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  4. Wing-augmentation reduces femoral head cutting out of dynamic hip screw
 
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Wing-augmentation reduces femoral head cutting out of dynamic hip screw

Journal
Medical Engineering and Physics
Journal Volume
44
Pages
73-78
Date Issued
2017
Author(s)
Chen, C.-Y.
Huang, S.-W.
JUI-SHENG SUN  
SHIN-YIING LIN  
Yu, C.-S.
Pan, H.-P.
Lin, P.-H.
Hsieh, F.-C.
Tsuang, Y.-H.
Lin, F.-H.
RONG-SEN YANG  
FENG-HUEI LIN  
DOI
10.1016/j.medengphy.2017.02.015
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85015408913&doi=10.1016%2fj.medengphy.2017.02.015&partnerID=40&md5=af95c0154ed8975df5100f679e2d5945
https://scholars.lib.ntu.edu.tw/handle/123456789/563635
Abstract
The dynamic hip screw (DHS) is commonly used in the treatment of femoral intertrochanteric fracture with high satisfactory results. However, post-operative failure does occur and result in poor prognosis. The most common failure is femoral head varus collapse, followed by lag screw cut-out through the femoral head. In this study, a novel-designed DHS with two supplemental horizontal blades was used to improve the fixation stability. In this study, nine convention DHS and 9 Orthopaedic Device Research Center (ODRC) DHSs were tested in this study. Each implant was fixed into cellular polyurethane rigid foam as a surrogate of osteoporotic femoral head. Under biaxial rocking motion, all constructs were loaded to failure point (12 mm axial displacement) or up to 20,000 cycles of 1.45 kN peak magnitude were achieved, whichever occurred first. The migration kinematics was continuously monitored and recorded. The final tip-to-apex distance, rotational angle and varus deformation were also recorded. The results showed that the ODRC DHS sustained significantly more loading cycles and exhibited less axial migration in comparison to the conventional DHS. The ODRC DHS showed a significantly smaller bending strain and larger torsional strain compared to the conventional DHS. The changes in tip-to-apex distance (TAD), post-study varus angle, post-study rotational angle of the ODRC DHS were all significantly less than that of the conventional DHS (p < 0.05). We concluded that the ODRC DHS augmented with two horizontal wings would increase the bone–implant interface contact surface, dissipate the load to the screw itself, which improves the migration resistance and increases the anti-rotational implant effect. In conclusion, the proposed ODRC DHS demonstrated significantly better migration resistance and anti-rotational effect in comparison to the conventional DHS construct.
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Publisher
Elsevier Ltd
Type
journal article

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