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‘Solid-shell' elements with linear and quadratic shape functions at large deformations with nearly incompressible materials

机译:具有几乎不可压缩的材料的大变形时,具有线性和二次形状的“实心”单元功能

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Efficient computation in sheet metal forming or car crash analysis is obtained only by using shell elements instead of fully three-dimensional solid elements. However, many requirements in the investigations in particular when looking at edges and special situations like large stretching and bending with small radii strains and stresses in thickness direction and general three-dimensional material laws -- cannot be provided by shell elements even if they are based on the well- known degeneration concept. Therefore in Hauptman [Int. J. Numer. Meth. Engng. 42 (1998) 49] among others as Schoop [Ingenieur-Archiv 56 (1986) 427]; Parisch [Int. J. Numer. Meth. Engng. 38 (1995) 1855], Miehe [Comp. Meth. Appl. Mech. Engng. 155 (1998) 193] a so-called ‘Solid-Shell' formulation which is described briefly in the following section, was proposed. It must be noted also that in the solid-shell formulation the use of rotational degrees of freedom can be avoided and it is based instead on displacement degrees of freedom belonging to the upper and lower shell surfaces. Thus a simple combination with solid elements is obtained and no problems concerning large rigid body motions appear.
机译:仅通过使用壳单元而不是完全三维实体单元,即可获得钣金成形或车祸分析中的有效计算。但是,研究中的许多要求,特别是在观察边缘和特殊情况时,例如较大的拉伸和弯曲,较小的半径应变和厚度方向上的应力以及一般的三维材料定律,即使壳单元是基于壳体的,也无法满足这些要求基于著名的退化概念。因此在Hauptman [Int。 J.纽默方法g。 42(1998)49]作为Schoop [Ingenieur-Archiv 56(1986)427];教区[国际J.纽默方法g。 38(1995)1855],Miehe [比较。方法应用机甲g。 155(1998)193]提出了一种所谓的“固体-壳”公式,下面将对此进行简要描述。还必须指出的是,在固体壳配方中,可以避免使用旋转自由度,而是基于属于上下壳表面的位移自由度。因此,获得了与固体元件的简单组合,并且没有出现关于大的刚体运动的问题。

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