Effect of real-time high temperature and loading rate on mode I fracture toughness of granite

被引:0
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作者
Ke Yang
Fan Zhang
Fan-zhen Meng
Da-wei Hu
Xian-feng Tan
机构
[1] Hubei University of Technology,School of Civil Engineering, Architecture and Environment
[2] Qingdao University of Technology,State Key Laboratory of Geomechanics and Geotechnical Engineering, Institute of Rock and Soil Mechanics
[3] Chinese Academy of Sciences,Faculty of Engineering
[4] China University of Geosciences,undefined
来源
Geothermal Energy | / 10卷
关键词
Granite; Real-time high temperature; Loading rate; Fracture toughness; Notched semi-circular bending;
D O I
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中图分类号
学科分类号
摘要
An in-depth understanding of the effect of real-time high temperature and loading rate on the fracture toughness of rocks is highly important for understanding the fracture mechanism of Hot Dry Rock (HDR). Three-point bending tests on notched semi-circular bending (NSCB) samples at the real-time temperatures (25, 100, 200, 300, 400 and 500 ℃) and different loading rates (0.1, 0.01 and 0.001 mm/min) were performed to characterize the temperature and rate dependence of the mode I fracture toughness. Besides, the characteristic of the fracture surface morphology was investigated by scanning electron microscope (SEM) and crack deviation distance analysis. Results show that the temperature has a significant effect on the development of intergranular and transgranular cracks. The fracture toughness and peak load are similarly influenced by temperature (i.e., they both decrease with increasing temperature). At the loading rates of 0.1 mm/min and 0.01 mm/min, from 25 to 400 °C, the fracture toughness decreases slightly with decreasing loading rates. However, at a loading rate of 0.001 mm/min, the fracture toughness values above 200 °C are very similar, and the fracture toughness does not strictly follow the law of decreasing with decreasing loading rate. Especially at 500 °C, fracture toughness and loading rate are negatively correlated. Our study also indicates that the effect of loading rate on macroscopic crack propagation path at real-time high temperature is not obvious. This study could provide an important basis for evaluating the safety and stability of geothermal engineering.
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