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Front propagation techniques to calculate the largest Lyapunov exponent of dilute hard disk gases

机译:前端传播技术可计算稀硬盘气体的最大Lyapunov指数

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A kinetic approach is adopted to describe the exponential growth of a small deviation of the initial phase space point, measured by the largest Lyapunov exponent, for a dilute system of hard disks, both in equilibrium and in a uniform shear flow. We derive a generalized Boltzmann equation for an extended one-particle distribution that includes deviations from the reference phase space point. The equation is valid for very low densities n, and requires an unusual expansion in powers of 1/lnn. It reproduces and extends results from the earlier, more heuristic clock model and may be interpreted as describing a front propagating into an unstable state. The asymptotic speed of propagation of the front is proportional to the largest Lyapunov exponent of the system. Its value may be found by applying the standard front speed selection mechanism for pulled fronts to the case at hand. For the equilibrium case, an explicit expression for the largest Lyapunov exponent is given and for sheared systems we give explicit expressions that may be evaluated numerically to obtain the shear rate dependence of the largest Lyapunov exponent. [References: 38]
机译:对于平衡的和均匀的剪切流中的稀薄硬盘系统,采用动力学方法来描述初始相空间点的小偏差的指数增长,该偏差由最大Lyapunov指数测量。我们导出了扩展的单粒子分布的广义玻尔兹曼方程,其中包括与参考相空间点的偏差。该方程式对于非常低的密度n有效,并且要求功率异乎寻常地扩展为1 lnn 。它重现和扩展了来自较早的启发式时钟模型的结果,并且可以解释为描述了正传播到不稳定状态的前端。前沿传播的渐近速度与系统的最大Lyapunov指数成正比。它的值可以通过将标准的前拉速选择机构应用于拉动的前推板来确定。对于平衡情况,给出了最大Lyapunov指数的显式表达式,对于剪切系统,我们给出了可以进行数值计算以获得最大Lyapunov指数的剪切率依赖性的显式表达式。 [参考:38]

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