利用 4D 打印技术的半数字化工作流程制作运动护齿。

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-01-16 Epub Date: 2023-03-12 DOI:10.2186/jpr.JPR_D_22_00274
Tamaki Hada, Yuriko Komagamine, Manabu Kanazawa, Shunsuke Minakuchi
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引用次数: 0

摘要

方法 使用口内扫描仪扫描上颌牙弓模型。根据扫描的模型,使用计算机辅助设计软件设计出双层运动护齿器,并以标准细分语言文件格式输出。MG 材料使用了两种长丝材料:外层使用具有独特玻璃化转变温度的热塑性形状记忆聚氨酯弹性体,内层使用热塑性弹性体。两种 MG 都是使用熔融沉积建模 3D 打印机打印的,并在修剪支撑材料后使用粘合剂进行组装。为确认所制造的 4D 打印 MG 的形状记忆性能,通过叠加所制造 MG 的内表面数据和已恢复形状的 MG 的内表面数据,进行了偏差分析。计算了偏差分析所获数据之间的距离,并确定了均方根误差值(毫米)。由于该技术采用了形状记忆材料,它还克服了传统和三维打印 MG 的问题,如变形导致的拟合精度降低。
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Fabrication of sports mouthguards using a semi-digital workflow with 4D-printing technology.

Purpose This technical procedure report explains the fabrication protocol for a newly developed 4D-printed sports mouthguard (MG) based on 4D-printing technology.Methods An intraoral scanner was used to scan a maxillary arch model. A two-layer sports MG was designed based on the scanned model using computer-aided design software and output in a standard tessellation language file format. Two types of filament materials were used for the MG material: a thermoplastic shape memory polyurethane elastomer with a unique glass transition temperature for the external layer and a thermoplastic elastomer for the internal layer. Both MGs were printed using a fused deposition modeling 3D printer and assembled using adhesives after trimming the support material. To confirm the shape-memory performance of the fabricated 4D-printed MG, a deviation analysis was performed by superimposing the internal surface data of the fabricated MG and the MG whose shape was recovered. The distance between the data obtained by deviation analysis was calculated, and the root mean square error value (mm) was determined.Conclusions The 4D-printing technology simplifies the complex processes required with conventional methods. It also overcomes the issues of conventional and 3D-printed MGs, such as the reduced fitting accuracy caused by deformation, because this technology employs shape memory materials.

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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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