Consistent Quantification of Precipitate Shapes and Sizes in Two and Three Dimensions Using Central Moments

Author:

Schleifer FelixORCID,Müller Moritz,Lin Yueh-Yu,Holzinger Markus,Glatzel UweORCID,Fleck MichaelORCID

Abstract

AbstractComputational microstructure design aims to fully exploit the precipitate strengthening potential of an alloy system. The development of accurate models to describe the temporal evolution of precipitate shapes and sizes is of great technological relevance. The experimental investigation of the precipitate microstructure is mostly based on two-dimensional micrographic images. Quantitative modeling of the temporal evolution of these microstructures needs to be discussed in three-dimensional simulation setups. To consistently bridge the gap between 2D images and 3D simulation data, we employ the method of central moments. Based on this, the aspect ratio of plate-like particles is consistently defined in two and three dimensions. The accuracy and interoperability of the method is demonstrated through representative 2D and 3D pixel-based sample data containing particles with a predefined aspect ratio. The applicability of the presented approach in integrated computational materials engineering (ICME) is demonstrated by the example of γ″ microstructure coarsening in Ni-based superalloys at 730 °C. For the first time, γ″ precipitate shape information from experimental 2D images and 3D phase-field simulation data is directly compared. This coarsening data indicates deviations from the classical ripening behavior and reveals periods of increased precipitate coagulation.

Funder

Deutsche Forschungsgemeinschaft

Bundesministerium für Wirtschaft und Technologie

Universität Bayreuth

Publisher

Springer Science and Business Media LLC

Subject

Industrial and Manufacturing Engineering,General Materials Science

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. 3D Minimum Channel Width Distribution in a Ni-Base Superalloy;Integrating Materials and Manufacturing Innovation;2023-01-17

2. Uncertainty quantification of metallic microstructures using principal image moments;Computational Materials Science;2022-12

3. The Elastic Effect of Evolving Precipitate Shapes on the Ripening Kinetics of Tetragonal Phases;Metallurgical and Materials Transactions A;2022-11-22

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