397
Views
15
CrossRef citations to date
0
Altmetric
Research Article

Effect of Organic Fluoride on Combustion Performance of HTPB Propellants with Different Aluminum Content

, , , , &
Pages 702-715 | Received 07 Apr 2019, Accepted 16 Sep 2019, Published online: 29 Sep 2019

References

  • Ao, W., P. J. Liu, X. Lv, and W. J. Yang. 2016. Research progress on aluminum agglomeration in solid propellant combustion process. J. Astronaut. 37:371–80.
  • Atwood, A. I., P. O. Curran, K. J. Kraeutle, T. P. Parr, and D. M. Hanson-Parr. 1998. Decomposition studies of an AP based solid rocket propellant. CPIA Publ. 681:73–87.
  • Babuk, V. A., V. A. Vassiliev, and V. V. Sviridov. 2000. Formation of condensed combustion products at the burning surface of solid rocket propellant. In Solid propellant chemistry, combustion, and motor interior ballistics,ed. V. Yang, T. B. Brill, and W. Z. Ren, 749–76. Reston: American institute of Aeronautics and Astronautics.
  • Barclay, C. H., H. Bozorgzadeh, and E. Kemnitz. 2002. Reactivity of fluorinated γ-alumina and β-aluminum (III) fluoride surfaces towards hydrogen halides and tert-butyl chloride. J. Chem. Soc. Dalton Trans. 2:40–47. doi:10.1039/b106229h.
  • Gaurav, M., and P. A. Ramakrishna. 2016. Effect of mechanical activation of high specific surface area aluminum with PTFE on composite solid propellant. Combust. Flame. 166:203–15. doi:10.1016/j.combustflame.2016.01.019.
  • Gong, L., X. Y. Zhou, Y. P. Guo, Y. P. Li, J. M. Li, and R. J. Yang. 2019. Combustion of composite propargyl-terminated copolyether propellant containing ammonium dinitramide. Combust. Sci. Technol. doi:10.1080/00102202.2019.1620738.
  • Hobosyan, M. A., K. G. Kirakosyan, and S. L. Kharatyan. 2015. PTFE-Al2O3 reactive interaction at high heating rates. J. Therm. Anal. Calorim. 119:245–51. doi:10.1007/s10973-014-4080-0.
  • Jeenu, R., K. Pinumalla, and D. Deepak. 2010. Size distribution of particles in combustion products of aluminized composite propellant. J. Propul. Power 26:715–23. doi:10.2514/1.43482.
  • Li, B., and L. L. Shao. 2008. Appraisal of alumina and aluminum hydroxide by XRD. Inorg. Chem. Ind. 40:54–57.
  • Liu, J. H. 1997. Physicochemical property of explosives and propellants, 46–56. Beijing: Beijing Institute of Technology Press.
  • Lv, X. W., M. X. Zha, Z. Y. Ma, F. Q. Zhao, S. Y. Xu, and H. X. Xu. 2017. Fabrication, characterization, and combustion performance of Al/HTPB composite particles. Combust. Sci. Technol. 189:312–21. doi:10.1080/00102202.2016.1210604.
  • Martin, L., and C. Santanu. 2009. Theoretical study of elementary steps in the reactions between aluminum and teflon fragments under combustive environments. J. Phys. Chem. A. 113:5933–41. doi:10.1021/jp810156j.
  • Phung, T. K., C. Herrera, M. Á. Larrubia, M. García-Dieguéz, E. Finocchio, L. J. Alemany, and G. Busca. 2014. Surface and catalytic properties of some gamma-Al2O3 powders. Appl. Catal. A. 483:41–51. doi:10.1016/j.apcata.2014.06.020.
  • Pokhil, P. F., V. M. Mal’tsev, V. S. Logachev, and V. A. Seleznev. 1971. Combustion of aluminum particles in a tongue of flame of condensed systems. Fiz. Goreniya Vzryva 7:51–70.
  • Shafirovich, E., A. Mukasyan, L. Thiers, A. Varma, B. Legrand, C. Chauveau, and I. Gokalp. 2002. Ignition and combustion of Al particles clad by Ni. Combust. Sci. Technol. 174:125–40. doi:10.1080/713712997.
  • Sippel, T. R., S. F. Son, and L. J. Groven. 2013. Altering reactivity of aluminum with selective inclusion of polytetrafluoroethylene through mechanical activation. Propellants Explos. Pyrotech. 38:286–95. doi:10.1002/prep.201200102.
  • Sippel, T. R., S. F. Son, and L. J. Groven. 2014. Aluminum agglomeration reduction in a composite propellant using tailored Al/PTFE particles. Combust. Flame. 161:311–21. doi:10.1016/j.combustflame.2013.08.009.
  • Sippel, T. R., S. F. Son, L. J. Groven, S. S. Zhang, and E. L. Dreizin. 2015. Exploring mechanisms for agglomerate reduction in composite solid propellants with polyethylene inclusion modified aluminum. Combust. Flame. 162:846–54. doi:10.1016/j.combustflame.2014.08.013.
  • Tan, H. M. 2015. The chemistry and technology of solid rocket propellant, 93. Beijing: Beijing Institute of Technology Press.
  • Wang, W. L., J. M. Li, R. J. Yang, Z. Liu, and S. P. Li. 2017. Effect of fluorine-containing organic additives on combustion of condensed phase products of aluminized polyether propellants. Acta Armamentarii 38:704–10.
  • Xiao, F., J. M. Li, X. Y. Zhou, and R. J. Yang. 2018. Preparation of mechanically activated aluminum-rich Al-Co3O4 powders and their thermal properties and reactivity with water steam at high temperature. Combust. Sci. Technol. 190:1935–49. doi:10.1080/00102202.2018.1477771.
  • Yang, R. J., H. M. An, and H. M. Tan. 2003. Combustion and thermal decomposition of HNIW and HTPB/HNIW propellants with additives. Combust. Flame. 135:463–73. doi:10.1016/j.combustflame.2003.08.008.
  • Yang, R. J., Y. P. Li, Y. F. Liu, and Z. C. Hua. 2000. Advanced system of monitor and measurement for the combustion process and rate of solid propellants. J. Propul. Technol. 21:86–88.
  • Yetter, R. A., G. A. Risha, and S. F. Son. 2009. Metal particle combustion and nanotechnology. Proc. Combust. Inst. 32:1819–38. doi:10.1016/j.proci.2008.08.013.
  • Yuan, J. F., J. Z. Liu, Y. N. Zhou, J. R. Wang, and T. W. Xv. 2019. Aluminum agglomeration of AP/HTPB composite propellant. Acta Astronaut. 156:14–22. doi:10.1016/j.actaastro.2018.11.009.
  • Zhen, F., X. Y. Zhou, M. S. Zou, L. C. Meng, R. J. Yang, L. Q. Wang, F. L. Huang, and J. M. Li. 2019. Investigation of the agglomeration reduction mechanism of the aluminized HTPB propellant containing ferric perfluorooctanoate [Fe(PFO)3]. RSC Adv. 9:19031–38. doi:10.1039/c9ra02393c.
  • Zhou, X. Y., M. S. Zou, F. L. Huang, R. J. Yang, and X. Y. Guo. 2017. Effect of organic fluoride on combustion agglomerates of aluminized HTPB solid propellant. Propellants Explos. Pyrotech. 42:417–22. doi:10.1002/prep.201600096.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.