Graf Simon, Cornelis Marie A, Hauber Gameiro Gustavo, Cattaneo Paolo M
Private practice, Belp, Switzerland.
Section of Orthodontics, Department of Dentistry and Oral Health, Aarhus University, Aarhus, Denmark.
Am J Orthod Dentofacial Orthop. 2017 Dec;152(6):870-874. doi: 10.1016/j.ajodo.2017.06.016.
The aim of this pilot study was to illustrate the feasibility of a new digital procedure to fabricate metallic orthodontic appliances. Hyrax appliances for rapid palatal expansion were produced for 3 patients using a CAD/CAM procedure without physical impressions or printed models. The work flow consisted of intraoral scanning, digital design with incorporation of a scanned prefabricated expansion screw, direct 3-dimensional metal printing via laser melting, welding of an expansion screw, insertion, and finally activation in the patients' mouths. Finite element analyses of the actual hyrax appliances were performed to ensure that the printable material used in combination with the chosen design would withstand the stress generated during activation. The results of these analyses were positive. The clinical results showed that this procedure is an efficient and viable digital way for constructing metallic orthodontic appliances. The flexibility of the digital appliance design, together with the biocompatibility and strength of the chosen material, offers a huge potential for more advanced appliance design.
这项初步研究的目的是阐明一种制造金属正畸矫治器的新数字程序的可行性。使用CAD/CAM程序,在没有制取物理印模或打印模型的情况下,为3名患者制作了用于快速腭扩展的Hyrax矫治器。工作流程包括口腔内扫描、结合扫描的预制扩展螺钉进行数字设计、通过激光熔化进行直接三维金属打印、扩展螺钉焊接、插入,最后在患者口腔中激活。对实际的Hyrax矫治器进行了有限元分析,以确保与所选设计结合使用的可打印材料能够承受激活过程中产生的应力。这些分析结果是积极的。临床结果表明,该程序是一种构建金属正畸矫治器的高效且可行的数字方法。数字矫治器设计的灵活性,以及所选材料的生物相容性和强度,为更先进的矫治器设计提供了巨大潜力。