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Interval optimization of rotor-bearing systems with dynamic behavior constraints using an interval genetic algorithm

机译:区间遗传算法的动态行为约束转子轴承系统的区间优化

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A new interval optimization algorithm is presented in this paper. In engineering, most optimization algorithms focus on exact parameters and optimum objectives. However, exact parameters are not easy to be manufactured to because of manufacturing errors and expensive manufacturing cost. To account for these problems, it is necessary to estimate interval design parameters and allowable objective error. This is the first paper to propose a new interval optimization algorithm within the context of Genetic Algorithms. This new algorithm, the Interval Genetic Algorithm (IGA), can neglect interval analysis and determines the optimum interval parameters. Furthermore, it can also effectively maximize the design scope. The optimizing ability of the IGA is tested through the interval optimization of a two-dimensional function. Then the IGA is applied to rotor-bearing systems. The results show that the IGA is effective in deriving optimal interval design parameters within the allowable error when minimizing shaft weight and/or transmitted force of rotor-bearing systems.
机译:提出了一种新的区间优化算法。在工程中,大多数优化算法都专注于精确的参数和最佳目标。然而,由于制造误差和昂贵的制造成本,难以制造精确的参数。为了解决这些问题,有必要估计间隔设计参数和允许的客观误差。这是第一篇在遗传算法的背景下提出一种新的区间优化算法的论文。这种新算法,即间隔遗传算法(IGA),可以忽略间隔分析并确定最佳间隔参数。此外,它还可以有效地最大化设计范围。通过二维函数的区间优化来测试IGA的优化能力。然后将IGA应用于转子轴承系统。结果表明,当最小化转子轴承系统的轴重和/或传递力时,IGA可有效地在允许误差范围内得出最佳间隔设计参数。

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