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Internal Heating Behavior of Flexible Matrix Composite Driveshafts

机译:柔性矩阵复合驱动轴的内部加热行为

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A thermomechanical model for predicting the steady state temperature of a rotating, misaligned composite shaft is developed, in which it is assumed that all strain energy loss caused by internal damping is converted into heat. The composite shaft is modeled as a laminated, anisotropic tube subjected to cyclic pure bending loads. The temperature profile through the radius of the shaft is modeled using the finite difference method. Inputs to the model are the ply configuration of the shaft, shaft misalignment strain, shaft rotation speed, and lamina elastic and damping properties. A lab-scale shaft spin testing stand was built to validate the self-heating model. Good agreement is shown between the model predictions and experiment results. It is found the temperature increase caused by self-heating during the misaligned rotation increases with increasing shaft speed and, more significantly, misalignment strain. It is also found that the self-heating of a FMC shaft can be less significant than that of an equivalent rigid matrix composite shaft despite the fact that the former has a much higher internal damping than the latter. This model can be valuable in the selection of constituent materials for FMCs and also in the design of FMC shafts.
机译:开发了一种用于预测旋转的稳态温度的热机械模型,开发了一种,其中假设由内部阻尼引起的所有应变能量损失转化为热量。复合轴被建模为层压的各向异性管,经受循环纯弯曲载荷。通过轴的半径的温度曲线使用有限差分法进行建模。模型的输入是轴,轴未对准应变,轴转速和椎板弹性和阻尼性能的帘布层。建立了实验室轴旋转测试支架以验证自加热模型。在模型预测和实验结果之间显示了良好的一致性。发现在未对准的旋转期间通过自加热引起的温度升高随着轴速度的增加而增加,更显着,更显着,不对准的应变。还发现FMC轴的自加热可以不如相当于相同的刚性矩阵复合轴的显着显着,尽管前者具有比后者更高的内部阻尼。该模型在选择FMCS的组成材料和FMC轴的设计中可以是有价值的。

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