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Investigation on the influence mechanism of rock brittleness on rock fragmentation and cutting performance by discrete element method

机译:岩石脆性对岩石碎片分段和离散性能的影响机理研究

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Rock brittleness is one of the most important factors to be considered in the design and selection of excavation and mining machineries. In this paper, the influence mechanism of rock brittleness on rock fragmentation and cutting performance is investigated. Rock models with different brittleness are calibrated by changing the bond shear strength to tensile strength ratio (BSTR) in PFC2D. A linear relationship between the BSTR and brittleness index of B10 with a high correlation coefficient is obtained. A series of rock cutting simulations, using PFC2D, are conducted using different cutting depths and confining pressures on rocks with different brittleness. The analysis results demonstrate that rocks with small brittleness are damaged in the ductile failure mode. In contrast, with the increase in cutting depth, the fracture mode of brittle rocks translated from ductile to brittle mode accompanying the macro crack propagation and large chip formation. Under confined conditions, rocks with small brittleness are damaged thoroughly by the synergistic effect of confining pressure and cutting disturbance when the confining pressure/uniaxial compressive strength (UCS) ratio is 0.6. For rocks with large brittleness, the vertical propagation of macro cracks are restrained under confined conditions. Moreover, the mean cutting force (MCF) and mean peak cutting force (MPCF) increase and tend to be constants with the increase of rock brittleness and cutting depth. In addition, the instability of the cutting force is evaluated by the fluctuation index (FI) and pulse number (PN) in unit displacement. The FI increases with the increase in rock brittleness while the PN decreases, which suggests that the cutting force fluctuates more violently but less frequently during cutting rocks with large brittleness. Lastly, the analysis of specific energy (SE) on the cutting force signal is carried out, and the results show that it is more efficient to cut rocks with large brittleness than that with small brittleness.
机译:岩石脆性是在设计和选择挖掘和采矿机械中最重要的因素之一。本文研究了岩石脆性对岩石碎片和切割性能的影响机理。通过改变PFC2D中的抗拉强度比(BSTR)来校准具有不同脆性的岩石模型。获得具有高相关系数的B10的BSTR和脆性指数之间的线性关系。使用PFC2D的一系列岩石切割模拟,在具有不同脆性的岩石上使用不同的切割深度和限制压力进行。分析结果表明,具有小脆性的岩石在延展性故障模式下损坏。相反,随着切削深度的增加,脆性岩石的裂缝模式从伴随宏裂纹传播和大芯片形成的韧性转化为脆性模式。在狭窄的条件下,具有小脆性的岩石通过限制压力/单轴抗压强度(UCS)比为0.6时的狭窄压力和切割干扰的协同效应彻底损坏。对于具有较大脆性的岩石,宏观裂缝的垂直传播在限制条件下受到限制。此外,平均切割力(MCF)和平均峰值切割力(MPCF)增加并且趋于恒定的岩石脆性和切割深度的常数。另外,通过单位位移中的波动指数(FI)和脉冲数(PN)评估切割力的不稳定性。随着岩石脆性的增加而增加,而PN减少,这表明切割力在用大脆性切割岩石期间更剧烈地波动但较少。最后,进行了切割力信号上的特定能量(SE)的分析,结果表明,将具有大的脆性的岩石切割而不是小脆性更有效。

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