Modelling of Flow-Induced Vibration of Bluff Bodies: A Comprehensive Survey and Future Prospects

现象学(哲学) 雷诺平均Navier-Stokes方程 虚张声势 计算流体力学 大涡模拟 振动 雷诺数 计算机科学 实验数据 湍流 工程类 机械 航空航天工程 物理 数学 哲学 认识论 量子力学 统计
作者
Ying Wu,Zhi Cheng,Ryley McConkey,Fue‐Sang Lien,Eugene Yee
出处
期刊:Energies [Multidisciplinary Digital Publishing Institute]
卷期号:15 (22): 8719-8719 被引量:34
标识
DOI:10.3390/en15228719
摘要

A comprehensive review of modelling techniques for the flow-induced vibration (FIV) of bluff bodies is presented. This phenomenology involves bidirectional fluid–structure interaction (FSI) coupled with non-linear dynamics. In addition to experimental investigations of this phenomenon in wind tunnels and water channels, a number of modelling methodologies have become important in the study of various aspects of the FIV response of bluff bodies. This paper reviews three different approaches for the modelling of FIV phenomenology. Firstly, we consider the mathematical (semi-analytical) modelling of various types of FIV responses: namely, vortex-induced vibration (VIV), galloping, and combined VIV-galloping. Secondly, the conventional numerical modelling of FIV phenomenology involving various computational fluid dynamics (CFD) methodologies is described, namely: direct numerical simulation (DNS), large-eddy simulation (LES), detached-eddy simulation (DES), and Reynolds-averaged Navier–Stokes (RANS) modelling. Emergent machine learning (ML) approaches based on the data-driven methods to model FIV phenomenology are also reviewed (e.g., reduced-order modelling and application of deep neural networks). Following on from this survey of different modelling approaches to address the FIV problem, the application of these approaches to a fluid energy harvesting problem is described in order to highlight these various modelling techniques for the prediction of FIV phenomenon for this problem. Finally, the critical challenges and future directions for conventional and data-driven approaches are discussed. So, in summary, we review the key prevailing trends in the modelling and prediction of the full spectrum of FIV phenomena (e.g., VIV, galloping, VIV-galloping), provide a discussion of the current state of the field, present the current capabilities and limitations and recommend future work to address these limitations (knowledge gaps).
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