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Study of Pd-Ag dental alloys: examination of effect of casting porosity on fatigue behavior and microstructural analysis

机译:Pd-Ag牙科合金的研究:检验铸件孔隙度对疲劳行为的影响和显微组织分析

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摘要

The goals of this study were to investigate the fatigue limits of two Pd-Ag alloys (Ivoclar Vivadent) with differing mechanical properties and varying proportions of secondary alloying elements, examine the effect of casting porosity on fatigue behavior, and determine the effect of casting size on microstructures and Vickers hardness. The alloys selected were: IPS d.SIGN 59 (59.2Pd-27.9Ag-8.2Sn-2.7In-1.3Zn); and IS 64 (59.9Pd-26.0Ag-7.0Sn-2.8Au-1.8 Ga-1.5In-1.0Pt). Tension test bars, heat-treated to simulate dental porcelain application, were subjected to cyclic loading at 10 Hz, with R-ratio of -1 for amplitudes of compressive and tensile stress. Two replicate specimens rnwere tested at each stress amplitude. Fracture surfaces were examined with a scanning electron microscope (SEM). Sectioned fatigue specimens and additional cast specimens simulating copings for a maxillary central incisor restoration were also examined with the SEM, and Vickers hardness was measured using 1 kg load. Casting porosity was evaluated in sectioned fatigue fracture specimens, using an image anal ysis program. The fatigue limit (2 × 10~6 loading cycles) of IS 64 was approximately 0.20 of its 0.2% yield strength, while the fatigue limit of d.SIGN 59 was approximately 0.25 of its 0.2% yield strength. These relatively low ratios of fatigue limit to 0.2% yield strength are similar to those found previously for high-palladium dental alloys, and are attrib uted to their complex microstructures and casting porosity. Complex fatigue fracture surfaces with striations were observed for both alloys. Substantial further decrease in the number of cycles for fatigue failure only occurred when the pore size and volume percentage became excessive. While the heat-treated alloys had equiaxed grains with precipitates, the microstructural homogenization resulting from simu lated porcelain firing differed considerably for the coping and fatigue test specimens; the latter specimens had signifi cantly higher values of Vickers hardness.
机译:这项研究的目的是研究两种具有不同机械性能和二次合金元素比例的Pd-Ag合金(Ivoclar Vivadent)的疲劳极限,研究铸件孔隙率对疲劳行为的影响,并确定铸件尺寸的影响。微观结构和维氏硬度选择的合金为:IPS d.SIGN 59(59.2Pd-27.9Ag-8.2Sn-2.7In-1.3Zn);和IS 64(59.9Pd-26.0Ag-7.0Sn-2.8Au-1.8 Ga-1.5In-1.0Pt)。对经过热处理以模拟牙科瓷器应用的拉伸测试棒进行10 Hz的循环载荷,对于压缩应力和拉伸应力的振幅,R比率为-1。在每个应力振幅下测试了两个重复的样本。用扫描电子显微镜(SEM)检查断裂表面。还使用SEM检查了断面疲劳样品和模拟上颌中切牙修复的顶盖的其他铸件样品,并使用1 kg载荷测量了维氏硬度。使用图像分析程序,在截面疲劳断裂试样中评估铸件孔隙率。 IS 64的疲劳极限(2×10〜6个加载周期)约为其0.2%屈服强度的0.20,而d.SIGN 59的疲劳极限约为其0.2%屈服强度的0.25。疲劳极限相对于屈服强度为0.2%的相对较低的比率类似于先前在高钯牙科合金中发现的比率,并且归因于其复杂的微观结构和铸件孔隙率。两种合金均观察到带有条纹的复杂疲劳断裂表面。只有当孔径和体积百分比变得过大时,疲劳破坏的循环次数才会进一步大幅减少。尽管热处理后的合金具有等轴晶粒,且有沉淀,但模拟瓷烧制产生的显微组织均质化对于应付和疲劳测试样品却有很大差异。后者的维氏硬度值明显更高。

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  • 来源
    《Journal of materials science》 |2010年第10期|p.2723-2731|共9页
  • 作者单位

    Section of Oral Biology, The Ohio State University, Columbus,OH, USA Greatbatch, Inc, Clarence, NY, USA;

    rnDivision of Restorative and Prosthetic Dentistry, College of Dentistry, The Ohio State University, PO Box 182357, Columbus, OH 43218-2357, USA;

    rnDivision of Restorative and Prosthetic Dentistry, College of Dentistry, The Ohio State University, PO Box 182357, Columbus, OH 43218-2357, USA;

    rnSection of Oral Biology, The Ohio State University, Columbus,OH, USA Department of Endodontics, College of Dentistry, University of Illinois at Chicago, Chicago, IL, USA;

    rnDivision of Primary Care, College of Dentistry, The Ohio State University, Columbus, OH, USA;

    rnDepartment of Materials Science and Engineering, The Ohio State University, Columbus, OH, USA;

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