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首页> 外文期刊>Journal of Applied Mechanics: Transactions of the ASME >Plane Thermal Stress Analysis of an Orthotropic Cylinder Subjected to an Arbitrary, Transient, Asymmetric Temperature Distribution
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Plane Thermal Stress Analysis of an Orthotropic Cylinder Subjected to an Arbitrary, Transient, Asymmetric Temperature Distribution

机译:任意瞬态不对称温度分布作用下正交各向异性圆柱体的平面热应力分析

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摘要

A closed-form, analytical solution is presented for the transient, plane thermal stress analysis of a linearly elastic, homogeneously orthotropic hollow cylinder subjected to an arbitrary temperature distribution. The thermoelastic solution, obtained by a stress function approach, can be used as the basis for the corresponding thermoviscoelastic solution for thermorheologically simple viscoelastic materials by invoking the viscoelastic Correspondence Principle. This solution can also be directly extended to the class of weakly inhomogeneously orthotropic cylinders using perturbation methods. The transient asymmetric temperature field is characterized by Fourier-Bassel eigenfunction expansions. The analytically derived stress function satisfies a linear, fourth-order inhomogeneous partial differential equation and the Cesaro integral conditions, which assure the existence of a single-valued displacement field. The corresponding thermal stresses are then computed by the stress-stress function relations. A key feature of the analytical solution is that the hoop, radial, and shear stresses, due to the transient arbitrary temperature distribution, are expressed explicitly in terms of the scalar temperature field. A polymer composite example is presented to validate the current method and to qualitatively illustrate the distribution of thermal stresses due to an asymmetric temperature distribution. Numerical results are presented for the thermally driven hoop, radial and (interlaminar) shear stresses in a hollow, hoop-wound glass/epoxy cylinder. This analysis demonstrates that potentially debilitating interlaminer shear stresses can develop in laminated composites when subjected to an even modest transient asymmetric temperature distribution. Their magnitudes depend on the severity of the spatial and temporal thermal gradients in the circumferential direction. While still relatively low compared to the hoop stress, the shear stress may cause thermal failure due to the typically low interlaminar shear strengths of laminated composite materials.
机译:提出了一种封闭形式的解析解决方案,用于对承受任意温度分布的线性弹性均质正交异性空心圆柱体进行瞬态平面热应力分析。通过调用粘弹性对应原理,可以将通过应力函数方法获得的热弹性溶液用作相应的热粘弹性材料的热粘弹性溶液的基础。该解决方案还可以使用摄动方法直接扩展到弱非均质正交各向异性圆柱体的类别。瞬态不对称温度场的特征在于傅里叶-巴塞尔特征函数展开。解析得出的应力函数满足线性,四阶不均匀偏微分方程和Cesaro积分条件,从而确保了单值位移场的存在。然后通过应力-应力函数关系来计算相应的热应力。分析解决方案的一个关键特征是,由于瞬时任意温度分布,环向应力,径向应力和剪切应力均以标量温度场的形式明确表示。给出了一个聚合物复合材料实例,以验证当前方法并定性说明由于温度分布不对称而引起的热应力分布。数值结果显示了空心绕制玻璃/环氧树脂圆筒中热驱动的环向,径向和(层间)剪切应力。该分析表明,当经受均匀适度的瞬态不对称温度分布时,层压复合材料会产生潜在的破坏性层间剪切应力。它们的大小取决于周向上的空间和时间热梯度的严重性。尽管与环向应力相比仍相对较低,但由于层压复合材料的层间剪切强度通常较低,因此剪切应力可能导致热破坏。

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