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Flow field and its effect on microstructure in cold crucible directional solidification of Nb containing TiAl alloy

机译:含铌TiAl合金冷坩埚定向凝固的流场及其对组织的影响

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A 3D finite element model was established to investigate the flow field in TiAl melt under different process parameters that include the position of the solidification interface, the meniscus height, the heating power and the current frequency. A square cold crucible with an inner cross section of 36 mm × 36 mm was employed to directionally solidify Ti-46Al-6Nb-B (at.%) ingots. The flow pattern in the melt is highly parameter-related. Generally, there are two flow swirls with opposite directions in the melt. The flow near the solidification interface can be minimized with an optimal meniscus height. The flow velocity is decreased with a decrease of heating power and an increase of current frequency. A weaker lateral flow near the solidification interface is beneficial for the continuous growth of columnar grains. The microsegregation of a directionally-solidified ingot can be reduced by controlling the flow in the melt, which is one of the advantages of cold crucible directional solidification.
机译:建立了一个3D有限元模型,以研究TiAl熔体在不同工艺参数(包括凝固界面的位置,弯液面高度,加热功率和电流频率)下的流场。使用内部横截面为36 mm×36 mm的方形冷坩埚定向凝固Ti-46Al-6Nb-B(原子%)铸锭。熔体中的流动模式与参数高度相关。通常,熔体中有两个方向相反的流动涡流。最佳弯月面高度可以使凝固界面附近的流动最小化。随着加热功率的减小和电流频率的增大,流速减小。凝固界面附近较弱的横向流动有利于柱状晶粒的连续生长。通过控制熔体中的流动,可以减少定向凝固铸锭的微偏析,这是冷坩埚定向凝固的优点之一。

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