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Nonlinear control and modeling of rotating stall in an axial flow compressor.

机译:轴流压缩机旋转失速的非线性控制和建模。

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摘要

This thesis focuses on understanding the use of air injection as a means of controlling rotating stall in an axial flow compressor, involving modeling, dynamical systems analysis, and experimental investigations.;Experimental work focused on verifying that the low order model, developed for air injection actuation, qualitatively captured the behavior of the Caltech compressor rig. Open loop tests were performed to determine how the placement of the air injectors on the rig affected the performance of the compressor. The positioning of the air injectors that provided the greatest control authority were used in the development of air injection controllers for rotating stall. The controllers resulted in complete elimination of the hysteresis associated with rotating stall. The use of a throttle actuator for the control of the surge dynamics was investigated, and then combined with an air injection controller for rotating stall; the resulting controller performed quite well in throttle disturbance rejection tests.;A higher order model was developed to qualitatively match the experimental results with a simulation. The results of this modeling effort compared quite well with the experimental results for the open loop behavior of the Caltech rig. The details of how the air injection actuators affect the compressor flow were included in this model, and the simulation predicted the same optimal controller that was developed through experimentation.;The development of the higher order model also included the investigation of systematic methods for determining the simulation parameters. Based on experimental measurements of compression system transients, the open loop simulation parameters were identified, including values for the compressor performance characteristic in regions where direct measurements were not possible. These methods also provided information on parameters used in the modeling of the pressure rise delivered by the compressor under unsteady flow conditions.;The first step towards this understanding was the development of a low order model for air injection control, the starting point of which was the Moore and Greitzer model for axial flow compressors. The Moore and Greitzer model was extended to include the effects of air injection and bifurcation analysis was performed to determine how the closed loop system dynamics are different from those of the open loop system. This low order model was then used to determine the optimal placement of the air injection actuators.
机译:本文的重点是了解使用空气喷射作为控制轴流压缩机旋转失速的手段,包括建模,动力学系统分析和实验研究。实验工作着重于验证为空气喷射开发的低阶模型。驱动,定性地捕获了Caltech压缩机装置的性能。进行开环测试,以确定钻机上空气喷射器的放置如何影响压缩机的性能。提供最大控制权限的空气喷射器的位置用于开发用于旋转失速的空气喷射控制器。控制器完全消除了与旋转失速相关的磁滞现象。研究了使用节气门执行器控制喘振动力学,然后将其与空气喷射控制器结合使用来旋转失速;所得到的控制器在节流阀抗扰度测试中表现良好。;开发了一个高阶模型,以使实验结果与仿真定性匹配。建模工作的结果与Caltech钻机的开环行为的实验结果相当好。该模型中包含了空气喷射执行器如何影响压缩机流量的细节,并且仿真预测了通过实验开发的相同最佳控制器。高阶模型的开发还包括确定系统设计方法的研究。模拟参数。根据压缩系统瞬态的实验测量结果,确定了开环模拟参数,包括不可能进行直接测量的区域中的压缩机性能特征值。这些方法还提供了有关在非定常流动条件下压缩机输送的压力升高建模中使用的参数的信息;朝着这一理解的第一步是开发用于空气喷射控制的低阶模型,其起点是轴流压缩机的Moore和Greitzer模型。扩展了Moore和Greitzer模型,以包括空气注入的影响,并进行了分叉分析,以确定闭环系统动力学与开环系统动力学之间的差异。然后使用该低阶模型来确定空气喷射执行器的最佳位置。

著录项

  • 作者

    Behnken, Robert Louis.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Engineering Mechanical.;Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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