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Observing brownian motion in vibration-fluidized granular matter

机译:观察振动流化颗粒物中的布朗运动

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Observation of the rotational brownian motion(1,2) of a very fine wire immersed in a gas led to one of the most important ideas of equilibrium statistical mechanics. Namely, the many-particle problem of a large number of molecules colliding with the wire can be represented by just two macroscopic parameters: viscosity and temperature. Interest has arisen in the question of whether this idea (mathematically developed in the Langevin model and the fluctuation-dissipation theorem(3,4)) can also be used to describe systems that are far from equilibrium. Here we report an experimental investigation of an archetypal non-equilibrium system, involving a sensitive torsion oscillator immersed in a granular system(5,6) of millimetre-size grains that are fluidized by strong external vibrations. The vibro-fluidized granular medium is a driven environment, with continuous injection and dissipation of energy, and the immersed oscillator can be seen as analogous to an elastically bound brownian particle. By measuring the noise and the susceptibility, we show that the experiment can be treated (to a first approximation) with the equilibrium formalism. This gives experimental access to a granular viscosity and an effective temperature; however, these quantities are anisotropic and inhomogeneous. Surprisingly, the vibrofluidized granular matter behaves as a 'thermal' bath satisfying a fluctuation-dissipation relation. [References: 16]
机译:观察浸入气体中的极细钢丝的旋转布朗运动(1,2),导致了平衡统计力学最重要的思想之一。即,大量分子与导线碰撞的多粒子问题可以仅由两个宏观参数来表示:粘度和温度。人们对此问题(在Langevin模型和涨落耗散定理(3,4)中数学发展)是否也可以用于描述远离平衡的系统的问题引起了兴趣。在这里,我们报告了一个原型非平衡系统的实验研究,该系统涉及将一个敏感的扭转振荡器浸入毫米级颗粒的颗粒系统(5,6)中,该颗粒系统通过强烈的外部振动而流化。振动流化的粒状介质是一种驱动环境,具有连续注入和能量消散的作用,因此浸没的振荡器可被视为类似于弹性结合的布朗粒子。通过测量噪声和磁化率,我们表明可以用平衡形式主义对实验进行(初等近似)处理。这使实验获得了颗粒粘度和有效温度。但是,这些数量是各向异性的并且是不均匀的。出乎意料的是,经振动流化的颗粒物质表现为满足波动-耗散关系的“热”浴。 [参考:16]

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