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    1. Naturvetenskap och teknik
    2. Teknik och industri
    3. Tillverkningsteknik

    Nanostructured Metals and Alloys

    Processing, Microstructure, Mechanical Properties and Applications

    AvS H Whang

    Häftad, Engelska, 2016

    Del i serien Woodhead Publishing Series in Metals and Surface Engineering

    2 430 kr

    Beställningsvara. Skickas inom 10-15 vardagar. Fri frakt över 249 kr.

    Beskrivning

    Tensile strength, fatigue strength and ductility are important properties of nanostructured metallic materials, which make them suitable for use in applications where strength or strength-to-weight ratios are important. Nanostructured metals and alloys reviews the latest technologies used for production of these materials, as well as recent advances in research into their structure and mechanical properties.One of the most important issues facing nanostructured metals and alloys is how to produce them. Part one describes the different methods used to process bulk nanostructured metals and alloys, including chapters on severe plastic deformation, mechanical alloying and electrodeposition among others. Part two concentrates on the microstructure and properties of nanostructured metals, with chapters studying deformation structures such as twins, microstructure of ferrous alloys by equal channel angular processing, and characteristic structures of nanostructured metals prepared by plastic deformation. In part three, the mechanical properties of nanostructured metals and alloys are discussed, with chapters on such topics as strengthening mechanisms, nanostructured metals based on molecular dynamics computer simulations, and surface deformation. Part four focuses on existing and developing applications of nanostructured metals and alloys, covering topics such as nanostructured steel for automotives, steel sheet and nanostructured coatings by spraying.With its distinguished editor and international team of contributors, Nanostructured metals and alloys is a standard reference for manufacturers of metal components, as well as those with an academic research interest in metals and materials with enhanced properties.

    Produktinformation

    • Utgivningsdatum:2016-08-19
    • Mått:156 x 234 x 42 mm
    • Vikt:1 160 g
    • Format:Häftad
    • Språk:Engelska
    • Serie:Woodhead Publishing Series in Metals and Surface Engineering
    • Antal sidor:840
    • Förlag:Elsevier Science
    • ISBN:9780081017388

    Utforska kategorier

    • Tillverkningsteknik inom Naturvetenskap och teknik

    Mer om författaren

    Sung H. Whang is Professor of Mechanical Engineering at the Polytechnic Institute of New York University.

    Innehållsförteckning

    • Contributor contact detailsIntroductionPart I: Processing bulk nanostructured metals and alloysChapter 1: Producing bulk nanostructured metals and alloys by severe plastic deformation (SPD)Abstract:1.1 Introduction1.2 The principles of severe plastic deformation (SPD) processing1.3 New trends in SPD processing for effective grain refinement1.4 Enhanced properties achieved using SPD processing1.5 Innovation potential of bulk nanostructured materials1.6 ConclusionsChapter 2: Bulk nanostructured metals and alloys produced by accumulative roll-bondingAbstract:2.1 Introduction2.2 The principle of accumulative roll-bonding (ARB)2.3 Processing details2.4 Change in microstructures during the process2.5 Mechanical properties of nanostructured metals fabricated by ARB2.6 ConclusionsChapter 3: Nanocrystalline metals and alloys prepared by mechanical attritionAbstract:3.1 Introduction3.2 Mechanical attrition3.3 Nanocrystalline phase formation by mechanical attrition3.4 Consolidation of nanocrystalline powders3.5 Conclusion and future trends3.6 AcknowledgementsChapter 4: The processing of nanocrystalline steels by solid reactionAbstract:4.1 Introduction4.2 The finest grain structures in steels4.3 Phase transformation theory: a powerful tool for the design of advanced steels, from micro to nano4.4 NANOBAIN steel: a material going to extremes4.5 Accelerating the bainite reaction at low temperatures4.6 Characterizing nanocrystalline bainitic steels at the atomic scale4.7 The mechanical properties of nanocrystalline bainitic steels4.8 Conclusion and future trends4.10 AcknowledgementsChapter 5: The processing of bulk nanocrystalline metals and alloys by electrodepositionAbstract:5.1 Introduction5.2 Electrodeposition methods5.3 Examples of nanocrystalline metals and alloys prepared by electrodeposition5.4 Mechanical properties of nanocrystalline electrodeposits5.5 Corrosion properties of nanocrystalline electrodeposits5.6 Other properties of nanocrystalline electrodeposits5.7 Applications5.8 AcknowledgementsChapter 6: Bulk nanocrystalline and nanocomposite alloys produced from amorphous phaseAbstract:6.1 Introduction6.2 The formation of bulk metallic glassy alloys6.3 The formation of a nanostructure by crystallization of the glassy phase, by deformation or directly from the melt on casting6.4 The formation of nano-quasicrystals6.5 The mechanical properties of nanocomposite alloys6.6 The magnetic properties of nanocomposite alloys6.7 ConclusionsChapter 7: Severe plastic deformation and the production of nanostructured alloys by machiningAbstract:7.1 Introduction7.2 The mechanics of severe plastic deformation (SPD) in machining7.3 A study of microstructure refinement7.4 Bulk forms with ultrafine-grained (UFG) microstructure7.5 Nanostructured particulate7.6 Surface nanostructuring7.7 Conclusions7.8 AcknowledgementsPart II: MicrostructureChapter 8: Deformation structures including twins in nanograined pure metalsAbstract:8.1 Introduction8.2 Classical defect structures in nanograined metals8.3 Classical defect structures absent in nanograined metals8.4 Novel defect structures in nanograined metals8.5 The effect of initial microstructure on deformation structures8.6 Future trends8.7 AcknowledgementsChapter 9: Microstructure and mechanical properties of nanostructured low-carbon steel prepared by equal-channel angular pressingAbstract:9.1 Introduction9.2 The microstructural evolution of low-carbon steel (LCS)9.3 The mechanical response of a nanostructured LCS alloy9.4 Enhanced tensile properties by grain refinement and microstructural modification9.5 Continuous shear drawing: a new processing method9.6 ConclusionChapter 10: Characteristic structures and properties of nanostructured metals prepared by plastic deformationAbstract:10.1 Introduction10.2 Characteristic microstructures10.3 Hardening by annealing and softening by deformation10.4 Optimisation of microstructure and mechanical properties10.5 Conclusions10.6 AcknowledgementsPart III: Mechanical propertiesChapter 11: Strengthening mechanisms in nanocrystalline metalsAbstract:11.1 Introduction11.2 The deformation of polycrystals; the Hall–Petch model for strengthening; typical strength and hardness data11.3 Hall–Petch breakdown; a fine grain size limit to models11.4 Hall–Petch breakdown: the importance of defective materials11.5 Alternative deformation mechanisms at very fine grain sizes11.6 Strengthening caused by second-phase particles11.7 Strengthening caused by other factors: solute, order, twin boundaries11.8 Strengthening mechanisms in materials with ultrafine microstructure prepared by severe plastic deformation11.9 Conclusion and future trendsChapter 12: Elastic and plastic deformation in nanocrystalline metalsAbstract:12.1 Introduction12.2 Elastic strains in nanocrystalline metals12.3 Plastic deformation in nanocrystalline metals12.4 Conclusions and future trends12.5 Sources of further information and advice12.6 AcknowledgementsChapter 13: The mechanical properties of multi-scale metallic materialsAbstract:13.1 Introduction13.2 Mechanical properties of multi-scale metallic materials13.3 Deformation and fracture mechanisms of multi-scale metallic materials13.4 Future trends13.5 Conclusions13.6 AcknowledgementsChapter 14: Enhanced ductility and its mechanisms in nanocrystalline metallic materialsAbstract:14.1 Introduction14.2 General aspects concerning the tensile ductility of materials14.3 Plastic flow mechanisms in coarse-grained metallic polycrystals, ultrafine-grained metals and nanocrystalline metals with intermediate grains14.4 Plastic flow mechanisms in nanocrystalline metals with the finest grains14.5 Specific features of crack nucleation and growth processes in nanocrystalline metallic materials14.6 Enhanced ductility of artifact-free nanocrystalline metals with narrow grain size distributions14.7 Enhanced ductility of nanocrystalline metals due to twin deformation and growth twins14.8 Enhanced ductility of nanocrystalline metals due to strain rate hardening14.9 Enhanced ductility of single-phase nanocrystalline metals with bimodal structures14.10 Enhanced ductility of nanocrystalline metallic composites with second-phase nanoparticles, dendrite-like inclusions and carbon nanotubes14.11 Conclusions and future trends14.12 Sources of further information and advice14.13 AcknowledgementsChapter 15: The mechanical behavior of nanostructured metals based on molecular dynamics computer simulationsAbstract:15.1 Introduction15.2 The structure and properties of grain boundaries in nanocrystalline (NC) metals by molecular dynamics (MD) simulation15.3 Deformation mechanisms in nanoscale grains15.4 Grain growth and microstructure evolution in NC metals15.5 Conclusions15.6 AcknowledgementChapter 16: The surface deformation and mechanical behavior of nanostructured alloysAbstract:16.1 Introduction16.2 Mechanics aspects during surface severe plastic deformation16.3 Changes in the microstructure and stress states induced by surface severe plastic deformation16.4 Tensile properties of metals with a nanocrystalline surface and hardened layer16.5 Fatigue resistance of metals with a nanocrystalline surface and hardened layer16.6 Wear resistance of metals with a nanocrystalline surface and hardened layer16.7 Conclusions16.8 AcknowledgementsChapter 17: Fatigue behaviour in nanostructured metalsAbstract:17.1 Introduction and motivation17.2 General findings on the fatigue behaviour and the fatigue lives of nanostructured model materials17.3 Light metal alloys17.4 Fatigue behaviour and life of nanostructured steels17.5 Consequences and strategies for optimizing fatigue lives and cyclic deformation behaviourChapter 18: Superplastic deformation in nanocrystalline metals and alloysAbstract:18.1 Introduction18.2 Theoretical predictions18.3 Superplasticity in nanocrystalline metals and alloys18.4 Specific features of superplasticity in nanocrystalline materials18.5 Deformation mechanisms18.6 Conclusions18.7 AcknowledgmentsChapter 19: Creep and high-temperature deformation in nanostructured metals and alloysAbstract:19.1 Introduction19.2 Temperature-dependent deformation in fine-grained pure metals19.3 Creep and high-temperature deformation in nanostructured alloys19.4 Deformation mechanisms and modeling19.5 ConclusionsPart IV: ApplicationsChapter 20: Processing nanostructured metal and metal-matrix coatings by thermal and cold sprayingAbstract:20.1 Introduction20.2 Nanostructured metal-base feedstock20.3 Thermal spray processing20.4 Thermal spray processing of nanostructured coatings: tungsten carbide-cobalt (WC-Co) coatings20.5 Thermal spray processing of nanostructured coatings: alumina-titania (n-AT) coatings20.6 Thermal spray processing of nanostructured coatings: titanium oxide coatings20.7 Thermal spray processing of nanostructured coatings: MCrAlY and NiCrAlY coatings20.8 The cold spray process20.9 Characteristics of cold spray material20.10 Cold-sprayed processing of WC-Co20.11 Cold-sprayed processing of non-cryogenically milled n-WERKZ AA508320.12 Future trends20.13 Sources of further information and advice20.14 AcknowledgementsChapter 21: Nanocoatings for commercial and industrial applicationsAbstract:21.1 Introduction21.2 Overview of nanostructured metals and alloys21.3 Commercialization of nanostructured materials21.4 Current and emerging applications21.5 ConclusionsChapter 22: Applying nanostructured steel sheets to automotive body structuresChapter 23: Production processes for nanostructured wires, bars and stripsChapter 24: Nanostructured plain carbon-manganese (C-Mn) steel sheets prepared by ultra-fast cooling and short interval multi-pass hot rollingAbstract:24.1 Introduction24.2 The concept of ultra-fast direct cooling and short interval multi-pass hot rolling (UDCSMR) and an experimental hot rolling mill24.3 Nanostructured carbon-manganese (C-Mn) steel sheets produced by UDCSMR24.4 Grain refinement mechanisms24.5 Deformation characteristics24.6 Welding and application to some prototype parts24.7 ConclusionsIndex
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