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Adjoint-Based, Three-Dimensional Error Prediction and Grid Adaptation

机译:基于伴随的三维误差预测和网格自适应

摘要

Engineering computational fluid dynamics (CFD) analysis and design applications focus on output functions (e.g., lift, drag). Errors in these output functions are generally unknown and conservatively accurate solutions may be computed. Computable error estimates can offer the possibility to minimize computational work for a prescribed error tolerance. Such an estimate can be computed by solving the flow equations and the linear adjoint problem for the functional of interest. The computational mesh can be modified to minimize the uncertainty of a computed error estimate. This robust mesh-adaptation procedure automatically terminates when the simulation is within a user specified error tolerance. This procedure for estimating and adapting to error in a functional is demonstrated for three-dimensional Euler problems. An adaptive mesh procedure that links to a Computer Aided Design (CAD) surface representation is demonstrated for wing, wing-body, and extruded high lift airfoil configurations. The error estimation and adaptation procedure yielded corrected functions that are as accurate as functions calculated on uniformly refined grids with ten times as many grid points.
机译:工程计算流体动力学(CFD)分析和设计应用程序专注于输出函数(例如,升力,阻力)。这些输出函数中的错误通常是未知的,可以计算出保守的准确解。可计算的误差估计可以为规定的误差容限提供最小化计算工作的可能性。可以通过对目标函数求解流方程和线性伴随问题来计算这样的估计。可以修改计算网格以最小化所计算的误差估计的不确定性。当仿真在用户指定的容错范围内时,此鲁棒的网格自适应过程将自动终止。针对三维欧拉问题,演示了此函数的估计和适应函数误差的过程。链接到计算机辅助设计(CAD)表面表示的自适应网格程序已针对机翼,机翼主体和挤压式高升翼型配置进行了演示。误差估计和自适应过程产生的校正函数与在具有十倍网格点的均匀精炼网格上计算的函数一样准确。

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  • 作者

    Park Michael A.;

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  • 年度 2002
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