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NUMERICAL INVESTIGATION ON WIDE-CHORD FAN BLADE FORCED RESPONSE DUE TO VORTEX INGESTION

机译:涡旋进气引起的宽翼风扇叶片强迫响应的数值研究

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When a turbofan engine is taxing or taking-off, a vortex can form between ground surface and the intake. As the diameters of engines increase, intakes are closer to the ground and as a result the possibility of vortex ingestion is increasing. The vortex starts from the ground surface and enters the inlet at high rotating speed. It is likely to draw in hard material or dust from the ground, which leads to blade erosion or impact damage. This is harmful to the engine durability and safety. Besides the vortex, inlet flow separation could induce high level of blade vibration, or aerodynamic instability, such as rotating stall. Cross wind may also lead to both vortex and flow distortion, which is more challenging for engine stability. Therefore, vibration characteristics and forced response under vortex ingestion should be evaluated to ensure the stability and safety of the engine in design phase. This paper presents a computational study of the forced response of a wide-chord fan blade under vortex ingestion. A finite element model was built, and modal analysis was conducted to characterize the vibrating characteristics of the fan blade with a corresponding Campbell diagram. Transient simulations of vortex passing over the fan blade were conducted with and without the blade pre-vibration at the natural frequency of the first bending mode. The forced response level was evaluated under various conditions, including different hitting time and increasing intensity of vortex. Results showed that the ingested vortex is able to amplify the displacement and vibratory response to a significant level of 18% at most. Linear relation between vortex intensity and blade response was found. The results give a comprehensive prediction of forced response for a better blade design against vortex ingestion.
机译:当涡轮风扇发动机在加油或起飞时,地面与进气口之间可能会形成涡流。随着发动机直径的增加,进气口离地面越来越近,因此,涡流吸入的可能性也在增加。涡流从地面开始并以高旋转速度进入入口。它很可能从地面吸入坚硬的材料或灰尘,从而导致刀片腐蚀或冲击损坏。这对发动机的耐用性和安全性有害。除涡流外,进气流的分离还会引起叶片振动或空气动力学的不稳定,例如旋转失速。侧风还可能导致涡流和流动畸变,这对发动机稳定性更具挑战性。因此,应评估涡流下的振动特性和强迫响应,以确保在设计阶段发动机的稳定性和安全性。本文提出了在涡流吸入条件下宽弦风扇叶片强迫响应的计算研究。建立了有限元模型,并进行了模态分析,以通过相应的坎贝尔图表征风扇叶片的振动特性。在有和没有叶片以第一弯曲模式的固有频率进行预振动的情况下,对通过风扇叶片的涡流进行了瞬态仿真。在各种条件下评估了强迫响应水平,包括不同的撞击时间和不断增加的涡流强度。结果表明,摄入的涡流能够将位移和振动响应放大至最多18%的显着水平。发现涡旋强度与叶片响应之间存在线性关系。结果提供了针对更好的叶片设计以抵抗涡流摄入的强制响应的全面预测。

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