| [1] |
OTTER J J, STAŃKOWSKI T, ROBINSON M, et al. Installation aerodynamics of civil aero-engine exhaust systems[J]. Aerospace Science and Technology, 2019, 89: 345-355.
|
| [2] |
TRIPATHI A, MANISANKAR C, VERMA S B. Control of base pressure for a boat-tailed axisymmetric afterbody via base geometry modifications[J]. Aerospace Science and Technology, 2015, 45: 284-293.
|
| [3] |
张永升, 刘丹, 郎卫东. 后体参数对运输机后体阻力的影响[J]. 力学季刊, 2013, 34(4): 585-590.
|
|
ZHANG Y S, LIU D, LANG W D. Effects of geometry parameters on drag about afterbodies of transport air-craft[J]. Chinese Quarterly of Mechanics, 2013, 34(4): 585-590 (in Chinese).
|
| [4] |
DODBELE S S, VAN DAM C P, VIJGEN P M H W, et al. Shaping of airplane fuselages for minimum drag[J]. Journal of Aircraft, 1987, 24(5): 298-304.
|
| [5] |
MCBRIDE E E, FISHER L J. Experimental investigation of the effect of rear-fuselage shape on ditching behavior[R]. Washington, D.C.: NASA Center for Aerospace Information (CASI), 1953.
|
| [6] |
LEAVITT L D, BARE E A. Effects of twin-vertical-tail parameters on twin-engine afterbody/nozzle aerodynamic characteristics: NASA-TP-2158[R]. Washington, D.C.: NASA Center for Aerospace Information (CASI), 1983.
|
| [7] |
LEAVITT L D. Effect of empennage location on twin-engine afterbody-nozzle aerodynamic characteristics at Mach Numbers from 0.6 to 1.2: NASA-TP-2116[R]. Washington, D.C.: NASA Center for Aerospace Information (CASI), 1983.
|
| [8] |
NICOLOSI F, DELLA VECCHIA P, CILIBERTI D, et al. Fuselage aerodynamic prediction methods[J]. Aerospace Science and Technology, 2016, 55: 332-343.
|
| [9] |
RANJAN R, AULTMAN M, GAITONDE D. Mean flowfield evolution with upsweep angle in a simulated cargo fuselage aftbody[J]. Journal of Aircraft, 2020, 57(6): 1156-1169.
|
| [10] |
任超奇, 王强, 胡海洋, 等. 带尾翼干扰的喷管-后体一体化流场数值模拟[J]. 航空发动机, 2014, 40(4): 69-74.
|
|
REN C Q, WANG Q, HU H Y, et al. Integrated nozzle-afterbody flowfield simulation with empennage interference[J]. Aeroengine, 2014, 40(4): 69-74 (in Chinese).
|
| [11] |
POLHAMUS E C, SPREEMANN K P. Subsonic wind-tunnel investigation of the effect of fuselage afterbody on directional stability of wing-fuselage combinations at high angles of attack: NACA-TN-3896[R]. Washington, D.C.: NASA Center for Aerospace Information (CASI), 1956.
|
| [12] |
RUNCKEL J F. Interference between exhaust system and afterbody of twin-engine fuselage configurations: NASA-TN-D-7525[R]. Washington, D.C.: NASA Center for Aerospace Information (CASI), 1974.
|
| [13] |
NUGENT J, PENDERGRAFT O C. Comparison of wind tunnel and flight test afterbody and nozzle pressures for a twin-jet fighter aircraft at transonic speeds[R]. Washington, D.C.: NASA Center for Aerospace Information (CASI), 1987.
|
| [14] |
杨体浩, 白俊强, 王丹, 等. 考虑发动机干扰的尾吊布局后体气动优化设计[J]. 航空学报, 2014, 35(7): 1836-1844.
|
|
YANG T H, BAI J Q, WANG D, et al. Aerodynamic optimization design for after-body of tail-mounted engine layout considering interference of en-gines[J]. Acta Aeronautica et Astronautica Sinica, 2014, 35(7): 1836-1844 (in Chinese).
|
| [15] |
杨锦文, 陈海昕, 张宇飞, 等. 后体单边膨胀面气动优化研究[J]. 气动研究与试验, 2023, 1(4): 92-101.
|
|
YANG J W, CHEN H X, ZHANG Y F, et al. After-body single expansion surfaces aerodynamic op-timization[J]. Aerodynamic Research & Experiment, 2023, 1(4): 92-101 (in Chinese).
|
| [16] |
李娜, 吉洪湖. 混合排气二元收敛喷管与发动机流量匹配设计方法[J]. 航空动力学报, 2011, 26(9): 2141-2147.
|
|
LI N, JI H H. Study on matching method for core and bypass mass flux of 2-D convergent nozzle of mixed flow[J]. Journal of Aerospace Power, 2011, 26(9): 2141-2147 (in Chinese).
|
| [17] |
MARTENS R E. F-15 nozzle/afterbody integration[J]. Journal of Aircraft, 1976, 13(5): 327-333.
|
| [18] |
潘睿丰. 与后体相容的新型气动矢量喷管性能研究[D].南京: 南京航空航天大学, 2021.
|
|
PAN R F. Study on performance of a new aerodynamic vector noz-zle compatible with afterbody[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2021 (in Chinese).
|
| [19] |
任超奇, 王强, 胡海洋. 收-扩喷管与飞行器后体的一体化气动优化设计[J]. 航空动力学报, 2014, 29(10): 2294-2302.
|
|
REN C Q, WANG Q, HU H Y. Integrated aerodynamic optimization design of convergent-divergent nozzle and vehicle afterbody[J]. Journal of Aerospace Power, 2014, 29(10): 2294-2302 (in Chinese).
|
| [20] |
张瑞霞, 许羚, 巩亚南, 等. 单环调节轴对称收扩喷管全包线推力特性数值分析[J]. 航空发动机, 2024, 50(4): 82-87.
|
|
ZHANG R X, XU L, GONG Y N, et al. Numerical analysis of full-envelope thrust characteristics of axisymmetric convergent-divergent nozzle with single actuating ring[J]. Aeroengine, 2024, 50(4): 82-87 (in Chinese).
|
| [21] |
WILLIAM B C. Comparison of turbulence models for nozzle-afterbody flows with propulsive Jets: NASA-TP-3592[R].Washington, D.C.: NASA Center for Aerospace Information (CASI), 1996.
|