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高温花岗岩在巴西劈裂试验中经水冷却后的宏观/微观破裂演化及不稳定性行为研究。

Macro/Microfracture evolution and instability behaviors of high-temperature granite under water-cooling subjected to Brazilian splitting test using the DIC technique.

机构信息

School of City and Architecture Engineering, Zaozhuang University, Zaozhuang, Shandong, China.

Beijing Municipal Engineering Research Institute, Beijing, China.

出版信息

PLoS One. 2023 Nov 29;18(11):e0294258. doi: 10.1371/journal.pone.0294258. eCollection 2023.

Abstract

To investigate the evolution and stability characteristics of granite thermal damage, a series of Brazilian splitting tests is conducted on high-temperature granite samples using digital image correlation (DIC) technology. The results show that the Brazilian tensile strength and P-wave velocity exhibit a clear decline beyond a temperature threshold of 450~600°C, with a linear relationship between them. The presence of micro-cracks alters the stress transfer path, disrupting the stress balance on the Brazilian disc and leading to complex fracture patterns. At temperatures below 450°C, high strain areas and the development of micro-cracks occur at both the upper and lower loading ends of the granite Brazilian disc. However, these phenomena are only observed at the upper loading end when the temperature exceeds 450°C. Thermal cracks also cause changes in the internal structure of rock samples, and temperature variations can affect both the P-wave velocity and tensile strength. In terms of the relationship between P-wave velocity and Brazilian tensile strength (BTS) of high-temperature granite under water cooling, the negative exponential function model proposed in this study fits the experimental data very well.

摘要

为了研究花岗岩热损伤的演化和稳定性特征,采用数字图像相关(DIC)技术对高温花岗岩样品进行了一系列巴西劈裂试验。结果表明,当温度超过 450~600°C 的阈值时,巴西拉伸强度和 P 波波速明显下降,两者之间呈线性关系。微裂纹的存在改变了应力传递路径,破坏了巴西盘上的应力平衡,导致复杂的断裂模式。在 450°C 以下,高温应变区和微裂纹在花岗岩巴西盘的上下加载端都有发展。然而,当温度超过 450°C 时,这些现象仅在上部加载端观察到。热裂纹也会导致岩石样品内部结构发生变化,温度变化会同时影响 P 波波速和拉伸强度。就水冷却条件下高温花岗岩的 P 波波速与巴西拉伸强度(BTS)之间的关系而言,本研究提出的负指数函数模型非常吻合实验数据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7df5/10686506/be329bfa7faf/pone.0294258.g001.jpg

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