首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Development of the novel ferrous-based stainless steel for biomedical applications, part I: high-temperature microstructure, mechanical properties and damping behavior.
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Development of the novel ferrous-based stainless steel for biomedical applications, part I: high-temperature microstructure, mechanical properties and damping behavior.

机译:用于生物医学的新型铁基不锈钢的开发,第一部分:高温微观结构,机械性能和阻尼行为。

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摘要

This research investigated the high-temperature microstructure, mechanical properties, and damping behavior of Fe-9 Al-30 Mn-1C-5 Co (wt.%) alloy by means of electron microscopy, experimental model analysis, and hardness and tensile testing. Subsequent microstructural transformation occurred when the alloy under consideration was subjected to heat treatment in the temperature range of 1000-1150 degrees C: gamma --> (gamma+kappa). The kappa-phase carbides had an ordered L'1(2)-type structure with lattice parameter a = 0.385 nm. The maximum yield strength (sigma(y)), hardness, elongation, and damping coefficient of this alloy are 645 MPa, Hv 292, ~54%, and 178.5 x 10(-4), respectively. These features could be useful in further understanding the relationship between the biocompatibility and the wear and corrosion resistance of the alloy, so as to allow the development of a promising biomedical material.
机译:本研究通过电子显微镜,实验模型分析以及硬度和拉伸试验研究了Fe-9 Al-30 Mn-1C-5 Co(wt。%)合金的高温组织,力学性能和阻尼行为。当所考虑的合金在1000-1150摄氏度的温度范围内进行热处理时,会发生随后的显微组织转变:γ->(γ+ kappa)。 κ相碳化物具有晶格参数a = 0.385 nm的有序L'1(2)型结构。该合金的最大屈服强度(sigma(y)),硬度,伸长率和阻尼系数分别为645 MPa,Hv 292,〜54%和178.5 x 10(-4)。这些特征可用于进一步理解合金的生物相容性与耐磨性和耐腐蚀性之间的关系,从而允许开发有前途的生物医学材料。

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