Developing a virtual physical system for vortex-induced vibration studies of a bluff body

IF 11.8 1区 工程技术 Q1 ENGINEERING, MARINE
Haojie Ren , Shixiao Fu , Mengmeng Zhang , Yuwang Xu , Hao Ren
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Abstract

A virtual physical system (VPS) for VIV studies of a bluff body is developed to replace the actual physical systems. It can arbitrarily and accurately control and edit the physical parameters, including mass, damping ratio and spring stiffness, specifically for the mass-spring-damper system. The recursive Duhamel integral method (DIM) with unconditional stability was used for the VPS control system, addressing real-time noise filtering problem and simplifying the system as a single input and single output (SISO) one. Delay compensation and inertial force elimination methods were investigated and proposed to overcome the crucial unwanted damping effects. An experimental facility for VIV model tests by VPS was manufactured, and the bluff body model with a measurement system was specially designed to accurately sense the hydrodynamic force during VPS operation. Systematic verification experiments for parameter editing and control of an actual physical target system were conducted, showing that the VPS can reproduce the equivalent spring-damper-mass system in high fidelity with an accuracy error of less than 5 %. VIV model tests for a bluff body at Reynolds numbers (Re= UD/υ, where U is the flow velocity, D represents the diameter of cylinder model, and υ is the kinematic viscosity coefficient) of 5.7E4 and 2.3E5 were performed using the VPS experimental facility, presenting well-Repeated VIV responses at low Re and unexpected VIV response with a large amplitude of 2.4 D at high Re, which can cause severe fatigue damage for relevant structures. The present VPS will provide promising and powerful experimental tools for VIV studies of a bluff body to reveal the related sensitive parameter effects.
研究钝体涡激振动的虚拟物理系统
为了取代实际的物理系统,开发了一个用于钝体VIV研究的虚拟物理系统(VPS)。它可以任意精确地控制和编辑质量、阻尼比和弹簧刚度等物理参数,特别是针对质量-弹簧-阻尼器系统。将具有无条件稳定性的递归Duhamel积分法(DIM)用于VPS控制系统,解决了实时噪声滤波问题,并将系统简化为单输入单输出(SISO)系统。研究并提出了延迟补偿和惯性力消除方法来克服关键的有害阻尼效应。制作了一套用于VPS进行涡动模型测试的实验装置,并专门设计了带测量系统的钝体模型,以准确地感知VPS运行时的水动力。对实际物理目标系统进行了参数编辑和控制的系统验证实验,结果表明,VPS可以高保真地再现等效弹簧-阻尼器-质量系统,精度误差小于5%。在VPS实验设备上,对雷诺数(Re= UD/υ,其中U为流速,D为圆柱模型直径,υ为运动黏度系数)为5.7E4和2.3E5的钝体进行了涡激振动模型试验,在低Re下表现出良好的重复涡激振动响应,在高Re下表现出幅度达2.4 D的意外涡激振动响应,对相关结构造成严重的疲劳损伤。该VPS将为钝体的涡激振动研究提供强有力的实验工具,以揭示相关的敏感参数效应。
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来源期刊
CiteScore
11.50
自引率
19.70%
发文量
224
审稿时长
29 days
期刊介绍: The Journal of Ocean Engineering and Science (JOES) serves as a platform for disseminating original research and advancements in the realm of ocean engineering and science. JOES encourages the submission of papers covering various aspects of ocean engineering and science.
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