首页> 外文期刊>The Journal of Prosthetic Dentistry >Effect of additive manufacturing process and storage condition on the dimensional accuracy and stability of 3D-printed dental casts
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Effect of additive manufacturing process and storage condition on the dimensional accuracy and stability of 3D-printed dental casts

机译:增材制造工艺和储存条件对3D打印牙膏尺寸精度和稳定性的影响

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摘要

Statement of problem. Additively manufactured dental casts are gaining popularity as the digital workflow is adopted in dentistry. However, studies on their dimensional accuracy and stability under different storage conditions in the dental laboratory are lacking. Purpose. The purpose of this in vitro study was to compare the effects of different additive manufacturing processes and storage conditions on the dimensional accuracy and stability of 3D-printed dental casts.Material and methods. A completely dentate maxillary typodont model was digitized 10 times with a dental laboratory laser scanner, and the standard tessellation language (STL) files were used to manufacture 3D-printed diagnostic casts with the digital light projection (DLP) 3D printer (Asiga MAX) and material jetting (MJ) 3D printer (ProJet 3510 DPPro). Twenty DLP-printed and 20 MJ-printed diagnostic casts were digitized within 24 hours of production. Subsequently, all 3D-printed diagnostic casts were stored for 3 months, either in closed laboratory boxes or in dental laboratory open-face plastic containers with direct exposure to full-spectrum balanced light. After 3-month storage, all 40 3D-printed casts were digitized again. All scanned files were compared with the corresponding STL files in a surface -matching software program. The dimensional accuracy was measured and compared by the root mean square (RMS, in gm). Repeated measures analysis of variance (ANOVA) was used to compare RMS values among the variables, and the Tukey honestly significant difference (HSD) test was used for post hoc multiple comparisons (a=.05).Results. The casts produced from the DLP 3D printer had a significantly higher mean +/- standard deviation RMS of 153.7 +/- 25.4 gm than those produced with the MJ 3D printer with RMS of 134.1 +/- 16.0 gm (P<.001). The storage condition (box storage versus light exposure) did not affect the accuracy of the DLP-printed casts (P=.615) or the MJ-printed casts (P=.999). When comparing all 3D-printed casts after 3-month storage, group DLP-3M-Lit had the highest mean +/- standard deviation RMS of 163.0 +/- 26.5 gm, and group MJ-3M-Box had the lowest RMS of 132.8 +/- 16.9 gm. The DLP-printed casts stored under light exposure were significantly less accurate than the MJ-printed casts stored in the box (P=.048). DLP-printed casts stored under light exposure showed significant surface color change under visual inspection.Conclusions. The MJ 3D printer produced more accurate 3D-printed dental casts than the DLP 3D printer. After 3-month storage, the DLP-printed casts stored under light exposure were the least accurate, and the MJ-printed casts stored without light exposure were the most accurate. The surface color change of DLP-printed casts stored under light exposure after 3-month storage was evident. (J Prosthet Dent 2022;128:1041-6)
机译:问题陈述。随着牙科采用数字工作流程,增材制造的牙膏越来越受欢迎。然而,牙科实验室缺乏对其在不同储存条件下的尺寸精度和稳定性的研究。目的。这项体外研究的目的是比较不同增材制造工艺和储存条件对 3D 打印牙膏尺寸精度和稳定性的影响。材料和方法。使用牙科实验室激光扫描仪将完全齿状的上颌错别字模型数字化 10 次,并使用标准镶嵌语言 (STL) 文件使用数字光投影 (DLP) 3D 打印机 (Asiga MAX) 和材料喷射 (MJ) 3D 打印机 (ProJet 3510 DPPro) 制造 3D 打印诊断石膏。20 个 DLP 打印的和 20 个 MJ 打印的诊断铸件在生产后 24 小时内被数字化。随后,将所有 3D 打印的诊断石膏储存在封闭的实验室盒子或牙科实验室的开放式塑料容器中,直接暴露在全光谱平衡光下。经过 3 个月的存储,所有 40 个 3D 打印铸件再次数字化。在表面匹配的软件程序中将所有扫描文件与相应的STL文件进行比较。尺寸精度通过均方根(RMS,以gm为单位)进行测量和比较。采用重复方差分析(ANOVA)比较变量间RMS值,事后多重比较采用Tukey诚实显著性差(HSD)检验(a=.05)。结果。DLP 3D 打印机生产的铸件的平均 +/- 标准偏差 RMS 为 153.7 +/- 25.4 gm,明显高于 MJ 3D 打印机生产的铸件,RMS 为 134.1 +/- 16.0 gm (P<.001)。储存条件(盒储存与光照)不影响DLP打印铸件(P=.615)或MJ打印铸件(P=.999)的准确性。在比较储存 3 个月后的所有 3D 打印铸件时,DLP-3M-Lit 组的平均 +/- 标准偏差 RMS 最高,为 163.0 +/- 26.5 gm,MJ-3M-Box 组的 RMS 最低,为 132.8 +/- 16.9 gm。在光照下储存的DLP打印铸件的准确度明显低于储存在盒子中的MJ打印铸件(P=.048)。在光照下储存的DLP打印铸件在目视检查下显示出明显的表面颜色变化。结论。MJ 3D 打印机比 DLP 3D 打印机生产更精确的 3D 打印牙膏。储存3个月后,DLP打印的铸件在光照下储存的精度最低,MJ打印的铸件在无光照下储存的精度最高。DLP打印铸件在光照下贮藏3个月后表面颜色变化明显。(J 假肢凹痕 2022;128:1041-6)

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