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Process-Induced Stress and Deformation of Variable-Stiffness Composite Cylinders During Curing

机译:硬化过程中可变刚度复合圆柱的过程诱导应力和变形

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摘要

Predicting and controlling process-induced deformation of composites during cure can play a significant role in ensuring the accuracy of manufacture and assembly of composite structures. In this paper the parametric investigation on the process-induced stress and deformation of variable-stiffness composite cylinders was presented. The Kamal model was used to simulate the cure kinetic for carbon/epoxy prepreg. A cure hardening instantaneously linear elastic (CHILE) constitutive model was adopted to determine the modulus of matrix resin. Self-consistent micro-mechanical models were employed to represent the mechanical properties and behaviors of the lamina. The three-dimensional model of a variable-stiffness composite cylinder was established using a linear fiber angle variation. The influence of the inner radius, the fiber end angle and the thickness on the stress and deformation of the variable-stiffness cylinder was evaluated using ABAQUS. The results show that the maximum stress increases with increases of the inner radius, the fiber end angle and the thickness. The inner radius of the cylinder have little effect on deformation, the deformation increases as the fiber end angle and the thickness increases. The present model and method can provide a useful tool for prediction of variable-stiffness composite cylinders.
机译:预测和控制固化过程中复合材料的过程诱导变形可以在确保复合材料结构的制造和组装的准确性方面发挥重要作用。本文对变刚度复合材料圆柱的过程引起的应力和变形进行了参数研究。 Kamal模型用于模拟碳/环氧预浸料的固化动力学。采用固化硬化瞬时线性弹性本构模型确定基体树脂的模量。使用自洽的微力学模型来表示薄层的力学性能和行为。利用线性纤维角度变化建立了可变刚度复合材料圆柱体的三维模型。使用ABAQUS评估了内半径,纤维端角和厚度对可变刚度圆柱体的应力和变形的影响。结果表明,最大应力随着内半径,纤维端角和厚度的增加而增加。圆柱的内半径对变形几乎没有影响,变形随着纤维端角和厚度的增加而增加。本模型和方法可以为预测变刚度复合材料圆柱体提供有用的工具。

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