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Optimization of dynamic behaviors of an orthotropic composite shell subjected to hygrothermal environment

机译:湿热环境下正交各向异性复合材料壳动力特性的优化

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Dynamic responses of an orthotropic plate subjected to hygrothermal environments have been optimized. Non-gradient evolutionary genetic algorithm (GA) is employed to optimize dynamic behaviors of orthotropic composite. Presented optimization scheme, whose approach is advantageously conducted in conjunction with FEA, involves controlling locally fiber directions from element to element. The geometry is discretized into specially developed 3D shell composite elements which are able to handle hygrothermal effects of our own design. Shell, rather than plate, elements enable one to reliable account for features such as membrane and bending stress variations through the plate. By using the specially developed shell element, dynamic deflection and natural frequency are minimized by optimizing design variables which are local fiber directions within discrete finite elements. Since fiber orientations are optimized locally within a plate, the technique provides more than just a favorable ply angle of fiber reinforced rectilinearly orthotropic plate. Results presented, not available so far, could be useful to ascertain the effects of locally varying fiber direction on dynamic analysis under temperature and humidity boundary conditions.
机译:正交异性板在湿热环境下的动态响应已得到优化。采用非梯度进化遗传算法(GA)优化正交异性复合材料的动力学行为。提出的优化方案,其方法有利地与FEA结合进行,涉及控制从一个元素到另一个元素的局部纤维方向。几何图形离散化为专门开发的3D外壳复合元素,这些元素能够处理我们自己设计的潮热效应。壳而不是板,使人们能够可靠地解释诸如板中的膜和弯曲应力变化等特征。通过使用专门开发的壳单元,通过优化设计变量将动态挠度和固有频率降到最低,这些设计变量是离散有限元内的局部纤维方向。由于纤维定向在板内局部进行了优化,因此该技术不仅提供了纤维增强的直线正交各向异性板的有利的铺层角度。提出的结果(目前尚无法获得)可能有助于确定局部纤维方向在温度和湿度边界条件下对动态分析的影响。

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