Experimental Investigation of Air Bubble Curtain Effects on Water Wave Field

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This paper studies the effects of an air bubble curtain on surface water waves. Water particle velocities and free surface elevations were measured simultaneously at two cross-shore locations downstream of the air bubble curtain. Measurements were carried out for regular waves using different air bubble curtain configurations. Free surface elevations were measured using resistive gauges and the instantaneous velocities were acquired using an Acoustic Doppler Velocimeter (ADV). The characteristics of the free surface elevation time series, velocity field and turbulence are analyzed and discussed. The free surface elevation was found to be attenuated by the air bubble curtains. The phase averaged velocity profiles also depict the effect of the air bubbles in the flow field by generating milder longitudinal velocities (u) and by increasing the transverse component of the velocity (w). The increase in the turbulence intensity and the different energy spectrum produced by the air bubble curtain is also observed. The experimental results indicate that the thickness of the air bubble curtain and the total air flow rate affects the wave field.

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81-99

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April 2022

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[1] H. Chanson, Air bubble entrainment in free surface turbulent shear flows, Academic Press, (2002).

DOI: 10.1016/b978-012168110-4/50006-0

Google Scholar

[2] H. Chanson, Hydraulics of aerated flows: qui pro quo?, J. Hydr. Res., 51(3), 223-243, J. Hydraulic Research, vol. 51, no. 3, p.223–243, (2013).

DOI: 10.1080/00221686.2013.795917

Google Scholar

[3] H. Chanson, S. Aoki, and A. Hoque, Scaling Bubble Entrainment And Dispersion In Vertical Circular Plunging Jet Flows: Freshwater Versus Seawater, in Proc. 5th Intl Conf. On Hydrodynamics ICHD2002, (2002).

DOI: 10.2112/03-0112.1

Google Scholar

[4] A. Hoque, Studies of water level rise by entrained air in the surf zone, Exp. Therm. Fluid Sci., vol. 32, no. 4, p.973–979, Feb. 2008,.

DOI: 10.1016/j.expthermflusci.2007.11.003

Google Scholar

[5] A. Hoque and S. Aoki, Air entrainment and associated energy dissipation in steady and unsteady plunging jets at free surface, Appl. Ocean Res., vol. 30, no. 1, p.37–45, Feb. 2008,.

DOI: 10.1016/j.apor.2008.03.004

Google Scholar

[6] K. Horikawa and C.-T. Kuo, A study on wave transformation inside surf zone, Proc. 10th Int. Conf. Coast. Eng. ASCE, vol. Vol. 1, p.217–233, (1966).

DOI: 10.9753/icce.v10.14

Google Scholar

[7] D. T. Cox and S. Shin, Laboratory Measurements of Void Fraction and Turbulence in the Bore Region of Surf Zone Waves, J. Eng. Mech., vol. 129, p.1197–1205, 2003,.

DOI: 10.1061/(asce)0733-9399(2003)129:10(1197)

Google Scholar

[8] N. Mori and S. Kakuno, Aeration and bubble measurements of coastal breaking waves, Fluid Dyn. Res., vol. 40, no. 7–8, p.616–626, Jul. 2008,.

DOI: 10.1016/j.fluiddyn.2007.12.013

Google Scholar

[9] C. E. Blenkinsopp and J. R. Chaplin, Void fraction measurements and scale effects in breaking waves in freshwater and seawater, Coast. Eng., vol. 58, no. 5, p.417–428, May 2011,.

DOI: 10.1016/j.coastaleng.2010.12.006

Google Scholar

[10] V. Dugué, K. Blanckaert, Q. Chen, and A. J. Schleiss, Influencing flow patterns and bed morphology in open channels and rivers by means of an air-bubble screen, J. Hydraul. Eng., vol. 141, no. 2, p.1–13, 2015,.

DOI: 10.1061/(asce)hy.1943-7900.0000946

Google Scholar

[11] Information on https://canadianpond.ca/air-bubble-curtains-bubble-tubing/.

Google Scholar

[12] U. S. A. Corps and O. F. Engineers, Sensory Deterrent Systems, no. April, p.1–8, (2012).

Google Scholar

[13] Information on https://www.sintef.no/en/latest-news/fighting-oil-spills-with-air-bubbles-/.

Google Scholar

[14] Information on https://www.diversifiedpondsupplies.com/bubble-tubing-tm/bubble-curtain.

Google Scholar

[15] Information on https://flkeysaeration.com/bubble-curtains/.

Google Scholar

[16] Information on https://thegreatbubblebarrier.com/en/.

Google Scholar

[17] M. Brito, R. M. L. Ferreira, L. Teixeira, M. G. Neves and R. B. Canelas, Experimental investigation on the power capture of an oscillating wave surge converter in unidirectional waves, Renewable Energy, vol. 151, pp.975-992, 2020,.

DOI: 10.1016/j.renene.2019.11.094

Google Scholar

[18] G. Klopman, Vertical structure of the flow due to waves and currents". Delf Hydraulics Publication, Report H 840, (1994).

Google Scholar

[19] F. C. K. Ting and J. T. Kirby, Observation of undertow and turbulence in a laboratory surf zone, Coast. Eng., vol. 24, no. 1–2, p.51–80, 1994,.

DOI: 10.1016/0378-3839(94)90026-4

Google Scholar