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首页> 外文期刊>Philosophical transactions of the Royal Society. Mathematical, physical, and engineering sciences >Geological implication of grain-size segregation in dense granular matter
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Geological implication of grain-size segregation in dense granular matter

机译:致密粒状物质中晶粒尺寸隔离的地质意义

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To the current common belief, grain size segregation in granular matter requires sufficient porosity. Therefore, grain size segregation found in a natural fault gouge could imply elevated fluid pressure and the reduced normal stress on fault, possibly caused by the frictional heat during an earthquake. To clarify whether fluidization is essential to grain size segregation, we conduct numerical simulation on a simple model of fault gouge in a plane shear geometry under constant volume condition: the volume fraction is fixed at 0.6, at which the granular system possesses yield stress. We observe apparent grain size segregation at this volume fraction, meaning that grain size segregation alone does not imply fluidization of granular matter. We also show that segregation is driven by the nonlinear velocity profile, and that the gravity is not essential to segregation. The physical condition tested here may be relevant to earthquake faults: the normal stress of 1MPa, the sliding velocity of 1ms(-1), and the duration of 0.1 s.
机译:对于目前的常见信念,粒状物质的粒度偏析需要足够的孔隙率。因此,在自然故障凿孔中发现的晶粒尺寸隔离可能意味着较高的流体压力和对故障的正常应力降低,可能由地震期间的摩擦热引起的。为了阐明流化对晶粒尺寸隔离是必不可少的,我们在恒定体积条件下的平面剪切几何形状中对故障凿孔的简单模型进行数值模拟:体积分数固定在0.6,粒状系统具有屈服应力。我们在该体积分数中观察表观晶粒尺寸隔离,这意味着单独的晶粒尺寸的偏析并不意味着粒状物质的流化。我们还表明,隔离由非线性速度曲线驱动,并且重力不是对偏析的必需影响。这里测试的物理条件可能与地震故障相关:1MPa的正常应力,1ms的滑动速度,持续时间为0.1秒。

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