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2022 | OriginalPaper | Chapter

Investigations on Mechanical Properties of Reinforced Secondary Recycled ABS as Filament for 3D Printing Applications

Authors : K. Chawla, Rupinder Singh, J. Singh

Published in: Additive, Subtractive, and Hybrid Technologies

Publisher: Springer International Publishing

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Abstract

In order to reduce polymer waste, recycling is one of the techniques extensively followed by researchers nowadays. But hitherto, less work has been reported on fabrication of composite filaments through secondary (2°) recycled acrylonitrile butadiene styrene (ABS) polymer reinforced with three industrial waste materials. In the present study, efforts have been made on the development of composite filaments for fused deposition modelling (FDM) technique of additive manufacturing by controlling different parameters like speed, temperature, load of twin-screw extruder for optimizing the various mechanical properties. Total nine composite filaments were prepared by taking 90% ABS and 10% reinforcements (bakelite powder + wood dust + Fe powder). The observed mechanical and thermal properties of the composite filaments were analysed using scanning electron microscopy (SEM) images and optical photomicrographs.

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Literature
1.
go back to reference Chakraborty, D., Reddy, B. A., & Choudhury, A. R. (2008). Extruder path generation for curved layer fused deposition modeling. Computer-Aided Design, 40(2), 235–243.CrossRef Chakraborty, D., Reddy, B. A., & Choudhury, A. R. (2008). Extruder path generation for curved layer fused deposition modeling. Computer-Aided Design, 40(2), 235–243.CrossRef
2.
go back to reference Lee, W. C., Wei, C. C., & Chung, S. C. (2014). Development of a hybrid rapid prototyping system using low-cost fused deposition modeling and five-axis machining. Journal of Materials Processing Technology, 214(11), 2366–2374.CrossRef Lee, W. C., Wei, C. C., & Chung, S. C. (2014). Development of a hybrid rapid prototyping system using low-cost fused deposition modeling and five-axis machining. Journal of Materials Processing Technology, 214(11), 2366–2374.CrossRef
3.
go back to reference Conner, B. P., Manogharan, G. P., Martof, A. N., Rodomsky, L. M., Rodomsky, C. M., Jordan, D. C., & Limperos, J. W. (2014). Making sense of 3-D printing: Creating a map of additive manufacturing products and services. In Additive manufacturing (pp. 64–76). Elsevier. Conner, B. P., Manogharan, G. P., Martof, A. N., Rodomsky, L. M., Rodomsky, C. M., Jordan, D. C., & Limperos, J. W. (2014). Making sense of 3-D printing: Creating a map of additive manufacturing products and services. In Additive manufacturing (pp. 64–76). Elsevier.
4.
go back to reference Huang, Y., Leu, M. C., Mazumder, J., & Donmez, A. (2015). Additive manufacturing: current state, future potential, gaps and needs, and recommendations. Journal of Manufacturing Science and Engineering, 137(1), 014001.CrossRef Huang, Y., Leu, M. C., Mazumder, J., & Donmez, A. (2015). Additive manufacturing: current state, future potential, gaps and needs, and recommendations. Journal of Manufacturing Science and Engineering, 137(1), 014001.CrossRef
5.
go back to reference Murphy, T., Gray, H., & Cotteleer, M. (2015). 3D opportunity for the future: Industry participants speak out. Deloitte Review, 17, 148–165. Murphy, T., Gray, H., & Cotteleer, M. (2015). 3D opportunity for the future: Industry participants speak out. Deloitte Review, 17, 148–165.
6.
go back to reference Upcraft, S., & Fletcher, R. (2003). The rapid prototyping technologies. Assembly Automation, 23, 318–330.CrossRef Upcraft, S., & Fletcher, R. (2003). The rapid prototyping technologies. Assembly Automation, 23, 318–330.CrossRef
7.
go back to reference Bakar, N. S. A., Alkahari, M. R., & Boejang, H. (2010). Analysis on fused deposition modelling performance. Journal of Zhejiang University, Science, A, 11(12), 972–977.CrossRef Bakar, N. S. A., Alkahari, M. R., & Boejang, H. (2010). Analysis on fused deposition modelling performance. Journal of Zhejiang University, Science, A, 11(12), 972–977.CrossRef
8.
go back to reference Greul, M., Pintat, T., & Greulich, M. (1995). Rapid prototyping of functional metallic parts. Computers in Industry, 28(1), 23–28.CrossRef Greul, M., Pintat, T., & Greulich, M. (1995). Rapid prototyping of functional metallic parts. Computers in Industry, 28(1), 23–28.CrossRef
9.
go back to reference Bourell, D., Stucker, B., Ilardo, R., & Williams, C. B. (2010). Design and manufacture of a Formula SAE intake system using fused deposition modeling and fiber-reinforced composite materials. Rapid Prototyping Journal, 16(3), 174–179.CrossRef Bourell, D., Stucker, B., Ilardo, R., & Williams, C. B. (2010). Design and manufacture of a Formula SAE intake system using fused deposition modeling and fiber-reinforced composite materials. Rapid Prototyping Journal, 16(3), 174–179.CrossRef
10.
go back to reference Singh, R., Kumar, S., Bedi, P., & Hashmi, M. S. J. (2020). On wear of 3D printed Al2O3 reinforced Nylon6 matrix based functional prototypes. Materials Today: Proceedings, 33, 1477–1482. Singh, R., Kumar, S., Bedi, P., & Hashmi, M. S. J. (2020). On wear of 3D printed Al2O3 reinforced Nylon6 matrix based functional prototypes. Materials Today: Proceedings, 33, 1477–1482.
11.
go back to reference Billah, K. M. M., Lorenzana, F. A., Martinez, N. L., Wicker, R. B., & Espalin, D. (2020). Thermomechanical characterization of short carbon fiber and short glass fiber-reinforced ABS used in large format additive manufacturing. Additive Manufacturing, 2020, 101299.CrossRef Billah, K. M. M., Lorenzana, F. A., Martinez, N. L., Wicker, R. B., & Espalin, D. (2020). Thermomechanical characterization of short carbon fiber and short glass fiber-reinforced ABS used in large format additive manufacturing. Additive Manufacturing, 2020, 101299.CrossRef
12.
go back to reference Jin, D. W., Shon, K. H., Jeong, H. M., & Kim, B. K. (1998). Compatibility enhancement of ABS/polycarbonate blends. Journal of Applied Polymer Science, 69(3), 533–542.CrossRef Jin, D. W., Shon, K. H., Jeong, H. M., & Kim, B. K. (1998). Compatibility enhancement of ABS/polycarbonate blends. Journal of Applied Polymer Science, 69(3), 533–542.CrossRef
13.
go back to reference Lee, J. H., Shin, H., & Rhee, K. Y. (2019). Surface functionalization of boron nitride platelets via a catalytic oxidation/silanization process and thermomechanical properties of boron nitride-epoxy composites. Composites Part B: Engineering, 157, 276–282.CrossRef Lee, J. H., Shin, H., & Rhee, K. Y. (2019). Surface functionalization of boron nitride platelets via a catalytic oxidation/silanization process and thermomechanical properties of boron nitride-epoxy composites. Composites Part B: Engineering, 157, 276–282.CrossRef
14.
go back to reference Pour, R. H., Soheilmoghaddam, M., Hassan, A., & Bourbigot, S. (2015). Flammability and thermal properties of polycarbonate/acrylonitrile-butadiene-styrene nanocomposites reinforced with multilayer graphene. Polymer Degradation and Stability, 120, 88–97.CrossRef Pour, R. H., Soheilmoghaddam, M., Hassan, A., & Bourbigot, S. (2015). Flammability and thermal properties of polycarbonate/acrylonitrile-butadiene-styrene nanocomposites reinforced with multilayer graphene. Polymer Degradation and Stability, 120, 88–97.CrossRef
15.
go back to reference Yeh, S. K., Agarwal, S., & Gupta, R. K. (2009). Wood–plastic composites formulated with virgin and recycled ABS. Composites Science and Technology, 69(13), 2225–2230.CrossRef Yeh, S. K., Agarwal, S., & Gupta, R. K. (2009). Wood–plastic composites formulated with virgin and recycled ABS. Composites Science and Technology, 69(13), 2225–2230.CrossRef
16.
go back to reference Lohar, G. S., & Jogi, B. F. (2018). Influence of carbon black (CB) on mechanical behaviour and microscopic analysis of poly-propylene (PP)/Acrylonitrile-butadiene-styrene (ABS) nanocomposites. Procedia Manufacturing, 20, 85–90.CrossRef Lohar, G. S., & Jogi, B. F. (2018). Influence of carbon black (CB) on mechanical behaviour and microscopic analysis of poly-propylene (PP)/Acrylonitrile-butadiene-styrene (ABS) nanocomposites. Procedia Manufacturing, 20, 85–90.CrossRef
17.
go back to reference Love, L. J. (2014). The importance of carbon fiber to polymer additive manufacturing. Journal of Materials Research, 29(17), 1893–1898.CrossRef Love, L. J. (2014). The importance of carbon fiber to polymer additive manufacturing. Journal of Materials Research, 29(17), 1893–1898.CrossRef
18.
19.
go back to reference Panda, A. K., Singh, R. K., & Mishra, D. K. (2010). Thermolysis of waste plastics to liquid fuel: A suitable method for plastic waste management and manufacture of value added products—A world prospective. Renewable and Sustainable Energy Reviews, 14(1), 233–248.CrossRef Panda, A. K., Singh, R. K., & Mishra, D. K. (2010). Thermolysis of waste plastics to liquid fuel: A suitable method for plastic waste management and manufacture of value added products—A world prospective. Renewable and Sustainable Energy Reviews, 14(1), 233–248.CrossRef
20.
go back to reference Zhong, W., Li, F., Zhang, Z., Song, L., & Li, Z. (2001). Short fiber reinforced composites for fused deposition modeling. Materials Science and Engineering, 301(2), 125–133.CrossRef Zhong, W., Li, F., Zhang, Z., Song, L., & Li, Z. (2001). Short fiber reinforced composites for fused deposition modeling. Materials Science and Engineering, 301(2), 125–133.CrossRef
21.
go back to reference Chadha, A., Haq, M. I. U., Raina, A., Singh, R. R., Penumarti, N. B., & Bishnoi, M. S. (2019). Effect of fused deposition modelling process parameters on mechanical properties of 3D printed parts. World Journal of Engineering, 16, 550–559.CrossRef Chadha, A., Haq, M. I. U., Raina, A., Singh, R. R., Penumarti, N. B., & Bishnoi, M. S. (2019). Effect of fused deposition modelling process parameters on mechanical properties of 3D printed parts. World Journal of Engineering, 16, 550–559.CrossRef
22.
go back to reference Haleem, A., & Javaid, M. (2020). 3D printed medical parts with different materials using additive manufacturing. Clinical Epidemiology and Global Health, 8(1), 215–223.CrossRef Haleem, A., & Javaid, M. (2020). 3D printed medical parts with different materials using additive manufacturing. Clinical Epidemiology and Global Health, 8(1), 215–223.CrossRef
Metadata
Title
Investigations on Mechanical Properties of Reinforced Secondary Recycled ABS as Filament for 3D Printing Applications
Authors
K. Chawla
Rupinder Singh
J. Singh
Copyright Year
2022
DOI
https://doi.org/10.1007/978-3-030-99569-0_3

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