Journal Bearing With Controllable Radial Clearance

Shahrbanoo Farkhondeh Biabnavi, M. Rashidi
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Abstract

This work presents the novel design of a smart hydrodynamic journal bearing with adjustable radial clearance. The dynamic behavior of this bearing was mathematically modeled and examined. Finite Element Analyses were conducted to determine the effort needed to change and maintain a desired value for the radial clearance. First, the bearing set was modelled as a two-degrees-of-freedom dynamic system. For an initial value of a radial clearance of c = 0.0508 mm, the bearing set exhibited an unstable behavior under its postulated operating condition. A Generic Algorithm (GA) was used to define an objective function so that an optimum value of c could be determined in order to ring the bearing into a stable operating condition. The GA determined the value of radial clearance of c = 0.0051 mm for this purpose. Second, a Jeffcott rotor was modeled as an eight-degrees-of-freedom vibratory stem supported by two identical smart bearings. For an initial value of c = 0.025 mm, the disk’s peak-to-peak vibrations amplitude was determined to be 8 × 10−5 meter and 8.5 × 10−5 m along two orthogonal axes of a reference frame respectively. The GA was used to determine a new value for the radial clearance of the supporting bearings in order to reduce the disk’s vibration level. A new value of radial clearance c was determined to be 0.095 mm which in turn reduced the vibrations of the dick from 8 × 10−5 and 8.5 × 10−5 meter to 3.5 × 10−5 and 2.5 × 10−5 m respectively.
径向游隙可控的滑动轴承
本文提出了一种具有可调径向间隙的智能流体动力滑动轴承的新设计。对该轴承的动态特性进行了数学建模和检验。进行了有限元分析,以确定改变和保持所需的径向间隙值所需的工作量。首先,将轴承组建模为二自由度动力系统。对于初始值c = 0.0508 mm的径向间隙,轴承组在其假定的工作条件下表现出不稳定的行为。采用通用算法(GA)定义目标函数,以确定c的最优值,使轴承进入稳定的运行状态。GA为此确定了径向间隙c = 0.0051 mm的值。其次,将Jeffcott转子建模为由两个相同的智能轴承支撑的8自由度振动杆。当初始值为c = 0.025 mm时,确定圆盘沿参照系两个正交轴的峰间振动幅值分别为8 × 10 - 5米和8.5 × 10 - 5米。遗传算法用于确定支撑轴承径向间隙的新值,以降低磁盘的振动水平。径向间隙c的新值为0.095 mm,从而使dick的振动分别从8 × 10−5和8.5 × 10−5 m减小到3.5 × 10−5和2.5 × 10−5 m。
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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