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首页> 外文期刊>Acta biomaterialia >Effects of nanofeatures induced by severe shot peening (SSP) on mechanical, corrosion and cytocompatibility properties of magnesium alloy AZ31
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Effects of nanofeatures induced by severe shot peening (SSP) on mechanical, corrosion and cytocompatibility properties of magnesium alloy AZ31

机译:严重射击喷丸(SSP)诱导纳米斑诱导对镁合金AZ31的机械,腐蚀及细胞组分特性的影响

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Graphical abstract Display Omitted Abstract The application of biodegradable magnesium-based materials in the biomedical field is highly restricted by their low fatigue strength and high corrosion rate in biological environments. Herein, we treated the surface of a biocompatible magnesium alloy AZ31 by severe shot peening in order to evaluate the potential of surface grain refinement to enhance this alloy’s functionality in a biological environment. The AZ31 samples were studied in terms of micro/nanostructural, mechanical, and chemical characteristics in addition to cytocompatibility properties. The evolution of surface grain structure and surface morphology were investigated using optical, scanning and transmission electron microscopy. Surface roughness, wettability, and chemical composition, as well as in depth-microhardness and residual stress distribution, fatigue behaviour and corrosion resistance were investigated. Cytocompatibility tests with osteoblasts (bone forming cells) were performed using sample extracts. The results revealed for the first time that severe shot peening can significantly enhance mechanical properties of AZ31 without causing adverse effects on the growth of surrounding osteoblasts. The corrosion behavior, on the other hand, was not improved; nevertheless, removing the rough surface layer with a high density of crystallographic lattice defects, without removing the entire nanocrystallized layer, provided a good potential for improving corrosion characteristics after severe shot peening and thus, this method should be studied for a wide range of orthopedic applications in which biodegradable magnesium is used. Statement of Significance A major challenge for most commonly used metals for bio-implants is their non-biodegradability that necessitates revision surgery for implant retrieval when used as fixation plates, screws, etc. Magnesium is reported among the most biocompatible metals that resorb over time without adverse tissue reactions and is indispensable for many biochemical processes in human body. However, fast and uncontrolled degradation of magnesium alloys in the physiological environment in addition to their inadequate mechanical properties especially under repeated loading have limited their application in the biomedical field. The present study providesdata on the effect of a relatively simple surface nanocrystallziation method with high potential to tailor the mechanical and chemical behavior of magnesium based material while maintaining its cytocompatibility.
机译:摘要摘要摘要摘要生物医学领域的可生物降解的镁基材料的应用受到它们在生物环境中的低疲劳强度和高腐蚀速率的高度限制。在此,我们通过严重喷丸治疗生物相容性镁合金AZ31的表面,以评估表面晶粒细化的潜力,以增强这种合金在生物环境中的功能。除了细胞锁定性能外,还研究了AZ31样品,除了微/纳米结构,机械和化学特性,还研究了细胞锁定性能。使用光学,扫描和透射电子显微镜研究了表面晶粒结构和表面形态的演变。研究了表面粗糙度,润湿性和化学组成,以及深度微硬度和残余应力分布,疲劳行为和耐腐蚀性。使用样品提取物进行具有成骨细胞(骨形成细胞)的细胞偶联试验。结果表明,严重射击喷丸的第一次可以显着增强AZ31的机械性能,而不会对周围成骨细胞的生长产生不利影响。另一方面,腐蚀行为没有改善;然而,在不除去整个纳米晶体缺陷的情况下,除去具有高密度的粗糙表面层,提供了改善严重喷丸后改善腐蚀特性的良好电位,因此,应研究该方法的各种整形外科应用使用可生物降解的镁。重要性对生物植入物最常用金属的主要挑战是它们的非生物降解性,其在用作固定板,螺钉等时需要修正植入物检索的手术。镁在不间间的最生物相容性金属中报告镁镁。没有不良组织反应,对于人体中许多生化过程是必不可少的。然而,除了在重复载荷下的机械性能不足之外,生理环境中镁合金的快速和不受控制地降解的镁合金在生物医学领域的应用限制了它们的应用。本研究提供了高潜力测定镁基材料机械和化学行为的相对简单的表面纳米晶体效应的影响。

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