首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >The influence of cooling conditions on grain size, secondary phase precipitates and mechanical properties of biomedical alloy specimens produced by investment casting
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The influence of cooling conditions on grain size, secondary phase precipitates and mechanical properties of biomedical alloy specimens produced by investment casting

机译:冷却条件对熔模铸造生物医学合金试样的晶粒尺寸,第二相沉淀和力学性能的影响

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The objective of this work was to investigate and evaluate the effect of the cooling environment on the microstructure, secondary phase precipitates and mechanical properties of an as-cast cobalt alloy. The microstructure of castings has a large bearing on the mechanical properties, grain size, porosity and the morphology of carbide precipitates are thought to influence hardness, tensile strength and ductility. It is postulated that a greater understanding of microstructure and secondary phase precipitate response to casting parameters could lead to the optimisation of casting parameters and serve to reduce the requirement of thermo-mechanical treatments currently applied to refine as-cast structures and achieve adequate mechanical properties. Thermal analysis was performed to determine the critical stages of cooling. Ten millimetre diameter cylindrical specimens which could be machined into tension test specimens were cast and cooled under different conditions to impose different cooling rates. Analytical techniques such as optical microscopy (OM), scanning electron microscopy (SEM), energy dispersive x-ray spectroscopy (EDX), tensile testing and micro-hardness testing were used to study the specimens. Parameters studied include grain size, secondary dendrite arm spacing, secondary phase precipitates, porosity, hardness, ultimate tensile strength, yield strength and elongation. The microstructure of as-cast Co-28Cr-6Mo was found to consist of a dendritic matrix with secondary phases precipitated at grain boundaries and interdendritic zones. These secondary phase precipitates consist of carbides, rich in chromium and molybdenum. The size and area fraction of carbides was found to decrease significantly with increasing cooling rate while the micro-porosity was only marginally affected. The as-cast grains are illustrated for the first time showing a significant difference in size between insulated and naturally cooled specimens. The secondary dendrite arm spacing was determined to be significantly affected by the various cooling environments and the mechanical properties of hardness, ultimate tensile strength and yield strength all increased with increasing cooling rate while the ductility decreased. Correlations between microstructural features and mechanical properties are proposed.
机译:这项工作的目的是研究和评估冷却环境对铸态钴合金的组织,次生相沉淀和力学性能的影响。铸件的微观结构对机械性能,晶粒尺寸,孔隙率有很大影响,并且碳化物沉淀的形态被认为会影响硬度,拉伸强度和延展性。据推测,对微观结构和次生相析出物对铸造参数的响应的更多理解可以导致铸造参数的优化,并有助于降低目前用于精炼铸态结构并获得足够机械性能的热机械处理的要求。进行热分析以确定冷却的关键阶段。可以加工成拉伸试样的十毫米直径的圆柱形试样在不同条件下铸造和冷却以施加不同的冷却速率。使用诸如光学显微镜(OM),扫描电子显微镜(SEM),能量色散X射线光谱仪(EDX),拉伸测试和显微硬度测试等分析技术来研究样品。研究的参数包括晶粒尺寸,次级枝晶臂间距,次级相析出物,孔隙率,硬度,极限抗拉强度,屈服强度和伸长率。发现铸态Co-28Cr-6Mo的微观结构由树枝晶基质组成,二次相沉淀在晶界和枝晶间区域。这些第二相沉淀物由碳化物组成,富含铬和钼。发现碳化物的尺寸和面积分数随冷却速率的增加而显着减小,而微孔率仅受到很小的影响。首次对铸态晶粒进行了说明,显示了隔热试样和自然冷却试样之间的尺寸差异显着。二次枝晶臂间距被确定为受各种冷却环境的显着影响,硬度,极限抗拉强度和屈服强度的机械性能均随冷却速率的增加而增加,而塑性却下降。提出了微观结构特征与力学性能之间的关系。

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