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Experimentally-Tuned Finite Element Model of Flow- Induced Vibrations in a Square Tube Bundle Subjected to Cross- Flow

机译:横流作用下方管束中流致振动的实验调整有限元模型

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It has been recognized that modeling of the complex dynamics of fluidelastic forces, that give rise to vibrations of tube bundles, requires a comprehensive dynamic model of high fidelity based on experimental insight. Accordingly, the prediction of the flow-induced vibration due to unsteady cross- flow can be greatly aided by semi-analytical models, in which some coefficients are determined experimentally. In this paper, the elastodynamic model of the tube array is formulated using the finite element approach, wherein each tube is modeled by a set of finite tube-elements. The interaction between tubes in the bundle is represented by fluidelastic coupling forces, which are defined in terms of the multi-degree-of-freedom elastodynamic behavior of each tube in the bundle. A laboratory test rig with an instrumented square bundle is constructed to measure the fluidelastic coefficients used to tune the developed dynamic model. The test rig admits two different test bundles; namely the inline-square and 45° rotated-square tube arrays. Measurements were conducted to identify the flow-induced dynamic coefficients. The developed scheme was utilized in predicting the onset of flow-induced vibrations, and results were examined in the light of TEMA predictions. The comparison demonstrated that TEMA guidelines are more conservative in the two configurations considered.
机译:已经认识到,在实验洞察力的情况下,导致管束的振动的复杂动力学的建模需要全面的高保真动态模型。因此,通过半分析模型可以大大辅助由于不稳定的交叉引起的流动诱导的振动的预测,其中一些系数在实验上确定。在本文中,使用有限元方法配制管阵列的弹性动力学模型,其中每个管由一组有限管元件建模。束中的管之间的相互作用由流化耦合力表示,其在束中每个管的多程度自由度弹性动力学行为而定义。构造具有仪表式方形束的实验室试验台,以测量用于调谐所开发的动态模型的流动系数。试验室承认两种不同的测试束;即内联方形和45°旋转方管阵列。进行测量以识别流动诱导的动态系数。开发方案用于预测流动诱导的振动发作,根据TEMA预测检查结果。比较表明,在考虑的两种配置中,Tema指南更保守。

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