On the modeling of boundary conditions for determining the critical speeds of rotation of rotors

O. Trubayev, A. Larin
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Abstract

The article is devoted to the definition of boundary conditions that allow achieving adequate results when calculating the critical speeds of rotation of rotors based on finite element models. Experimental determination of the frequencies of free vibrations of a laboratory rotor on ball bearings was carried out using a vibration measuring complex developed by the authors. Numerical studies of the free vibrations of a laboratory rotor and a cylindrical pipe with a wall thickness to length ratio of 1/10 were performed on the basis of a three-dimensional finite element model under various boundary conditions. Movable and fixed cylindrical hinges corresponding to floating bearings are used as supports in the calculation scheme of the laboratory rotor. Due to the fact that the dimensions of the bearings along the length of the shaft are small compared to the total length, it is assumed in the calculation model that the shaft is hinged along the edges at separate points of one circle on each bearing. Shaft mounting options at two, four and eight points are considered. The options for fastening a cylindrical pipe in the extreme sections at two points, a quarter of a circle and a full circle are considered. Comparison of experimental and numerical results, solutions obtained analytically and on the basis of the finite element method is carried out. An analysis of the modes of natural vibrations showed that with various options for fixing a cylindrical pipe, vibration modes arise associated with the deformation of the pipe as a shell. For example, when fixing a pipe along a quarter of a circle, among the forms №1-№10, only the second corresponds to the deformation of the pipe as a beam. The results of the study of free vibrations of a laboratory rotor show that the best option for boundary conditions, which makes it possible to approach the results of the experiment, is fastening on each bearing at two points located on the neutral line of the cross section when the rotor is bent. Numerical studies of the eigen frequencies of a cylindrical pipe show that it is with this type of boundary conditions that one can obtain results that are closest to the analytical solution.
转子临界转速边界条件的建模研究
本文致力于定义边界条件,使在基于有限元模型计算转子临界转速时能够获得足够的结果。利用自行研制的振动测量装置,对实验用滚珠轴承转子的自由振动频率进行了实验测定。基于三维有限元模型,对实验室转子和壁厚长比为1/10的圆柱管在不同边界条件下的自由振动进行了数值研究。在实验室转子的计算方案中,采用与浮动轴承相对应的活动和固定圆柱铰链作为支撑。由于轴承沿轴长度的尺寸与总长度相比较小,因此在计算模型中假设轴沿每个轴承上一个圆的不同点的边缘铰接。轴安装选项在两个,四个和八个点被考虑。考虑了在两个点、四分之一圆和全圆处紧固圆柱形管的选择。对实验结果与数值结果、解析解和基于有限元法的解进行了比较。对固有振动模态的分析表明,在固定圆柱管的各种选择下,振动模态的产生与管道作为壳体的变形有关。例如,当沿四分之一圆固定一根管子时,在形式№1-№10中,只有第二种形式对应于管子作为梁的变形。实验室转子自由振动的研究结果表明,边界条件的最佳选择是在转子弯曲时,在位于横截面中性线上的两个点上紧固每个轴承,这使得有可能接近实验结果。对圆柱管本征频率的数值研究表明,在这种边界条件下,可以得到最接近解析解的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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