不同温度循环下花岗岩渗透性的实验研究

Li Yu, Haonan Li, Yue Wu, Weihao Wang, Xinyuan Zhang, Yongchuan Zhao
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摘要

本文通过花岗岩在不同温度循环下的渗透性试验,研究了岩石样品在不同温度循环后孔隙率和渗透率的变化规律,并通过回归分析建立了P波速度与孔隙率和渗透率之间的关系。结果表明,花岗岩样品的孔隙度和渗透率在一至三次高温循环中明显下降,呈对数变化,随着循环次数的增加,在五至十次热循环后下降速度逐渐减小,有利于深部地热资源的长期开发。在不同温度的热循环下,花岗岩的 P 波速度与渗透率和孔隙度呈对数相关。随着循环次数的增加,渗透率、孔隙率和 P 波速度之间的关系从 1 至 3 次循环之间的对数关系变为 5 至 10 次循环之间的线性关系。在不同温度下进行热循环处理后,P 波速度与孔隙度和渗透率之间存在很好的对数关系,并且具有很高的相关性。花岗岩的孔隙度和渗透率可以通过测量波速进行无损估算。使用扫描电子显微镜(SEM)在 450℃下观察花岗岩,孔隙结构之间出现微小颗粒,岩石样品的内部结构在热循环作用下遭到破坏。揭示了深部地热能开采中物理性质劣化的变化机理,对深部地热能开采具有指导意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Research on the Permeability of Granite Under Different Temperature Cycles
In this paper, through the permeability test of granite under different temperature cycles, the change law of porosity and permeability of rock samples after different temperature cycles was studied, and the relationship between the P-wave velocity and porosity and permeability was established by regression analysis. The results show that the porosity and permeability of the granite samples decreased significantly in one to three high-temperature cycles, showing a logarithmic change, and with the increase of the number of cycles, the decreasing rate gradually decreased after five to 10 thermal cycles, which is beneficial to the long-term development of deep geothermal resources. Under thermal cycles at different temperatures, the P-wave velocity of granite has a logarithmic correlation with permeability and porosity. As the number of cycles increases, the relationship between permeability, porosity, and P-wave velocity changes from a logarithmic relationship between one to three cycles to a linear relationship between five to 10 cycles. After thermal cycle treatment at different temperatures, there is an excellent logarithmic relationship between the P-wave velocity and porosity and permeability, and it has a high correlation. The porosity and permeability of granite can be estimated nondestructively by measuring the wave velocity. Using a scanning electron microscope (SEM) to observe the granite at 450℃, trivial particles appeared between the pore structure, and the internal structure of the rock sample was destroyed under the action of the thermal cycle. The change mechanism of physical property deterioration in deep geothermal energy mining is revealed, guiding deep geothermal energy mining.
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