Large Eddy Simulation of Fluid-Elastic Instability in Square Normal Cylinder Array

Author:

Shinde Vilas1,Longatte Elisabeth2,Baj Franck1

Affiliation:

1. IMSIA, Boulevard Gaspard Monge, Paris Saclay University, Palaiseau 91120, France

2. IMSIA, Boulevard Gaspard Monge, Paris Saclay University, Palaiseau 91120, France e-mail:

Abstract

Large eddy simulations (LES) are performed at low Reynolds number (2000–6000) to investigate the dynamic fluid-elastic instability in square normal cylinder array for a single-phase fluid cross flow. The fluid-elastic instability is dominant in the flow normal direction, at least for all water-flow experiments (Price, S., and Paidoussis, M., 1989, “The Flow-Induced Response of a Single Flexible Cylinder in an in-Line Array of Rigid Cylinders,” J. Fluids Struct., 3(1), pp. 61–82). The instability appears even in the case of single moving cylinder in an otherwise fixed-cylinder arrangement resulting in the same critical velocity (Khalifa, A., Weaver, D., and Ziada, S., 2012, “A Single Flexible Tube in a Rigid Array as a Model for Fluidelastic Instability in Tube Bundles,” J. Fluids Struct., 34, pp. 14–32); Khalifa et al. (2013, “Modeling of the Phase Lag Causing Fluidelastic Instability in a Parallel Triangular Tube Array,” J. Fluids Struct., 43, pp. 371–384). Therefore, in the present work, only a central cylinder out of 20 cylinders is allowed to vibrate in the flow normal direction. The square normal (90 deg) array has 5 rows and 3 columns of cylinders with 2 additional side columns of half wall-mounted cylinders. The numerical configuration is a replica of an experimental setup except for the length of cylinders, which is of 4 diameters in numerical setup against about 8 diameters in the experiment facility. The single-phase fluid is water. The standard Smagorinsky turbulence model is used for the subgrid scale eddy viscosity modeling. The numerical results are analyzed and compared to the experimental results for a range of flow velocities in the vicinity of the instability. Moreover, instantaneous pressure and fluid-force profiles on the cylinder surface are extracted from the LES calculations in order to better understand the dynamic fluid-elastic instability.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Safety, Risk, Reliability and Quality

Reference29 articles.

1. Connors, H., 1970, “Fluidelastic Vibration of Tube Arrays Excited by Cross Flow,” ASME Paper No. 42--56.

2. Fluid Elastic Whirling of a Tube Row;ASME J. Pressure Vessel Technol.,1974

3. Fluid Elastic Vibration of Tube Array in Cross Flow;J. Sound Vib.,1981

4. Instability Mechanisms and Stability Criteria of a Group of Circular Cylinders Subjected to Cross-Flow—Part I: Theory;J. Vib., Acoust., Stress, Reliab. Des.,1983

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