Loaded and unloaded tooth contact analysis of spiral bevel gears in consideration of misalignments

M. Moslem, A. Zippo, G. Iarriccio, L. Bergamini, F. Pellicano
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Abstract

Bevel gear pairs are employed extensively in transmission systems, such as vehicle transmissions (rear axle drive), aircraft engines/turbines and helicopter gears, to transfer power between non-parallel shafts at high speed or high torque. The most complex form of bevel gear is the spiral bevel gear (SBG). SBG pairs are commonly used in applications that require high load capacity at higher operating speeds than are typically possible with other types of bevel gear. When manufactured in a metal-cutting process, spiral bevel gears can either be produced using single indexing (a face-milling method, which is considered in this study) or continuous indexing (a face-hobbing method). Due to manufacturing imperfections and the flexibility of components, the system might experience misalignments that intensify or exert a destructive effect on the gear vibration, which causes disruption in the stress distribution, thereby decreasing the lifetime of the gearbox. The main purpose of this study is to carry out loaded tooth contact analysis (LTCA) and unloaded tooth contact analysis (UTCA) for an SBG pair in the presence of two types of misalignment, axial and radial misalignment, and represent their effects on the mesh stiffness (MS). To calculate the MS, it is essential to determine the geometrical mismatch between two mating tooth profiles by means of UTCA. To conduct LTCA, three main approaches can be utilised: the finite element method (FEM) and experimental and analytical approaches. Due to the development of software packages during the last decade, Transmission3D-Calyx, an FEM-based software, is used in this study to carry out LTCA and UTCA. Finally, the MS for different misalignment cases is compared to represent the effect of misalignment on the SBG pair.
考虑齿错的螺旋锥齿轮加载和卸载齿接触分析
锥齿轮副广泛应用于传动系统,如车辆传动(后桥驱动),飞机发动机/涡轮机和直升机齿轮,以高速或高扭矩在非平行轴之间传递动力。最复杂形式的锥齿轮是螺旋锥齿轮(SBG)。SBG副通常用于需要高负载能力的应用中,在更高的运行速度下,通常可能与其他类型的锥齿轮。当在金属切削过程中制造时,螺旋锥齿轮可以使用单分度(一种面铣削方法,在本研究中被考虑)或连续分度(一种面滚刀方法)生产。由于制造缺陷和部件的灵活性,系统可能会出现错位,从而加剧或对齿轮振动产生破坏性影响,从而导致应力分布的破坏,从而降低齿轮箱的使用寿命。本研究的主要目的是对存在轴向和径向两种偏差的SBG副进行加载齿接触分析(LTCA)和卸载齿接触分析(UTCA),并表示它们对啮合刚度(MS)的影响。为了计算质谱,必须利用UTCA确定两个配合齿廓之间的几何不匹配。进行LTCA主要采用三种方法:有限元法(FEM)和实验和分析方法。由于近十年来软件包的发展,本研究使用基于fem的软件Transmission3D-Calyx进行LTCA和UTCA。最后,比较了不同不对准情况下的质谱,以表征不对准对SBG对的影响。
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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