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Stability Analysis and Simulation of the Vibration Behavior of Worm Gears in Drive Systems

机译:传动系统中蜗轮振动特性的稳定性分析与仿真

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Self-locking worm gears have the advantage, that they can position loads, blocking any further movements.This feature exploits the physical effect of self-locking.This provides an efficient solution, since any further locking devices, such as brakes, can be omitted. A load of arbitrary dimension is safely held in position even if the motor is turned off.In practical applications the exploitation of self-locking is not free of problems. Under certain circumstances chatter vibrations can arise, which have a negative impact on comfort and noise generation, increase wear, and can lead to instabilities, which render impossible the operation of the equipment.The paper examines the influence of various parameters on the occurrence of chatter phenomena-analytically for systems with few degrees of freedom as well as numerically for complex vibratory systems. The results are summarized in stability charts as functions of similarity indicators and are discussed. Known charts are extended by the additional condition of damping influ-ence.The developed physical vibratory model for the worm gear considers its relevant geometry, mass, and stiffness parameters. The model permits the simulation of arbitrary worm gears under considering the interactions with the surrounding vibratory components of drive, output side,and bearings. Complex drive systems with manifold nonlinearities are hardly accessible via analytic solutions.Using simulation, additional driveline factors influencing the dynamic behavior (and the chatter in particular) are identified, which exceed the conclusions from analytical solutions found in hitherto existing directives.The paper provides the design engineer with utilities and tools for preventing chatter vibrations in worm gears.Examples from practice demonstrate the effectiveness of various measures which can be taken in order to avoid chatter. Physical and mathematic interrelationships are explained and tools are provided with which the design engineer can forecast or avoid chatter vibration in drive trains with worm gears. Practical examples demonstrate the effect of different methods.
机译:自锁蜗轮的优势在于可以定位负载,阻止进一步的运动。此功能利用了自锁的物理效果,因此可以有效地解决问题,因为可以省去任何其他的锁定装置,例如制动器。即使关闭电动机,也可以将任意尺寸的负载安全地保持在适当的位置。在实际应用中,自锁的开发并非没有问题。在某些情况下会产生颤振,这会对舒适度和噪音产生产生负面影响,增加磨损并导致不稳定,从而使设备无法运行。本文研究了各种参数对颤振发生的影响。对于自由度极低的系统,从解析角度分析现象;对于复杂的振动系统,从数值上分析现象。结果在稳定性图中总结为相似性指标的函数,并进行了讨论。阻尼影响的附加条件扩展了已知的图表。已开发的蜗轮蜗杆物理振动模型考虑了其相关的几何形状,质量和刚度参数。该模型允许在考虑与驱动器,输出侧和轴承的周围振动组件相互作用的情况下对任意蜗轮进行仿真。带有歧管非线性的复杂驱动系统几乎无法通过解析解决方案访问。使用仿真,可以识别出影响动态行为(尤其是颤振)的其他传动系因素,这超出了迄今为止现有指令中的解析解决方案得出的结论。具有防止蜗轮颤振的实用程序和工具的设计工程师。实践中的例子表明,可以采取各种措施来避免颤振的有效性。解释了物理和数学的相互关系,并提供了设计工程师可以用来预测或避免带有蜗轮的传动系统中颤振的工具。实际示例说明了不同方法的效果。

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