页岩油气勘探开发

基于烃源岩地化参数评价页岩油运聚规律

  • 代波 ,
  • 李二党 ,
  • 王小军 ,
  • 曹丽 ,
  • 马雄 ,
  • 臧起彪
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  • 1.中国石油长庆油田分公司第一采油厂,陕西 延安 716000
    2.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
    3.中国石油大学(北京)地球科学学院,北京102249
代波(1987—),男,本科,工程师,主要从事油田地质与开发方面的工作。地址:陕西省延安市宝塔区河庄坪镇长庆油田分公司第一采油厂,邮政编码:716000。E-mail: cqytdb@126.com

收稿日期: 2020-09-18

  网络出版日期: 2021-08-19

基金资助

国家自然科学基金项目“咸化湖盆条件下盐类对地层超压的作用机制研究”(41872127)

Evaluation of shale oil migration and accumulation rules based on geochemical parameters of source rocks

  • Bo DAI ,
  • Erdang LI ,
  • Xiaojun WANG ,
  • Li CAO ,
  • Xiong MA ,
  • Qibiao ZANG
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  • 1. No. 1 Oil Production Plant, PetroChina Changqing Oilfield Company, Yan’an, Shaanxi 716000, China
    2. State Key Laboratory of Petroleum Resources and Prospecting, China University of Petroleum, Beijing 102249, China
    3. College of Geosciences, China University of Petroleum, Beijing 102249, China

Received date: 2020-09-18

  Online published: 2021-08-19

摘要

选取鄂尔多斯盆地安塞地区长7段地层烃源岩为研究对象,利用总有机碳含量测试、岩石热解和色谱质谱等技术,深入探讨页岩油在运移和聚集过程中的差异化特征。结果显示:研究区不同烃源岩生烃潜力差异较大,其中,页岩的生烃能力最强,泥质砂岩的生烃潜力最弱。泥质砂岩中游离烃含量较高是由于其接受了外来的游离烃。不同岩性中页岩油的地球化学参数分布具有差异性,其中泥质砂岩富含饱和烃组分,非烃/沥青质组分较少,而页岩和泥岩则富含非烃/沥青质组分,饱和烃组分较少。原油性质和源储厚度及物性对页岩油的排运聚对页岩油运聚具有较强的影响。小分子烃类组分和薄层烃源岩内的页岩油较易运移,大分子烃类组分和厚层烃源岩内的页岩油倾向于残留在源岩内部。

本文引用格式

代波 , 李二党 , 王小军 , 曹丽 , 马雄 , 臧起彪 . 基于烃源岩地化参数评价页岩油运聚规律[J]. 油气藏评价与开发, 2021 , 11(4) : 506 -513 . DOI: 10.13809/j.cnki.cn32-1825/te.2021.04.005

Abstract

Taking the source rock of Chang 7 Member in Ansai area of Ordos Basin as the research object, the differentiation characteristics of shale oil in the process of migration and accumulation are discussed in depth through a series of testing methods, such as TOC test, rock pyrolysis and chromatography-mass spectrometry. The results show that the hydrocarbon generation potential of different source rocks in the study area is quite different. The shale has the strongest hydrocarbon generation capacity, while that of the interaction layer of sandstone and mudstone is the weakest. The high content of free hydrocarbon in interaction layer of sandstone and mudstone results from the receipt of external free hydrocarbon. The distribution of geochemical parameters of shale oil in different lithology is different. Among them, the sand mud interaction layer is rich in saturated hydrocarbon but relatively poor in nonhydrocarbon and asphaltene, while the shale and the mudstone are rich in nonhydrocarbon and asphaltene but relatively poor in saturated hydrocarbon. The properties of crude oil, thickness of source reservoir and physical properties have effects on shale oil migration and accumulation. Shale oil in thin-layer source rocks and small molecular hydrocarbon components are easy to migrate. Shale oil in thick-layer source rocks and macromolecular hydrocarbon components tend to remain in the source rocks.

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