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Dense fluidized granular media in microgravity

机译:微重力下的密集流态颗粒介质

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摘要

Handling and transport of granular media are inevitably governed by the settling of particles. Settling into a dense state is one of the defining characteristics of granular media, among dissipation and absence of thermal agitation. Hence, settling complicates the adaptation of microscopic theories from atomic, molecular, or colloidal media to granular media. It is desirable to provide experiments in which selectively one of the granular characteristics is tuned to test suitable adaptation of a theory. Here we show that gas fluidization of granular media in microgravity is a suitable approach to achieve steady states closer to thermally agitated systems free of settling. We use diffusing-wave spectroscopy to compare the spatial homogeneity and the microscopic dynamics of gas-fluidized granular media on the ground and in drop tower flights with increasing packing densities up to full arrest. The gas fluidization on the ground leads to inhomogeneous states as known from fluidized beds, and partial arrest occurs at packing fractions lower than the full arrested packing. The granular medium in microgravity in contrast attains a homogeneous state with complete mobilization even close to full arrest. Fluidized granular media thus can be studied in microgravity with dynamics and packing fractions not achievable on the ground.
机译:颗粒介质的处理和运输不可避免地受颗粒沉降的控制。沉降到致密状态是粒状介质在散热和不进行热搅拌之间的定义特征之一。因此,沉降使微观理论从原子,分子或胶体介质到颗粒介质的适应变得复杂。期望提供其中选择性地调整颗粒特征之一以测试理论的适当适应性的实验。在这里,我们表明,微重力下的颗粒介质的气体流化是一种合适的方法,可以使稳态更接近无沉降的热搅拌系统。我们使用扩散波谱法比较了地面上和滴塔飞行中气体流化颗粒介质的空间均匀性和微观动力学,其中填料密度不断增加,直至完全捕集。如从流化床中所知,地面上的气体流化导致不均匀状态,并且在比完全捕集的填料低的填料分数下发生部分捕集。相反,在微重力下的粒状介质达到均匀状态,完全动员,甚至接近完全停止。因此,可以在微重力下研究流态化的颗粒介质,而动力学和堆积率是地面上无法达到的。

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