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함재기탑재 함정의 소티 생성률(Sortie Generation Rate) 영향인자 분석 및 산출 연구

Analysis and Calculation of Factors Influencing the Sortie Generation Rate (SGR) of Aircraft-carrying Naval Ships

  • 정선아 (한국기계연구원 가상공학플랫폼연구본부) ;
  • 윤희창 (서울대학교 조선해양공학과) ;
  • 오승헌 (서울대학교 조선해양공학과) ;
  • 우종훈 (서울대학교 조선해양공학과) ;
  • 배상우 (국방신속획득기술연구원) ;
  • 박동기 (한국기계연구원 가상공학플랫폼연구본부) ;
  • 이웅섭 (한국기계연구원 가상공학플랫폼연구본부) ;
  • 이재혁 (한국기계연구원 가상공학플랫폼연구본부) ;
  • 이혁 (한국기계연구원 가상공학플랫폼연구본부) ;
  • 정정훈 (한국기계연구원 가상공학플랫폼연구본부)
  • Sunah Jung (Virtual Engineering Platform Research Division, Korea Institute of Machinery and Materials) ;
  • Heechang Yoon (Department of Naval Architecture and Ocean Engineering, Seoul National University) ;
  • Seungheon Oh (Department of Naval Architecture and Ocean Engineering, Seoul National University) ;
  • Jonghoon Woo (Department of Naval Architecture and Ocean Engineering, Seoul National University) ;
  • Sangwoo Bae (Defense Rapid Acquisition Technology Research Institute) ;
  • Dongi Park (Virtual Engineering Platform Research Division, Korea Institute of Machinery and Materials) ;
  • Woongsub Lee (Virtual Engineering Platform Research Division, Korea Institute of Machinery and Materials) ;
  • Jaehyuk Lee (Virtual Engineering Platform Research Division, Korea Institute of Machinery and Materials) ;
  • Hyuk Lee (Virtual Engineering Platform Research Division, Korea Institute of Machinery and Materials) ;
  • Junghoon Chung (Virtual Engineering Platform Research Division, Korea Institute of Machinery and Materials)
  • 투고 : 2024.04.14
  • 심사 : 2024.07.02
  • 발행 : 2024.08.20

초록

The Sortie Generation Rate (SGR) is a critical performance indicator for carrier-based aircraft and is a key factor for the carrier design process. This study aims to analyze the factors that affect SGR and establish a representative Sortie Generation Process (SGP) along with simulation results to calculate SGR for a naval ship equipped to carry aircraft. Detailed SGR factors are identified from the perspectives of the aircraft, aviation personnel, and aircraft carrier during the flight preparation stage, and the SGP is established accordingly. As a representative, Korean Navy's CVX basic design is chosen for detailed analysis. The physical dimension and spots for the deck design with time and probabilistic data of SGP are considered to develop a queueing network model for SGR calculation. To consider the specific probabilistic features, the model was solved with discrete event simulation tools(SimPy and AnyLogic) where the results show great agreement. Such findings on SGR factors and calculation are expected to be incorporated in the future development of SGR calculation algorithms and also present guidelines for proper design of aircraft carrier based on concrete operation concept.

키워드

과제정보

이 논문은 국방신속획득기술연구원 선도형 핵심기술 과제(과제명: 소티 생성률 산출 기술, 계약번호: UC20003D)와 한국기계연구원 기본사업(과제명: 차세대 특수선박의 전주기 안전 강화를 위한 디지털 전환 핵심 기술, NK250B)의 재정적지원을 받았으며, 지원에 감사를 드립니다.

참고문헌

  1. Aykiri, B., 2016. Simulation of modeling sortie generation process in TURAF. Master's thesis. Air Force Institute of Technology Wright-Patterson Air Force Base. 
  2. Bingol, G., 2016. Simulation of aircraft sortie generation under an autonomic logistics system. Master's thesis, Air Force Institute of Technology Wright-Patterson Air Force Base. 
  3. DAPA(Defense Acquisition Program Administration) Report, 2021. '21-'35 Core Technology Plan. Korea Research Institute for Defense Technology Planning and Advancement. 
  4. Deller, M., Berg, K., Hale, A., Hall, J., Jewell, A., Jones, W., Kirk, K., Lynn, L., Matheny, A., Measell, B., Roberts, T. and Wigge, M., 2021. Sortie generation process model. Babcock International, P0110-RPT-007-03. 
  5. Dietz, D. and Jenkins, R., 1997. Analysis of aircraft sortie generation with the use of a fork-join queueing network model. Naval Research Logistics, 44(2), pp.153-164. 
  6. Faas, P., 2003. Simulation of autonomic logistics system (ALS) sortie generation. Master's thesis. Air Force Institute of Technology Wright-Patterson Air Force Base. 
  7. Harris, J., 2002. The sortie generation rate model. Proceedings of the Winter Simulation Conference IEEE, 1, pp.864-868. 
  8. Jewell, A., Wigge, M., Gagnon, C., Lynn, L., Kirk, K., Berg, K., Roberts, T., Hale, A., Jones, W., Matheny, A., Hall, J. and Measell, B., 1998. USS Nimitz and carrier airwing nine surge demonstration. Center for Naval Analyses Alexandria VA, CRM 97-111.10. 
  9. Lee, S.D. and Park, P., 2015. The study of aircraft carrier sortie generation system (CVSGS) boundary analysis. Journal of the Korean Society of Systems Engineering, 11(1), pp.73-79. 
  10. Lockheed Martin, 2023. Fast facts about F-35. March.
  11. Sevimli, A., 2016. Sortie generation simulation of a fighter squadron. Master's thesis. Air Force Institute of Technology Wright-Patterson Air Force Base. 
  12. US Department of Defense, 2004. CVN 21 Program Next Generation Aircraft Carrier. 
  13. NAVAIR (Naval Air Systems Command) Report, 2021. The Naval Aviation Maintenance Program (NAMP).