Functional Surfaces via Laser Processing in Nickel Acetate Solution

Author:

Stanciu Elena Manuela1ORCID,Pascu Alexandru1ORCID,Croitoru Cătălin1ORCID,Roată Ionut Claudiu1,Cristea Daniel2ORCID,Tierean Mircea Horia1ORCID,Hulka Iosif3ORCID,Petre Ioana Mădălina4ORCID,Mirza Rosca Julia Claudia5ORCID

Affiliation:

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

2. Materials Science Department, Transilvania University of Brasov, Eroilor 29 Str., 500036 Brasov, Romania

3. Renewable Energy Research Institute—ICER, Politehnica University Timisoara, 138 Gavril Musicescu Street, 300774 Timisoara, Romania

4. Department of Industrial Engineering and Management, Faculty of Technological Engineering and Industrial Management, Transilvania University of Brasov, 500036 Brasov, Romania

5. Department of Mechanical Engineering, University of Las Palmas de Gran Canaria (ULPGC), 35017 Las Palmas de Gran Canaria, Spain

Abstract

This study presents a novel laser processing technique in a liquid media to enhance the surface mechanical properties of a material, by thermal impact and micro-alloying at the subsurface level. An aqueous solution of nickel acetate (15% wt.) was used as liquid media for laser processing of C45E steel. A pulsed laser TRUMPH Truepulse 556 coupled to a PRECITEC 200 mm focal length optical system, manipulated by a robotic arm, was employed for the under-liquid micro-processing. The study’s novelty lies in the diffusion of nickel in the C45E steel samples, resulting from the addition of nickel acetate to the liquid media. Micro-alloying and phase transformation were achieved up to a 30 µm depth from the surface. The laser micro-processed surface morphology was analysed using optical and scanning electron microscopy. Energy dispersive spectroscopy and X-ray diffraction were used to determine the chemical composition and structural development, respectively. The microstructure refinement was observed, along with the development of nickel-rich compounds at the subsurface level, contributing to an improvement of the micro and nanoscale hardness and elastic modulus (230 GPa). The laser-treated surface exhibited an enhancement of microhardness from 250 to 660 HV0.03 and an improvement of more than 50% in corrosion rate.

Publisher

MDPI AG

Subject

General Materials Science

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