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An efficient axisymmetric hybrid-stress-displacement formulation for compressibleearly incompressible material

机译:用于可压缩/几乎不可压缩材料的有效轴对称混合应力位移公式

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摘要

Based on Spilker's concept, an efficient four-noded quadrilateral hybrid-stress-displacement axisymmetric element is developed for mechanical, thermal and body force loads. The present finite element has several advantages compared to the familiar displacement formulation for examining the structural behavior of compressibleearly incompressible solid rocket motor propellant and insulation materials, under various loading environments. Several structural problems are solved to demonstrate the efficiency of the present method, by comparing the results with those obtained from the existing analytical and other finite element solutions based on displacement formulation, using the MARC software package. The Hermann element in MARC has mean pressure as one of the nodal degrees of freedom with the other two degrees of freedom tied at the interface. The present element has only two degrees of freedom per node and there is no necessity of tying. Also, the present element gives accurate results even with a coarse mesh compared to MARC.
机译:基于Spilker的概念,开发了一种有效的四节点四边形混合应力位移轴对称元件,用于机械,热和体力载荷。与在各种载荷环境下检查可压缩/几乎不可压缩的固体火箭发动机推进剂和绝热材料的结构性能相比,与熟悉的位移公式相比,本发明的有限元具有多个优点。通过使用MARC软件包,将结果与从现有的基于位移公式的分析和其他有限元解决方案中获得的结果进行比较,从而解决了一些结构性问题,以证明本方法的有效性。 MARC中的Hermann元素具有平均压力,这是节点自由度之一,而其他两个自由度则束缚在界面上。本单元的每个节点只有两个自由度,并且不需要捆绑。此外,与MARC相比,即使使用粗大网格,本元素也可以提供准确的结果。

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