Viscous Damping Performance Analysis and Prediction of Axisymmetric Cylindrical Oscillating Buoys With Different Geometrical Configurations

IF 0.7 4区 工程技术 Q4 ENGINEERING, OCEAN
Xiaoguo Zhou, Chengyao Sun, Jianhua Wang, Wentian Zhang, Wanchao Zhang
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引用次数: 0

Abstract

Abstract With the intensification of the world's energy demand, clean and efficient marine energy has received more attention, and energy conversion devices are particularly important. As an important part of the oscillating wave energy conversion device, the hydrodynamic characteristics of cylindrical absorbers have a great impacton wave energy conversion efficiency. When cylindrical buoys with different bottom configurations heave under the action of waves, the oscillating motion and flow field become more complex. At present, potential flow theory is usually used to predict the motion response of cylindrical buoys in waves. Although the calculation speed is fast, there will be large errors due to the lack of consideration of the effect of fluid viscosity. To explore this error range, a three-dimensional numerical wave pool is established based on the viscous fluid theory and STARCCM+ software to study the response of buoy and wave coupling action considering the viscous effect. At the same time, based upon the potential flow theory, the analytical solution of the cylindrical buoy oscillating in waves is established. Combined with the computational fluid dynamics numerical simulation results, the oscillation laws of the buoys with different bottom configurations in waves with different periods are compared, and the effects of viscosity on the buoys' motion are also explored. According to the calculation results of floating buoy movement under viscous and nonviscous fluid, the statistical correction algorithmis adopted to obtain the viscous hydrodynamic correction algorithm of floating buoy movement based on the potential flow theory, and the feasibility is verified by viscous numerical simulation under other wave periods.
不同几何构型轴对称圆柱振荡浮标粘性阻尼性能分析与预测
随着世界能源需求的加剧,清洁高效的海洋能源受到越来越多的关注,能源转换装置显得尤为重要。圆柱形吸波器作为振荡波能转换装置的重要组成部分,其水动力特性对波能转换效率有很大的影响。不同底部构型的圆柱浮标在波浪作用下的振荡运动和流场变得更加复杂。目前,通常采用势流理论来预测圆柱浮标在波浪中的运动响应。虽然计算速度快,但由于没有考虑流体粘度的影响,会有较大的误差。为探索该误差范围,基于粘性流体理论,利用STARCCM+软件建立三维数值波池,研究考虑粘性效应的浮筒与波浪耦合作用的响应。同时,基于势流理论,建立了圆柱浮标在波浪中振荡的解析解。结合计算流体力学数值模拟结果,比较了不同底构型浮标在不同周期波浪中的振荡规律,并探讨了粘度对浮标运动的影响。根据粘性和非粘性流体条件下浮筒运动的计算结果,采用统计校正算法得到了基于势流理论的浮筒运动粘性水动力校正算法,并通过其他波周期下的粘性数值模拟验证了该算法的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Marine Technology Society Journal
Marine Technology Society Journal 工程技术-工程:大洋
CiteScore
1.70
自引率
0.00%
发文量
83
审稿时长
3 months
期刊介绍: The Marine Technology Society Journal is the flagship publication of the Marine Technology Society. It publishes the highest caliber, peer-reviewed papers, six times a year, on subjects of interest to the society: marine technology, ocean science, marine policy, and education.
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