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Hygrothermal Analysis of Laminated Composite Skew Conoids

机译:层合复合斜面类固醇的湿热分析

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摘要

The present paper is the first study on the hygrothermal analysis (i.e., effect of temperature and moisture loadings) of laminated composite skew conoids with reasonable depth and thickness. In order to solve the hygrothermal problem of laminated composite skew conoids, the cubic variation in displacement field, along with cross curvature effects of the shell, were considered. In the present analysis, the shear correction factor is not needed due to the parabolic variation of transverse shear strain. The zero transverse shear stress conditions at the top and bottom of the shell were imposed in the mathematical model. The novelty of our model is reflected by the simultaneous addition of twist curvature in the strain field, as well as the curvature in the displacement field allowing the reasonably thick and deep laminated composite rhombic conoid. The conoid behavior differs from the usual shells, like cylindrical or spherical ones, due to its inherent twist curvature with the complex geometry and different location of maximum deflection. The finite element (FE) implementation of the present realistic mathematical model was carried out using a nine-noded curved isoparametric element with seven unknowns at each node. The C0 FE implementation of the present mathematical model was done and coded in FORTRAN. The present model results were compared and found in good agreement with other solutions published in the literature. Hygrothermal analysis was performed for skew conoids having a different skew angle, temperature, moisture concentration, curvatures, ply orientation, thickness ratio, and boundary conditions.
机译:本文是对具有合理深度和厚度的层状复合斜形圆锥体进行湿热分析(即温度和水分负荷的影响)的第一项研究。为了解决叠层复合斜锥面的湿热问题,考虑了位移场的立方变化以及壳体的交叉曲率效应。在本分析中,由于横向剪切应变的抛物线变化,因此不需要剪切校正因子。在数学模型中施加了壳体顶部和底部的零横向剪切应力条件。我们模型的新颖性体现在应变场中扭曲曲率的同时增加,以及位移场中曲率的增加,从而使得叠合菱形圆锥体的厚度合理而深。由于其固有的扭曲曲率,复杂的几何形状和最大挠度的不同位置,因此圆锥体的行为不同于通常的壳(如圆柱体或球形壳)。本现实数学模型的有限元(FE)实现是使用九节点弯曲等参元素在每个节点处具有七个未知数进行的。本数学模型的C 0 FE实现已完成,并在FORTRAN中进行了编码。比较了当前模型的结果,发现与文献中发布的其他解决方案非常吻合。对具有不同偏斜角,温度,水分浓度,曲率,帘布层取向,厚度比和边界条件的偏斜类固醇进行了湿热分析。

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