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Prediction of tensile strength in fused deposition modeling process using artifcial neural network and fuzzy logic

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dc.contributor.author Tura, Amanuel Diriba
dc.contributor.author Mamo, Hana Beyene
dc.contributor.author Santhosh, A. Johnson
dc.date.accessioned 2023-06-07T13:31:23Z
dc.date.available 2023-06-07T13:31:23Z
dc.date.issued 2022-09-15
dc.identifier.uri https://repository.ju.edu.et//handle/123456789/8170
dc.description.abstract Fused deposition modeling is a modern rapid prototyping technique that is used for swiftly replicating concept modeling, physical modeling, and end-of-line manufacture. Precision parameter selection is crucial for generating high-quality products with excellent mechanical properties, such as tensile strength. This study looked at three essential process variables: infll density, extruder temperature, and print speed. The relationship between these parameters and tensile strength of printed polylactic acid components was investigated. Artifcial neural network (ANN) and Fuzzy logic (FL) method are utilized to develop a prediction model. The test samples have been printed using a 3D forge Dreamer II FDM printing machine. In Minitab software, the response surface design of the Box–Behnken technique with 15 experimental sets was used to organize the trials. The results revealed that extruder temperature and print speed had a minor impact on tensile strength; however, infll density has a large impact. The ANN and FL models all predicted tensile strength with a high degree of accuracy, with maximum absolute percentage errors of 2.21%, and 3.29%, respectively. The model and the experimental data were found to be in good agreement, according to the fndings. Furthermore, when compared to FL modeling, ANN models with arithmetical value indices were the best predictive model. en_US
dc.language.iso en_US en_US
dc.subject Fused deposition modeling en_US
dc.subject Tensile strength en_US
dc.subject Artifcial neural network en_US
dc.subject Fuzzy model en_US
dc.title Prediction of tensile strength in fused deposition modeling process using artifcial neural network and fuzzy logic en_US
dc.type Article en_US


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