4.6 Article

Numerical Simulation and Process Optimization on Hot Twist-Stretch Straightening of Ti-6Al-4V Alloy Profile

Journal

MATERIALS
Volume 15, Issue 13, Pages -

Publisher

MDPI
DOI: 10.3390/ma15134522

Keywords

Ti-6Al-4V profile; hot twist-stretch straightening; orthogonal experiment; thermo-mechanical coupling model

Funding

  1. National Key R&D Program of China [2017YFB0303204]

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In this study, the hot deformation behavior of Ti-6Al-4V profile prepared by hot extrusion was investigated. The coupled thermo-mechanical model of hot twist-stretch straightening was established and the effects of process parameters on the bending deflection and torsion angle were systematically studied and optimized. The results showed that the straightening accuracy can meet the requirements by using the optimized process parameters.
Ti-6Al-4V profiles prepared by hot extrusion are usually accompanied by bending and twisting. The hot twist-stretch straightening is an effective strategy such that the bending deflection and twisting angle can be simultaneously decreased by a single straightening process. In addition, utilizing stress relaxation effect, the residual stress and springback can be greatly reduced by holding the straightening temperature and strain constant for a period after twist-stretch straightening. In this study, the hot deformation behaviors of the Ti-6Al-4V profile were revealed by experiments. The tensile model was obtained by uniaxial tensile tests within ranges of temperatures (500-700 degrees C) and strain rates (5 x 10(-5)-1 x 10(-3) s(-1)). The creep constitutive model was acquired with stress relaxation experiments in ranges of temperatures (500-700 degrees C) and pre-strain of 1.5%. Then, the coupled thermo-mechanical model of hot twist-stretch straightening was established. Based on orthogonal experiment strategy, the effects of straightening temperature, stretch strain, and holding time on the bending deflection and torsion angle of profile were investigated systematically and the process was optimized. The straightening accuracy is significantly affected by straightening temperature and holding time. By using optimized process parameters in practical straightening experiments, the deflection/length and angle/length after straightening does not exceed 2 parts per thousand and 2.5 parts per thousand degrees/mm, respectively, which is basically consistent with the numerical simulation result.

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