石油与天然气地质 ›› 2022, Vol. 43 ›› Issue (1): 69-78.doi: 10.11743/ogg20220106

• 油气地质 • 上一篇    下一篇

塔里木盆地肖尔布拉克剖面走滑断裂带内部结构及控储模式

马庆佑1,2,3(), 曾联波1,2(), 徐旭辉4, 曹自成3, 蒋华山3, 王海学5   

  1. 1.中国石油大学(北京) 油气资源与探测国家重点实验室,北京 102249
    2.中国石油大学(北京) 地球科学学院,北京 102249
    3.中国石化 西北油田分公司,新疆 乌鲁木齐 830011
    4.中国石化 石油物探技术研究院,江苏 南京 211100
    5.东北石油大学 地球科学学院,黑龙江 大庆 163318
  • 收稿日期:2020-12-24 修回日期:2021-12-10 出版日期:2022-02-01 发布日期:2022-01-28
  • 通讯作者: 曾联波 E-mail:37337428@qq.com;lbzeng@cup.edu.cn
  • 第一作者简介:马庆佑(1981—),男,副研究员,石油构造地质研究。E?mail:37337428@qq.com
  • 基金项目:
    国家自然科学基金项目(U21B2062);国家科技重大专项(2017ZX05005-002);中国石化科技部项目(P20062-2)

Internal architecture of strike-slip fault zone and its control over reservoirs in the Xiaoerbulake section, Tarim Basin

Qingyou Ma1,2,3(), Lianbo Zeng1,2(), Xuhui Xu4, Zicheng Cao3, Huashan Jiang3, Haixue Wang5   

  1. 1.State Key Laboratory of Petroleum Resources and Prospecting,China University of Petrolem (Beijing),Beijing 102249,China
    2.College of Geosciences,China University of Petrolem (Beijing),Beijing 102249,China
    3.Northwest Oilfield Company,SINOPEC,Urumqi,Xinjiang 830011,China
    4.Geophysical Research Institute,SINOPEC,Nanjing,Jiangsu 211100,China
    5.School of Geosciences,Northeast Petroleum University,Daqing,Heilongjiang 163318,China
  • Received:2020-12-24 Revised:2021-12-10 Online:2022-02-01 Published:2022-01-28
  • Contact: Lianbo Zeng E-mail:37337428@qq.com;lbzeng@cup.edu.cn

摘要:

选取塔里木盆地西北缘肖尔布拉克剖面出露的走滑断裂带为研究对象,通过详细观察描述、取样鉴定、地化分析等研究,刻画出肖尔布拉克剖面走滑断裂带的内部结构,建立了该断裂带的控储模式,为塔里木盆地断溶体目标研究提供了地质模型。结果表明:肖尔布拉克剖面走滑断裂带近垂直切穿中寒武统沙依里克组与阿瓦塔格组,根据两盘地层对接关系判断其为右行走滑。断裂带内部发育由断层核与破碎带组成的“二元结构”,其中断层核主要由断层角砾岩带与方解石充填脉组成,角砾岩性与围岩一致,呈棱角-次棱角状,反映近源破碎、垮塌堆积形成。断层角砾岩被方解石胶结充填,方解石晶粒尺寸大小不等,越靠近角砾壁的方解石晶粒越细小,反映多期流体活动与改造形成。断层核内的方解石胶结物δ13C值在-8 ‰~-2 ‰,87Sr/86Sr值普遍高于同沉积海水,稀土元素具有Ce明显负异常等特征,反映受到后期大气淡水改造。断层破碎带内裂缝较发育,大部分裂缝半开启或全开启,局部沿裂缝溶蚀形成扩大孔洞,少部分裂缝被方解石胶结充填。基于上述研究,初步建立了该断裂带内部结构的成因演化及控储模式:走滑断裂带初始剪切活动,引起中寒武统碳酸盐岩地层脆性剪切破裂,长期摩擦滑动后形成了无内聚力的角砾岩带及裂缝带,为高孔渗性储集层;大气淡水携带矿物质垂向运移至断裂带深部,在温度、压力改变后发生水-岩相互作用,形成大量方解石脉胶结充填,降低了断裂带早期的孔渗性能,最终形成多期改造后的溶洞-胶结型断裂带结构。

关键词: 断层核, 破碎带, 内部结构, 控储模式, 走滑断裂, 肖尔布拉克剖面, 塔里木盆地

Abstract:

The fault zone outcropping the Xiaoerbulake section in the northwest margin of Tarim Basin is selected to conduct detailed field investigation and description, sampling identification, geochemical analyses and other studies with the aim of establishing an architecture-reservoir model for a better geological description of fractured-vuggy reservoir bodies in the basin. The results show that the fault zone comprises right-lateral strike-slip faults (according to the juxtaposition relationship between the fault walls) and vertically cuts through the Middle Cambrian Shayilike and Awatage Formations. A dual structure of fault core and damage zone can be observed within the zone. The fault core is mainly composed of fault breccia with calcite veins. The angular and sub-angular shaped breccia is consistent with surrounding rocks in terms of lithology, indicating a possible damage-collapse-accumulation genesis of near-source material. The calcite particles in veins vary in size but tend to be finer toward the wall of breccia, indicating a multi-stage activities and reformation of fluids. With δ13C values ranging from -8‰ to -2‰, 87Sr/86Sr values generally higher than those of synsedimentary seawater, and significant negative Ce anomalies in REE (rare earth elements) analyses, the calcite veins truthfully record the visit of a later atmospheric fresh water. Fractures are well developed in the damage zone, most fractures are half or fully open with enlarged caverns from dissolution occurring locally along the fractures, and some fractures are filled by calcite cement. Based on the above research, a model is set up to describe the genetic evolution of the internal architecture and its control over the reservoirs in the fault zone. It suggests that the initial shear activity of strike-slip fault zone led to a brittle shear fracturing of the Middle Cambrian carbonate stratum, which then experienced long-term friction and slide to form noncohesive breccia and fracture zone with highly porous and permeable reservoirs. However, this strike-slip fault zone with high-quality reservoirs was later degraded into a vug-cemented fault zone as a result of multi-stage activities of calcite cementation jointly triggered by materials brought by atmospheric fresh water migrated vertically from surface to the deep along the zone and changes in temperature and pressure.

Key words: fault core, damage zone, internal architecture, reservoir-controlling pattern, strike-slip fault, Xiaoerbulake section, Tarim Basin

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