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首页> 外文期刊>International Journal of Heat and Fluid Flow >Local vorticity computation approach in double distribution functions based lattice Boltzmann methods for flow and scalar transport
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Local vorticity computation approach in double distribution functions based lattice Boltzmann methods for flow and scalar transport

机译:基于双分布函数的局部涡旋计算方法基于晶格Boltzmann流量和标量传输的方法

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摘要

Computation of vorticity, or the skew-symmetric velocity gradient tensor, in conjunction with the strain rate tensor, plays an important role in the flow classification, in vortical structure identification and in the modeling of various complex fluids and flows. For the simulation of flows accompanied by the advection-diffusion transport of a scalar field (e.g., temperature), double distribution functions (DDF) based lattice Boltzmann (LB) methods, involving a pair of LB schemes are commonly used. We present a new local vorticity computation approach by introducing an intensional anisotropy of the scalar flux in the third order, off-diagonal moment equilibria of the LB scheme for the scalar field, and then combining the second order non-equilibrium components of both the LB methods. As such, any pair of lattice sets in the DDF formulation that can independently support the third order off-diagonal moments would enable local determination of the complete flow kinematics, with the LB methods for the fluid motion and the transport of the passive scalar respectively providing the necessary moment relationships to determine the symmetric and skew-symmetric components of the velocity gradient tensor. Since the resulting formulation is completely local and do not rely on any finite difference approximations for velocity derivatives, it is by design naturally suitable for parallel computation. As an illustration of our approach, we formulate a DDF-LB scheme for local vorticity computation using a pair of multiple relaxation times (MRT) based collision approaches on two-dimensional, nine velocity (D2Q9) lattices, where the necessary moment relationships to determine the velocity gradient tensor and the vorticity are established via a Chapman-Enskog analysis. Simulations of various benchmark flows demonstrate good accuracy of the predicted vorticity fields using our approach against available solutions, including numerical results, with a second order convergence. Furthermore, extensions of our formulation for a variety of collision models, including those based on cascaded and non-cascaded central moments, to enable local vorticity computation are presented.
机译:与应变速率张量相结合的涡流或歪曲对称速度梯度张量在流量分类中起重要作用,其在涡流分类中,以及各种复杂流体的建模和流动的模型。对于伴随标量场(例如温度)的平坦扩散传输的流动模拟,常用于涉及一对LB方案的基于标量场(例如,温度),基于双分布函数(DDF)的晶格Boltzmann(LB)方法。我们通过在标量场的第三顺序中引入标量通量的强度各向异性,为标量字段的LB方案的偏差时刻平衡,提出了一种新的本地涡度计算方法,然后将二阶非平衡组件组合在一起的磅方法。这样,可以独立地支持第三阶的DDF制剂中的任何一对晶格组可以使得能够局部确定完整的流量运动学,其中LB方法用于分别提供的被动标量的传输确定速度梯度张量的对称和歪曲对称分量的必要时刻关系。由于所得到的制剂是完全局部的并且不依赖于速度衍生物的任何有限差分近似,因此通过设计自然适合并行计算。作为我们的方法的说明,我们使用基于多个松弛时间(MRT)的碰撞方法对本地涡流计算的DDF-LB方案进行二维,九个速度(D2Q9)格子,其中必要的时刻关系来确定通过Chapman-Enskog分析建立速度梯度张量和涡度。各种基准流程的模拟使用我们对可用解决方案的方法展示了预测涡流场的良好准确性,包括数值结果,具有二阶收敛。此外,展示了我们对各种碰撞模型的配方的扩展,包括基于级联和非级联的中央矩的那些,以实现局部涡流计算。

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