4.7 Article

Softening mechanism and process parameters optimization of Ti-4.2Al-0.005B titanium alloy during hot deformation

Journal

JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T
Volume 17, Issue -, Pages 1842-1851

Publisher

ELSEVIER
DOI: 10.1016/j.jmrt.2022.01.128

Keywords

Ti-4.2Al-0.005B titanium alloy; Flow stress behavior; Processing map; Activation energy processing map

Funding

  1. National Natural Science Foundation of China [51761029]
  2. Postgraduate Innovation Special Fund of Nanchang Hangkong University [YC2020026]

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This study investigated the Ti-4.2Al-0.005B titanium alloy through isothermal constant strain rate compression tests. The results established a constitutive model, processing map, and optimized processing parameters for the alloy. The flow stress curves exhibited different characteristics under various deformation conditions, with high strain rates showing temperature-induced softening and low strain rates showing dynamic recrystallization-induced softening.
The isothermal constant strain rate compression test of Ti-4.2Al-0.005B titanium alloy was carried out by Gleeble-3800 thermal simulator at temperature 850 similar to 1050 degrees C, strain rate 0.001 similar to 10s(-1) and maximum deformation degree 60%. According to the experimental data, the Arrhenius constitutive model was established, the flow stress curve was analyzed, and the processing map based on polarity reciprocity model was established, which was further optimized by Zener-Hollomon parameter processing map and activation energy map. The results show that the flow stress curves respectively show dynamic recovery characteristics and dynamic softening characteristics under different deformation conditions respectively. The softening behavior of the flow stress curves under high strain rate is caused by temperature effect, while the softening behavior at low strain rate is caused by dynamic recrystallization. According to the established Polar Reciprocity Model processing map, the stable region is (870-990 degrees C/0.01-0.12s(-1)). Then, the Zener-Hollomon parameter processing map and activation energy processing map were established. Finally, the optimal processing parameters of the alloy are (870-990 degrees C/0.04-0.12s(-1)). The main deformation mechanism is dynamic recrystallization. Meanwhile, the rationality of Zener-Hollomon parameter diagram and activation energy diagram is verified. In the actual production process, the choice of technological parameters is provided in order to obtain good microstructure and properties. (c) 2022 The Authors. Published by Elsevier B.V.B.V. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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