Differences in micromechanical properties of shales from different depositional environment: A case study of Longmaxi marine shale and Yanchang continental shale using nanoindentation

IF 4.9 2区 工程技术 Q2 ENERGY & FUELS Journal of Natural Gas Science and Engineering Pub Date : 2022-11-01 DOI:10.1016/j.jngse.2022.104727
Yiyu Lu , Qi Cheng , Jiren Tang , Wenchuan Liu , Honglian Li , Jie Liu , Zijie Xu , RongRong Tian , Xiao Sun
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引用次数: 3

Abstract

An understanding of the mechanical properties of reservoir shale is of great significance for the efficient development of shale gas. Both marine and continental shale gas reservoirs in China have considerable development potential, but their different depositional environments may lead to substantial differences in their mechanical properties, which can result in production efficiency differences. In this study, nanoindentation, X-ray diffraction, backscattered electron imaging, and energy-dispersive X-ray spectroscopy were used to determine and analyze the mechanical properties and microtexture of marine and continental shale samples. The geogenesis of the microtexture of marine and continental shales and its influence on the mechanical properties were discussed. The results show that the elastic modulus of marine and continental shale samples are similar, but the hardness of latter is greater. The similar elastic modulus of the two shale samples may result from similar mineralogy. Due to differences in deposition and diagenesis, the marine shale sample forms a clay support matrix and the continental shale sample forms a rigid clastic support matrix, which results in lower hardness in the former and higher hardness in the latter. The low hardness of the shale with a clay support matrix indicates that it may be subject to more severe proppant embedment issue. The experimental results provide a useful reference for the development of these two types of shale gas reservoirs.

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不同沉积环境下页岩微观力学性质的差异——以龙马溪海相页岩和延长陆相页岩纳米压痕为例
了解储层页岩的力学性质对页岩气的高效开发具有重要意义。中国海相和陆相页岩气储层均具有相当的开发潜力,但不同的沉积环境导致其力学性质存在较大差异,从而导致生产效率的差异。本研究采用纳米压痕、x射线衍射、背散射电子成像和能量色散x射线能谱等方法对海相和陆相页岩样品的力学性质和微观结构进行了测定和分析。讨论了海相和陆相页岩微观结构的成因及其对其力学性质的影响。结果表明:海相页岩样品的弹性模量与陆相页岩样品相似,但陆相页岩样品的硬度较大;两种页岩样品的弹性模量相似可能是由相似的矿物学造成的。由于沉积和成岩作用的差异,海相页岩样品形成粘土支撑基质,陆相页岩样品形成刚性碎屑支撑基质,导致前者硬度较低,后者硬度较高。具有粘土支撑基质的页岩硬度较低,这表明它可能受到更严重的支撑剂嵌入问题的影响。实验结果为这两类页岩气藏的开发提供了有益的参考。
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来源期刊
Journal of Natural Gas Science and Engineering
Journal of Natural Gas Science and Engineering ENERGY & FUELS-ENGINEERING, CHEMICAL
CiteScore
8.90
自引率
0.00%
发文量
388
审稿时长
3.6 months
期刊介绍: The objective of the Journal of Natural Gas Science & Engineering is to bridge the gap between the engineering and the science of natural gas by publishing explicitly written articles intelligible to scientists and engineers working in any field of natural gas science and engineering from the reservoir to the market. An attempt is made in all issues to balance the subject matter and to appeal to a broad readership. The Journal of Natural Gas Science & Engineering covers the fields of natural gas exploration, production, processing and transmission in its broadest possible sense. Topics include: origin and accumulation of natural gas; natural gas geochemistry; gas-reservoir engineering; well logging, testing and evaluation; mathematical modelling; enhanced gas recovery; thermodynamics and phase behaviour, gas-reservoir modelling and simulation; natural gas production engineering; primary and enhanced production from unconventional gas resources, subsurface issues related to coalbed methane, tight gas, shale gas, and hydrate production, formation evaluation; exploration methods, multiphase flow and flow assurance issues, novel processing (e.g., subsea) techniques, raw gas transmission methods, gas processing/LNG technologies, sales gas transmission and storage. The Journal of Natural Gas Science & Engineering will also focus on economical, environmental, management and safety issues related to natural gas production, processing and transportation.
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