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Turning Force Prediction of AISI 4130 Considering Dynamic Recrystallization

机译:考虑动态再结晶的AISI 4130车削力预测

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Thermal mechanical loadings in machining process would promote material microstructure changes. The material microstructure evolution, such as grain size evolution and phase transformation could significantly influence the material flow stress behavior, which will directly affect the machining forces. An analytical model is proposed to predict cutting forces during the turning of AISI 4130 steel. The material dynamic recrystallization is considered through Johnson-Mehl-Avrami-Kolmogorov (JMAK) model. The explicit calculation of average grain size is provided in an analytical model. The grain size effect on the material flow stress is considered by introducing the Hall-Petch relation into a modified Johnson-Cook model. The cutting forces prediction are based on Oxley's contact mechanics with consideration of mechanical and thermal loads. The model is validated by comparing the predicted machining forces with experimental measurements.
机译:加工过程中的热机械载荷将促进材料微观结构的变化。材料的微观组织演变,例如晶粒尺寸的演变和相变,会显着影响材料的流变应力行为,这将直接影响加工力。提出了一种分析模型来预测AISI 4130钢车削过程中的切削力。通过Johnson-Mehl-Avrami-Kolmogorov(JMAK)模型考虑了材料的动态重结晶。分析模型中提供了平均晶粒尺寸的显式计算。通过在改进的Johnson-Cook模型中引入Hall-Petch关系,可以考虑晶粒尺寸对材料流动应力的影响。切削力的预测是基于Oxley的接触力学,并考虑了机械和热负荷。通过将预测的加工力与实验测量值进行比较来验证模型。

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