陈苏麒,郭正,刘多能
收稿日期:2026-02-12
修回日期:2026-06-15
出版日期:2026-07-03
发布日期:2026-07-03
通讯作者:
郭正
Received:2026-02-12
Revised:2026-06-15
Online:2026-07-03
Published:2026-07-03
Contact:
Zheng Guo
摘要: 在低空经济发展和“双碳”目标的战略背景下,分布式推进技术通过多推进器与机翼(机身)的协同设计,显著提升飞行器总体性能,已成为先进飞行器的重要发展方向之一。然而,推进器与机翼之间存在复杂的耦合流动机理,且其设计与优化问题涉及高维、多目标与多学科耦合等特性,因而面临诸多挑战。本文梳理了分布式推进技术的基本概念与发展脉络,聚焦于气动设计与优化研究进展。在气动设计方面,从风洞试验与数值模拟两方面归纳了推进器-机翼之间的耦合流动机理及其所带来的气动性能增益;在优化研究方面,从部件级优化与总体概念设计两个层面综述了相关研究进展。最后,对分布式推进技术的未来发展趋势进行了展望,旨在为后续研究提供参考。
陈苏麒 郭正 刘多能. 分布式推进飞行器气动设计与优化研究进展[J]. 航空学报, doi: 10.7527/S1000-6893.2026.33505.
| [1] FAROKHI S. Understanding aviation's impact on the environment [M]. John Wiley & Sons Ltd. 2019: 201-281.[2] 王庆一. 2021能源数据 [R]. 北京: 绿色创新发展中心, 2022. WANG Q Y. 2021 energy data[R]. Beijing: Green Innovation and Development Center, 2022. (in Chinese).[3] Air Transport Action Group. Waypoint 2050: Balancing growth in connectivity with a comprehensive global air transport response to the climate emergency: vision of net-zero aviation by mid-century[R]. Geneva: Air Transport Action Group, 2021.[4] SEHRA A K, WHITLOW W. Propulsion and power for 21st century aviation [J]. Progress in Aerospace Sciences, 2004, 40(4): 199-235.[5] GOHARDANI A S, DOULGERIS G, SINGH R. Challenges of future aircraft propulsion: A review of distributed propulsion technology and its potential application for the all electric commercial aircraft [J]. Progress in Aerospace Sciences, 2011, 47(5): 369-391.[6] COUNCIL N R. A review of united states air force and department of defense aerospace propulsion needs [M]. Washington, DC: The National Academies Press. 2007: 288.[7] SCHETZ J A, HOSDER S, DIPPOLD V, et al. Propulsion and aerodynamic performance evaluation of jet-wing distributed propulsion [J]. Aerospace Science and Technology, 2010, 14(1): 1-10.[8] LUNDBLADH A, GR?NSTEDT T. Distributed propulsion and turbofan scale effects [C]//In: proceedings of the 17th Symposium on Airbreathing Engine. Reston, VA: AIAA, 2005.[9] DORNIER C. The Dornier Do.X. seaplane [J]. Aircraft Engineering and Aerospace Technology, 1929, 1(10): 339-341.[10] GOLDBERG C, NALIANDA D, PILIDIS P, et al. Economic viability assessment of NASA's blended wing body N3-X aircraft [C]//In: proceedings of the 53rd AIAA/SAE/ASEE Joint Propulsion Conference. Reston, VA: AIAA, 2017: 4604.[11] DEERE K A, VIKEN J K, VIKEN S, et al. Computational analysis of a wing designed for the X-57 distributed electric propulsion aircraft [C]//In: proceedings of the 35th AIAA applied aerodynamics conference. Reston, VA: AIAA, 2017: 3923.[12] JOIS H, HONG A S, ANSELL P J. High-lift aerodynamics of integrated distributed propulsion systems with thrust vectoring [J]. Journal of Aircraft, 2024, 61(6): 1686-1699.[13] VIKEN J K, VIKEN S, DEERE K A, et al. Design of the cruise and flap airfoil for the X-57 Maxwell distributed electric propulsion aircraft [C]//In: proceedings of the 35th AIAA Applied Aerodynamics Conference. Reston, VA: AIAA, 2017: 3922.[14] BORER N K, PATTERSON M D. X-57 high-lift propeller control schedule development [C]//In: proceedings of the AIAA Aviation 2020 Forum. Reston, VA: AIAA, 2020.[15] BORER N K, PATTERSON M D, VIKEN J K, et al. Design and performance of the NASA SCEPTOR distributed electric propulsion flight demonstrator [C]//In: proceedings of the 16th AIAA Aviation Technology, Integration, and Operations Conference. Reston, VA: AIAA, 2016: 3920.[16] FELDER J, TONG M, CHU J. Sensitivity of mission energy consumption to turboelectric distributed propulsion design assumptions on the N3-X hybrid wing body aircraft [C]//In: proceedings of the 48th AIAA/ASME/SAE/ASEE Joint Propulsion Conference &Amp. Reston, VA: AIAA, 2012. [17] STEINER H-J, SEITZ A, WIECZOREK K, et al. Multi-disciplinary design and feasibility study of distributed propulsion systems [C]//In: proceedings of the 28th International Congress of the Aeronautical Sciences. Edinburgh, UK: Optimage Ltd, 2012: 403-414.[18] UPADHYAY P, ZAMAN K B M Q. Effect of incoming boundary-layer characteristics on performance of a distributed propulsion system [J]. Journal of Propulsion and Power, 2021, 37(5): 701-712.[19] WICKERSHEIM R, KE?LER M, KR?MER E. Noise prediction of a distributed propulsion system using the actuator line method [J]. AIAA Journal, 2023, 62(3): 1123-1135.[20] THOMAS R H, BURLEY C L, LOPES L V, et al. System noise assessment and the potential for low noise hybrid wing body aircraft with open rotor propulsion [C]//In: proceedings of the 52nd Aerospace Sciences Meeting. Reston, VA: AIAA, 2014.[21] 黄俊. 分布式电推进飞机设计技术综述[J]. 航空学报, 2021, 42(3): 624037. HUANG J. Survey on design technology of distributed electric propulsion aircraft[J]. Acta Aeronauticaet Astronautica Sinica , 2021, 42(3): 624037. (in Chinese).[22] GOHARDANI A S. A synergistic glance at the prospects of distributed propulsion technology and the electric aircraft concept for future unmanned air vehicles and commercial/military aviation [J]. Progress in Aerospace Sciences, 2013, 57: 25-70.[23] KIM H D, PERRY A T, ANSELL P J. Progress in distributed electric propulsion vehicles and technologies [R]. Washington, DC: NASA, 2020.[24] PELZ P F, LEISE P, MECK M. Sustainable aircraft design—A review on optimization methods for electric propulsion with derived optimal number of propulsors [J]. Progress in Aerospace Sciences, 2021, 123: 100714.[25] KIM H D, PERRY A T, ANSELL P J. A review of distributed electric propulsion concepts for air vehicle technology [C]//In: proceedings of the 2018 AIAA/IEEE Electric Aircraft Technologies Symposium (EATS). Piscataway, NJ: IEEE. 2018: 1-21.[26] SIMONS G M. Howard hughes and the spruce goose: the story of the H-K1 hercules [M]. Pen and Sword, 2014.[27] YAROS S F, SEXSTONE M G, HUEBNER L D, et al. Synergistic airframe-propulsion interactions and integrations[R]. Washington, DC: NASA, 1998.[28] KUMMER J D, DANG T Q. High-Lift propulsive airfoil with integrated crossflow fan [J]. Journal of Aircraft, 2006, 43(4): 1059-1068.[29] KO A, SCHETZ J A, MASON W H. Assessment of the potential advantages of distributed propulsion for aircraft [C]//In: proceedings of the XVI International Symposium on Air Breathing Engines. Reston, VA: AIAA, 2003.[30] CENTURION. NASA. Centurion—reaching the new century on solar power: FS-1998-10-056 DFRC [R]. Washington, DC: NASA, 1998.[31] LIEBECK R. Design of the blended-wing-body subsonic transport [C]//In: proceedings of the 40th AIAA Aerospace Sciences Meeting & Exhibit. Reston, VA: AIAA, 2002.[32] KO A, LEIFSSON L, SCHETZ J, et al. MDO of a blended-wing-body transport aircraft with distributed propulsion [C]//In: proceedings of the AIAA's 3rd Annual Aviation Technology, Integration, and Operations (ATIO) Forum. Reston, VA: AIAA, 2003.[33] AMEYUGO G. Distributed propulsion and future aerospace technologies [D]. Cranfield University, 2007.[34] LUONGO C A, MASSON P J, NAM T, et al. Next generation more-electric aircraft: A potential application for HTS superconductors [J]. IEEE Transactions on applied superconductivity, 2009, 19(3): 1055-1068.[35] FELDER J L, KIM H D, BROWN G V. Turboelectric distributed propulsion engine cycle analysis for hybrid-wing-body aircraft [C]// In proceedings of the 47th AIAA Aerospace Sciences Meeting including The New Horizons Forum and Aerospace Exposition. Reston, VA: AIAA, 2019.[36] GIBSON A, HALL D, WATERS M, et al. The potential and challenge of turboelectric propulsion for subsonic transport aircraft [C]//In: proceedings of the 48th AIAA Aerospace Sciences Meeting Including the New Horizons Forum and Aerospace Exposition. Reston, VA: AIAA, 2010.[37] DEL ROSARIO R. Advanced concepts for aircraft LTO NOx reduction: a NASA perspective [C]//In: proceedings of the Aircraft Noise and Emissions Reduction Symposium. Paris, France: 3AF, 2011.[38] ESTRADA RODAS E A, LEWE J-H, MAVRIS D N. Feasibility focused design of electric on-demand aircraft concepts [C]//In: proceedings of the 14th AIAA Aviation Technology, Integration, and Operations Conference. Reston, VA: AIAA, 2014: 2856.[39] SCHMOLLGRUBER P, ATINAULT O, CAFARELLI I, et al. Multidisciplinary exploration of DRAGON: an ONERA hybrid electric distributed propulsion concept [C]//In: proceedings of the AIAA Scitech 2019 Forum. Reston, VA: AIAA, 2019.[40] MALISKA H, SCHULTZ V, CLARKE S, et al. X-57 Maxwell lessons learned report: 20250001718 [R]. Washington, DC: NASA, 2024.[41] CLARKE S, LIN Y, KLOESEL K, et al. Enabling electric propulsion for flight hybrid electric aircraft research at AFRC [C]//In: proceedings of the AIAA Aviation Technology, Integration, and Operations Conference. Reston, VA: AIAA, 2014[42] NASA. X-57 technical paper [C]. Washington, DC : NASA, 2025.[43] FREDERICK M A, SMITH M S, YOO S Y, et al. Development of the X-57 aerodynamic database: 20250001715 [R]. Washington, DC: NASA, 2025.[44] KREIN A. Clean sky 2 Joint udertaking development plan [R]. Brussels, Belgium: Clean Sky 2 Joint Undertaking, 2021.[45] PATTERSON M D, DASKILEWICZY M J, GERMANZ B J. Conceptual design of electric aircraft with distributed propellers: Multidisciplinary analysis needs and aerodynamic modeling development [C]//In: proceedings of the 52nd Aerospace Sciences Meeting. Reston, VA: AIAA, 2014.[46] CILIBERTI D, DELLA VECCHIA P, ORTICALCO V, et al. Aero-propulsive interactions between UAV wing and distributed propellers due to their relative position [J]. Drones, 2023, 7(1): 49.[47] BECKERS M F, SCHOLLENBERGER M, LUTZ T, et al. Numerical investigation of high-lift propeller positions for a distributed propulsion system [J]. Journal of Aircraft, 2023, 60(4): 995-1006.[48] CHEN S, ZHENG G, LIU D. Impact of propeller arrangement on aerodynamic performance for a high-lift distributed propulsion system [J]. Engineering Applications of Computational Fluid Mechanics, 2025, 19(1): 2505701.[49] GAO Z, ZHENG S, ZHANG S, et al. Aerodynamic characteristics study on multiple propellers in distributed electric propulsion configurations [J]. Physics of Fluids, 2025, 37(1): 015131.[50] DE VRIES R, VAN ARNHEM N, AVALLONE F, et al. Experimental investigation of over-the-wing propeller–boundary-layer interaction [J]. AIAA Journal, 2021, 59(6): 2169-2182.[51] PAPATHAKIS K V. Design and development of a 200-kW turbo-electric distributed propulsion testbed: 20170001279 [R]. Reston, VA: AIAA, 2017.[52] STOKKERMANS T C A, VELDHUIS L L M. Propeller performance at large angle of attack applicable to compound helicopters [J]. AIAA Journal, 2021, 59(6): 2183-2199.[53] VAN ARNHEM N, DE VRIES R, SINNIGE T, et al. Aerodynamic performance and static stability characteristics of aircraft with tail-mounted propellers [J]. Journal of Aircraft, 2021, 59(2): 415-432.[54] LI Q, ?ZTüRK K, SINNIGE T, et al. Design and experimental validation of swirl-recovery vanes for propeller propulsion systems [J]. AIAA Journal, 2018, 56(12): 4719-4129.[55] VAN ARNHEM N, DE VRIES R, SINNIGE T, et al. Engineering method to estimate the blade loading of propellers in nonuniform flow [J]. Aiaa J, 2020, 58(12): 5332-5346.[56] PEREIRA GOMES J M, WICKERSHEIM R. Experimental investigation With a distributed propulsion large scale model in the DNW-NWB wind tunnel [C]//In: proceedings of the 30th AIAA/CEAS Aeroacoustics Conference (2024). Reston, VA: AIAA, 2024.[57] SINNIGE T, ARNHEM N V, STOKKERMANS T C A, et al. Wingtip-mounted propellers: aerodynamic analysis of interaction effects and comparison with conventional layout [J]. Journal of Aircraft, 2019, 56(1): 295-312.[58] DIMCHEV M. Experimental and numerical study on wingtip mounted propellers for low aspect ratio UAV design [D]; Delft University of Technology, 2012.[59] SINNIGE T, DE VRIES R, CORTE B D, et al. Unsteady pylon loading caused by propeller-slipstream impingement for tip-mounted propellers [J]. Journal of Aircraft, 2018, 55(4): 1605-1618.[60] BONGEN D, FIRNHABER BECKERS M, SCHOLLENBERGER M, et al. Simulation of a distributed propulsion system in a wind tunnel [C]//In: proceedings of the AIAA Aviation 2022 Forum. Reston, VA: AIAA, 2022.[61] GOTHOW A, WEISS J, BARDENHAGEN A, et al. Experimental parameter study of distributed electric propulsion on a 2D wing model in high-lift configuration [C]//In: proceedings of the AIAA Aviation 2023 Forum. Reston, VA: AIAA, 2023[62] DE VRIES R, VAN ARNHEM N, SINNIGE T, et al. Aerodynamic interaction between propellers of a distributed-propulsion system in forward flight [J]. Aerospace Science and Technology, 2021, 118: 107009.[63] DE VRIES R, VOS R. Aerodynamic performance benefits of over-the-wing distributed propulsion for hybrid-electric transport aircraft [J]. Journal of Aircraft, 2023, 60(4): 1201-1218.[64] DE PAOLA E, CAMUSSI R, STOICA G L, et al. Aerodynamic and aeroacoustic experimental investigation of a three propellers DEP configuration [J]. Aerospace Science and Technology, 2024, 154: 109508.[65] GOMES J M P. Experimental investigation with a distributed propulsion large-scale model under short take-off and landing conditions [C]//In: proceedings of the AIAA Aviation Forum and Ascend 2025. Reston, VA: AIAA, 2025.[66] MA T, WANG X, QIAO N, et al. A Conceptual design and optimization approach for distributed electric propulsion eVTOL aircraft based on ducted-fan wing unit [J]. Aerospace, 2022, 9(11): 690.[67] CHAUHAN S S. Optimization studies for aircraft considering propeller-wing interaction [D]; The University of Michigan, 2020.[68] ZHANG Y, CHEN H, ZHANG Y. Wing optimization of propeller aircraft based on actuator disc method [J]. Chinese Journal of Aeronautics, 2021, 34(5): 65-78.[69] BRAVO G M, PRALIYEV N, VERESS á. Performance analysis of hybrid electric and distributed propulsion system applied on a light aircraft [J]. Energy, 2021, 214: 118823.[70] DA SILVA FILHO R R, DE SOUZA PAPINI G. Numerical analysis of pressure distribution in a low aspect ratio wing with distributed electric propulsion [J]. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2021, 43(3): 172.[71] SERRANO J R, TISEIRA A O, GARCíA-CUEVAS L M, et al. Computational study of the propeller position effects in wing-mounted, distributed electric propulsion with boundary layer ingestion in a 25 kg remotely piloted aircraft [J]. Drones, 2021, 5(3): 56.[72] TISEIRA IZAGUIRRE A O, GARCíA-CUEVAS GONZáLEZ L M, QUINTERO IGE?O P, et al. Series-hybridisation, distributed electric propulsion and boundary layer ingestion in long-endurance, small remotely piloted aircraft: Fuel consumption improvements [J]. Aerospace Science and Technology, 2022, 120: 107227.[73] SERRANO J R, GARCíA-CUEVAS L M, BARES P, et al. Propeller position effects over the pressure and friction coefficients over the wing of an UAV with distributed electric propulsion: a proper orthogonal decomposition analysis [J]. Drones, 2022, 6(2): 38.[74] ROSA D D, TIRADO M E, MINGIONE G. Parametric investigation of a distributed propulsion system on a regional aircraft [J]. Aerospace, 2022, 9(4): 176.[75] GUO J, ZHOU Z. Multi-objective design of a distributed ducted fan system [J]. Aerospace, 2022, 9(3): 165.[76] ZHAO J, FAN Z, CHANG M, et al. Coupling effects on distributed multi-propeller channel wing at Low speed condition [J]. Energies, 2022, 15(15): 5352.[77] CAO M, LIU K, WANG C, et al. Research on the distributed propeller slipstream effect of UAV wing based on the actuator disk method [J]. Drones, 2023, 7(9): 566.[78] WU J, GAO F, LI S, et al. Conceptual design and optimization of distributed electric propulsion general aviation aircraft [J]. Aerospace, 2023, 10(5): 387.[79] RUSSO O, APROVITOLA A, DE ROSA D, et al. Computational fdluid dynamics analyses of a wing with distributed electric propulsion [J]. Aerospace, 2023, 10(1): 64.[80] CHAUHAN S S, MARTINS J R R A. RANS-based aerodynamic shape optimization of a wing with a propeller in front of the wingtip [J]. Aerospace, 2024, 11(7): 512.[81] SUN P, ZHOU Z, LI X, et al. Inverse aerodynamic design for distributed propulsion wing with expected circulation distribution [J]. Chinese Journal of Aeronautics, 2024, 37(9): 206-223.[82] SCHOLLENBERGER M, KIRSCH B, LUTZ T, et al. Aerodynamic interactions between distributed propellers and the wing of an electric commuter aircraft at cruise conditions [J]. CEAS Aeronautical Journal, 2024, 15(2): 255-267.[83] ZHAO X, ZHOU Z, WANG K, et al. Research on conceptual design method and propulsive/ aerodynamic coupling characteristics of DEP STOL UAV [J]. Drones, 2025, 9(5): 363.[84] YANG Z, SANKAR L N, SMITH M J, et al. Recent improvements to a hybrid method for rotors in forward flight [J]. Journal of Aircraft, 2002, 39(5): 804-812.[85] QIAO G, ZHANG T, BARAKOS G N. Numerical simulation of distributed propulsion systems using CFD [J]. Aerospace Science and Technology, 2024, 147: 109011.[86] ZHOU F, WANG Y, WANG S, et al. Aero-propulsion coupling effects and installation characteristics of a distributed propulsion system [J]. Aerospace Science and Technology, 2024, 153: 109450.[87] WANG K, ZHOU Z, ZHU X, et al. Aerodynamic design of multi-propeller/wing integration at low Reynolds numbers [J]. Aerospace Science and Technology, 2019, 84: 1-17.[88] MOUSHEGIAN A M, SMITH M J. Dual-solver hybrid computational approach to integrated propulsion aerodynamics [J]. Journal of Aircraft, 2022, 60(2): 521-532.[89] LEI Y, YANG W-J, HUANG Y-Y. Aerodynamic performance of distributed electric propulsion with wing interaction [J]. Journal of Zhejiang University-SCIENCE A, 2022, 23(1): 27-39.[90] RIBEIRO A F, DUIVENVOORDEN R, MARTINS D. High-fidelity simulations of propeller-wing interactions in high-lift conditions [C]//In: proceedings of the AIAA AVIATION 2023 Forum. Reston, VA: AIAA, 2023.[91] WALVEKAR O, CHAKRAVARTHY S. An unsteady reynolds–averaged Navier–Stokes–large eddy simulation study of propeller–airframe interaction in distributed electric propulsion [J]. Aerospace, 2024, 11(1): 17.[92] 杨龙源, 盛云逸, 崔天昱, 等. 螺旋桨滑流对高升力构型影响的数值计算[J]. 空气动力学学报, 2025, 43(5): 41-50. YANG L Y, SHENG Y Y, CUI T Y, et al. Numerical investigation of propeller slipstream effects on high-lift aerodynamic configurations[J]. Acta Aerodynamica Sinica, 2025, 43(5): 41?50. (in Chinese).[93] WANG K, ZHOU Z, FAN Z, et al. Aerodynamic design of tractor propeller for high-performance distributed electric propulsion aircraft [J]. Chinese Journal of Aeronautics, 2021, 34(10): 20-35.[94] WANG K, ZHOU Z. Aerodynamic design, analysis and validation of a small blended-wing-body unmanned aerial vehicle [J]. Aerospace, 2022, 9(1): 36.[95] SEO Y, HONG Y, YEE K. Numerical investigation of wing–multiple propeller aerodynamic interaction using actuator disk method [J]. International Journal of Aeronautical and Space Sciences, 2022, 23(5): 805-822.[96] CAO T, BAI J, QIU Y, et al. Quasi-three-dimensional high-lift wing design approach considering three-dimensional effects of slipstream for distributed electric propulsion aircraft [J]. Chinese Journal of Aeronautics, 2024, 37(11): 300-316.[97] KATZ J, PLOTKIN A. Low-speed aerodynamics [M]. Cambridge, UK: Cambridge university press, 2001.[98] SHERIDAN C N, PHAM D D, WHITESIDE S. Evaluation of VSPAERO analysis capabilities for conceptual design of aircraft with propeller-blown wings [C]//In: proceedings of the AIAA Aviation 2021 Forum. Reston, VA: AIAA, 2021: 2510.[99] BARIS E, LANDMAN D. An investigation into the potential benefits of distributed electric propulsion on small UAVs at low reynolds numbers [C]//In: proceedings of the 35th AIAA Applied Aerodynamics Conference. Reston, VA: AIAA, 2017: 3924.[100] 成志勇, 杨佑绪, 张兴翠, 等. 分布式电推进飞机概念方案气动特性快速评估方法[J]. 北京航空航天大学学报, 2021, 49(11): 3047-3058. CHENG Z Y, YANG Y X, ZHANG X C, et al. Rapid evaluation method for aerodynamic characteristics of distributed electric propulsion aircraft concept scheme[J]. Journal of Beijing University of Aeronautics and Astronautics, 2023, 49(11): 3047-3058. ( in Chinese).[101] BORER N K, DERLAGA J M, DEERE K A, et al. Comparison of aero-propulsive performance predictions for distributed propulsion configurations [C]//In: proceedings of the 55th AIAA Aerospace Sciences Meeting. Reston, VA: AIAA, 2017.[102] BOHARI B, BRONZ M, BéNARD E, et al. Conceptual design of distributed propeller aircraft: linear aerodynamic model verification of propeller-wing interaction [C]//In: proceedings of the 7th European Conference for Aeronautics and Aerospace Sciences. Milan, Italy: EUCASS, 2017.[103] BOHARI B, BORLON Q, MENDOZA-SANTOS P B, et al. Conceptual design of distributed propellers aircraft:non-linear aerodynamic model verification of propeller-wing interaction in high-lift configuration [C]//In: proceedings of the 2018 AIAA Aerospace Sciences Meeting. Reston, VA: AIAA, 2018[104] PATTERSON M D, DERLAGA J M, BORER N K. High-lift propeller system configuration selection for NASA's SCEPTOR distributed electric propulsion flight demonstrator [C]//In: proceedings of the 16th AIAA Aviation Technology, Integration, and Operations Conference. Reston, VA: AIAA, 2016.[105] NEDERLOF R, GOYAL J, SINNIGE T, et al. Fast numerical modeling of propeller–wing aerodynamic interactions [J]. AIAA Journal, 2025, 63(6): 2499-2519.[106] FEI X, LITHERLAND B L, GERMAN B J. Development of an unsteady vortex lattice method to model propellers at incidence [J]. AIAA Journal, 2022, 60(1): 176-188.[107] 夏济宇, 周洲, 徐德, 等. 矢量电推进系统的气动-推进耦合模型[J]. 航空学报, 2023, 41(11): 127672. XIA J Y, Zhou Z, XU D, et al. Aerodynamic /propulsion coupling model of vector electric propulsion system[J]. Acta Aeronauticaet Astronautica Sinica, 2023, 44(11): 127672. (in Chinese).[108] PATTERSON M D, DERLAGA J M, BORER N K. High-lift propeller system configuration selection for NASA’s SCEPTOR distributed electric propulsion flight demonstrator [C]//In: proceedings of the 16th AIAA aviation technology, integration, and operations conference. Reston, VA: AIAA, 2016: 3922.[109] PATTERSON M D, BORER N K, GERMAN B. A simple method for high-lift propeller conceptual design [C]//In: proceedings of the 54th AIAA Aerospace Sciences Meeting. Reston, VA: AIAA, 2016[110] MOORE K R, NING A. Distributed electric propulsion effects on existing aircraft through multidisciplinary optimization [M]. 2018 AIAA/ ASCE/ AHS/ASC Structures, Structural Dynamics, and Materials Conference. Reston, VA: AIAA, 2018.[111] 杨伟, 范召林, 吴文华, 等. 考虑滑流影响的分布式螺旋桨布局优化设计 [J]. 空气动力学学报, 2021, 39(3): 71-79. YANG W, FAN Z L, WU W H, et al. Optimal design of distributed propeller layout considering slipstream effect[J]. Acta Aerodynamica Sinica, 2021, 39(3): 71?79 . (in Chinese).[112] 宋敏华, 张文琦, 相倩, 等. 电动飞机分布式螺旋桨对气动性能影响的建模研究[J]. 航空科学技术, 2023, 34(6): 20-25. SONG M H, ZHANG W Q, XIANG Q, et al. Modeling research on the influence of distributed propellers on aerodynamic performance of electric aircraft[J]. Aeronautical Science & Technology, 2023,34(6): 20-25. (in Chinese).[113] KROO I. Propeller-wing integration for minimum induced loss [J]. Journal of Aircraft, 1986, 23(7): 561-565.[114] VELDHUIS L L M, HEYMA P M. Aerodynamic optimisation of wings in multi-engined tractor propeller arrangements [J]. Aircraft Design, 2000, 3(3): 129-149.[115] RAKSHITH B R, DESHPANDE S M, NARASIMHA R, et al. Optimal low-drag wing planforms for tractor-configuration propeller-driven aircraft [J]. Journal of Aircraft, 2015, 52(6): 1791-1801.[116] EPEMA K. Wing optimisation for tractor propeller configurations: validation and application of low-order numerical models adapted to include propeller-induced velocities [D]. Delft: Delft University of Technology, 2017.[117] CHAUHAN S S, MARTINS J R R A. RANS-based aerodynamic shape optimization of a wing considering propeller–wing interaction [J]. Journal of Aircraft, 2021, 58(3): 497-513.[118] 徐家宽, 白俊强, 黄江涛, 等. 考虑螺旋桨滑流影响的机翼气动优化设计[J]. 航空学报, 2014, 35(11): 2910-2920. XU J K, BAI J Q, HUANG J T, et al. Aerodynamic optimization design of wing under the interaction of propeller slipstream[J]. Acta Aeronauticaet Astronautica Sinica, 2014, 35(11): 2910-2920. (in Chinese).[119] 王科雷, 周洲, 祝小平. 耦合多螺旋桨滑流影响的低雷诺数机翼设计[J]. 航空学报, 2017, 38(6): 120813. WANG K L, ZHOU Z, ZHU X P. Aerodynamic design of low-Reynolds-number wing taking into account the multiple propellers induced effects[J]. Acta Aeronauticaet Astronautica Sinica, 2017, 38(6): 120813. (in Chinese).[120] 薛臣, 周洲, 范中允, 等. 螺旋桨/机翼耦合下的目标螺旋桨滑流设计[J]. 航空动力学报, 2021, 36(1): 104-118. XUE C, ZHOU Z, FAN Z Y, et al. Design of target propeller slipstream under propeller-wing interaction[J]. Journal of Aerospace Power, 2021, 36(1): 104-118. (in Chinese).[121] 陈荣钱, 王旭, 尤延铖. 短舱对螺旋桨滑流影响的IDDES数值模拟[J]. 航空学报, 2016, 37(6): 1851-1860. CHEN R Q, WANG X, YOU Y C. Numerical simulation of nacelle's effects on propeller slipstream based on IDDES model[J]. Acta Aeronauticaet Astronautica Sinica, 2016, 37(6): 1851-1860. (in Chinese).[122] 邓磊, 段卓毅, 钱瑞战, 等. 螺旋桨滑流对短舱/机翼构型尾迹流场的影响[J]. 航空学报, 2019, 40(5): 122434. DENG L, DUAN Z Y, QIAN R Z, et al. Effect of propeller slipstream on wake field of a nacelle/wing configuration[J]. Acta Aeronauticaet Astronautica Sinica, 2019, 40(5): 122434. (in Chinese).[123] ANIBAL J L, MADER C, MARTINS J R. Aerothermal optimization of X-57 high-lift motor nacelle [C]//In: proceedings of the AIAA Scitech 2020 Forum. Reston, VA: AIAA, 2020: 2115.[124] BABCOCK T, MCKEEVER B, HICKEN J E. Multi-Disciplinary design optimization of an electric motor considering thermal constraints [C]//In: proceedings of the AIAA Aviation 2023 Forum. Reston, VA: AIAA, 2023.[125] FALCK R D, CHIN J, SCHNULO S L, et al. Trajectory optimization of electric aircraft subject to subsystem thermal constraints [C]//In: proceedings of the 18th AIAA/ ISSMO Multidisciplinary Analysis and Optimization Conference. Reston, VA: AIAA, 2017.[126] ORDAZ I, RALLABHANDI S K, NIELSEN E J. Adjoint-based design of a distributed propulsion concept with a power objective [C]//In: proceedings of the AIAA Aviation 2019 Forum. Reston, VA: AIAA, 2019: 3681.[127] SECCO N R, MARTINS J R R A. RANS-based aerodynamic shape optimization of a strut-braced wing with overset meshes [J]. Journal of Aircraft, 2019, 56(1): 217-227.[128] ABDUL-KAIYOOM M A S, YILDIRIM A, MARTINS J R R A. Coupled aeropropulsive design optimization of an over-wing nacelle configuration [J]. Journal of Aircraft, 2025, 62(1): 94-116.[129] ABDUL-KAIYOOM M A S, LAMKIN A H R, YILDIRIM A, et al. Coupled aeropropulsive design optimization of a podded electric propulsor [J]. Structural and Multidisciplinary Optimization, 2025, 68(1): 13.[130] SAHOO S, ZHAO X, KYPRIANIDIS K. A review of concepts, benefits, and challenges for future electrical propulsion-based aircraft [J]. Aerospace, 2020, 7(4): 44.[131] LITHERLAND B L, BORER N K, ZAWODNY N S. X-57 “Maxwell” high-lift propeller testing and model development [C]//In: proceedings of the AIAA Aviation 2021 Forum. Reston, VA: AIAA, 2021.[132] FELDER J, KIM H, BROWN G, et al. An examination of the effect of boundary layer ingestion on turboelectric distributed propulsion systems [C]//In: proceedings of the 49th AIAA Aerospace Sciences Meeting including the New Horizons Forum and Aerospace Exposition. Reston, VA: AIAA, 2011.[133] MOORE M D, FREDERICKS B. Misconceptions of electric propulsion aircraft and their emergent aviation markets [C]//In: proceedings of the AIAA Aerospace Sciences Meeting. Reston, VA: AIAA, 2014.[134] BRELJE B J, MARTINS J R R A. Electric, hybrid, and turboelectric fixed-wing aircraft: A review of concepts, models, and design approaches [J]. Progress in Aerospace Sciences, 2019, 104: 1-19.[135] PATTERSON M D, GERMAN B J, MOORE M D. Performance analysis and design of on-demand electric aircraft concepts [C]//In: proceedings of the 12th AIAA Aviation Technology, Integration, and Operations (ATIO) Conference and 14th AIAA/ISSMO Multidisciplinary Analysis and Optimization Conference. Reston, VA: AIAA, 2012[136] SAHOO S, KAVVALOS M D, DIAMANTIDOU D E, et al. System-level assessment of a partially distributed hybrid electric propulsion system [J]. Journal of Engineering for Gas Turbines and Power, 2023, 145(2).[137] MA Y, ZHANG W, ZHANG Y, et al. Sizing method and sensitivity analysis for distributed electric propulsion aircraft [J]. Journal of Aircraft, 2020, 57(4): 730-741.[138] CINAR G, MAVRIS D N, EMENETH M, et al. Sizing, integration and performance evaluation of hybrid electric propulsion subsystem architectures [C]//In: proceedings of the 55th AIAA Aerospace Sciences Meeting. Reston, VA: AIAA, 2017.[139] DE VRIES R, BROWN M, VOS R. Preliminary sizing method for hybrid-electric distributed-propulsion aircraft [J]. Journal of Aircraft, 2019, 56(6): 2172-2188.[140] BAI M, YANG W, LI J, et al. Sizing methodology and energy management of an air–ground aircraft with turbo-electric hybrid propulsion system [J]. Aerospace, 2022, 9(12): 764.[141] JIMENEZ D, VALENCIA E, HERRERA A, et al. Evaluation of series and parallel hybrid propulsion systems for UAVs implementing distributed propulsion architectures [J]. Aerospace, 2022, 9(2): 63.[142] WANG S, ECONOMOU J, TSOURDOS A. Indirect engine sizing via distributed hybrid-electric unmanned aerial vehicle state-of-charge-based parametrisation criteria [J]. Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering, 2019, 233: 5360 - 5368.[143] ANTCLIFF K R, CAPRISTAN F M. Conceptual design of the parallel electric-gas architecture with synergistic utilization scheme (PEGASUS) concept [C]//In: proceedings of the 18th AIAA/ISSMO Multidisciplinary Analysis and Optimization Conference. Reston, VA: AIAA, 2017.[144] CHANDEL D, GREITZER E M, HALL D K, et al. Conceptual design of distributed electrified boundary layer ingesting propulsors for the CHEETA aircraft concept [C]//In: proceedings of the AIAA Propulsion and Energy 2021 Forum. Reston, VA: AIAA, 2021.[145] CHEN Z, LIU D, HOU Z, et al. Mission-oriented propulsion system configuration and whole aircraft redundancy safety performance for distributed electric propulsion UAVs [J]. Drones, 2025, 9(9): 662.[146] LEIFSSON L, KO A, MASON W H, et al. Multidisciplinary design optimization of blended-wing-body transport aircraft with distributed propulsion [J]. Aerospace Science and Technology, 2013, 25(1): 16-28.[147] LASKARIDIS P. Assessment of distributed propulsion systems used with different aircraft configurations [C]//In: proceedings of the 51st AIAA/SAE/ASEE Joint Propulsion Conference. Reston, VA: AIAA, 2015.[148] HENDRICKS E S, FALCK R D, GRAY J S, et al. Multidisciplinary optimization of a turboelectric tiltwing urban air mobility aircraft [C]//In: proceedings of the AIAA Aviation 2019 Forum. Reston, VA: AIAA, 2019.[149] SGUEGLIA A, SCHMOLLGRUBER P, BARTOLI N, et al. Multidisciplinary design optimization framework with coupled derivative computation for hybrid aircraft [J]. Journal of Aircraft, 2020, 57(4): 715-729.[150] SILVA H L, RESENDE G J, NETO R M C, et al. A multidisciplinary design optimization for conceptual design of hybrid-electric aircraft [J]. Structural and Multidisciplinary Optimization, 2021, 64(6): 3505-3526.[151] MA Y, ZHANG W, ELHAM A. Multidisciplinary design optimization of twin-fuselage aircraft with boundary-layer-ingesting distributed propulsion [J]. Journal of Aircraft, 2022, 59(6): 1588-1602.[152] GILBROOK A J, MA Y, ELHAM A. Conceptual design and optimization of a strut-braced wing full electric regional aircraft with distributed propulsion [C]//In: proceedings of the AIAA Aviation 2023 Forum. Reston, VA: AIAA, 2023.[153] LIU D, CHEN Z, GUO Z, et al. Analysis of battery weight requirements in the design of hybrid electric powered aircraft [C]//In: proceedings of the 34th Congress of the International Council of Aeronautical Sciences (ICAS 2024). Florence, Italy: International Council of the Aeronautical Sciences, 2024.[154] PATTERSON M D. Conceptual design of high-lift propeller systems for small electric aircraft [D]. Atlanta: Georgia Institute of Technology, 2016.[155] AWAD M, STUMPF E. Aero-propulsive interaction model for conceptual distributed propulsion aircraft design [J]. Aircraft Engineering and Aerospace Technology, 2022, 94(6): 948-964.[156] WEI J, LU B, ZHA Z, et al. Aerodynamic modeling of a distributed propulsion system with coupling between propellers, wing, and flaps [J]. Aerospace Science and Technology, 2025, 166: 110538.[157] YANG Z, MEINKE M, SCHROEDER W. Numerical analysis of propeller-airfoil interaction in a distributed propulsion system using a hybrid LES and FW-H approach [C]//In: proceedings of the 30th AIAA/CEAS Aeroacoustics Conference (2024). Reston, VA: AIAA, 2024: 3211.[158] ZHAO S, LI J, JIANG Y, et al. Investigation of propeller slipstream effects on lateral and directional static stability of transport aircraft [J]. Engineering Applications of Computational Fluid Mechanics, 2022, 16(1): 551-569. |
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