流体动力和振动特性的测量以验证流体激励结构的数值计算

IF 0.2 Q4 INSTRUMENTS & INSTRUMENTATION
A. Budnikov, E. Shmelev, D. Kulikov, A. V. Loginov, S. Dmitriev, N. Pribaturin, P. Lobanov, A. Suvorov, A. V. Stulenkov
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引用次数: 4

摘要

结构在非定常水动力作用下的振动会对结构的耐久性和断裂寿命产生不利影响。在CFD和振动计算的帮助下,减少水动力的不利影响目前是可能的。然而,为了充分描述相关过程,应该使用专门针对水力振动问题的计算模型和方法。为了证明和验证这些方法,建立了一个实验模型,并进行了一系列的水流结构激励试验。该模型由两个圆柱体依次安装在水流交叉处。在测试中测量了振动水平、压力和速度波动作为流速的函数。由于测试模型构建相对简单,可用于交叉验证和实验不确定度量化,因此可以应用不同的非侵入式测量技术。基于同步测量数据,分析了流动分离频率(或其频谱分量)与圆柱体特征频率的同步效应引起的流固耦合作用。所进行的试验提供了有关悬挑圆柱的流动动态特性和振动参数的信息。实验结果用于确定CFD计算流体动力力所需的精度,并验证了单向和双向链接的流体激励频率计算方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Measurements of the Hydrodynamic and Vibrational Characteristics to Validate Numerical Calculations of the Structure Excitation by Fluid Flow
Structure vibration under the influence of unsteady hydrodynamic forces caused by the flow around their surfaces can adversely affect durability and rupture life. Reducing the adverse effects of hydrodynamic forces is currently possible with the help of linked CFD and vibration calculations. However, for an adequate description of the associated processes one should use calculation models and approaches specific to the hydro-vibration problem. To justify and validate such approaches, an experimental model was developed and a series of structure excitation tests in water flow was carried out.The model comprises two cylinders installed sequentially in water crossflow. Vibration levels, pressure and velocity fluctuations were measured in the tests as a functions of the flow velocity. The application of different non-intrusive measurement techniques was possible due to relatively simple test model construction which may be used for cross-validation and experimental uncertainty quantification.Flow-structure interaction, caused by synchronization effect of the flow separation frequency (or it’s spectral components) and eigenfrequency of cylinder, was analyzed based on simultaneously measured data. The tests performed gave the information about dynamical characteristics of the flow and vibration parameters of cantilevered cylinders. The experimental results are used for identification of required accuracy of hydrodynamic forces calculation by CFD and validation of oneand two-way linked methods for flow excitation frequency calculation.
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来源期刊
Devices and Methods of Measurements
Devices and Methods of Measurements INSTRUMENTS & INSTRUMENTATION-
自引率
25.00%
发文量
18
审稿时长
8 weeks
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