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Steady-State Anderson Accelerated Coupling of Lattice Boltzmann and Navier–Stokes Solvers

机译:稳态Anderson加速格子Boltzmann和Navier-Stokes解算器的耦合

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We present an Anderson acceleration-based approach to spatially couple three-dimensional Lattice Boltzmann and Navier–Stokes (LBNS) flow simulations. This allows to locally exploit the computational features of both fluid flow solver approaches to the fullest extent and yields enhanced control to match the LB and NS degrees of freedom within the LBNS overlap layer. Designed for parallel Schwarz coupling, the Anderson acceleration allows for the simultaneous execution of both Lattice Boltzmann and Navier–Stokes solver. We detail our coupling methodology, validate it, and study convergence and accuracy of the Anderson accelerated coupling, considering three steady-state scenarios: plane channel flow, flow around a sphere and channel flow across a porous structure. We find that the Anderson accelerated coupling yields a speed-up (in terms of iteration steps) of up to 40% in the considered scenarios, compared to strictly sequential Schwarz coupling.
机译:我们提出了一种基于安德森加速度的方法,用于在空间上耦合三维Lattice Boltzmann和Navier-Stokes(LBNS)流动模拟。这允许在最大程度上局部利用两种流体求解器方法的计算功能,并产生增强的控制以匹配LBNS重叠层内的LB和NS自由度。专为并联Schwarz联轴器设计,Anderson加速度允许同时执行Lattice Boltzmann和Navier-Stokes求解器。我们详细考虑了耦合方法,对其进行了验证,并考虑了三种稳态情况:平面通道流,围绕球体的流和穿过多孔结构的通道流,研究了安德森加速耦合的收敛性和准确性。我们发现,与严格顺序的Schwarz耦合相比,在考虑的情况下,Anderson加速耦合产生的加速(按迭代步长)高达40%。

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