Ultrasonic Impact Strengthening of Titanium Alloys: State-of-the-art and Prospectives

被引:1
|
作者
Zha X. [1 ,2 ]
Yuan Z. [1 ]
Qin H. [1 ]
Xi L. [1 ]
Zhang T. [3 ]
Jiang F. [4 ]
机构
[1] College of Marine Equipment and Mechanical Engineering, Jimei University, Fujian, Xiamen
[2] State Key Laboratory of Digital Manufacturing Equipment and Technology, Huazhong University of Science and Technology, Wuhan
[3] School of Mechanical,Materials,Mechatronic and Giomedical Engineering, University of Wollongong, Wollongong, 2522, NSW
[4] Institute of Manufacturing Engineering, Huaqiao University, Fujian, Xiamen
来源
Zhongguo Jixie Gongcheng/China Mechanical Engineering | 2023年 / 34卷 / 19期
关键词
processing parameter; service performance; titanium alloy; ultrasonic impact strengthening;
D O I
10.3969/j.issn.1004-132X.2023.19.001
中图分类号
学科分类号
摘要
This review started with the introduction to the principles and research progresses of the ultrasonic impact strengthening technology for titanium alloys. The influences of the properties of titanium alloys were investigated, which was associated with the different parameters of ultrasonic impact strengthening processes(static pressure, ultrasonic amplitude and numbers of rolling). Results show that the optimization of different processing parameters has a significant improvement on the performance strengthening of the titanium alloys. However, there is a critical value of the different processing parameters. Once the critical values arc exceeded, continuing to increase the parameter values will reduce the service performance of the titanium alloys. Finally, the difficulties of ultrasonic impact strengthening technology which used in the engineering applications were summarized. Combined with the development of intelligent manufacturing, the future development of ultrasonic impact strengthening technology was prospected. © 2023 China Mechanical Engineering Magazine Office. All rights reserved.
引用
收藏
页码:2269 / 2287
页数:18
相关论文
共 84 条
  • [1] ARRAZOLA P J, GARAY A, IRIARTE L M, Et al., Machinability of Titanium Alloys (Ti6A14V and Ti555. 3), Journal of Materials Processing Technology, 209, 5, pp. 2223-2230, (2009)
  • [2] ZHAO Pengfei, WEN Lei, GUO Wenying, Et al., Accelerated Corrosion Behavior and Mechanism of High-strength Aluminum Alloy by Cyclic Salt-spray Test, Surface Technology, 51, 10, pp. 260-268, (2022)
  • [3] CHEN Jinlong, Studies on Composition-constituent Design and Mechanical Properties of Novel Heat-resistant Aluminum Alloys, (2020)
  • [4] LUO Xuan, HAN Fang, HUANG Tianlin, Et al., Microstructure and Mechanical Properties of Layered Heterostructured Mg-3Gd Alloy[J], Acta Metallurgica Sinica, 58, 11, pp. 1489-1496, (2022)
  • [5] LI Bingqiang, ZHOU Honggen, LIU Jinfeng, Et al., Multiaxial Fatigue Damage and Reliability Assessment of Aero-engine Compressor Blades Made of TC4 Titanium Alloy, Aerospace Science and Technology, 119, (2021)
  • [6] TONG Lewei, NIU Lichao, REN Zhenzhen, Et al., Experimental Study on Fatigue Strength of Welded Joints of High Strength Steel Q550D[J], Engineering Mechanics, 38, 12, pp. 214-222, (2021)
  • [7] LI Jie, LI Zhi, YAN Minggao, Development of High-alloy Ultra-high Strength Steel[J], Journal of Materials Engineering, 4, pp. 61-65, (2007)
  • [8] LIU Shifeng, SONG Xi, XUE Tong, Et al., Application and Development of Titanium Alloy and Titanium Matrix Composite Materials in Aerospace[J], Journal of Aeronautical Materials, 40, 3, pp. 77-94, (2020)
  • [9] ZONG Y, YE J., Research on the Development of Titanium Alloy Recovery Technology in Civil Aviation Industry[C], 2020 International Conference on Optoelectronic Materials and Devices, pp. 304-310, (2021)
  • [10] ZHAO Shiteng, ZHANG Ruopeng, YU Qin, Et al., Response to Comment on "Cryoforged Nano-twinned Titanium with Ultrahigh Strength and Ductility" [J], Science, 373, 6594, pp. 1363-1368, (2022)