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Directional Solidification Microstructure of a Ni-Based Superalloy: Influence of a Weak Transverse Magnetic Field

机译:Ni基超合金的定向凝固微观结构:弱横向磁场的影响

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A Ni-based superalloy CMSX-6 was directionally solidified at various drawing speeds (5–20 μm·s−1) and diameters (4 mm, 12 mm) under a 0.5 T weak transverse magnetic field. The results show that the application of a weak transverse magnetic field significantly modified the solidification microstructure. It was found that if the drawing speed was lower than 10 μm·s−1, the magnetic field caused extensive macro-segregation in the mushy zone, and a change in the mushy zone length. The magnetic field significantly decreases the size of γ’ and the content of γ-γ’ eutectic. The formation of macro-segregation under a weak magnetic field was attributed to the interdendritic solute transport driven by the thermoelectric magnetic convection (TEMC). The γ’ phase refinement could be attributed to a decrease in nucleation activation energy owing to the magnetic field during solid phase transformation. The change of element segregation is responsible for the content decrease of γ-γ’ eutectic.
机译:基于Ni的高温合金CMSX-6在0.5T弱横向磁场下以各种拉伸速度(5-20​​μm·s -1℃)的直径(4mm,12mm)定向固化。结果表明,弱横向磁场的应用显着改变了凝固微观结构。结果发现,如果拉伸速度低于10μm·s -1 / sop>,则磁场在糊状区引起广泛的宏观隔离,以及糊状区长度的变化。磁场显着降低γ'的尺寸和γ-γ'共晶的含量。在弱磁场下形成宏观偏析归因于由热电磁对流(TEMC)驱动的植物溶质传输。 γ'相质物可以归因于在固相变换期间由于磁场而减少成核激活能量。元素偏析的变化负责γ-γ'共晶的含量降低。

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