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首页> 外文期刊>Journal of Materials Processing Technology >Coulomb, Tresca and Coulomb-Tresca friction models used in analytical analysis for rolling process of external spline
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Coulomb, Tresca and Coulomb-Tresca friction models used in analytical analysis for rolling process of external spline

机译:用于外部花键的轧制过程的分析分析中用于分析分析的库仑,特雷斯卡和库仑-Tresca摩擦模型

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摘要

The plastic deformation during external spline rolling process (ESRP) is concentrated in the superficial area of workpiece. The numerical simulation for full 3D spline rolling process is time-consuming, and experimental measure during the rolling process is also difficult, and there is no clear physical meaning between results and parameters. The analytical models for ESRP have been modeled by slip-line field method (SLFM) with Coulomb friction model (CFM), Tresca friction model (TFM) and Coulomb-Tresca friction model (CTFM), respectively. The SLFM models can represent the influence of geometrical and frictional parameters on the ESRP. The slip line fields of ESRP under different friction models all contain 3 slip-line sub-regions for workpiece only with circular dedendum and all contain 5 slip-line sub-regions for workpiece with involute flank. Compared with experimental and numerical results, the error of SLFM (slip-line field method) result such as undeformed zone of the workpiece is less than 10 % between SLFM results and the experimental and FEM results. The error between SLFM and FEM for normal stress on contact surface is less than 10 %. The geometrical parameter and friction condition have an important influence on the applicability of CTFM. CTFM only works in the rolling process with small pressure angle (such as 14.5 degrees for gear) and friction condition (0.7 m<0.8) between lubrication and dry friction; and for other cases, the CTFM degenerates into a TFM. The developed SLFM model in this study can provide a basis for studying deformation mechanism, rapidly determining reasonable parameter range, and simplifying finite element model of spline or gear rolling process. The results in this study also provided reference for selection of friction model in finite element analyses of complex profile rolling.
机译:外花键滚压过程中的塑性变形集中在工件表面。全三维花键滚压过程的数值模拟比较耗时,滚压过程中的实验测量也比较困难,结果与参数之间没有明确的物理意义。ESRP的分析模型分别采用滑移线场法(SLFM)、库仑摩擦模型(CFM)、特雷斯卡摩擦模型(TFM)和库仑-特雷斯卡摩擦模型(CTFM)进行建模。SLFM模型可以反映几何参数和摩擦参数对ESRP的影响。在不同的摩擦模型下,ESRP的滑移线场都包含3个滑移线子区域(仅圆形齿根工件),以及5个滑移线子区域(渐开线齿面工件)。与实验和数值计算结果相比,滑移线场法(SLFM)计算结果与实验和有限元计算结果的误差小于10%。SLFM和FEM计算接触面法向应力的误差小于10%。几何参数和摩擦条件对CTFM的适用性有重要影响。CTFM仅适用于小压力角(如齿轮为14.5度)和润滑与干摩擦之间的摩擦条件(0.7 m<0.8)的轧制过程;在其他情况下,CTFM退化为TFM。本文建立的SLFM模型可以为研究花键或齿轮的变形机理、快速确定合理的参数范围、简化有限元模型提供依据。研究结果也为复杂型材轧制有限元分析中摩擦模型的选择提供了参考。

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