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Development of a mannequin lab for clinical training in a chiropractic program
Author(s) -
Edward F. Owens,
Lydia L. Dever,
Ronald S. Hosek,
Brent S. Russell,
Stephanie Sullivan
Publication year - 2022
Publication title -
journal of chiropractic education
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.307
H-Index - 5
eISSN - 2374-250X
pISSN - 1042-5055
DOI - 10.7899/jce-21-10
Subject(s) - chiropractic , palpation , test (biology) , medical education , computer science , training manual , medicine , medical physics , simulation , surgery , alternative medicine , pathology , paleontology , economics , biology , economic growth
Objective Faced with COVID-19 safety protocols that severely limited the ability to conduct chiropractic technique instruction in the usual manner, our university invested the resources to develop a new mannequin lab for hands-on training, which would help supplement the loss of person-to-person contact. Methods Training mannequins could enable student learning of palpation and adjustment skills while avoiding close human–human contact. The university had developed a mannequin over the previous 4 years consisting of a full-sized human torso with individually movable and palpable vertebrae, pelvis, and thighs. In the mannequin, 64 pressure sensors are attached to particular vertebral and skeletal landmarks and provide feedback on palpation location and level of force applied. We assembled 3 teams to produce 20 copies of that mannequin for student use. Results Mannequins were produced in 7 weeks, and space was built out for a special lab. Faculty members are developing classroom procedures to introduce the mannequin to students, phase in the skills from static and motion palpation, and practice thrust performance. Conclusion The production run was successful, and the resulting equipment, well-received by students and faculty. In addition to helping teach manual skills, the lab serves as a platform for educational research to test the efficacy of mannequin-based training protocols. With the pressure sensors on known locations along the spine, future research may be able to test the ability of students to identify and contact specific target locations for adjustive thrusts.

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