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Multifield Coupling Mechanism of Unloading Deformation and Fracture of Composite Coal-Rock

机译:复合煤岩卸料变形和断裂的多峰耦合机理

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The deformation and fracture evolution of coal and rock under unloading are prone to sudden instability or dynamic damage. To solve the problem, this paper combines interdisciplinary theories such as damage mechanics and electromagnetic field theory. The mathematical model of multiphysics coupling during loading and unloading of composite coal-rock is deduced. In addition, numerical simulations along with experimental verification are carried out to study multi-physical field variation and coupling mechanisms. The composite coal-rock deforms and ruptures under unloading, and the brittle failure of the rock body becomes more sudden when the confining pressure is unloaded. Macroscopically, many microcracks are generated and expanded during the loading and unloading of composite coal-rock. Microscopically, the internal old molecular chains are broken to form new molecular chains by the force. Simulation results show that, during the loading and unloading process, the three physical fields of the composite coal-rock all change regularly. During the unloading of coal and rock, there is a transition period in which the temperature increases sharply and reaches the maximum. Then, the temperature decreases due to the gradual decrease of its bearing capacity. Besides, the electromagnetic field is strongest on the surface of the coal body, and its propagation in the air decays exponentially. There are small fluctuations that appear at the junction of the coal body and the air. The experimental results show that the internal infrared radiation temperature of the composite coal-rock decreases during the initial stage of loading and unloading due to the discharge of internal gas. In the first stage of “loading and unloading,” it increases with the increase in stress, and the temperature suddenly increases in a short time after unloading. The electromagnetic radiation fluctuates in small amplitudes at the initial stage. When the stress is about to reach the peak, the electromagnetic radiation intensity increases and reaches the peak suddenly. Then, the coal-rock ruptures, the stress decreases, and the electromagnetic radiation weakens. The experiment and simulation results are consistent. The multiphysics coupling model is used to study the characteristics of coal and rock unloading under complex conditions, providing a theoretical basis and new method for the prediction and forecast of coal and rock mining dynamic disasters.
机译:卸载下煤炭和岩石的变形和断裂演变易于突然不稳定或动态损坏。为了解决这个问题,本文结合了逆思索理论,如损坏力学和电磁场理论。推导了复合煤岩加载和卸载期间多体耦合的数学模型。另外,执行数值模拟以及实验验证以研究多物理场变形和耦合机构。复合煤岩变形和卸下的破裂,当填充压力卸载时,岩体的脆性失效变得更突然。宏观上,在复合煤岩的装载和卸载期间产生并膨胀许多微裂纹。微观地,内部旧的分子链破裂以形成新的分子链。仿真结果表明,在装载和卸载过程中,复合煤岩的三个物理领域都定期变化。在煤和岩石卸载期间,存在过渡期,其中温度急剧增加并达到最大值。然后,由于其承载力的逐渐减小,温度降低。此外,电磁场在煤体的表面上最强,并且其在空气中呈指数衰减。煤体和空气的交界处出现小波动。实验结果表明,由于内部气体排出,复合煤岩的内部红外辐射温度减小了装载和卸载的初始阶段。在“加载和卸载”的第一阶段,它随着应力的增加而增加,并且在卸载后的短时间内温度突然增加。电磁辐射在初始阶段的小幅度波动。当应力即将到达峰值时,电磁辐射强度突然增加并达到峰值。然后,煤岩破裂,应力降低,电磁辐射削弱。实验和仿真结果是一致的。多体耦合模型用于研究复杂条件下煤炭和岩石卸料的特性,为煤炭和岩石采矿灾害预测和预测提供了理论依据和新方法。

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