Experimental Testing and Finite Element Simulation on Tensile Mechanical Behavior of Nickel-based Superalloys

2026-99-1224

9/4/2026

Authors
Abstract
Content
The accurate prediction of high-temperature mechanical behavior of GH3230, as a core material for the new generation of combustion chambers in China, is a key technical prerequisite for promoting engineering applications. This article is the first to conduct a systematic study on the tensile properties of the alloy at three typical service temperatures of 200°C, 550°C, and 900°C, combining high- temperature tensile testing with numerical simulation. Through metallographic observation, the excellent microstructure characteristics of the alloy, including no grain boundary defects, inclusion phase size less than 5 μm, and uniform distribution, were clarified. Based on this, a multi-temperature adaptive tensile simulation model was established. Experimental verification showed that the model can accurately reproduce stress-strain tensile curves at different temperatures, with prediction errors controlled within a reasonable range, effectively breaking through the limitations of traditional single-temperature simulation. This study not only provides an efficient and accurate new method for the performance analysis and safety evaluation of GH3230 in a wide temperature range but also provides practical technical means to support the component-level engineering application of this material. At the same time, the research results also provide a reference technical path and research ideas for the multi-temperature mechanical performance prediction of other nickel-based high-temperature alloys.
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DOI
https://doi.org/10.4271/2026-99-1224
Citation
Qiao, Y., Xie, J., Li, L., Zhou, J., et al., "Experimental Testing and Finite Element Simulation on Tensile Mechanical Behavior of Nickel-based Superalloys," 2025 6th International Conference on Applied Mechanics and Mechanical Engineering (ICAMME 2025), Beijing, China, December 12, 2025, https://doi.org/10.4271/2026-99-1224.
Additional Details
Publisher
Published
Yesterday
Product Code
2026-99-1224
Content Type
Technical Paper
Language
English