油藏工程

注CO2提高页岩吸附甲烷采收率核磁共振实验

  • 张添锦 ,
  • 王延峰 ,
  • 李军 ,
  • 袁青
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  • 1.延安大学,陕西 延安 716000;
    2.延长油田股份有限公司,陕西 榆林 718600
张添锦(1982—),女,副教授,2006年毕业于西安科技大学矿产普查与勘探专业,2009年毕业于该校矿产普查与勘探专业,获硕士学位,现主要从事油气田开发提高采收率方面的研究工作。

收稿日期: 2022-06-03

  修回日期: 2023-06-15

  网络出版日期: 2023-12-25

基金资助

陕西省延安市科技局科技稳增长“提高石油采收率关键技术研究及示范推广”(2017WZZ-01-02)

Nuclear Magnetic Resonance Experiment for Enhanced Recovery of Adsorbed Methane from Shale through Carbon Dioxide Injection

  • Zhang Tianjin ,
  • Wang Yanfeng ,
  • Li Jun ,
  • Yuan Qing
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  • 1. Yan'an University, Yan'an, Shaanxi 716000, China;
    2. Yanchang Oilfield Co., Ltd, Yulin, Shaanxi 718600, China

Received date: 2022-06-03

  Revised date: 2023-06-15

  Online published: 2023-12-25

摘要

明确CO2作用下页岩对CH4的吸附解吸规律,对提高页岩气采收率具有重要意义。在明确目标页岩孔隙结构的基础上,引入核磁共振测试技术,分别开展了注CH4和注CO2吸附解吸实验,定量表征了CH4的绝对吸附量,并研究了CO2对页岩中CH4吸附解吸的影响规律。结果表明:页岩中的CH4以页岩表面的吸附态、孔隙中的游离态和颗粒之间的自由态赋存;核磁共振法计算的CH4绝对吸附量大于热重法测定的过剩吸附量;CO2能够解吸摩尔分数为21.8%~33.2%的吸附态CH4;吸附态CH4解吸后会滞留在孔隙中成为游离态,但无法从孔隙中逸出成为自由态;注CO2提高吸附气采收率的同时还应辅以二次水力压裂或CO2干法压裂技术,以提高游离态CH4向自由态的转化效率。研究成果可为提高页岩吸附CH4采收率提供参考和借鉴。

本文引用格式

张添锦 , 王延峰 , 李军 , 袁青 . 注CO2提高页岩吸附甲烷采收率核磁共振实验[J]. 特种油气藏, 2023 , 30(5) : 113 -120 . DOI: 10.3969/j.issn.1006-6535.2023.05.015

Abstract

It is very important to clarify the adsorption-desorption law of shale-adsorbed CH4 under the action of CO2 to improve the recovery of shale gas. On the basis of clarifying the pore structure of the target shale, the nuclear magnetic resonance (NMR) testing technique was introduced, the CH4 injection and CO2 injection adsorption-desorption experiments were carried out separately to quantitatively characterize the absolute adsorption amount of CH4, and the influence law of CO2 on the adsorption-desorption of CH4 in shale was investigated. The results show that CH4 in shale occurs in three states: adsorbed state on the shale surface, unbound state in pores and free state between particles; the absolute adsorption amount of CH4 calculated by NMR is greater than the excess adsorption amount determined by thermogravimetry; CO2 can desorb the adsorbed CH4 with molar fraction of 21.8%~33.2%; the adsorbed CH4 will remain in the pores as unbound state after desorption, but cannot escape from the pore space as free state; while CO2 is injected to improve the recovery of adsorbed gas, the secondary hydraulic fracturing or CO2 dry fracturing technology shall be adopted to improve the conversion efficiency of unbound state CH4 to free state. The research results can provide reference for improving the recovery of shale-adsorbed CH4.

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