Investigation of the stress-strain state of a hollow cylinder with a coating based on the gradient model of thermoelasticity

Q3 Materials Science
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引用次数: 1

Abstract

The study of the stress-strain state of a thermoelastic hollow cylinder with a homogeneous coating is carried out taking into account the scale effects. Aifantis' one-parameter gradient model is used to account for scale effects. Equilibrium equations and boundary conditions for a composite hollow thermoelastic cylinder are obtained on the basis of the Lagrange variational principle. In comparison with the classical formulation of the problem, additional boundary conditions and conjugation conditions are set for moment stresses and displacement gradients. The dimensionlessness of the task of thermoelasticity has been carried out. Solving the problem of uncoupled thermoelasticity begins with finding the radial temperature distribution of a layered cylinder on the basis of solving the problem of heat conduction in the classical formulation. The solution of the problem in displacements is presented as a sum of solutions in the classical formulation of the problem and additional boundary layer terms found on the basis of the asymptotic properties of the modified Bessel functions. Simplified analytical expressions are obtained for finding radial displacements, radial and circumferential Cauchy stresses, nonzero components of the tensor of moment and total stresses. On specific examples, calculations of the radial distribution of displacements and stresses of a composite cylinder in the case of both mechanical and thermal loading are carried out. The limits of applicability of the asymptotic solution of the problem are investigated. The difference between the radial distribution of displacements and stresses found on the basis of solutions to the problem in the classical formulation and in the gradient formulation is shown. It was found that the Cauchy radial stresses experience a jump at the boundary of the cylinder and the coating, which is explained by the continuity of radial displacements and their first derivatives. The components of the moment stress tensor either take on peak values or experience a jump at the interface. The moment stresses are proportional to the square of the gradient parameter, at small values of which they have values that are much less than the values of the total stresses. With an increase in the dimensionless scale parameter, the values of radial displacements and total circumferential stresses decrease, but moment stresses increase.
基于热弹性梯度模型的涂层空心圆柱体应力-应变状态研究
考虑尺度效应,对具有均匀涂层的热弹性空心圆柱体的应力-应变状态进行了研究。Aifantis的单参数梯度模型用于解释尺度效应。基于拉格朗日变分原理,得到了复合材料空心热弹性圆柱的平衡方程和边界条件。与该问题的经典公式相比,为力矩应力和位移梯度设置了额外的边界条件和共轭条件。实现了热弹性任务的无量纲化。求解非耦合热弹性问题首先要在求解经典公式中的热传导问题的基础上,求出层状圆柱体的径向温度分布。位移问题的解被表示为问题的经典公式中的解和基于修正贝塞尔函数的渐近性质找到的附加边界层项的和。得到了求径向位移、径向和周向柯西应力、力矩张量的非零分量和总应力的简化解析表达式。在具体的例子中,计算了复合材料圆柱体在机械和热载荷情况下的位移和应力的径向分布。研究了该问题渐近解的适用性极限。示出了基于经典公式和梯度公式中的问题的解所发现的位移和应力的径向分布之间的差异。研究发现,柯西径向应力在圆柱体和涂层的边界处发生跳跃,这可以用径向位移的连续性及其一阶导数来解释。力矩应力张量的分量要么呈现峰值,要么在界面处经历跳跃。力矩应力与梯度参数的平方成比例,在较小的值下,其值远小于总应力的值。随着无量纲尺度参数的增加,径向位移和总周向应力的值减小,但力矩应力增大。
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来源期刊
PNRPU Mechanics Bulletin
PNRPU Mechanics Bulletin Materials Science-Materials Science (miscellaneous)
CiteScore
1.10
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