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A direct simulation Monte Carlo method for rarefied gas flows in the limit of small Mach number

机译:马赫数小的极限条件下稀有气体流动的直接模拟蒙特卡罗方法

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Standard methods of simulating the mean velocity and mean force in a rarefied gas flow suffer from statistical errors associated with the random thermal motion of the gas molecules. The ratio of the statistical error to the mean velocity or force diverges in the limit of small Mach number, which is relevant to applications in aerosol science and microdevices. We present a novel extension of the direct-simulation Monte Carlo method in which the deviation from equilibrium is captured by noninteger weightings of the simulation gas particles, so that the mean velocity and force associated with the deviation from equilibrium can be computed without contamination by the thermal noise in the equilibrium state. The collision rules between simulation particles reproduce the changes in the gas velocity distribution function that would result from hard sphere intermolecular collisions. Because the collision rules produce new particles, particle splitting and recombination steps, which do not alter the velocity distribution function, must be introduced to maintain a finite number of particles and a finite maximum weighting per particle. The method is validated by comparing simulation results for pressure-driven flow in a channel and flow past a single sphere to corresponding solutions of the linearized Boltzmann equation. The method is then applied to obtain new results for the resistance to the relative motion of two spherical particles along their line of centers.(c) 2005 American Institute of Physics.
机译:模拟稀薄气流中平均速度和平均力的标准方法存在与气体分子随机热运动相关的统计误差。统计误差与平均速度或力的比值在较小的马赫数范围内发散,这与气溶胶科学和微型设备中的应用有关。我们提出了直接模拟蒙特卡洛方法的新扩展,其中通过模拟气体粒子的非整数权重来捕获平衡偏差,从而可以计算出与平衡偏差相关的平均速度和力而不会受到平衡的污染。平衡状态下的热噪声。模拟粒子之间的碰撞规则再现了硬球形分子间碰撞将导致的气体速度分布函数的变化。由于碰撞规则会产生新的粒子,因此必须引入不会改变速度分布函数的粒子分裂和重组步骤,以维持有限数量的粒子和每个粒子的最大权重。通过将通道中的压力驱动流和通过单个球体的流的仿真结果与线性化Boltzmann方程的相应解进行比较,验证了该方法的有效性。然后将该方法应用于获得两个球形粒子沿其中心线的相对运动的阻力的新结果。(c)2005美国物理研究所。

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