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The flow structure of a bubble-driven liquid-metal jet in a horizontal magnetic field

机译:气泡驱动的液态金属射流在水平磁场中的流动结构

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Static magnetic fields are known to be suitable for damping mean flow and turbulent motion in an electrically conducting liquid. In this paper, an experimental study is presented considering the influence of a horizontal magnetic field on a bubble-driven flow of a liquid metal. The investigation is focused on the liquid circulation inside a liquid metal column driven by a central jet produced by gas injection. The fluid vessel has a circular cross-section and electrically insulating walls. Low gas flow rates were applied, resulting in a plume of separated bubbles rising inside a spot around the cylinder axis. This axisymmetric configuration is exposed to a horizontal magnetic field. We present detailed experimental data describing the spatial as well as the temporal structure of the velocity field. Measurements of the vertical and the radial velocity component, respectively, were performed using the ultrasound Doppler velocimetry (UDV), allowing for the first time a complete mapping of the liquid velocity distribution for a bubble-driven liquid metal flow. The magnetic field considerably modified the global and local properties of the flow field compared to an ordinary bubble plume. In the parameter range considered here we did not find a prior flow suppression, but, in fact, a restructuring of the convective motion. The original axisymmetric flow field became anisotropic with respect to the direction of the magnetic field lines. An upwards flow dominated in a plane parallel to the magnetic field, whereas the recirculating motion was enforced in the orthogonal plane. Contrary to usual expectations, the application of a moderate magnetic field (100 < Ha < 400, 1 less than or similar to N less than or similar to 10) destabilizes the global flow and gives rise to transient, oscillating flow patterns with predominant frequencies.
机译:已知静磁场适合于衰减导电液体中的平均流量和湍流运动。在本文中,考虑了水平磁场对气泡驱动的液态金属流动的影响,进行了实验研究。研究集中在由气体注入产生的中央射流驱动的液态金属塔内的液体循环。流体容器具有圆形横截面和电绝缘壁。施加低的气体流速,导致分离的气泡羽流在围绕气缸轴线的点内上升。该轴对称结构暴露于水平磁场。我们提供详细的实验数据,描述速度场的空间和时间结构。使用超声多普勒测速仪(UDV)分别进行了垂直和径向速度分量的测量,这首次实现了气泡驱动液态金属流的液体速度分布的完整映射。与普通的气泡羽流相比,磁场极大地改变了流场的整体和局部特性。在此处考虑的参数范围内,我们没有找到先验的流量抑制,但实际上是对流运动的重组。原始的轴对称流场相对于磁力线的方向变得各向异性。向上的流动在平行于磁场的平面中占主导地位,而再循环运动则在正交平面中被强制执行。与通常的预期相反,施加适度的磁场(100

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