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Related Experiment Video

Updated: Jul 29, 2025

Method and Instrumented Fixture for Femoral Fracture Testing in a Sideways Fall-on-the-Hip Position
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Developing a Biomechanical Testing Setup of the Pelvis-Part II: Experimental Testing.

Ahmed Soliman1, Pierre-Louis Ricci1, Slawomir Kedziora1

  • 1Department of Engineering, Faculty of Science, Technology and Medicine (FSTM), University of Luxembourg, 6, Rue Richard Coudenhove-Kalergi, Luxembourg L-1359, Luxembourg.

Journal of Biomechanical Engineering
|May 23, 2023
PubMed
Summary

This study developed a biomechanical test bench to simulate pelvic loading during gait, crucial for designing better pelvic implants and understanding fracture mechanics. The test bench accurately replicates physiological conditions, ensuring reliable results for implant development.

Keywords:
design of experimentsfinite elementfragility fractures of the pelvisgait loadingpelvistest stand

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Area of Science:

  • Biomechanics
  • Orthopedic research
  • Medical device development

Background:

  • Developing reconstructive implants for pelvic fragility fractures requires accurate biomechanical testing.
  • Existing experimental studies often use simplified loading and boundary conditions.
  • Understanding daily loading effects on the pelvic ring is essential.

Purpose of the Study:

  • To design and construct a biomechanical test bench that emulates physiological pelvic loading during gait.
  • To validate the test bench's ability to replicate gait movement and associated forces.
  • To provide guidelines for designing physiologically relevant biomechanical testing equipment.

Main Methods:

  • Computational experiment design was used to conceptualize the test bench.
  • Pelvic muscles and joint forces were simplified to four force actuators and one support.
  • Repeatability and reproducibility tests were performed to assess the test stand's capabilities.

Main Results:

  • The developed test bench successfully emulates physiological pelvic loading during gait.
  • Experimental results showed the pelvic ring response follows the loaded leg side during the gait cycle.
  • Experimental displacements and strains matched numerical predictions, validating the test stand.

Conclusions:

  • The developed biomechanical test stand accurately replicates physiological gait loading on the pelvis.
  • This test bench is a valuable tool for developing and testing reconstructive pelvic implants.
  • The computational experiment design approach offers a framework for creating relevant biomechanical testing equipment.