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Design and Simulation of Seats for Emergency Landing Conditions in Electrical VTOLs

Yıl 2024, Cilt: 05 Sayı: 01, 5 - 19, 21.06.2024

Öz

Emerging electrification technologies in aviation and recent advances drive the increased usage of electrical vertical take-off and landing (VTOL) air vehicles. Weight considerations are predominant due to the weaker powertrain and lower payload capacity. Moreover, most systems are automated, and there is no distinction between pilot and passenger seats anymore. Conventional aircraft seating typically exhibits excessive weight, necessitating the development of lightweight troop seats with simple designs and textile seat pans and backrests. This research focuses primarily on the design aspects of these lightweight troop seats. There are already guiding military standards and civilian codes for physical tests for passenger or pilot seats. Nevertheless, there needs to be a comprehensive document combining all of these and explaining how simulation tools can be practically used for the same purpose. Consequently, a generic design was generated based on the troop seat of military helicopters, which was then tested and simulated virtually by finite element analysis according to MIL-S-85510, CS27, and CS29 standards. After finalizing the static tests for forward, rearward, lateral, downward, and upward g forces on a 10-degree floor deformation in the longitudinal axis, implicit dynamic tests were conducted with loading in longitudinal and vertical directions as specified by the MIL-S-85510 standards. Then, hotspot analysis is made for stress interpretation. As a result, a near-optimum design was achieved with stresses 10% lower than the yield stress of the materials, which can be used on board an electrical VTOL.

Kaynakça

  • Aldemir, H. O., & Ucler, C. (2022). Airspace deregulation for UAM: Self-organizing VTOLs in metropoles. The Collegiate Aviation Review International, 40(1).
  • Alharasees, O., Jazzar, A., Kale, U., & Rohacs, D. (2023). Aviation communication: the effect of critical factors on the rate of misunderstandings. Aircraft engineering and aerospace technology, 95(3), 379-388.
  • Amaze, C., Kuharat, S., Bég, O. A., Kadir, A., Jouri, W., & Bég, T. A. (2024). Finite element stress analysis and topological optimization of a commercial aircraft seat structure. European Mechanical Science, 8(2), 1-17.
  • Balaban, H. and Penekli, U. (2020). Sonlu elemanlar yöntemlerinin tasarım süreçlerine yararlı etkileri, Mühendis ve Makina, 47, 17-22.
  • Bhavikatti, S. S. (2005). Finite element analysis. New Age International.
  • Bhonge, P. S. (2008). A methodology for aircraft seat certification by dynamic finite element analysis (Doctoral dissertation, Wichita State University).
  • Caccese, V. (2010). Fatigue in laser welds. In Failure Mechanisms of Advanced Welding Processes (pp. 218-257). Woodhead Publishing.
  • Demircan, M. (2020). Energy Absorber Design and Analysis for Military Utility Helicopter Troop Seats (Master’s thesis, Hacettepe University).
  • Dinç, A. (2020). Sizing of a Turboprop Engine Powered High Altitude Unmanned Aerial Vehicle and Its Propulsion System for an Assumed Mission Profile in Turkey. International Journal of Aviation Science and Technology, 01(01), 9-13.
  • DoD (1981). MIL-S-85510 (AS) Military Specification Seats, Helicopter Cabin, Crashworthy, General Specification for.
  • DNV (2011). Fatigue design of offshore steel structures. Rev. 3.
  • EASA (2018). Certification Specifications CS-27: Large Small Rotorcrafts, Amendment 10.
  • EASA (2018). Certification Specifications CS-29: Large Rotorcrafts, Amendment 11.
  • Intwala, A., & Parikh, Y. (2015). A review on vertical take off and landing (vtol) vehicles. International Journal of Innovative Research in Advanced Engineering (IJIRAE), 2(2), 187-191.
  • Ozdemir, U., Aktas, Y. O., Vuruskan, A., Dereli, Y., Tarhan, A. F., Demirbag, K., ... & Inalhan, G. (2014). Design of a commercial hybrid VTOL UAV system. Journal of Intelligent & Robotic Systems, 74, 371-393.
  • Özturk, G., & Kayran, A. (2018). Energy absorption mechanisms and crash analysis of helicopter seats. In ASME International Mechanical Engineering Congress and Exposition (Vol. 52040, p. V04BT06A046). American Society of Mechanical Engineers.
  • Reilly, M. J., & ARMY AIR MOBILITY RESEARCH AND DEVELOPMENT LAB FORT EUSTIS VA EUSTIS DIRECTORATE. (1977). Crashworthy troop seat testing program (p. 0206). USAAMRDL-TR-77-13, US Army Research and Technology Laboratories, Ft. Eustis, VA.
  • Roylance, D. (2001). Finite element analysis. Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge.
  • Trivers, N. C., Carrick, C. A., & Kim, I. Y. (2020). Design optimization of a business aircraft seat considering static and dynamic certification loading and manufacturability. Structural and Multidisciplinary Optimization, 62(6), 3457-3476.
  • Tzanakis, G., Kotzakolios, A., Giannaros, E., & Kostopoulos, V. (2023). Structural Analysis of a Composite Passenger Seat for the Case of an Aircraft Emergency Landing. Applied Mechanics, 4(1), 1-19.
  • Wiggenraad, J. F. M. (1997). Design, Fabrication, Test and Analysis of a Crashworthy Troop Seat, European Rotorcraft Forum.
  • Zhou, Y., Zhao, H., & Liu, Y. (2020). An evaluative review of the VTOL technologies for unmanned and manned aerial vehicles. Computer Communications, 149, 356-369.
Yıl 2024, Cilt: 05 Sayı: 01, 5 - 19, 21.06.2024

Öz

Kaynakça

  • Aldemir, H. O., & Ucler, C. (2022). Airspace deregulation for UAM: Self-organizing VTOLs in metropoles. The Collegiate Aviation Review International, 40(1).
  • Alharasees, O., Jazzar, A., Kale, U., & Rohacs, D. (2023). Aviation communication: the effect of critical factors on the rate of misunderstandings. Aircraft engineering and aerospace technology, 95(3), 379-388.
  • Amaze, C., Kuharat, S., Bég, O. A., Kadir, A., Jouri, W., & Bég, T. A. (2024). Finite element stress analysis and topological optimization of a commercial aircraft seat structure. European Mechanical Science, 8(2), 1-17.
  • Balaban, H. and Penekli, U. (2020). Sonlu elemanlar yöntemlerinin tasarım süreçlerine yararlı etkileri, Mühendis ve Makina, 47, 17-22.
  • Bhavikatti, S. S. (2005). Finite element analysis. New Age International.
  • Bhonge, P. S. (2008). A methodology for aircraft seat certification by dynamic finite element analysis (Doctoral dissertation, Wichita State University).
  • Caccese, V. (2010). Fatigue in laser welds. In Failure Mechanisms of Advanced Welding Processes (pp. 218-257). Woodhead Publishing.
  • Demircan, M. (2020). Energy Absorber Design and Analysis for Military Utility Helicopter Troop Seats (Master’s thesis, Hacettepe University).
  • Dinç, A. (2020). Sizing of a Turboprop Engine Powered High Altitude Unmanned Aerial Vehicle and Its Propulsion System for an Assumed Mission Profile in Turkey. International Journal of Aviation Science and Technology, 01(01), 9-13.
  • DoD (1981). MIL-S-85510 (AS) Military Specification Seats, Helicopter Cabin, Crashworthy, General Specification for.
  • DNV (2011). Fatigue design of offshore steel structures. Rev. 3.
  • EASA (2018). Certification Specifications CS-27: Large Small Rotorcrafts, Amendment 10.
  • EASA (2018). Certification Specifications CS-29: Large Rotorcrafts, Amendment 11.
  • Intwala, A., & Parikh, Y. (2015). A review on vertical take off and landing (vtol) vehicles. International Journal of Innovative Research in Advanced Engineering (IJIRAE), 2(2), 187-191.
  • Ozdemir, U., Aktas, Y. O., Vuruskan, A., Dereli, Y., Tarhan, A. F., Demirbag, K., ... & Inalhan, G. (2014). Design of a commercial hybrid VTOL UAV system. Journal of Intelligent & Robotic Systems, 74, 371-393.
  • Özturk, G., & Kayran, A. (2018). Energy absorption mechanisms and crash analysis of helicopter seats. In ASME International Mechanical Engineering Congress and Exposition (Vol. 52040, p. V04BT06A046). American Society of Mechanical Engineers.
  • Reilly, M. J., & ARMY AIR MOBILITY RESEARCH AND DEVELOPMENT LAB FORT EUSTIS VA EUSTIS DIRECTORATE. (1977). Crashworthy troop seat testing program (p. 0206). USAAMRDL-TR-77-13, US Army Research and Technology Laboratories, Ft. Eustis, VA.
  • Roylance, D. (2001). Finite element analysis. Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge.
  • Trivers, N. C., Carrick, C. A., & Kim, I. Y. (2020). Design optimization of a business aircraft seat considering static and dynamic certification loading and manufacturability. Structural and Multidisciplinary Optimization, 62(6), 3457-3476.
  • Tzanakis, G., Kotzakolios, A., Giannaros, E., & Kostopoulos, V. (2023). Structural Analysis of a Composite Passenger Seat for the Case of an Aircraft Emergency Landing. Applied Mechanics, 4(1), 1-19.
  • Wiggenraad, J. F. M. (1997). Design, Fabrication, Test and Analysis of a Crashworthy Troop Seat, European Rotorcraft Forum.
  • Zhou, Y., Zhao, H., & Liu, Y. (2020). An evaluative review of the VTOL technologies for unmanned and manned aerial vehicles. Computer Communications, 149, 356-369.
Toplam 22 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Havacılık Malzemeleri, Havacılık Yapıları
Bölüm Research Articles
Yazarlar

Hasan Totoş 0009-0001-1829-3046

Çağlar Üçler 0000-0003-4209-7915

Yayımlanma Tarihi 21 Haziran 2024
Gönderilme Tarihi 14 Şubat 2024
Kabul Tarihi 17 Mayıs 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 05 Sayı: 01

Kaynak Göster

APA Totoş, H., & Üçler, Ç. (2024). Design and Simulation of Seats for Emergency Landing Conditions in Electrical VTOLs. International Journal of Aviation Science and Technology, 05(01), 5-19.

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