Technological advances of ammonia as energy storage solution

None Ibim Abba Green, None Kelechi Uchenna Ugoji, None Umar Shamsu, None Igbere Billy Ndukam, None Titus Joseph
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Abstract

The renewable energy is playing an important role in transitioning to the decarbonization of the entire energy value chain. But how will the global energy industry accelerate this transition? Renewables and electrification of energy could be a perfect solution. However, intermittency of renewable energy production is the single biggest challenge faced by renewable energy sources, which can be mitigated when it is coupled with an appropriate energy storage system. First, you need to generate electricity from renewable sources and then store it so that it can be extracted whenever there is a demand. There are several energy storage systems that can be coupled with renewables such as fossil fuel storage, mechanical storage, thermal storage, electrochemical storage, and chemical storage. Studies have shown that chemical storage technologies provide clear advantage in terms of storage time and range of power it can store over other similar technologies. It also justifies the recent research activities around various new chemical storage technologies. A combination of the above energy systems works very well for most of the abundant and affordable energy. However, one area where there can be a significant improvement is the carbon emissions associated with fossil fuel-based storage systems. As a result, the energy industry is recently interested in the transition to renewables coupled with non-carbon storage of power as a long term solution to environmental issues. So the possible solution is producing chemical storage options from surplus renewable energy which solves both the hurdles of emissions as well as carbon-free energy storage system. This article analyses whether ammonia can be viewed as an efficient and technological solution to the problem of large-scale and long-duration energy storage in the decarbonized energy systems of the future. Throughout the article, references have been drawn from a wide range of resources and author’s academic and industrial experience. It is intended to use the article as a vehicle to share knowledge with a wide range of audience on utilization of ammonia for energy storage.
氨储能技术进展
可再生能源在整个能源价值链向脱碳转型中发挥着重要作用。但全球能源行业将如何加速这一转变呢?可再生能源和能源电气化可能是一个完美的解决方案。然而,可再生能源生产的间歇性是可再生能源面临的最大挑战,当它与适当的储能系统相结合时,可以减轻这一挑战。首先,你需要用可再生能源发电,然后把它储存起来,以便在有需求的时候提取出来。有几种能量存储系统可以与可再生能源相结合,如化石燃料存储、机械存储、热存储、电化学存储和化学存储。研究表明,与其他类似技术相比,化学存储技术在存储时间和存储功率范围方面具有明显的优势。这也证明了最近围绕各种新的化学储存技术的研究活动是合理的。上述能源系统的组合对大多数丰富和负担得起的能源都非常有效。然而,有一个领域可以得到显著改善,那就是与基于化石燃料的储存系统相关的碳排放。因此,能源行业最近对向可再生能源过渡以及无碳电力储存作为环境问题的长期解决方案感兴趣。因此,可能的解决方案是从剩余的可再生能源中生产化学储存选择,这既解决了排放障碍,又解决了无碳能源储存系统。本文分析了氨是否可以被视为未来脱碳能源系统中大规模和长时间储能问题的有效和技术解决方案。在整个文章中,参考文献已经从广泛的资源和作者的学术和行业经验绘制。它的目的是利用这篇文章作为一种工具,与广泛的受众分享关于氨用于储能的知识。
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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