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Accelerating Unsteady CFD Simulations Using a Minimum Residual Based Nonlinear Reduced Order Modeling Approach

机译:使用最小剩余的非线性减少阶阶井建模方法加速不稳定的CFD仿真

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Reduced-order modeling is evaluated as a means to speed up unsteady computational fluid dynamics (CFD) simulations while maintaining the desired level of accuracy. In the reduced order modeling approach, proper orthogonal decomposition (POD) is applied to some computed response time history from a compressible, unsteady CFD solver to compute a set of orthogonal basis vectors. An approximate flow solution for the next time step is predicted by minimizing the unsteady flow solver residual in the space spanned by the POD basis. This is done by solving a non-linear least-squares problem. This approximate flow solution is then used to initialize the flow solver at this time step, aiming to reduce the number of inner iterations of the dual time stepping loop to convergence compared to the conventional choice of initializing with the previous time step solution or an extrapolation in time. This procedure is repeated for all following time steps. Results for the pitching LANN wing at transonic flow conditions show a more than twofold reduction in the number of inner iterations of the flow solver to convergence. Despite the overhead caused by evaluating the reduced-order model (ROM) at every time step, the method results in a 38% savings in computational time without compromising accuracy, thus improving the overall efficiency for unsteady aerodynamics applications. Finally, several means to further improve the performance are also discussed, including updating the POD basis after every new time step.
机译:减少阶建模被评估为加速不稳定计算流体动力学(CFD)仿真的手段,同时保持所需的精度水平。在降低的顺序建模方法中,适当的正交分解(POD)从可压缩,不稳定的CFD求解器应用于一些计算的响应时间历史,以计算一组正交基向量。通过最小化由POD跨越的空间中的空间的非定常流求解器残留来预测下次步骤的近似流量解决方案。这是通过求解非线性最小二乘问题来完成的。然后使用该近似流量解决方案来在此时间步骤初始化流动求解器,其目的是减少与与先前时间步骤解决方案的初始化或外推初始化的传统选择相比将双时间踩踏环路的内部迭代的数量减少到收敛时间。对所有随时间步骤重复此过程。跨音质流动条件下的俯仰LANN翼的结果显示出流量求解器的内部迭代的数量越来越多地减少收敛。尽管通过在每次步骤中评估阶数模型(ROM)引起的开销,但该方法在计算时间内节省了38%,而不会损害精度,从而提高了不稳定空气动力学应用的整体效率。最后,还讨论了进一步提高性能的几种方法,包括在每个新的时间步骤之后的基础上更新豆荚。

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