Title of article :
A rapid and intelligent designing technique for patient-specific and 3D-printed orthopedic cast
Author/Authors :
Wang, Defeng Research Center for Medical Image Computing - Department of Imaging and Interventional Radiology - The Chinese University of Hong Kong - Shatin - NT, Hong Kong , Lin, Hui Research Center for Medical Image Computing - Department of Imaging and Interventional Radiology - The Chinese University of Hong Kong - Shatin - NT, Hong Kong , Shi, Lin Department of Medicine and Therapeutics - The Chinese University of Hong Kong - Shatin - NT, Hong Kon
Abstract :
Two point four out of 100 people suffer from one or more fractures in the course of average
lifetimes. Traditional casts are featured as cumbersome structures that result in high risk of cutaneous complications.
Clinical demands for developing a hygienic cast have gotten more and more attention. 3D printing technique is
rapidly growing in the fabrication of custom-made rehabilitation tools. The objective of this study is to develop a
rapid and intelligent modeling technique for developing patient-specific and hygienic orthopedic casts produced
by 3D printing technologies.
Results: A cast model is firstly created from a patient’s image to develop patient-specific features. A unique
technique to creating geometric reference has been developed to perform detail modeling cast. The cast is
modeled as funnel-shaped geometry to create smooth edges to prevent bruises from mild movements of injured
limbs. Surface pattern includes ventilation structure and opening gap for hygienic purpose and wearing comfort.
The cast can be adjusted to accommodate swelling from injured limbs during treatment. Finite element analysis
(FEA) is employed to validate the mechanical performance of the cast structure and identify potential risk of the
structural collapse due to concentrated stresses. The cast is fabricated by 3D printing technology using approval
material.
Conclusions: The 3D-printed prototype is featured as super lightweight with 1/10 of weight in compared with
traditional alternatives. Medical technicians with few experiences can design cast within 20 min using the proposed
technique. The image-based design minimizes the distortion during healing process because of the best fit geometry.
The highly ventilated structure develops hygienic benefits on reducing the risk of cutaneous complications and
potentially improve treatment efficacy and increase patients’satisfactions.
Keywords :
Ventilated , Orthopedic cast , 3D-printed , Rapid Intelligent , Patient-specific , Hygienic
Journal title :
3D Printing in Medicine