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Investigation on interlaminar shear stresses in laminated composite beam under thermal and mechanical loading

机译:机械载荷作用下层合复合材料层间层间剪应力的研究

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In the present study, the combined effects of thermal and mechanical loadings on the interlaminar shear stresses of both moderately thin and thick composite laminated beams are numerically analyzed. The finite element modelling of laminated composite beams and analysis of interlaminar stresses are performed using the commercially available software package MSC NASTRAN/PATRAN. The validity of the finite element analysis (FEA) is demonstrated by comparing the experimental test results obtained due to mechanical loadings under the influence of thermal environment with those derived using the present FEA. Various parametric studies are also performed to investigate the effect of thermal loading on interlaminar stresses generated in symmetric, anti-symmetric, asymmetric, unidirectional, cross-ply, and balanced composite laminated beams of different stacking sequences with identical mechanical loadings and various boundary conditions. It is shown that the elevated thermal environment lead to higher interlaminar shear stresses varying with the stacking sequence, length to thickness ratio, ply orientations under identical mechanical loading and boundary conditions of the composite laminated beams. It is realized that the magnitude of the interlaminar stresses along xz plane is always much higher than those of along yz plane irrespective of the ply-orientation, length to thickness ratios and boundary conditions of the composite laminated beams. It is also observed that the effect of thermal environment on the interlaminar shear stresses in carbon-epoxy fiber reinforced composite laminated beams are increasing in the order of symmetric cross-ply laminate, unidirectional laminate, asymmetric cross-ply laminate and anti-symmetric laminate. The interlaminar shear stresses are higher in thinner composite laminated beams compared to that in thicker composite laminated beams under all environmental temperatures irrespective of the laminate stacking sequence, ply-orientation and boundary conditions.
机译:在本研究中,数值分析了热载荷和机械载荷对中,薄和厚复合层合梁层间剪应力的综合影响。层压复合材料梁的有限元建模和层间应力分析是使用商用软件包MSC NASTRAN / PATRAN进行的。有限元分析(FEA)的有效性通过将在热环境影响下由于机械载荷而获得的实验测试结果与使用本FEA得出的结果进行比较来证明。还进行了各种参数研究,以研究热负荷对在具有相同机械负荷和各种边界条件的不同堆叠顺序的对称,反对称,不对称,单向,交叉和平衡的复合层合梁中产生的层间应力的影响。结果表明,在相同的机械载荷和边界条件下,高温环境导致较高的层间剪切应力随堆叠顺序,长度与厚度比,层取向的变化而变化。已经认识到,不管层合取向,长度与厚度之比和边界条件如何,沿xz平面的层间应力的大小总是比沿yz平面的层间应力的大小高得多。还观察到,热环境对碳-环氧纤维增强复合层合梁的层间剪切应力的影响按对称交叉层合板,单向层合板,不对称交叉层合板和反对称层合板的顺序增加。在所有环境温度下,不管层压板的堆叠顺序,层定向和边界条件如何,较薄的复合层压梁的层间剪切应力均比较厚的复合层压梁的层间剪切应力高。

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