Acta Metallurgica Sinica (English Letters) ›› 2024, Vol. 37 ›› Issue (9): 1480-1490.DOI: 10.1007/s40195-024-01716-x

Special Issue: 2024年高/中熵合金专辑

Previous Articles     Next Articles

Experimental and DFT Investigations of AlNbTiVZr High Entropy Alloys with Excellent Mechanical Properties

Hongwei Yan1,2,3, Yong’an Zhang1,2,3(), Wei Xiao1,2,3, Boyu Xue1,2,3, Rui Liu1,2,3, Xiwu Li1,2,3, Zhihui Li1,2,3, Baiqing Xiong1,2,3()   

  1. 1State Key Laboratory of Nonferrous Metals and Processes, China GRINM Group Co., Ltd., Beijing, 100088, China
    2GRIMAT Engineering Institute Co., Ltd., Beijing, 101407, China
    3General Research Institute for Nonferrous Metals, Beijing, 100088, China

Abstract:

This study investigated the microstructure and mechanical properties of AlNbTiVZr series high-entropy alloys (HEAs) through both experimental studies and density functional theory calculations. Significant improvements in the microstructures and mechanical properties were achieved for the AlNbTiVZr series HEAs by meticulously adjusting the alloy composition and employing homogenization heat treatment. Notably, the specimen designated as Al0.5NbTiVZr0.5 demonstrated excellent mechanical properties including a compressive yield strength of 1162 MPa and a compressive strength of 1783 MPa. After homogenization heat treatment at 1000 °C for 24 h, the Al0.5NbTiVZr0.5 alloy exhibits brittle-to-ductile transition. Further atomic-scale theoretical simulations reveal that the decrease of Al content intrinsically enhances the ductility of the alloys, thereby indicating that the mechanical properties of the AlNbTiVZr series HEAs were significantly influenced by the chemical composition. Additionally, specific atomic pair formations were observed to adversely affect the microstructure of the AlNbTiVZr series HEAs, particularly in terms of ductility. These findings provide valuable insights for the design and optimization of light weight HEAs, emphasizing the synergistic adjustment of alloy composition and heat treatment processes to achieve a balance between the strength and ductility.

Key words: High-entropy alloy, Microstructure, Mechanical properties, Density functional theory