TY - JOUR
T1 - Effects of low-temperature aging on the microstructure and functional stability of a hot-rolled high-purity NiTi alloy
AU - Gao, Kangxu
AU - Dong, Zixiang
AU - Wang, Huiqin
AU - Ma, Biao
AU - Zhao, Tianfei
AU - Fu, Quan
AU - Zheng, Tianxu
AU - Liu, Yi
AU - Song, Wei
AU - Wang, Jian
AU - Xia, Zhiwei
AU - Wu, Zixiang
AU - Tang, Bin
N1 - Publisher Copyright:
© 2026 The Authors.
PY - 2026/9/1
Y1 - 2026/9/1
N2 - In this study, low-temperature aging treatments were conducted on a hot-rolled high-purity NiTi alloy. The effects of aging temperature (300 °C-500 °C) and aging time (1h–12h) on the microstructure, martensitic transformation behavior, and functional properties of the alloy were systematically investigated. The results reveal that, during aging at 300–450 °C, Ni4Ti3 precipitates disperse within the matrix, which suppress martensite nucleation and promote the intermediate R-phase transformation, causing the transformation path to change from a one-stage to two-stage or even multi-stage martensitic transformation. At 500 °C, the precipitates undergo re-dissolution into the matrix, and the transformation behavior reverts to a one-stage characteristic. Based on the room-temperature loading–unloading test results, it is found that different aging conditions affect the stress-induced martensitic transformation (SIM) process by altering precipitate morphology and transformation behavior, thereby modifying key parameters such as the critical transformation stress and plateau stress, and consequently regulating the functional stability of the alloy. With increasing aging temperature, the critical stress for SIM decreases from a maximum of 226.4 MPa at 300 °C to a minimum of 104.3 MPa at 450 °C, and then rebounds to 175.2 MPa at 500 °C. With prolonged aging time, the critical stress for SIM continuously decreases. The optimal functional stability of the hot-rolled high-purity NiTi alloy is achieved under the aging condition of 400 °C for 1 h. This study provides an in-depth analysis of the microstructure, martensitic transformation behavior, and functional properties of the high-purity NiTi alloy under various aging conditions, elucidating the “process - microstructure - transformation - performance” regulation mechanism. These findings offer a theoretical basis for optimizing the functional stability and promoting the widespread application of high-purity NiTi alloys.
AB - In this study, low-temperature aging treatments were conducted on a hot-rolled high-purity NiTi alloy. The effects of aging temperature (300 °C-500 °C) and aging time (1h–12h) on the microstructure, martensitic transformation behavior, and functional properties of the alloy were systematically investigated. The results reveal that, during aging at 300–450 °C, Ni4Ti3 precipitates disperse within the matrix, which suppress martensite nucleation and promote the intermediate R-phase transformation, causing the transformation path to change from a one-stage to two-stage or even multi-stage martensitic transformation. At 500 °C, the precipitates undergo re-dissolution into the matrix, and the transformation behavior reverts to a one-stage characteristic. Based on the room-temperature loading–unloading test results, it is found that different aging conditions affect the stress-induced martensitic transformation (SIM) process by altering precipitate morphology and transformation behavior, thereby modifying key parameters such as the critical transformation stress and plateau stress, and consequently regulating the functional stability of the alloy. With increasing aging temperature, the critical stress for SIM decreases from a maximum of 226.4 MPa at 300 °C to a minimum of 104.3 MPa at 450 °C, and then rebounds to 175.2 MPa at 500 °C. With prolonged aging time, the critical stress for SIM continuously decreases. The optimal functional stability of the hot-rolled high-purity NiTi alloy is achieved under the aging condition of 400 °C for 1 h. This study provides an in-depth analysis of the microstructure, martensitic transformation behavior, and functional properties of the high-purity NiTi alloy under various aging conditions, elucidating the “process - microstructure - transformation - performance” regulation mechanism. These findings offer a theoretical basis for optimizing the functional stability and promoting the widespread application of high-purity NiTi alloys.
KW - High-purity NiTi alloy
KW - Low-temperature aging
KW - NiTi precipitate
KW - Stress-induced martensitic transformation
KW - Transformation behavior
UR - https://www.scopus.com/pages/publications/105046537046
U2 - 10.1016/j.jmrt.2026.07.314
DO - 10.1016/j.jmrt.2026.07.314
M3 - 文章
AN - SCOPUS:105046537046
SN - 2238-7854
VL - 44
SP - 686
EP - 696
JO - Journal of Materials Research and Technology
JF - Journal of Materials Research and Technology
ER -