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An Experimental Study on the Mechanical Properties of High-Temperature Granite under Natural Cooling and Water Cooling

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TLDR
In this paper, the authors studied the mechanical properties of high-temperature (600°C-1,000°C) granite under different cooling methods and found that water cooling has a more significant effect on strength degradation than natural cooling.
Abstract
With the further development of deep rock mechanics engineering, such as the exploitation and utilization of geothermal resources, the exploitation of deep mineral resources, and the safe disposal of nuclear waste, the study of mechanical properties of deep high-temperature rock is gaining the attention of the researchers. However, not only the high temperature but also the cooling condition/method that will be used in the construction such as drilling cooling will also greatly affect the mechanical properties of the rock. In this paper, the mechanical behaviour and the evolution of the mechanical properties of the high-temperature (600°C–1,000°C) granite under different cooling methods are studied. The following conclusions can be obtained: (1) The peak stress of the granite decreases with the heating temperature. Compared with natural cooling, water cooling has a more significant effect on strength degradation. (2) The increase of the heating temperature increases the maximum axial strain of the granite. The water cooling method more greatly induces the maximum axial strain of granite than the natural cooling. The maximum axial strain of the specimen under the water cooling reaches 117.3% of that under natural cooling (800°C). (3) The elastic modulus of the granite decreases with the heating temperature. Water cooling will have a stronger effect on the reduction of the elastic modulus than natural cooling. The maximum difference value (2.02 GPa) of the elastic modulus under the different cooling methods occurs at the temperature of 800°C. (4) Poisson’s ratio of the granite increases with heating temperature, and the cooling method does not have an evident effect on it. The relationship between Poisson’s ratio and the heating temperature under different cooling methods can be described using the linear model. (5) According to the influence of the temperature on the peak stress, the elastic modulus, and Poisson’s ratio, the heating temperature domain can be divided into the unapparent zone, the significant zone, and the mitigation zone. (6) The thermal stress due to the nonuniform temperature field and the different thermal expansion coefficients is incompatible. Such incompatibility stresses the essences of the degradation of the mechanical properties of the granite.

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Citations
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Journal ArticleDOI

DDA Simulation Study on Mechanical Failure of Heterogenous Rock

TL;DR: In this paper, a statistical rock mesoheterogeneity model based on the Weibull distribution function is introduced into the discontinuous deformation analysis (DDA) method to simulate the mechanical failure of heterogeneous rock, in which the general heterogeneity degree is controlled by a heterogeneity index and the mechanical property of each subblock element is randomly assigned.
Journal ArticleDOI

Combined effects of microwave irradiation and water cooling on the deformation and failure behaviours of CSTBD granite

TL;DR: In this article , a series of tests on cracked straight-through Brazilian disc (CSTBD) granite specimens, where the crack angle was set to 0, 30, 60, and 90° and the microwave heating duration was set at 0.5, 1, 3, 5, and 7 min.
References
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Journal ArticleDOI

High-temperature mechanical, physical and Thermal properties of granitic rocks— A review

TL;DR: An extensive literature review was performed to assemble data on the following properties: modulus, Poisson's ratio, tensile strength, compressive strength, viscosity, thermal expansion, density, permeability, melting temperature, heat of fusion, specific heat, thermal conductivity and thermal diffusivity.
Journal ArticleDOI

Thermo-mechanical properties of Indian and other granites

TL;DR: A literature survey was carried out to collect data on the properties of granites at high temperatures including Young's modulus, uniaxial compressive strength, tensile strength, Poisson's ratio, coefficient of linear thermal expansion, creep behaviour and the development of micro-crack on heating using scanning electron microscope (SEM) as mentioned in this paper.
Journal ArticleDOI

Physical Properties of Sandstones After High Temperature Treatment

TL;DR: In this paper, an extensive review of international literature, especially of Chinese publications not considered in the English-speaking scientific community so far, covers physical properties such as bulk density, porosity, permeability and compressional wave velocity of sandstones after high temperature treatment.
Journal ArticleDOI

Effects of Thermal Treatment on Tensile Strength of Laurentian Granite Using Brazilian Test

TL;DR: In this paper, the effect of thermal treatment on several physical properties and the tensile strength of Laurentian granite (LG) are measured in Brazil at temperatures of up to 850°C.
Journal ArticleDOI

On the tensile mechanical characteristics of fine-grained granite after heating/cooling treatments with different cooling rates

TL;DR: In this article, the results from tests performed to investigate the tensile mechanical characteristics of granite after exposure to heating and cooling treatments were analyzed using the Brazilian disc method, and the results showed that the water-cooled samples exhibited the largest decrease in P-wave velocity and the largest numbers of newly generated cracks on the surface, which indicates that the samples heated and cooled at higher cooling rates were more susceptible to the heating/cooling treatments.
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