Review of atomization mechanism and spray characteristics of a liquid jet in supersonic crossflow
暂无分享,去创建一个
[1] Hong-bo Wang,et al. Numerical study on the mixing and evaporation process of a liquid kerosene jet in a scramjet combustor , 2021, Aerospace Science and Technology.
[2] Peibo Li,et al. Simulation of a liquid jet in supersonic crossflow by a hybrid CLSVOF-LPT method , 2021 .
[3] Y. You,et al. Study on Dynamic Stall Control of Rotor Airfoil Based on Coflow Jet , 2020 .
[4] Qing-lian Li,et al. Experimental and numerical investigation of cross-sectional structures of liquid jets in supersonic crossflow , 2020 .
[5] Tahzeeb Hassan Danish,et al. Penetration and Combustion Studies of Tandem Liquid Jets in Supersonic Crossflow , 2020 .
[6] F. Xiao,et al. Simulation of Elliptical Liquid Jet Primary Breakup In Supersonic Crossflow , 2020 .
[7] Y. Su,et al. Liquid-Fuel Injection into Supersonic Cross Flow , 2020 .
[8] F. Yao,et al. Effects of bubbles in the liquid jet on the air-blast atomization , 2020 .
[9] Li Chun,et al. Prediction of liquid jet trajectory in supersonic crossflow and continuous liquid column model , 2020 .
[10] C. Carter,et al. EXPLORATION OF WATER JETS IN SUPERSONIC CROSSFLOW USING X-RAY DIAGNOSTICS , 2020 .
[11] Qing-lian Li,et al. Experimental study of spray characteristics of liquid jets in supersonic crossflow , 2019 .
[12] Zhenguo Wang,et al. Distribution characteristics and mixing mechanism of a liquid jet injected into a cavity-based supersonic combustor , 2019, Aerospace Science and Technology.
[13] Yu Wang,et al. Analysis on the influences of atomization characteristics on heat transfer characteristics of spray cooling , 2019, Sustainable Cities and Society.
[14] Qing-lian Li,et al. Experimental research on the spray characteristics of pintle injector , 2019, Acta Astronautica.
[15] Zhenguo Wang,et al. Simulation of liquid jet primary breakup in a supersonic crossflow under Adaptive Mesh Refinement framework , 2019, Aerospace Science and Technology.
[16] Gang Xu,et al. Experimental Investigations of Flow Field and Atomization Field Characteristics of Pre-Filming Air-Blast Atomizers , 2019, Energies.
[17] Zhenguo Wang,et al. Three-dimensional flow structures and droplet-gas mixing process of a liquid jet in supersonic crossflow , 2019, Aerospace Science and Technology.
[18] Christopher J. Hogan,et al. Automated droplet size distribution measurements using digital inline holography , 2019, Journal of Aerosol Science.
[19] N. Ashgriz,et al. Trajectory of a Liquid Jet in a High Temperature and Pressure Gaseous Cross Flow , 2019, Journal of Engineering for Gas Turbines and Power.
[20] Qing-lian Li,et al. Effects of an accompanied gas jet on transverse liquid injection in a supersonic crossflow , 2019, Acta Astronautica.
[21] Wei Huang,et al. Recent advances in cavity-based scramjet engine- a brief review , 2019, International Journal of Hydrogen Energy.
[22] Li-jun Yang,et al. Kelvin–Helmholtz instability of confined Oldroyd-B liquid film with heat and mass transfer , 2019, Journal of Non-Newtonian Fluid Mechanics.
[23] B. Wang,et al. Supersonic spray combustion subject to scramjets: Progress and challenges , 2019, Progress in Aerospace Sciences.
[24] C. Carter,et al. Exploration of Near-Field Cross-Sectional Structures of Aerated-Liquid Jets Using Confocal X-Ray Fluorescence , 2019, AIAA Scitech 2019 Forum.
[25] C. Carter,et al. Confocal X-Ray Fluorescence for the Exploration of Near-Field Structures of Aerated-Liquid Jets in Subsonic Crossflows , 2019, AIAA Scitech 2019 Forum.
[26] C. Li,et al. LES of primary breakup of pulsed liquid jet in supersonic crossflow , 2019, Acta Astronautica.
[27] Nasser Ashgriz,et al. Global Droplet Size in Liquid Jet in a High-Temperature and High-Pressure Crossflow , 2018, AIAA Journal.
[28] M. Birouk,et al. Experimental investigation of spray characteristics of a liquid jet in a turbulent subsonic gaseous crossflow , 2019, Proceedings of the Combustion Institute.
[29] Qing-lian Li,et al. Flow characteristics of a pintle injector element , 2019, Acta Astronautica.
[30] Daren Yu,et al. Research progress on strut-equipped supersonic combustors for scramjet application , 2018, Progress in Aerospace Sciences.
[31] Qing-lian Li,et al. Study on the dynamic response of a pressure swirl injector to ramp variation of mass flow rate , 2018, Acta Astronautica.
[32] Li-jun Yang,et al. Improved modeling of free power-law liquid sheets by weighted-residual approximations , 2018, International Journal of Multiphase Flow.
[33] Li Yan,et al. Flame propagation and stabilization in dual-mode scramjet combustors: A survey , 2018, Progress in Aerospace Sciences.
[34] T. Yuan,et al. The mixing of the spray in Mach 2 high enthalpy cross flow , 2018, 2018 Joint Propulsion Conference.
[35] R. Boyce,et al. Scramjet performance for ideal combustion processes , 2018 .
[36] C. Carter,et al. Qualitative Study of Near-Field and Cross-Sectional Structures of Liquid Jets in Supersonic Crossflow , 2018 .
[37] Javier Urzay,et al. Supersonic Combustion in Air-Breathing Propulsion Systems for Hypersonic Flight , 2018 .
[38] András Urbán,et al. Droplet dynamics and size characterization of high-velocity airblast atomization , 2017 .
[39] Fuwu Yan,et al. Experimental study of cavitation formation and primary breakup for a biodiesel surrogate fuel (methyl butanoate) using transparent nozzle , 2017 .
[40] Li-jun Yang,et al. Spray Characteristics of Elliptical Power-Law Fluid-Impinging Jets , 2017 .
[41] M. Birouk,et al. Effect of Nozzle Exit Turbulence on the Column Trajectory and Breakup Location of a Transverse Liquid Jet in a Gaseous Flow , 2017 .
[42] Qing-lian Li,et al. Model for Three-dimensional Distribution of Liquid fuel in Supersonic Crossflows , 2017 .
[43] F. Xiao,et al. Simulation of drop deformation and breakup in supersonic flow , 2017 .
[44] F. Xiao,et al. Large eddy simulation of liquid jet primary breakup in supersonic air crossflow , 2016 .
[45] Madjid Birouk,et al. Liquid jet in a subsonic gaseous crossflow: Recent progress and remaining challenges , 2016 .
[46] M. Soteriou,et al. High fidelity simulation and analysis of liquid jet atomization in a gaseous crossflow at intermediate Weber numbers , 2016 .
[47] Chun Li,et al. Study on transient structure characteristics of round liquid jet in supersonic crossflows , 2016, J. Vis..
[48] Davood Domiri Ganji,et al. Comparison of the single/multi transverse jets under the influence of shock wave in supersonic crossflow , 2016 .
[49] B. Karney,et al. Surface breakup of a non-turbulent liquid jet injected into a high pressure gaseous crossflow , 2016 .
[50] M. Birouk,et al. LIQUID JET TRAJECTORY IN A SUBSONIC GASEOUS CROSS-FLOW: AN ANALYSIS OF PUBLISHED CORRELATIONS , 2016 .
[51] Li-jun Yang,et al. EFFECT OF GAS-LIQUID AXIAL VELOCITY CONTINUITY ON THE AXISYMMETRIC AND ASYMMETRIC INSTABILITIES OF A VISCOELASTIC LIQUID CORE IN A SWIRLING GASEOUS CO-FLOW , 2016 .
[52] Chenghang Zheng,et al. Measurement of slurry droplets by digital holographic microscopy: Fundamental research , 2015 .
[53] Qing-lian Li,et al. Investigations on the droplet distributions in the atomization of kerosene jets in supersonic crossflows , 2015 .
[54] M. Linne,et al. Evaluation of optical arrangements for ballistic imaging in sprays. , 2015, Optics express.
[55] Li-jun Yang,et al. Oblique Collision of Two Power-Law Fluid Jets at Low Speed , 2015 .
[56] Kuo-Cheng Lin,et al. Challenges in Fuel Injection for High-Speed Propulsion Systems , 2015 .
[57] Jian Gao,et al. An experimental and theoretical investigation of spray characteristics of impinging jets in impact wave regime , 2015 .
[58] N. Ashgriz,et al. Azimuthal shear instability of a liquid jet injected into a gaseous cross-flow , 2015, Journal of Fluid Mechanics.
[59] Li-jun Yang,et al. Temporal Instability of a Power-Law Planar Liquid Sheet , 2015 .
[60] Li-jun Yang,et al. TWO-DIMENSIONAL INSTABILITY RESPONSE OF AN ELECTRIFIED VISCOELASTIC PLANAR LIQUID SHEET SUBJECTED TO UNRELAXED AXIAL ELASTIC TENSION , 2015 .
[61] F. Zhuang,et al. Effects of Orifice Geometry on Gelled Propellants Sprayed from Impinging-Jet Injectors , 2014 .
[62] M. R. Saad,et al. Luminescent Measurement Systems for the Investigation of a Scramjet Inlet-Isolator , 2014, Sensors.
[63] Li-jun Yang,et al. Thermocapillar instability of a two-dimensional viscoelastic planar liquid sheet in surrounding gas , 2014 .
[64] Zhenguo Wang,et al. Review of cavity-stabilized combustion for scramjet applications , 2014 .
[65] C. Carter,et al. Exploration of Near-Field Plume Properties for Aerated-Liquid Jets Using X-Ray Radiography (Postprint) , 2014 .
[66] M. Jalaal,et al. Transient growth of droplet instabilities in a stream , 2014 .
[67] Q. Fu,et al. SPRAY OF POWER-LAW FLUID FROM A SWIRL INJECTOR WITH NONTANGENTIAL INLET CHANNELS , 2014 .
[68] F. Xiao,et al. LARGE EDDY SIMULATION OF SINGLE DROPLET AND LIQUID JET PRIMARY BREAKUP USING A COUPLED LEVEL SET/VOLUME OF FLUID METHOD , 2014 .
[69] C. D. Bolszo,et al. INJECTION OF WATER-IN-OIL EMULSION JETS INTO A SUBSONIC CROSSFLOW: AN EXPERIMENTAL STUDY , 2014 .
[70] F. Xiao,et al. Large Eddy Simulation of Liquid-Jet Primary Breakup in Air Crossflow , 2013 .
[71] Qi Gao,et al. Review on development of volumetric particle image velocimetry , 2013 .
[72] Li-jun Yang,et al. Instability of viscoelastic annular liquid sheets subjected to unrelaxed axial elastic tension , 2013 .
[73] J. Caltagirone,et al. Modelling the interactions between a thermal plasma flow and a continuous liquid jet in a suspension spraying process , 2013 .
[74] G. Masuya,et al. Characteristics of Hydrogen Jets in Supersonic Crossflow: Large-Eddy Simulation Study , 2013 .
[75] Mark Linne,et al. Current Technological Advances in Fuel Spray Imaging , 2013, 2013 IEEE Green Technologies Conference (GreenTech).
[76] Li-jun Yang,et al. Linear stability analysis of a three-dimensional viscoelastic liquid jet surrounded by a swirling air stream , 2013 .
[77] D. Dixon. Structures of Angled Aerated-Liquid Jets in Mach 1.94 Supersonic Crossflow , 2012 .
[78] Patrick Jenny,et al. Modeling of turbulent dilute spray combustion , 2012 .
[79] Li-jun Yang,et al. Linear Stability Analysis of an Electrified Viscoelastic Liquid Jet , 2012 .
[80] Wei Zhang,et al. Spray characteristics of gelled propellants in swirl injectors , 2012 .
[81] Li-jun Yang,et al. Breakup of a power-law liquid sheet formed by an impinging jet injector , 2012 .
[82] Hui Yang,et al. Trajectory Analysis of Fuel Injection into Supersonic Cross Flow Based on Schlieren Method , 2012 .
[83] S. Idlahcen,et al. Sub-picosecond ballistic imaging of a liquid jet , 2012 .
[84] Li-jun Yang,et al. Linear instability analysis of planar non-Newtonian liquid sheets in two gas streams of unequal velocities , 2012 .
[85] Gianpietro Cossali,et al. Quantitative optical techniques for dense sprays investigation: A survey , 2012 .
[86] Li-jun Yang,et al. LINEAR STABILITY ANALYSIS OF ELECTRIFIED VISCOELASTIC LIQUID SHEETS , 2012 .
[87] Li-jun Yang,et al. LINEAR STABILITY ANALYSIS OF A POWER-LAW LIQUID JET , 2012 .
[88] N. Ashgriz,et al. Multiple Injector Model for Primary Breakup of a Liquid Jet in Crossflow , 2011 .
[89] Feng Xiao,et al. Revisit to the THINC scheme: A simple algebraic VOF algorithm , 2011, J. Comput. Phys..
[90] M. Chon,et al. Breakup modeling of a liquid jet in cross flow , 2011 .
[91] M. Arienti,et al. The Impact of Density Ratio on the Liquid Core Dynamics of a Turbulent Liquid Jet Injected Into a Crossflow , 2011 .
[92] T. Theofanous. Aerobreakup of Newtonian and Viscoelastic Liquids , 2011 .
[93] Lin Ma,et al. Investigation on the flameholding mechanisms in supersonic flows: backward-facing step and cavity flameholder , 2010, J. Vis..
[94] Li-jun Yang,et al. ATOMIZATION OF GELLED PROPELLANTS FROM SWIRL INJECTORS WITH LEAF SPRING IN SWIRL CHAMBER , 2011 .
[95] C. Lee,et al. CORRELATIONS FOR PENETRATION HEIGHT OF SINGLE AND DOUBLE LIQUID JETS IN CROSS FLOW UNDER HIGH-TEMPERATURE CONDITIONS , 2011 .
[96] Anthony Castrogiovanni,et al. Review of "The Scramjet Engine, Processes and Characteristics" , 2010 .
[97] H. Moon,et al. Spray jet penetration and distribution of modulated liquid jets in subsonic cross-flows , 2010 .
[98] Wei Huang,et al. Research status of key techniques for shock-induced combustion ramjet (shcramjet) engine , 2010 .
[99] F. Lu,et al. Shock/Boundary-Layer Interaction Effects on Transverse Jets in Crossflow over a Flat Plate , 2009 .
[100] C. O. Asma,et al. Experimental investigation of liquid jet injection into Mach 6 hypersonic crossflow , 2009 .
[101] D. Guildenbecher,et al. Secondary atomization , 2009 .
[102] Cheng-Xian Lin,et al. Penetration height correlations for non-aerated and aerated transverse liquid jets in supersonic cross flow , 2009 .
[103] Madjid Birouk,et al. LIQUID JET BREAKUP IN QUIESCENT ATMOSPHERE: A REVIEW , 2009 .
[104] Edouard Berrocal,et al. Ballistic imaging of liquid breakup processes in dense sprays , 2009 .
[105] Nasser Ashgriz,et al. Improved Model for the Penetration of Liquid Jets in Subsonic Crossflows , 2008 .
[106] R. Sujith,et al. Effect of Liquid Injection on Acoustic Field Induced from Supersonic Flow Past Cavities , 2008 .
[107] G. J. Li,et al. On the physics of aerobreakup , 2008 .
[108] Debasis Chakraborty,et al. Liquid-Fueled Strut-Based Scramjet Combustor Design: A Computational Fluid Dynamics Approach , 2008 .
[109] T. G. Theofanous,et al. Aerobreakup in disturbed subsonic and supersonic flow fields , 2007, Journal of Fluid Mechanics.
[110] Gerard M. Faeth,et al. Primary Breakup of Turbulent Round Liquid Jets in Uniform Crossflows , 2007 .
[111] Domenic A. Santavicca,et al. PENETRATION OF LIQUID JETS IN A CROSS-FLOW , 2006 .
[112] C. P. Chen,et al. Modeling of Turbulence Effects on Liquid Jet Atomization and Breakup , 2005 .
[113] G. Faeth,et al. Breakup of round nonturbulent liquid jets in gaseous crossflow , 2004 .
[114] Wright-Patterson Afb,et al. STRUCTURES OF WATER JETS IN A MACH 1.94 SUPERSONIC CROSSFLOW , 2004 .
[115] Kuo-Cheng Lin,et al. Penetration heights of liquid jets in high-speed crossflows , 2002 .
[116] K. Takayama,et al. A PARAMETRIC STUDY OF WATER COLUMN DEFORMATION RESULTING FROM SHOCK WAVE LOADING , 2002 .
[117] Paul J. Waltrup,et al. Upper Bounds on the Flight Speed of Hydrocarbon-Fueled Scramjet-Powered Vehicles , 2001 .
[118] E. T. Curran,et al. Scramjet Engines: The First Forty Years , 2001 .
[119] Noel T. Clemens,et al. Experimental Study of Shear-Layer/Acoustics Coupling in Mach 5 Cavity Flow , 2001 .
[120] P. Kennedy,et al. Spray penetration heights of angle-injected aerated-liquid jets in supersonic crossflows , 2000 .
[121] C. Hassa,et al. Plain Jet Kerosene Injection Into High Temperature, High Pressure Crossflow With And Without Filmer Plate , 2000 .
[122] D. Joseph,et al. Breakup of a liquid drop suddenly exposed to a high-speed airstream , 1999 .
[123] Wright-Patterson Afb,et al. SPRAY STRUCTURES OF AERATED LIQUID FUEL JETS IN SUPERSONIC CROSSFLOWS , 1999 .
[124] Z. Dai,et al. PRIMARY BREAKUP OF NONTURBULENT ROUND LIQUID JETS IN GAS CROSSFLOWS , 1999 .
[125] R. Reitz,et al. An analysis of the distortion and breakup mechanisms of high speed liquid drops , 1997 .
[126] G. Faeth,et al. Temporal properties of drop breakup in the shear breakup regime , 1997 .
[127] T. Inamura,et al. SPRAY CHARACTERISTICS OF LIQUID JET TRAVERSING SUBSONIC AIRSTREAMS , 1997 .
[128] Andreas Cronhjort,et al. Long‐working‐distance microscope used for diesel injection spray imaging , 1996 .
[129] A. Nejad,et al. Breakup Processes of Liquid Jets in Subsonic Crossflows , 1996 .
[130] K. Kuo. Measurement of Drop Sizes in Unsteady Dense Sprays , 1996 .
[131] Rolf D. Reitz,et al. BREAKUP MECHANISMS AND DRAG COEFFICIENTS OF HIGH-SPEED VAPORIZING LIQUID DROPS , 1996 .
[132] V. Yang,et al. Fundamental Mechanisms of Combustion Instabilities: Aerodynamic Effects on Primary and Secondary Spray Breakup , 1995 .
[133] C. Arcoumanis,et al. Breakup of Newtonian and non-Newtonian fluids in air jets , 1994 .
[134] M. R. Gruber,et al. Mixing and Penetration Studies of Sonic Jets in a Mach 2 Freestream , 1994 .
[135] G. Faeth,et al. Drop deformation and breakup due to shock wave and steady disturbances , 1994 .
[136] M. Pilch,et al. Use of breakup time data and velocity history data to predict the maximum size of stable fragments for acceleration-induced breakup of a liquid drop , 1987 .
[137] L G Dodge,et al. Drop-size measurement techniques for sprays: comparison of Malvern laser-diffraction and Aerometrics phase/Doppler. , 1987, Applied optics.
[138] R. Reitz. Modeling atomization processes in high-pressure vaporizing sprays , 1987 .
[139] Peter J. O'Rourke,et al. The TAB method for numerical calculation of spray droplet breakup , 1987 .
[140] J. Schetz,et al. Distributions across the plume of transverse liquid and slurry jets in supersonic airflow , 1985 .
[141] J. Schetz,et al. Effects of viscosity and surface tension on a jet plume in supersonic crossflow , 1984 .
[142] J. Schetz,et al. Effects of properties and location in the plume on droplet diameter for injection in a supersonic stream , 1983 .
[143] J. Schetz,et al. Penetration and breakup of slurry jets in a supersonic stream , 1983 .
[144] J. Matta,et al. Viscoelastic breakup in a high velocity airstream , 1982 .
[145] Joseph A. Schetz,et al. Wave phenomena in liquid jet breakup in a supersonic crossflow , 1980 .
[146] J. A. Schetz,et al. Effect of Injection Angle on Liquid Injection in Supersonic Flow , 1980 .
[147] J. Schetz,et al. Effect of injection angle on liquid injection in supersonic flow for increasing fuel jet penetration , 1979 .
[148] W. Reinecke. Drop Breakup and Liquid Jet Penetration , 1978 .
[149] Joseph A. Schetz,et al. Penetration and Breakup of Liquids in Subsonic Airstreams , 1977 .
[150] J. Schetz,et al. Effect of Injector Shape on Penetration and Spread of Liquid Jets , 1975 .
[151] B. Fishburn. Boundary layer stripping of liquid drops fragmented by Taylor instability , 1974 .
[152] E. A. Kush,et al. Liquid Jet Injection into a Supersonic Flow , 1972 .
[153] C. Yates. Liquid injection into supersonic airstreams , 1971 .
[154] A. Sherman,et al. Breakup of liquid sheets and jets in a supersonic gas stream , 1970 .
[155] J. Nicholls,et al. Aerodynamic shattering of liquid drops. , 1968 .
[156] J. Wilcox,et al. The retardation of drop breakup in high‐velocity airstreams by polymeric modifiers , 1961 .