轴向变化对数字光处理3d打印氧化锆生物陶瓷收缩率的影响。

IF 3.4 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Ju-Young Park, Yoo-Na Jung, Kyoung-Jun Jang, Sang-Kyu Lee, Seong-Won Choi, Yong-Seok Lee, Yunzhi Peter Yang, Kwi-Dug Yun
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引用次数: 0

摘要

各向同性收缩对于使用氧化锆制作尺寸精确的假体至关重要。然而,3d打印氧化锆的各向异性收缩限制了其在临床应用中的应用。我们的目的是评估试样轴的改变对数字光处理(DLP)印刷氧化锆的收缩的影响。使用DLP 3D打印机制造出尺寸为10 × 10 × 10 mm3的立方体(尺寸类似于臼齿冠)和尺寸为10 × 10 × 20 mm的长方体(尺寸类似于三单元桥)。氧化锆试样分别在1300℃和1400℃预烧结。部分试样的z轴在最终烧结前被切换到x轴。用数字卡尺测量坯体、预烧结块和完全烧结块的x轴、y轴和z轴长度。3d打印后的试件收缩率比铣削后的试件小,且偏差较大,其收缩率为26%。3d打印立方体试件的收缩率分别为19.9%(长度)、20.0%(宽度)和21.99%(高度),而立方体试件的收缩率分别为20.26%、19.72%和21.81%。3d打印试样在烧结过程中呈现各向异性收缩,轴向变化步长对收缩率无显著影响。在所有组中,打印时沿建筑方向的收缩率明显大于烧结时沿重力方向的收缩率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of Axis Change on Shrinkage Rate of 3D-Printed Bioceramic Zirconia Fabricated via Digital Light Processing.

Isotropic shrinkage is critical for producing dimensionally accurate prostheses using zirconia. However, the anisotropic shrinkage of 3D-printed zirconia limits its utility in clinical applications. We aimed to evaluate the impact of specimen axis alterations on the shrinkage of digital light processing (DLP)-printed zirconia. Cubes measuring 10 × 10 × 10 mm3 (similar in size to molar crowns) and cuboids measuring 10 × 10 × 20 mm (similar in size to a three-unit bridge) were manufactured using a DLP 3D printer. Zirconia specimens were pre-sintered at 1300 °C and 1400 °C. The Z-axis of some specimens was switched to the X-axis before the final sintering procedure. The X-axis, Y-axis, and Z-axis lengths of the green body, pre-sintered block, and fully sintered block were measured using digital calipers. The 3D-printed specimens showed lower shrinkage and higher deviation than the milled specimens, whose shrinkage rate was 26%. The shrinkage rates of the 3D-printed cubic specimens were 19.9% (length), 20.0% (width), and 21.99% (height), while those of the cuboidal specimens were 20.26%, 19.72%, and 21.81%, respectively. For the 3D-printed specimens, which shrink anisotropically during sintering, the axis change step had no significant impact on the shrinkage rate. In all groups, the shrinkage rate along the building direction during printing significantly exceeded that along the gravity direction during sintering.

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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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