Aerodynamic characterisation of isolated cycling wheels

IF 2.8 2区 工程技术 Q2 ENGINEERING, MECHANICAL
Jiaqi Mao, Peng Zhou, Wei Yi, Xin Zhang
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引用次数: 0

Abstract

This study evaluated the aerodynamic performance of isolated cycling wheels, including a 5-spoke wheel and a disc wheel, considering the effects of freestream velocity, wheel type, wheel rotation, and crosswinds. For the first time, the rotational torque of cycling wheels was characterised using a shaft-mounted torque transducer. Force and wake velocity measurements were conducted in a wind tunnel between 10m/s and 22m/s, where aerodynamics plays a dominant role in deciding overall resistance. The experimental results show that the wheel rotation has an opposite influence on the axial force of different wheels. A wake analysis effectively captured the influence of freestream velocity, wheel type, and wheel rotation on axial force. Results reveal that multiple vortical regions are formed in the lower wake of the rotating wheels, whereas the vortices in the upper wake are suppressed due to wheel rotation. When crosswinds are present, the disc wheel exhibits thirty times larger steering torque and generates much stronger vortical structures. This study offers valuable insights into the wake behaviour and drag generation around cycling wheels.
隔离循环车轮的空气动力学特性
考虑到自由流速度、车轮类型、车轮旋转和侧风的影响,本研究评估了隔离式自行车车轮的气动性能,包括五辐车轮和盘式车轮。首次使用轴装式扭矩传感器表征了自行车车轮的旋转扭矩。在10m/s到22m/s的风洞中进行了力和尾迹速度的测量,其中空气动力学在决定总阻力方面起主导作用。实验结果表明,车轮转动对不同车轮轴向力的影响相反。尾迹分析有效地捕获了自由流速度、车轮类型和车轮旋转对轴向力的影响。结果表明,在旋转的车轮下尾迹形成多个涡区,而在旋转的车轮上尾迹的涡被抑制。当侧风存在时,圆盘轮显示出30倍大的转向扭矩,并产生更强的旋涡结构。这项研究提供了有价值的见解尾流行为和阻力产生周围的车轮。
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来源期刊
Experimental Thermal and Fluid Science
Experimental Thermal and Fluid Science 工程技术-工程:机械
CiteScore
6.70
自引率
3.10%
发文量
159
审稿时长
34 days
期刊介绍: Experimental Thermal and Fluid Science provides a forum for research emphasizing experimental work that enhances fundamental understanding of heat transfer, thermodynamics, and fluid mechanics. In addition to the principal areas of research, the journal covers research results in related fields, including combined heat and mass transfer, flows with phase transition, micro- and nano-scale systems, multiphase flow, combustion, radiative transfer, porous media, cryogenics, turbulence, and novel experimental techniques.
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