Hot Deformation Behavior and Numerical Simulation of 40CrNiMo Steel for Wind Turbine Pulley Shafts

Author:

Wei Hongyu1,Liu Wensheng1,Zhang Ke12ORCID,Wei Wei3,Wu Qun2,Zhang Mingya4,Tao Xiaoping2,Liu Hongyan5

Affiliation:

1. School of Metallurgical Engineering Anhui University of Technology Anhui Ma'anshan 243032 China

2. Changzhou Kangning Forging Co., Ltd. Jiangsu Changzhou 213171 China

3. School of Materials Science and Engineering Advanced Functional Materials of Jiangsu Joint Laboratory for International Cooperation Jiangsu Key Laboratory of Materials Surface Science and Technology Changzhou University Jiangsu Changzhou 213164 China

4. School of Materials Science and Engineering Anhui University of Technology Ma'anshan 243032 China

5. Hansteel Company, Hebei Iron and Steel Group Hebei Handan 056015 China

Abstract

The hot deformation behavior (T = 800–1100 °C, = 0.01–10 s−1) of 40CrNiMo steel for wind turbine pulley shafts was studied by Gleeble‐3800 thermomechanical simulator. A constitutive equation and hot processing map are established based on the friction and temperature correction curves. The most available hot processing parameters are determined by combining microstructure analysis. The temperature fields and effective strain fields under different deformation conditions are simulated by Deform‐3D software. The results indicate that the effect of friction on the flow curves is greater than that of temperature rise, the activation energy Q of hot deformation for 40CrNiMo steel calculated based on the theoretical calculation is 368.292 kJ mol−1. The constitutive model based on strain compensation has high accuracy, with an average relative error of 6.65% and a correlation coefficient of 0.987. The optimum hot processing interval is at a deformation temperature of 950–1050 °C and a strain rate of 0.03–0.25 s−1, which has a high‐power dissipation value and avoids the instability region. Additionally, numerical simulation results show that the temperature field distribution is uniform in this deformation range, and the standard deviation of the effective strain is low, making it suitable for hot processing.

Publisher

Wiley

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