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Tip-Clearance Actuation With Magnetic Bearings for High-Speed Compressor Stall Control

机译:带磁力轴承的叶尖间隙驱动,用于高速压缩机失速控制

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摘要

Magnetic bearings are widely used as active suspension devices in rotating machinery, mainly for active vibration control purposes. The concept of active tip clearance control suggests a new application of magnetic bearings as servo-actuators to stabilize rotating stall in axial compressors. This paper presents a first-of-a-kind feasibility study of an active stall control experiment with a magnetic bearing servo-actuator in the NASA Glenn high-speed single-stage compressor test facility. Together with CFD and experimental data a two-dimensional, incompressible compressor stability model was used in a stochastic estimation and control analysis to determine the required magnetic bearing performance for compressor stall control. The resulting requirements introduced new challenges to the magnetic bearing actuator design. A magnetic bearing servo-actuator was designed which fulfilled the performance specifications. Control laws were then developed to stabilize the compressor shaft. In a second control loop, a constant gain controller was implemented to stabilize rotating stall. A detailed closed loop simulation at 100% corrected design speed resulted in a 2.3% reduction of stalling mass flow which is comparable to results obtained in the same compressor by Weigl et al. (1998) using unsteady air injection. The design and simulation results presented here establish the viability of magnetic bearings for stall control in aero-engine high-speed compressors. Furthermore the paper outlines a general design procedure to develop magnetic bearing servo-actuators for high-speed turbomachinery.
机译:电磁轴承被广泛用作旋转机械中的主动悬挂装置,主要用于主动振动控制。主动叶尖间隙控制的概念提出了将电磁轴承作为伺服执行器的新应用,以稳定轴向压缩机中的旋转失速。本文介绍了在NASA Glenn高速单级压缩机测试设施中使用磁轴承伺服执行器进行主动失速控制实验的首次可行性研究。连同CFD和实验数据,在随机估计和控制分析中使用了二维不可压缩的压缩机稳定性模型,以确定压缩机失速控制所需的磁轴承性能。由此产生的要求给磁性轴承致动器的设计提出了新的挑战。设计了满足性能规格的电磁轴承伺服执行器。然后制定控制律以稳定压缩机轴。在第二个控制回路中,实施了恒定增益控制器来稳定旋转失速。在100%校正设计速度下进行的详细闭环模拟导致失速质量流量减少2.3%,这与Weigl等人在同一台压缩机中获得的结果相当。 (1998年)使用不稳定的空气注入。本文介绍的设计和仿真结果确定了用于航空发动机高速压缩机失速控制的电磁轴承的可行性。此外,本文还概述了开发用于高速涡轮机械的磁轴承伺服执行器的一般设计程序。

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