首页> 外文会议>Proceedings of 11th International Bhurban Conference on Applied Sciences amp; Technology >RBF interpolation with improved data reduction algorithm — A meshfree method for fluid-structure coupling and mesh deformation
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RBF interpolation with improved data reduction algorithm — A meshfree method for fluid-structure coupling and mesh deformation

机译:改进的数据约简算法的RBF插值—一种用于流体-结构耦合和网格变形的无网格方法

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In the present work radial basis function (RBF) method, combined with improved data reduction algorithm, is presented as a unified methodology for efficient computational static aeroelastic simulations and volume mesh deformation. This method has been implemented as an extension of in-house hybrid unstructured Reynolds-Averaged Navier-Stokes solver coupled with an open source finite element solver for aeroelastic behavior predictions. The interpolation is performed on arbitrary point clouds and does not have any type of connectivity constraint between the fluid and structure mesh. Improvements have been made in the interpolation method by constructing a multi-level subspace radial basis function interpolation based on ‘double-edge’ Greedy algorithm to create an approximate interpolation for all moving boundary points. The method is equally efficient for both the structured and unstructured meshes; preserves orthogonality, computationally efficient, has no dependency on the type of flow solver and can be readily parallelized. Typical deformation problem of DLR-F6 wing-body-nacelle-pylon configuration based on its mode shapes has been selected as the test case for demonstration of the volume mesh deformation. Results show that the present mesh deformation method has good efficiency and robustness even for large deformations. Static aeroelastic simulations have been performed for HIRENASD wing/body configuration. Good qualitative and quantitative agreement has been achieved between the predicted results and the available experimental data. This method has shown its effectiveness in accurately predicting the aeroelastic behavior and preserving global grid quality after deformation.
机译:在目前的工作中,径向基函数(RBF)方法与改进的数据约简算法相结合,被提出作为一种统一的方法,可以有效地进行静态气动弹性仿真和体网格变形。该方法已实现为内部混合非结构化雷诺平均Navier-Stokes求解器的扩展,并结合了用于气动弹性行为预测的开源有限元求解器。插值在任意点云上执行,并且在流体网格和结构网格之间没有任何类型的连接性约束。通过基于“双边” Greedy算法构造多级子空间径向基函数插值以为所有移动边界点创建近似插值,从而对插值方法进行了改进。该方法对于结构化网格和非结构化网格均有效。保留正交性,计算效率高,不依赖于流求解器的类型,并且可以很容易地并行化。基于其模态形状的DLR-F6机翼-机舱-塔架配置的典型变形问题已被选为证明体积网格变形的测试案例。结果表明,即使变形较大,该网格变形方法仍具有良好的效率和鲁棒性。对HIRENASD机翼/机体配置进行了静态气动弹性仿真。在预测结果和可用的实验数据之间已经取得了良好的定性和定量一致性。该方法已显示出其在准确预测气动弹性行为和保持变形后整体网格质量方面的有效性。

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