碳酸盐岩水力裂缝酸蚀与传导性的实验和模型研究:重要综述

0 ENERGY & FUELS
Bo Gou , Zihao Liu , Jianping Zhou , Ke Xu , Bin Xiao , Kun Pu , Jianchun Guo
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引用次数: 0

摘要

酸性压裂是开采深层碳酸盐岩油气和地热资源的关键技术,也是碳捕集、利用和封存的重要注入技术。酸性压裂的本质在于酸性物质非均匀地蚀刻水力裂缝以产生传导性的过程。实验室实验和数值模拟是复制酸性压裂现场环境、了解酸岩反应机理、创新现场技术的两种重要手段。然而,由于超深碳酸盐岩层地质环境复杂,现场酸压裂技术多样,现有的实验方法和数值模拟方法难以全面描述新兴的酸压裂技术。因此,有必要系统回顾酸蚀和酸蚀裂缝电导率的研究进展,同时找出实验方法、数值模拟和现场技术之间的差距,这对推动酸压裂相关理论研究和技术发展具有重要意义。本研究对实验设备、酸蚀分析模型以及用于评估蚀刻特性和导电性的测试方法进行了详细评述。此外,还介绍了现有实验技术和数值模拟的局限性。结合 10,000 米以上深层和超深层碳酸盐岩储层的工程地质特征,所提出的酸压裂实验和模型研究不仅为今后研究酸蚀裂缝传导性提供了宝贵的见解,也为酸压裂工程技术的进步提供了重要支持。此外,这些发现还可应用于所有关于反应流体在狭窄通道内的流动和反应过程的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental and modeling study on the acid-etching and conductivity of hydraulic fractures in carbonate rocks: A critical review
Acid fracturing is a pivotal technique for the exploitation of deep carbonate oil and gas, geothermal resources, and also an important injection technology for carbon capture, utilization and storage. The essence of acid fracturing lies in the process where acid non-uniformly etches hydraulic fracture to generate conductivity. Laboratory experiments and numerical simulations are two crucial means to replicate in-situ environment of acid fracturing, understand acid-rock reaction mechanism, and innovate on-site technologies. However, due to complex geological environment of ultra-deep carbonate formations and diverse on-site acid fracturing technologies, existing experimental methods and numerical simulation methods have struggled to fully characterize the emerging acid fracturing technology. Therefore, it is imperative to systematically review research progress on acid-etching and conductivity of acid-etched fractures while identifying gaps between experimental methods, numerical simulations, and on-site technologies, which holds immense significance in advancing theoretical research and technical development related to acid fracturing. Detailed reviews are provided on experimental equipment, models employed for acid etching analysis, as well as testing methods utilized for assessing both etching characteristics and conductivity. The current limitations of existing experimental techniques and numerical simulations are also presented. The proposed acid fracturing experiment and model researches, in conjunction with the engineering geological characteristics of deep and ultra-deep carbonate reservoirs over 10,000 m, not only offer valuable insights for future investigations into acid-etched fracture conductivity but also provide essential support for the advancement of acid fracturing engineering technology. Moreover, these findings can be applied to all the study on flow and reaction processes of reactive fluids within narrow channels.
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