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Casting Into The Future: Effectiveness of a 3D-Printed Fishhook Removal Task Trainer.

Craig S Campbell1, Chris Patey2, Adam Dubrowski3

  • 1Emergency Medicine, Memorial University of Newfoundland, St. John's, CAN.

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|April 4, 2022
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Summary

A new 3D-printed simulator, the Fishhook Emergency Removal 3D (FISH-ER 3D), effectively trains medical professionals in fishhook removal techniques. This innovative tool enhances competence and confidence in managing common fishing-related injuries.

Keywords:
emergency medicinefamily medicinefishhook injuryfishhook removalmedical educationmedical simulationrural emergency medicinerural family medicinesimulation based medical educationthree-dimensional (3d) printing

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Area of Science:

  • Medical Simulation
  • Emergency Medicine Training
  • 3D Printing Applications

Background:

  • Fishhook injuries are common in recreational and commercial fishing.
  • Existing literature on fishhook removal lacks comprehensive training resources for medical professionals.

Purpose of the Study:

  • To evaluate the efficacy of a novel 3D-printed task trainer, the FISH-ER 3D, for teaching fishhook removal techniques.
  • To assess the realism and user-friendliness of the simulator.

Main Methods:

  • A 3D-printed Fishhook Emergency Removal Simulator (FISH-ER 3D) was developed.
  • 22 medical residents and staff physicians evaluated the simulator through practical sessions and surveys.

Main Results:

  • 86% of evaluators found the FISH-ER 3D components realistic.
  • The majority found learning and performing techniques easy.
  • 100% rated the simulator as valuable, increasing user competence and confidence.

Conclusions:

  • The FISH-ER 3D is an effective and valuable tool for training fishhook removal techniques.
  • This simulator can improve medical professionals' preparedness for fishhook injuries.