Fundamental insights into multistep depressurization of CH4/CO2 hydrates in the presence of N2 or air

IF 16.3 1区 工程技术 Q1 ENERGY & FUELS
Q. Ouyang, J.S. Pandey, Y. Xu, N. von Solms
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Abstract

Exploitation of natural gas hydrates provides an alternative way to address energy crisis. Dilute CO2 gas (13–30mol%CO2 with remaining N2/Air) injection into CH4 hydrates for hydrate swapping (SW) allows cheaper and more practical CH4 recovery and in-situ CO2 sequestration. However, the roles of N2/Air in dilute CO2 gas during exploitation remain unknown. It is unclear whether depressurization should be coupled after SW and continued below CH4 hydrate stability pressure. This work employed multistep depressurization (MD) to dissociate the mixed hydrates formed after SW from 86.5 to 97.9 bar at 0.7–1.2 °C in bulk-water and sandpack with CH4 hydrate saturation of 4.1–25.3 %. Effects of N2/Air on exploitation were investigated by examining hydrate morphologies and gas compositions. Morphological results in bulk-water indicated higher N2 fraction in 20mol%CO2/N2 triggered more CO2-rich hydrate reformation and CH4-rich hydrate dissociation. Exploitation results in sandpack indicated 13mol%CO2/N2 produced the highest CH4 swapping percent (46.6 %) and CO2 hydrate sequestration percent (29.1 %). Air exerted weaker promoting effects on exploitation compared with equivalent N2. The promotion of N2/Air on exploitation was dominated by dilute CO2 gas injection altering mixed hydrate equilibrium which varied with time-dependent gaseous compositions during MD. l-methionine of 3000 ppm had stronger promoting effects on CO2 sequestration in sandpack than bulk-water depending on mass transfer and water availability. Ceasing points (13.9–31.4 bar) suggested MD could be continued below CH4/above CO2 hydrate stability pressures and before water production. For the first time, this study provided insights into the roles of N2/Air to determine injection gas types and depressurization schemes for efficient and safe hydrate exploitation in gas-rich hydrate-bearing sediment.

Abstract Image

关于在 N2 或空气存在下 CH4/CO2 水合物多步减压的基本见解
开发天然气水合物为解决能源危机提供了另一种途径。向 CH4 水合物注入稀释 CO2 气体(13-30mol%CO2,剩余 N2/空气)进行水合物交换(SW)可实现更便宜、更实用的 CH4 回收和就地 CO2 封存。然而,在开采过程中,N2/空气在稀释 CO2 气体中的作用仍然未知。目前还不清楚是否应在水合交换后进行减压,并在低于 CH4 水合物稳定压力时继续减压。这项研究采用了多级减压 (MD) 技术,在 0.7-1.2 °C、86.5-97.9 巴的温度条件下,在 CH4 水合物饱和度为 4.1-25.3 % 的散装水和沙堆中解离 SW 后形成的混合水合物。通过检查水合物形态和气体成分,研究了 N2/Air 对开采的影响。散水中的形态学结果表明,在 20mol%CO2/N2 中,较高的 N2 分数会引发更多富含 CO2 的水合物重整和富含 CH4 的水合物解离。沙堆中的开采结果表明,13mol%CO2/N2 产生的 CH4 交换率(46.6%)和 CO2 水合物封存率(29.1%)最高。与等效的 N2 相比,空气对开采的促进作用较弱。N2/Air 对开采的促进作用主要是稀释的 CO2 气体注入改变了混合水合物的平衡,这种平衡在 MD 期间随时间变化的气体成分而变化。3000 ppm 的蛋氨酸对沙堆中 CO2 封存的促进作用比散装水强,这取决于传质和水的可用性。停止点(13.9-31.4 巴)表明,可在低于 CH4/高于 CO2 水合物稳定压力和产水之前继续进行 MD。这项研究首次深入探讨了 N2/Air 的作用,以确定注入气体类型和减压方案,从而在富含气体水合物的沉积物中高效、安全地开采水合物。
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来源期刊
Renewable and Sustainable Energy Reviews
Renewable and Sustainable Energy Reviews 工程技术-能源与燃料
CiteScore
31.20
自引率
5.70%
发文量
1055
审稿时长
62 days
期刊介绍: The mission of Renewable and Sustainable Energy Reviews is to disseminate the most compelling and pertinent critical insights in renewable and sustainable energy, fostering collaboration among the research community, private sector, and policy and decision makers. The journal aims to exchange challenges, solutions, innovative concepts, and technologies, contributing to sustainable development, the transition to a low-carbon future, and the attainment of emissions targets outlined by the United Nations Framework Convention on Climate Change. Renewable and Sustainable Energy Reviews publishes a diverse range of content, including review papers, original research, case studies, and analyses of new technologies, all featuring a substantial review component such as critique, comparison, or analysis. Introducing a distinctive paper type, Expert Insights, the journal presents commissioned mini-reviews authored by field leaders, addressing topics of significant interest. Case studies undergo consideration only if they showcase the work's applicability to other regions or contribute valuable insights to the broader field of renewable and sustainable energy. Notably, a bibliographic or literature review lacking critical analysis is deemed unsuitable for publication.
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