2021 Vol. 40, No. 7
Article Contents

CHENG Yiyan, CHEN Zhenlong, LI Song, CHEN Shida, GUO Tao. Characteristics of coalbed methane accumulation in Bide-Santang syncline, western Guizhou and favorable sector[J]. Geological Bulletin of China, 2021, 40(7): 1140-1148.
Citation: CHENG Yiyan, CHEN Zhenlong, LI Song, CHEN Shida, GUO Tao. Characteristics of coalbed methane accumulation in Bide-Santang syncline, western Guizhou and favorable sector[J]. Geological Bulletin of China, 2021, 40(7): 1140-1148.

Characteristics of coalbed methane accumulation in Bide-Santang syncline, western Guizhou and favorable sector

  • The coalbed methane(CBM) resource in the Bide-Santang synclineis hosted in three coal groups of the Longtan Formation, of which the coal seam No. 6 and 7 in group Ⅰ, the coal seam No. 16 and 17 in group Ⅱ, and the coal seam No. 20, 23, 27 and 30 in group Ⅲ are stably distributed. The seam depth is obviously controlled by syncline structure, reaching 1500m near the axis of Bide sub syncline. The coal seams are mainly high metamorphic lean coal, lean coal and anthracite, and the maximum vitrinite reflectance increases gradually from west to east and north to south. The methane adsorption capacity of coal is generally high(Langmuir volume, 18.32~39.32 m3/t), and is significantly affected by the coal metamorphism degree. Under the in-situ condition, the seams belong to typically low permeability reservoir, but with high gas content(average of 10~15.78 m3/t) and high gas saturation(generally >50%). Combined with the effect of multi-layer co-production in this area, it is found that the gas production effect of the gas wells with the inclined depth of more than 800m in Bide is poor, and the geological conditions of coal gas development in Zhizang and Santangxi syncline are relatively good. Among them, four sets of main coal seams(seam spacing < 60 m) of Ⅲ coal group in Zhizang syncline are potential high-yield and high-quality reservoirs.

  • 加载中
  • [1] 桂宝林. 煤层气勘探目标评价方法——以滇东黔西地区为例[J]. 天然气工业, 2004, (5): 6-7, 52-54.

    Google Scholar

    [2] 康高峰, 王辉, 王巨民, 等. 滇东北晚二叠世沉积体系与层序地层格架下的聚煤特征[J]. 地质通报, 2009, 28(1): 91-98. doi: 10.3969/j.issn.1671-2552.2009.01.012

    CrossRef Google Scholar

    [3] 徐宏杰, 桑树勋, 杨景芬, 等. 贵州省煤层气勘探开发现状与展望[J]. 煤炭科学技术, 2016, 44(2): 1-7.

    Google Scholar

    [4] 徐宏杰. 贵州省薄-中厚煤层群煤层气开发地质理论与技术[D]. 中国矿业大学博士学位论文, 2012.

    Google Scholar

    [5] 刘贻军, 曾祥洲, 胡刚, 等. 贵州煤层气储层特征及勘探开发技术对策——以比德-三塘盆地为例[J]. 煤田地质与勘探, 2017, 45(1): 71-74. doi: 10.3969/j.issn.1001-1986.2017.01.014

    CrossRef Google Scholar

    [6] 熊斌, 刘晓, 马军, 等. 织金区块煤层气勘探潜力分析[J]. 油气藏评价与开发, 2012, (6): 72-76.

    Google Scholar

    [7] 孟美辰, 王运海, 袁航, 等. 织金区块煤层气井产气量影响因素分析[J]. 煤炭科学技术, 2019, 47(4): 187-192.

    Google Scholar

    [8] 窦新钊, 姜波, 秦勇, 等. 黔西地区构造演化及其对晚二叠世煤层的控制[J]. 煤炭科学技术, 2012, 40(3): 109-114.

    Google Scholar

    [9] 窦新钊, 姜波, 张文永, 等. 黔西地区构造变形特征及其煤层气地质意义[J]. 中国煤炭地质, 2014, 26(8): 54-59. doi: 10.3969/j.issn.1674-1803.2014.08.12

    CrossRef Google Scholar

    [10] 沈玉林, 秦勇, 郭英海, 等. 黔西上二叠统含煤层气系统特征及其沉积控制[J]. 高校地质学报, 2012, 18(3): 427-432.

    Google Scholar

    [11] 沈玉林, 秦勇, 郭英海, 等. 多层叠置独立含煤层气系统形成的沉积控制因素[J]. 地球科学, 2012, 37(3): 573-579.

    Google Scholar

    [12] Shen Y, Qin Y, Guo Y, et al. Characteristics and sedimentary control of a coalbed methane-bearing system in Lopingian(late Permian) coal-bearing strata of western Guizhou province[J]. Journal of Natural Gas Science & Engineering, 2016, 33: 8-17.

    Google Scholar

    [13] 杨兆彪. 多煤层叠置条件下的煤层气成藏作用[D]. 中国矿业大学博士学位论文, 2011.

    Google Scholar

    [14] 秦勇, 熊孟辉, 易同生, 等. 论多层叠置独立含煤层气系统——以贵州织金-纳雍煤田水公河向斜为例[J]. 地质论评, 2008, (1): 65-70.

    Google Scholar

    [15] 窦新钊. 黔西地区构造演化及其对煤层气成藏的控制[D]. 中国矿业大学博士学位论文, 2012.

    Google Scholar

    [16] 孟艳军, 汤达祯, 许浩, 等. 煤层气解吸阶段划分方法及其意义[J]. 石油勘探与开发, 2014, 41(5): 612-617.

    Google Scholar

    [17] 张政, 秦勇, Wand G X, 等. 基于等温吸附实验的煤层气解吸阶段数值描述[J]. 中国科学: 地球科学, 2013, 43(8): 152-158.

    Google Scholar

    [18] 侯泉林, 雒毅, 韩雨贞, 李小诗. 煤的变形产气机理探讨[J]. 地质通报, 2014, 33(5): 715-722.

    Google Scholar

    [19] Chen S, Tao S, Tang D, et al. Pore structure characterization of different rank coals using N2 and CO2 adsorption and its effect on CH4 adsorption capacity: a case in Panguan syncline, western Guizhou, China[J]. Energy & Fuels, 2017, 31: 6034-6044.

    Google Scholar

    [20] Langmuir I. The adsorption of gases on plane surfaces of glass, mica and platinum[J]. J. Am. Chem. Soc, 1918, 143: 1361-1403.

    Google Scholar

    [21] 郭涛, 高小康, 孟贵希, 肖翠. 织金区块煤层气合采生产特征及开发策略[J]. 煤田地质与勘探, 2019, 47(6): 14-19.

    Google Scholar

    [22] 许科, 崔彬. 等温吸附曲线在煤层气排采中的应用——以织金区块为例[J]. 油气藏评价与开发, 2015, 5(6): 73-75, 80.

    Google Scholar

    [23] 杨兆彪, 张争光, 秦勇, 等. 多煤层条件下煤层气开发产层组合优化方法[J]. 石油勘探与开发, 2018, 45(2): 297-304.

    Google Scholar

  • 加载中
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Figures(9)

Tables(5)

Article Metrics

Article views(863) PDF downloads(8) Cited by(0)

Access History

Other Articles By Authors

Catalog

    /

    DownLoad:  Full-Size Img  PowerPoint