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Powder metallurgy and mechanical alloying effects on the formation of thermally induced martensite in an FeMnSiCrNi SMA

机译:FeMnSiCrNi SMA中粉末冶金和机械合金化对热致马氏体形成的影响

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By ingot metallurgy (IM, melting, alloying and casting), powder metallurgy (PM, using as-blended elemental powders) and mechanical alloying (MA of 50 % of particle volume), three types of FeMnSiCrNi shape memory alloy (SMA) specimens were fabricated, respectively. After specimen thickness reduction by hot rolling, solution treatments were applied, at 973 and 1273 K, to thermally induce martensite. The resulting specimens were analysed by X-ray diffraction (XRD) and scanning electron microscopy (SEM), in order to reveal the presence of ε (hexagonal close-packed, hcp) and α’ (body centred cubic, bcc) thermally induced martensites. The reversion of thermally induced martensites, to γ (face centred cubic, fcc) austenite, during heating, was confirmed by dynamic mechanical analysis (DMA), which emphasized marked increases of storage modulus and obvious internal friction maxima on DMA thermograms. The results proved that the increase of porosity degree, after PM processing, increased internal friction, while MA enhanced crystallinity degree.
机译:通过铸锭冶金(IM,熔融,合金化和铸造),粉末冶金(PM,使用混合元素粉末)和机械合金化(MA占颗粒体积的50%),得到了三种类型的FeMnSiCrNi形状记忆合金(SMA)试样分别制造。在通过热轧减小样品厚度之后,在973和1273 K下进行固溶处理以热诱导马氏体。通过X射线衍射(XRD)和扫描电子显微镜(SEM)对所得样品进行分析,以揭示ε(六方密堆积,hcp)和α'(体心立方,bcc)热诱导马氏体的存在。动态力学分析(DMA)证实了加热过程中热诱导马氏体向γ(面心立方,fcc)奥氏体的回复,这强调了储能模量的显着增加和DMA热谱图上明显的内部摩擦最大值。结果证明,PM处理后,孔隙度的增加会增加内摩擦,而MA会提高结晶度。

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