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New Insight into Pseudo-Thermal Convection in Vibrofluidised Granular Systems

机译:在Vibroflofied粒度系统中对伪热对流的新洞察

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Utilising a combination of experimental results obtained via positron emission particle tracking (PEPT) and numerical simulations, we study the influence of a system’s geometric and elastic properties on the convective behaviours of a dilute, vibrofluidised granular assembly. Through the use of a novel, ‘modular’ system geometry, we demonstrate the existence of several previously undocumented convection-inducing mechanisms and compare their relative strengths across a broad, multi-dimensional parameter space, providing criteria through which the dominant mechanism within a given system – and hence its expected dynamics – may be predicted. We demonstrate a range of manners through which the manipulation of a system’s geometry, material properties and imposed motion may be exploited in order to induce, suppress, strengthen, weaken or even invert granular convection. The sum of our results demonstrates that boundary-layer effects due to wall (in)elasticity or directional impulses due to ‘rough’ boundaries exert only a secondary influence on the system’s behaviour. Rather, the direction and strength of convective motion is predominantly determined by the energy flux in the vicinity of the system’s lateral boundaries, demonstrating unequivocally that pseudo-thermal granular convection is decidedly a collective phenomenon.
机译:利用通过正电子发射粒子跟踪(PEPT)和数值模拟获得的实验结果的组合,研究系统的几何和弹性性质对稀释,振动的颗粒组件的对流行为的影响。通过使用新颖的“模块化”系统几何形状,我们展示了几种以前未记录的对流诱导机制的存在,并比较了它们跨越广泛的多维参数空间的相对强度,提供了给定的主要机制的标准系统 - 因此可以预测其预期动态。我们展示了一系列的方式,可以利用系统的几何形状,材料特性和施加的运动来阐明,以诱导,抑制,加强,削弱甚至反转粒状对流。我们的结果总和表明,由于“粗糙”边界引起的壁(In)弹性或方向脉冲引起的边界层效应仅对系统行为产生二次影响。相反,对流运动的方向和强度主要由系统的横向边界附近的能量通量决定,明确地展示伪热粒状对流是决小的集体现象。

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