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

    Advances in Powder Metallurgy

    Properties, Processing and Applications

    AvIsaac Chang,Yuyuan Zhao

    Inbunden, Engelska, 2013

    Del i serien Woodhead Publishing Series in Metals and Surface Engineering

    2 554 kr

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

    Beskrivning

    Powder metallurgy (PM) is a popular metal forming technology used to produce dense and precision components. Different powder and component forming routes can be used to create an end product with specific properties for a particular application or industry. Advances in powder metallurgy explores a range of materials and techniques used for powder metallurgy and the use of this technology across a variety of application areas.

    Part one discusses the forming and shaping of metal powders and includes chapters on atomisation techniques, electrolysis and plasma synthesis of metallic nanopowders. Part two goes on to highlight specific materials and their properties including advanced powdered steel alloys, porous metals and titanium alloys. Part three reviews the manufacture and densification of PM components and explores joining techniques, process optimisation in powder component manufacturing and non-destructive evaluation of PM parts. Finally, part four focusses on the applications of PM in the automotive industry and the use of PM in the production of cutting tools and biomaterials.

    Advances in powder metallurgy is a standard reference for structural engineers and component manufacturers in the metal forming industry, professionals working in industries that use PM components and academics with a research interest in the field.

    • Discusses the forming and shaping of metal powders and includes chapters on atomisation techniques
    • Highlights specific materials and their properties including advanced powdered steel alloys, porous metals and titanium alloys
    • Reviews the manufacture and densification of PM components and explores joining techniques

    Produktinformation

    • Utgivningsdatum:2013-08-31
    • Mått:156 x 234 x undefined mm
    • Vikt:1 060 g
    • Format:Inbunden
    • Språk:Engelska
    • Serie:Woodhead Publishing Series in Metals and Surface Engineering
    • Antal sidor:624
    • Förlag:Elsevier Science
    • ISBN:9780857094209

    Utforska kategorier

    • Tillverkningsteknik inom Naturvetenskap och teknik

    Mer om författaren

    Dr Isaac Chang is Head of Education at the School of Metallurgy and Materials, University of Birmingham, UK. Dr Yuyuan Zhao is Reader in Materials Engineering at the School of Engineering, University of Liverpool, UK.

    Innehållsförteckning

    • Contributor contact detailsWoodhead Publishing Series in Metals and Surface EngineeringPart I: Forming and shaping of metal powdersChapter 1: Advances in atomisation techniques for the formation of metal powdersAbstract:1.1 Introduction1.2 Atomisation techniques1.3 Problems and advances in gas atomisation1.4 Problems and advances in water atomisation1.5 Centrifugal atomisation1.5.2 Other non-ferrous powders1.6 Other atomisation techniques1.7 ConclusionChapter 2: Forming metal powders by electrolysisAbstract:2.1 Background of electrometallurgy and powder metallurgy2.2 Principle and main technological prospects for the FFC Cambridge process2.3 Production of metal powders by the FFC Cambridge process2.4 Direct route from oxide precursors to alloyed powders2.5 Conclusions and future trends2.6 AcknowledgementChapter 3: Mechanochemical synthesis of nanocrystalline metal powdersAbstract:3.1 Introduction3.2 Mechanochemical processing3.3 The process3.4 Grain size and process variables3.5 Displacement reactions3.6 Consolidation3.7 Powder contamination3.8 ConclusionsChapter 4: Plasma synthesis of metal nanopowdersAbstract:4.1 Introduction4.2 Potential benefits and applications of metal nanopowders4.3 Electrical arc discharge synthesis of metal nanopowders4.4 ConclusionsChapter 5: Warm compaction of metallic powdersAbstract:5.1 Introduction5.2 Warm compaction process5.3 Properties of warm compacted parts5.4 Materials and applications5.5 Future trends and concluding remarksChapter 6: Developments in metal injection moulding (MIM)Abstract:6.1 Introduction to metal injection moulding6.2 Powders for metal injection moulding6.3 Binders for metal injection moulding6.4 Mixing and feedstock analysis6.5 Injection moulding6.6 Binder removal (debinding)6.7 Sintering6.8 Post-sintering6.9 Applications and design6.10 ConclusionPart II: Materials and propertiesChapter 7: Advanced powder metallurgy steel alloysAbstract:7.1 Introduction7.2 Composition of advanced pressed and sintered steel components7.3 Manufacturing routes for sintered steel components7.4 Properties, microstructures and typical products7.5 Powder injection moulded steel components7.6 Powder metallurgy tool steels7.7 Trends in ferrous powder metallurgy7.8 AcknowledgementsChapter 8: Powder metallurgy of titanium alloysAbstract:8.1 Introduction8.2 Powders8.3 Near net shapes8.4 Additive layer manufacturing and powder injection molding8.5 Spraying and research-based processes8.6 Future trends8.7 AcknowledgementsChapter 9: Metal-based composite powdersAbstract:9.1 Introduction9.2 Metal-based composite powder production9.3 Copper- and aluminium-based composite powder systems9.4 Other metal-based composite powders9.5 Applications9.6 Future trendsChapter 10: Porous metals: foams and spongesAbstract:10.1 Introduction10.2 Powder processing: partial sintering and space holders10.3 Powder processing: gas entrapment and additive layer manufacturing10.4 Properties of porous metals10.5 Prediction of porous metal properties10.6 Future perspectivesChapter 11: Evolution of microstructure in ferrous and non-ferrous materialsAbstract:11.1 Introduction11.2 Metallographic preparation techniques for powder metallurgy products11.3 Microstructures of ferrous powder metallurgy materials11.4 Non-ferrous materials11.5 Trends in microstructures of powder metallurgy products11.6 AcknowledgementsPart III: Manufacturing and densification of powder metallurgy componentsChapter 12: Microwave sintering of metal powdersAbstract:12.1 Introduction and background12.2 Sintering of metallic powders12.3 Bulk metal processing12.4 Microwave–metal interaction: mechanism(s)12.5 Future trendsChapter 13: Joining processes for powder metallurgy partsAbstract:13.1 Introduction13.2 Welding processes for powder metallurgy parts13.3 Other joining processes for powder metallurgy parts13.4 Discussion13.5 ConclusionsChapter 14: Process optimization in component manufacturingAbstract:14.1 Introduction14.2 Formal optimization14.3 Optimization in the die compaction process14.4 Powder injection moulding optimization14.5 Sintering optimization14.6 Design optimization of steady-state conduction14.7 ConclusionsChapter 15: Non-destructive evaluation of powder metallurgy partsAbstract:15.1 Introduction15.2 Need and incentive for NDT15.3 Problem/approach concept15.4 Quality control by digital radiographic (DR) inspection in production15.5 Challenges in relation to the state-of-the-art15.6 Real-time on-line powder metallurgy parts inspection15.7 Prior art in relation to radiography of particulate matter and near net-shape parts15.8 SummaryChapter 16: Fatigue and fracture of powder metallurgy steelsAbstract:16.1 Introduction16.2 Fracture behavior16.3 Fatigue behavior16.4 Residual stress effects on fatigue16.5 Constitutive behavior of microstructural constituents16.6 Summary16.7 AcknowledgmentsPart IV: ApplicationsChapter 17: Automotive applications of powder metallurgyAbstract:17.1 Introduction17.2 Powder metallurgy parts17.3 Materials17.4 Innovative powder metallurgy products17.5 Emerging trends17.6 ConclusionsChapter 18: Applications of powder metallurgy in biomaterialsAbstract:18.1 Introduction18.2 Challenges of powder metallurgy biomaterials18.3 Production of powder metallurgy biomaterials18.4 Specific properties of powdered titanium and titanium alloy biomaterials18.5 Specific properties of other powder metallurgy biomaterials18.6 Case studies18.7 Conclusions and future trends18.8 Further readingChapter 19: Applications of powder metallurgy to cutting toolsAbstract:19.1 Introduction19.2 Tool design and composition19.3 Diamond tool fabrication19.4 Application of powder metallurgy diamond tools19.5 Latest trends and developmentsIndex