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Free-surface flow of liquid oxygen under non-uniform magnetic field

机译:非均匀磁场下液氧的自由表面流动

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The paramagnetic property of oxygen makes it possible to control the two-phase flow at cryogenic temperatures by non-uniform magnetic fields. The free-surface flow of vapor-liquid oxygen in a rectangular channel was numerically studied using the two-dimensional phase field method. The effects of magnetic flux density and inlet velocity on the interface deformation, flow pattern and pressure drop were systematically revealed. The liquid level near the high-magnetic channel center was lifted upward by the inhomogeneous magnetic field. The interface height difference increased almost linearly with the magnetic force. For all inlet velocities, pressure drop under 0.25 T was reduced by 7-9% due to the expanded local cross-sectional area, compared to that without magnetic field. This work demonstrates the effectiveness of employing non-uniform magnetic field to control the free-surface flow of liquid oxygen. This non contact method may be used for promoting the interface renewal, reducing the flow resistance, and improving the flow uniformity in the cryogenic distillation column, which may provide a potential for enhancing the operating efficiency of cryogenic air separation. (C) 2016 Elsevier Ltd. All rights reserved.
机译:氧的顺磁性使得可以通过非均匀磁场控制在低温温度下的两相流。使用二维相场法在数值研究矩形通道中的蒸汽氧的自由表面流动。系统揭示了磁通密度和入口速度对界面变形,流动模式和压降的影响。高磁通道中心附近的液位由不均匀的磁场向上提升。界面高度差与磁力几乎线性增加。对于所有入口速度,由于没有磁场,因此由于膨胀的局部横截面积而减少了0.25吨的压降减少了7-9%。这项工作证明了采用非均匀磁场来控制液氧的自由表面流动的有效性。该非接触方法可用于促进界面更新,降低流动阻力,并改善低温蒸馏塔中的流动均匀性,这可以提供提高低温空气分离的操作效率的可能性。 (c)2016 Elsevier Ltd.保留所有权利。

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