Volume 52 Issue 3
Mar.  2026
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DAI Y R,LI J,RONG W,et al. Aerodynamic characteristics of supersonic mid-gore reefing disk-gap-band parachute under different reefing ratios[J]. Journal of Beijing University of Aeronautics and Astronautics,2026,52(3):864-873 (in Chinese)
Citation: DAI Y R,LI J,RONG W,et al. Aerodynamic characteristics of supersonic mid-gore reefing disk-gap-band parachute under different reefing ratios[J]. Journal of Beijing University of Aeronautics and Astronautics,2026,52(3):864-873 (in Chinese)

Aerodynamic characteristics of supersonic mid-gore reefing disk-gap-band parachute under different reefing ratios

doi: 10.13700/j.bh.1001-5965.2023.0813
Funds:

National Natural Science Foundation of China (12072377); Hunan Provincial Natural Science Foundation of China (2022JJ30678)

More Information
  • Corresponding author: E-mail:lijian_bbmouth@163.com
  • Received Date: 13 Dec 2023
  • Accepted Date: 27 Mar 2024
  • Available Online: 01 Apr 2026
  • Publish Date: 03 Apr 2024
  • The increasing the mass of Mars landing probes requires enlarging the parachute area to ensure stable deceleration performance while controlling the parachute opening force to avoid excessive structural weight penalties on the probe. One of the effective ways to meet the above needs is the reefing disk-gap-band parachute. In this article, the functional link between the reefing ratio and the resistance coefficient ratio, projection area ratio, and reefing rope load is obtained using fluid-structure coupling simulation analysis based on the Mars environment. The stability characteristics of the reefing disk-gap-band parachute were studied by computational fluid dynamics simulation. The research of this paper shows that the disk-gap-band parachute can achieve the controlled change of resistance performance, and can provide stable performance to meet the engineering application.

     

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  • [1]
    《降落伞技术导论》编写组. 降落伞技术导论[M]. 北京: 国防工业出版社, 1977: 113-117.

    Introduction to Parachute Technology Editorial Group. Introduction to parachute technology[M]. Beijing: National Defense Industry Press, 1977: 113-117(in Chinese).
    [2]
    WITKOWSKI A, BRUNO R. Mars exploration rover parachute decelerator system program overview[C]//Proceedings of the 17th AIAA Aerodynamic Decelerator Systems Technology Conference and Seminar. Reston: AIAA, 2003: 2100.
    [3]
    ADAMS D S, WITKOWSKI A, KANDIS M. Phoenix Mars scout parachute flight behavior and observations[C]//Proceedings of the 2011 Aerospace Conference. Piscataway: IEEE Press, 2011: 1-8.
    [4]
    CRUZ J R, WAY D W, SHIDNER J D, et al. Reconstruction of the Mars science laboratory parachute performance[J]. Journal of Spacecraft and Rockets, 2014, 51(4): 1185-1196.
    [5]
    STEINBERG S Y, SIEMERS P M, SLAYMAN R G. Development of the Viking parachute configuration by wind-tunnel investigation[J]. Journal of Spacecraft and Rockets, 1974, 11(2): 101-107.
    [6]
    李健, 房冠辉, 吕智慧, 等. 天问一号火星探测器伞系减速分系统设计与验证[J]. 中国科学(技术科学), 2022, 52(2): 264-277.

    LI J, FANG G H, LYU Z H, et al. Design and verification of parachute deceleration subsystem of Tianwen-1 Mars probe[J]. Scientia Sinica (Technologica), 2022, 52(2): 264-277(in Chinese).
    [7]
    MUPPIDI S, O’FARRELL C, VAN NORMAN J W, et al. ASPIRE aerodynamic models and flight performance[C]//Proceedings of the AIAA Aviation 2019 Forum. Reston: AIAA, 2019: 3376.
    [8]
    SONNEVELDT B S, CLARK I G, O’FARRELL C. Summary of the advanced supersonic parachute inflation research experiments (ASPIRE) sounding rocket tests with a disk-gap-band parachute[C]//Proceedings of the AIAA Aviation 2019 Forum. Reston: AIAA, 2019: 3482.
    [9]
    代雨柔, 李健, 薛晓鹏, 等. 超声速下盘缝带伞不同收口方式的气动特性[J]. 航空学报, 2024, 45(7): 68-80.

    DAI Y R, LI J, XUE X P, et al. Aerodynamic characteristics of supersonic disk-gap-band parachute with different reefing ways[J]. Acta Aeronautica et Astronautica Sinica, 2024, 45(7): 68-80(in Chinese).
    [10]
    PREISSER J S, GROW R B. High-altitude flight test of a reefed 12.2-meter-diameter disk-gap-band parachute with deployment at a mach number of 2.58[M]. Washington, D.C.: National Aeronautics and Space Administration, 1971: 20-25.
    [11]
    WITKOWSKI A, KANDIS M. Reefing the Mars science laboratory parachute[C]//Proceedings of the 2010 IEEE Aerospace Conference. Piscataway: IEEE Press, 2010: 1-6.
    [12]
    林斌, 吴卓. 降落伞收口技术[J]. 航天返回与遥感, 2012, 33(4): 1-12.

    LIN B, WU Z. Reefing technology of parachute[J]. Aerospace Return and Remote Sensing, 2012, 33(4): 1-12(in Chinese).
    [13]
    WITKOWSKI A, KANDIS M, REUTER J, et al. Design of subscale parachute models for MSL supersonic wind tunnel testing[C]//Proceedings of the 20th AIAA Aerodynamic Decelerator Systems Technology Conference and Seminar. Reston: AIAA, 2009: 2999.
    [14]
    辛春亮, 朱星宇, 王凯, 等. LS-DYNA有限元建模、分析和优化设计[M]. 北京: 清华大学出版社, 2022.

    XIN C L, ZHU X Y, WANG K, et al. Finite element modeling analysis and optimization design of LS-DYNA[M]. Beijing: Tsinghua University Press, 2022(in Chinese).
    [15]
    刘凯欣, 王景焘, 王刚, 等. 时-空守恒元解元(CE/SE)方法综述[J]. 力学进展, 2011, 41(4): 447-461.

    LIU K X, WANG J T, WANG G, et al. A review on the CE/SE method[J]. Advances in Mechanics, 2011, 41(4): 447-461(in Chinese).
    [16]
    CHANG S C. The method of space-time conservation element and solution element: a new approach for solving the Navier-Stokes and Euler equations[J]. Journal of Computational Physics, 1995, 119(2): 295-324.
    [17]
    CHANG S C, WANG X Y, CHOW C Y. The space-time conservation element and solution element method: a new high-resolution and genuinely multidimensional paradigm for solving conservation laws[J]. Journal of Computational Physics, 1999, 156(1): 89-136.
    [18]
    刘海涛, 徐建中. 求解Euler方程的空间-时间守恒格式[J]. 工程热物理学报, 1997, 18(3): 294-299.

    LIU H T, XU J Z. A space-time conservation scheme for solving the two-dimensional Euler equations[J]. Journal of Engineering Thermophysics, 1997, 18(3): 294-299(in Chinese).
    [19]
    张增产, 沈孟育. 改进的时空守恒元和解元方法[J]. 清华大学学报(自然科学版), 1997, 37(8): 65-68.

    ZHANG Z C, SHEN M Y. Improved scheme of space time conservation element and solution element[J]. Journal of Tsinghua University (Science and Technology), 1997, 37(8): 65-68(in Chinese).
    [20]
    徐欣, 贾贺, 陈雅倩, 等. 织物透气性对火星用降落伞气动特性影响机理[J]. 航空学报, 2022, 43(12): 301-318.

    XU X, JIA H, CHEN Y Q, et al. Influence mechanism of fabric permeability of canopy on aerodynamic performance of Mars parachute[J]. Acta Aeronautica et Astronautica Sinica, 2022, 43(12): 301-318(in Chinese).
    [21]
    夏元清. 火星探测器进入、下降与着陆过程的导航、制导与控制——“恐怖”七分钟[M]. 北京: 科学出版社, 2017: 34-38.

    XIA Y Q. Navigation, guidance and control of Mars rover entry, descent and landing—seven minutes of terror[M]. Beijing: Science Press, 2017: 34-38(in Chinese).
    [22]
    HALL N. Mars atmosphere model[EB/OL]. (2021-05-13) [2021-07-27]. https://www.grc.nasa.gov/www/k-12/airplane/atmosmrm.html.
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