电子吊舱的空气动力学设计,以最大限度地扩大其在快速喷气式飞机上的运载包络面

IF 1.2 4区 工程技术 Q3 ENGINEERING, AEROSPACE Aircraft Engineering and Aerospace Technology Pub Date : 2024-07-16 DOI:10.1108/aeat-10-2023-0253
Ruan du Rand, Kevin Jamison, Barbara Huyssen
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引用次数: 0

摘要

目的本文旨在重塑快速喷气式飞机电子吊舱的外部几何形状,以确保其在整个飞行包线内符合飞机塔架载荷限制,同时遵守机载系统限制和装配规范。使用面板代码对添加整流罩和稳定鳍配置的飞机进行性能近似。使用完全稳定的雷诺平均纳维-斯托克斯求解器对载荷进行验证,并根据已公布的风洞试验数据进行验证。研究结果重新加高吊舱的几何结构可以满足所有几何和塔架载荷约束条件。但是,由于吊舱体积较大,仅靠重新加高不足以满足飞机/塔架载荷限制。实际意义重新设计电子吊舱的几何形状是为了最大限度地扩大其承载飞机的允许飞行包线,同时遵守为其存储塔架确定的安全承载负荷限制。在考虑设计快速喷气式电子吊舱时,必须预先确定飞机运载负荷限制。原创性/价值通过类比,提出了确定运载飞机未知负荷限制的过程,以及调整电子吊舱几何形状以遵守空气动力负荷和几何限制的过程。
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Aerodynamic design of an electronics pod to maximise its carriage envelope on a fast-jet aircraft

Purpose

The purpose of this paper is to reshape a fast-jet electronics pod’s external geometry to ensure compliance with aircraft pylon load limits across its carriage envelope while adhering to onboard system constraints and fitment specifications.

Design/methodology/approach

Initial geometric layout determination used empirical methods. Performance approximation on the aircraft with added fairings and stabilising fin configurations was conducted using a panel code. Verification of loads was done using a full steady Reynolds-averaged Navier–Stokes solver, validated against published wind tunnel test data. Acceptable load envelope for the aircraft pylon was defined using two already-certified stores with known flight envelopes.

Findings

Re-lofting the pod’s geometry enabled meeting all geometric and pylon load constraints. However, due to the pod's large size, re-lofting alone was not adequate to respect aircraft/pylon load limitations. A flight restriction was imposed on the aircraft’s roll rate to reduce yaw and roll moments within allowable limits.

Practical implications

The geometry of an electronics pod was redesigned to maximise the permissible flight envelope on its carriage aircraft while respecting the safe carriage load limits determined for its store pylon. Aircraft carriage load constraints must be determined upfront when considering the design of fast-jet electronic pods.

Originality/value

A process for determining the unknown load constraints of a carriage aircraft by analogy is presented, along with the process of tailoring the geometry of an electronics pod to respect aerodynamic load and geometric constraints.

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来源期刊
Aircraft Engineering and Aerospace Technology
Aircraft Engineering and Aerospace Technology 工程技术-工程:宇航
CiteScore
3.20
自引率
13.30%
发文量
168
审稿时长
8 months
期刊介绍: Aircraft Engineering and Aerospace Technology provides a broad coverage of the materials and techniques employed in the aircraft and aerospace industry. Its international perspectives allow readers to keep up to date with current thinking and developments in critical areas such as coping with increasingly overcrowded airways, the development of new materials, recent breakthroughs in navigation technology - and more.
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