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05.02.2024

Optimizing mechanical properties of HIPS fabricated with low-cost desktop 3D printers: investigating the impact of process parameters

verfasst von: Jin-Ting Xu, Guang-Wei Zhang, Man-Man Chen

Erschienen in: Advances in Manufacturing

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Abstract

Recently, low-cost desktop three-dimensional (3D) printers, employing the fused deposition modeling (FDM) technique, have gained widespread popularity. However, most users cannot test the strength of printed parts, and little information is available about the mechanical properties of printed high-impact polystyrene (HIPS) parts using desktop 3D printers. In this study, the user-adjustable parameters of desktop 3D printers, such as crisscross raster orientation, layer thickness, and infill density, were tested. The experimental plans were designed using the Box-Behnken method, and tensile, 3-point bending, and compression tests were carried out to determine the mechanical responses of the printed HIPS. The prediction models of the process parameters were regressed to produce the optimal combination of process parameters. The experimental results showcase that the crisscross raster orientation has significant effects on the flexural and compression strengths, but not on the tensile strength. With an increase in the layer thickness, the tensile, flexural, and compression strengths first decreased and then increased, reaching their minimum values at approximately 0.16 mm layer thickness. In addition, they all increased with an increase of infill density. It was demonstrated that when the raster orientation, layer thickness, and infill density were 13.08°/–76.92°, 0.09 mm, and 80%, respectively, the comprehensive mechanical properties of the printed HIPS were optimal. Our results can help end-users of desktop 3D printers understand the effects of process parameters on the mechanical properties, and offer practical suggestions for setting proper printing parameters for fabricating HIPS parts.

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Literatur
1.
Zurück zum Zitat Yadav DK, Rajeev S, Dev S (2020) Design and fabrication of ABS part by FDM for automobile application. Mater Today: Proc 26:2089–2093 Yadav DK, Rajeev S, Dev S (2020) Design and fabrication of ABS part by FDM for automobile application. Mater Today: Proc 26:2089–2093
2.
Zurück zum Zitat Daneshmand S, Nadooshan AA, Aghanajafi C (2008) Evaluation of FDM rapid prototyping with ABSi material for airfoil design. Mater Sci Forum 594:249–254CrossRef Daneshmand S, Nadooshan AA, Aghanajafi C (2008) Evaluation of FDM rapid prototyping with ABSi material for airfoil design. Mater Sci Forum 594:249–254CrossRef
3.
Zurück zum Zitat Hao YL, Li SJ, Yang R (2016) Biomedical titanium alloys and their additive manufacturing. Rare Met 35:661–671CrossRef Hao YL, Li SJ, Yang R (2016) Biomedical titanium alloys and their additive manufacturing. Rare Met 35:661–671CrossRef
6.
Zurück zum Zitat Dizon JRC, Espera AH Jr, Chen Q et al (2018) Mechanical characterization of 3D-printed polymers. Addit Manuf 20:44–67 Dizon JRC, Espera AH Jr, Chen Q et al (2018) Mechanical characterization of 3D-printed polymers. Addit Manuf 20:44–67
8.
Zurück zum Zitat Bowyer A (2014) 3D printing and humanity’s first imperfect replicator. 3D Print Addit Manuf 1(1):4–5 Bowyer A (2014) 3D printing and humanity’s first imperfect replicator. 3D Print Addit Manuf 1(1):4–5
9.
Zurück zum Zitat Pearce JM (2012) Building research equipment with free, open-source hardware. Science 337(6100):1303–1304ADSCrossRefPubMed Pearce JM (2012) Building research equipment with free, open-source hardware. Science 337(6100):1303–1304ADSCrossRefPubMed
10.
Zurück zum Zitat Kreiger M, Pearce JM (2013) Environmental life cycle analysis of distributed 3D printing and conventional manufacturing of polymer products. ACS Sustain Chem Eng 12(1):1511–1519CrossRef Kreiger M, Pearce JM (2013) Environmental life cycle analysis of distributed 3D printing and conventional manufacturing of polymer products. ACS Sustain Chem Eng 12(1):1511–1519CrossRef
11.
Zurück zum Zitat Durgun I, Ertan R (2014) Experimental investigation of FDM process for improvement of mechanical properties and production cost. Rapid Prototyping J 20(3):228–235CrossRef Durgun I, Ertan R (2014) Experimental investigation of FDM process for improvement of mechanical properties and production cost. Rapid Prototyping J 20(3):228–235CrossRef
12.
Zurück zum Zitat Ziemian S, Okwara M, Ziemian CW (2015) Tensile and fatigue behavior of layered acrylonitrile butadiene styrene. Rapid Prototyping J 21(3):270–278CrossRef Ziemian S, Okwara M, Ziemian CW (2015) Tensile and fatigue behavior of layered acrylonitrile butadiene styrene. Rapid Prototyping J 21(3):270–278CrossRef
13.
Zurück zum Zitat Bellini A, Güçeri S (2003) Mechanical characterization of parts fabricated using fused deposition modeling. Rapid Prototyping J 9(4):252–264CrossRef Bellini A, Güçeri S (2003) Mechanical characterization of parts fabricated using fused deposition modeling. Rapid Prototyping J 9(4):252–264CrossRef
14.
Zurück zum Zitat Ahn SH, Montero M, Odell D et al (2002) Anisotropic material properties of fused deposition modeling ABS. Rapid Prototyping J 8(4):248–257CrossRef Ahn SH, Montero M, Odell D et al (2002) Anisotropic material properties of fused deposition modeling ABS. Rapid Prototyping J 8(4):248–257CrossRef
15.
Zurück zum Zitat Durgashyam K, Reddy MI, Balakrishna A et al (2019) Experimental investigation on mechanical properties of petg material processed by fused deposition modeling method. Mater Today: Proc 18(6):2052–2059 Durgashyam K, Reddy MI, Balakrishna A et al (2019) Experimental investigation on mechanical properties of petg material processed by fused deposition modeling method. Mater Today: Proc 18(6):2052–2059
16.
Zurück zum Zitat Chacòn JM, Caminero MA, García-Plaza E et al (2017) Additive manufacturing of PLA structures using fused deposition modelling: effect of process parameters on mechanical properties and their optimal selection. Mater Des 124:143–157CrossRef Chacòn JM, Caminero MA, García-Plaza E et al (2017) Additive manufacturing of PLA structures using fused deposition modelling: effect of process parameters on mechanical properties and their optimal selection. Mater Des 124:143–157CrossRef
17.
Zurück zum Zitat Sood AK, Ohdar R, Mahapatra S et al (2010) Parametric appraisal of mechanical property of fused deposition modelling processed parts. Mater Des 31(1):287–295CrossRef Sood AK, Ohdar R, Mahapatra S et al (2010) Parametric appraisal of mechanical property of fused deposition modelling processed parts. Mater Des 31(1):287–295CrossRef
18.
Zurück zum Zitat Aghanajafi C, Daneshmand S, Nadooshan AA (2009) Influence of layer thickness on the design of rapid-prototyped models. J Aircraft 46(3):981–987CrossRef Aghanajafi C, Daneshmand S, Nadooshan AA (2009) Influence of layer thickness on the design of rapid-prototyped models. J Aircraft 46(3):981–987CrossRef
19.
Zurück zum Zitat Daneshmand S, Aghanajafi C (2012) Description and modeling of the additive manufacturing technology for aerodynamic coefficients measurement. Stroj vestn-J Mech E 58(2):125–133CrossRef Daneshmand S, Aghanajafi C (2012) Description and modeling of the additive manufacturing technology for aerodynamic coefficients measurement. Stroj vestn-J Mech E 58(2):125–133CrossRef
20.
Zurück zum Zitat Daneshmand S, Aghanajafi C, Shahverdi H (2012) Investigation of rapid manufacturing technology with ABS material for wind tunnel models fabrication. J Polym Eng 32(8/9):575–584CrossRef Daneshmand S, Aghanajafi C, Shahverdi H (2012) Investigation of rapid manufacturing technology with ABS material for wind tunnel models fabrication. J Polym Eng 32(8/9):575–584CrossRef
21.
Zurück zum Zitat Sood AK, Ohdar RK, Mahapatra SS (2012) Experimental investigation and empirical modelling of FDM process for compressive strength improvement. J Adv Res 3(1):81–90CrossRef Sood AK, Ohdar RK, Mahapatra SS (2012) Experimental investigation and empirical modelling of FDM process for compressive strength improvement. J Adv Res 3(1):81–90CrossRef
22.
Zurück zum Zitat Dawoud M, Taha I, Ebeid SJ (2016) Mechanical behavior of ABS: an experimental study using FDM and injection moulding techniques. J Manuf Process 21:39–45CrossRef Dawoud M, Taha I, Ebeid SJ (2016) Mechanical behavior of ABS: an experimental study using FDM and injection moulding techniques. J Manuf Process 21:39–45CrossRef
23.
Zurück zum Zitat Tanikella NG, Wittbrodt B, Pearce JM (2017) Tensile strength of commercial polymer materials for fused filament fabrication 3D printing. Addit Manuf 15:40–47 Tanikella NG, Wittbrodt B, Pearce JM (2017) Tensile strength of commercial polymer materials for fused filament fabrication 3D printing. Addit Manuf 15:40–47
24.
Zurück zum Zitat Tymrak BM, Kreiger M, Pearce JM (2014) Mechanical properties of components fabricated with open-source 3-D printers under realistic environmental conditions. Mater Des 58:242–246CrossRef Tymrak BM, Kreiger M, Pearce JM (2014) Mechanical properties of components fabricated with open-source 3-D printers under realistic environmental conditions. Mater Des 58:242–246CrossRef
25.
Zurück zum Zitat Lanzotti A, Grasso M, Staiano G et al (2015) The impact of process parameters on mechanical properties of parts fabricated in PLA with an open-source 3D printer. Rapid Prototyping J 21(5):604–617CrossRef Lanzotti A, Grasso M, Staiano G et al (2015) The impact of process parameters on mechanical properties of parts fabricated in PLA with an open-source 3D printer. Rapid Prototyping J 21(5):604–617CrossRef
26.
Zurück zum Zitat Li H, Wang T, Sun J et al (2018) The effect of process parameters in fused deposition modelling on bonding degree and mechanical properties. Rapid Prototyping J 24(1):80–92CrossRef Li H, Wang T, Sun J et al (2018) The effect of process parameters in fused deposition modelling on bonding degree and mechanical properties. Rapid Prototyping J 24(1):80–92CrossRef
27.
Zurück zum Zitat Gokhare VG, Raut DN, Shinde DK (2017) A review paper on 3D-printing aspects and various processes used in the 3D-printing. Int J Eng Res Technol 6(6):953–958 Gokhare VG, Raut DN, Shinde DK (2017) A review paper on 3D-printing aspects and various processes used in the 3D-printing. Int J Eng Res Technol 6(6):953–958
28.
Zurück zum Zitat Kumari PVK, Yarraguntla S, Sharmila M et al (2021) Application of box-behnken design for formulation parameters of eslicarbazepine tablets. Indian J Pharm Sci 83(3):575–583 Kumari PVK, Yarraguntla S, Sharmila M et al (2021) Application of box-behnken design for formulation parameters of eslicarbazepine tablets. Indian J Pharm Sci 83(3):575–583
29.
Zurück zum Zitat Belwal T, Dhyani P, Bhatt ID (2016) Optimization extraction conditions for improving phenolic content and antioxidant activity in Berberis asiatica fruits using response surface methodology (RSM). Food Chem 207:115–124CrossRefPubMed Belwal T, Dhyani P, Bhatt ID (2016) Optimization extraction conditions for improving phenolic content and antioxidant activity in Berberis asiatica fruits using response surface methodology (RSM). Food Chem 207:115–124CrossRefPubMed
Metadaten
Titel
Optimizing mechanical properties of HIPS fabricated with low-cost desktop 3D printers: investigating the impact of process parameters
verfasst von
Jin-Ting Xu
Guang-Wei Zhang
Man-Man Chen
Publikationsdatum
05.02.2024
Verlag
Shanghai University
Erschienen in
Advances in Manufacturing
Print ISSN: 2095-3127
Elektronische ISSN: 2195-3597
DOI
https://doi.org/10.1007/s40436-023-00475-9

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