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Material distribution optimization of functionally graded arch subjected to external pressure under temperature rise field

机译:温升场下外压作用下功能梯度拱的材料分布优化

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This paper investigates the material spatial redistribution optimization of the conventional functionally graded material (CFGM) arch. An inverted functionally graded material (IFGM) arch is developed to promote the critical buckling pressure of the heated arch without variation of the volume portion of the material constituents of the CFGM arch. Based on the classical thin-walled arch theories and admissible displacement functions, the total potential energy function of the IFGM arch is obtained. By variation of this energy function, the non-linear bifurcation equilibrium equations are established, and the analytical prediction of the critical buckling pressure is obtained for the IFGM arch. Subsequently, a two-dimensional (2D) finite element model (FEM) is established to trace the pressure-displacement equilibrium paths to obtain the maximum pressure (critical buckling pressure). The numerical results show very close agreement with the present analytical solutions. Furthermore, the IFGM arch shows a substantial increase of the critical buckling pressure compared with the CFGM arch. In addition, the critical buckling pressure of the heated homogeneous arch is compared with the available other closed-form expressions. Finally, to further understand the stability of the pressurized IFGM arch under temperature rise field, parametric studies are performed to examine the effects of the various involved parameters, such as the volume fraction exponent and temperature rise on the bending moment, the hoop force, the hoop strain and stress, the radial and hoop displacement through the arch span.
机译:本文研究了常规功能梯度材料(CFGM)拱的材料空间重新分布优化。开发了倒置功能梯度材料(IFGM)拱,以提高加热拱的临界屈曲压力,而不会改变CFGM拱的材料成分的体积部分。基于经典的薄壁拱理论和容许位移函数,获得了IFGM拱的总势能函数。通过改变该能量函数,建立了非线性分叉平衡方程,并获得了IFGM拱的临界屈曲压力的解析预测。随后,建立二维(2D)有限元模型(FEM)以跟踪压力-位移平衡路径以获得最大压力(临界屈曲压力)。数值结果表明与目前的解析解非常吻合。此外,与CFGM拱形件相比,IFGM拱形件的临界屈曲压力显着增加。此外,将加热的均质拱的临界屈曲压力与可用的其他闭合形式进行了比较。最后,为进一步了解加压IFGM拱在温度上升场下的稳定性,进行了参数研究,以检验各种相关参数的影响,例如体积分数指数和温度上升对弯矩,环向力,箍应变和应力,通过拱跨度的径向和箍位移。

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