Open Access
Issue
JNWPU
Volume 43, Number 6, December 2025
Page(s) 1091 - 1100
DOI https://doi.org/10.1051/jnwpu/20254361091
Published online 02 February 2026
  1. BERTIN J D, CUMMINGS R M. Fifty years of hypersonics: where we've been, where we're going[J]. Progress in Aerospace Sciences, 2003, 39(6/7): 511–536 [Google Scholar]
  2. ZHANG Can, WANG Yipeng, YE Lei. Summary of the technological development of overseas hypersonics in the past ten years[J]. Tactical Missile Technology, 2020, 204(6): 81–86 (in Chinese) [Google Scholar]
  3. YE Zhengyin, MENG Xianzong, LIU Cheng, et al. Progress and prospects on aeroelasticity of hypersonic vehicles[J]. Acta Aerodynamica Sinica, 2018, 36(6): 984–994 (in Chinese) [Google Scholar]
  4. WU Zhigang, HUI Junpeng, YANG Chao. Hypersonic aerothermoelastic analysis of wings[J]. Journal of Beijing University of Aeronautics and Astronautics, 2005, 31(3): 270–273 (in Chinese) [Google Scholar]
  5. YANG Chao, ZHAO Huangda, WU Zhigang. Research progress of aerothermoelasticity of air-breathing hypersonic vehicles[J]. Journal of Beijing University of Aeronautics and Astronautics, 2019, 45(10): 1911–1923 (in Chinese) [Google Scholar]
  6. CULLER A J, MCNAMARA J J. Studies on fluid-thermal-structural coupling for aerothermoelasticity in hypersonic flow[J]. AIAA Journal, 2010, 48(8): 1721–1738 [Article] [Google Scholar]
  7. YE Kun. Research on the critical aerothermoelastic problems for air-breathing hypersonic vehicle[D]. Xi'an: Northwestern Polytechnical University, 2018 (in Chinese) [Google Scholar]
  8. QIN Mengzhu. The aerothermoelastic simulation of aerospace vehicle in hypersonic environment[D]. Xi'an: Northwestern Polytechnical University, 2017 (in Chinese) [Google Scholar]
  9. XU Fei. Multi-field coupled fluid-thermal-structural analysis of hypersonic wing[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2015 (in Chinese) [Google Scholar]
  10. LI Qiuyan, LI Gang, WEI Yangtian, et al. Review of aeroelasticity design for advanced fighter[J]. Acta Aeronautica et Astronautica Sinica, 2020, 41(6): 44–70 (in Chinese) [Google Scholar]
  11. FALKIEWICZ N J, CESNIK C E S, CROWELL A R, et al. Reduced-order aerothermoelastic framework for hypersonic vehicle control simulation[J]. AIAA Journal, 2011, 49(8): 1625–1646 [Article] [Google Scholar]
  12. HUANG D, ROKITA T, FRIEDMANN P P. An aerothermoelatic analysis framework enhanced by model order reduction with applications[C]//58th AIAA/ASCE/AHS/ASC Structures, Structural Dynamics, and Materials Conference, 2017 [Google Scholar]
  13. YANG Xiangwen, WU Jie, YE Kun, et al. Study on aerothermoelasticity of a hypersonic all-movable control surface[J]. Chinese Journal of Theoretical and Applied Mechanics, 2014, 46(4): 626–630 (in Chinese) [Google Scholar]
  14. XIN Jianqiang, QU Qiang, XU Xiaojing, et al. Aerothermoelastic analysis method of hypersonic vehicle rudder[J]. Structure & Environment Engineering, 2015, 42(3): 1–9 (in Chinese) [Google Scholar]
  15. GUPTA K K, BACH C. Systems identification approach for a computational-fluid-dynamics-based aeroelastic analysis[J]. AIAA Journal, 2007, 45(12): 2820–2827 [Article] [Google Scholar]
  16. ZHANG Yu, BAI Junqiang, QU Feng. Study on design characteristics of airfoil pressure distribution for low Mach number general aircraft[J]. Journal of Northwestern Polytechnical University, 2023, 41(1): 28–38 [Article] (in Chinese) [Google Scholar]
  17. LI Suxun. Hypersonic flow characteristics for typical configurations[M]. Beijing: National Defense Industry Press, 2007 (in Chinese) [Google Scholar]
  18. KEMP N H, ROSE P H, DETRA R W. Laminar heat transfer around blunt bodies in dissociated air[J]. Journal of the Aerospace Sciences, 1959, 26(7): 421–430 [Article] [Google Scholar]
  19. ECKERT E R G. Engineering relations for friction and heat transfer to surfaces in high velocity flow[J]. Journal of the Aeronautical Sciences, 1955, 22(8): 585–587 [Google Scholar]
  20. ENGEL C D, PRAHARAJ S. Miniver upgrade for the avid system1: lanmin user's manual[R]. NASA-CR-172212, 1983 [Google Scholar]
  21. YANG Kai, GAO Xiaowei. Engineering algorithm for aeroheating environment of hypersonic aircrafts[J]. Missiles and Space Vehicles, 2010, 308(4): 19–23 (in Chinese) [Google Scholar]
  22. CHEN Xin, LIU Li, LI Yulin, et al. Engineering calculation of aerodynamic heating for airfoils of hypersonic vehicles[J]. Journal of Projectiles, Rockets, Missiles and Guidance, 2013, 33(3): 133–137 (in Chinese) [Google Scholar]

Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.

Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.

Initial download of the metrics may take a while.