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Multiscale fluid mechanics and modeling

机译:多尺度流体力学和建模

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摘要

In recent years, there has been a tremendous growth of activity on multiscale modeling and computation. In particular, the multiscale hybrid numerical methods are those that combine multiple models defined at fundamentally different length and time scales within the same overall spatial and temporal domain. For examples, a framework of hybrid continuum and molecular dynamics multiscale method has been developed to simulate micro- and nanoscale fluid flows, which combines the continuum computational fluid dynamics (CFD) or the mesoscopic lattice Boltzmann method for the bulk flow region and the atomistic molecular dynamics for the interface region. The similar idea of constrained variation has also been used in developing multiscale fluid turbulent models for constrained dynamic subgrid-scale stress model, Reynolds stress constrained large eddy simulation (RSC-LES) for wall-bounded turbulent flows with massive separation and heat flux constrained large eddy simulation. For RSC-LES, our model is able to solve the traditional log-layer mismatch problem in RANS/LES approaches and can predict mean velocity, turbulent stress and skin friction coefficients more accurate than pure dynamic large eddy models and traditional detached eddy simulation using the same grid resolution. Our results demonstrate the capability of multiscale simulation methods for complex fluid systems and the necessity of physical constraints on the multiscale methods.
机译:近年来,在多尺度建模和计算上存在巨大的活动增长。特别地,多尺度混合数值方法是组合在同一总空间和时间域内的基本不同长度和时间尺度的多个模型结合多个模型的那些。例如,已经开发了一种混合式连续体和分子动力学多尺度方法的框架来模拟微型和纳米级流体流动,其将连续计算流体动力学(CFD)或介于流量区域和原子分子的介镜晶格Boltzmann方法相结合。接口区域的动态。在制定多尺寸的动态胚层应力模型的多尺寸流体湍流模型中也已经用于制定多尺寸流体湍流模型的类似思想,雷诺应力受到大规模分离和热通量约束的壁有限湍流的大型涡流仿真(RSC-LES)。涡旋仿真。对于RSC-LES,我们的模型能够解决RAN / LES方法中的传统日志层不匹配问题,并且可以预测平均速度,湍流应力和皮肤摩擦系数比纯动态大涡模型和传统分离涡流模拟使用的是更准确的相同的网格分辨率。我们的结果表明了复杂流体系统的多尺度模拟方法的能力以及多尺度方法对物理限制的必要性。

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