zhangbing
|
- Professor
- Supervisor of Doctorate Candidates
- Supervisor of Master's Candidates
- Name (English):Robert Zhang
- Name (Pinyin):zhangbing
- School/Department:冶金工程学院
- Education Level:Postgraduate (Doctoral)
- Business Address:西安建筑科技大学
- Contact Information:359702589@qq.com
- Degree:Doctoral degree
- Professional Title:Professor
- Status:Employed
- Academic Titles:教授
- Alma Mater:西安建筑科技大学
- Teacher College:高性能金属材料制备与加工领军教授团队
- Discipline:Materials Processing Engineering
Other Contact Information
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- Paper Publications
Effect of Heterogeneous Ti Layers on Mechanical Properties of Cu/Ti Laminated Sheets Prepared by Accumulative Roll Bonding
Release time:2022-06-02 Hits:
- Impact Factor:1.9
- DOI number:10.1002/pssa.202200237
- Journal:Physica Status Solidi A-Applications and Materials Science
- Key Words:accumulative roll bonding (ARB);hetero-deformation-induced (HDI) stress;heterogeneous Ti layers;mechanical properties;microstructures
- Abstract:Cu/Ti laminated sheets with heterogeneous Ti layers are successfully fabricated by accumulative roll bonding (ARB). The microstructure during processing is characterized by scanning electron microscopy (SEM) and electron backscattered diffraction (EBSD). During the deformation of the constituent metals, the hard Ti layers neck preferentially but with a continuous layered structure. Upon four ARB cycles, there are five Ti layers with different microstructure states and grain sizes (from 1.3 to 0.5 μm) in the ARB4 sample. Tensile test of ARB4 sample indicates excellent comprehensive mechanical properties, compared with pure Cu and pure Ti, it has higher ultimate tensile strength (508 MPa), and the elongation (9.2%). In the result of loading–unloading–reloading test, there is a strain gradient during the tensile process due to heterogeneous existence of Ti layers, which produces a multilevel hetero-deformation-induced (HDI) stress strengthening and improves the coordinated deformation ability of the sample. Second, layered structure and interface with alternate strong and weak bonding can effectively hinder the propagation of cracks to outline higher strength with improved ductility. This structural design helps to prepare laminated materials sheet with excellent comprehensive mechanical properties through the ARB process.
- Indexed by:Article
- Discipline:Engineering
- Document Type:R
- Volume:219
- Issue:18
- Page Number:2200237
- ISSN No.:1862-6300
- Translation or Not:no
- Date of Publication:2022-01-01
- Included Journals:SCI
