石油与天然气地质 ›› 2024, Vol. 45 ›› Issue (5): 1211-1225.doi: 10.11743/ogg20240502
邓尚1,2(), 邱华标1(), 刘大卫1, 韩俊2, 汝智星1, 彭威龙1, 卞青1, 黄诚2
收稿日期:
2024-03-23
修回日期:
2024-06-20
出版日期:
2024-10-30
发布日期:
2024-11-06
通讯作者:
邱华标
E-mail:dengshang.syky@sinopec.com;qiuhuabiao.syky@sinopec.com
第一作者简介:
邓尚(1987—),男,博士、研究员,石油与天然气地质。E‑mail: dengshang.syky@sinopec.com。
基金项目:
Shang DENG1,2(), Huabiao QIU1(), Dawei LIU1, Jun HAN2, Zhixing RU1, Weilong PENG1, Qing BIAN1, Cheng HUANG2
Received:
2024-03-23
Revised:
2024-06-20
Online:
2024-10-30
Published:
2024-11-06
Contact:
Huabiao QIU
E-mail:dengshang.syky@sinopec.com;qiuhuabiao.syky@sinopec.com
摘要:
近年来,在中国多个克拉通盆地腹部识别出成体系发育的走滑断裂系统,这是克拉通盆地内部一种重要的构造样式。针对塔里木盆地北部走滑断裂体系,应用断裂构造解析、断裂发育演化离散元数值模拟、断裂形变有限元数值模拟及断裂核-带结构解剖等技术方法,结合油气井生产动态资料,分析了走滑断裂体系成因与控藏机制,并总结了研究取得的新进展与新认识。研究表明:①塔里木盆地北部走滑断裂体系是盆地中部大型逆冲带向北推挤时形成的伴生调节构造,具有“非共轴挤压、调节区域变形”动力学成因机制;②随着走滑断裂滑移距增大,核部角砾岩类型由裂隙角砾岩、破碎角砾岩演变为杂乱角砾岩和碎裂岩,高阶演化程度的角砾岩可降低断层核部渗透性;③强压扭背景下形成的走滑压脊构造具有“上张下压”纵向应力分布特征,断控储集体主要沿断裂带在深部发育;④走滑断裂相关盐构造耦合-解耦变形特征对油气垂向输导具有重要控制作用;⑤分层变形是小滑移距走滑断裂在深埋条件下的变形特征,可控制油气沿走滑断裂垂向输导后在多个层系分层聚集。
中图分类号:
图5
塔里木盆地顺北地区走滑断裂带内部多类角砾岩发育特征a. 断裂角砾岩分类三角图,据文献[48]修改; b. 裂隙角砾岩,岩心照片,角砾(85 %)、碎屑(5 %)、胶结物(10 %), SHB82X井, 埋深8 048.50~8 048.70 m; c. 裂隙角砾岩,岩心照片,角砾(75 %)、碎屑(5 %)、胶结物(20 %),SHB44X井, 埋深8 180.00~8 180.24 m; d. 碎裂角砾岩,岩心照片,角砾(65 %)、碎屑(10 %)、胶结物(25 %), SHB82X, 埋深8 052.00~8 052.21 m; e. 杂乱角砾岩,岩心照片,断裂角砾成杂乱分布,角砾(45 %)、碎屑(20 %)、胶结物(35 %),SHB83X井,埋深8 324.10~8 324.30 m; f. 初等碎裂岩,岩心照片,角砾(20 %)、碎屑(60 %)、胶结物(20 %),SHB84X, 埋深9 088.20~9 088.45 m; g. 中等碎裂岩,岩心照片,角砾(15 %)、碎屑(45 %)、胶结物(40 %),SHB804X,埋深8 554.85~8 555.00 m(图注中括号内数字为含量占比。)"
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