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首页> 外文期刊>Advances in Acoustics and Vibration >Particle Swarm Optimization as an Efficient Computational Method in order to Minimize Vibrations of Multimesh Gears Transmission
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Particle Swarm Optimization as an Efficient Computational Method in order to Minimize Vibrations of Multimesh Gears Transmission

机译:粒子群算法作为一种有效的计算方法,可最大程度地减少多目齿轮传动系统的振动

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摘要

The aim of this work is to present the great performance of the numerical algorithm of Particle Swarm Optimization applied to find the best teeth modifications for multimesh helical gears, which are crucial for the static transmission error (STE). Indeed, STE fluctuation is the main source of vibrations and noise radiated by the geared transmission system. The microgeometrical parameters studied for each toothed wheel are the crowning, tip reliefs and start diameters for these reliefs. Minimization of added up STE amplitudes on the idler gear of a three-gear cascade is then performed using the Particle Swarm Optimization. Finally, robustness of the solutions towards manufacturing errors and applied torque is analyzed by the Particle Swarm algorithm to access to the deterioration capacity of the tested solution.
机译:这项工作的目的是展示粒子群优化数值算法的出色性能,该算法可用于找到适用于多啮合斜齿轮的最佳齿形修正,这对于静态传递误差(STE)至关重要。实际上,STE波动是齿轮传动系统发出的振动和噪声的主要来源。为每个齿轮研究的微几何参数是凸度,尖端浮雕和这些浮雕的起始直径。然后,使用粒子群优化算法将三齿轮级联的惰轮上的STE振幅加起来最小。最后,通过粒子群算法分析解决方案对制造误差和所施加扭矩的鲁棒性,以获取测试解决方案的劣化能力。

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