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Evaluation of fluidelastic forces in axial flow with simplified computational fluid dynamics

机译:简化计算流体动力学在轴向流动中的排放力评价

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The nuclear industry is demanding flow cost methods to prevent flow induced vibrations, which are a major cause of wear and damage of components such as core control bars.An original model to compute the fluidelastic forces in axial flow is introduced in order to predict flutter. To carry on the calculation, a modal shape displacement is assumed and the Navier-Stokes equations are linearized, simplified and solved assuming the superposition of two independent velocity fields.·V{sub}0{top}→(M) is the steady-state flow along the fixed body, computed with a turbulent k-ε model;·u{sup}→(M,t) is the potential flow associated with the vibration in "still" fluid.The case of an uniform annulus is treated first, then a step variation is considered and finally the approach is extended to any parallel flow configuration. This method enables to compute the added mass, damping and stiffness coefficients and thestructure in-flow eigenvectors without new algorithm.Comparisons with the works of Poidoussis (1973), Gibert (1988), Perotin and Granger (1992) are presented here. Some rigid body laboratory tests are discussed and a satisfactory agreement between the predicted damping coefficient, the flutter occurrenceand the experimental results is achieved.
机译:核工业要求苛刻的流量成本方法,以防止流动诱导的振动,这是核心控制棒等部件磨损和损坏的主要原因。作为计算轴向流动的原始模型以预测颤动。为了进行计算,假设模态形状位移,并且在两个独立速度字段的叠加,导线化,简化和解决了Navier-Stokes方程。·v {sub} 0 {top}→(m)是稳定的沿固定体的状态流,用湍流K-ε模型计算; u {sup}→(m,t)是与“静止”流体中的振动相关的电位流动。首先处理均匀环的情况,然后考虑步长变化,最后将方法扩展到任何并行流量配置。这种方法可以在这里提供没有新的算法的额外质量,阻尼和刚度系数,并且在没有新的算法的情况下,没有新的算法.MARISONS。这里介绍了吉尔特(1988),Perotin和Granger(1992)。讨论了一些刚体实验室测试,并且在预测的阻尼系数之间进行了令人满意的一致性,扑发出现实验结果。

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