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Estimation of residual stresses in gear form grinding using finite element analysis and experimental study based on grinding force and heat flux distribution models

机译:基于研磨力和热通量分布模型,使用有限元分析和实验研究估计齿轮形式研磨的残余应力

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摘要

Form grinding is one of the most important finishing methods to produce precision gears with high surface quality; however, the generation of high temperatures in the ground zone due to very high energy density induces a complex residual stress field during this process. In the present research, temperature distributions in the workpiece were examined using the finite element method (FEM). The heat generation process was assumed as a three-dimensional distribution of moving heat flux, and different grinding factors, including nonlinear distribution of tangential grinding force, grinding parameters, heat partition ratio along the tooth profile, and triangularly distributed heat source along the contact arc, were considered for thermal analysis. The workpiece temperature field was used as thermal loading in stress calculations, and thermal stresses were determined by thermal elastic-plastic FEM with temperature-dependent material properties and a bilinear kinematic hardening model. Further, grinding forces along the tooth profile were measured using a force dynamometer; surface temperatures were estimated by thermocouples pre-embedded along tooth profile; and surface residual stresses in both grinding direction and tooth profile direction were measured by X-ray diffraction (XRD) analysis. Experimental results of temperatures and residual stresses were utilized to validate the FEM results, and the comparison between numerical and experimental results suggests that the proposed model can be adopted to estimate residual stresses in gear form grinding.
机译:表格研磨是生产具有高表面质量的精密齿轮的最重要的精加工方法之一;然而,由于非常高的能量密度,在地面处产生高温在该过程中引起复杂的残余应力场。在本研究中,使用有限元方法(FEM)检查工件中的温度分布。假设发热过程作为移动热通量的三维分布,以及不同的研磨因子,包括切向研磨力,研磨参数,沿齿轮廓的热分隔壁的非线性分布,以及沿着接触电弧的三角分布的热源,被认为是热分析。工件温度场用作应力计算中的热负载,通过具有温度依赖性材料特性和双线性运动硬化模型的热弹性塑料FER测定热应力。此外,使用力测力计测量沿着牙齿轮廓的研磨力;通过沿着齿形预先嵌入的热电偶估算表面温度;通过X射线衍射(XRD)分析测量磨削方向和齿廓方向的表面残余应力。利用温度和残余应力的实验结果来验证有限元素结果,数值和实验结果之间的比较表明,可以采用所提出的模型来估算齿轮形式研磨中的残余应力。

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