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Written by leading experts in their respective fields, Solidification and Casting provides a comprehensive review of topics fundamental to metallurgy and materials science as well as indicates recent trends.From an industrial perspective, the book begins with chapters on the casting techniques most commonly used in industry today. It then describes the underlying science fundamental to solidification mechanisms, including fluid flow, the effects of cooling rates, modern simulation, and modelling methods in use and their application in various casting scenarios. Next, the authors consider the microstructure of cast materials and their defects, and explore how different casting processes can control these parameters. The book concludes with the most recent developments in the field and discusses new processes and materials, such as novel alloys and composites, metallic glasses, ceramics, and superconducting oxides.
INDUSTRIAL PERSPECTIVEDirect chillcasting of aluminium alloysContinuous casting of aluminium alloysContinuous casting of steelsCastings in the automotive industryCast aluminium-silicon piston alloysMODELLING AND SIMULATIONModelling direct chill castingMold filling simulation of die castingThe ten casting rulesGrain selection in single crystal superalloy castingsDefects in aluminium shape castingPattern formation during solidificationPeritectic solidificationSTRUCTURE AND DEFECTSHetergeneous nucleation in aluminium alloysControl of grain size in solidificationStep castingIntermetallic selection during solidification of aluminium alloysCooling rate and the structure of commercial aluminium alloys Solidification structure control by magnetic fieldsDirect observation of solidification and solid phase transformationsInterfacial energy and solidification structures in aluminium-silicon alloysNEW MATERIALS AND PROCESSESRheocasting of TiAl alloys and compositesSolidification of metallic glassesNew euctectic ceramicsRapid solidification of oxidesPeritectic solidification of superconducting oxides
Brian Cantor, H Assender, P. Grant, UK) Cantor, Brian (The University of York and University of Oxford, UK) Assender, H (University of Oxford, UK) Grant, P. (Oxford University
Brian Cantor, P. Grant, C. Johnston, UK) Cantor, Brian (The University of York and University of Oxford, UK) Grant, P. (Oxford University, UK) Johnston, C. (Oxford University
A.R. Bunsell, France) Bunsell, A.R. (Centre des Materiaux, Pierre-Marie Fourt, France) Joannes, S. (Mines ParisTech, France) Thionnet, A. (MINES, ParisTech, A. R. Bunsell
A.R. Bunsell, France) Bunsell, A.R. (Centre des Materiaux, Pierre-Marie Fourt, France) Joannes, S. (Mines ParisTech, France) Thionnet, A. (MINES, ParisTech, A. R. Bunsell, S. Joannès, A. Thionnet
Brian Cantor, P. Grant, C. Johnston, UK) Cantor, Brian (The University of York and University of Oxford, UK) Grant, P. (Oxford University, UK) Johnston, C. (Oxford University
Brian Cantor, H Assender, P. Grant, UK) Cantor, Brian (The University of York and University of Oxford, UK) Assender, H (University of Oxford, UK) Grant, P. (Oxford University