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Performance Improvement Technique of Three-Dimensional Guidance Law Suitable for Ammunition

포발사 탄약에 적합한 3차원 유도법칙의 성능개선 기법

  • Received : 2018.02.05
  • Accepted : 2018.07.10
  • Published : 2018.08.01

Abstract

In this paper, we propose a method to improve the performance by guidance technique and applying it to the precision guided ammunition. The proposed method is a technique designed to reduce the target error of ammunition by reducing the projectile error without analyzing the motion characteristics of the shot. This technique is applied to the moving average filter technique which is widely used as signal processing technique to reduce the fluctuation of the output of the inboard mounting inertial sensor caused by the rotation and the coning motion of the ammunition. In order to compare the performance of the applied technique including the simple 3D guided control technique and the proposed improvement technique. It is confirmed that the application of this technique improves the accuracy of impact of the cannon - launched ammunition with severe environmental conditions and irregular motion characteristics unlike the missile.

이 논문에서는 정밀유도 포탄의 성능향상을 위한 유도기법을 제안하였다. 본 논문에서 제안하는 기법은 탄의 운동특성분석 없이 탄도와의 오차를 최대한 줄여 탄약의 표적오차를 줄이기 위해서 고안한 기법이다. 이 기법은 탄약의 회전 및 세차운동으로 발생하는 탄내 장착 관성센서의 출력 변동폭을 줄이기 위해 신호처리 기법으로 많이 사용되는 이동평균필터 기법을 적절히 응용한 것으로 관성센서 출력값을 보정하는 것이 목적이다. 단순히 3차원 유도조종 기법을 적용한 경우와 개선기법을 포함하여 적용한 기법의 성능을 비교하였으며, 명확한 성능개선을 확인하였다. 이 기법의 적용으로 유도탄과는 달리 가혹한 환경조건 및 불규칙한 운동 특성을 가지는 포발사 탄약의 탄착 정확도가 개선되는 것을 확인하였다.

Keywords

References

  1. Frescomi, F., and Plostins, P., "Control Mechanism Strategies for Spin-Stabilized Projectiles," ARL-TR-4611, Army Research Laboratory, 2008.
  2. Philippe, W., Friedrich, L., Denis, B., Joseph. J., Lutz, L., Klaus, B., and Albrecht, R., "Wind Tunnel tests and open-loop trajectory simulations for a 155mm canards guided spin stabilized projectile," AIAA 2008-6881, The Proceedings of AIAA Atmospheric Flight Mechanics Conference, 2008, pp.18-21.
  3. Moorhead, J. S., "Precision Guidance Kits(PGKs) : Improving the Accuracy of Conventional Cannon Rounds, Control Mechanism Strategies for Spin-Stabilized Projectiles," Field Artillery, sill-www.army.mil/famag/index.asp, 2007.
  4. Gkritxapis, D. N., Margaris, D. P., Panagiotopoulos, E. E., Kaimakamis, G., and Siassiakos, K., "Prediction of the Impact Point for Spin and Fin Stabilized Projectiles," WSEAS Tr. on Information Science and Applications, Vol. 5, Issue 12, 2008, pp.1667-1676.
  5. Zarchan, P., Tactical and Strategic Missile Guidance, 5th ed, American Institute of Aeronautics and Astronautics, Inc., Chap.2, 2007.
  6. Kim, M., and Grider, K. V., "Terminal guidance for impact attitude angle constrained flight trajectories," IEEE Trans. Aerospace and Electronic Systems, Vol. AES-9, No. 6, 1973, pp.852-859. https://doi.org/10.1109/TAES.1973.309659
  7. Park, W. S., Ryoo, C. K., Kim, Y. H., and Kim, J. J., "A Guidance Law to Maintain Ballistic Trajectory for Smart Munitions," Journal of The Korean Society for Aeronautical and Space Sciences, Vol. 39, No. 9, September 2011, pp.839-847. https://doi.org/10.5139/JKSAS.2011.39.9.839
  8. De Marco, A., Duke, E. L., and Berndt, J. S., "A general solution to the aircraft trim problem," AIAA Modeling and Simulation Technologies Conference and Exhibit, 2007.
  9. Lam, V. C., "Circular Guidance Laws With and Without Terminal Velocity Direction Constraints," AIAA Guidance, Navigation and Control Conference and Exhibit, 18-21 August 2008, Honolulu, Hawaii.