Study on total pressure distortion characteristics at engine inlet during carrier-based aircraft landing and boltering process
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摘要:
针对舰载机着舰复飞过程发动机周围环境的复杂流场,建立包含航母及舰载机的全尺寸一体化的数值模型。开发了移动坐标系下的重叠网格与移动压力检测技术,耦合延迟分离涡模拟(DDES)方法,解析了高速前行中航母舰体产生的复杂尾流涡量系统,分析了风速、风向角及攻角等参数对着舰过程的舰载机发动机总压畸变的影响,揭示了发动机进口总压畸变特性的动态演化规律。结果表明,正风条件下舰体两侧形成反向旋转涡对,而斜向风会引起显著非对称性流动分离,且湍流强度显著提升。总压畸变指数随风向角增大平均值降低而标准差升高。相较于正风0°,当风向角增至90°时,总压畸变指数平均值从
0.0649 降至0.0498 (降幅23.3%),标准差则由1.04×10−3升至4.97×10−3(增幅达377.9%),其中触舰瞬间因地面效应及仰角调整引发的畸变突变尤为显著。Abstract:The complex flow field around aircraft engines during carrier landing and boltering was analyzed by establishing a full-scale numerical model of both carrier and aircraft. The overset grid and moving pressure measurement techniques combined with delayed detached-eddy simulation (DDES) were developed to resolve the complex vortex systems generated by the advancing carrier hull. The effects of wind speed, wind direction angle, and angle of attack on the total pressure distortion at the engine inlet were analyzed, and the dynamic evolution characteristics of the total pressure distortion were revealed. Key findings indicated that under headwind conditions, counter-rotating vortex pairs formed on both sides of the carrier hull, while crosswinds caused significantly asymmetric flow separation, with turbulence intensity enhanced on the leeward side. With the increase of wind angle, the total pressure distortion index exhibited decreased mean values but elevated standard deviations. Specifically at 90° yaw angle (relative to 0°), the mean value dropped from
0.0649 to0.0498 (23.3% reduction), while the standard deviation surged from 1.04×10−3 to 4.97×10−3 (377.9% increase). Particularly during touchdown, the distortion transients became especially prominent due to ground effects and pitch adjustment.-
Key words:
- landing and boltering /
- engine matching /
- distortion /
- detached-eddy /
- overset mesh method
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