Nanomaterials by severe plastic deformation: review of historical developments and recent advances. Issue 4 (3rd April 2022)
- Record Type:
- Journal Article
- Title:
- Nanomaterials by severe plastic deformation: review of historical developments and recent advances. Issue 4 (3rd April 2022)
- Main Title:
- Nanomaterials by severe plastic deformation: review of historical developments and recent advances
- Authors:
- Edalati, Kaveh
Bachmaier, Andrea
Beloshenko, Victor A.
Beygelzimer, Yan
Blank, Vladimir D.
Botta, Walter J.
Bryła, Krzysztof
Čížek, Jakub
Divinski, Sergiy
Enikeev, Nariman A.
Estrin, Yuri
Faraji, Ghader
Figueiredo, Roberto B.
Fuji, Masayoshi
Furuta, Tadahiko
Grosdidier, Thierry
Gubicza, Jenő
Hohenwarter, Anton
Horita, Zenji
Huot, Jacques
Ikoma, Yoshifumi
Janeček, Miloš
Kawasaki, Megumi
Král, Petr
Kuramoto, Shigeru
Langdon, Terence G.
Leiva, Daniel R.
Levitas, Valery I.
Mazilkin, Andrey
Mito, Masaki
Miyamoto, Hiroyuki
Nishizaki, Terukazu
Pippan, Reinhard
Popov, Vladimir V.
Popova, Elena N.
Purcek, Gencaga
Renk, Oliver
Révész, Ádám
Sauvage, Xavier
Sklenicka, Vaclav
Skrotzki, Werner
Straumal, Boris B.
Suwas, Satyam
Toth, Laszlo S.
Tsuji, Nobuhiro
Valiev, Ruslan Z.
Wilde, Gerhard
Zehetbauer, Michael J.
Zhu, Xinkun
… (more) - Abstract:
- Abstract : Severe plastic deformation (SPD) is effective in producing bulk ultrafine-grained and nanostructured materials with large densities of lattice defects. This field, also known as NanoSPD, experienced a significant progress within the past two decades. Beside classic SPD methods such as high-pressure torsion, equal-channel angular pressing, accumulative roll-bonding, twist extrusion, and multi-directional forging, various continuous techniques were introduced to produce upscaled samples. Moreover, numerous alloys, glasses, semiconductors, ceramics, polymers, and their composites were processed. The SPD methods were used to synthesize new materials or to stabilize metastable phases with advanced mechanical and functional properties. High strength combined with high ductility, low/room-temperature superplasticity, creep resistance, hydrogen storage, photocatalytic hydrogen production, photocatalytic CO2 conversion, superconductivity, thermoelectric performance, radiation resistance, corrosion resistance, and biocompatibility are some highlighted properties of SPD-processed materials. This article reviews recent advances in the NanoSPD field and provides a brief history regarding its progress from the ancient times to modernity. Abbreviations: ARB: Accumulative Roll-Bonding; BCC: Body-Centered Cubic; DAC: Diamond Anvil Cell; EBSD: Electron Backscatter Diffraction; ECAP: Equal-Channel Angular Pressing (Extrusion); FCC: Face-Centered Cubic; FEM: Finite Element Method;Abstract : Severe plastic deformation (SPD) is effective in producing bulk ultrafine-grained and nanostructured materials with large densities of lattice defects. This field, also known as NanoSPD, experienced a significant progress within the past two decades. Beside classic SPD methods such as high-pressure torsion, equal-channel angular pressing, accumulative roll-bonding, twist extrusion, and multi-directional forging, various continuous techniques were introduced to produce upscaled samples. Moreover, numerous alloys, glasses, semiconductors, ceramics, polymers, and their composites were processed. The SPD methods were used to synthesize new materials or to stabilize metastable phases with advanced mechanical and functional properties. High strength combined with high ductility, low/room-temperature superplasticity, creep resistance, hydrogen storage, photocatalytic hydrogen production, photocatalytic CO2 conversion, superconductivity, thermoelectric performance, radiation resistance, corrosion resistance, and biocompatibility are some highlighted properties of SPD-processed materials. This article reviews recent advances in the NanoSPD field and provides a brief history regarding its progress from the ancient times to modernity. Abbreviations: ARB: Accumulative Roll-Bonding; BCC: Body-Centered Cubic; DAC: Diamond Anvil Cell; EBSD: Electron Backscatter Diffraction; ECAP: Equal-Channel Angular Pressing (Extrusion); FCC: Face-Centered Cubic; FEM: Finite Element Method; FSP: Friction Stir Processing; HCP: Hexagonal Close-Packed; HPT: High-Pressure Torsion; HPTT: High-Pressure Tube Twisting; MDF: Multi-Directional (-Axial) Forging; NanoSPD: Nanomaterials by Severe Plastic Deformation; SDAC: Shear (Rotational) Diamond Anvil Cell; SEM: Scanning Electron Microscopy; SMAT: Surface Mechanical Attrition Treatment; SPD: Severe Plastic Deformation; TE: Twist Extrusion; TEM: Transmission Electron Microscopy; UFG: Ultrafine Grained GRAPHICAL ABSTRACT: UF0001 IMPACT STATEMENT: This article comprehensively reviews recent advances on development of ultrafine-grained and nanostructured materials by severe plastic deformation and provides a brief history regarding the progress of this field. … (more)
- Is Part Of:
- Materials research letters. Volume 10:Issue 4(2022)
- Journal:
- Materials research letters
- Issue:
- Volume 10:Issue 4(2022)
- Issue Display:
- Volume 10, Issue 4 (2022)
- Year:
- 2022
- Volume:
- 10
- Issue:
- 4
- Issue Sort Value:
- 2022-0010-0004-0000
- Page Start:
- 163
- Page End:
- 256
- Publication Date:
- 2022-04-03
- Subjects:
- severe plastic deformation (SPD) -- surface severe plastic deformation -- ultrafine-grained (UFG) materials -- mechanical properties -- functional properties
Materials science -- Research -- Periodicals
Biomedical materials -- Research -- Periodicals
Composite materials -- Research -- Periodicals
Biomedical materials -- Research
Composite materials -- Research
Materials science -- Research
Periodicals
620.1105 - Journal URLs:
- http://www.tandfonline.com/loi/tmrl20#.VwyyuVL2aic ↗
http://www.tandfonline.com/loi/tmrl20 ↗
http://www.tandfonline.com/ ↗ - DOI:
- 10.1080/21663831.2022.2029779 ↗
- Languages:
- English
- ISSNs:
- 2166-3831
- Deposit Type:
- Legaldeposit
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- Available online (eLD content is only available in our Reading Rooms) ↗
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- British Library DSC - BLDSS-3PM
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- 25800.xml