Effects of casing elliptical deformation on the aerodynamic stability of a transonic axial compressor rotor
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摘要:
选取跨声速压气机转子Rotor37作为研究对象,基于经过验证的数值计算方法,对设计转速条件下机匣变形所产生的影响及其作用机理进行了研究。结果表明,在理想机匣条件下,转子叶顶间隙泄漏涡的破碎是压气机失稳的直接诱因。随着机匣椭圆变形度τ的增大,压气机的稳定裕度逐渐降低;当机匣变形度τ达到最大值0.9时,其稳定裕度较理想机匣下降了4.67%,且流动失稳首先出现在最小叶顶间隙附近的叶片通道。同时,机匣变形下通道叶顶区域流动及阻塞区影响范围表现出显著周向不均匀性。一方面,前缘叶顶间隙尺寸与气流攻角的周向非均匀分布决定了各通道前缘泄漏流强度,进而影响各通道前缘泄漏阻塞区的作用范围,该阻塞区在最大叶顶间隙附近达到最大,主导该处通道失稳;另一方面,尾缘叶顶间隙尺寸和各叶片吸力面近壁面流动分离位置的周向非均匀分布分别决定了尾缘间隙泄漏流强度及近壁面流动分离程度,进而影响各通道近吸力面阻塞区的作用范围,该阻塞区在最小叶顶间隙附近通道内影响最大,导致该通道率先失稳。
Abstract:This study investigated the impact of casing deformation on the Rotor 37 transonic compressor rotor using validated numerical simulations at design speed. The results showed that under the ideal(undeformed) casing condition, the breakdown of the rotor’s tip-leakage vortex served as the direct trigger for compressor stall. As τ increased, the compressor’s stability margin steadily decreased. At maximum deformation (τ = 0.9), stall margin dropped by 4.67 % relative to the ideal casing, and flow instability first appeared in passages adjacent to the smallest tip clearance. Simultaneously, casing deformation induced pronounced circumferential variability in the flow field and blockage-zone extent within the blade-tip region. On one hand, circumferential non-uniformity in leading-edge tip clearance and local flow incidence controlled the leading-edge leakage strength in each passage, shaping blockage-zone extent. Blockage was most severe near maximum tip clearance, triggering instability in that passage. On the other hand, circumferential non-uniformity in trailing-edge tip clearance and suction-side separation location controlled the trailing-edge leakage intensity and separation-blockage severity. These factors maximize blockage near minimum tip clearance, causing the earliest instability in that passage.
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表 1 Rotor 37设计参数
参数 数值 叶片数 36 设计转速/(r/min) 17188.7 设计压比 2.106 叶尖速度/(m/s) 454.14 设计流量/(kg/s) 20.19 等熵效率 0.889 叶顶间隙高度/mm 0.356 -
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