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Updated: Aug 18, 2026

Proximal Cadaveric Femur Preparation for Fracture Strength Testing and Quantitative CT-based Finite Element Analysis
Published on: March 11, 2017
Dynamic parallel traction theoretical model for the application and validation in femoral neck fractures - a finite
Jiarui Li1,2, Kunyue Xing3, Wenzhuo Wang1,4
1The Affiliated Hospital of Qingdao University, Qingdao Cancer Institute, Qingdao University, Qingdao, 266071, China.
Study Objective:
This study aims to validate the application effects of a novel theoretical model of dynamic parallel traction in the treatment of femoral neck fractures through three-dimensional finite element analysis. By simulating the femoral neck fracture model, we explore the promotional effect of dynamic parallel traction on fracture healing.
Method:
A digital 3D femur model was constructed using high-resolution computed tomography data of the lower limbs of a 70-year-old elderly subject. An axial compression of 500N was applied at different traction angles (0°, 10°, 20°, 30°, 40°, 50°). The equivalent stress distribution and deformation of the femur geometric model were calculated at each angle under the six angles. Statistical analysis was performed using One-Way ANOVA.
Results:
At the parallel angle ( = 0°), the maximum stress on the entire femur occurred at the trochanteric fossa, with a value of 7.945 MPa ( = 0°). The maximum deformation was at the fovea capitis, with a value of 104.13 mm ( = 0°). As the traction angle gradually increased ( = 10°, = 20°, = 30°, = 40°, = 50°), the maximum stress shifted gradually to the medial cortex of the femoral shaft, with values of 11.236 MPa ( = 10°), 15.196 MPa ( = 20°), 19.263 MPa ( = 30°), 23.149 MPa ( = 40°), and 26.311 MPa ( = 50°). The maximum deformation remained at the fovea capitis but increased to 131.87 mm ( = 10°), 181.96 mm ( = 20°), 228.2 mm ( = 30°), 271.15 mm ( = 40°), and 307.41 mm ( = 50°). One-Way ANOVA revealed that traction angle significantly influenced the stress distribution (F = 4.419, p = 0.0022) and deformation magnitude (F = 4.023, p = 0.0040) at the proximal femur, indicating that traction angle is a critical factor affecting stress distribution and deformation.
Conclusion:
With the increase of the traction angle, the mechanical properties of the proximal femur decrease, indicating an increased risk of non-union and complications. Additionally, the study proves the effectiveness of the "dynamic parallel traction" theory.
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