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Study on contact fatigue of a wind turbine gear pair considering surface roughness

机译:考虑表面粗糙度的风力发电机齿轮对接触疲劳研究

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Contact fatigue issues become more and more crucial in gear industry as they significantly affect the reliability and service life of associated mechanical systems such as wind turbine gearboxes. The contact fatigue behavior is mostly determined by the mechanical properties of materials and stress fields near the contact area, which is further influenced by the lubrication and surface roughness due to pressure fluctuations. In this study, a numerical model incorporating the lubrication state, tooth surface roughness, residual stress, and mechanical properties of the material is developed to determine the contact fatigue behavior of a megawatt level wind turbine carburized gear. The variations of the hardness and residual stress along the depth were characterized by the Vickers hardness measurement and X-ray diffraction test, respectively. The elastohydrodynamic lubrication theory was applied to predict the contact pressure distribution, highlighting the influence of the surface roughness that stemed from the original measurement through an optical profiler. The stress histories of the studied material points during a complete contact loading cycle were fast calculated using the discreteconcrete fast Fourier transformation (DC-FFT) method. Modified Dang Van diagrams under different working conditions were determined to estimate the contact fatigue failure risk. The effect of the root mean square (RMS) value of the surface roughness on the failure risk at critical material points were discussed in detail. Results revealed that the surface roughness significantly increases the contact fatigue failure risk within a shallow area, and the maximum risk appears near the surface.
机译:接触疲劳问题在齿轮行业中变得越来越重要,因为它们显着影响了有关机械系统的可靠性和使用寿命,如风力涡轮机齿轮箱。接触疲劳行为主要由接触面积附近的材料和应力场的机械性能决定,该接触面积附近的润滑性和表面粗糙度进一步影响。在该研究中,开发了一种包含润滑状态,齿面粗糙度,残余应力和机械性能的数值模型,以确定兆瓦级风力涡轮机渗碳齿轮的接触疲劳行为。沿着深度的硬度和残余应力的变化分别是通过维氏硬度测量和X射线衍射试验的特征。应用弹性流体动力学润滑理论来预测接触压力分布,突出了通过光学分析器源于原始测量的表面粗糙度的影响。使用判定快速傅里叶变换(DC-FFT)方法,在完全接触加载周期内进行了研究的重应历史。确定改进的Dang Van图下的不同工作条件下确定了估计接触疲劳失败风险。详细讨论了表面粗糙度对临界材料处的故障风险的表面粗糙度的根均线(RMS)值的影响。结果表明,表面粗糙度显着提高了浅面积内的接触疲劳失效风险,并且表面附近出现最大风险。

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