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8 - Synthetic Jet

Published online by Cambridge University Press:  14 December 2018

Jinjun Wang
Affiliation:
Beijing University of Aeronautics and Astronautics
Lihao Feng
Affiliation:
Beijing University of Aeronautics and Astronautics
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Summary

The synthetic jet is an efficient active flow control technique that is based on the periodic generation of vortex ring/vortex pair. The influence of different dimensionless parameters, such as Stokes number, Stroke length, and Reynolds number, on the vortex evolution and flow characteristics is first analyzed, and thus the formation condition of the synthetic jet is proposed. A novel synthetic jet actuated by a non-sinusoidal function with variable suction and blowing cycles and a dual synthetic jet actuator are introduced. In addition, numerical models for the synthetic jet are compared. Then, applications of the synthetic jet in various fields, such as flow around a circular cylinder, hump/rump, airfoil, vehicle, and inlet duct, and the use for vectoring control and heat transfer, are introduced in detail, showing effective control ability. Thus, the synthetic jet has great potential applications in engineering, though there are still some pivotal problems that need to be resolved.
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Publisher: Cambridge University Press
Print publication year: 2018

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References

Amitay, M. and Glezer, A. Role of actuation frequency in controlled flow reattachment over a stalled airfoil. AIAA Journal, 2002, 40(2): 209216Google Scholar
Amitay, M., Honohan, A., Trautman, M., and Glezer, A. Modification of the aerodynamic characteristics of bluff bodies using fluidic actuators. AIAA Paper 1997–2004CrossRefGoogle Scholar
Amitay, M., Pitt, D., and Glezer, A. Separation control in duct flows. Journal of Aircraft, 2002, 39(4): 616620Google Scholar
Amitay, M., Smith, B. L., and Glezer, A. Aerodynamic flow control using synthetic jet technology. AIAA Paper 1998–0208CrossRefGoogle Scholar
Amitay, M., Smith, D. R., Kibens, V., Parekh, D. E., and Glezer, A. Aerodynamic flow control over an unconventional airfoil using synthetic jet actuators. AIAA Journal, 2001, 39(3): 361370CrossRefGoogle Scholar
Amitay, M., Washburn, A. E., Anders, S. G., and Parekh, D. E. Active flow control on the Stingray uninhabited air vehicle: transient behavior. AIAA Journal, 2004, 42(11): 22052215CrossRefGoogle Scholar
Bettini, C. and Cravero, C. Computational analysis of flow separation control for the flow over a wall-mounted hump using a synthetic jet. AIAA Paper 2007–0516CrossRefGoogle Scholar
Brunn, A. and Nitsche, W. Active control of turbulent separated flows over slanted surfaces. International Journal of Heat and Fluid Flow, 2006, 27(5): 748755CrossRefGoogle Scholar
Cater, J. E. and Soria, J. The evolution of round zero-net-mass-flux jets. Journal of Fluid Mechanics, 2002, 472: 167200Google Scholar
Chen, Z. J. and Wang, J. J. Numerical investigation on synthetic jet flow control inside an S-inlet duct. Science China Technological Sciences, 2012, 55(9): 25782584Google Scholar
Cheng, M., Lou, J., and Luo, L. S. Numerical study of a vortex ring impacting a flat wall. Journal of Fluid Mechanics, 2010, 660: 430455CrossRefGoogle Scholar
Cicca, G. M. D. and Iuso, G. On the near field of an axisymmetric synthetic jet. Fluid Dynamics Research, 2007, 39(9–10): 673693Google Scholar
Ciuryla, M., Liu, Y., Farnsworth, J., Kwan, C., and Amitay, M. Flight control using synthetic jets on a Cessna 182 model. Journal of Aircraft, 2007, 44(2): 642653CrossRefGoogle Scholar
Couch, L. D. and Krueger, P. S. Experimental investigation of vortex rings impinging on inclined surfaces. Experiments in Fluids, 2011, 51(4): 11231138CrossRefGoogle Scholar
Crook, A. and Wood, N. J. Measurements and visualisations of synthetic jets. AIAA 2001–0145Google Scholar
Cui, J. and Agarwal, R. K. 3-D CFD validation of an axisymmetric jet in cross-flow (NASA Langley Workshop Validation: Case 2). AIAA paper 2005–1112CrossRefGoogle Scholar
Dandois, J., Garnier, E., and Sagaut, P. Unsteady simulation of synthetic jet in a crossflow. AIAA Journal, 2006, 44 (2): 225238Google Scholar
Dandois, J., Garnier, E., and Sagaut, P. Numerical simulation of active separation control by a synthetic jet. Journal of Fluid Mechanics, 2007, 574: 2558CrossRefGoogle Scholar
Deng, X., Xia, Z. X., Luo, Z. B., and Li, Y. J. Vector-adjusting characteristic of dual-synthetic-jet actuator. AIAA Journal, 2015, 53(3): 794797CrossRefGoogle Scholar
Duvigneau, R. and Visonneau, M. Optimization of a synthetic jet actuator for aerodynamic stall control. Computers & Fluids, 2006, 35(6): 624638Google Scholar
Elimelech, Y., Vasile, J., and Amitay, M. Secondary flow structures due to interaction between a finite-span synthetic jet and a 3-D cross flow. Physics of Fluids, 2011, 23(9): 094104CrossRefGoogle Scholar
Esmaeili Monir, H., Tadjfar, M., and Bakhtian, A. Tangential synthetic jets for separation control. Journal of Fluids and Structures, 2014, 45: 5065Google Scholar
Feng, L. H. and Wang, J. J. Circular cylinder vortex-synchronization control with a synthetic jet positioned at the rear stagnation point. Journal of Fluid Mechanics, 2010, 662: 232259CrossRefGoogle Scholar
Feng, L. H. and Wang, J. J. Synthetic jet control of separation in the flow over a circular cylinder. Experiments in Fluids, 2012, 53(2): 467480Google Scholar
Feng, L. H. and Wang, J. J. Particle image velocimetry study of parameter influence for synthetic-jet application. Flow Measurement and Instrumentation, 2013, 34: 5367Google Scholar
Feng, L. H. and Wang, J. J. Modification of a circular cylinder wake with synthetic jet: vortex shedding modes and mechanism. European Journal of Mechanics B/ Fluids, 2014a, 43: 1432Google Scholar
Feng, L. H. and Wang, J. J. The virtual aeroshaping enhancement by synthetic jets with variable suction and blowing cycles. Physics of Fluids, 2014b, 26(1): 014105Google Scholar
Feng, L. H., Wang, J. J., and Pan, C. Effect of novel synthetic jet on wake vortex shedding modes of a circular cylinder. Journal of Fluids and Structures, 2010, 26(6): 900917Google Scholar
Feng, L. H., Wang, J. J., and Pan, C. Proper orthogonal decomposition analysis of vortex dynamics of a circular cylinder under synthetic jet control. Physics of Fluids, 2011, 23(1): 014106Google Scholar
Feng, L. H., Wang, J. J., and Xu, C. J. Experimental verification of a novel actuator signal for efficient synthetic jet (in Chinese). Journal of Experiments in Fluid Mechanics, 2008, 22(1): 610Google Scholar
Fujisawa, N. and Takeda, G. Flow control around a circular cylinder by internal acoustic excitation. Journal of Fluids and Structures, 2003, 17(7): 903913Google Scholar
Fung, P. and Amitay, M. Control of a miniducted-fan unmanned aerial vehicle using active flow control. Journal of Aircraft, 2002, 39(4): 561571Google Scholar
Gharib, M., Rambod, E., and Shariff, K. A universal time scale for vortex ring formation. Journal of Fluid Mechanics, 1998, 360: 121140Google Scholar
Gilarranz, J. L., Traub, L. W., and Rediniotis, O. K. A new class of synthetic jet actuators-Part I: design, fabrication and bench top characterization. Journal of Fluids Engineering, 2005, 127(2): 367376CrossRefGoogle Scholar
Glezer, A. The formation of vortex rings. Physics of Fluids, 1988, 31(12): 35323542Google Scholar
Glezer, A. and Amitay, M. Synthetic jets. Annual Review of Fluid Mechanics, 2002, 34: 503529CrossRefGoogle Scholar
Glezer, A., Amitay, M., and Honohan, A. M. Aspects of low- and high-frequency actuation for aerodynamic flow control. AIAA Journal, 2005, 43(7): 15011511Google Scholar
Greenblatt, D., Paschal, K. B., Yao, C. S., Harris, . J, Schaeffler, N. W., and Washburn, A. E. A separation control cfd validation test case. Part 1: baseline & steady suction. AIAA Paper 2004–2220Google Scholar
Guo, D. H., Cary, A. W., and Agarwal, R. K. Numerical simulation of vectoring of a primary jet with a synthetic jet. AIAA Journal, 2003, 41(12): 23642370Google Scholar
Holman, R., Utturkar, Y., Mittal, R., Smith, B. L., and Cattafesta, L. Formation criterion for synthetic jets. AIAA Journal, 2005, 43(10): 21102116Google Scholar
Ingard, U. and Labate, S. Acoustic circulation effects and the nonlinear impedance of orifices. Journal of the Acoustical Society of America, 1950, 22(2): 211218Google Scholar
James, R. D., Jacobs, J. W., and Glezer, A. A round turbulent jet produced by an oscillating diaphragm. Physics of Fluids, 1996, 8(9): 24842495Google Scholar
Kotapati, R. B., Mittal, R., Marxen, O., Ham, F., You, D., and Cattafesta III, L. N. Nonlinear dynamics and synthetic-jet-based control of a canonical separated flow. Journal of Fluid Mechanics, 2010, 654: 6597Google Scholar
Kourta, A. and Leclerc, C. Characterization of synthetic jet actuation with application to Ahmed body wake. Sensors and Actuators A: Physical, 2013, 192: 1326Google Scholar
Krishnan, G. and Mohseni, K. An experimental study of a radial wall jet formed by the normal impingement of a round synthetic jet. European Journal of Mechanics B/ Fluids, 2010, 29(4): 269277Google Scholar
Langley Research Center Workshop “CFD Validation of Synthetic Jets and Turbulent Separation Control,” URL: http://cfdval2004.larc.nasa.govGoogle Scholar
Lardeau, S. and Leschziner, M. A. The interaction of round synthetic jets with a turbulent boundary layer separating from a rounded ramp. Journal of Fluid Mechanics, 2011, 683: 172211Google Scholar
Lebedeva, I. V. Experimental study of acoustic streaming in the vicinity of orifices. Soviet Physics – Acoustics, 1980, 26(4): 331333Google Scholar
Liu, Y. G. and Feng, L. H. Suppression of lift fluctuations on a circular cylinder by inducing the symmetric vortex shedding mode. Journal of Fluids and Structures, 2015, 54: 743759Google Scholar
Lopez Mejia, O. D., Moser, R. D., Brzozowski, D. P., and Glezer, A. Effects of trailing-edge synthetic jet actuation on an airfoil. AIAA Journal, 2011, 49(8): 17631777Google Scholar
Luo, Z. B., Deng, X., Xia, Z. X., Wang, L., and Gong, W. J. Flow field and heat transfer characteristics of impingement based on a vectoring dual synthetic jet actuator. International Journal of Heat and Mass Transfer, 2016, 102: 1825CrossRefGoogle Scholar
Luo, Z. B. and Xia, Z. X. Advances in synthetic jet technology and applications in flow control. Advances in Mechanics, 2005, 35(2): 221234 (in Chinese)Google Scholar
Luo, Z. B. and Xia, Z. X. PIV Measurements and mechanisms of adjacent synthetic jets interactions. Chinese Physics Letters, 2008, 25(2): 612615Google Scholar
Luo, Z. B., Xia, Z. X., and Liu, B. New generation of synthetic jet actuators. AIAA Journal, 2006, 44(10): 24182419Google Scholar
Luo, Z. B., Xia, Z. X., and Xie, Y. G. Jet vectoring control using a novel synthetic jet actuator. Chinese Journal of Aeronautics, 2007, 20(3): 193201Google Scholar
Ma, L. Q. and Feng, L. H. Experimental investigation on control of vortex shedding mode of a circular cylinder using synthetic jets placed at stagnation points. Science China Technological Sciences, 2013, 56(1): 158170Google Scholar
Margaris, P. and Gursul, I. Wing tip vortex control using synthetic jets. Aeronautical Journal, 2006, 110(1112): 673681Google Scholar
Mednikov, E. P. and Novitskii, B. G. Experimental study of intense acoustic streaming. Soviet Physics-Acoustics, 1975, 21(2): 152154Google Scholar
Mohseni, K. Pulsatile vortex generators for low-speed maneuvering of small underwater vehicles. Ocean Engineering, 2006, 33(16): 22092223Google Scholar
Morgan, P. E., Rizzetta, D. P., and Visbal, M. R. High-order numerical simulation of turbulent flow over a wall-mounted hump. AIAA Journal, 2006, 44(2): 239251Google Scholar
Park, S. H., Yu, Y. H., and Byun, D. Y. RANS simulations of a synthetic jet in quiescent air. AIAA Paper 2007–1131Google Scholar
Pavlova, A. and Amitay, M. Electronic cooling using synthetic jet impingement. Journal of Heat Transfer, 2006, 128(9): 897907Google Scholar
Rehman, A. and Kontis, K. Synthetic jet control effectiveness on stationary and pitching airfoils. Journal of Aircraft, 2006, 43(6): 17821789Google Scholar
Rumsey, C. L. Reynolds-averaged Navier-Stokes analysis of zero efflux flow control over a hump model. Journal of Aircraft, 2007, 44 (2): 444452CrossRefGoogle Scholar
Rumsey, C. L., Gatski, T. B., Sellers III, W. L., Vasta, V. N., and Viken, S. A. Summary of the 2004 Computational Fluid Dynamics Validation Workshop on Synthetic Jets. AIAA Journal, 2006, 44(2): 194207Google Scholar
Schaeffler, N. W. and Jenkins, L. N. The isolated synthetic jet in crossflow: a benchmark for flow control simulation. AIAA Paper 2004–2219Google Scholar
Shan, R. Q. and Wang, J. J. Experimental studies of the influence of parameters on axisymmetric synthetic jets. Sensors and Actuators A: Physical, 2010, 157(1): 107112Google Scholar
Shaw, L. L., Smith, B. R., and Saddoughi, S. Full scale flight demonstration of active flow control of a pod wake. AIAA Paper 2006–3185Google Scholar
Shuster, J. M. and Smith, D. R. Experimental study of the formation and scaling of a round synthetic jet. Physics of Fluids, 2007, 19(4): 045109CrossRefGoogle Scholar
Smith, B. L. and Glezer, A. Jet vectoring using synthetic jets. Journal of Fluid Mechanics, 2002, 458: 134Google Scholar
Smith, B. L. and Glezer, A. The formation and evolution of synthetic jets. Physics of Fluids, 1998, 10(9): 22812297Google Scholar
Smith, B. L. and Swift, G. W. Synthetic jet at large Reynolds number and comparison to continuous jets. AIAA Paper 2001–3030Google Scholar
Smith, D. R., Amitay, M., Kibens, V., Parekh, D., and Glezer, A. Modification of lifting body aerodynamics using synthetic jet actuators. AIAA Paper 1998–0209Google Scholar
Suzuki, T. Effects of a synthetic jet acting on a separated flow over a hump. Journal of Fluid Mechanics, 2006, 547: 331359CrossRefGoogle Scholar
Tensi, J., Boué, I., Paillé, F., and Dury, G. Modification of the wake behind a circular cylinder by using synthetic jets. Journal of Visualization, 2002, 5(1): 3744Google Scholar
Toyoda, K. and Hiramoto, R. Manipulation of vortex rings for flow control. Fluid Dynamics Research, 2009, 41(5): 051402Google Scholar
Utturkar, Y., Holman, R., Mittal, R., Carroll, B., Sheplak, M., and Cattafesta, L. A jet formation criterion for synthetic jet actuators. AIAA Paper 2003–0636Google Scholar
Vatsa, V. N. and Turkel, E. Simulation of synthetic jets using unsteady Reynolds-averaged Navier-Stokes equations. AIAA Journal, 2006, 44(2): 217224CrossRefGoogle Scholar
Wang, J. J., Ba, Y. L., and Feng, L. H. Experimental investigation on laminar separation control for flow over a two-dimensional bump. Journal of Turbulence, 2014, 15(4): 221240Google Scholar
Wang, J. J., Feng, L. H., and Xu, C. J. Experimental investigations on separation control and flow structure around a circular cylinder with synthetic jet. Science in China E: Technological Sciences, 2007, 50(5): 550559Google Scholar
Wang, J. J., Shan, R. Q., Zhang, C., and Feng, L. H. Experimental investigation of a novel two-dimensional synthetic jet. European Journal of Mechanics – B/ Fluids, 2010, 29(5): 342350CrossRefGoogle Scholar
Xu, Y., Feng, L. H., and Wang, J. J. Experimental investigation of a synthetic jet impinging on a fixed wall. Experiments in Fluids, 2013, 54(5): 1512Google Scholar
Xu, Y. and Wang, J. J. Recent development of vortex ring impinging onto the wall. Science China Technological Sciences, 2013, 56(10): 24472455Google Scholar
Yao, C., Chen, F. J., Neuhart, D., and Harris, J. Synthetic jet flow field database for CFD validation. AIAA Paper 2004–2218Google Scholar
You, D. and Moin, P. Active control of flow separation over an airfoil using synthetic jets. Journal of Fluids and Structures, 2008, 24(8): 13491357CrossRefGoogle Scholar
Zhang, P. F. and Wang, J. J. Novel signal wave pattern for efficient synthetic jet generation. AIAA Journal, 2007, 45(5): 10581065Google Scholar
Zhang, P. F. and Wang, J. J. Effect of orifice inclined angle on flow control of the stalled airfoil with synthetic jet actuator. Acta Armamentarii, 2009, 30(12): 16581662 (in Chinese)Google Scholar
Zhang, P. F. and Wang, J. J. Numerical simulation on flow control of stalled NACA0015 airfoil with synthetic jet actuator in recirculation region. Journal of Beijing University of Aeronautics and Astronautics 2008, 34(4): 443446 (in Chinese)Google Scholar
Zhang, P. F., Wang, J. J., and Feng, L. H. Review of zero-net-mass-flux jet and its application in separation flow control. Science in China Series E: Technological Sciences, 2008, 51(9): 13151344Google Scholar
Zhang, P. F., Yan, B., and Dai, C. F. Lift enhancement method by synthetic jet circulation control. Science China Technological Sciences, 2012, 55(9): 25852592Google Scholar
Zhong, S., Jabbal, M., Tang, H., Garcillan, L., Guo, F. S., Wood, N., and Warsop, C. Towards the design of synthetic-jet actuators for full-scale flight conditions, Part 1: the fluid mechanics of synthetic-jet actuators. Flow, Turbulence and Combustion, 2007, 78(3–4): 283307Google Scholar
Zhou, J., Tang, H., and Zhong, S. Vortex roll-up criterion for synthetic jets. AIAA Journal, 2009, 47(5): 12521262Google Scholar

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  • Synthetic Jet
  • Jinjun Wang, Lihao Feng
  • Book: Flow Control Techniques and Applications
  • Online publication: 14 December 2018
  • Chapter DOI: https://doi.org/10.1017/9781316676448.009
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  • Synthetic Jet
  • Jinjun Wang, Lihao Feng
  • Book: Flow Control Techniques and Applications
  • Online publication: 14 December 2018
  • Chapter DOI: https://doi.org/10.1017/9781316676448.009
Available formats
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  • Synthetic Jet
  • Jinjun Wang, Lihao Feng
  • Book: Flow Control Techniques and Applications
  • Online publication: 14 December 2018
  • Chapter DOI: https://doi.org/10.1017/9781316676448.009
Available formats
×