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首页> 外文期刊>Acta biomaterialia >Development of biodegradable Mg-Ca alloy sheets with enhanced strength and corrosion properties through the refinement and uniform dispersion of the Mg2Ca phase by high-ratio differential speed rolling
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Development of biodegradable Mg-Ca alloy sheets with enhanced strength and corrosion properties through the refinement and uniform dispersion of the Mg2Ca phase by high-ratio differential speed rolling

机译:通过高比率差速轧制使Mg2Ca相细化和均匀分散,开发出具有增强的强度和腐蚀性能的可生物降解的Mg-Ca合金板

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摘要

A novel processing route was proposed for the fabrication of biodegradable Mg-Ca binary alloys with high Ca contents (2-3 wt.%) in sheet form with enhanced biocorrosion resistance by tailoring their microstructures. The effective refinement and dispersion of the Mg2Ca phase in the Mg-Ca alloys using extrusion followed by high-ratio differential speed rolling (HRDSR) and post-rolling annealing led to the formation of homogeneous microstructures in which submicron-sized and nanosized Mg2Ca particles were distributed over the fine-grained recrystallized matrices with grain sizes of similar to 6 mu m. The break-up of the Mg2Ca phase into fine and isolated particles and their uniform dispersion in the matrix greatly decreased the susceptibility of individual microgalvanic corrosion between the matrix and Mg2Ca phase and the post-deformation annealing decreased the dislocation density while forming small grains due to the presence of the finely dispersed Mg2Ca particles that reduced the grain sizes by inhibiting grain boundary motion in recrystallization, resulting in a significant improvement in the corrosion resistance of Mg-Ca alloys in Hank's solution. The annealed HRDSR-processed Mg-Ca alloys showed higher corrosion resistance and higher mechanical strength compared with pure magnesium. The processing routes proposed in this study provide a new opportunity for the production of biodegradable magnesium alloy sheets with good strength and corrosion properties. (C) 2014 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
机译:提出了一种新颖的工艺路线,用于通过定制微结构来制造具有高Ca含量(2-3 wt。%)的片状高生物可降解Mg-Ca二元合金,并具有增强的抗生物腐蚀性。通过挤压,高比率差速轧制(HRDSR)和后轧制退火有效地细化和分散Mg-Ca合金在Mg-Ca合金中,导致形成均匀的微观结构,在该组织中形成了亚微米级和纳米级Mg2Ca颗粒分布在晶粒尺寸接近6微米的细晶粒重结晶基体上。 Mg2Ca相分解成细小和分离的颗粒,并在基体中均匀分散,大大降低了基体与Mg2Ca相之间单个微电化腐蚀的敏感性,变形后退火降低了位错密度,同时由于形成了小晶粒细分散的Mg2Ca颗粒的存在通过抑制再结晶过程中的晶界运动来减小晶粒尺寸,从而显着改善了Hank溶液中Mg-Ca合金的耐腐蚀性。与纯镁相比,经HRDSR处理的退火Mg-Ca合金具有更高的耐腐蚀性和更高的机械强度。这项研究中提出的加工路线为生产具有良好强度和腐蚀性能的可生物降解镁合金薄板提供了新的机会。 (C)2014 Acta Materialia Inc.,由Elsevier Ltd.发行。保留所有权利。

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