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首页> 外文期刊>Journal of Applied Physics >Effects of Boundary Layers upon Current Distribution and Internal Resistance in Segmented Magnetohydrodynamic Channels
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Effects of Boundary Layers upon Current Distribution and Internal Resistance in Segmented Magnetohydrodynamic Channels

机译:边界层对分段磁流体动力通道电流分布和内阻的影响

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摘要

The effects of nonuniform properties of an equilibrium plasma in a segmented magnetohydrodynamic generator are investigated. The current distribution is distorted more for laminar flow than for turbulent flow. The shape of the current streamlines depends strongly on wall temperature, free stream Mach number, and boundary layer thickness. For fine segmentation ratio (s/h≈0.1), the current densities are uniform at distances 10% of the channel height away from the walls. Since the two‐dimensional effects are confined to this narrow region, the changes of the current distribution outside this region are due to changes in flow properties. The current distribution on the electrode is most sensitive to the electrode temperature. For hot walls, current shorting between adjacent electrodes is important and is significantly affected by the boundary layer type and free stream Mach number. Boundary layer thickness is of minor importance. Shorting decreases as the wall temperature decreases and eventually disappears when the walls are sufficiently cold. The internal resistance of the channel is within 70% of its uniform property value for hot wall (2700°K) conditions for both laminar and turbulent flows. In the cold wall case (1500°K), the internal resistance increases about 3 times over its constant property value for turbulent flow but as high as 350 times for laminar flow. For cold‐wall laminar flow, the internal resistance increases almost linearly with boundary layer thickness. The comparison with experiments is favorable.
机译:研究了分段磁流体动力发生器中平衡等离子体的非均匀特性的影响。层流的电流分布比湍流的失真更大。当前流线的形状在很大程度上取决于壁温,自由流马赫数和边界层厚度。对于精细的分割比(s /h≈0.1),电流密度在距壁的通道高度的10%处是均匀的。由于二维效应仅限于该狭窄区域,因此该区域外部的电流分布变化是由于流动特性的变化所致。电极上的电流分布对电极温度最敏感。对于热壁,相邻电极之间的电流短路很重要,并且受边界层类型和自由流马赫数的影响很大。边界层的厚度不太重要。短路随着壁温的降低而减小,并在壁温足够低时最终消失。对于层流和湍流,通道的内阻均在热壁(2700°K)条件下的均匀特性值的70%以内。在冷壁情况下(1500°K),内部阻力相对于湍流的恒定特性值增加了约3倍,但对于层流则高达350倍。对于冷壁层流,内部电阻几乎随边界层厚度线性增加。与实验的比较是有利的。

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  • 来源
    《Journal of Applied Physics》 |1971年第7期|共12页
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  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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