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Modeling of the in-plane biaxial residual stresses from machining.

机译:加工中平面内双轴残余应力的建模。

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It is well known that machining processes create residual stresses in the surface of machined components. Depending upon their nature, these residual stresses can have significant effects upon component life by influencing fatigue, creep, and stress corrosion cracking resistance. In addition, machining-induced residual stresses can have detrimental effects upon component geometry and result in parts that do not meet specified tolerances. Thus it is of significant industrial importance to predict the nature of machining-induced residual stresses in a component based upon the machining conditions and material behaviors which give rise to them. A feasible and accurate method of prediction does not currently exist.; Research will be presented which serves to address this need for a predictive model. Experimentation on orthogonal and controlled oblique machining indicates a simplification in the expression of residual stresses when viewed from a workpiece coordinate frame. Further experimentation on turning and endmilling processes demonstrate the extension of this simplification to conventional machining processes. A one-dimensional rationale based on a careful treatment of the mechanics of residual stress formation provides general guidelines for the development of machining-induced residual stress and demonstrates the pronounced effect of a thermal mechanism in the generation of machining-induced residual stress. A predictive model coupling the thermal and mechanical mechanisms of residual stress generation provides predictions of the temperatures developed in the workpiece surface and the full in-plane residual stress profiles existing at and beneath the newly generated surface. Experiments on orthogonal machining, controlled oblique machining, turning and endmilling serve to evaluate the predictive model for residual stress. The results show great promise for understanding the development of machining-induced residual stress and optimizing conventional machining processes.; In addition, novel experimentation has been conducted to demonstrate the effects of machining-induced residual stress on part warpage. The experimentation indicates the strong influence of machining-induced residual stresses on component geometry. Finite element solution techniques are utilized to predict the part warpage resulting from the machining-induced residual stresses. The predicted results show strong agreement with the experimentation and serve to demonstrate the use of the warpage prediction in a production environment.
机译:众所周知,机加工过程会在机加工部件的表面产生残余应力。根据其性质,这些残余应力会影响疲劳,蠕变和应力腐蚀开裂性能,从而对零件寿命产生重大影响。此外,加工引起的残余应力可能会对零件的几何形状产生不利影响,并导致零件不符合规定的公差。因此,基于加工条件和引起它们的材料性能来预测部件中加工引起的残余应力的性质在工业上具有重要意义。当前不存在可行且准确的预测方法。将提出研究,以解决这种对预测模型的需求。正交和受控斜角加工的实验表明,从工件坐标系查看时,残余应力的表示形式得到了简化。车削和端铣削工艺的进一步实验表明,这种简化可扩展到传统的机加工工艺。基于对残余应力形成机理的认真处理的一维原理为机加工引起的残余应力的发展提供了一般指导,并证明了热机制在机加工引起的残余应力的产生中的显着作用。结合残余应力产生的热和机械机理的预测模型提供了对工件表面中形成的温度以及在新产生的表面处和下方存在的完整平面内残余应力分布的预测。正交加工,受控斜加工,车削和立铣的实验有助于评估残余应力的预测模型。结果为理解机加工引起的残余应力的发展和优化常规机加工工艺提供了广阔的前景。另外,已经进行了新颖的实验来证明机加工引起的残余应力对零件翘曲的影响。实验表明,加工引起的残余应力对零件几何形状有很大的影响。利用有限元求解技术来预测由加工引起的残余应力导致的零件翘曲。预测结果与实验非常吻合,有助于证明翘曲预测在生产环境中的使用。

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