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Shear cutting induced residual stresses in involute gears and resulting tooth root bending strength of a fineblanked gear

机译:剪切切割诱导渐开线齿轮的残余应力,并产生精细齿轮的齿根弯曲强度

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摘要

The manufacturing of case-hardened gears usually consists of several complex and expensive steps to ensure high load carrying capacity. The load carrying capacity for the main fatigue failure modes pitting and tooth root breakage can be increased significantly by increasing the near surface compressive residual stresses. In earlier publications, different shear cutting techniques, the near-net-shape-blanking processes (NNSBP's), were investigated regarding a favorable residual stress state. The influence of the process parameters on the amount of clean cut, surface roughness, hardness and residual stresses was investigated. Furthermore, fatigue bending tests were carried out using C-shaped specimens. This paper reports about involute gears that are manufactured by fineblanking. This NNSBP was identified as suitable based on the previous research, because it led to a high amount of clean cut and favorable residual stresses. For the fineblanked gears of S355MC (1.0976), the die edge radii were varied and the effects on the cut surface geometry, hardness distribution, surface roughness and residual stresses are investigated. The accuracy of blanking the gear geometry is measured, and the tooth root bending strength is determined in a pulsating test rig according to standardized testing methods. It is shown that it is possible to manufacture gears by fineblanking with a high precision comparable to gear hobbing. Additionally, the cut surface properties lead to an increased tooth root bending strength.
机译:壳体硬化齿轮的制造通常由几个复杂和昂贵的步骤组成,以确保高负荷承载能力。通过增加近近表面压缩残余应力,可以显着提高主疲劳失效模式的负载承载能力和齿根断裂。在早期的出版物中,研究了关于良好的残余应力状态的不同剪切切割技术,近净形状消隐过程(NNSBP)。研究了过程参数对清洁切割量,表面粗糙度,硬度和残余应力的影响。此外,使用C形样本进行疲劳弯曲试验。本文报告了通过细致制造的渐开线齿轮。该NNSBP根据先前的研究确定为合适的,因为它导致了大量的清洁和良好的残余应力。对于S355MC的精细齿轮(1.0976),改变模刃半径,研究了对切割表面几何形状,硬度分布,表面粗糙度和残余应力的影响。测量消隐齿轮几何形状的精度,并且根据标准化测试方法在脉动试验台中确定齿根弯曲强度。结果表明,可以通过较高的精度来制造齿轮,其高精度可与齿轮啮合。另外,切割表面性能导致齿根弯曲强度增加。

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