扇叶断裂前动载荷重建

M. Artamonov, A. A. Govorov, D. Starshinov
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摘要

为了保持风扇叶片的功能,了解叶片动应力的分布、振幅和振动频率是很重要的。了解动态载荷模式将使我们能够确定发动机在什么条件下运行,以识别和防止可能导致叶片断裂的紧急情况。本工作的目的是了解发动机地面启动时发生的风扇叶片断裂的原因。对叶片破片进行断口分析,发现断裂是由叶片疲劳裂纹引发的。建立了裂纹萌生位置和裂纹扩展参数,对断口进行了谱分析。为了确定疲劳裂纹产生的原因,必须确定叶片在破坏过程中的动态状态。采用断口学方法确定了裂纹稳定扩展的第二阶段,在此阶段形成了疲劳条纹。利用疲劳条纹间距和帕里斯定律确定了裂纹应力强度范围。建立了叶片裂纹扩展模型,确定了叶片的应力状态。能够确定裂纹扩展每一步的应力强度因子,并将其与研究数据进行比较,使这项工作成为可能。仿真结果显示了在何种条件下应力会出现流形增加,并使振动幅值的期望值得以确定。附加模态分析表明,共振形式导致裂纹扩展的疲劳性质。该方法建立了裂纹扩展条件,揭示了叶片断裂的原因。
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Reconstruction of fan blade dynamic loading prior to its fracture
To maintain the functionality of fan blades, it is important to know the distribution of dynamic stresses in the blade, their amplitude and vibration frequency. Understanding of the dynamic loading pattern will allow us to determine under what conditions the engine was operated, to identify and prevent emergencies that could lead to the blade fracture. The purpose of this work is to understand the cause of the fan blade fracture that occurred during the engine ground start. Due to fractographic analysis of blade fragments it was revealed that the fracture occurred due to the initiation of fatigue cracks in blades. The place of crack initiation and parameters of crack growth were established, spectral analysis of the fracture was carried out. To establish the reason of fatigue crack initiation it was necessary to determine the dynamic state of the blades during their destruction. The sections of the second stage of stable crack growth, during which fatigue striations are formed, were determined using the fractographic method. Using the spacing of the fatigue striations and Paris's law, the crack stress intensity range was determined. Modeling of crack propagation in the blade was carried out to define the stress state. The ability to determine the stress intensity factor at each step of crack growth and its comparison with research data made this work possible. The simulation showed under what conditions manifold increase in stresses occurs and made it possible to obtain the expected value of vibration amplitude. Additional modal analysis showed a resonant form that caused the fatigue nature of crack propagation. The demonstrated approach established crack growth conditions and revealed the cause of blade fracture.
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