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隧道与地下工程灾害防治  2020, Vol. 2 Issue (4): 1-8    
  前沿综述 本期目录 | 过刊浏览 | 高级检索 |
盐岩储库水溶建腔机理与模拟方法研究进展
李金龙1,2,刘继芹3,李庆东1,2,徐文杰1,2,庄端阳1,2
1. 浙江大学教育部软弱土与环境土工教育部重点实验室, 浙江 杭州 310058;2. 浙江大学超重力研究中心, 浙江 杭州 310058;3. 新奥天然气股份有限公司, 河北 廊坊 065000
Advances in mechanism and modeling method for solution mining of salt cavern storage
LI Jinlong1,2, LIU Jiqin3, LI Qingdong1,2, XU Wenjie1,2, ZHUANG Duanyang1,2
1. MOE Key Laboratory of Soft Soils and Geoenvironmental Engineering, Zhejiang University, Hangzhou 310058, Zhejiang, China;
2. Center for Hypergravity Experiment and Interdisciplinary Research, Zhejiang University, Hangzhou 310058, Zhejiang, China;
3. ENN Natural Gas Co., Ltd., Langfang 065000, Hebei, China
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摘要 针对盐岩储库地下水溶建腔过程难以观测和控制的问题,需建立水溶建腔模拟模型对腔体的发展进行设计、预测和控制,可使腔体最终形态满足长期稳定性需求。从盐岩溶解速率、卤水对流模型、不溶夹层垮塌行为、不溶杂质沉积等方面总结国内外关于水溶建腔机理与模拟方法的研究进展。结合国内外关于水溶建腔机理与模拟方法的发展现状,指出当前盐岩储库建腔建模和设计存在的问题和下一步的研究方向。
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李金龙
刘继芹
李庆东
徐文杰
庄端阳
关键词:  盐岩  能源储库  水溶建腔模拟  水溶造腔  形态预测    
Abstract: The underground solution mining of salt cavern energy storage is hard to observe or control. Therefore, a solution mining model is needed for the design, prediction and control of the cavern development, to make sure the final cavern shape meets the long-term stability requirements. The progress was concluded about the solution mining mechanism and modeling method, including the salt dissolution rate, brine convection model, collapse of the insoluble interlayers, and sedimentation of the insoluble substances. The main problems and development tendency was pointed out for the salt cavern modeling and design.
Key words:  salt rock    energy storage    construction modeling    solution mining    shape prediction
                    发布日期:  2021-02-25      期的出版日期:  2020-12-20
中图分类号:  U451.2  
作者简介:  李金龙(1991— ),男,山东临沂人,博士,助理研究员,主要研究方向为深地盐岩储库建腔模拟与安全评估.E-mail: lijinlong@zju.edu.cn
引用本文:    
李金龙,刘继芹,李庆东,徐文杰,庄端阳. 盐岩储库水溶建腔机理与模拟方法研究进展[J]. 隧道与地下工程灾害防治, 2020, 2(4): 1-8.
LI Jinlong, LIU Jiqin, LI Qingdong, XU Wenjie, ZHUANG Duanyang. Advances in mechanism and modeling method for solution mining of salt cavern storage. Hazard Control in Tunnelling and Underground Engineering, 2020, 2(4): 1-8.
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http://tunnel.sdujournals.com/CN/Y2020/V2/I4/1
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