鸟击对航空发动机风扇叶片的影响:实验与数值结合研究

IF 5.8 1区 工程技术 Q1 ENGINEERING, AEROSPACE
Jiaxuan Sun , Meng Liu , Ning Li , Bin Jiang , Yazhou Guo
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引用次数: 0

摘要

鸟击损伤作为航空发动机使用寿命中一个重要的安全问题,受到了广泛关注。该研究改进了传统的分析方法,可以准确地预测和评估风扇叶片的损伤特征。首先,通过综合材料试验确定了TC6钛合金的动态力学性能。采用多目标优化方法,建立了风机叶片的高精度修正Johnson-Cook本构模型和断裂模型。通过静单叶片明胶鸟冲击试验,验证了材料参数和数值模型的正确性。然后,数值模拟分析了叶片与鸟的切割效果,重点分析了转速和鸟速度的影响。结果表明,合成速度偏差角和叶片扭角对叶片损伤形态有显著影响。因此,本研究提出了一种冲击相互作用机制,解释了在降低转速和鸟速条件下叶片损伤增加的反直觉现象。随后,根据基本鸟击参数推导出平均冲击力和根应力的表达式,量化了冲击载荷和根应力集中水平。最后,压气机撞击模拟显示,鸟类碎片对风扇叶片后面的静叶有显著影响。这些研究结果为抗鸟击分析和航空发动机风扇叶片设计优化提供了有价值的参考点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bird strike on aeroengine fan blades: a combined experimental and numerical study
Bird strike damage as a significant safety concern has been widely focused on during the service life of aeroengines. This research enhances traditional analysis methodologies to accurately predict and assess fan blade damage characteristics. Firstly, the dynamic mechanical properties of TC6 titanium alloy were determined through comprehensive material testing. Using multi-objective optimization methods, a high-precision modified Johnson-Cook constitutive model (MJC) and fracture model were developed for fan blades. Material parameters and numerical models were validated through gelatin bird impact tests on static single blades. Then, numerical simulations analyzed blade-bird cutting effects, with particular emphasis on rotation speed and bird velocity impacts. Results demonstrated that the resultant velocity deviation angle and blade twist angle significantly influence blade damage patterns. Therefore, this study presents an impact interaction mechanism that explains the counterintuitive phenomenon of increased blade damage under reduced rotation speed and bird velocity conditions. Subsequently, expressions for average impact force and root stress were derived from fundamental bird strike parameters, quantifying both impact loads and root stress concentration levels. Finally, compressor impact simulations revealed that bird fragments significantly affect stator blades positioned behind the fan blades. These findings provide valuable reference points for bird-strike resistance analysis and aeroengine fan blade design optimization.
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来源期刊
Aerospace Science and Technology
Aerospace Science and Technology 工程技术-工程:宇航
CiteScore
10.30
自引率
28.60%
发文量
654
审稿时长
54 days
期刊介绍: Aerospace Science and Technology publishes articles of outstanding scientific quality. Each article is reviewed by two referees. The journal welcomes papers from a wide range of countries. This journal publishes original papers, review articles and short communications related to all fields of aerospace research, fundamental and applied, potential applications of which are clearly related to: • The design and the manufacture of aircraft, helicopters, missiles, launchers and satellites • The control of their environment • The study of various systems they are involved in, as supports or as targets. Authors are invited to submit papers on new advances in the following topics to aerospace applications: • Fluid dynamics • Energetics and propulsion • Materials and structures • Flight mechanics • Navigation, guidance and control • Acoustics • Optics • Electromagnetism and radar • Signal and image processing • Information processing • Data fusion • Decision aid • Human behaviour • Robotics and intelligent systems • Complex system engineering. Etc.
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