开发用于定制下颌推进及其精密增材制造的全数字化设计流程

Q3 Medicine
Chinmai Bhat , Yulius Shan Romario , I-Ching Chou , Wan-Rong Jiang , Yu-Yan Wu , Maziar Ramezani , Cho-Pei Jiang
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引用次数: 0

摘要

本研究旨在开发一个全数字化的工作流程,用于定制下颌推进装置(MAD)的制造。MADs用于治疗阻塞性睡眠呼吸暂停,通常需要8-10天根据患者的规格制作。目前设计的数字方法将这一时间尺度大大缩短至2-3天,为传统方法提供了一种可行的替代方案。该工艺通过数字光处理技术集成了数字口内扫描、计算机辅助建模和使用DD引导材料的增材制造。随着集成,工作流程还优化扫描精度,打印方向,精度和可用性。利用立体光刻文件对制件进行扫描,验证了制件的精度。均方根值为0.0287 mm,表明所制作的器械在临床精度范围内,可用于下颌前进。此外,分析表明,0°和45°的印刷方向提供更高的精度和表面质量,其中45°被证明是最具成本效益的磨削和后处理。后处理大大降低了表面粗糙度,从而增加了舒适性和卫生性。即使在洗涤1000次(相当于3年)后,制造的MADs的机械性能也未受影响,证明了其耐久性。为了在牙科诊所更广泛地采用数字程序,并与当前针对患者的解决方案的市场趋势相吻合,本研究强调了MADs高效、适应性强、卫生的数字工作流程的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a fully digital design process for customized mandibular advancement and its precision additive manufacturing
This study aims to develop a fully digital workflow for the fabrication of customized mandibular advancement devices (MAD). MADs are used to treat obstructive sleep apnea and typically require 8–10 days to fabricate as per the patient's specifications. The currently designed digital methodology considerably shortens this timescale to 2–3 days, providing a viable alternative to traditional methods. The process integrates digital intraoral scanning, computer-aided modeling, and additive manufacturing using DD guide material through digital light processing technology. Along with the integration, the workflow also optimizes scanning accuracy, printing orientation, precision, and usability. The precision of fabrication was examined by scanning the fabricated part with the stereolithography file. The root mean square value of 0.0287 mm indicates that the fabricated device is within the clinical accuracy and thus can be used for mandibular advancement. Furthermore, the analysis indicates that printing orientations of 0° and 45° deliver higher precision and surface quality, with the 45° proving to be most cost-effective for grinding and post-processing. The post-processing greatly reduced the surface roughness thereby increasing the comfortability and hygiene. The durability of the fabricated MADs was proved through the unaffected mechanical properties even after washing >1000 times (equivalent to 3 years). Contributing to the wider adoption of digital procedures in dental clinics and coinciding with current market trends toward patient-specific solutions, this study highlights the viability of an efficient, adaptable, and hygienic digital workflow for MADs.
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来源期刊
Annals of 3D printed medicine
Annals of 3D printed medicine Medicine and Dentistry (General), Materials Science (General)
CiteScore
4.70
自引率
0.00%
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0
审稿时长
131 days
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