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The Role of Secondary Flows and Separation in Convective Heat Transfer in a Rotating Radial Vane Brake Disk

机译:二次流动和分离在旋转径向叶片制动盘中的对流传热中的作用

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摘要

This study presents, for the first time, distributions of local internal temperature and convective heat transfer in a rotating radial vane brake disk and explains mechanisms in conjunction with secondary flows and flow separation within its ventilated coolant passages. In particular, variations of radial, circumferential (vane-to-vane), and axial (inboard-to-outboard) heat transfer on internal end-wall surfaces, and their alteration due to varying number of radial vanes and rotating speed are experimentally detailed. It has been demonstrated that conventional ventilated radial brake disks where the air inflow is drawn from the inboard face are likely to suffer substantial axial variations of temperature and heat transfer between the inboard and outboard disks, which possibly exacerbates thermal distortion (i.e., coning). Further, for a typical number of vanes (i.e., 36 vanes) used on automobiles, internal thermal distributions are highly nonuniform. However, the thermal end-wall uniformity improves considerably as the number of vanes is increased to say 72 vanes. Specifically, as the number of vanes is increased, secondary flow mixing enhances overall convective heat transfer and improves thermal uniformity. In contrast, separation causes large end-wall thermal nonuniformities in radial and circumferential distributions between the pressure side and the suction side of radial vanes. This effect nonetheless also decreases as the number of vanes is increased.
机译:本研究首次呈现局部内部温度和对流传热在旋转的径向叶片制动盘中的分布,并在其通风冷却剂通道内结合二次流动和流动分离结合使用的机制。特别地,在内壁表面上的径向,圆周(叶片)和轴向(内侧到外侧)传热的变化以及由于变化数量的径向叶片和旋转速度而导致的改变是实验详细的。已经证明,传统的通风径向制动磁盘,其中空气流入从内侧面吸收的可能性遭受舷内和外侧盘之间的温度和热传递的显着轴向变化,这可能加剧了热变形(即,锥形)。此外,对于汽车上使用的典型数量的叶片(即36叶片),内部热分布非常不均匀。然而,随着叶片的数量增加到72叶片,热端壁均匀性显着提高。具体地,随着叶片的数量增加,二次流动混合增强了总体对流热传递并提高了热均匀性。相反,分离使得在压力侧和径向叶片的吸入侧之间的径向和周向分布中的大末端壁热不均匀。尽管如此,随着叶片的数量增加,这种效果也降低了。

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  • 来源
    《Journal of Heat Transfer》 |2021年第8期|081801.1-081801.12|共12页
  • 作者单位

    School of Mechanical Industrial & Aeronautical Engineering University of the Witwatersrand Johannesburg 2000 South Africa;

    School of Mechanical Industrial & Aeronautical Engineering University of the Witwatersrand Johannesburg 2000 South Africa;

    State Key Laboratory of Mechanics and Control of Mechanical Structures MIIT Key Laboratory of Multifunctional Materials and Structures Nanjing University of Aeronautics and Astronautics Nanjing Jiangsu Province 210016 China State Key Laboratory for Strength and Vibration of Mechanical Structures Xi'an Jiaotong University Xi'an 710049 China;

    Department of Mechanical Engineering Kunsan National University Kunsan Jeollabuk-do 54150 South Korea;

    State Key Laboratory of Mechanics and Control of Mechanical Structures Nanjing University of Aeronautics and Astronautics Nanjing Jiangsu Province 210016 China State Key Laboratory for Strength and Vibration of Mechanical Structures Xi'an Jiaotong University Xi'an 710049 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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