Morphological Analysis of Laser Surface Texturing Effect on AISI 430 Stainless Steel.

ferritic stainless steel laser surface texturing morphological analysis surface patterns

Journal

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

Informations de publication

Date de publication:
29 Jun 2022
Historique:
received: 30 05 2022
revised: 19 06 2022
accepted: 28 06 2022
entrez: 9 7 2022
pubmed: 10 7 2022
medline: 10 7 2022
Statut: epublish

Résumé

Laser surface texturing (LST) is a method to obtain micro-structures on the material's surface for improving tribological performances, wetting tuning, surface treatment, and increasing adhesion. The material selected for LST is AISI 430 ferritic stainless steel, distinguished by the low cost in manufacturing, corrosion resistance, and high strength at elevated temperature. The present study addresses the morphology of new pattern designs (crater array, ellipse, and octagonal shapes). The patterns are applied on the stainless-steel surface by a non-contact method with high quality and precision nanosecond pulsed laser equipment. The investigation of laser parameter influence on thermal affected area and micro-structures is accomplished by morphological and elemental analysis (SEM + EDX). The parameters of the laser micro-patterning have a marked influence on the morphology, creating groove-type sections with different depths and recast material features. From the SEM characterization, the highest level of recast material is observed for concentric octagon LST design. Its application is more recommended for the preparation of the metal surface before hybrid welding. Additionally, the lack of the oxygen element in the case of this design suggests the possible use of the pattern in hybrid joining.

Identifiants

pubmed: 35806705
pii: ma15134580
doi: 10.3390/ma15134580
pmc: PMC9267422
pii:
doi:

Types de publication

Journal Article

Langues

eng

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Auteurs

Edit Roxana Moldovan (ER)

Materials Engineering and Welding Department, Transilvania University of Brasov, 29 Eroilor Blvd., 500036 Brasov, Romania.

Carlos Concheso Doria (C)

BSH Electrodomésticos España, S.A., Avda. de la Industria 49, 50016 Zaragoza, Spain.

José Luis Ocaña (JL)

Departamento de Física Aplicada e Ingeniería de Materiales, Universidad Politecnica de Madrid, C/José Gutiérrez Abascal 2, 28006 Madrid, Spain.

Bogdan Istrate (B)

Mechanical Engineering Department, Gheorghe Asachi Technical University of Iași, 43 Dimitrie Mangeron Blvd., 700050 Iași, Romania.

Nicanor Cimpoesu (N)

Materials Science Department, Gheorghe Asachi Technical University of Iași, 43 Dimitrie Mangeron Blvd., 700050 Iași, Romania.

Liana Sanda Baltes (LS)

Materials Engineering and Welding Department, Transilvania University of Brasov, 29 Eroilor Blvd., 500036 Brasov, Romania.

Elena Manuela Stanciu (EM)

Materials Engineering and Welding Department, Transilvania University of Brasov, 29 Eroilor Blvd., 500036 Brasov, Romania.

Catalin Croitoru (C)

Materials Engineering and Welding Department, Transilvania University of Brasov, 29 Eroilor Blvd., 500036 Brasov, Romania.

Alexandru Pascu (A)

Materials Engineering and Welding Department, Transilvania University of Brasov, 29 Eroilor Blvd., 500036 Brasov, Romania.

Corneliu Munteanu (C)

Mechanical Engineering Department, Gheorghe Asachi Technical University of Iași, 43 Dimitrie Mangeron Blvd., 700050 Iași, Romania.
Technical Sciences Academy of Romania, 26 Dacia Blvd., 030167 Bucharest, Romania.

Mircea Horia Tierean (MH)

Materials Engineering and Welding Department, Transilvania University of Brasov, 29 Eroilor Blvd., 500036 Brasov, Romania.

Classifications MeSH