<p>Cephalomedullary nail (CMN) is an ideal internal implant for the treatment of Basicervical femoral neck fracture (BFNF). This study uses finite element analysis techniques to compare the biomechanical characteristics of three types of CMN systems, namely proximal femoral nail antirotation (PFNA) InterTAN and proximal femur bionic nail (PFBN), in fixing BFNF using three cannulated screws (CSs) as controls, and analyzed their clinical significance. Based on femoral CT and internal implant data, a finite element analysis model for BFNF internal fixation was established: CSs, PFNA, InterTAN, and PFBN. The three types of loads, namely one-legged stance, torsion the femoral head, and walking, were simulated based on reference literature to obtain extreme values and cloud maps of data, including stress on fracture fragments and internal fixation devices, pressure between fracture surfaces, separation displacement, and sliding displacement. The biomechanical characteristics of different internal fixation devices were compared and analyzed. The finite element analysis data showed that in the one-legged stance group, the stress between the InterTAN fracture block and the internal fixation device, the extreme value of the pressure and sliding displacement between the fracture surfaces were lower than those of the other three models; In the femoral head torsion group, InterTAN had lower extreme values for both femoral head torsion displacement and fracture surface sliding displacement. The extreme values of separation displacement are second only to PFBN. In the walking exercise group, the extreme values of all indicators in InterTAN were lower than those in other models. Compared with PFNA and PFBN, InterTAN has better anti rotation ability and anti-inversion deformity ability, can provide better stability and safety, and provide guarantees for early functional exercise. This study provides clinical reference significance for the use of InterTAN in the treatment of BFNF.</p>

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Finite element analysis of different cephalomedullary nail treatments for basicervical femoral neck fracture

  • Yang Gao,
  • Xinxiao Chen,
  • Changpeng Cao,
  • Haiyang Xing,
  • Zhipeng Du,
  • Faxin Cao,
  • Tianqi Bao,
  • Guanning Huang,
  • Gang Wang

摘要

Cephalomedullary nail (CMN) is an ideal internal implant for the treatment of Basicervical femoral neck fracture (BFNF). This study uses finite element analysis techniques to compare the biomechanical characteristics of three types of CMN systems, namely proximal femoral nail antirotation (PFNA) InterTAN and proximal femur bionic nail (PFBN), in fixing BFNF using three cannulated screws (CSs) as controls, and analyzed their clinical significance. Based on femoral CT and internal implant data, a finite element analysis model for BFNF internal fixation was established: CSs, PFNA, InterTAN, and PFBN. The three types of loads, namely one-legged stance, torsion the femoral head, and walking, were simulated based on reference literature to obtain extreme values and cloud maps of data, including stress on fracture fragments and internal fixation devices, pressure between fracture surfaces, separation displacement, and sliding displacement. The biomechanical characteristics of different internal fixation devices were compared and analyzed. The finite element analysis data showed that in the one-legged stance group, the stress between the InterTAN fracture block and the internal fixation device, the extreme value of the pressure and sliding displacement between the fracture surfaces were lower than those of the other three models; In the femoral head torsion group, InterTAN had lower extreme values for both femoral head torsion displacement and fracture surface sliding displacement. The extreme values of separation displacement are second only to PFBN. In the walking exercise group, the extreme values of all indicators in InterTAN were lower than those in other models. Compared with PFNA and PFBN, InterTAN has better anti rotation ability and anti-inversion deformity ability, can provide better stability and safety, and provide guarantees for early functional exercise. This study provides clinical reference significance for the use of InterTAN in the treatment of BFNF.