Physical Property of 3D-Printed N-Pointed Star-Shaped Outsole Prepared by FDM 3D Printer Using the Lightweight TPU
Abstract
:1. Introduction
2. Materials and Methods
2.1. Material
2.2. Preparations of LW 3-, 4-, and 6-Pointed SP Outsole with Various Thicknesses
2.3. 3D FDM Printing Conditions
2.4. Characterization
2.4.1. Morphology
2.4.2. Specific Gravity
2.4.3. Static Compressive Test
2.4.4. Static/Dynamic Coefficient of Friction Test
2.4.5. NBS and DIN Abrasion Test
2.4.6. Ball Drop and Pendulum Resilience Test
2.4.7. Surface Area and Surface Force Test
3. Results and Discussion
3.1. Morphology
3.2. Specific Gravity and Weight
3.3. Static Compressive
3.4. Static and Dynamic Coefficient of Friction
3.5. DIN and NBS Abrasion
3.6. Ball Drop and Pendulum Resilience
3.7. Surface Area and Surface Force
Prototypes | 3PS | 4PS | 6PS | ||||||
---|---|---|---|---|---|---|---|---|---|
Thickness | 5.0 | 7.5 | 10.0 | 5.0 | 7.5 | 10.0 | 5.0 | 7.5 | 10.0 |
Surface Area (mm2) | 16.26 | 16.46 | 16.83 | 16.26 | 15.73 | 16.28 | 17.52 | 15.71 | 15.34 |
Surface Pressure (kPa) | 28.11 | 30.72 | 29.70 | 30.12 | 28.87 | 29.60 | 26.81 | 25.33 | 25.61 |
Image of plantar pressure distribution |
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Model | Thickness (mm) | |||
---|---|---|---|---|
Code | ||||
3PS-50 | 3PS-75 | 3PS-100 | ||
3-pointed star-shaped porous outsole | ||||
4PS-50 | 4PS-75 | 4PS-100 | ||
4-pointed star-shaped porous outsole | ||||
6PS-50 | 6PS-75 | 6PS-100 | ||
6-pointed star-shaped porous outsole |
Code | Thickness (mm) | Surface | ||
---|---|---|---|---|
×50 | ×250 | ×500 | ||
3PS-50 | 5.0 | |||
3PS-75 | 7.5 | |||
3PS-100 | 10.0 | |||
Cross-side | ||||
3PS-50 | 5.0 | |||
3PS-75 | 7.5 | |||
3PS-100 | 10.0 |
Code | Thickness (mm) | Surface | ||
---|---|---|---|---|
×50 | ×250 | ×500 | ||
4PS-50 | 5.0 | |||
4PS-75 | 7.5 | |||
4PS-100 | 10.0 | |||
Cross-side | ||||
4PS-50 | 5.0 | |||
4PS-75 | 7.5 | |||
4PS-100 | 10.0 |
Code | Thickness (mm) | Surface | ||
---|---|---|---|---|
×50 | ×250 | ×500 | ||
6PS-50 | 5.0 | |||
6PS-75 | 7.5 | |||
6PS-100 | 10.0 | |||
Cross-side | ||||
6PS-50 | 5.0 | |||
6PS-75 | 7.5 | |||
6PS-100 | 10.0 |
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Chen, X.; Lee, S. Physical Property of 3D-Printed N-Pointed Star-Shaped Outsole Prepared by FDM 3D Printer Using the Lightweight TPU. Polymers 2022, 14, 3189. https://doi.org/10.3390/polym14153189
Chen X, Lee S. Physical Property of 3D-Printed N-Pointed Star-Shaped Outsole Prepared by FDM 3D Printer Using the Lightweight TPU. Polymers. 2022; 14(15):3189. https://doi.org/10.3390/polym14153189
Chicago/Turabian StyleChen, Xiaokui, and Sunhee Lee. 2022. "Physical Property of 3D-Printed N-Pointed Star-Shaped Outsole Prepared by FDM 3D Printer Using the Lightweight TPU" Polymers 14, no. 15: 3189. https://doi.org/10.3390/polym14153189
APA StyleChen, X., & Lee, S. (2022). Physical Property of 3D-Printed N-Pointed Star-Shaped Outsole Prepared by FDM 3D Printer Using the Lightweight TPU. Polymers, 14(15), 3189. https://doi.org/10.3390/polym14153189