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Numerical Simulation of Machining Nickel-Based Alloys

机译:加工镍基合金的数值模拟

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摘要

The phenomenological models for material flow stress and fracture, typically used in the Finite Element simulations of machining . Nickel-based alloys, are often deemed to represent only certain metallurgical material states. In contrast, these models are not suitable to describe the constitutive behavior of the workpiece for different metallurgical states (i.e., annealed, aged, etc.) and, consequently, different hardness values. Since the description of the material behavior requires correct formulation of the constitutive law, new flow stress models which include also the hardness effect should be developed and used, for computer simulation of machining Nickel-based alloys. This paper describes the development of a hardness-based flow stress and fracture models for machining Inconel 718 alloy which can be applied for a wide range of work material hardness. These models have been implemented in a non-isothermal viscoplastic numerical model to simulate the influence of work material hardness on the chip formation process. The predicted results are being validated with experimental results properly carried out for this research. They are found to satisfactory predict the cutting forces, the temperature and the chip morphology from continuous to segmented chip as the hardness values change.
机译:物质流应力和裂缝的现象学模型,通常用于加工有限元模拟。镍基合金通常被认为仅代表某些冶金材料状态。相反,这些模型不适合描述不同冶金状态的工件的组成行为(即,退火,老化等),因此,不同的硬度值。由于材料行为的描述需要正确的构造本构规则,因此应开发和使用包括硬度效果的新流量应力模型,用于加工镍基合金的计算机模拟。本文介绍了用于加工Inconel 718合金的硬度基流应力和断裂模型的开发,其可用于各种工作材料硬度。这些模型已经在非等温粘塑数值模型中实现,以模拟工作材料硬度对芯片形成过程的影响。预计结果正在验证,并在本研究中正确进行实验结果。随着硬度值的变化,它们被发现令人满意的预测切割力,温度和芯片形态,从连续分割芯片。

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