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Published on: October 20, 2023
Biomechanical Assessment of Maxillary Expansion in a Patient With Unilateral Cleft lip and Palate Through 3D Finite
Bianca Mota Dos Santos1, Erika Rezende Silva1, João Paulo Mendes Tribst2
1Department of Dentistry, Federal University of Sergipe, Aracaju, Brazil.
Abstract:
ObjectiveThis study aimed to analyze the stress distribution and displacement generated by bone-borne maxillary expansion in a late adolescent with unilateral cleft lip and palate (UCLP) using finite element analysis.DesignA 3-dimensional finite element model (3DFEM) was obtained from craniofacial bones and maxillary teeth. Seven 3DFEM maxillary expanders were adapted on the palatal slope with a displacement of 0.25 mm per turn.SettingThe study used a computational model based on a patient's craniofacial anatomy.Patients, ParticipantsThis study included one late adolescent with UCLP.InterventionsSeven different bone-borne maxillary expanders were tested, each with a displacement of 0.25 mm per turn on each side of the maxilla.Main Outcome Measure(s)The primary outcomes measured were stress distribution and displacement within the craniofacial structure.ResultsThe highest stress and displacement were generated by devices with Temporary Anchorage Devices and occurred at the cleft side. Maximum stress was observed in the zygomatic-maxilla interface of all analyzed devices. The displacement on the transverse plane was greater in the anterior region for most devices, forward on the anteroposterior plane, and downward on the vertical plane.ConclusionsUsing bone-borne devices in late adolescents with UCLP might be useful for correcting transverse maxillary deficiency.

