• 中国出版政府奖提名奖

    中国百强科技报刊

    湖北出版政府奖

    中国高校百佳科技期刊

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    Volume 48 Issue 1
    Jan.  2023
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    Article Contents
    Liu Weibin, Xu Xingyou, Chen Shan, Bai Jing, Li Yaohua, 2023. Key Technology and Engineering Demonstration of Geology⁃Engineering Integration Efficient Exploration of Continental Shale Oil in Songliao Basin. Earth Science, 48(1): 173-190. doi: 10.3799/dqkx.2022.218
    Citation: Liu Weibin, Xu Xingyou, Chen Shan, Bai Jing, Li Yaohua, 2023. Key Technology and Engineering Demonstration of Geology⁃Engineering Integration Efficient Exploration of Continental Shale Oil in Songliao Basin. Earth Science, 48(1): 173-190. doi: 10.3799/dqkx.2022.218

    Key Technology and Engineering Demonstration of Geology⁃Engineering Integration Efficient Exploration of Continental Shale Oil in Songliao Basin

    doi: 10.3799/dqkx.2022.218
    • Received Date: 2022-02-15
      Available Online: 2023-02-01
    • Publish Date: 2023-01-25
    • China's continental shale oil resources have great potential, but the shale reservoir has the characteristics of high clay mineral content, strong heterogeneity and low ground energy, which seriously restricts the efficient exploration of continental shale oil in China. Focusing on the key links such as sweet spot optimization, horizontal well drilling, stimulated reservoir volume and oil test for production, comprehensively utilizing the coring, logging, logging and analysis and test data of JYY1 Well system, innovative research has been carried out on geology-engineering integration. The results show that the shale of Qingyi Member in Songliao Basin can be divided into two lithofacies types: high TOC bedding clayey shale and medium TOC laminated felsic shale. The former is mainly geological sweet spot and the latter is mainly engineering sweet spot. In this study, the integrated "double sweet spot" evaluation standard of geology-engineering has been established. Based on our horizontal well design concept of "drilling sand and fracturing shale", the 1.94 m thick double sweet spot target layer was selected, and the technical breakthrough of 1 252 m horizontal drilling of ultra-thin target layer and 100% penetration rate was achieved by adopting the three-dimensional geophysical geology-engineering integration ultra-thin target layer guidance technology. The four advantages of supercritical CO2 are rock breaking, dissolution, oil displacement and energy increase. The supercritical CO2 + large-scale hydraulic sand carrying composite fracturing process and pressure controlled energy storage flowback technology have been innovated, which has realized the large-scale volume transformation of continental shale formation of JYY1 Well, and achieved a breakthrough in 16.4 m3/d high and stable shale oil, resulting in a geology-engineering integration method, technology, process and various parameters. It has reference significance for the efficient exploration and development of continental shale oil in Songliao Basin and the same type.

       

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