, technologies and applications. Interdisciplinary subjects in the area of novel energy systems and applications are also encouraged. High-quality research papers are solicited in, but are not limited to, the following areas with innovative and novel contents: -Biofuels and alternatives -Carbon capturing and storage technologies -Clean coal technologies -Energy conversion, conservation and management -Energy storage -Energy systems -Hybrid/combined/integrated energy systems for multi-generation -Hydrogen energy and fuel cells -Hydrogen production technologies -Micro- and nano-energy systems and technologies -Nuclear energy -Renewable energies (e.g. geothermal, solar, wind, hydro, tidal, wave, biomass) -Smart energy system
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