An Optimized Strain-Compensated Arrhenius Constitutive Model of GH4169 Superalloy Based on Hot Compression

Author:

Cheng Xiang1,Wang Ruomin1,Chen Xiaolu1,Jin Shasha1,Qian Qinke2,Wu He23

Affiliation:

1. Anhui Xinli Electric Technology Consulting Co., Ltd., Hefei 230601, China

2. Key Laboratory for Light-Weight Materials, Nanjing Tech University, Nanjing 210009, China

3. School of Electromechanical Engineering, Guangdong University of Technology, Guangzhou 510006, China

Abstract

A precise constitutive model is essential for capturing the deformation characteristics of the GH4169 superalloy in numerical simulations of thermal plastic forming processes. Hence, the aim of this study was to develop a precise modified constitutive model to describe the hot deformation behavior exhibited by the GH4169 superalloy. The isothermal cylindrical uniaxial compression tests of the GH4169 superalloy were carried out at temperatures of 950~1100 °C and strain rates of 0.01~10 s−1 using a Thermecmastor-200KN thermal–mechanical simulator. The original strain–stress curves were corrected by minimizing the effects of plastic heat and interfacial friction. Based on the true stress–strain curves, the original strain-compensated Arrhenius constitutive model was constructed using polynomial orders of 3, 5, and 10, respectively. The results showed that once the polynomial order exceeds the 5th, further increasing the order has little contribution to the accuracy of the model. To improve prediction ability, a higher precision Arrhenius constitutive model was established by extending a series of material parameters as functions that depend on temperature, strain, and strain rate, in which the error can be reduced from 4.767% to 0.901% compared with the classic strain-compensated Arrhenius constitutive model.

Funder

National Natural Science Foundation of China

the Jiangsu Provincial Natural Science Foundation

Anhui Xinli Electric Technology Consulting Co., Ltd. Technology Project

Publisher

MDPI AG

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