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Microstructures and metal-ceramic bond properties of Co-Cr biomedical alloys fabricated by selective laser melting and casting

机译:选择性激光熔铸铸造Co-Cr生物医学合金的微观结构和金属陶瓷结合性能

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Selective laser melting (SLM) technique, based on a layer-by-layer production, was used to produce biomedical Co-Cr devices specifically developed for dental restoration applications. However, information on the metal ceramic bond strength of SLM-manufactured parts was limited. In this study, SLM-fabricated Co-Cr alloy specimens were subjected to subsequent heat treatments (holding at 1150 degrees C for 1 h). The alloy microstructures were characterized by scanning electron microscopy (SEM) coupled with energy-dispersive x-ray spectroscopy (EDX), x-ray diffractometer (XRD), and transmission electron microscopy, whereas the bond properties were evaluated by 3-point bend tests and coefficient of thermal expansion (CTE) tests, as compared to casting (CAST) alloys. Results showed that SLM specimens exhibited fine grains and homogeneously dispersed intermetallic compounds, and the resultant XRD analysis revealed a predominated face-centered cubic gamma-Co phase (72 %). Student's t-test demonstrated that bond strengths of SLM specimens (45.80 +/- 1.91 MPa) were significantly lower than that of CAST specimens (54.05 +/- 6.77 MPa) (P 0.05), and SLM specimens with debonded surfaces analyzed via SEM/EDX analysis revealed a mixed fracture type of adhesive and cohesive fractures and lower area fractions of adherence porcelain. While porcelain firing, the microstructural evolution and thermal CTE matching seriously affected the metal-ceramic bond properties. SEM/EDX analysis of the metal-ceramic interface showed that reaction diffusion layers of CAST specimens were clearly thicker than that of SLM specimens, indicating that CAST specimens had a stronger chemical bonding force. Martensite transformation (gamma - epsilon) occurred in the CAST metal matrix close to the interface, which was not found in the SLM specimens. Additionally, the dynamic thermal process revealed that CAST specimens exhibited superior CTE matching. Overall, Co-Cr alloy fabricated by SLM exhibited inferior metal-ceramic bond properties; however, it still meets the requirements for applications as dental prostheses ( 25MPa specified in ISO9693).
机译:基于逐层生产的选择性激光熔化(SLM)技术用于生产专门为牙科修复应用开发的生物医学Co-Cr装置。但是,有关SLM制造零件的金属陶瓷结合强度的信息有限。在这项研究中,对SLM制造的Co-Cr合金试样进行了后续热处理(在1150摄氏度下保持1小时)。通过扫描电子显微镜(SEM)结合能量色散X射线光谱(EDX),X射线衍射仪(XRD)和透射电子显微镜对合金的微观结构进行了表征,而结合性能则通过三点弯曲测试进行了评估以及与铸造(CAST)合金相比的热膨胀系数(CTE)测试。结果表明,SLM样品显示出细小晶粒和均匀分散的金属间化合物,所得的XRD分析表明,以面心为中心的立方γ-Co相占主导地位(72%)。学生的t检验表明,SLM试样(45.80 +/- 1.91 MPa)的粘结强度显着低于CAST试样(54.05 +/- 6.77 MPa)(P <0.05),SLM试样具有经SEM脱胶的表面/ EDX分析显示出胶粘剂和内聚性裂缝的混合断裂类型以及粘附瓷的较低面积分数。在烧瓷时,其微观结构演变和热CTE匹配严重影响了金属-陶瓷的键合性能。 SEM / EDX对金属-陶瓷界面的分析表明,CAST样品的反应扩散层明显比SLM样品厚,表明CAST样品具有更强的化学键合力。马氏体相变(γ->ε)发生在靠近界面的CAST金属基体中,这在SLM试样中未发现。此外,动态热过程表明CAST样品显示出优异的CTE匹配性。总体而言,由SLM制造的Co-Cr合金的金属陶瓷结合性能较差;但是,它仍然可以满足牙科义齿应用的要求(ISO9693中规定的> 25MPa)。

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