基于柯安达效应的流体推力矢量系统最优参数空间的梯度优化确定

IF 1.1 4区 工程技术 Q4 MECHANICS Journal of Applied Fluid Mechanics Pub Date : 2023-10-01 DOI:10.47176/jafm.16.10.1855
E. Kara, D. Kurtulus
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引用次数: 0

摘要

在航空领域,喷气推进系统的作用是提供增强的机动性,并确保飞机在起飞和降落过程中精确地调节推力。气动控制面(襟翼、板条、升降舵、副翼、扰流板、机翼附件)的运动决定了几乎所有飞机类型的机动性。在航空世界中,这些控制面被认为是起飞和着陆任务的可靠部件,这些控制面正在被流体推力矢量(FTV)系统所取代,特别是在小型无人机(uav)和短距或垂直起降飞机中。FTV系统能够在不需要任何可移动部件的情况下将推力定向到任何首选方向。本文利用计算流体力学(CFD)和基于系统组件梯度的优化技术对FTV系统进行数值研究,以了解FTV系统中Coanda效应的物理特性。本研究采用基于梯度的优化设计喷管,通过计算表示射流偏转角的上康达面弯矩,优化不同速度比(VR)下的参数空间。在这种情况下,为四种不同的vr生产了四种不同的Coanda表面针对设计。四种构型的参数空间都得到了显著改善,结果表明,所有输出参数都成功地延迟了推力矢量系统上Coanda面分离。最后,在不同的虚拟现实设备上对四种优化设计建议进行了测试,并根据输出参数推荐了最有效、最合理的设计方案。
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Determination of Optimum Parameter Space of a Fluidic Thrust Vectoring System based on Coanda Effect Using Gradient-Based Optimization Technique
In the realm of aviation, jet propulsion systems serve to provide enhanced maneuverability and to make sure that the aircraft thrust is accurately and precisely regulated during take-off and landing operations. The movement of aerodynamic control surfaces (flaps, slats, elevators, ailerons, spoilers, wing attachments) determines the mobility of practically all aircraft types. Recognized as dependable components in the aviation world for take-off and landing tasks, these control surfaces are being replaced by fluidic thrust vectoring (FTV) systems, especially in small unmanned aerial vehicles (UAVs) and short or vertical take-off and landing aircraft. The FTV system is capable of directing thrust in any preferred direction without the need for any movable components. This paper numerically examines the FTV system by utilizing computational fluid dynamics (CFD) and an optimization technique based on gradients of the system components to understand the physics of the Coanda effect in FTV systems. This research employs gradient-based optimization for nozzle design in order to optimize the parameter space for different velocity ratios (VR) by calculating the moment around the upper Coanda surface, which is used to represent the jet deflection angle. In that context, four different Coanda surface-pintle pair designs for four different VRs are produced. The parameter space shows significant improvement in all four configurations, and results reveal that all output parameters successfully delay separation on the thrust vectoring system's upper Coanda surface. Finally, four optimum design suggestions are tested at various VRs, and the most efficient and proper design is recommended based on output parameters.
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来源期刊
Journal of Applied Fluid Mechanics
Journal of Applied Fluid Mechanics THERMODYNAMICS-MECHANICS
CiteScore
2.00
自引率
20.00%
发文量
138
审稿时长
>12 weeks
期刊介绍: The Journal of Applied Fluid Mechanics (JAFM) is an international, peer-reviewed journal which covers a wide range of theoretical, numerical and experimental aspects in fluid mechanics. The emphasis is on the applications in different engineering fields rather than on pure mathematical or physical aspects in fluid mechanics. Although many high quality journals pertaining to different aspects of fluid mechanics presently exist, research in the field is rapidly escalating. The motivation for this new fluid mechanics journal is driven by the following points: (1) there is a need to have an e-journal accessible to all fluid mechanics researchers, (2) scientists from third- world countries need a venue that does not incur publication costs, (3) quality papers deserve rapid and fast publication through an efficient peer review process, and (4) an outlet is needed for rapid dissemination of fluid mechanics conferences held in Asian countries. Pertaining to this latter point, there presently exist some excellent conferences devoted to the promotion of fluid mechanics in the region such as the Asian Congress of Fluid Mechanics which began in 1980 and nominally takes place in one of the Asian countries every two years. We hope that the proposed journal provides and additional impetus for promoting applied fluids research and associated activities in this continent. The journal is under the umbrella of the Physics Society of Iran with the collaboration of Isfahan University of Technology (IUT) .
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