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Analysis and optimization of dynamically loaded porous metal sliding bearings under conditions of elastohydrodynamic lubrication

机译:弹性流体动力润滑条件下动载荷多孔金属滑动轴承的分析与优化

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Purpose - This paper aims to develop a simulating model of a journal porous metal bearing under elastohydrodynamic conditions and combined (radial, friction and thermal) load distribution and to carry out structural optimization. Design/methodology/approach - The structure analysis is carried out for each kind of load separately and for the combined load distribution of the bearing, where a dynamically loaded porous metal bearing is simulated. This simulating model is developed by finite elements method using the structure analysis module of the CATIA V5 software. Further, a parameter optimization of a porous metal bearing is presented considering the elastic deformations of the bearing shell. Findings - It is revealed that the bearing, even at points with maximum displacements, could not reach the mounting clearance value during its operational life. Relatively small bearing dimensions produce very high values of eigenfrequency response (over 150 kHz) and common dynamic loads met in all sorts of sliding bearing are not dangerous for bearing damage compared with static loads. In the stage of structural optimization based on the correlation between stress and geometric bearing parameters like wall thickness and outer diameter, the influence of finite element dimension on calculated results can be also analyzed and a proper choice of the latter is achieved. Research limitations/implications - The present porous bearing optimization model with the aid of CATIA V5 module for optimum design uses only single objective optimization. For a complete optimum design a multi-objective optimization has to be carried out. Practical implications - The analysis under dynamic load conditions proved that relatively small dimensions of bearing commonly used in micro technique and precision mechanics result in extended safe and reliable operation. Originality/value - This paper provides a methodology for bearing stress and deformation analysis in the elastic range and on the basis of this analysis it is possible to develop an optimization model for porous bearings offering help to designers for the selection of optimal bearing dimensions considering the bearing load caused by dynamic radial force, friction and temperature variation.
机译:目的-本文旨在建立一种在弹性流体动力条件下并结合(径向,摩擦和热)载荷分布的轴颈多孔金属轴承的仿真模型,并进行结构优化。设计/方法/方法-对每种载荷以及轴承的组合载荷分布分别进行结构分析,在此模拟了动态载荷的多孔金属轴承。该仿真模型是使用CATIA V5软件的结构分析模块通过有限元方法开发的。此外,考虑到轴承壳的弹性变形,提出了多孔金属轴承的参数优化。发现-发现轴承,即使在最大位移的点,在其使用寿命期间也无法达到安装游隙值。相对较小的轴承尺寸会产生非常高的固有频率响应值(超过150 kHz),与静态负载相比,各种滑动轴承中遇到的常见动态负载对轴承损坏没有危险。在基于应力与壁厚和外径等几何轴承参数之间的相关性的结构优化阶段,还可以分析有限元尺寸对计算结果的影响,并适当选择后者。研究局限/意义-当前的多孔轴承优化模型借助CATIA V5模块进行优化设计,仅使用单一目标优化。为了完成最佳设计,必须执行多目标优化。实际意义-在动态载荷条件下的分析证明,微观技术和精密机械中常用的轴承尺寸较小,因此可以延长安全性和可靠性。原创性/价值-本文提供了一种在弹性范围内进行轴承应力和变形分析的方法,并在此分析的基础上,有可能开发出一种多孔轴承的优化模型,为设计人员在考虑轴承尺寸的情况下选择最佳轴承尺寸提供帮助。动态径向力,摩擦和温度变化引起的轴承载荷。

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