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The addition of silver affects the deformation mechanism of a twinning-induced plasticity steel: Potential for thinner degradable stents

机译:添加银会影响孪晶诱导的塑性钢的变形机理:较薄可降解支架的潜力

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摘要

While Fe-based alloys have already been reported to possess all mechanical properties required for vascular stenting, their relatively low degradation rate in vivo still constitutes their main bottleneck. The inflammatory reaction generated by a stent is inversely proportional to its mass. Therefore, the tendency in stenting is to lower the section so to reduce the inflammatory reaction. Twinning-induced plasticity steels (TWIP) possess excellent mechanical properties for envisaging the next generation of thinner degradable cardiovascular stents. To accelerate the degradation, the addition of noble elements was proposed, aimed at promoting corrosion by galvanic coupling. In this context, silver was reported to generally increase the degradation rate. However, its impact on the deformation mechanism of TWIP steels has not been reported yet. Results show that the use of Ag significantly reduces the ductility without altering the strength of the material. Furthermore, the presence of Ag was found to promote a different deformation texture, thus stimulating the formation of mechanical martensite. Since a stent works in the deformed state, understanding the microstructure and texture resulting from plastic deformation can effectively help to forecast the degradation mechanisms taking place during implantation and the expected degradation time. Moreover, knowing the deformed microstructure allows to understand the formability of very small tubes, as precursors of the next generation of thin section degradable stents.
机译:虽然已经报道了Fe基合金具有血管支架所需的所有机械性能,但体内的降解率相对低的降解率仍然构成其主要瓶颈。由支架产生的炎症反应与其质量成反比。因此,支架的趋势是降低截面,从而减少炎症反应。 Twinning诱导的可塑性钢(TWIP)具有优异的机械性能,用于设想下一代较薄可降解的可降解心血管支架。为了加速降解,提出了添加惰性元素,旨在通过电催化偶联促进腐蚀。在这种情况下,据报道银据报道一般增加降解率。然而,尚未报告其对Twip Steels变形机制的影响。结果表明,AG的使用显着降低了延展性而不改变材料的强度。此外,发现AG的存在促进不同的变形纹理,从而刺激机械马氏体的形成。由于支架在变形状态下工作,了解由塑性变形产生的微观结构和纹理可以有效地帮助预测在植入过程中发生的降解机制和预期的降解时间。此外,了解变形的微观结构允许理解非常小管的可成形性,作为下一代薄截面可降解支架的前体。

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