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首页> 外文期刊>Journal of Microscopy >Microscopic bio-corrosion evaluations of magnesium surfaces in static and dynamic conditions
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Microscopic bio-corrosion evaluations of magnesium surfaces in static and dynamic conditions

机译:静态和动态条件下镁表面的微观生物腐蚀评估

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Biodegradable materials including biodegradable metals are continuously being investigated for the development of next generation cardiovascular stents. Predictive in vitro tests are needed that could evaluate potential materials while simulating in vivo conditions. In this manuscript we report the microscopic bio-corrosion evaluations of magnesium surfaces in static and dynamic conditions. A corrosion test bench was designed and fabricated and static and dynamic corrosion tests were carried out with samples of magnesium alloy. The fluid wall shear stress equation and the Churchill's friction factor equation were used to calculate the fluid velocity required to generate the desired shear stress on samples in the test bench. Static and dynamic corrosion tests at 24 and 72 h were carried out at 0.88 Pa shear stress mimicking the in vivo shear stress. Microscopic evaluations of the corroded surfaces were carried out by optical, scanning electron microscopy and energy dispersive X-ray spectroscopy to evaluate the corrosion behaviour and surface properties of the test samples. The surface and interface analysis of magnesium samples post test indicated that dynamic conditions prevented the build-up of corrosion by-products on the sample surface and the corrosion mechanism was uniform as compared to static conditions. The use of a masking element to restrict the exposed area of the sample didn't result in increased corrosion at the boundary. Thus, we have demonstrated the feasibility of the designed test bench as a viable method for bio-corrosion surface analysis under dynamic corrosion conditions for potential biodegradable cardiovascular stent materials.
机译:包括生物可降解金属在内的生物可降解材料正在不断研究中,以开发下一代心血管支架。需要进行预测性的体外测试,以便在模拟体内条件时评估潜在的材料。在这份手稿中,我们报告了在静态和动态条件下镁表面的微观生物腐蚀评估。设计并制造了一个腐蚀试验台,并对镁合金样品进行了静态和动态腐蚀试验。流体壁剪切应力方程和丘吉尔摩擦系数方程用于计算在试验台上的样品上产生所需剪切应力所需的流体速度。在模拟体内剪切应力的0.88 Pa剪切应力下,在24和72 h进行了静态和动态腐蚀测试。通过光学,扫描电子显微镜和能量色散X射线光谱学对腐蚀表面进行了微观评估,以评估测试样品的腐蚀行为和表面特性。试验后镁样品的表面和界面分析表明,动态条件阻止了腐蚀副产物在样品表面上的积累,并且与静态条件相比,腐蚀机理是一致的。使用掩膜元素限制样品的暴露区域并不会增加边界处的腐蚀。因此,我们证明了设计的试验台作为在动态腐蚀条件下对潜在的可生物降解的心血管支架材料进行生物腐蚀表面分析的可行方法的可行性。

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