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Three-dimensional printing of zirconia: characterization of early stage material properties

机译:氧化锆的三维印刷:早期材料特性的表征

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Objective: The aim of this study was to evaluate the mechanical properties of 3D printed zirconia (ZrO_(2)).?Materials and Methods: The test specimens were produced with a 3D printer that uses lithography-based ceramic manufacturing (LCM) technique with two different parameters in horizontal and vertical printing orientations. Altogether four groups of nine specimens were printed and examined. Mechanical characterization was performed using 3-point bending test (ISO 10477) and surface microhardness (Vickers) test. Grain structure, porosity and printing layer morphology were examined with optical and scanning electron microscopy (SEM). Additionally fractography analysis was done to investigate and evaluate features of fracture initiation site. Numeric results were statistically analyzed with ANOVA (a ?=?0.05). Results: The average flexural strength reached for printed zirconia was 499?MPa (+/?75?MPa) for specimens printed in horizontal orientation and 575?MPa (+/?69?MPa) for specimens printed in vertical orientation. Optical microscopy and SEM analysis revealed that fractures initiated between the printing layers or from a local porosity. Printing layer thickness varied from under 13?μm to over 20?μm. Conclusions: The study revealed that 3D printed zirconia has challenges in regards to layer integration. Based on this study, 3D printed zirconia still suffers from low mechanical strength, which together with long carbon-debinding time, does not make 3D printed zirconia a potential material for dental appliances at this stage. Further research is needed to create more suitable zirconia precursor slurries and to optimize printing parameters and sintering conditions to be able to 3D print zirconia with higher mechanical properties.
机译:目的:本研究的目的是评估3D打印氧化锆(ZrO_(2))的机械性能。材料与方法:测试样品是使用3D打印机生产的,该打印机使用基于光刻的陶瓷制造(LCM)技术,水平和垂直打印方向的两个不同参数。总共打印并检查了四组,每组九个样本。使用三点弯曲试验(ISO 10477)和表面显微硬度(Vickers)试验进行机械表征。用光学和扫描电子显微镜(SEM)检查晶粒结构,孔隙率和印刷层形态。另外,进行了断层扫描分析以调查和评估骨折起始部位的特征。用ANOVA对数值结果进行统计分析(α= 0.05)。结果:水平取向印刷的样品的氧化锆平均抗弯强度为499?MPa(+/- 75?MPa),垂直取向印刷的样品的平均抗弯强度为575?MPa(+/- 69?MPa)。光学显微镜和SEM分析表明,断裂是在印刷层之间或局部孔隙引起的。印刷层的厚度从13μm以下到20μm以上不等。结论:研究表明3D打印氧化锆在层集成方面存在挑战。根据这项研究,3D打印的氧化锆仍然遭受机械强度低的问题,再加上长的碳脱脂时间,使得3D打印的氧化锆在现阶段无法成为牙科器械的潜在材料。需要进行进一步的研究以产生更合适的氧化锆前体浆料,并优化印刷参数和烧结条件,以能够以更高的机械性能进行3D打印氧化锆。

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