Design and Flow Analysis of a Rim-Driven Hub-Less Axial Flow Fan

Hanqing Yang, Yijun Wang, Jingyuan Sun, Bangyi Wang, Youwei He, Peng Song
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引用次数: 1

Abstract

Rim-driven hub-less fans have newly emerged as the most compact type of axial flow fans, which permits flexible configuration arrangements, large relative flow area and low-noise level operation. However, previous publications on rim-driven axial flow fans are rarely found in the open literature, and the flow mechanism and design principle of such promising fans haven’t yet been well-understood and established. This paper has been focused on a preliminary study of the rim-driven axial flow fan design and flow mechanism. A design method of the rim-driven fans is proposed on the basis of the isolated airfoil scheme and the variable circulation rule. It is further incorporated into a FORTRAN code and suited for designing the rim-driven hub-less fans of low-pressure levels. For validation purpose, a conventional hub-type fan is redesigned with the developed method and its flow behavior and overall performance are investigated numerically. A parametric study on the designed fan is further conducted respectively for the tangential velocity difference at mean span, circulation exponent and sweep angle and their influence on the fan flow characteristics and overall performance are explored and highlighted. On such a basis, the developed design method for the rim-driven axial flow fan is further improved. In comparison with the conventionally designed fan at identical rotating speed, significant comprehensive gains are arising from the redesigned fan of hub-less configuration: the overall pressure rise and static pressure efficiency is enhanced respectively by 6.2% and 11.5%, whereas the diameter of the fan is reduced by 12.5% simultaneously. It is demonstrated that the rim-driven hub-less configuration is promising for the enhancing the fan overall performance with even reduced dimensions.
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轮辋驱动无轮毂轴流风机的设计与流动分析
轮辋驱动的无轴流风机是最近出现的最紧凑的轴流风机类型,它允许灵活的配置安排,大的相对流通面积和低噪音水平运行。然而,之前关于轮辋驱动轴流风机的公开文献很少,这种有发展前景的风机的流动机理和设计原理还没有得到很好的理解和建立。本文主要对轮缘驱动轴流风机的设计和流动机理进行了初步的研究。提出了一种基于隔离翼型方案和变循环规律的轮辋驱动风扇设计方法。它被进一步纳入FORTRAN代码和适合设计的轮辋驱动的低压水平无轮毂风机。为了验证该方法的有效性,对传统轮毂风机进行了重新设计,并对其流动特性和整体性能进行了数值研究。进一步对所设计的风机分别进行了平均跨度切向速度差、循环指数和掠角的参数化研究,探讨并强调了它们对风机流动特性和整体性能的影响。在此基础上,进一步完善了已有的轮缘驱动轴流风机的设计方法。在相同转速下,与常规设计的风机相比,无轮毂结构的风机综合效益显著,总压升和静压效率分别提高了6.2%和11.5%,风机直径同时减小了12.5%。结果表明,轮辋驱动的无轮毂结构可以在减小尺寸的情况下提高风机的整体性能。
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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