首页> 外文会议>ASME(American Society of Mechanical Engineers) Pressure Vessels and Piping Conference 2007 >MODELING OF FLUIDELASTIC INSTABILITY FORCES IN FULLY FLEXIBLE TUBE ARRAYS
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MODELING OF FLUIDELASTIC INSTABILITY FORCES IN FULLY FLEXIBLE TUBE ARRAYS

机译:柔性管阵列中的流体弹塑性不稳定力建模

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Fluidelastic instability remains the most devastating phenomenon in tube bundles subjected to cross-flow. Models have been developed to estimate the threshold of instability. Moreover, several time-domain models of fluidelastic instability have been developed to determine tube/support interaction parameters of tubes with loose supports. The present work deals with time domain modeling of fluid-elastic instability forces in a fully flexible tube array subjected to cross-flow. The model is based on the flow redistribution theory proposed initially by Lever and Weaver [1]. The proposed model utilizes fewer input parameters and can model various tube bundle geometries with any pitch-to-diameter ratio. Finite element method is used for solving the system response. The flow field inside the tube array is discretized into flow subdomains, each of which is surrounded by 4 tubes. The perturbation in the flow field, within each subdomain, is obtained by superimposing the effects of neighboring tube motions. The model has been applied to assess the response of a single flexible tube as well as multiple flexible tubes. It is shown that the single flexible model overestimates the stability threshold compared to the multiple flexible tube counterpart, especially at high mass-damping parameters. The results show a good agreement between the predicted and the experimental results. The proposed model does not assume any predetermined tube response or any tube motion pattern.
机译:在经受横流作用的管束中,流体弹性不稳定性仍然是破坏力最大的现象。已经开发了模型来估计不稳定的阈值。而且,已经开发了数种时域的流体弹性不稳定性模型来确定具有松散支撑的管的管/支撑相互作用参数。目前的工作涉及时域建模的流体弹性不稳定力在全柔性管阵列中受到横流的影响。该模型基于Lever和Weaver [1]最初提出的流量重新分配理论。所提出的模型利用较少的输入参数,并且可以以任何螺距与直径之比对各种管束几何形状进行建模。有限元法用于求解系统响应。管阵列内部的流场被离散为多个流子域,每个子域都被4个管包围。通过叠加相邻管运动的影响,可以获得每个子域内流场中的扰动。该模型已用于评估单个软管和多个软管的响应。结果表明,与多个挠性管对应物相比,单个挠性模型高估了稳定性阈值,尤其是在高质量阻尼参数下。结果表明,预测结果与实验结果吻合良好。提出的模型不假定任何预定的管响应或任何管运动模式。

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