Analysis of Plasma Electrolytic Oxidation Process Parameters for Optimizing Adhesion in Aluminum–Composite Hybrid Structures

Author:

Lucas Rafael Resende12ORCID,Silva Emanuelle Roza Rodrigues1,Marques Luís Felipe Barbosa1,da Silva Francisco José Gomes2ORCID,Abrahão Ana Beatriz Ramos Moreira3,Vieira Miguel de Omena Lucas1,Hein Luís Rogério de Oliveira1ORCID,Botelho Edson Cocchieri1,Mota Rogério Pinto1,Sales-Contini Rita de Cássia Mendonça24ORCID

Affiliation:

1. São Paulo State University (UNESP), School of Engineering and Sciences, Guaratinguetá 12516-410, São Paulo, Brazil

2. ISEP, Polytechnic of Porto, Rua Dr. António Bernardino de Almeida, 4249-015 Porto, Portugal

3. Electrochemistry and Corrosion Laboratory, Technological College of Pindamonhangaba (FATEC), Pindamonhangaba 12445-010, São Paulo, Brazil

4. Aeronautical Structures Laboratory, Technological College of São José dos Campos Prof. Jessen Vidal (FATEC), São José dos Campos 12247-014, São Paulo, Brazil

Abstract

The Plasma Electrolytic Oxidation (PEO) process was investigated to enhance the adhesion of AA2024-O aluminum alloy with a polyetherimide (PEI) matrix composite, using oxy-fuel welding (OFW). A Central Composite Design (CCD) statistical model was used to optimize three independent parameters in PEO: immersion time (s), duty cycle (%), and electrolyte concentration (Na2B4O7·10H2O), aiming to achieve a maximum value of shear strength of the hybrid joint (in MPa). The hybrid joint without PEO treatment presented a resistance of 2.2 MPa while the best condition presented a resistance of 9.5 MPa, resulting in a value 4× higher than the untreated material, due to the characteristics of the coating, which presented a more hydrophilic surface, allowing better mechanical interlocking with the polymer matrix and resulting in mixed-mode failure (adhesive, cohesive, and light fiber). In addition to improving adhesion, the PEO treatment provided better corrosion resistance to the alloy, forming an inert aluminum oxide (Al2O3) coating, with an improvement of approximately 99.84% compared to the untreated alloy. The statistical design covers about 77.15% of the total variability of the PEO + welding process, with independent factors influencing around 48.4% of the variability.

Funder

CAPES

Publisher

MDPI AG

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