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The effect of fused filament fabrication (FFF) process parameters on the mechanical properties of 3D-printed carbon fiber (CF)-reinforced recycled polylactic acid (rPLA) composite is presented in this paper. Because they have a significant impact on the mechanical properties of the product layer thickness, raster orientation and infill percentage are the process variables taken into consideration for the studies. The response parameters considered in the study are tensile strength. There is multi-optimisation. Utilizing TOPSIS (Technique for Order Preferences by Similarity to Ideal Solution) analysis to determine the optimal combination of parameters that would yield the greatest strength.
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Czasopismo
Rocznik
Tom
Strony
1--7
Opis fizyczny
Bibliogr. 16 poz., rys., tab., wykr.
Twórcy
autor
- Research Scholar, Jawaharlal Nehru Technological University Anantapur, Department of Mechanical Engineering, AP, India
- Senior Assistant Professor, Geethanjali College of Engieering and Technolocy, Department of Mechanical Engineering, Hyderabad, TS, India
autor
- Associate Professor, G. Pulla Reddy Engineering College, Department of Mechanical Engineering, Kurnool, AP, India
Bibliografia
- Anderson, I. (2017). Mechanical properties of specimens 3D printed with virgin and recycled polylactic acid. 3D Printing and Additive Manufacturing, 4(2), 110–115.
- Babagowda, Kadadevara Math, R.S., Goutham, R., & Srinivas Prasad, K.R. (2018, February). Study of Effects on Mechanical Properties of PLA Filament which is blended with Recycled PLA Materials. IOP conference series: materials science and engineering, 310, 012103, IOP Publishing.
- Bin Hamzah, H.H., Keattch, O., Covill, D., & Patel, B.A. (2018). The effects of printing orientation on the electrochemical behavior of 3D printed acrylonitrile butadiene styrene (ABS)/carbon black electrodes. Scientific reports, 8(1), 9135.
- Büth, L., Juraschek, M., Thiede, S., & Herrmann, C. (2020). Choosing Products for Decentralized Manufacturing: Utilizing Recycled 3D Printing Filament in India and Germany. Enhancing Future Skills and Entrepreneurship: 3rd Indo-German Conference on Sustainability in Engineering, 31–39, Springer International Publishing.
- Castanon-Jano, L., Palomera-Obregon, P., BlancoFernandez, E., & Indacoechea-Vega, I. (2023). Analysis of manufacturing and material parameters in 3D-printed polylactic acid (PLA) parts filled with glass powder: mechanical, economic, and environmental assessment. The International Journal of Advanced Manufacturing Technology, 128(5-6), 1965–1979.
- Columbus, L. (2015). Roundup of 3D printing market forecasts and estimates. Forbes. Available online: http: //onforb.es/1bOLpSk (accessed on 4 June 2022).
- Dal Fabbro, P., La Gala, A., Van De Steene, W., D’hooge, D.R., Lucchetta, G., Cardon, L., & Fiorio, R. (2021). Influence of machine type and consecutive closedloop recycling on macroscopic properties for fused filament fabrication of acrylonitrile-butadiene-styrene parts. Rapid Prototyping Journal, 27(2), 268–277.
- Girish Kumar, PVR, Devaki, Devi K. (2023). Impact of compression and bending behavior on fused deposition modeling of 3D printed components. Materials Today: Proceedings, 92, 554–560.
- Girish Kumar, PVR, Devaki, Devi K. (2024). Optimizing mechanical properties of virgin and recycled PLA components using Anova and neural networks. Mathematical Models in Engineering, 10(1), 1–10.
- Hiemenz, J. (2011). 3D printing with FDM: How it Works. Stratasys Inc, 1, 1–5.
- Lanzotti, A., Martorelli, M., Maietta, S., Gerbino, S., Penta, F., & Gloria, A. (2019). A comparison between mechanical properties of specimens 3D printed with virgin and recycled PLA. Procedia Cirp, 79, 143–146.
- Mishra V, Negi S, Kar S. (2023). FDM-based additive manufacturing of recycled thermoplastics and associated composites. Journal of Material Cycles and Waste Management, 25(2), 758–84.
- Saputra, T.H., Hutama, A.S., Ningsih, A., & Pamasaria, H.A. (2023, May). Parameter optimization of FDM type 3D printing against dimensional accuracy with recycled filament plastic LDPE (low density polyethylene). AIP Conference Proceedings, 2674(1), AIP Publishing.
- Shen, J.J. (2011). Comparative life cycle assessment of polylactic acid (PLA) and polyethylene terephthalate (PET). Comparative Assessment of PLA and PET, Spring 2011
- Singh, A.P., & Devi, A.S. (2019). Plastic waste: a review. International journal of advanced scientific research and management, 4(3), 47–51.
- Vink, E.T., Rabago, K.R., Glassner, D.A., & Gruber, P.R. (2003). Applications of life cycle assessment to Nature WorksTMpolylactide (PLA) production. Polymer Degradation and stability, 80(3), 403–419.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-01260a49-7a52-4100-9110-14fee30b70e8
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