天然气水合物能在大气压下运输吗?天然气水合物中自保存现象的研究进展

IF 11 1区 工程技术 Q1 ENERGY & FUELS
Xuezhi Zhu , Wenxu Zhang , Yong Tang , Yu Zhang , Zhongbin Zhang , Xiaolin Wang
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引用次数: 0

摘要

天然气水合物具有安全、储存密度高、成本效益高等优点,是一种很有前途的天然气储存和运输介质。传统的天然气运输经常面临诸如泄漏等挑战,导致逸散性排放。天然气水合物可以通过在相平衡条件下安全地捕获气体分子来缓解这些问题。然而,当压力或温度偏离平衡区时,它们会立即释放气体,因此在整个运输过程中需要连续的、能量密集的加压。这种自我保存现象降低了天然气水合物作业的压力要求,使天然气能够在降低甚至大气压下储存和运输。尽管对天然气水合物的自保存作用进行了大量的研究,但尚未对其研究现状进行全面的综述。本文首次综述了天然气水合物自保存现象的研究进展。它对这种效应的基本特征进行了深入的讨论,对用来增强这种效应的方法进行了彻底的分析,并对导致这种效应消失的机制进行了分析。此外,本文总结了目前对这种自我保存现象的微观机制的理解,并探讨了这种状态下水合物的不同解离模型。本文通过对相关研究的系统回顾,为进一步认识和实际利用天然气水合物的自保存效应提供理论支持,同时为未来的研究方向和技术应用提供有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Can gas hydrates be transported at atmospheric pressure? A review of the self-preservation phenomenon in gas hydrates

Can gas hydrates be transported at atmospheric pressure? A review of the self-preservation phenomenon in gas hydrates
Gas hydrates are a promising medium for natural gas storage and transportation due to their safety, high storage density, and cost-effectiveness. Traditional gas transportation often faces challenges such as leakage, leading to fugitive emissions. Gas hydrates can mitigate these issues by securely trapping gas molecules under phase equilibrium conditions. However, they release gas immediately when pressure or temperature deviates from the equilibrium zone, necessitating continuous, energy-intensive pressurization throughout the transportation process. The self-preservation phenomenon reduces the pressure requirements for gas hydrate operations, allowing gas to be stored and transported at reduced or even atmospheric pressure. Despite the large number of studies on the self-preservation effect in gas hydrates, there has been no comprehensive review of its research status. This paper presents the first comprehensive review of the research progress on the self-preservation phenomenon in gas hydrates. It provides an in-depth discussion of the fundamental characteristics of this effect, a thorough analysis of methods used to enhance it, and the mechanisms that lead to its absence. Additionally, the review summarizes current understanding of the microscopic mechanisms underlying the self-preservation phenomenon and explores the different dissociation models of hydrates in this state. By systematically reviewing related studies, this paper offers theoretical support for a deeper understanding and practical utilization of the self-preservation effect in gas hydrates, while providing valuable insights into future research directions and technological applications.
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来源期刊
Applied Energy
Applied Energy 工程技术-工程:化工
CiteScore
21.20
自引率
10.70%
发文量
1830
审稿时长
41 days
期刊介绍: Applied Energy serves as a platform for sharing innovations, research, development, and demonstrations in energy conversion, conservation, and sustainable energy systems. The journal covers topics such as optimal energy resource use, environmental pollutant mitigation, and energy process analysis. It welcomes original papers, review articles, technical notes, and letters to the editor. Authors are encouraged to submit manuscripts that bridge the gap between research, development, and implementation. The journal addresses a wide spectrum of topics, including fossil and renewable energy technologies, energy economics, and environmental impacts. Applied Energy also explores modeling and forecasting, conservation strategies, and the social and economic implications of energy policies, including climate change mitigation. It is complemented by the open-access journal Advances in Applied Energy.
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