Multiphysics Simulation and Experimental Investigation of the Densification of Metals by Spark Plasma Sintering

Author:

Semenov A.S.1ORCID,Trapp J.23ORCID,Nöthe M.2ORCID,Kieback B.2ORCID,Wallmersperger T.1ORCID

Affiliation:

1. Institute of Solid Mechanics Technische Universität Dresden George-Bähr-Straße 3c 01069 Dresden Germany

2. Institute of Materials Science Technische Universität Dresden Helmholtzstraße 10 01069 Dresden Germany

3. Branch Lab Dresden Fraunhofer Institute for Manufacturing Technology and Advanced Materials IFAM Winterbergstraße 28 01277 Dresden Germany

Abstract

Multivariant experimental investigations and multiphysics microstructural modeling of the spark plasma sintering process of metallic powders have been performed up to a relative density of approximately 80%. In comparison, the effect of sintering temperature, pressure, and particle size on the interparticle contact area growth and axial shrinkage of cylindrical specimens of copper and nickel particles is measured in laboratory scaled tests. Herein, for the first time all relevant for sintering phenomena are considered simultaneously: the fully coupled thermo‐electro‐mechanical modeling of the spark plasma sintering processes, additionally taking into account for lattice, grain boundary, surface diffusion, electromigration, and thermomigration, has been carried out. The computational analysis of various physical phenomena allows to identify dominant and insignificant mechanisms. The two‐level numerical simulation includes the modeling of the sintering setup at the macroscopic level and the neck formation process in particle chain systems at the microscopic level. The results of the numerical simulations show a very good agreement with the experimental data. Therefore, the impact of electrical and mechanical loads as well as of particle size on microscopic distribution of temperature, inelastic strain, and on densification has been studied by the finite element simulations.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

Reference67 articles.

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2. J.Lux For an Improved Manufacture of Electric Incandescent Lamp Filaments from Tungsten or Molybdenum or an Alloy Thereof. GB Patent 27002 1906.

3. Theoretical and experimental investigations of local overheating at particle contacts in spark plasma sintering

4. Electromigration experiments by spark plasma sintering in the silver–zinc system

5. Current effects on neck growth in the sintering of copper spheres to copper plates by the pulsed electric current method

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