地下储氢的技术和经济可行性

Hydrogen Pub Date : 2023-11-29 DOI:10.3390/hydrogen4040057
José Ernesto Quintos Fuentes, Diogo M. F. Santos
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引用次数: 0

摘要

考虑到可再生能源的可用性与能源需求之间的不匹配,储能对于实现净零未来越来越重要。每日/季节的差异会在特定时刻产生能量过剩。问题是如何储存这些 "过剩 "能源?氢气是一个很有前景的解决方案。传统的氢储存依赖于人造容器。然而,该技术的推广需要更大的容量,以满足峰值需求,提高可再生能源的可靠性,并为未来的技术和基础设施发展增加氢储备。最佳解决方案可能是利用盐洞和含水层等地下储层的大容量,同时最大限度地减少表面积的使用,避免传统方法固有的制造和安全问题。在地下储氢(UHS)技术的关键方面存在明显的文献空白。因此,有必要对最新发展进行全面回顾,以找出这些差距,并指导有关该主题的进一步研发。这项工作有助于更好地了解 UHS 的现状及其未来挑战。它回顾了已出版的有关 UHS 的文献,评估了过去几十年的进展,并讨论了正在进行和已完成的项目,表明该技术在技术和经济上都已准备就绪,可以满足当今的需求。
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Technical and Economic Viability of Underground Hydrogen Storage
Considering the mismatch between the renewable source availability and energy demand, energy storage is increasingly vital for achieving a net-zero future. The daily/seasonal disparities produce a surplus of energy at specific moments. The question is how can this “excess” energy be stored? One promising solution is hydrogen. Conventional hydrogen storage relies on manufactured vessels. However, scaling the technology requires larger volumes to satisfy peak demands, enhance the reliability of renewable energies, and increase hydrogen reserves for future technology and infrastructure development. The optimal solution may involve leveraging the large volumes of underground reservoirs, like salt caverns and aquifers, while minimizing the surface area usage and avoiding the manufacturing and safety issues inherent to traditional methods. There is a clear literature gap regarding the critical aspects of underground hydrogen storage (UHS) technology. Thus, a comprehensive review of the latest developments is needed to identify these gaps and guide further R&D on the topic. This work provides a better understanding of the current situation of UHS and its future challenges. It reviews the literature published on UHS, evaluates the progress in the last decades, and discusses ongoing and carried-out projects, suggesting that the technology is technically and economically ready for today’s needs.
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