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Break-up Characteristics of Gelled Propellant Simulants with Various Gelling Agent Contents 被引量:8

Break-up Characteristics of Gelled Propellant Simulants with Various Gelling Agent Contents
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摘要 Gel propulsion systems have many advantages with respect to high performance, the energy management of liquid propulsion systems, storability, high density impulse, and low leakage of liquid propellants. The atomization process provides sufficient contact surface area between the gelled fuel and oxidizer jets. It is important to study how injection characteristics of gelled propellants are related with break-up and spray distribution. The break-up and mixing processes are very important in achieving maximum efficiency and necessitate the careful study of combustion instability. Gelled propellants are non-Newtonian fluids in which the viscosity is a function of the shear rate, and they have a high dynamic shear viscosity which depends on the amount of gelling agent contents. The present study has focused on the break-up process, wave development of ligament and liquid sheets formed by impinging jets with various gelling agent contents. Especially, the break-up processes of the impinging jets at the initial conditions are studied. The break-up process of like-on-like doublet impinging jets are experimentally characterized using non-Newtonian liquids which are mixed by ionized water 98.5 wt%, Carbopol 941 0.5wt% or 1.0wt%, and NaOH(concentration 10%) 1.0wt%. For the like-on-like doublet injector, the generation of a liquid sheet at the impinging point of two jets was observed. The spray shape with elliptical pattern is distributed in a perpendicular direction to the momentum vectors of the jets. Gelled propellant simulants with high viscosity jets are more stable and produce less pronounced surface waves than low viscosity jets. Generally, the break-up length decreased due to the increasing Reynolds number. However, surface waves and atomized droplets increased. Gelled propellant simulants from like-on-like doublet impinging jets have the spray shape of closed rim patterns at low pressure. Also, the rim patterns of spray have no disturbances on the spray sheet. As the injection pressure increased, rimless patterns which were composed of ligament sheets and small droplets emerged due to the effect of the aerodynamic action. Periodic wave-like structures observed from the near impingement point and atomized droplets were observed at a location further downstream. Gel propulsion systems have many advantages with respect to high performance, the energy management of liquid propulsion systems, storability, high density impulse, and low leakage of liquid propellants. The atomization process provides sufficient contact surface area between the gelled fuel and oxidizer jets. It is important to study how injection characteristics of gelled propellants are related with break-up and spray distribution. The break-up and mixing processes are very important in achieving maximum efficiency and necessitate the careful study of combustion instability. Gelled propellants are non-Newtonian fluids in which the viscosity is a function of the shear rate, and they have a high dynamic shear viscosity which depends on the amount of gelling agent contents. The present study has focused on the break-up process, wave development of ligament and liquid sheets formed by impinging jets with various gelling agent contents. Especially, the break-up processes of the impinging jets at the initial conditions are studied. The break-up process of like-on-like doublet impinging jets are experimentally characterized using non-Newtonian liquids which are mixed by ionized water 98.5 wt%, Carbopol 941 0.5wt% or 1.0wt%, and NaOH(concentration 10%) 1.0wt%. For the like-on-like doublet injector, the generation of a liquid sheet at the impinging point of two jets was observed. The spray shape with elliptical pattern is distributed in a perpendicular direction to the momentum vectors of the jets. Gelled propellant simulants with high viscosity jets are more stable and produce less pronounced surface waves than low viscosity jets. Generally, the break-up length decreased due to the increasing Reynolds number. However, surface waves and atomized droplets increased. Gelled propellant simulants from like-on-like doublet impinging jets have the spray shape of closed rim patterns at low pressure. Also, the rim patterns of spray have no disturbances on the spray sheet. As the injection pressure increased, rimless patterns which were composed of ligament sheets and small droplets emerged due to the effect of the aerodynamic action. Periodic wave-like structures observed from the near impingement point and atomized droplets were observed at a location further downstream.
出处 《Journal of Thermal Science》 SCIE EI CAS CSCD 2010年第6期545-552,共8页 热科学学报(英文版)
基金 (Grants No. 00040486) was supported by Business for Cooperative R&D between Industry, Academy Research Institute funded Korea Small and Medium Business Administration in 2010
关键词 胶凝推进剂 破裂特性 胶凝剂 模拟 液体推进系统 凝胶推进剂 冲击射流 飞机撞击 gelled propellant simulants storability low leakage impinging injector rimless pattern wave-like structure
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参考文献15

  • 1Palaszewski, Bryan A., "Advanced Launch Vehicle Upper Stages Using Liquid Propulsion and Metallized Propellants," NASA TM 103622, October, 1990.
  • 2Natan, B., Rahimi, S., "The Status of Gel Propellants in year 2000," In: Combustion of Energetic Materials (Eds.: K.K.Kuo and L.T.DeLuca), Begell House, New York, pp. 172-194, 2002.
  • 3Hodge, K., Crofoot, T., and Nelson, S., "Gelled Propellants for Tactical Missile Applications," AIAA Paper 99-2976, 1999.
  • 4Palaszewski, B., and Powell, R., "Launch Vehicle Performance Using Metalized Propellants," AIAA Paper 91-2050, 1991.
  • 5Rahimi, S., Hasan, Dov., Peretz, Arie., "Development of Laboratory-Scale Gel Propulsion Technology," 37th AIAA/ASME/SAE/ASEE Joint Propulsion Conference and Exhibit, 8-11 July, 2001.
  • 6Dexter, R. W., "Measurement of Extensional Viscosity of Polymer Solutions and Its Effects on Atomization from a Spray Nozzle," Atomization and Sprays, Vol. 6, pp. 167-191, 1996.
  • 7C. J. Yoon, S. Heister, G. Xia, C. Merkle, "Numerical Simulations of Gel Propellant Flow Through Orifices," 45^th AIAA/ASME/SAE/ASEE Joint Propulsion Conferenee & Exhibit, Denver, AIAA-2009-5045, 2009.
  • 8Rahimi, S., Natan, B., "The Flow of Gel Fuels in Tapered Injectors," Journal of Propulsion and Power, Vol. 16, No, 4, pp. 458-471, 2000.
  • 9Rahimi, S., Natan, B., "Atomization Characteristics of Gel Fuels," AIAA 1998-3830, July 1998.
  • 10Chojnacki, K.T., and Feikema, D.A., "Atomization Studies of Gelled Liquids," 30th AIAA/ASME/SAE/ASEE Joint Propulsion Conference and Exhibit, 27-29 June, 1994.

同被引文献41

  • 1张蒙正,陈炜,杨伟东,李军.撞击式喷嘴凝胶推进剂雾化及表征[J].推进技术,2009,30(1):46-51. 被引量:23
  • 2Savart F. Memoire sur la constitution des veines liquides lancees par des orifices eirculaires en mince paroi [J]. Annales de Chimie et de Physique, 1833,53(337) :257-310.
  • 3Heidmann M F, Priem R J, HumphreyJ C. A study of sprays formed by two impinging jets[R]. National Adviso- ry Committee for Aeronautics,NACA-TN-3835,1957.
  • 4Dombrowski N, Hooper P C. A study of the sprays formed by impinging jets in laminar and turbulent flow[J]. Journal of Fluid Mechanics, 1964,18(3) : 392-400.
  • 5Dombrowsk N, Hasson D. Some aspects of liquid flow through fan spray nozzles[J]. Chemical Engineering Sci- ence,1960,12(1) :35-50.
  • 6Lai W H, Huang W,Jiang T L. Characteristic study on the like-doublet impinging jets atomization[J]. Atomization Spray,1999,9(3) :277-289.
  • 7Huang J C P. The breakup of axisymmetric liquid sheets [J]. Journal of Fluid Mechanics, 1970,43(2):305-319.
  • 8Chojnacki K T,Feikema D A. Atomization studies of gelled liquids[R]. AIAA 94-2773,1994.
  • 9Chojnaeki K T,Feikema D A. Atomization studies of gelled bipropellant simulants using planar laser induced fluores- cence[R]. AIAA 95-2423,1995.
  • 10Von Kampen J, Alberio F, Ciezki H K. Spray and combus- tion characteristics of aluminized gelled fuels with an im- pinging jet injector[J]. Aerospace Science and Technolo- gy,2007,11(1) :77-83.

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