Advanced Powder Metallurgy Technologies

Powder metallurgy is a group of advanced processes used for the synthesis, processing, and shaping of various kinds of materials. Initially inspired by ceramics processing, the methodology comprising the production of a powder and its transformation to a compact solid product has attracted attention...

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Altres autors: Novák, Pavel (Editor)
Format: Capítol de llibre
Publicat: Basel, Switzerland MDPI - Multidisciplinary Digital Publishing Institute 2020
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Accés en línia:Get Fullteks
DOAB: description of the publication
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020 |a books978-3-03936-524-1 
020 |a 9783039365234 
020 |a 9783039365241 
024 7 |a 10.3390/books978-3-03936-524-1  |c doi 
041 0 |a English 
042 |a dc 
072 7 |a TBX  |2 bicssc 
100 1 |a Novák, Pavel  |4 edt 
700 1 |a Novák, Pavel  |4 oth 
245 1 0 |a Advanced Powder Metallurgy Technologies 
260 |a Basel, Switzerland  |b MDPI - Multidisciplinary Digital Publishing Institute  |c 2020 
300 |a 1 electronic resource (250 p.) 
506 0 |a Open Access  |2 star  |f Unrestricted online access 
520 |a Powder metallurgy is a group of advanced processes used for the synthesis, processing, and shaping of various kinds of materials. Initially inspired by ceramics processing, the methodology comprising the production of a powder and its transformation to a compact solid product has attracted attention since the end of World War II. At present, many technologies are availabe for powder production (e.g., gas atomization of the melt, chemical reduction, milling, and mechanical alloying) and its consolidation (e.g., pressing and sintering, hot isostatic pressing, and spark plasma sintering). The most promising methods can achieve an ultra-fine or nano-grained powder structure, and preserve it during consolidation. Among these methods, mechanical alloying and spark plasma sintering play a key role. This book places special focus on advances in mechanical alloying, spark plasma sintering, and self-propagating high-temperature synthesis methods, as well as on the role of these processes in the development of new materials. 
540 |a Creative Commons  |f https://creativecommons.org/licenses/by/4.0/  |2 cc  |4 https://creativecommons.org/licenses/by/4.0/ 
546 |a English 
650 7 |a History of engineering & technology  |2 bicssc 
653 |a in situ diffraction 
653 |a aluminides 
653 |a reactive sintering 
653 |a mechanism 
653 |a powder metallurgy 
653 |a iron silicide 
653 |a Fe-Al-Si alloy 
653 |a mechanical alloying 
653 |a spark plasma sintering 
653 |a characterization 
653 |a FeAlSi 
653 |a intermetallic alloys 
653 |a microstructure 
653 |a nanoindentation 
653 |a mechanical properties 
653 |a titanium aluminides and silicides 
653 |a casting 
653 |a heterophase magnesium matrix composite 
653 |a Mg2Si 
653 |a carbon nanotubes 
653 |a nanopowders de-agglomeration 
653 |a sintering 
653 |a biomaterials 
653 |a metallic composites 
653 |a powder technology 
653 |a zinc 
653 |a Ni-Ti alloy 
653 |a self-propagating high-temperature synthesis 
653 |a aging 
653 |a compressive test 
653 |a hardness 
653 |a shape memory 
653 |a maraging steel 
653 |a atomized powder 
653 |a selective laser melting 
653 |a heat treatment 
653 |a precipitation hardening 
653 |a self-healing 
653 |a aluminium alloy 
653 |a grain boundary diffusion 
653 |a Nd-Fe-B magnets 
653 |a hydrogenation 
653 |a magnetic properties 
653 |a MgAl2O4 
653 |a lithium fluoride 
653 |a cobalt fluoride 
653 |a manganese fluoride 
653 |a grain growth 
653 |a compressive strength 
653 |a oxidation resistance 
653 |a wear 
653 |a multi principal element alloy 
653 |a tensile strength 
653 |a fracture 
653 |a ductility 
653 |a powder 
653 |a critical raw materials 
653 |a cutting tools 
653 |a new materials 
653 |a new machining methods 
653 |a modelling and simulation 
856 4 0 |a www.oapen.org  |u https://mdpi.com/books/pdfview/book/2459  |7 0  |z Get Fullteks 
856 4 0 |a www.oapen.org  |u https://directory.doabooks.org/handle/20.500.12854/68693  |7 0  |z DOAB: description of the publication