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연소실 경계조건 변화에 따른 핀틀 노즐의 동특성 연구

Dynamic Characteristics of Pintle Nozzle about Changes of Chamber Boundary Condition

  • 투고 : 2018.01.31
  • 심사 : 2018.04.08
  • 발행 : 2018.10.01

초록

본 연구에서는 연소실 경계조건 변화에 따른 핀틀 노즐의 동특성을 파악하기 위해 수치해석을 수행하였다. 핀틀의 움직임을 모사하기 위해 노즐과 핀틀의 영역을 분리하여 격자를 생성하고 중첩격자기법을 사용하였다. 연소실의 경계조건은 일정질량유량과 추진제 연소속도 조건을 적용하여 결과를 비교하였다. 일정질량유량조건은 입구에 유입되는 질량유량을 정량적으로 변화시켜 연소실의 압력과 추력 특성을 파악하였다. 추진제 연소속도 조건은 연소실 압력에 의한 연소속도 식을 고려하였다. 추진제 연소속도 조건은 일정질량유량조건과는 다른 비선형적 유량변화를 나타내며, 작은 유량으로도 큰 연소실 압력변화를 가져온다.

In this study, numerical simulations were performed to determine the dynamic characteristics of a pintle nozzle, with changes to the chamber boundary conditions. To apply movement, to the pintle, the nozzle and pintle were created separately by an auto-grid generation program using an overset grid method. The chamber boundary conditions were selected between a constant mass-flow rate condition and a propellant burn-back condition. The pressure and thrust characteristics of the constant mass-flow rate condition were determined by changing the ratio of the mass-flow rate in the inlet. The propellant burn-back condition was considered by formulation of the combustion rate. The burn-back conditions represented nonlinear phenomena, unlike the constant mass flow rate, and a small flow rate resulted in a large change in the chamber pressure.

키워드

참고문헌

  1. Kim, S.S. and Huh, H.I., “Recent Progress in R&D and Prospect of Divert and Attitude Control System,” Journal of The Korean Society of Propulsion Engineers, Vol. 16, No. 6, pp. 62-72, 2012. https://doi.org/10.6108/KSPE.2012.16.6.062
  2. Ronald, W.H., Gary, N.H. and Wiley, J.L., Space Propulsion Analysis and Design, 1st ed., McGraw-Hill, Inc., New York, N.Y., U.S.A., pp. 295-364, 1995.
  3. Godai, T. and Shimizu, M., "Pressure Exponent of Controllable Solid Rocket Propellants," AIAA/SAE 8th Joint Propulsion Specialist Conference, New Orleans, L.A., U.S.A., AIAA 72-1135, Nov. 1972.
  4. Ostrander, M.J., Bergmans, J.L., Thomas, M.E. and Burroughs, S.L., "Pintel Motor Challenges for Tactical Missile," 36th AIAA/ASME/SAE/ASEE Joint Propulsion Conference and Exhibit, Las Vegas, N.V., U.S.A., AIAA 2000-3310, Jul. 2000.
  5. Kim, J. K., "Study on the Effects of Pintle Shapes and Position in Nozzle Flowfield, and Thrust in a Solid Rocket Motor with Pintle Nozzle," Ph.D. Dissertation, Dept. of Mechanical Design Engineering, Chungnam National Univ., Chungnam, Korea, 2011.
  6. Kim, J.K. and Park, J.H., “Investigation of Pintle Shape Effect on the Nozzle Performance,” Journal of The Korean Society for Aeronautical and Space Sciences, Vol. 36, No. 8, pp. 790-796, 2008. https://doi.org/10.5139/JKSAS.2008.36.8.790
  7. Park, H.J., Kim, L.N., Heo, J.Y., Sung, H.G. and Yang, J.S., "Numerical Study on Dynamic Characteristics of Pintle Nozzle for Variant Thrust: Part 1," 37th The Korean Society of Propulsion Engineers Fall Conference, Busan, Korea, pp. 213-217, Nov 2011.
  8. Heo, J.Y., Kim, K.W., Sung, H.G. and Yang, J.S., "Numerical Study on Dynamic Characteristics of Pintle Nozzle for Variant Thrust: Part 2," 38th The Korean Society of Propulsion Engineers Spring Conference, Gumi, Korea, pp. 123-128, May 2012.
  9. Heo, J.Y., Jeong, K.Y. and Sung, H.G., "Numerical Study on Dynamic Characteristics of Pintle Nozzle for Variant Thrust: Part 3," 40th The Korean Society of Propulsion Engineers Spring Conference, Busan, Korea, pp. 523-528, May 2013.
  10. Heo, J.Y., Jeong, K.Y. and Sung. H.G., “Numerical Study fo the Dynamic Characteristics of Pintle Nozzles for Variable Thrust,” Journal of Propulsion and Power, Vol. 31, No. 1, pp. 230-237, 2017. https://doi.org/10.2514/1.B35257
  11. Heo, J.Y., Jung, J.Y., Sung, H.G., Yang, J.S. and Lee, J.H., “Compressibility Correction Effects of Two-equation Turbulence Models for a Supersonic Through-type Pintle Nozzle with Large Scale Separation Flow,” Journal of The Korean Society of Propulsion Engineers, Vol. 17, No. 1, pp. 66-69, 2013.
  12. Choi, J.S. and Huh, H.I., "Steady State Experimental Study of Pintle Shape for Modulatable Thruster Applications," 36th The Korean Society of Propulsion Engineers Spring Conference, Osan, Korea, pp. 153-156, May 2011.
  13. Choi, J.S. and Huh, H.I., "Preliminary Experimental Results of Pressure Control for Mountable Thruster Applications," 37th The Korean Society of Propulsion Engineers Fall Conference, Busan, Korea, pp. 18-21, Nov 2011.
  14. Lee, S.K. and Huh, H.I., "Preliminary Results of Experimental and Computational Study of Steady-state Pintle Driven Nozzle Throat Flow," 38th The Korean Society of Propulsion Engineers Spring Conference, Gumi, Korea, pp. 392-396, May 2012.
  15. Jeong, K.Y., Kang, D.G. and Lee, H.J., "Unsteady Characteristics of Pintle Nozzle using Overset Grid Method," The Korean Society for Computational Fluids Engineering Spring Conference, Gyeong-ju, Korea, pp. 10-11, May 2017.
  16. Spalart, P.R. and Allmaras, S.R., "A One-equation Turbulence Model for Aerodynamic Flows," 30th Aerospace Sciences Meeting & Exhibit, Reno, N.V., U.S.A., AIAA 92-0439, Jan. 1992.
  17. Liou, M.S., "A Sequel to AUSM : AUSM+," Journal of Computational Physics, Vol. 129, No. 2 pp.364-382, 1996. https://doi.org/10.1006/jcph.1996.0256
  18. Liou, M.S., "Ten Years in the Making : AUSM Family," NASA TM-2001-210977, 2001.