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Radial Basis Functions Mesh Morphing A Comparison Between the Bi-harmonic Spline and the Wendland C2 Radial Function

机译:径向基函数网格变形双谐波样条和Wendland C2径向函数的比较

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Radial basis functions (RBFs) based mesh morphing allows to adapt the shape of a computational grid onto a new one by updating the position of all its nodes. Usually nodes on surfaces are used as sources to define the interpolation field that is propagated into the volume mesh by the RBF. The method comes with two distinctive advantages that makes it very flexible: it is mesh independent and it allows a node wise precision. There are however two major drawbacks: large data set management and excessive distortion of the morphed mesh that may occur. Two radial kernels are widely adopted to overtake such issues: the bi-harmonic spline (BHS) and the Wendland C2 (WC2). The BHS minimizes the mesh distortion but it is computational intense as a dense linear system has to be solved whilist the WC2 leads to a sparse system easier to solve but which can lack in smoothness. In this paper we compare these two radial kernels with a specific focus on mesh distortion. A detailed insight about RBF fields resulting from BHS and WC2 is first provided by inspecting the intensity and the distribution of the strain for a very simple shape: a square plate with a central circular hole. An aeronautical example, the ice formation onto the leading edge of a wing, is then exposed adopting an industrial software implementation based on the state of the art of RBF solvers.
机译:基于径向基函数(RBF)的网格变形可通过更新其所有节点的位置,使计算网格的形状适应新网格。通常,将曲面上的节点用作源,以定义由RBF传播到体积网格中的插值字段。该方法具有两个非常明显的优点,使其非常灵活:它与网格无关,并且允许按节点精度。但是,存在两个主要缺点:大型数据集管理和可能发生的变形网格过度变形。广泛采用了两个径向核来解决此类问题:双谐波样条(BHS)和Wendland C2(WC2)。 BHS使网格变形最小化,但是它是计算密集型的,因为必须解决密集的线性系统,而WC2导致更易于解决但又缺乏平滑性的稀疏系统。在本文中,我们比较了这两个径向核,并特别关注网格变形。首先通过检查一个非常简单的形状:带有中心圆孔的正方形板的强度和应变分布,来详细了解BHS和WC2产生的RBF场。一个航空示例,即在机翼前缘形成冰,然后采用基于RBF求解器最新技术的工业软件实现进行暴露。

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