A Novel Optimization Strategy of Bearing Geometry with a Length to Diameter Ratio of 1.25 under Severe Operating Conditions Using Taguchi Method

Q2 Engineering
Designs Pub Date : 2023-10-26 DOI:10.3390/designs7060121
Hazim U. Jamali, M. N. Mohammed, H. S. S. Aljibori, Muhsin Jaber Jweeg, Oday I. Abdullah
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引用次数: 0

Abstract

Robust and well-designed rotor-bearing systems ensure safe operation and a high level of reliability under severe operating conditions. A deviation in the shaft axis with respect to the bearing longitudinal axis represents one of the most unavoidable problems in bearing systems. This deviation results from installation errors, manufacturing errors, shaft deformation under heavy loads, bearing wear, and many other causes. Each of these deviation sources has its negative consequences on the designed characteristics of the system. This work deals with the geometrical design of a journal bearing using three forms of profiles (linear (n=1), quadratic n=2 and cubic (n=3) profiles) in order to enhance bearing performance despite the presence of the inevitable shaft deviation. In addition, a wide range of bearing profile parameters are considered in the analysis to optimize the bearing profile based on the use of the Taguchi method. A general form of shaft deviation is considered to account for both horizontal and vertical deviations. A numerical solution is obtained using the finite difference method. The results show that all three suggested forms of bearing profiles elevate the film thickness significantly and also reduce the friction coefficient, but with different effects on the maximum pressure values. The Taguchi method illustrates that the optimal geometrical design parameters are the quadratic profile and the modification of one-fifth of the bearing width from both sides at a height of just less than half the radial clearance (0.4 C) at the bearing edges. These values give the best combination of the considered main bearing characteristics: the minimum film thickness, coefficient of friction, and maximum pressure. The results show that the minimum film thickness is increased by 184%, the maximum pressure is reduced by 15.1% and the friction coefficient is decreased by 6.4% due to the use of the suggested design. The outcome of this work represents an important enhancement step for the rotor bearing performance to work safely with high reliability under severe shaft deviation levels. This can be implied at the design stage of the bearing, which requires prior knowledge about the operating conditions in order to have better estimation for the levels of shaft deviation.
基于田口法的苛刻工况下长径比为1.25的轴承几何优化策略
坚固和精心设计的转子轴承系统确保在恶劣的操作条件下安全运行和高水平的可靠性。轴轴相对于轴承纵轴的偏差是轴承系统中最不可避免的问题之一。这种偏差是由安装错误、制造错误、重载荷下的轴变形、轴承磨损和许多其他原因造成的。每一种偏差源都会对系统的设计特性产生负面影响。这项工作涉及使用三种形式的轮廓(线性(n=1),二次n=2和三次(n=3)轮廓)的轴颈轴承的几何设计,以提高轴承性能,尽管存在不可避免的轴偏差。此外,在分析中考虑了广泛的轴承轮廓参数,以优化基于田口方法的轴承轮廓。一般形式的轴偏差被认为可以解释水平和垂直偏差。利用有限差分法得到了数值解。结果表明,三种轴承型线均能显著提高膜厚,降低摩擦系数,但对最大压力值的影响不同。田口法表明,最佳的几何设计参数是二次型轮廓和从两侧修改轴承宽度的五分之一,高度小于轴承边缘径向间隙的一半(0.4 C)。这些值给出了考虑的主要轴承特性的最佳组合:最小膜厚度,摩擦系数和最大压力。结果表明:采用该设计后,膜层最小厚度增加了184%,最大压力降低了15.1%,摩擦系数降低了6.4%。研究结果为转子轴承在严重轴偏工况下安全、可靠地工作迈出了重要的一步。这可以隐含在轴承的设计阶段,这需要关于运行条件的先验知识,以便对轴偏差的水平有更好的估计。
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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来源期刊
Designs
Designs Engineering-Engineering (miscellaneous)
CiteScore
3.90
自引率
0.00%
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审稿时长
11 weeks
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