Conditional diffusion model for inverse prediction of process parameters and dendritic microstructures from mechanical properties
Arisa Ikeda, Ryo Higuchi, Tomohiro Yokozeki, Katsuhiro Endo, Yuta Kojima, Misato Suzuki, Mayu Muramatsu

TL;DR
This paper introduces a conditional diffusion model that predicts optimal process parameters and microstructures to achieve desired mechanical properties, reducing experimental costs in materials development.
Contribution
It presents a novel inverse prediction model using diffusion techniques, specifically applied to polymeric materials with complex dendritic microstructures.
Findings
The model accurately predicts process parameters for target properties.
It effectively models complex dendritic microstructures.
The approach reduces experimental and simulation costs.
Abstract
In this study, we develop a conditional diffusion model that proposes the optimal process parameters and predicts the microstructure for the desired mechanical properties. In materials development, it is costly to try many samples with different parameters in experiments and numerical simulations. The use of data-driven inverse design method can reduce the cost of materials development. This study develops an inverse analysis model that predicts process parameters and microstructures. This method can be used for any material, but in this study it is applied to polymeric material, which is the matrix resin of carbon fiber reinforced thermoplastics as an example. Matrix resins contain a mixture of dendrites, which are crystalline phases, and amorphous phases even after crystal growth is complete, and it is important to consider the microstructures consisting of the crystalline structure…
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Taxonomy
TopicsSolidification and crystal growth phenomena · Metallurgical Processes and Thermodynamics · Aluminum Alloy Microstructure Properties
