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首页> 外文期刊>Journal of turbomachinery >Analysis Method of Nonsynchronous Vibration and Influence of Tip Clearance Flow Instabilities on Nonsynchronous Vibration in an Axial Transonic Compressor Rotor
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Analysis Method of Nonsynchronous Vibration and Influence of Tip Clearance Flow Instabilities on Nonsynchronous Vibration in an Axial Transonic Compressor Rotor

机译:非同步振动的分析方法和尖端间隙流动不稳定性对轴跨跨安压缩机转子中不同步振动的影响

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摘要

The relationship between the tip clearance flow (TCF) and the blade vibration in the lock-in region was numerically investigated on a transonic rotor. Both the bending (1B) and tor-sional (8th) modes were analyzed under 0 ND. The time marching method and a single-passage model were used, which were verified by citing and comparing with the results in references. The phase of the TCF (referring to the phase difference between the unsteady pressure caused by the TCF and the blade vibration) changed with the frequency ratio in the lock-in region. The strength of the TCF was influenced slightly by the blade vibration amplitude. A separation method of the unsteady pressure caused by the TCF and the blade vibration was developed and verified at different conditions. The unsteady pressure of nonsynchronous vibration (NSV) was separated into the components of the TCF and the blade vibration under the 1B and 8th modes. The unsteady pressure component of the TCF changed little with the vibration amplitude and mainly existed in the tip area. The unsteady pressure component of the blade vibration was larger at part spans and its distribution depended on the modal shape and the vibration amplitude. The unsteady pressure components of the TCF and the blade vibration determined the aerodynamic work/ damping in the lock-in region. The aerodynamic work components of the TCF and the blade vibration increased linearly and at a rate of the square with the vibration amplitude, respectively. TCF was dominant in the initial stage of vibration. With the vibration amplitude increasing, the aerodynamic work done by the unsteady pressure component of the blade vibration gradually caught up. The aerodynamic damping of the TCF changed with the phase of the TCF. TCF provided positive damping at some phases and negative damping at other phases. In the initial stage of vibration, the system was stable at the phases TCF providing positive damping and unstable at the phases of negative damping. NSV occurred only when TCF provided negative damping and the unsteady pressure component of the blade vibration provided positive damping. If the aerodynamic damping of the blade vibration was negative, the vibration would be enlarged until failure. Regardless of other damping forms, the maximum amplitude of NSV can be obtained by calculating the balance of the aerodynamic work. For the 8th mode, the limit amplitude under 0 ND was 0.0926%C, which corresponded to vibration stress of about 60 MPa.
机译:在跨音转子上用锁定区域中的尖端间隙流(TCF)和锁定区域中的叶片振动之间的关系。弯曲(1b)和扭矩(第8个)模式均在0 nd下进行分析。使用时间行动方法和单通道模型,通过引用并与参考结果进行比较来验证。 TCF的相位(参考由TCF和叶片振动引起的不稳定压力之间的相差)随着锁定区域中的频率比而改变。通过叶片振动幅度略微影响TCF的强度。在不同的条件下开发并验证了由TCF引起的不稳定压力和叶片振动的分离方法。在1B和第8模式下,不同步振动(NSV)的不稳定压力分离成TCF的组件和叶片振动。 TCF的不稳定压力分量随着振动幅度而变化,并且主要存在于尖端区域。叶片振动的不稳定压力分量在部分跨度处较大,其分布依赖于模态形状和振动幅度。 TCF和叶片振动的不稳定压力分量确定了锁定区域中的空气动力学工作/阻尼。 TCF的空气动力学工作组分和叶片振动分别以振动幅度的平方的线性和速度增加。 TCF在振动的初始阶段占主导地位。随着振动幅度的增加,通过叶片振动的不稳定压力分量完成的空气动力学工作逐渐唤起。 TCF的空气动力学阻尼随着TCF的阶段而变化。 TCF在某些阶段提供正阻尼,并在其他阶段进行负阻尼。在振动的初始阶段,该系统在TCF阶段稳定,在负阻尼的阶段提供正阻尼和不稳定。仅当TCF提供负阻尼时才发生NSV,并且叶片振动的不稳定压力分量提供了正阻尼。如果叶片振动的空气动力学阻尼是阴性的,则振动将扩大直至发生故障。无论其他阻尼形式如何,都可以通过计算空气动力学工作的平衡来获得NSV的最大幅度。对于第8型,0 ND下的极限幅度为0.0926%C,其对应于约60MPa的振动应力。

著录项

  • 来源
    《Journal of turbomachinery》 |2021年第11期|111014.1-111014.15|共15页
  • 作者单位

    School of Energy and Power Engineering Beihang University 37 Xueyuan Road Haidian District Beijing 100191 China;

    School of Energy and Power Engineering Beihang University 37 Xueyuan Road Haidian District Beijing 100191 China;

    School of Energy and Power Engineering Beihang University 37 Xueyuan Road Haidian District Beijing 100191 China;

    School of Energy and Power Engineering Beihang University 37 Xueyuan Road Haidian District Beijing 100191 China;

    School of Energy and Power Engineering Beihang University 37 Xueyuan Road Haidian District Beijing 100191 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    nonsynchronous vibration (NSV); tip clearance flow (TCF) instabilities;

    机译:不同步振动(NSV);尖端间隙流(TCF)稳定性;

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