The role of flow angle in mixed convection and vortex-induced vibration of a thermally controlled elastic cylinder

IF 4 3区 工程技术 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS International Journal of Numerical Methods for Heat & Fluid Flow Pub Date : 2025-01-23 DOI:10.1108/hff-08-2024-0587
Mostafa Esmaeili, Hossein Fakhri Vayqan, Amir Hossein Rabiee
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Abstract

Purpose

This study aims to investigate the effects of thermal buoyancy and flow incidence angles on mixed convection heat transfer and vortex-induced vibration (VIV) of an elastically mounted circular cylinder. The focus is on understanding how varying these parameters influences the vibration amplitudes in both the x and y directions and the overall heat transfer performance.

Design/methodology/approach

The research involves a numerical simulation of thermal fluid-structure interactions by integrating rigid-body motion equations with heat and fluid flow solvers. The cylinder operates at a lower temperature than the mainstream flow, and flow incidence angles range from 0° (opposing gravity) to 90° (perpendicular to gravity). The methodology is validated by comparing the results with established data on VIV for a cylinder vibrating in one direction under thermal buoyancy effects.

Findings

The study reveals that, without buoyancy (Ri = 0), increasing the flow angle from 0° to 90° decreases the vibration amplitude along the x-direction (Ax) while increasing it along the y-direction (Ay) across various reduced velocities (Ur). When buoyancy effects are introduced (Ri = −1), Ax peaks at specific Ur values depending on the flow angle, with significant variations observed. The maximum increase in Ax at Ri = −1 is over 15 times at Ur = 9 for a 0° angle, and Ay shows a more than 10-fold increase at Ur = 8 for a 30° angle. Additionally, adjusting the flow angle results in up to an 8% increase in the mean Nusselt number at Ri = −1.

Originality/value

This research provides novel insights into the combined effects of flow incidence angles and thermal buoyancy on VIV and heat transfer in an elastically mounted cylinder.

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流动角在热控弹性圆柱混合对流和涡激振动中的作用
目的研究热浮力和气流入射角对弹性安装圆柱混合对流换热和涡激振动的影响。重点是了解改变这些参数如何影响x和y方向上的振动幅度以及整体传热性能。设计/方法/途径本研究通过将刚体运动方程与热和流体流动求解器相结合,对热-流-结构相互作用进行数值模拟。气缸工作温度低于主流气流,气流入射角范围从0°(反重力)到90°(垂直重力)。通过与已有的热浮力作用下圆柱体单向振动的涡激振动数据进行比较,验证了该方法的有效性。研究结果表明,在无浮力(Ri = 0)的情况下,当气流角从0°增加到90°时,在不同的减速速度(Ur)下,沿x方向的振动幅值(Ax)减小,沿y方向的振动幅值(Ay)增大。当引入浮力效应(Ri = - 1)时,根据流动角的不同,Ax在特定的Ur值处达到峰值,并观察到显著的变化。在Ri = - 1时,当角度为0°时,在Ur = 9时,Ax的最大增幅超过15倍;当角度为30°时,在Ur = 8时,Ay的增幅超过10倍。此外,调整气流角可使Ri =−1时的平均努塞尔数增加8%。独创性/价值:本研究为流动入射角和热浮力对弹性安装圆柱体中涡激振动和传热的综合影响提供了新的见解。
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来源期刊
CiteScore
9.50
自引率
11.90%
发文量
100
审稿时长
6-12 weeks
期刊介绍: The main objective of this international journal is to provide applied mathematicians, engineers and scientists engaged in computer-aided design and research in computational heat transfer and fluid dynamics, whether in academic institutions of industry, with timely and accessible information on the development, refinement and application of computer-based numerical techniques for solving problems in heat and fluid flow. - See more at: http://emeraldgrouppublishing.com/products/journals/journals.htm?id=hff#sthash.Kf80GRt8.dpuf
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