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Influence of Magnetic Field on the Distribution of the Ferromagnetic Component in Centrifugally Cast Ceramic-Metal Gradient Composites

机译:磁场对离心铸造陶瓷 - 金属梯度复合材料中铁磁性成分分布的影响

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摘要

The main aim of the investigation was to determine the impact of the content of nickel and the content of slurry on the nature of the microstructure and physical properties of the final products. In the study, six types of slurries were examined and prepared, differing in both the amounts of content of Ni metallic phase particles (5 vol.%, 10 vol.%, and 20 vol.%) and the amount of content of solid content in the prepared slurries (35 vol.%, and, 50 vol.%). The centrifugal slip casting (CSC) method in a magnetic field was used to fabricate the composites. This technique allowed the production of high-density ZrO2-Ni composites after sintering. Composites containing 50 vol.% of the solid content were characterized by a relative density equal to 99%. Applying the magnetic field allows controlling the distribution of the ferromagnetic phase (Ni) in the ceramic matrix (ZrO2). Based on the results obtained, it was found that the nature of the composites obtained is influenced by the rheological properties of the slurries, depending on their composition. The applicability of the CSC in the magnetic field technique for the production of the composite is characterized by a gradient in the distribution of components on the longitudinal section and has been proved. Based on the obtained results, a model for shaping the microstructure of composites with a longitudinal section was proposed. This work enabled a better understanding of creating microstructures in materials fabricated by centrifugal slip casting in a magnetic field.
机译:调查的主要目的是确定镍含量和浆料含量对最终产品的微观结构和物理性质的影响。在该研究中,检查并制备六种类型的浆料,在Ni金属相颗粒的含量(5体积%,10体积%和20体积%)的含量中不同。%含量的含量和固体含量的含量在制备的浆料中(35体积%,和50体积%)。在磁场中的离心滑动铸件(CSC)方法用于制造复合材料。该技术允许在烧结后生产高密度ZrO2-Ni复合材料。含有50体积%的复合材料的特征在于相对密度等于99%。施加磁场允许在陶瓷基质(ZrO2)中控制铁磁相(Ni)的分布。基于所得的结果,发现所获得的复合材料的性质受浆料的流变性质的影响,这取决于它们的组合物。 CSC在用于生产复合材料的磁场技术中的适用性的特征在于纵向部分上部件分布的梯度,并已被证明。基于所得结果,提出了一种用于将复合材料微观结构的模型进行了提出。这项工作使得能够更好地了解在磁场中的离心滑动铸件制造的材料中产生微观结构。

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