Journal of the American Ceramic Society · 2022 · 17 citations · 16 references
Convolutional Neural NetworkEngineeringMechanical EngineeringHardnessFracture Toughness EvaluationFracture ModelingStressstrain AnalysisMicrostructure-strength RelationshipMaterials ScienceCeramic MaterialDeep LearningRelative DensitiesMicrostructureStructural CeramicSilicon NitrideFracture ToughnessConstitutive ModelingCrack FormationMechanics Of MaterialsHigh Strain Rate
Abstract The fracture toughness of silicon nitride (Si 3 N 4 ) ceramics was evaluated directly from their microstructures via deep learning using convolutional neural network models. Totally 156 data sets containing microstructural images and relative densities were prepared from 45 types of Si 3 N 4 samples as input feature quantities (IFQs) and were correlated to the fracture toughness as an objective variable. The data sets were divided into two groups. One was used for training, resulting in the creation of regression models for two kinds of IFQs: the microstructures only and a combination of the microstructures and the relative densities. The other group was used for testing the validity of the created models. As a result, the determination coefficient was approximately 0.8 even when using only the microstructures as the IFQs and was further improved when adding the relative densities. It was revealed that the fracture toughness of Si 3 N 4 ceramics was well evaluated from their microstructures.
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A Tough Silicon Nitride Ceramic with High Thermal Conductivity
You Zhou, Hideki Hyuga, Dai Kusano et al. · Advanced Materials · 2011 · 309 citations
Materials Science, Materials Engineering, High Thermal Conductivity +9
Hiroyuki Miyazaki, You Zhou, Shoji Iwakiri et al. · Ceramics International · 2018 · 62 citations
Materials Engineering, Materials Science, High Thermal Conductivity +10