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Finite element based vibration and stability analysis of functionally graded rotating shaft system under thermal environment

机译:热环境下功能梯度转轴系统的有限元振动和稳定性分析

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摘要

The present work deals with the study of vibration and stability analyses of functionally graded spinning shaft system under thermal environment using three nodded beam element based on TBT. Temperature field is assumed to be a uniform distribution over the shaft surface and varied in radial direction only. Material properties are assumed to be temperature dependent and graded in radial direction according to power law gradation. In the present analysis, the mixture of Aluminum Oxide and Stainless Steel is considered as FG material where metal contain is decreasing towards the outer diameter of shaft. The FG shafts are modeled as a Timoshenko beam by mounting discrete isotropic rigid disks on it and supported by flexible bearings that are modeled with viscous dampers and springs. Based on FOSD beam theory with transverse shear deformation, rotary inertia, gyroscopic effect, strain and kinetic energy of shafts are derived by adopting three-dimensional constitutive relations of material. The derivation of governing equation of motion is obtained using Hamilton’s principle and solutions are obtained by three-node FE with four DOF per node. In this work the effects of both internal damping have also been incorporated in the finite element model. A complete code has been developed using MATLAB program and validated with the existing results available in literatures. The analysis of numerical results reveals that temperature field and power law gradient index have a significance role on the materials properties of FG shaft. Various results have also been obtained such as Campbell diagram, stability speed limit, damping ratio and time responses for FG shaft due unbalance masses and also compared with conventional steel shaft. It has been found that the responses of the FG spinning shaft are significantly influenced by radial thickness, power law gradient index and internal damping and temperature dependent material properties.
机译:本工作利用基于TBT的三点梁单元对热环境下功能梯度纺丝轴系统的振动和稳定性分析进行研究。假定温度场在轴表面上均匀分布,并且仅在径向方向上变化。假定材料属性与温度有关,并根据幂定律渐变在径向上进行渐变。在目前的分析中,氧化铝和不锈钢的混合物被认为是FG材料,其中金属含量朝着轴的外径减小。 FG轴通过在其上安装离散的各向同性刚性圆盘而建模为Timoshenko梁,并由以粘性阻尼器和弹簧为模型的柔性轴承支撑。基于具有横向剪切变形的FOSD梁理论,通过采用材料的三维本构关系,得出轴的转动惯量,陀螺效应,应变和动能。使用汉密尔顿原理获得运动控制方程的推导,并通过每个节点具有四个自由度的三节点有限元获得解。在这项工作中,两个内部阻尼的影响也都已纳入有限元模型中。已使用MATLAB程序开发了完整的代码,并已使用文献中的现有结果进行了验证。数值结果分析表明,温度场和幂律梯度指数对FG轴的材料性能具有重要作用。还获得了各种结果,例如坎贝尔图,稳定速度极限,阻尼比和由于不平衡质量导致的FG轴的时间响应,并且还与常规钢轴进行了比较。已经发现,FG纺丝轴的响应受到径向厚度,幂律梯度指数以及内部阻尼和温度相关材料性能的显着影响。

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    Gayen Debabrata;

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