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Effect of welding current modes and post weld heat treatment on microstructure, tensile properties and fracture behavior of gas tungsten arc welded AlCoCrFeNi2.1 EHEA sheets for advanced gas turbine applications

2Citations signalées, ce qui n’est pas une note de qualité
5Institutions déclarées
2Pays d’affiliation déclarés

Rattachement africain : ru, in. Niveau de preuve : code pays fourni par la source.

Le résumé fourni par la source

The AlCoCrFeNi 2.1 eutectic high entropy alloy (EHEA) offers greater potential for high temperature applications in advanced gas turbine engines due to its dual phase FCC+BCC microstructure, superior mechanical properties, excellent creep strength and corrosion resistance. However, welding thin EHEA sheets using conventional constant-current gas tungsten arc welding (CC-GTAW) process presents significant high heat input related issues including porosity, excessive weld bead size, coarser dendritic fusion zone (FZ) microstructure and heat-affected zone (HAZ) softening, leading to inferior tensile properties. To address these issues, in this study, the pulsed-current GTAW (PC-GTAW) process characterized by high frequency (300 Hz) welding current pulsation was employed. The main objective of this study is to investigate the effect of welding current modes in GTAW process and post-weld heat treatment (PWHT) on the microstructure, tensile properties, and fracture behavior of AlCoCrFeNi 2.1 EHEA sheets. The 1.5 mm thick as-cast EHEA sheets were welded using CC-GTAW and PC-GTAW processes, followed by PWHT involving solutionizing at 1000 °C for 2 hours (water quenched) and artificial aging at 800 °C for 8 hours (air cooled). The mechanical performance of CC-GTAW and PC-GTAW welds was evaluated using transverse tensile and microhardness tests in as-welded and PWHT conditions. The microstructures of the FZ, HAZ, and base metal zone were examined using optical and scanning electron microscopy (SEM). The phases evolved in the FZ of welds were identified using X-ray diffraction, and elemental analysis was performed using SEM energy dispersive spectroscopy (EDS). Results showed that PC-GTAW welds exhibited superior tensile properties, improved FZ hardness, and minimized HAZ softening compared to CC-GTAW welds, due to significant dendritic refinement in the FZ microstructure and limited grain growth in the HAZ. PWHT enhanced the tensile strength and hardness of both CC-GTAW and PC-GTAW welds, owing to the precipitation of finer needle-shaped secondary B2 BCC phases. However, PC-GTAW welds demonstrated a better response to PWHT, with significant improvements in tensile strength (7.41%), yield strength (9.74%), ductility (55.45%), FZ hardness (7.60%), and HAZ hardness (10.09%) compared to CC-GTAW welds. The findings highlight the benefits of using PC-GTAW and PWHT for enhancing the mechanical properties of EHEA welds, making it a promising technique for advanced gas turbine engine applications. • Microstructural refinement: High-frequency pulsation in PC-GTAW refines FZ microstructure, resulting in equiaxed FCC dendrites with thinner interdendritic B2 BCC phases. • Superior joint performance: PC-GTAW welds exhibit superior tensile properties, improved FZ hardness, and minimized HAZ softening compared to CC-GTAW welds. • Enhanced PWHT response: PC-GTAW welds show better response to PWHT, resulting in significant precipitation hardening of FZ and HAZ. • Improved failure behavior: PC-GTAW welds show a shift in tensile failure location from HAZ to BMZ after PWHT, indicating enhanced mechanical behavior. • Potential application: The PC-GTAW process with PWHT offers a promising approach for welding AlCoCrFeNi 2.1 EHEA advanced gas turbine engine applications.

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Le contrôle bibliographique ouvert

DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
Effect of welding current modes and post weld heat treatment on microstructure, tensile properties and fracture behavior of gas tungsten arc welded AlCoCrFeNi2.1 EHEA sheets for advanced gas turbine applications
Date Crossref
01/08/2026
Éditeur
Elsevier BV
Type
journal-article

Ce recoupement confirme des métadonnées liées au DOI. Il ne confirme ni la méthode ni les conclusions de l’étude, et il ne compte pas comme une seconde source scientifique indépendante.

Où se fait cette recherche

  • South Ural State University Department of Welding Equipment and Technology pays non établi dans la notice
    Université ou école supérieure
  • Indian Institute of Technology Madras pays non établi dans la notice
    Université ou école supérieure
  • Ural Federal University Institute of Physics and Technology pays non établi dans la notice
    Université ou école supérieure
  • Institute of Physics and Technology pays non établi dans la notice
    Structure de recherche
  • M.N. Mikheev Institute of Metal Physics pays non établi dans la notice
    Structure de recherche
  • Chennai Institute of Technology Centre for Sustainable Materials and Surface Metamorphosis pays non établi dans la notice
    Structure de recherche
  • Laser and Plasma Laboratory pays non établi dans la notice
    Structure de recherche

Department of Welding Equipment and Technology — South Ural State University, Indian Institute of Technology Madras et Institute of Physics and Technology — Ural Federal University, avec 4 autres affiliations.

Une affiliation ne permet pas de déduire la nationalité d’un auteur.

Les sujets associés

High Entropy Alloys StudiesHigh-Temperature Coating BehaviorsAdditive Manufacturing Materials and Processes

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