Progresses in Fabrication of High-performance Metals by Using Cryorolling

被引:0
|
作者
Yu H. [1 ,2 ,3 ]
机构
[1] State Key Laboratory of High Performance Complex Manufacturing, Central South University, Changsha
[2] College of Mechanical and Electrical Engineering, Central South University, Changsha
[3] Light Alloys Research Institute, Central South University, Changsha
关键词
Cryorolling; High strength and toughness; Mechanical property; Metal and alloy; Ultrafine-grained material;
D O I
10.3969/j.issn.1004-132X.2020.01.010
中图分类号
学科分类号
摘要
Compared with conventional hot rolling, warm rolling and cold rolling, cryorolling was an innovative technique. During cryorolling, the ultralow temperature suppressed the dislocation movement and dynamic recovery during deformation, thereby enhancing the grain-refinement, and enhancing both strength and ductility of metals and alloys. The progresses in development of high-performance metals and alloys by using cryorolling were introduced, including aluminium, copper, titanium, as well as metal laminated composites. Finally, prospects for the preparation of high-performance metal materials by using cryrolling in the future were also presented. © 2020, China Mechanical Engineering Magazine Office. All right reserved.
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页码:89 / 99
页数:10
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共 67 条
  • [51] Zherebtsov S.V., Dyakonov G.S., Salem A.A., Et al., Formation of Nanostructures in Commercial-purity Titanium via Cryorolling, Acta Materialia, 61, pp. 1167-1178, (2013)
  • [52] Yu H.L., Yan M., Li J.T., Et al., Mechanical Properties and Microstructure of a Ti-6Al-4V Alloy subjected to Cold Rolling, Asymmetric Rolling and Asymmetric Cryorolling, Materials Science and Engineering A, 710, pp. 10-16, (2018)
  • [53] Huang S., Zong Y., Shan D., Application of Thermohydrogen Processing to Ti6Al4V Alloy Blade Isothermal Forging, Materials Science and Engineering A, 561, pp. 17-25, (2013)
  • [54] Ji C., Huang H., Sun J., Et al., Research Progresses on Cast-rolling Bonding Technology of Laminated Metal Clad Strips, China Mechanical Engineering, 30, 15, pp. 1873-1881, (2019)
  • [55] Wang L., Du Q., Li C., Et al., Enhanced Mechanical Properties of Lamellar Cu/Al Composites Processed via High-temperature Accumulative Roll Bonding, Transactions of Nonferrous Metals Society of China, 29, pp. 1621-1630, (2019)
  • [56] Khaledi K., Brepols T., Reese S., A Multiscale Description of Bond Formation in Cold Roll Bonding Considering Periodic Cracking of Thin Surface Films, Mechanics of Materials, 137, (2019)
  • [57] Wang Z.J., Ma M., Qiu Z.X., Et al., Microstructure, Texture and Mechanical Properties of AA1060 Aluminum Alloy Processed by Cryogenic Accumulative Roll Bonding, Materials Characterization, 139, pp. 269-278, (2018)
  • [58] Takagawa Y., Tsujiuchi Y., Watanabe C., Et al., Improvement in Mechanical Properties of a Cu-2.0 Mass%Ni-0.5 Mass%Si-0.1 Mass%Zr Alloy by Combining both Accumulative Roll-bonding and Cryo-rolling with Aging, Materials Transactions, 54, pp. 1-8, (2013)
  • [59] Yu H.L., Lu C., Tieu K., Et al., Interface Bonding Mechanism of Al/Ti/Al Laminate Sheets subjected to Room-temperature Rolling and Cryorolling, Journal of Materials Research, 32, pp. 3761-3768, (2017)
  • [60] Ito Y., Horita Z., Microstructural Evolution in Pure Aluminum Processed by High-pressure Torsion, Materials Science and Engineering A, 503, pp. 32-36, (2009)