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Exact geometry SaS solid-shell element for 3D stress analysis of FGM piezoelectric structures

机译:用于FGM压电结构的3D应力分析的精确几何SaS固体元素

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A hybrid-mixed functionally graded material (FGM) piezoelectric four-node solid-shell element through the sampling surfaces (SaS) method is proposed. The SaS formulation is based on choosing inside the shell N SaS parallel to the middle surface in order to introduce the displacements and electric potentials of these surfaces as fundamental shell unknowns. Such choice of unknowns with the use of Lagrange polynomials of degree N-1 in through-thickness interpolations of the displacements, strains, electric potential, electric field and material properties leads to a robust FGM piezoelectric shell formulation. The inner SaS are located at Chebyshev polynomial nodes that make it possible to minimize uniformly the error due to Lagrange interpolation. To implement the effective analytical integration throughout the element, the extended assumed natural strain (ANS) method is employed. As a result, the piezoelectric four-node solid-shell element exhibits a superior performance in the case of coarse meshes. To circumvent shear and membrane locking, the hybrid stress-strain solid-shell formulation via the Hu-Washizu variational principle is employed. The developed solid-shell element could be useful for the 3D stress analysis of FGMstructures because the SaS method allows obtaining the solutions with a prescribed accuracy, which asymptotically approach the exact solutions of electroelasticity as the number of SaS tends to infinity.
机译:提出了一种基于采样面法的混合混合功能梯度材料压电四节点固体壳单元。 SaS公式基于在平行于中间表面的壳体内部选择N SaS,以引入这些表面的位移和电势作为基本壳体未知数。通过在位移,应变,电势,电场和材料特性的全厚度插值中使用N-1级的拉格朗日多项式来进行此类未知数选择,从而获得了可靠的FGM压电外壳配方。内部SaS位于Chebyshev多项式节点处,这使得均匀地最小化由于Lagrange插值引起的误差成为可能。为了对整个元素进行有效的分析积分,采用了扩展假定自然应变(ANS)方法。结果,在粗网孔的情况下,压电四节点固体壳元件表现出优异的性能。为了规避剪切和膜锁定,采用了基于Hu-Washizu变分原理的混合应力应变固体壳配方。由于SaS方法允许以规定的精度获得溶液,因此随着SaS数量趋于无穷大,渐近逼近精确的电弹性解,因此开发的固体壳单元可用于FGM结构的3D应力分析。

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