Global S&T Development Trend Analysis Platform of Resources and Environment
DOI | 10.1029/2018WR024095 |
Electro-Thermal Subsurface Gas Generation and Transport: Model Validation and Implications | |
Molnar, Ian L.1; Mumford, Kevin G.2; Krol, Magdalena M.1 | |
2019-06-01 | |
发表期刊 | WATER RESOURCES RESEARCH
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ISSN | 0043-1397 |
EISSN | 1944-7973 |
出版年 | 2019 |
卷号 | 55期号:6页码:4630-4647 |
文章类型 | Article |
语种 | 英语 |
国家 | Canada |
英文摘要 | Gas generation and flow in soil is relevant to applications such as the fate of leaking geologically sequestered carbon dioxide, natural releases of methane from peat and marine sediments, and numerous electro-thermal remediation technologies for contaminated sites, such as electrical resistance heating. While traditional multiphase flow models generally perform poorly in describing unstable gas flow phenomena in soil, Macroscopic Invasion Percolation (MIP) models can reproduce key features of its behavior. When coupled with continuum heat and mass transport models, MIP has the potential to simulate complex subsurface scenarios. However, coupled MIP-continuum models have not yet been validated against experimental data and lack key mechanisms required for electro-thermal scenarios. Therefore, the purpose of this study was to (a) incorporate mechanisms required for steam generation and flow into an existing MIP-continuum model (ET-MIP), (b) validate ET-MIP against an experimental lab-scale electrical resistance heating study, and (c) investigate the sensitivity of water boiling and gas (steam) transport to key parameters. Water boiling plateaus (i.e., latent heat), heat recirculation within steam clusters, and steam collapse (i.e., condensation) mechanisms were added to ET-MIP. ET-MIP closely matched observed transient gas saturation distributions, measurements of electrical current, and temperature distributions. Heat recirculation and cluster collapse were identified as the key mechanisms required to describe gas flow dynamics using a MIP algorithm. Sensitivity analysis revealed that gas generation rates and transport distances, particularly through regions of cold water, are sensitive to the presence of dissolved gases. |
英文关键词 | thermal remediation invasion percolation gas flow steam validation dissolved gases |
领域 | 资源环境 |
收录类别 | SCI-E |
WOS记录号 | WOS:000477616900008 |
WOS关键词 | POROUS-MEDIA ; INVASION PERCOLATION ; IMMISCIBLE DISPLACEMENT ; AIR-DISTRIBUTION ; STEAM INJECTION ; MULTIPHASE FLOW ; HEAT PIPES ; MIGRATION ; SIMULATION ; WATER |
WOS类目 | Environmental Sciences ; Limnology ; Water Resources |
WOS研究方向 | Environmental Sciences & Ecology ; Marine & Freshwater Biology ; Water Resources |
引用统计 | |
文献类型 | 期刊论文 |
条目标识符 | http://119.78.100.173/C666/handle/2XK7JSWQ/183962 |
专题 | 资源环境科学 |
作者单位 | 1.York Univ, Lassonde Sch Engn, Toronto, ON, Canada; 2.Queens Univ, Dept Civil Engn, Kingston, ON, Canada |
推荐引用方式 GB/T 7714 | Molnar, Ian L.,Mumford, Kevin G.,Krol, Magdalena M.. Electro-Thermal Subsurface Gas Generation and Transport: Model Validation and Implications[J]. WATER RESOURCES RESEARCH,2019,55(6):4630-4647. |
APA | Molnar, Ian L.,Mumford, Kevin G.,&Krol, Magdalena M..(2019).Electro-Thermal Subsurface Gas Generation and Transport: Model Validation and Implications.WATER RESOURCES RESEARCH,55(6),4630-4647. |
MLA | Molnar, Ian L.,et al."Electro-Thermal Subsurface Gas Generation and Transport: Model Validation and Implications".WATER RESOURCES RESEARCH 55.6(2019):4630-4647. |
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