Biomechanical Comparison of Different Volar Screw Placements for Horizontal Oblique Scaphoid Fractures
Abstract
1. Introduction
2. Materials and Methods
2.1. Surgical Procedures
2.2. Biomechanical Testing of Fixation Stability
2.3. Statistical Analysis
3. Results
4. Discussion
Author Contributions
Funding
Conflicts of Interest
References
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Number | Age/Gender | Group | Side | Length (mm) | Number | Age/Gender | Group | Side | Length (mm) |
---|---|---|---|---|---|---|---|---|---|
1 | 54/F | Central | L | 25.0 | 9 | 71/M | Central | R | 31.0 |
2 | 54/F | Eccentric | R | 25.5 | 10 | 71/M | Eccentric | L | 31.5 |
3 | 66/F | Central | L | 26.0 | 11 | 51/M | Central | L | 30.0 |
4 | 66/F | Eccentric | R | 26.5 | 12 | 51/M | Eccentric | R | 29.5 |
5 | 59/M | Central | R | 27.5 | 13 | 42/M | Central | R | 28.5 |
6 | 59/M | Eccentric | L | 27.5 | 14 | 42/M | Eccentric | L | 28.5 |
7 | 50/F | Central | L | 27.0 | 15 | 67/F | Central | R | 27.0 |
8 | 50/F | Eccentric | R | 26.5 | 16 | 67/F | Eccentric | L | 27.5 |
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Lin, T.-S.; Ma, C.-H.; Wu, C.-H.; Yen, C.-Y.; Jou, I.-M.; Tu, Y.-K. Biomechanical Comparison of Different Volar Screw Placements for Horizontal Oblique Scaphoid Fractures. Appl. Sci. 2020, 10, 8592. https://doi.org/10.3390/app10238592
Lin T-S, Ma C-H, Wu C-H, Yen C-Y, Jou I-M, Tu Y-K. Biomechanical Comparison of Different Volar Screw Placements for Horizontal Oblique Scaphoid Fractures. Applied Sciences. 2020; 10(23):8592. https://doi.org/10.3390/app10238592
Chicago/Turabian StyleLin, Ting-Sheng, Ching-Hou Ma, Chin-Hsien Wu, Cheng-Yo Yen, I-Ming Jou, and Yuan-Kun Tu. 2020. "Biomechanical Comparison of Different Volar Screw Placements for Horizontal Oblique Scaphoid Fractures" Applied Sciences 10, no. 23: 8592. https://doi.org/10.3390/app10238592
APA StyleLin, T.-S., Ma, C.-H., Wu, C.-H., Yen, C.-Y., Jou, I.-M., & Tu, Y.-K. (2020). Biomechanical Comparison of Different Volar Screw Placements for Horizontal Oblique Scaphoid Fractures. Applied Sciences, 10(23), 8592. https://doi.org/10.3390/app10238592