Ni/Al-Hybrid Cellular Foams: An Interface Study by Combination of 3D-Phase Morphology Imaging, Microbeam Fracture Mechanics and In Situ Synchrotron Stress Analysis.

hybride foam hybride foam interface interfacial fracture toughness micromechanics open-cell foam synchrotron diffraction

Journal

Materials (Basel, Switzerland)
ISSN: 1996-1944
Titre abrégé: Materials (Basel)
Pays: Switzerland
ID NLM: 101555929

Informations de publication

Date de publication:
22 Jun 2021
Historique:
received: 24 05 2021
revised: 16 06 2021
accepted: 18 06 2021
entrez: 2 7 2021
pubmed: 3 7 2021
medline: 3 7 2021
Statut: epublish

Résumé

Nickel(Ni)/aluminium(Al) hybrid foams are Al base foams coated with Ni by electrodeposition. Hybrid foams offer an enhanced energy absorption capacity. To ensure a good adhering Ni coating, necessary for a shear resistant interface, the influence of a chemical pre-treatment of the base foam was investigated by a combination of an interface morphology analysis by focused ion beam (FIB) tomography and in situ mechanical testing. The critical energy for interfacial decohesion from these microbending fracture tests in the scanning electron microscope (SEM) were contrasted to and the results validated by depth-resolved measurements of the evolving stresses in the Ni coating during three-point bending tests at the energy-dispersive diffraction (EDDI) beamline at the synchrotron BESSY II. Such a multi-method assessment of the interface decohesion resistance with respect to the interface morphology provides a reliable investigation strategy for further improvement of the interface morphology.

Identifiants

pubmed: 34206514
pii: ma14133473
doi: 10.3390/ma14133473
pmc: PMC8269473
pii:
doi:

Types de publication

Journal Article

Langues

eng

Références

Materials (Basel). 2017 Jan 24;10(2):
pubmed: 28772456
Materials (Basel). 2017 Aug 08;10(8):
pubmed: 28786959
Materials (Basel). 2016 Jan 29;9(2):
pubmed: 28787887
Materials (Basel). 2019 Nov 21;12(23):
pubmed: 31766482

Auteurs

Jutta Luksch (J)

Materials Science and Methods, Campus D2 3, Saarland University, 66123 Saarbruecken, Germany.
Applied Mechanics, Campus A4 2, Saarland University, 66123 Saarbruecken, Germany.

Anne Jung (A)

Applied Mechanics, Campus A4 2, Saarland University, 66123 Saarbruecken, Germany.

Christoph Pauly (C)

Functional Materials, Campus D3 3, Saarland University, 66123 Saarbruecken, Germany.

Ralf Derr (R)

Applied Mechanics, Campus A4 2, Saarland University, 66123 Saarbruecken, Germany.

Patrick Gruenewald (P)

Materials Science and Methods, Campus D2 3, Saarland University, 66123 Saarbruecken, Germany.

Marc Laub (M)

Materials Science and Methods, Campus D2 3, Saarland University, 66123 Saarbruecken, Germany.

Manuela Klaus (M)

Department of Microstructure and Residual Stress Analysis, Helmholtz-Zentrum Berlin fuer Materialien und Energie GmbH, Albert-Einstein-Str. 15, 12489 Berlin, Germany.

Christoph Genzel (C)

Department of Microstructure and Residual Stress Analysis, Helmholtz-Zentrum Berlin fuer Materialien und Energie GmbH, Albert-Einstein-Str. 15, 12489 Berlin, Germany.

Christian Motz (C)

Materials Science and Methods, Campus D2 3, Saarland University, 66123 Saarbruecken, Germany.

Frank Mücklich (F)

Functional Materials, Campus D3 3, Saarland University, 66123 Saarbruecken, Germany.

Florian Schaefer (F)

Materials Science and Methods, Campus D2 3, Saarland University, 66123 Saarbruecken, Germany.

Classifications MeSH