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首页> 外文期刊>Aerosol Science and Technology: The Journal of the American Association for Aerosol Research >Reducing Statistical Noise and Extending the Size Spectrum by Applying Weighted Simulation Particles in Monte Carlo Simulation of Coagulation
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Reducing Statistical Noise and Extending the Size Spectrum by Applying Weighted Simulation Particles in Monte Carlo Simulation of Coagulation

机译:通过在蒙特卡洛模拟的混凝中应用加权模拟粒子来减少统计噪声并扩展尺寸谱

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摘要

The direct simulation Monte Carlo (DSMC) method is widely utilized to simulate microscopic dynamic processes in dispersed systems that give rise to the population balance equation. In conventional DSMC approaches, simulation particles are equally weighted, even for broad size distributions where number concentrations in different size intervals are significantly different. The resulting statistical noise and limited size spectrum severely restrict the application of these DSMC methods. This study proposes a new Monte Carlo (MC) method, the differentially weighted time-driven method, which captures the coagulation dynamics in dispersed systems with low noise and is simultaneously able to track the size distribution over the full size range. Key elements of this method include constructing a new jump Markov process based on a new coagulation rule for two differentially weighted simulation particles, and restricting the number of simulation particles in each size interval within prescribed bounds. The method is validated by using an ideal coagulation kernel with a known analytical solution and a real coagulation kernel for which an accurate solution can be found numerically (self-preserving particle size distribution in the continuum regime).
机译:直接模拟蒙特卡洛(DSMC)方法被广泛用于模拟分散系统中的微观动态过程,从而产生种群平衡方程。在常规DSMC方法中,即使对于宽尺寸分布(在不同尺寸间隔中的数字浓度显着不同),模拟粒子也被平均加权。由此产生的统计噪声和有限的频谱范围严重限制了这些DSMC方法的应用。这项研究提出了一种新的蒙特卡洛(MC)方法,即差分加权时间驱动方法,该方法可捕获具有低噪声的分散系统中的混凝动态,并能够跟踪整个尺寸范围内的尺寸分布。该方法的关键要素包括:基于新的凝聚规则为两个差分加权的模拟粒子构造新的跳跃马尔可夫过程,并将每个尺寸区间中的模拟粒子的数量限制在规定的范围内。该方法通过使用具有已知分析溶液的理想凝结核和可以在数值上找到精确解的真实凝结核(连续谱中的自保留粒径分布)进行验证。

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