Farkas Andrei Zoltan, Galatanu Sergiu-Valentin, Nagib Riham
Department of Mechatronics, Polytechnic University of Timisoara, 1 Mihai Viteazul Blvd., 300222 Timisoara, Romania.
Department of Mechanics and Strength of Materials, Politehnica University of Timisoara, 1 Mihai Viteazu Blvd., 300222 Timisoara, Romania.
Polymers (Basel). 2023 Feb 23;15(5):1113. doi: 10.3390/polym15051113.
Technological advances are closely related to the development of new materials and their processing and manufacturing technologies. In the dental field, the high complexity of the geometrical designs of crowns, bridges and other applications of digital light processing 3D-printable biocompatible resins is the reason for the need for a deep understanding of the mechanical proprieties and behavior of these materials. The aim of the present study is to assess the influence of printing layer direction and thickness on the tensile and compression proprieties of a DLP 3D-printable dental resin. Using the NextDent C&B Micro-Filled Hybrid (MFH), 36 specimens (24 for tensile strength testing, 12 for compression testing) were printed at different layer angulations (0°, 45° and 90°) and layer thicknesses (0.1 mm and 0.05 mm). Brittle behavior was observed in all specimens regardless of the direction of printing and layer thickness for the tensile specimens. The highest tensile values were obtained for specimens printed with a layer thickness of 0.05 mm. In conclusion, both printing layer direction and thickness influence mechanical proprieties and can be used to alter the materials' characteristics and make the final printed product more suitable for its intended purposes.
技术进步与新材料及其加工制造技术的发展密切相关。在牙科领域,牙冠、牙桥以及数字光处理3D可打印生物相容性树脂的其他应用的几何设计高度复杂,这就是需要深入了解这些材料的机械性能和行为的原因。本研究的目的是评估打印层方向和厚度对DLP 3D可打印牙科树脂拉伸和压缩性能的影响。使用NextDent C&B微填充混合树脂(MFH),以不同的层角度(0°、45°和90°)和层厚度(0.1毫米和0.05毫米)打印了36个试样(24个用于拉伸强度测试,12个用于压缩测试)。对于拉伸试样,无论打印方向和层厚度如何,在所有试样中均观察到脆性行为。层厚度为0.05毫米的打印试样获得了最高拉伸值。总之,打印层方向和厚度都会影响机械性能,可用于改变材料特性,使最终打印产品更适合其预期用途。