<th id="5nh9l"></th><strike id="5nh9l"></strike><th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th><strike id="5nh9l"></strike>
<progress id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"><noframes id="5nh9l">
<th id="5nh9l"></th> <strike id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span>
<progress id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span><strike id="5nh9l"><noframes id="5nh9l"><strike id="5nh9l"></strike>
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"></span><span id="5nh9l"><video id="5nh9l"></video></span>
<th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th>
<progress id="5nh9l"><noframes id="5nh9l">
  • 《工程索引》(EI)刊源期刊
  • 中文核心期刊
  • 中國科技論文統計源期刊
  • 中國科學引文數據庫來源期刊

留言板

尊敬的讀者、作者、審稿人, 關于本刊的投稿、審稿、編輯和出版的任何問題, 您可以本頁添加留言。我們將盡快給您答復。謝謝您的支持!

姓名
郵箱
手機號碼
標題
留言內容
驗證碼

空中加油機加油軟管系統建模和控制研究進展

劉志杰 宋叢叢 梁金源 李擎 賀威

劉志杰, 宋叢叢, 梁金源, 李擎, 賀威. 空中加油機加油軟管系統建模和控制研究進展[J]. 工程科學學報, 2021, 43(1): 150-160. doi: 10.13374/j.issn2095-9389.2020.05.12.002
引用本文: 劉志杰, 宋叢叢, 梁金源, 李擎, 賀威. 空中加油機加油軟管系統建模和控制研究進展[J]. 工程科學學報, 2021, 43(1): 150-160. doi: 10.13374/j.issn2095-9389.2020.05.12.002
LIU Zhi-jie, SONG Cong-cong, LIANG Jin-yuan, LI Qing, HE Wei. Advances in modeling and control of probe-drogue aerial refueling[J]. Chinese Journal of Engineering, 2021, 43(1): 150-160. doi: 10.13374/j.issn2095-9389.2020.05.12.002
Citation: LIU Zhi-jie, SONG Cong-cong, LIANG Jin-yuan, LI Qing, HE Wei. Advances in modeling and control of probe-drogue aerial refueling[J]. Chinese Journal of Engineering, 2021, 43(1): 150-160. doi: 10.13374/j.issn2095-9389.2020.05.12.002

空中加油機加油軟管系統建模和控制研究進展

doi: 10.13374/j.issn2095-9389.2020.05.12.002
基金項目: 國家自然科學基金資助項目(62073030);廣東省基礎與應用基礎研究基金資助項目(2019A1515110728);北京科技大學順德研究生院科研經費資助項目(2020BH002);北京科技大學青年教師學科交叉研究項目資助項目(FRF-IDRY-19-024)
詳細信息
    通訊作者:

    E-mail:liqing@ies.ustb.edu.cn

  • 中圖分類號: TP273.3

Advances in modeling and control of probe-drogue aerial refueling

More Information
  • 摘要: 空中加油軟管系統作為空中加油過程最重要的組成部分,其建模和控制研究是一個重要研究方向,已經取得了很大進展。首先在概述了空中加油的主要類型的基礎上,分析了軟管式空中加油的特點;然后分別介紹了基于常微分方程和基于偏微分方程的兩種軟管系統的建模方法;進一步針對空中加油機加油全過程分析了加油軟管系統的對接控制、軟管的振動抑制和可控錐套的研究;最后從加油軟管系統的建模和控制方面展望了軟管式空中加油未來的發展趨勢。

     

  • 圖  1  硬管式空中加油[2]

    Figure  1.  Flying boom aerial refueling[2]

    圖  2  軟管式空中加油[6]

    Figure  2.  Probe-drogue aerial refueling[6]

    圖  3  軟管式空中加油軟管的易振特性[11]

    Figure  3.  Hose-drogue assembly vibration during refueling[11]

    圖  4  變長度的有限元模型[11]

    Figure  4.  Finite element model with variable length[11]

    圖  5  受油機控制框圖[37]

    Figure  5.  Receiver controller[37]

    圖  6  加油機控制框圖[44]

    Figure  6.  Control diagram of the tanker[44]

    圖  7  可控錐套。(a)支柱安裝控制面;(b)中間控制活板;(c)阻流板;(d)林冠控制[64]

    Figure  7.  Controllable drogue: (a) strut-mounted control surfaces; (b) mid-section flaps; (c) spoilers; (d) canopy manipulation[64]

    表  1  集中參數系統與分布參數系統

    Table  1.   LPS and DPS

    SystemEquationCharacteristicIndependent variable
    LPSODEFinite dimensional state space1
    LPSODEInfinite dimensional state space≥2
    下載: 導出CSV
    <th id="5nh9l"></th><strike id="5nh9l"></strike><th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th><strike id="5nh9l"></strike>
    <progress id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"><noframes id="5nh9l">
    <th id="5nh9l"></th> <strike id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span>
    <progress id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span><strike id="5nh9l"><noframes id="5nh9l"><strike id="5nh9l"></strike>
    <span id="5nh9l"><noframes id="5nh9l">
    <span id="5nh9l"><noframes id="5nh9l">
    <span id="5nh9l"></span><span id="5nh9l"><video id="5nh9l"></video></span>
    <th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th>
    <progress id="5nh9l"><noframes id="5nh9l">
    259luxu-164
  • [1] Maiersperger W. General design aspects of flight refueling. Aeron Eng Rev, 1954, 13(3): 52
    [2] Liu Y Y. Research on Modeling and Control Technology of Aerial Refueling Boom[Dissertation]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2015

    劉洋洋. 空中加油機硬式授油系統建模與控制技術研究[學位論文]. 南京: 南京航空航天大學, 2015
    [3] Lu Y P, Yang C X, Liu Y Y. A survey of modeling and control technologies for aerial refueling system. Acta Aeron Astron Sinica, 2014, 35(9): 2375

    陸宇平, 楊朝星, 劉洋洋. 空中加油系統的建模與控制技術綜述. 航空學報, 2014, 35(9):2375
    [4] Guo Y G, Yue T, Wang L X. Modeling and simulation for boom aerial refueling device. Flight Dyn, 2017, 35(6): 20 doi: 10.3969/j.issn.1002-0853.2017.06.005

    郭有光, 樂挺, 王立新. 硬式空中加油裝置運動建模與仿真研究. 飛行力學, 2017, 35(6):20 doi: 10.3969/j.issn.1002-0853.2017.06.005
    [5] Quan Q, Wei Z B, Gao J, et al. A survey on modeling and control problems for probe and drogue autonomous aerial refueling at docking stage. Acta Aeron Astron Sinica, 2014, 35(9): 2390

    全權, 魏子博, 高俊, 等. 軟管式自主空中加油對接階段中的建模與控制綜述. 航空學報, 2014, 35(9):2390
    [6] Fezans N, Jann T. Towards automation of aerial refueling manoeuvres with the probe-and-drogue system: modelling and simulation. Transp Res Procedia, 2018, 29: 116 doi: 10.1016/j.trpro.2018.02.011
    [7] Peng C. Research on Dynamic Characteristics of Aerial Refueling Hose in Deployment and Retrieval Process[Dissertation]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2018

    彭程. 空中加油軟管收放過程中動態特性研究[學位論文]. 南京: 南京航空航天大學, 2018
    [8] Huang X, Lu J, Zhang H Y, et al. Wind tunnel test technique for aerodynamic stability of refueling hose-drogue of aerial tanker. Acta Aerodyn Sinica, 2019, 37(1): 140 doi: 10.7638/kqdlxxb-2018.0165

    黃霞, 盧靜, 張海酉, 等. 空中加油機加油軟管錐套氣動穩定性風洞試驗技術. 空氣動力學學報, 2019, 37(1):140 doi: 10.7638/kqdlxxb-2018.0165
    [9] Zhang D, Chen Y, Fu X H. Tanker wake effects on the trailing UAV in autonomous aerial refueling. J Appl Fluid Mech, 2020, 13(2): 629 doi: 10.29252/jafm.13.02.29987
    [10] Bhandari U, Thomas P R, Bullock S, et al. Bow wave effect in probe and drogue aerial refuelling//AIAA Guidance, Navigation and Control Conference. Boston, 2013: AIAA 2013-4695
    [11] Su Z K, Wang H L. Antidisturbance vibration suppression of the aerial refueling hose during the coupling process. Int J Aerospace Eng, 2017, 2017: 9837349
    [12] Ro K, Kuk T, Kamman J W. Dynamics and control of hose-drogue refueling systems during coupling. J Guid Control Dyn, 2011, 34(6): 1694 doi: 10.2514/1.53205
    [13] Ro K, Kamman J W. Modeling and simulation of hose-paradrogue aerial refueling systems. J Guid Control Dyn, 2010, 33(1): 53 doi: 10.2514/1.45482
    [14] Zhang L Y, Zhang H, Yang Y, et al. Dynamics modeling and simulation of docking process in aerial refueling. Acta Aeron Astron Sinica, 2012, 33(7): 1347

    張雷雨, 張洪, 楊洋, 等. 空中加油對接過程的動力學建模與仿真. 航空學報, 2012, 33(7):1347
    [15] Hu M Q, Liu P, Nie X, et al. Influence of air turbulence on the movement of hose-drogue. Flight Dyn, 2010, 28(5): 20

    胡孟權, 柳平, 聶鑫, 等. 大氣紊流對空中加油軟管錐套運動的影響. 飛行力學, 2010, 28(5):20
    [16] Hu M Q, Nie X, Wang L M. Determination of hose static catenary shape in “probe-drogue” in-flight refueling system. J Air Force Eng Univ Nat Sci, 2009, 10(5): 22

    胡孟權, 聶鑫, 王麗明. “插頭-錐管”式空中加油軟管平衡拖曳位置計算. 空軍工程大學學報(自然科學版), 2009, 10(5):22
    [17] Wang W, Liu X C, Wang P, et al. Dynamic modeling and simulation of aerial refueling hose-drogue. Electron Des Eng, 2012, 20(17): 135 doi: 10.3969/j.issn.1674-6236.2012.17.049

    王偉, 劉喜藏, 王鵬, 等. 空中加油軟管—錐套動態建模與仿真. 電子設計工程, 2012, 20(17):135 doi: 10.3969/j.issn.1674-6236.2012.17.049
    [18] Cong J P, Cui L J, Chen H R, et al. Research on safety analysis and simulation validation of HWP in air refueling. J Beijing Univ Aeron Astron, https://doi.org/10.13700/j.bh.1001-5965.2019.0607

    叢繼平, 崔利杰, 陳浩然, 等. 空中加油“甩鞭”現象安全性分析與仿真驗證研究. 北京航空航天大學學報, https://doi.org/10.13700/j.bh.1001-5965.2019.0607
    [19] Wang W, Liu X C, Wang P. Dynamics of hose-drogue refueling systems during coupling. Flight Dyn, 2013, 31(2): 180

    王偉, 劉喜藏, 王鵬. 空中加油對接過程軟管—錐套動態特性. 飛行力學, 2013, 31(2):180
    [20] Wang H T, Dong X M, Guo J, et al. Dynamics modeling and analysis of hose whipping phenomenon of aerial refueling hose-drogue assembly. Acta Aeron Astron Sinica, 2015, 36(9): 3116

    王海濤, 董新民, 郭軍, 等. 空中加油軟管錐套組合體甩鞭現象動力學建模與分析. 航空學報, 2015, 36(9):3116
    [21] Meirovitch L, Baruh H. On the problem of observation spillover in self-adjoint distributed-parameter systems. J Optim Theory Appl, 1983, 39(2): 269 doi: 10.1007/BF00934533
    [22] He W, He X Y, Ge S S. Boundary output feedback control of a flexible string system with input saturation. Nonlinear Dyn, 2015, 80(1-2): 871 doi: 10.1007/s11071-015-1913-8
    [23] He X Y, He W, Sun C Y. Robust adaptive vibration control for an uncertain flexible Timoshenko robotic manipulator with input and output constraints. Int J Syst Sci, 2017, 48(13): 2860 doi: 10.1080/00207721.2017.1360963
    [24] Hong K S. Asymptotic behavior analysis of a coupled time-varying system: application to adaptive systems. IEEE Trans Autom Control, 1997, 42(12): 1693 doi: 10.1109/9.650018
    [25] Vakil M, Fotouhi R, Nikiforuk P N. End-effector trajectory tracking of a flexible link manipulator using integral manifold concept. Int J Syst Sci, 2011, 42(12): 2057 doi: 10.1080/00207721003710631
    [26] He W, Ge S S. Cooperative control of a nonuniform gantry crane with constrained tension. Automatica, 2016, 66: 146 doi: 10.1016/j.automatica.2015.12.026
    [27] He W, Ge S S. Vibration control of a flexible beam with output constraint. IEEE Trans Ind Electron, 2015, 62(8): 5023 doi: 10.1109/TIE.2015.2400427
    [28] Liu Z J, Liu J K, He W. Dynamic modeling and vibration control of a flexible aerial refueling hose. Aerospace Sci Technol, 2016, 55: 92 doi: 10.1016/j.ast.2016.05.017
    [29] Liu Z J, Liu J K, He W. Modeling and vibration control of a flexible aerial refueling hose with variable lengths and input constraint. Automatica, 2017, 77: 302 doi: 10.1016/j.automatica.2016.11.002
    [30] Valasek J, Gunnam K, Kimmett J, et al. Vision-based sensor and navigation system for autonomous air refueling. J Guid Control Dyn, 2005, 28(5): 979 doi: 10.2514/1.11934
    [31] Tandale M D, Bowers R, Valasek J. Trajectory tracking controller for vision-based probe and drogue autonomous aerial refueling. J Guid Control Dyn, 2006, 29(4): 846 doi: 10.2514/1.19694
    [32] Wang J, Patel V V, Cao C Y, et al. Novel L1 adaptive control methodology for aerial refueling with guaranteed transient performance. J Guid Control Dyn, 2008, 31(1): 182 doi: 10.2514/1.31199
    [33] Su Z K, Wang H L, Shao X L, et al. Autonomous aerial refueling precise docking based on active disturbance rejection control//IECON 2015 - 41st Annual Conference of the IEEE Industrial Electronics Society. Yokohama, 2015: 4574
    [34] Su Z K, Wang H L, Li N. Anti-disturbance rapid vibration suppression of the flexible aerial refueling hose. Mech Syst Signal Process, 2018, 104: 87 doi: 10.1016/j.ymssp.2017.10.034
    [35] Su Z K, Wang H L. Probe motion compound control for autonomous aerial refueling docking. Aerospace Sci Technol, 2018, 72: 1 doi: 10.1016/j.ast.2017.10.033
    [36] Yu Z Q, Zhang Y M, Qu Y H. Fault-tolerant control for autonomous aerial refueling against actuator fault in receiver UAV. IFAC PapersOnLine, 2018, 51(24): 274 doi: 10.1016/j.ifacol.2018.09.588
    [37] Ren J R, Dai X H, Quan Q, et al. Reliable docking control scheme for probe-drogue refueling. J Guid Control Dyn, 2019, 42(11): 2511 doi: 10.2514/1.G003708
    [38] Philip N K, Ananthasayanam M R. Relative position and attitude estimation and control schemes for the final phase of an autonomous docking mission of spacecraft. Acta Astron, 2003, 52(7): 511 doi: 10.1016/S0094-5765(02)00125-X
    [39] Sinopoli B, Micheli M, Donato G, et al. Vision based navigation for an unmanned aerial vehicle//Proceedings of the 2001 IEEE International Conference on Robotics and Automation. Seoul, 2001: 1757
    [40] Fravolini M L, Ficola A, Napolitano M R, et al. Development of modelling and control tools for aerial refueling for UAVs//AIAA Guidance, Navigation, and Control Conference and Exhibit. Austin, 2003: AIAA 2003-5798
    [41] Fravolini M L, Ficola A, Campa G, et al. Modeling and control issues for autonomous aerial refueling for UAVs using a probe-drogue refueling system. Aerospace Sci Technol, 2004, 8(7): 611 doi: 10.1016/j.ast.2004.06.006
    [42] Wang L X, Yin H P, Guo Y G, et al. Closed-loop motion characteristic requirements of receiver aircraft for probe and drogue aerial refueling. Aerospace Sci Technol, 2019, 93: 105293 doi: 10.1016/j.ast.2019.07.026
    [43] Thomas P R, Bullock S, Richardson T S, et al. Collaborative control in a flying-boom aerial refueling simulation. J Guid Control Dyn, 2015, 38(7): 1274 doi: 10.2514/1.G000486
    [44] Su Z K, Wang H L, Shao X L, et al. A robust back-stepping based trajectory tracking controller for the tanker with strict posture constraints under unknown flow perturbations. Aerospace Sci Technol, 2016, 56: 34 doi: 10.1016/j.ast.2016.07.001
    [45] Vassberg J, Yeh D, Blair A, et al. Numerical simulations of KC-10 wing-mount aerial refueling hose-drogue dynamics with a reel take-up system//21st Applied Aerodynamics Conference. Orlando, 2003: 23
    [46] Alden R E, Vennero G G. Aerial Refueling System: US Patent, 5141178. 1992-8-25
    [47] Wang H T, Dong X M, Xue J P, et al. Dynamic modeling of a hose-drogue aerial refueling system and integral sliding mode backstepping control for the hose whipping phenomenon. Chin J Aeron, 2014, 27(4): 930 doi: 10.1016/j.cja.2014.06.010
    [48] Su Z K, Xie M Y, Li C T. RISE based active vibration control for the flexible refueling hose. Aerospace Sci Technol, 2019, 92: 387 doi: 10.1016/j.ast.2019.06.014
    [49] Liu Z J, Liu J K, He W. Adaptive boundary control of a flexible manipulator with input saturation. Int J Control, 2016, 89(6): 1191 doi: 10.1080/00207179.2015.1125022
    [50] Nguyen T L, Do K D, Pan J. Boundary control of two-dimensional marine risers with bending couplings. J Sound Vib, 2013, 332(16): 3605 doi: 10.1016/j.jsv.2013.02.026
    [51] He W, Zhang S, Ge S S. Robust adaptive control of a thruster assisted position mooring system. Automatica, 2014, 50(7): 1843 doi: 10.1016/j.automatica.2014.04.023
    [52] Kang W, Fridman E. Distributed stabilization of Korteweg de Vries Burgers equation in the presence of input delay. Automatica, 2019, 100: 260 doi: 10.1016/j.automatica.2018.11.025
    [53] Orlov Y, Pisano A, Usai E. Exponential stabilization of the uncertain wave equation via distributed dynamic input extension. IEEE Trans Autom Control, 2011, 56(1): 212 doi: 10.1109/TAC.2010.2089380
    [54] Conrad F. Stabilization of beams by pointwise feedback control. SIAM J Control Optim, 1990, 28(2): 423 doi: 10.1137/0328023
    [55] Ammari K, Tucsnak M. Stabilization of Bernoulli-Euler beams by means of a pointwise feedback force. SIAM J Control Optim, 2000, 39(4): 1160 doi: 10.1137/S0363012998349315
    [56] Xu G Q, Wang H X. Stabilisation of Timoshenko beam system with delay in the boundary control. Int J Control, 2013, 86(6): 1165 doi: 10.1080/00207179.2013.787494
    [57] Liu Z J, Liu J K, He W. Deadzone compensation based boundary control of a flexible aerial refueling hose with output constraint. IFAC PapersOnline, 2017, 50(1): 645 doi: 10.1016/j.ifacol.2017.08.113
    [58] Chang L, Jia Y M. Adaptive control of a hose and drogue system with input nonlinearities and partial state constraints. Int J Control Autom Syst, 2019, 17(10): 2508 doi: 10.1007/s12555-019-0070-0
    [59] Ro K, Kuk T, Kamman J W. Active control of aerial refueling hose-drogue systems//AIAA Guidance, Navigation, and Control Conference. Toronto, 2010: AIAA 2010-8400
    [60] Ro K, Basaran E. Aerodynamic investigations of Paradrogue assembly in aerial refueling system//44th AIAA Aerospace Sciences Meeting and Exhibit. Reno, 2006: AIAA 2006-855
    [61] Michael S F. Controllable Drogue: US Patent, 8186623 B2. 2012-05
    [62] Williamson W R, Reed E, Glenn G J, et al. Controllable drogue for automated aerial refueling. J Aircraft, 2010, 47(2): 515 doi: 10.2514/1.44758
    [63] Kirkland W L, Reed E. Stabilized Controllable Drogue for Aerial Flight Refueling: US Patent, 2011/0226905 A1. 2011-09
    [64] Thomas P R, Bhandari U, Bullock S, et al. Advances in air to air refuelling. Prog Aerospace Sci, 2014, 71: 14 doi: 10.1016/j.paerosci.2014.07.001
    [65] Krispin Y, Velger M. Controllable Hose-and-Drogue In-Flight Refueling System: European Patent, EP1094001. 2003-09-04
    [66] Feldmann M S. Controllable Drogue: US Patent, 20100001124. 2010-07-01
    [67] Saggio F, Ribbens W B, Ooi K K. Stabilization of A Drogue Body: US Patent, 20050045768. 2005-03-03
    [68] Basom R R. Breakaway: A Look at the Integration of Aerial Refueling and Unmanned Aircraft Systems in Future Operations[Dissertation]. Kansas: US Army Command and General Staff College, 2007
    [69] Gu R, Sun Y T, Song X C, et al. Analysis of display and control of aerial tanker. Telecom World, 2019(7): 57 doi: 10.3969/j.issn.1006-4222.2019.07.035

    谷瑞, 孫永濤, 宋昕宸, 等. 空中加油機顯示與控制淺析. 通訊世界, 2019(7):57 doi: 10.3969/j.issn.1006-4222.2019.07.035
    [70] Meng Y, Gan X, Bai G X. Path following control of underground mining articulated vehicle based on the preview control method. Chin J Eng, 2019, 41(5): 662

    孟宇, 甘鑫, 白國星. 基于預瞄距離的地下礦用鉸接車路徑跟蹤預測控制. 工程科學學報, 2019, 41(5):662
    [71] Zheng W H, Jia Y M. Adaptive tracking control for omnidirectional mobile robots with full-state constraints and input saturation. Chin J Eng, 2019, 41(9): 1176

    鄭文昊, 賈英民. 具有狀態約束與輸入飽和的全向移動機器人自適應跟蹤控制. 工程科學學報, 2019, 41(9):1176
  • 加載中
圖(7) / 表(1)
計量
  • 文章訪問數:  2333
  • HTML全文瀏覽量:  1010
  • PDF下載量:  139
  • 被引次數: 0
出版歷程
  • 收稿日期:  2020-05-12
  • 刊出日期:  2021-01-25

目錄

    /

    返回文章
    返回