Welding of high performance metal matrix composite materials: the ICME approach.

The material development cycle is becoming too slow if compared with other technologies sectors like IT and electronics. The materials scientists’ community needs to bring materials science back to the core of human development. ICME (Integrated Computational Materials Engineer) is a new discipline...

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Main Author: Miotti Bettanini, Alvise
Format: Others
Language:English
Published: KTH, Metallografi 2014
Subjects:
CAE
FEA
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-154021
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spelling ndltd-UPSALLA1-oai-DiVA.org-kth-1540212014-10-16T04:48:47ZWelding of high performance metal matrix composite materials: the ICME approach.engMiotti Bettanini, AlviseKTH, Metallografi2014ICMEcomputational materials designcomputational thermodynamicsCALPHADCAEFEAwelding engineeringsteel microstructuresWC-Co metal matrix compositeThe material development cycle is becoming too slow if compared with other technologies sectors like IT and electronics. The materials scientists’ community needs to bring materials science back to the core of human development. ICME (Integrated Computational Materials Engineer) is a new discipline that uses advanced computational tools to simulate material microstructures, processes and their links with the final properties. There is the need for a new way to design tailor-made materials with a faster and cheaper development cycle while creating products that meet “real-world” functionalities rather than vague set of specifications. Using the ICME approach, cutting edge computational thermodynamics models were employed in order to assist the microstructure characterization and refinement during the TIG welding of a functionally graded composite material with outstanding wear and corrosion resistance. The DICTRA diffusion model accurately predicted the carbon diffusion during sintering, Thermo-Calc and TC-PRISMA models described the thermodynamic and kinetics of harmful carbide precipitation, while COMSOL Multhiphysic furnished the temperature distribution profile at every timestep during TIG welding of the material. Bainite transformation and the influence of chromium and molybdenum was studied and modelled with MAP_STEEL software. The simulations were then compared with experimental observations and a very good agreement between computational works and experiments was found for both thermodynamic and kinetics predictions. The use of this new system proved to be a robust assistance to the classic development method and the material microstructures and processes were carefully adjusted in order to increase corrosion resistance and weldability. This new approach to material development can radically change the way we think and we make materials. The results suggest that the use of computational tools is a reality that can dramatically increase the efficiency of the material development.  Student thesisinfo:eu-repo/semantics/bachelorThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-154021application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Others
sources NDLTD
topic ICME
computational materials design
computational thermodynamics
CALPHAD
CAE
FEA
welding engineering
steel microstructures
WC-Co metal matrix composite
spellingShingle ICME
computational materials design
computational thermodynamics
CALPHAD
CAE
FEA
welding engineering
steel microstructures
WC-Co metal matrix composite
Miotti Bettanini, Alvise
Welding of high performance metal matrix composite materials: the ICME approach.
description The material development cycle is becoming too slow if compared with other technologies sectors like IT and electronics. The materials scientists’ community needs to bring materials science back to the core of human development. ICME (Integrated Computational Materials Engineer) is a new discipline that uses advanced computational tools to simulate material microstructures, processes and their links with the final properties. There is the need for a new way to design tailor-made materials with a faster and cheaper development cycle while creating products that meet “real-world” functionalities rather than vague set of specifications. Using the ICME approach, cutting edge computational thermodynamics models were employed in order to assist the microstructure characterization and refinement during the TIG welding of a functionally graded composite material with outstanding wear and corrosion resistance. The DICTRA diffusion model accurately predicted the carbon diffusion during sintering, Thermo-Calc and TC-PRISMA models described the thermodynamic and kinetics of harmful carbide precipitation, while COMSOL Multhiphysic furnished the temperature distribution profile at every timestep during TIG welding of the material. Bainite transformation and the influence of chromium and molybdenum was studied and modelled with MAP_STEEL software. The simulations were then compared with experimental observations and a very good agreement between computational works and experiments was found for both thermodynamic and kinetics predictions. The use of this new system proved to be a robust assistance to the classic development method and the material microstructures and processes were carefully adjusted in order to increase corrosion resistance and weldability. This new approach to material development can radically change the way we think and we make materials. The results suggest that the use of computational tools is a reality that can dramatically increase the efficiency of the material development. 
author Miotti Bettanini, Alvise
author_facet Miotti Bettanini, Alvise
author_sort Miotti Bettanini, Alvise
title Welding of high performance metal matrix composite materials: the ICME approach.
title_short Welding of high performance metal matrix composite materials: the ICME approach.
title_full Welding of high performance metal matrix composite materials: the ICME approach.
title_fullStr Welding of high performance metal matrix composite materials: the ICME approach.
title_full_unstemmed Welding of high performance metal matrix composite materials: the ICME approach.
title_sort welding of high performance metal matrix composite materials: the icme approach.
publisher KTH, Metallografi
publishDate 2014
url http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-154021
work_keys_str_mv AT miottibettaninialvise weldingofhighperformancemetalmatrixcompositematerialstheicmeapproach
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