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In situ tensile deformation of TRIP steel / Mg-PSZ composites

机译:轨道钢/ Mg-PSZ复合材料的原位拉伸变形

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Composite material on the basis of a TRIP (TRransformation Induced Plasticity) steel with zirconia particles as reinforcement was produced by powder metallurgical technology and conventional sinter process. The goal of such type of material is to obtain exceptional mechanical properties like high deformation energy absorption due to the combination of martensitic phase transformations both in steel and ceramic. The steel matrix was made of the commercial steel AISI 304, which shows a deformation-induced martensitic phase transformation from the austenitic phase (fcc) into the a'-martensite (bcc). The zirconia particles were partially stabilized with MgO and show a stress-assisted martensitic phase transformation from the tetragonal to the monocline phase. Flat specimens were tensile deformed in-situ in a scanning electron microscope in order to follow the damage behaviour of the material. Some zirconia particles were characterized before and after tensile testing both by backscattered electron contrast as well as by electron backscatter diffraction (EBSD) in combination with energy dispersive X-ray spectroscopy (EDS).
机译:通过粉末冶金技术和常规烧结工艺生产基于氧化锆颗粒的氧化锆颗粒的综合材料(速降诱导的塑性)钢作为增强件。这种类型的材料的目的是获得具有高变形能量吸收的特殊机械性能,这是由于钢和陶瓷的马氏体相变的组合。钢基质由商业钢AISI 304制成,其显示从奥氏体相(FCC)进入A'-马氏体(BCC)的变形诱导的马氏体相转变。用MgO部分稳定氧化锆颗粒,并显示从四边形到单极链的应力辅助马氏体相转变。扁平标本在扫描电子显微镜中以原位变形而变形,以遵循材料的损伤行为。通过背散射电子对比度以及通过电子反向散射衍射(EBSD)与能量分散X射线光谱(EDS)组合的Zirconia颗粒以前和之后表征了Zirconia颗粒。

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