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    琼东南盆地天然气水合物与浅层气共生体系成藏特征

    陈子归 姜涛 匡增桂 程聪 熊鹏飞 陈岳

    陈子归, 姜涛, 匡增桂, 程聪, 熊鹏飞, 陈岳, 2022. 琼东南盆地天然气水合物与浅层气共生体系成藏特征. 地球科学, 47(5): 1619-1634. doi: 10.3799/dqkx.2022.094
    引用本文: 陈子归, 姜涛, 匡增桂, 程聪, 熊鹏飞, 陈岳, 2022. 琼东南盆地天然气水合物与浅层气共生体系成藏特征. 地球科学, 47(5): 1619-1634. doi: 10.3799/dqkx.2022.094
    Chen Zigui, Jiang Tao, Kuang Zenggui, Cheng Cong, Xiong Pengfei, Chen Yue, 2022. Accumulation Characteristics of Gas Hydrate-Shallow Gas Symbiotic System in Qiongdongnan Basin. Earth Science, 47(5): 1619-1634. doi: 10.3799/dqkx.2022.094
    Citation: Chen Zigui, Jiang Tao, Kuang Zenggui, Cheng Cong, Xiong Pengfei, Chen Yue, 2022. Accumulation Characteristics of Gas Hydrate-Shallow Gas Symbiotic System in Qiongdongnan Basin. Earth Science, 47(5): 1619-1634. doi: 10.3799/dqkx.2022.094

    琼东南盆地天然气水合物与浅层气共生体系成藏特征

    doi: 10.3799/dqkx.2022.094
    基金项目: 

    南方海洋科学与工程广东省实验室(广州)人才团队引进重大专项 GML2019ZD0102

    广东省基础与应用基础研究重大项目 2020B0301030003

    国家自然科学基金项目 41976073

    中国地质调查项目 DD20190230

    详细信息
      作者简介:

      陈子归(1997-),男,博士研究生,主要从事海洋沉积学及天然气水合物等方面研究. ORCID:0000-0002-9881-7160. E-mail:804343215@qq.com

      通讯作者:

      姜涛, ORCID:0000-0001-8845-8582. E-mail:taojiang@cug.edu.cn

    • 中图分类号: P618.13

    Accumulation Characteristics of Gas Hydrate-Shallow Gas Symbiotic System in Qiongdongnan Basin

    • 摘要: 继我国在神狐海域两次天然气水合物试采成功之后,近几年来在琼东南盆地的勘探证实了天然气水合物的存在,而且钻探表明其与浅层气具有复杂的共生关系.为揭示琼东南盆地深水区天然气水合物与浅层气共生体系成藏特征,结合岩心、测井及三维地震数据,阐明了天然气水合物与浅层气的空间分布特征,研究结果表明,天然气水合物主要赋存在海底以下200 m范围内的沙质沉积物中,且其形成过程与浅层气的垂向运移有关.对天然气水合物与浅层气共生体系成藏特征的深入分析表明,深部热成因气和浅部生物成因气是其重要的气体来源,第四系未固结沙层是良好的储层,且天然气水合物和浅层气共生体系的分布主要受深部气烟囱和断层的控制.浅层气藏为天然气水合物提供稳定的气源条件;第四系块体流沉积与含天然气水合物地层能有效地封堵浅层气的纵向运移,进一步促进浅层气的成藏.因此,天然气水合物的形成与浅层气的发育具有正反馈的相互作用关系,有利于形成更大规模的天然气水合物矿体和浅层气藏,具有良好的商业开发潜力.

       

    • 图  1  琼东南盆地及研究区位置

      a. 琼东南盆地区域构造图(据Ren et al.,2014修改);b.研究区海底地貌图

      Fig.  1.  Location of the Qiongdongnan basin and study area

      图  2  琼东南盆地沉积充填序列柱状综合图(据Zhang et al.,2019a修改)

      Fig.  2.  Comprehensive stratigraphic column of the Qiongdongnan basin

      图  3  过A井及B井区域地震剖面(位置见图 1b)

      Fig.  3.  Characteristics of seismic profiles crossing well A and well B (see Fig. 1b for the location of Fig. 3)

      图  4  过A井及B井局部地震剖面(位置见图 1b图 3)

      Fig.  4.  Local seismic profiles crossing well A and well B (see Fig. 1b and Fig. 3 for the location of Fig. 4)

      图  5  含天然气水合物沉积物特征

      Fig.  5.  The characteristics of gas hydrate-bearing sediments

      图  6  A井及B井测井及其沉积环境分析

      Fig.  6.  The analysis of sedimentary environment derived by well logging data from Wells A and B

      图  7  浅层气储层平面展布特征

      a.T0-4~T0-3层序均方根属性图(T0-4-20ms);b.T0-4~T0-3层序沉积相分布;c.T10~T-4层序均方根属性图(T10+20ms);d.T10~T-4层序沉积相分布

      Fig.  7.  Distribution of shallow gas reservoir

      图  8  研究区天然气水合物与浅层气共生成藏模式

      Fig.  8.  Accumulation model of gas hydrate-shallow gas symbiotic system in the study area

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