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Topology optimization method for interior flow based on transient information of the lattice Boltzmann method with a level-set function

机译:基于Lattice Set函数的晶格Boltzmann方法瞬态信息的内部流拓扑优化方法

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摘要

We propose a topology optimization method for a flow field using transient information. The optimization algorithm of many conventional methods use the fully converged information of a flow field. In contrast, our approach uses the transient information of an unsteady flow field and update the design domain while solving the unsteady flow field, thereby greatly reducing the computational cost. The fluid and solid regions are clearly distinguished by a level-set function. Consequently, the boundary is concretely represented, and precise boundary conditions are applied on the wall boundary. The lattice Boltzmann method is employed as a fluid computation method. To implement the non-slip boundary conditions at the fluid-solid boundary, we apply bounce-back conditions. We update the domain according to a sensitivity analysis. A sensitivity is formulated based on the lattice Boltzmann equations without adjoint equations for self-adjoint flow. We approximately use the sensitivity for non-self-adjoint equations, i.e. lattice Boltzmann equations, and discuss the optimality and limitations. The approximated sensitivity also considers the bounce-back boundary conditions at the wall separating the fluid and solid regions.
机译:我们提出了一种使用瞬态信息的流场的拓扑优化方法。许多传统方法的优化算法使用流场的完全融合信息。相比之下,我们的方法使用非定常流场的瞬态信息,并在求解非定常流场的同时更新设计域,从而大大降低计算成本。通过水平设定功能明确地区分流体和固体区域。因此,边界是具体表示的,并且在壁边界上施加精确的边界条件。用晶格玻璃板方法作为流体计算方法。为了在流体固态边界处实施防滑边界条件,我们应用弹跳条件。我们根据灵敏度分析更新域名。基于Lattice Boltzmann方程配制灵敏度,而不伴随公共伴随流程。我们大致利用非自行伴随方程的灵敏度,即Lattice Boltzmann方程,并讨论了最优性和限制。近似的灵敏度还认为壁的反弹边界条件分离流体和固体区域。

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