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Rotordynamic Design Analysis of a Squeeze Film Damper Test Rig

机译:挤压膜阻尼器试验台的转子动力学设计分析

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摘要

An analytical rotordynamic design study was conducted on a formerly operating squeeze film damper test rig comprising of an overhung rotor-bearing system; the sealed squeeze film damper test module is placed at the overhanging end. The test rig uses an eccentric rotating and hence whirling disk to provide variable parameters to test the performance of the Squeeze Film Damper. Essential parameters of the rotor-bearing system such as rotor critical speeds and sub-critical synchronous rotor response are calculated using simple Beam theory, Transfer Matrix Method (TMM) and Finite Element Method (FEM). Two approaches of FEM are used to calculate the synchronous response of rotors viz. Harmonic Response Method and Transient Time Integration Method. The critical speeds and synchronous response obtained from various methods match well. Analytical squeeze film damper relations are used to calculate approximate damping values of the damper test module. A residual unbalance response of the rotor system along with a static eccentricity provides higher rotor response and hence larger damping values than intended. A Finite Element Method study of the performance of the damped rotor-bearing system to approximate operation of the squeeze film damper test rig is provides reduced rotor orbits indicating incorrect operation of the test rig. The same is validated using previously acquired data from the test rig system.
机译:在以前运行的挤压膜阻尼器试验装置上进行了转子动力学设计分析研究,该试验装置包括悬垂的转子轴承系统;密封的压膜阻尼器测试模块位于伸出端。该试验台使用偏心旋转的旋转盘,以提供可变的参数来测试挤压膜阻尼器的性能。使用简单的梁理论,传递矩阵法(TMM)和有限元方法(FEM)计算转子轴承系统的基本参数,例如转子临界速度和亚临界同步转子响应。有限元的两种方法被用来计算转子的同步响应。谐波响应法和瞬态时间积分法。通过各种方法获得的临界速度和同步响应非常匹配。挤压膜阻尼器的解析关系用于计算阻尼器测试模块的近似阻尼值。转子系统的残余不平衡响应以及静态偏心率可提供更高的转子响应,从而提供比预期更大的阻尼值。对阻尼转子轴承系统的性能进行有限元方法研究以逼近挤压膜阻尼器试验装置的运行情况,可以减少转子的轨道,从而指示试验装置的错误运行。使用先前从测试台系统获取的数据来验证这一点。

著录项

  • 作者

    Nagesh, Mahesh.;

  • 作者单位

    University of Cincinnati.;

  • 授予单位 University of Cincinnati.;
  • 学科 Mechanical engineering.
  • 学位 M.S.
  • 年度 2017
  • 页码 92 p.
  • 总页数 92
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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