4.7 Article

Investigation of strain partition behavior in the lamellar microstructure of dual-phase titanium alloy based on crystal plasticity simulations

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.msea.2023.145321

Keywords

Heterogenous deformation; Crystal plasticity; Lamellar microstructure; Dual -phase materials; Titanium alloys

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A well-designed microstructure is essential for achieving desirable properties and optimizing service performance of titanium alloys. The influence of microstructure on heterogeneous deformation and strain partition behavior needs to be thoroughly investigated. Crystal plasticity simulations reveal that coarser β and finer α lamellae show improved strain accommodation capacity due to the plastic slip occurring in the coarse β lamellae. The interlamellar strain partition coefficient stabilizes after 5% deformation. The angles 71 and 72 are used to evaluate the strengthening effects of α lamellae precipitating from 6 types of β variants.
A well-designed microstructure plays a crucial part in achieving favorable properties and optimizing the service performances of titanium alloys, requiring thorough investigations of the microstructure effect on the heterogeneous deformation and strain partition behaviors. The mechanical responses of titanium alloy with lamellar microstructure are analyzed from lamellae features' crystallographic and geometric aspects through crystal plasticity simulations. It is found that the coarser & beta; and finer & alpha; lamellae exhibited improved strain accommodation capacity which mainly benefitting from the large amount of plastic slip occurring in the coarse & beta; lamellae of lamellar microstructure. Furthermore, the interlamellar strain partition coefficient evolves dynamically and gradually stabilizes after 5% deformation. Considering the geometric and crystallographic orientations of & alpha; phase, angles 71 and 72 are used to evaluate the strengthening effects of & alpha; lamellae precipitating from 6 types of & beta; variants. Simulated results reveal that a more uniform strain partition occurs when cos 71 is in the range of 0.8-1.0 and cos 72 is lower than 0.3, while a higher deformation resistance occurs when cos 71 and cos 72 are in the range of 0.2-0.4 and 0.9 to 1.0, respectively. Therefore, finding an appropriate balance by manipulating the microstructural characteristics can simultaneously enhance the plasticity/strength of a titanium alloy. The obtained results will facilitate understanding the interlamellar strain partition behavior of titanium alloys and theoretically guide the microstructure designing for mechanical properties optimization.

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