Numerical simulation of Intermittency occurrence during turbulence Collapse

Authors

Keywords:

CFD, Estraticação, Intermitência, LES, Turbulência

Abstract

This study presents the use of Large Eddy Simulations (LES) in the analysis of laminarization in a turbulent planar Couette flow, induced by the application of a constant cooling rate at the surface. The increase in stratification leads to a reduction in turbulence intensity until the flow becomes laminar. During this process, a regime transition is observed in the flow, from a weakly stable layer to a highly stable layer, where intermittency is detected. The consistency of the results is investigated through the assessment of the turbulent kinetic energy of the flow. The results indicate that the mesh used is adequate, capturing approximately 80% of the turbulent kinetic energy, demonstrating the effectiveness of the LES model in representing turbulence collapse. However, the results also show that further refinements are needed near the surfaces. Moreover, the flow regime transition occurs after the absolute peak of heat flux energy at the surface. Following the transition, intermittency is observed until the suppression of all turbulent flow scales, leading to the laminarization of the flow.

Downloads

Download data is not yet available.

Author Biographies

Luis Fernando Camponogara, Universidade Federal do Pampa

Graduated in Mechanical Engineering from the Federal University of Pampa Foundation (UNIPAMPA), Campus Alegrete, (2018). Master in the Postgraduate Program in Engineering (PPEng) at UNIPAMPA.

Lorena Aparecida Nunes Viana, Universidade Federal do Pampa

Master's degree in Engineering with an emphasis on modeling and simulation from the Federal University of Pampa, and a degree in Chemical Engineering from the same university.

Rafael Maroneze, Universiade Federal do Pampa

Graduation at Física Bacharelado from Universidade Federal de Santa Maria (2014), graduation at Formação Pedagógica em Física from Universidade Norte do Paraná (2018), master's at Physics from Universidade Federal de Santa Maria (2016) and doctorate at Physics from Universidade Federal de Santa Maria (2019).

Otavio Costa Acevedo, Universidade de Oklahoma

Bachelor's at Meteorologia from Universidade Federal de Pelotas (1993), master's at Meteorology from Universidade de São Paulo (1995) and doctorate at Atmospheric Sciences from State University of New York (2001).

Felipe Denardin Costa, Universidade Federal do Pampa

He holds a Bachelor's degree in Physics - Teaching Focus from the Federal University of Santa Maria (2007), a Master's degree in Physics from the Federal University of Santa Maria (2009), and a Ph.D. in Physics from the Federal University of Santa Maria (2011), with a sandwich Ph.D. period at Carl von Ossietzky Universität Oldenburg, in Germany.

References

Ansorge, C., Mellado, J. P. (2014). Global intermittency and collapsing turbulence in the stratified planetary boundary layer. Boundary-layer meteorology, 153(1), 89–116.

Bech, K. H., Tillmark, N., Alfredsson, P. H., Andersson, H. I. (1995). An investigation of turbulent plane couette flow at low reynolds numbers. Journal of Fluid Mechanics, 286, 291–325.

Celik, I. B., Cehreli, Z. N., Yavuz, I. (2005). Index of Resolution Quality for Large Eddy Simulations. Journal of Fluids Engineering, 127(5), 949–958.

Donda, J., Van Hooijdonk, I., Moene, A., Jonker, H., van Heijst, G., Clercx, H., van de Wiel, B. (2015). Collapse of turbulence in stably stratified channel flow: a transient phenomenon. Quarterly Journal of the Royal Meteorological Society, 141(691), 2137–2147.

Feraco, F., Marino, R., Pumir, A., Primavera, L., Mininni, P. D., Pouquet, A., Rosenberg, D. (2018). Vertical drafts and mixing in stratified turbulence: Sharp transition with froude number. EPL (Europhysics Letters), 123(4), 44,002.

Freire, L. S. (2022). Large-eddy simulation of the atmospheric boundary layer with nearwall resolved turbulence. Boundary-Layer Meteorology, pp. 1–19.

Holzmann, T. (2016).Mathematics, Numerics, Derivations and OpenFOAM®. Loeben,Germany: Holzmann CFD. Recovered from: https://holzmann-cfd.

Hooijdonk, I. G., Clercx, H. J., Ansorge, C., Moene, A. F., & & Wiel, B. J. (2018). Parametersfor the collapse of turbulence in the stratified plane couette flow.Journal of theAtmospheric Sciences, 75(9):3211–3231.

Hooijdonk, I. G., Donda, J. M., Clercx, H. J., Bosveld, F. C., & & Wiel, B. J. (2014).Shear capacity as prognostic of nocturnal boundary layer regimes.Journal of theAtmospheric Sciences, 72(4):1518–1532.

Mahrt, L., Vickers, D. (2006). Extremely weak mixing in stable conditions. Boundary-layer meteorology, 119(1), 19–39.

Penttinen, O., Yasari, E., Nilsson, H. (2011). A pimplefoam tutorial for channel flow, with respect to different les models. Practice Periodical on Structural Design and Construction, 23(2), 1–23.

Pope, S. B. (2001). Turbulent flows.

Sun, J., Mahrt, L., Banta, R. M., Pichugina, Y. L. (2012). Turbulence regimes and turbulence intermittency in the stable boundary layer during cases-99. Journal of the Atmospheric Sciences, 69(1), 338–351.

Published

2024-12-16

How to Cite

Camponogara, L. F., Viana, L. A. N., Maroneze, R., Acevedo, O. C., & Costa, F. D. (2024). Numerical simulation of Intermittency occurrence during turbulence Collapse. Ciência E Natura, 46(esp. 2). Retrieved from https://periodicos.ufsm.br/cienciaenatura/article/view/87947

Most read articles by the same author(s)

<< < 1 2 3 4 5 6 7 > >>