Development and present situation of laminated metal composites

被引:0
|
作者
Zhang T. [1 ]
Xu H. [1 ]
Li Z.-J. [1 ]
Dong A.-P. [1 ]
Xing H. [1 ]
Du D.-F. [1 ]
Sun B.-D. [1 ]
机构
[1] Shanghai Key Lab of Advanced High-temperature Materials and Precision Forming, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai
关键词
Development; Development prospect; Laminated metal composites; Method; Research status;
D O I
10.13374/j.issn2095-9389.2020.06.17.002
中图分类号
学科分类号
摘要
Laminated metal composites are composed of two or more metals or alloys, which integrate various excellent properties of the component materials and exhibit good comprehensive properties. The history of laminated metal composites can be traced back to more than 800 BC, and their systematic research began in the 1970s. Over the past 30 years, various methods have been invented to fabricate laminated metal composites, including explosive bonding, rolling bonding, hot-pressing bonding, and deposition bonding. Explosive bounding method has irreplaceable advantages in the preparation of medium thick plates with its products being widely used in military industry, ship, electric power, chemical industry, and other fields. On the other hand, rolling bonding is most widely used because of its ability of large quantity production. Cold roll bonding (CRB) and accumulative roll bonding (ARB) are two representative laminate preparation technologies that are utilized in the fabrication of a large number of material systems. Up to now, laminates prepared by rolling bonding are widely used in automobile, ship, aerospace, and other fields. The preparation of Ti/Al, Ti/TiAl, and Ti6Al4V/TiAl layered composites via vacuum hot-pressing bonding has attracted much attention in recent years because of its ability to avoid gas pollution such as oxygen production. Moreover, laminated metal composites produced by deposition bonding have great potential as corrosion resistant coatings, wear-resistant coatings, and high-strength conductors and implants. Although laminated metal composites have been well developed, there are still various problems to be solved. For some soft/hard material systems, the hard layer introduces plastic instability during the rolling process that destroys the continuity between layers. As a consequence, serious weakening of the comprehensive performance of the laminates is observed. Furthermore, only few studies on the design and new processes of laminated metal materials have been conducted. This paper reviewed the development of laminated metal composites, introduced the preparation methods and advantages and disadvantages of layered metal composites, and analyzed the research status of laminated metal composites at home and abroad. © 2021, Science Press. All right reserved.
引用
收藏
页码:67 / 75
页数:8
相关论文
共 48 条
  • [41] Lima D D, Mantri S A, Mikler C V, Et al., Laser additive processing of a functionally graded internal fracture fixation plate, Mater Des, 130, (2017)
  • [42] Behera R R, Hasan A, Sankar M S, Et al., Laser cladding with HA and functionally graded TiO<sub>2</sub>-HA precursors on Ti-6Al-4V alloy for enhancing bioactivity and cyto-compatibility, Surf Coat Technol, 352, (2018)
  • [43] Liu W P, DuPont J N., Fabrication of functionally graded TiC/Ti composites by laser engineered net shaping, Scripta Mater, 48, 9, (2003)
  • [44] Zhang T, Xu H, Li Z J, Et al., Microstructure and properties of TC4/TNTZO multi-layered composite by direct laser deposition, J Mech Behav Biomed Mater, 109, (2020)
  • [45] Markandan K, Lim R, Kanaujia P K, Et al., Additive manufacturing of composite materials and functionally graded structures using selective heat melting technique, J Mater Sci Technol, 47, (2020)
  • [46] Du D F, Haley J C, Dong A P, Et al., Influence of static magnetic field on microstructure and mechanical behavior of selective laser melted AlSi10Mg alloy, Mater Des, 181, (2019)
  • [47] Todaro C J, Easton M A, Qiu D, Et al., Grain structure control during metal 3D printing by high-intensity ultrasound, Nat Commun, 11, (2020)
  • [48] Cohades A, Cetin A, Mortensen A., Designing laminated metal composites for tensile ductility, Mater Des, 66, (2015)