Gaoyong Lin

ORCID: 0000-0001-8004-4123
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About
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Research Areas
  • Aluminum Alloys Composites Properties
  • Aluminum Alloy Microstructure Properties
  • Microstructure and mechanical properties
  • Metallurgy and Material Forming
  • Nuclear Materials and Properties
  • Fusion materials and technologies
  • High Temperature Alloys and Creep
  • Microstructure and Mechanical Properties of Steels
  • Bauxite Residue and Utilization
  • Metallurgy and Material Science
  • Intermetallics and Advanced Alloy Properties
  • Magnesium Alloys: Properties and Applications
  • Electromagnetic Effects on Materials
  • Advanced materials and composites
  • Titanium Alloys Microstructure and Properties
  • Advanced Welding Techniques Analysis
  • Powder Metallurgy Techniques and Materials
  • Electronic Packaging and Soldering Technologies
  • High-Velocity Impact and Material Behavior
  • Electrodeposition and Electroless Coatings
  • Recycling and utilization of industrial and municipal waste in materials production
  • Metal Forming Simulation Techniques
  • Additive Manufacturing Materials and Processes
  • Catalytic Processes in Materials Science
  • Nanomaterials for catalytic reactions

Central South University
2015-2024

State Key Laboratory of Powder Metallurgy
2021

10.1016/j.ijrmhm.2013.11.003 article EN International Journal of Refractory Metals and Hard Materials 2013-11-14

A diffusion rolling procedure was employed for the fabrication of Al–Cu laminated composites; microstructure and mechanical properties interface were investigated. With bonding initially, intermetallic compounds (IMCs) occurred at Al/Cu interface. After plastic deformation by composites, strip IMCs broke became discontinuous equiaxed particulates. Compared with roll heat treatment bonding, shear tensile strength two-stage processed reached a maximum value equivalent to 90 that Al. Therefore,...

10.1179/1743284713y.0000000397 article EN Materials Science and Technology 2013-10-31

High-temperature compression deformation of a Zr-4 metal matrix with dispersed coated surrogate nuclear fuel particles was investigated at 750 °C–950 °C strain rate 0.01–1.0 s−1 and height reduction 20%. Scanning electron microscopy utilized to investigate the influence conditions on microstructure composite damage particles. The results indicated that flow stress increased increasing decreasing temperature. true stress–strain curves showed obvious serrated oscillation characteristics. There...

10.1016/j.rinp.2018.04.025 article EN cc-by-nc-nd Results in Physics 2018-04-13
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