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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >Structure, phases, and mechanical response of Ti-alloy bioactive glass composite coatings
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Structure, phases, and mechanical response of Ti-alloy bioactive glass composite coatings

机译:钛合金生物活性玻璃复合涂层的结构,相和力学响应

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摘要

Porous titaniumalloy-bioactive glass composite coatingsweremanufactured via the flame spray deposition process. The porous coatings, targeted for orthodontic and bone-fixation applications, were made from bioactive glass (45S5) powder blended with either commercially pure titanium (Cp-Ti) or Ti-6Al-4V alloy powder. Two sets of spray conditions, two metallic particle size distributions, and two glass particle size distributions were used for this study. Negative control coatings consisting of pure Ti-6Al-4V alloy or Cp-Ti were sprayed under both conditions. The as-sprayed coatings were characterized through quantitative optical cross-sectional metallography, X-ray diffraction (XRD), and ASTMStandard C633 tensile adhesion testing. Determination of the porosity and glassy phase distributionwas achieved by using image analysis in accordancewith ASTMStandard E2109. Theoretical thermodynamic and heat transfer modeling was conducted to explain experimental observations. Thermodynamic modeling was performed to estimate the flame temperature and chemical environment for each spray condition and a lumped capacitance heat transfer model was developed to estimate the temperatures attained by each particle. These models were used to establish trends among the choice of alloy, spray condition, and particle size distribution. The deposition parameters, alloy composition, and alteration of the feedstock powder size distribution had a significant effect on the coating microstructure, porosity, phases present, mechanical response, and theoretical particle temperatures that were attained. The most promising coatings were the Ti-6Al- 4V-based composite coatings, which had bond strength of 20 ± 2 MPa (n = 5) and received reinforcement and strengthening from the inclusion of a glassy phase. It was shown that the use of the Ti-6Al-4V-bioactive glass composite coatings may be a superior choice due to the possible osteoproductivity from the bioactive glass, the potential ability to support tissue ingrowth and vascular tissue, and the comparable strength to similar coatings.
机译:多孔钛合金-生物活性玻璃复合涂层是通过火焰喷涂沉积工艺制造的。该多孔涂层的目标是用于正畸和骨固定应用,由生物活性玻璃(45S5)粉末与商业纯钛(Cp-Ti)或Ti-6Al-4V合金粉末混合制成。本研究使用了两组喷涂条件,两种金属粒径分布和两种玻璃粒径分布。在两种条件下均喷涂由纯Ti-6Al-4V合金或Cp-Ti组成的阴性对照涂层。通过定量光学截面金相,X射线衍射(XRD)和ASTMStandard C633拉伸粘合力测试对喷涂后的涂层进行表征。孔隙率和玻璃态分布的测定是通过根据ASTM Standard E2109进行图像分析来实现的。进行了理论热力学和热传递模型来解释实验观察。进行热力学建模以估计每种喷雾条件下的火焰温度和化学环境,并开发集总电容传热模型以估算每个粒子所达到的温度。这些模型用于建立合金选择,喷涂条件和粒度分布之间的趋势。沉积参数,合金组成和原料粉末粒度分布的变化对涂层的微观结构,孔隙率,存在的相,机械响应和理论颗粒温度都有重大影响。最有前途的涂层是基于Ti-6Al-4V的复合涂层,其结合强度为20±2 MPa(n = 5),并且由于包含玻璃相而得到了增强和强化。结果表明,使用Ti-6Al-4V-生物活性玻璃复合涂层可能是一个更好的选择,因为该生物活性玻璃可能具有成骨作用,潜在的支持组织向内生长和维管组织的能力以及与类似物相当的强度涂料。

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