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倾斜和多向表面冲击加速纯铁的生物降解并提高其机械性能。

Inclined and multi-directional surface impacts accelerate biodegradation and improve mechanical properties of pure iron.

机构信息

Department of Mechanical Engineering, Politecnico di Milano, Milan, Italy.

Department of Mechanical Engineering, Politecnico di Milano, Milan, Italy.

出版信息

J Mech Behav Biomed Mater. 2021 Jul;119:104476. doi: 10.1016/j.jmbbm.2021.104476. Epub 2021 Apr 2.

Abstract

Impact based surface treatments with adequate kinetic energy have favorable effects on promoting cell-substrate interactions, reducing bacterial adhesion, and enhancing fatigue performance of metallic biomaterials. Here, we used both numerical and experimental approaches to evaluate the potential of these treatments for addressing the major issue associated with the application of pure iron in biomedical implants, i.e. its low corrosion rate. Despite the efficiency of impact based surface treatments in modulating the degradation rate of pure iron, the maximum reported depth of the affected surface layer is still limited, even when extreme process parameters are used. To address this issue, herein, two impact based treatments were adjusted to trigger the dislocation activities that facilitate grain refinement in pure iron using multi-directional inclined impacts. An alternative approach of severe shot peening (SSP) was developed and compared with ultrasonic shot peening (USP). The effect of both treatments and variations of their key parameters were analyzed considering the significant role of shear bands and dislocation cells in the grain refinement mechanism of pure α-iron. Microstructural, mechanical and electrochemical properties of the treated material were analyzed. The observations showed extension of the grain refined layers for the specimens subjected to multidirectional oblique impacts compared to the ones treated in the classic manner using normal impacts. The results imply that by adapting peening parameters, it would be possible to effectively create a thick surface layer with properties that can accelerate the biodegradation of pure iron boosting its potential to meet clinical requirements for temporary hard tissue implants.

摘要

基于冲击的表面处理具有足够的动能,有利于促进细胞-基底相互作用、减少细菌黏附、提高金属生物材料的疲劳性能。在这里,我们使用数值和实验方法来评估这些处理方法在解决纯铁在生物医学植入物应用中主要问题方面的潜力,即其低腐蚀速率。尽管基于冲击的表面处理在调节纯铁降解速率方面非常有效,但即使使用极端的工艺参数,报告的受影响表面层的最大深度仍然有限。为了解决这个问题,本文调整了两种基于冲击的处理方法,通过多向倾斜冲击引发位错活动,从而细化纯铁的晶粒。开发了一种替代的强烈喷丸处理(SSP)方法,并与超声喷丸处理(USP)进行了比较。考虑到剪切带和位错胞在纯α-铁晶粒细化机制中的重要作用,分析了这两种处理方法及其关键参数变化的影响。分析了处理材料的微观结构、力学和电化学性能。观察结果表明,与经典的正向冲击处理相比,多向倾斜冲击处理的试样的晶粒细化层得到了扩展。结果表明,通过调整喷丸参数,可以有效地在表面形成具有加速纯铁生物降解性能的厚表层,从而提高其满足临时硬组织植入物临床要求的潜力。

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