Space Charge Limited Conduction in Polyvinyl Alcohol+Hydroxylammonium Nitrate Solid Propellant
2020; American Institute of Aeronautics and Astronautics; Volume: 36; Issue: 3 Linguagem: Inglês
10.2514/1.b37573
ISSN1533-3876
AutoresJames K. Baird, Sijay Huang, Robert A. Frederick,
Tópico(s)Electrohydrodynamics and Fluid Dynamics
ResumoNo AccessTechnical NotesSpace Charge Limited Conduction in Polyvinyl Alcohol+Hydroxylammonium Nitrate Solid PropellantJames K. Baird, Sijay Huang and Robert A. Frederick Jr.James K. BairdUniversity of Alabama in Huntsville, Huntsville, Alabama 35899, Sijay HuangUniversity of Alabama in Huntsville, Huntsville, Alabama 35899 and Robert A. Frederick Jr.University of Alabama in Huntsville, Huntsville, Alabama 35899Published Online:27 Feb 2020https://doi.org/10.2514/1.B37573SectionsRead Now ToolsAdd to favoritesDownload citationTrack citations ShareShare onFacebookTwitterLinked InRedditEmail About References [1] Yetter R. A., Yang V., Wu M.-H., Wang Y., Milius D., Aksay I. A. and Dryer F. L., "Combustion Issues and Approaches for Chemical Microthrusters," International Journal of Energetic Materials, Vol. 6, No. 4, 2007, pp. 393–424. https://doi.org/10.1615/IntJEnergeticMaterialsChemProp.v6.i4.10 Google Scholar[2] Gohardani A. S., Stanojev J., Demaire A., Anflo K., Persson M., Wignborg N. and Nilsson C., "Green Space Propulsion: Opportunities and Prospects," Progress in Aerospace Sciences, Vol. 71, Nov. 2014, pp. 128–149. https://doi.org/10.1016/j.paerosci.2014.08.001 CrossrefGoogle Scholar[3] Amroussee R., Katsimi P., Itouyama N., Azuma N., Kagawa H., Hatai K., Ikeda H. and Hori K., "New HAN-Based Mixtures for Reaction Control System and Low Toxic Spacecraft Propulsion System: Thermal Decomposition and Possible Thruster Applications," Combustion and Flame, Vol. 162, No. 6, 2015, pp. 2686–2692. https://doi.org/10.1016/j.combustflame.2015.03.026 Google Scholar[4] Amroussee R., Katsumi T., Azuma N. and Hori K., "Hydroxylammonium Nitrate (HAN)—Based Green Propellant as Alternative Energy Resource for Potential Hydrazine Substitution: From Lab Scale to Pilot Plant Scale-Up," Combustion and Flame, Vol. 176, Feb. 2017, pp. 334–348. https://doi.org/10.1016/j.combustflame.2016.11.011 Google Scholar[5] Kidd F. G., Taylor N. R. and Lemmer K. M., "Decomposition of Hydroxylammonium Nitrate in a Low Pressure Flowing Capillary System," Journal of Molecular Liquids, Vol. 262, July 2018, pp. 396–404. https://doi.org/10.1016/j.molliq.2018.04.065 CrossrefGoogle Scholar[6] Amrousee R., Hori K., Fetimi W. and Farhat K., "HAN and ADN as Liquid Ionic Monopropellants: Thermal and Catalytic Decomposition Processes," Applied Catalysis B: Environmental, Vol. 127, Dec. 2012, pp. 121–128. https://doi.org/10.1016/j.apcatb.2012.08.009 Google Scholar[7] Risha G. A., Yetter R. A. and Yang V., "Electrolytic-Induced Decomposition and Ignition of HAN-Based Liquid Monopropellants," International Journal of Energetic Materials and Chemical Propulsion, Vol. 6, No. 5, 2007, pp. 575–588. https://doi.org/10.1615/IntJEnergeticMaterialsChemProp.v6.i5 CrossrefGoogle Scholar[8] Wu M.-H. and Yetter R. A., "A Novel Electrolytic Ignition Monopropellant Microthruster Based on Low Temperature Co-Fired Ceramic Tape Technology," Lab on a Chip, Vol. 9, No. 7, 2009, pp. 910–916. https://doi.org/10.1039/B812737A CrossrefGoogle Scholar[9] Koh K. S., Chin J. and Chik T. F. W. K., "Role of Electrodes in Ambient Electrolytic Decomposition of Hydroxylammonium Nitrate (HAN) Solutions," Propulsion and Power Research, Vol. 2, No. 3, 2013, pp. 194–200. https://doi.org/10.1016/j.jppr.2013.07.002 CrossrefGoogle Scholar[10] Khare P., Yang V., Meng H., Risha G. A. and Yetter R. A., "Thermal and Electrolytic Decomposition and Ignition of HAN—Water Solutions," Combustion Science and Technology, Vol. 187, No. 7, 2015, 1065–1078. https://doi.org/10.1080/00102202.2014.993033 CrossrefGoogle Scholar[11] Chai W. S., Cheah K. H., Koh K. S., Chin J. and Chik T. F. W. K., "Parametric Studies of Electrolytic Decomposition of Hydroxylammonium Nitrate (HAN) Energetic Ionic Liquid in Microreactor Using Image Processing Technique," Chemical Engineering Journal, Vol. 296, July 2016, pp. 19–27. https://doi.org/10.1016/j.cej.2016.03.094 CrossrefGoogle Scholar[12] Katzakian A. and Grix C., Digital Solid State Propulsion LLC, Reno, NV, U.S. Patent Application for Docket No. 8,317,952 B2, filed 27 Nov. 2012. Google Scholar[13] Katzakian A. and Grix C., Digital Solid State Propulsion LLC, Reno, NV, U.S. Patent Application for Docket No. 8,617,327 B1, filed 31 Dec. 2013. Google Scholar[14] Baird J. K., Lang J. R., Hiatt A. T. and Frederick R. A., "Electrolytic Combustion in the Polyvinyl Alcohol+Hydroxylammonium Nitrate Solid Propellant," Journal of Propulsion and Power, Vol. 33, No. 6, 2017, pp. 1589–1590. https://doi.org/10.2514/1.B36450 LinkGoogle Scholar[15] Teyssedre G. and Laurent C., "Charge Transport Modeling in Insulating Polymers," IEEE Transactions on Dielectrics and Electrical Insulation, Vol. 12, No. 5, 2005, pp. 857–875. https://doi.org/10.1109/TDEI.2005.1522182 CrossrefGoogle Scholar[16] Coelho R., Physics of Dielectrics for the Engineer, Elsevier, New York, 1979, pp. 123–125, 143. Google Scholar[17] Hiatt A. T., "Evaluation of Electric Solid Propellant Responses to Electrical Factors and Electrode Configurations," Ph.D. dissertation, Dept. of Mechanical and Aerospace Engineering, Univ. of Alabama in Huntsville, Huntsville, AL, 2018. Google Scholar[18] Atkins P. and De Paula J., Atkin's Physical Chemistry, 8th ed., Freeman, New York, 2006, pp. 773–774. Google Scholar[19] Devi C. U., Sharma A. K. and Rao V. V. R. N., "Electrical and Optical Properties of Pure and Silver Nitrate-Doped Polyvinyl Alcohol Films," Materials Letters, Vol. 56, No. 3, 2002, pp. 167–174. https://doi.org/10.1016/S0167-577X(02)00434-2 Google Scholar[20] Riveros O. J., "Numerical Solutions for Liquid-Junction Potentials," Journal of Physical Chemistry, Vol. 96, No. 14, 1992, pp. 6001–6004. https://doi.org/10.1021/j100193a065 Google Scholar[21] Sokalksi T., Lingenfelter P. and Lewenstam A., "Numerical Solution of the Coupled Nernst-Planck and Poisson Equations for Liquid Junction and Ion Selective Membrane Potentials," Journal of Physical Chemistry B, Vol. 107, No. 11, 2003, pp. 2433–452. https://doi.org/10.1021/jp026406a Google Scholar[22] Bazant M. Z., Thornton K. and Ajdari A., "Diffuse Charge Dynamics in Electrochemical Systems," Physical Review E, Vol. 70, No. 2, 2004, Paper 021506. https://doi.org/10.1103/PhysRevE.70.021506 Google Scholar[23] Ablowitz M. J. and Segur H., "Exact linearization of a Painleve Transcendent," Physical Review Letters, Vol. 38, No. 20, 1977, pp. 1103–1106. https://doi.org/10.1103/PhysRevLett.38.1103 Google Scholar[24] Leuchtag H. R., "A Family of Differential Equations Arising from Multi-Ion Electrodiffusion," Journal of Mathematical Physics, Vol. 22, No. 6, 1981, pp. 1317–1320. https://doi.org/10.1063/1.525026 Google Scholar[25] Shaw D. J., Introduction to Colloid and Surface Chemistry, 2nd ed., Butterworths, London, 1970, pp. 138–139, Chap. 7. Google Scholar[26] Ieda M., "Dielectric Breakdown Process of Polymers," IEEE Transactions on Dielectrics and Electrical Insulation, Vol. EI-15, No. 3, 1980, pp. 206–224. https://doi.org/10.1109/TEI.1980.298314 Google Scholar[27] Chai W. S., Cheah K. H., Meng H. and Li G., "Experimental and Analytical Study on Electrolytic Decomposition of HAN—Water Solution Using Graphite Electrodes," Journal of Molecular Liquids, Vol. 293, Nov. 2019, Paper 111496. https://doi.org/10.1016/j.molliq.2019.111496 Google Scholar Previous article Next article FiguresReferencesRelatedDetailsCited byMulti-stage combustion characteristics of sodium perchlorate/lithium perchlorate-based electrically controlled solid propellantChemical Engineering Journal, Vol. 456A novel green electrically controlled solid propellant with good electrical response and high energy performanceColloids and Surfaces A: Physicochemical and Engineering Aspects, Vol. 641Controllable ignition, combustion and extinguishment characteristics of HAN-based solid propellant stimulated by electric energyCombustion and Flame, Vol. 236Propulsion Research and Academic Programs at the University of Alabama in Huntsville - 30th Anniversary SummaryRobert A. Frederick, Lawrence Thomas and Phillip M. Ligrani28 July 2021Thermochemistry of Combustion in Polyvinyl Alcohol + Hydroxylammonium Nitrate20 May 2021 | Aerospace, Vol. 8, No. 5Propulsion Research and Academic Programs at the University of Alabama in Huntsville - PRC Graduate Student Production HistoryRobert A. Frederick, L. D. Thomas and Phillip M. Ligrani17 August 2020 What's Popular Volume 36, Number 3May 2020 CrossmarkInformationCopyright © 2020 by the American Institute of Aeronautics and Astronautics, Inc. All rights reserved. All requests for copying and permission to reprint should be submitted to CCC at www.copyright.com; employ the eISSN 1533-3876 to initiate your request. See also AIAA Rights and Permissions www.aiaa.org/randp. TopicsCatalysisChemical KineticsDiffusion CoefficientElectric HeatingGas LawsHeat ConductionHeat TransferHeating SystemHeating, Ventilating, and Air ConditioningMonopropellantsNon-Equilibrium ThermodynamicsPropellantPropulsion and PowerRocket PropellantThermal DiffusionThermochemistry and Chemical KineticsThermodynamic PropertiesThermodynamicsThermophysics and Heat Transfer KeywordsSolid PropellantsConductionElectric Field StrengthPermittivityElectrolytic CombustionGauss's LawPolyvinyl AlcoholThermal EnergyBoundary Layer ThicknessDiffusion CoefficientAcknowledgmentsThis research was performed under contract with the U.S. Army Missile Defense Agency.PDF Received3 April 2019Accepted30 November 2019Published online27 February 2020
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