Optimum design of simple rotor system supported by journal bearing using enhanced genetic algorithm

被引:0
|
作者
Dong-Sik Gu
Young-Chan Kim
Jong-Myeong Lee
Byeong-Keun Choi
机构
[1] Changwon Moonsung University,Division of Shipbuilding and Production
[2] Doosan Heavy Industry,Department of Energy and Mechanical Engineering, Graduate School of Engineering
[3] Gyeongsang National University,Department of Energy and Mechanical Engineering, Institute of Marine Industry
[4] Gyeongsang National University,undefined
来源
International Journal of Precision Engineering and Manufacturing | 2013年 / 14卷
关键词
Enhanced genetic algorithm; Optimum design; Flexible rotor system;
D O I
暂无
中图分类号
学科分类号
摘要
This paper presents a combined algorithm for optimum design of flexible rotor system supported by journal bearing. The proposed algorithm (Enhanced Genetic Algorithm, EGA) is the synthesis of a modified genetic algorithm and simplex method. A genetic algorithm (GA) is well known as a useful optimization technique for complex, nonlinear, and multi-optimization problems. The modified GA gives the candidate solutions in global search and then the solutions will be treated as initial values in the local search by the simplex method. The EGA is not only faster than the standard genetic algorithm, but also provides a more accurate solution. In addition, this algorithm can find both the global and the local optimum solutions at the same time. Through two standard test functions, the advantages of the proposed hybrid algorithm has been confirmed. Finally, to optimize a simple rotor system supported by journal bearing, EGA is applied. The radial clearance, length to diameter ratio and average viscosity of the journal bearing are chosen as the design parameters. The objective function is the minimization of a maximum quality factor of a flexible rotor system in the operating speed range.
引用
收藏
页码:1583 / 1589
页数:6
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