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Microstructural, mechanical and electrochemical characterisation of biomaterial ASTM F745 cast by vacuum

机译:真空铸造生物材料ASTM F745的微观结构,机械和电化学表征

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Countergravity low pressure casting (CLA) was performed to enhance the properties of ASTM F745 stainless steel (SS), which is usually used as biomaterial. The macro- and microstructures were compared with those obtained by the conventional process of investment casting (IC). The SS cast by CLA (SSCLA) exhibited a smaller size of solidification cell and finer dendritic microstructure. The average of its dendritic primary spacing was 110.4 μm, while for the same steel cast by IC (SSIC), it was 186.7 μm. The density of non-metallic inclusions δ_1 in the SSCLA was 717 I mm~(-2), being the majority of them smaller than 1.5 μm. In the case of SSIC, δ_1 was852 I mm~(-2), with a size distribution of up to 8 μm. The SSCLA showed a higher breakdown potential than the SSIC, the values being 0.300 and 0.210 V(saturated calomel electrode) respectively, which means a higher resistance to suffer localised corrosion. Finely, the CLA process also allowed obtaining better mechanical properties.
机译:进行反重力低压铸造(CLA)以增强通常用作生物材料的ASTM F745不锈钢(SS)的性能。将宏观和微观结构与通过常规熔模铸造(IC)工艺获得的宏观和微观结构进行了比较。由CLA(SSCLA)铸造的SS表现出较小的凝固单元尺寸和较细的树枝状微观结构。其树枝状一次间距的平均值为110.4μm,而用IC(SSIC)铸造的同一钢的平均间距为186.7μm。 SSCLA中非金属夹杂物δ_1的密度为717 I mm〜(-2),多数小于1.5μm。在SSIC的情况下,δ_1为852 I mm〜(-2),尺寸分布最大为8μm。 SSCLA的击穿电位比SSIC高,分别为0.300 V和0.210 V(饱和甘汞电极),这意味着更高的抗局部腐蚀能力。很好的是,CLA工艺还允许获得更好的机械性能。

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