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THE DEVELOPMENT OF AN AIR INJECTION SYSTEM FOR THE FORCED RESPONSE TESTING OF AXIAL COMPRESSORS

机译:轴流压气机强制响应测试空气注入系统的开发

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A phase-controllable air injection exciter system was developed to enable measurement of the forced response properties of a transonic axial compressor blisk. The project was performed as part of the FP7 European framework programme project FUTURE. The eventual aim of this project is to improve existing turbomachinery blade flutter prediction methods.The development and manufacturing of the exciter system was performed by the Council for Scientific and Industrial Research (CSIR) in Pretoria, South Africa. The exciter system consists of 15 air injectors, each with its own servo motor and controller. The injectors consist of a small rotating disc with a specific number of holes equispaced around the periphery, rotating within a pressurised volume. When the holes are rotated, using a servo motor, past an exit tube an air pulse is generated that is injected upstream of the compressor. The controllers enable adjustment of the relative phase angle between the exciters and in this way a pattern that resembles different nodal diameters can be excited on the rotor blisk.Once the construction of the system was completed, it was transferred to Stellenbosch University, South Africa for sub-scale testing on a low speed compressor. The purpose of the sub-scale tests was to commission and verify the operation of the exciter system. The tests started with simple in-phase tests and then worked towards more complex test parameters that included frequency sweeps through the natural frequency of the compressor blades. The tests showed that it is possible to generate a blade response of different nodal diameters using the exciters. The blade response was also found to vary depending on the number of rotor holes, air supply pressure and sweep rate used for the exciters.Following completion of the sub-scale tests, the completed system was transferred to the transonic compressor test facility of the Technical University Darmstadt (TUD) where both free flutter and forced response experiments were performed on a purpose-designed blisk in the transonic compressor test rig. The experimental campaign was successfully completed with the forced response experiments showing that the air injection system could be used to measure the response characteristics of the blisk.
机译:为了控制跨音速轴向压缩机叶盘的强制响应特性,开发了一种可相位控制的空气喷射励磁系统。该项目是FP7欧洲框架计划FUTURE的一部分。该项目的最终目的是改进现有的涡轮机械叶片颤振预测方法。励磁系统的开发和制造由南非比勒陀利亚的科学与工业研究理事会(CSIR)进行。励磁系统由15个空气喷射器组成,每个空气喷射器都有自己的伺服电机和控制器。喷油器由一个小的转盘组成,该转盘上有一定数量的孔,这些孔在圆周上等距分布,并在加压体积内旋转。当使用伺服电机旋转孔时,经过出口管会产生空气脉冲,该空气脉冲会被注入到压缩机的上游。控制器可以调节激振器之间的相对相位角,从而可以在转子叶轮上激发出类似于不同节点直径的模式。一旦系统构建完成,就将其转移到南非的斯泰伦博斯大学(Stellenbosch University)进行研究。在低速压缩机上进行子规模测试。子规模测试的目的是调试和验证励磁系统的运行。这些测试从简单的同相测试开始,然后针对更复杂的测试参数进行工作,这些参数包括扫过压缩机叶片固有频率的频率。测试表明,使用激振器可以产生不同节点直径的叶片响应。还发现叶片响应随转子孔的数量,供气机所用的供气压力和吹扫速度的不同而变化。在完成小规模试验之后,已完成的系统被转移到技术部的跨音速压缩机试验设备中。达姆施塔特大学(TUD),在跨音速压缩机测试台中,在专门设计的叶盘上进行了自由颤振和强制响应实验。通过强制响应实验成功完成了实验,表明空气喷射系统可用于测量叶轮的响应特性。

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