Influence of Scallops On Windage Loss and Flow Characteristics in Disk-type Gap

Zhuobin Zhao, Qinghua Deng, Jun Li, Zhenping Feng
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Abstract

Windage loss and flow characteristics in a disk-type gap featuring scalloped structures are investigated in this paper. Special attention is paid to the size of the scallops and the associated loss models. The respective losses and scallop effects in the gap are explored with various combinations of depths, quantities, and rotating speeds. The results indicate that scallop structures positively contribute to increased windage losses, accounting for more than 60% of the overall losses. An internal spiral vortex band is formed along the scallop wall, with the scallop depth ratio exerting influences on loss, reaching a maximum of 8.1%. The current scallop loss model overlooks the consideration of the total arc length ratio of scallops to the circumference, presenting a limitation, and the maximum relative deviation from numerical simulation results is observed to be 111.4%. An increase in arc length ratio results in a higher total loss, although the loss per individual scallop is diminished, manifesting in reduced vortices and pressure differences. Furthermore, a modified model is proposed to increase the precision of the current loss model. The maximal relative deviations of 13.8% confirm that the modified model is accepted to predict the windage loss in disk-type gaps with scallops. The conclusions offer valuable insights into the structural design of impellers and high-speed electrical machines with superior efficiency.
扇贝对盘式间隙风蚀和流动特性的影响
本文研究了具有扇形结构的盘式间隙中的风蚀损失和流动特性。本文特别关注扇贝的尺寸和相关损失模型。通过不同的深度、数量和转速组合,探讨了间隙中各自的损失和扇贝效应。结果表明,扇贝结构对增加风蚀损失有积极作用,占总损失的 60% 以上。沿着扇贝壁形成了内部螺旋涡带,扇贝深度比对损耗有影响,最大达到 8.1%。目前的扇贝损耗模型忽略了扇贝总弧长与周长之比,存在局限性,与数值模拟结果的最大相对偏差为 111.4%。弧长比增加会导致总损耗增加,但单个扇贝的损耗会减少,表现为涡流和压力差减小。此外,还提出了一个修改模型,以提高当前损耗模型的精度。13.8% 的最大相对偏差证实,修改后的模型可用于预测带扇贝的盘式间隙的风蚀损失。结论为叶轮和高速电机的结构设计提供了有价值的启示,使其具有更高的效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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