J. Mater. Sci. Technol. ›› 2026, Vol. 262: 186-198.DOI: 10.1016/j.jmst.2025.10.029

Previous Articles     Next Articles

Modulating hierarchical microstructure evolution and strengthening in high-entropy superalloys via tungsten addition

Yishan Fenga, Sieglind Ngaib, Wenxing Mengc,d, Chao Yangc,d, Yan Longc,d, Huihui Zhue, Michael J. Pavelf, Mark L. Weaverf, Yuan Wue,*, Florian Vogelc,d,*   

  1. aSchool of Physics and Optoelectronic Engineering, Hainan University, Haikou 570228, China;
    bNova Scientific, Guangzhou 510000, China;
    cGuangdong Provincial Key Laboratory for Processing and Forming of Advanced Metallic Materials, South China University of Technology, Guangzhou 510640, China;
    dSchool of Mechanical and Automotive Engineering, South China University of Technology, Guangzhou 510640, China;
    eState Key Laboratory for Advanced Metals and Materials, Beijing University of Science and Technology, Beijing 100083, China;
    fDepartment of Metallurgical and Materials Engineering, The University of Alabama, Tuscaloosa, AL 35487-0202, USA
  • Received:2025-06-27 Revised:2025-10-15 Accepted:2025-10-15 Published:2026-08-10 Online:2025-10-27
  • Contact: *E-mail addresses: wuyuan@ustb.edu.cn (Y. Wu), fvogel@scut.edu.cn (F. Vogel).

Abstract: This study investigates the influence of tungsten (W) on the microstructure and mechanical properties of high-entropy superalloys, focusing specifically on the formation and evolution of the hierarchical microstructure. Transmission electron microscope analysis indicates that aging at 750 °C for 5-10 h induces the formation of nanoscale γ particles (γp) within the γ' precipitates, thereby constructing a hierarchical microstructure. Vickers hardness testing reveals a strong correlation between microstructural evolution and hardness. The formation of the hierarchical microstructure significantly increases hardness (∼40 HV). Furthermore, increasing the W content (from 0.40 to 0.60 to 1.00 at. %) delays the butterfly-shaped splitting of the γ', resulting in the maximum achieved hardness. Atom probe tomography confirms that the supersaturation of γ-forming element Cr within the γ' drives the formation of the γp. The emergence of Cr-rich clusters reduces the mixing enthalpy of the γ' (∼0.60 kJ/mol), providing a thermodynamic driving force. After aging, the γ matrix (γm)/γ' interface width is also observed to increase (∼0.36 nm). The partitioning behavior of most elements aligned with Thermo-Calc predictions, which only W exhibited a transition from preferential partitioning to the γ matrix (in γm/γ') to the γ' precipitate (in γ'/γp). Calculations based on Vegard's law show that an increased W content reduces the lattice parameter of the γp (∼0.002 Å), thereby increasing the lattice misfit between γp and γ' (∼0.08 %).

Key words: High entropy superalloy, Atom probe tomography, Transmission electron microscopy, Hierarchical microstructure, Phase separation