Related Experiment Video
Updated: May 10, 2025

Processing of Bulk Nanocrystalline Metals at the US Army Research Laboratory
Published on: March 7, 2018
Creep Mechanism and Microstructure Evolution of a Directionally Solidified Ni-Based Superalloy with Different
Anping Long1,2, Jiangying Xiong1,2, Bing Wei2
1State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, China.
Abstract:
The creep properties of directionally solidified superalloys are largely influenced by the degradation rate of the γ/γ' microstructure and the dislocation motion, which exhibit distinct mechanisms under varying temperature and stress conditions. In this study, the creep deformation mechanisms and microstructural evolution of a directionally solidified nickel-based superalloy in the longitudinal (L) and transverse (T) orientations at 850 °C are comprehensively investigated. Creep testing and characterization of the dislocation structure revealed superior creep properties in the L direction compared to the T direction. The creep mechanism in the L direction involves the activation of multiple {111}<110> slip systems, shearing the γ' precipitates through antiphase boundaries (APBs). Conversely, the creep mechanism in the T direction involves the activation of {111}<112> slip systems, shearing the γ' precipitates through a superlattice intrinsic stacking fault (SISF) and forming slip bands inclined to the stress axis. Aluminum was identified as the controlling element for the γ' rafting. The longitudinal specimens exhibited P-type rafting due to the activation of multiple slip systems and sufficient plastic strain flow from the dislocation motion. In contrast, the transverse specimens show little rafting due to limited slip system activation. These findings can serve as a reference for better understanding the anisotropy of directionally solidified superalloys and provide a basis for their broader application.
Related Concept Videos
Effects of Creep
Creep in Concrete
Stress-Strain Diagram - Ductile Materials

