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Updated: Feb 7, 2026

Establishment of a Segmental Femoral Critical-size Defect Model in Mice Stabilized by Plate Osteosynthesis
Published on: October 12, 2016
How a pilot hole size affects osteosynthesis at the screw-bone interface under immediate loading
F Affes1, H Ketata2, M Kharrat2
1Laboratory of Electromechanical Systems, National Engineering School of Sfax, Sfax University, PO Box 1173, 3038 Sfax, Tunisia.
Choosing the right pilot hole size (PHS) is crucial for screw-bone fixation stiffness. Smaller pilot holes (71-75.5% of screw diameter) improve fixation by increasing contact area and reducing microdisplacement under body weight pressure.
Area of Science:
- Biomechanics
- Orthopedic Surgery
- Materials Science
Background:
- Pilot hole size (PHS) significantly impacts screw-bone fixation.
- Understanding the biomechanical effects of PHS on fractured bone is essential for optimal osteosynthesis.
Purpose of the Study:
- To investigate the effect of varying pilot hole sizes (PHS) on the biomechanical environment of the screw-bone interface in fractured bone.
- To analyze screw insertion and immediate body weight pressure (BWP) effects on fixation stiffness.
Main Methods:
- Finite element models were used to simulate screw insertion and BWP.
- Four PHS (71% to 85% of screw external diameter, SED) were analyzed.
- Non-linear bone material behavior with ductile damage properties was incorporated.
- Numerical models were validated with experimental pull-out tests on synthetic bone.
Main Results:
- Smaller PHS (71% and 75.5% of SED) increased insertion torque within recommended levels.
- Smaller PHS maximized bone thread-screw contact area and bone radial deformation.
- Under BWP, stress exceeded the elastic limit, initiating ductile bone damage.
- Increasing PHS from 71% to 75.5% of SED increased bone microdisplacement (75 to 100 μm), reducing fixation stiffness.
Conclusions:
- Optimal PHS is critical for achieving stable screw-bone fixation.
- Smaller pilot holes enhance initial fixation stability and contact.
- Larger pilot holes compromise fixation stiffness and increase microdisplacement under load, potentially leading to implant failure.
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