Microstructure, texture and interface integrity in sheets processed by Asymmetric Accumulative Roll-Bonding

被引:25
作者
de Godoi, Renan Pereira [1 ]
Camilo Magalhaes, Danielle Cristina [1 ]
Avalos, Martina [2 ]
Eduardo Bolmaro, Raul [2 ]
Sordi, Vitor Luiz [1 ]
Kliauga, Andrea Madeira [1 ]
机构
[1] Fed Univ Sao Carlos UFSCar, Dept Mat Engn, BR-13565905 Sao Carlos, SP, Brazil
[2] FCEIA UNR CONICET, Inst Phys Rosario IFIR, Bv 27 Febrero 210 Bis,S2000EZP, Rosario, Argentina
来源
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING | 2020年 / 771卷
基金
巴西圣保罗研究基金会;
关键词
Aluminum alloy; Asymmetric accumulative roll-bonding (AARB); Diffusion bonding; Microstructure; Texture; Mechanical properties; HIGH-PURITY ALUMINUM; MECHANICAL-PROPERTIES; GRAINED ALUMINUM; DEFORMATION TEXTURE; AA2024; ALLOY; EVOLUTION; RECRYSTALLIZATION; DUCTILITY; STRENGTH; SHEAR;
D O I
10.1016/j.msea.2019.138634
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Accumulative Roll-Bonding (ARB) and Asymmetric Rolling (AR) techniques were combined to produce ultrafine-grained aluminum sheets with the mechanical characteristics of a Severe Plastic Deformation (SPD) process. Temperature and number of bonding cycles were varied to promote grain refinement, texture randomization and high-quality sheet bonding. Finite element simulation for a single pass was performed to clarify the strain distribution differences between symmetric and asymmetric roll -bonding. The microstructure and crystallographic texture were measured by Electron Backscatter Diffraction (EBSD) and X-ray diffraction. Hardness and tensile tests characterized strain distribution and bonding efficiency. A fine grain structure with a mean grain size of 1.0 mu m was achieved at 350 degrees C, whereas a coarser grain structure was obtained at 400 degrees C. The grain size and shape distribution were linked to enhancing the mechanical strength in a transversal direction. During repeated bonding cycles at both temperatures, extra shear in the interfacial region yielded favorable homogeneous strain distribution and a weak shear texture across the sheet. Rotated-cube orientation was the strongest component in both processing temperatures. To increase the interfacial strength, mainly on the last bond interface, an extra 50% reduction step was added. This improved the adhesion in the last bonding interface, and thus enhanced the ductility. These findings helped to provide a basis for determining the processing conditions for aluminum alloys.
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页数:14
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共 52 条
  • [1] Nano/ultrafine grained AA2024 alloy processed by accumulative roll bonding: A study of microstructure, deformation texture and mechanical properties
    Alvand, M.
    Naseri, M.
    Borhani, E.
    Abdollah-Pour, H.
    [J]. JOURNAL OF ALLOYS AND COMPOUNDS, 2017, 712 : 517 - 525
  • [2] Microstructure Evolution and Mechanical and Corrosion Behavior of Accumulative Roll Bonded Mg-2%Zn/Al-7075 Multilayered Composite
    Anne, Gajanan
    Ramesh, M. R.
    Nayaka, H. Shivananda
    Arya, Shashi Bhushan
    Sahu, Sandeep
    [J]. JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2017, 26 (04) : 1726 - 1734
  • [3] Tailoring particle distribution non-uniformity and grain refinement in nanostructured metal matrix composites fabricated by severe plastic deformation (SPD): a correlation with flow stress
    Bagherpour, E.
    Reihanian, M.
    Miyamoto, H.
    [J]. JOURNAL OF MATERIALS SCIENCE, 2017, 52 (06) : 3436 - 3446
  • [4] OVERVIEW NO-96 - EVOLUTION OF FCC DEFORMATION STRUCTURES IN POLYSLIP
    BAY, B
    HANSEN, N
    HUGHES, DA
    KUHLMANNWILSDORF, D
    [J]. ACTA METALLURGICA ET MATERIALIA, 1992, 40 (02): : 205 - 219
  • [5] Plastic anisotropy of ultrafine grained aluminium alloys produced by accumulative roll bonding
    Beausir, B.
    Scharnweber, J.
    Jaschinski, J.
    Brokmeier, H. -G.
    Oertel, C. -G.
    Skrotzki, W.
    [J]. MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2010, 527 (13-14): : 3271 - 3278
  • [6] Bunge H.J., 2013, Texture Analysis in Materials Science: Mathematical Methods
  • [7] Asymmetric cryorolling of AA6061 Al alloy: Strain distribution, texture and age hardening behavior
    Camilo Magalhaes, Danielle Cristina
    Kliauga, Andrea Madeira
    Ferrante, Maurizio
    Sordi, Vitor Luiz
    [J]. MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2018, 736 : 53 - 60
  • [8] Confined recrystallization of high-purity aluminium during accumulative roll bonding of aluminium laminates
    Chekhonin, Paul
    Beausir, Benoit
    Scharnweber, Juliane
    Oertel, Carl-Georg
    Hausoel, Tina
    Hoeppel, Heinz Werner
    Brokmeier, Heinz-Guenter
    Skrotzki, Werner
    [J]. ACTA MATERIALIA, 2012, 60 (11) : 4661 - 4671
  • [9] Research of textures of ultrafine grains pure copper produced by accumulative roll-bonding
    Chen, Liangwei
    Shi, Qingnan
    Chen, Dengquan
    Zhou, Shiping
    Wang, Junli
    Luo, Ximing
    [J]. MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2009, 508 (1-2): : 37 - 42
  • [10] Analysis of deformation texture inhomogeneity and stability condition of shear components in fcc metals
    Choi, CH
    Kwon, JW
    Oh, KH
    Lee, DN
    [J]. ACTA MATERIALIA, 1997, 45 (12) : 5119 - 5128