考虑地下氢气储存的缓冲气体

Sadie Prigmore, Omolabake Abiodun Okon-Akan, Imuentinyan P. Egharevba, C. C. Ogbaga, P. Okoye, Emmanuel Epelle, Jude A. Okolie
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引用次数: 0

摘要

由于世界人口的不断增长和环境因素的影响,人们对替代能源产生了极大的兴趣。氢因其对环境无害的性质,在能源载体中发挥着重要作用。氢气燃烧后会释放出水蒸气,同时在航空航天、制药和冶金工业中也有广泛的工业应用。尽管前景广阔,但氢的储存也面临挑战。地下储氢(UHS)是一种前景广阔的安全储氢方法。为地下储氢系统选择合适的缓冲气体是确保储氢系统安全、高效和可靠的关键。缓冲气体在保持储氢罐内必要的压力方面起着关键作用,从而使氢气的注入和抽出速率保持一致。缓冲气的主要功能之一是充当缓冲器,确保在氢气需求或供应波动的情况下,储存压力仍保持在所需范围内。这是通过在注入和抽出周期中交替膨胀和压缩缓冲气体来实现的,从而有效调节储存设施内的整体压力动态。此外,缓冲气体的选择会对 UHS 系统的性能和长期稳定性产生重大影响。在选择最合适的缓冲气体时,必须仔细考虑与氢气的兼容性、成本效益、可用性和环境影响等因素。本研究全面回顾了超高压制动系统中常用的各种缓冲气体,包括氮气、甲烷和二氧化碳。通过研究与每种选择相关的优势、局限性和实际考虑因素,本研究旨在为优化超高真空系统的性能和可靠性提供有价值的见解。最终,UHS 的成功实施不仅取决于技术创新,还取决于有关缓冲气体选择和管理的战略决策。通过积极应对这些挑战,利益相关者可以充分释放氢气作为清洁和可持续能源载体的潜力,从而为全球向低碳未来过渡做出贡献。
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Cushion Gas Consideration for Underground Hydrogen Storage
Due to the increasing world population and environmental considerations, there has been a tremendous interest in alternative energy sources. Hydrogen plays a major role as an energy carrier due to its environmentally benign nature. The combustion of hydrogen releases water vapor while it also has a vast industrial application in aerospace, pharmaceutical, and metallurgical industries. Although promising, hydrogen faces storage challenges. Underground hydrogen storage (UHS) presents a promising method of safely storing hydrogen. The selection of the appropriate cushion gas for UHS is a critical aspect of ensuring the safety, efficiency, and reliability of the storage system. Cushion gas plays a pivotal role in maintaining the necessary pressure within the storage reservoir, thereby enabling consistent injection and withdrawal rates of hydrogen. One of the key functions of the cushion gas is to act as a buffer, ensuring that the storage pressure remains within the desired range despite fluctuations in hydrogen demand or supply. This is achieved by alternately expanding and compressing the cushion gas during the injection and withdrawal cycles, thereby effectively regulating the overall pressure dynamics within the storage facility. Furthermore, the choice of cushion gas can have significant implications on the performance and long-term stability of the UHS system. Factors such as compatibility with hydrogen, cost-effectiveness, availability, and environmental impact must be carefully considered when selecting the most suitable cushion gas. The present study provides a comprehensive review of different types of cushion gases commonly used in UHS, including nitrogen, methane, and carbon dioxide. By examining the advantages, limitations, and practical considerations associated with each option, the study aims to offer valuable insights into optimizing the performance and reliability of UHS systems. Ultimately, the successful implementation of UHS hinges not only on technological innovation but also on strategic decisions regarding cushion gas selection and management. By addressing these challenges proactively, stakeholders can unlock the full potential of hydrogen as a clean and sustainable energy carrier, thereby contributing to the global transition towards a low-carbon future.
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