儿童颌面修复体的计算机应用

Adriangabriel Ionescu, N. Seghedin
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引用次数: 0

摘要

随着时间的推移,考虑到下颌骨生长的复杂性和相对不可预测性,正在成长的儿童的颌面修复术经历了不同的方法。目前,下颌生长的量化是通过直接测量计算机断层扫描生成的三维模型来完成的,同时可能会突出显示性别之间的不同生长速度。手术基于两种方法:从肋骨收集的自体移植物,其生长速度难以预测,或者在更严重的情况下,植入全颞下颌关节假体。由于下颌骨的生长,最后一种需要在患者的一生中进行多次调整。本文的目的是提供一种完整的颞下颌关节假体,其胶囊包含一个牵引器机制,可以在儿童生长的特定时期以最小的侵入性进行调节,而不需要复杂的手术。近端,下颌骨和窝的组成部分都遵循种植环境的解剖形状,并提供用于单皮质螺钉固定的孔。窝组件允许复制一定程度的解剖和功能路线,在最大开口时由髁突头穿过,而牵牵器组件内部的运动基于齿条和小齿轮组件,由小齿轮旋转(旋紧)控制,确保从体外良好地进入和调整机构。该机制被包裹在一种生物相容性材料中,并通过固定连接到下颌骨基底部件的上表面,该表面由髁突切除平面产生。因此,本文描述了一种构思、设计、制作和制造这种带牵引器的全假体的方法。计算机路线从数据采集开始,通过计算机断层扫描生成的DICOM文件进行三维模型重建,通过“Remesh”操作进行处理、编辑和过滤,去除伪影,导出解剖模型为STL格式。根据所选择的制造技术:3D打印,CNC,进行假肢结构的设计过程,并建立各自的技术路径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
COMPUTER APPLICATION FOR CREATING MAXILLO-FACIAL PROSTHESES FOR CHILDREN
Maxillofacial prosthetics in the case of growing children has experienced different approaches over time, taking into consideration the complexity and the relative unpredictability of the mandible's bone growth. At present, the quantification of the mandibular growth is done by using direct measurements of the 3D model generated by the computed tomography, together with the possibility of highlighting the different growth rates between genders. The surgeries are based on two approaches: the autogenous grafts collected from the rib, which have an unpredictable growth rate or, in more severe cases, the implantation of a total temporomandibular joint prosthesis. The last one mentioned requires numerous adjustments throughout the patient's life, because of the mandibular growth. The purpose of this paper is to present a complete temporomandibular joint prosthesis, provided with a capsule which contains a distractor mechanism that can be adjusted with minimal invasiveness at certain periods of time during the child's growth, without the need of complex surgery. Proximal, both the components of the mandibular part and the fossa follow the anatomical shape of the implantation surroundings and are provided with holes for monocortical screws fixation. The fossa component allow the replication to some extent of anatomical and functional route, crossed by the condylar head during the maximum mouth opening while the movement inside the distractor component is based on a rack-and-pinion assembly, commanded by the pinion rotation (screwing) which ensure a good access and adjustment of the mechanism from outside the body. This mechanism is encapsulated in a biocompatible material and attached through fixation to the upper surface of the mandibular base component, the surface which is generated by the condilectomy plane. Thus, this paper describes a method of conceiving, designing, building and manufacturing of such a total prosthesis with a distractor. The computer route begins with data acquisition, 3D model reconstruction from DICOM files generated by the computer-tomography scan, processing, editing, and filtering by "Remesh" operations, artifact removal and export to STL format of the anatomical model. The design process of prosthetic structures and the establishment for each one their own technological paths is made according to the chosen manufacturing technologies: 3D print, respectively CNC.
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