中国石油勘探 ›› 2025, Vol. 30 ›› Issue (5): 86-99.DOI: 10.3969/j.issn.1672-7703.2025.05.007
• 石油地质 • 上一篇
刘畅1,2,朱如凯1,2,李斌会2,3,张金友2,3,张婧雅1,2,白斌1,2
发布日期:
2025-09-14
作者简介:
刘畅(1989-),男,河北沧州人,博士,2018年毕业于中国石油勘探开发研究院,高级工程师,现从事页岩油储层表征和油气成藏研究工作。地址:北京市海淀区中国石油勘探开发研究院,邮政编码:100083。
基金资助:
Liu Chang1,2,Zhu Rukai1,2,i Binhui2,3,Zhang Jinyou2,3,Zhang Jingya1,2,Bai Bin1,2
Published:
2025-09-14
摘要: 松辽盆地北部古龙凹陷青山口组页岩油(古龙页岩油)存在明显微观运移特征,呈现差异聚集现象,影响着滞留可动烃的分布与富集。本文通过对深湖区关键钻井密闭保压岩心序列洗油产物地球化学特征与孔隙结构联测等系统测试,明确古龙页岩赋存烃类微观分布特征,揭示运聚机理。研究认为深湖区古龙页岩粒度小于63μm,分为层状黏土(质)页岩、纹层状混合质页岩、纹层状长英质页岩、层状钙质页岩4类岩相。按照页岩滞留烃量排序,高TOC(TOC>2%)层状黏土(质)页岩总烃含量高(2.8~13.7mg/g),可动烃(2.8~12.5mg/g)主要赋存于小于32nm的黏土矿物晶间孔;中—高TOC(TOC>1%)纹层状混合质、长英质页岩总烃含量为3.8~7.3mg/g,可动烃(2.7~6.4mg/g)主要赋存于混合质纹层中直径小于8nm 和大于64nm的孔隙;中低TOC(TOC<1%)纹层状长英质页岩,仅含少量可动烃(3.1~4.6mg/g),主要赋存于孔隙直径大于64nm的孔隙,少量赋存小于8nm孔隙。有机质纹层分布和后期成岩作用是形成此差异分布与聚集的关键因素,黏土质纹层有机质富集,生成烃类优先原地滞留有机质孔和黏土晶间孔,部分可动烃运移至源内长英质纹层或碳酸盐矿物纹层,在溶蚀作用较强孔隙发育部位,可动烃运移量大,在黏土和碳酸盐矿物胶结较强孔隙不发育部位,可动烃运移量小。基于古龙页岩油可动烃分布和聚集机理,可以进一步明确高TOC层状黏土(质)页岩含油性好,为资源甜点,但赋存孔径较小;低TOC纹层状长英质页岩可动油含量低;中—高TOC纹层状混合质页岩可动油含量高、赋存孔径较大和可压性较好,可成为资源工程双甜点。
中图分类号:
刘畅,朱如凯,李斌会,张金友,张婧雅,白斌. 松辽盆地青山口组深湖区古龙页岩油微观差异分布特征与聚集机理[J]. 中国石油勘探, 2025, 30(5): 86-99.
Liu Chang,Zhu Rukai,Li Binhui,Zhang Jinyou,Zhang Jingya,Bai Bin. Microscopic differential distribution characteristics and accumulation mechanism of Gulong shale oil in Qingshankou Formation in the deep lake area, Songliao Basin[J]. China Petroleum Exploration, 2025, 30(5): 86-99.
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