期刊文献+

Output Waveform Analysis of an Electro-hydraulic Vibrator Controlled by the Multiple Valves 被引量:10

Output Waveform Analysis of an Electro-hydraulic Vibrator Controlled by the Multiple Valves
下载PDF
导出
摘要 The existing research of the electro-hydraulic vibrator mainly focuses on system stability, working frequency width and output waveform distortion. However, this high frequency performance of the electro-hydraulic vibrator is difficult to be improved greatly due to fast insufficiently frequency response of the servo valve itself and limited compensation capability of the control structure in the vibrator system. In this paper, to realize high frequency vibration, an improved two-dimensional valve (here within defined as a 2D valve) as a main control component is adopted to the parallel connection with a servo valve to control the electro-hydraulic vibrator, Because the output waveforms of this electro-hydraulic vibrator are incapable to be verified through timely feedback as in the conventional electro-hydraulic servo system, the analysis to the output waveform becomes crucial to the design and control of the electro-hydraulic vibrator. The mathematical models of hydraulic actuation mechanism and the orifice area of the parallel valves connection are established first. And then the vibration process is divided into two sections in terms of the direction of the flow, the analytical expression of the excited waveform is solved. Based on relationships exist between working states and the control parameters the analytical results, the vibration boundary positions and the are derived. Finally an experimental system was built to validate the theoretical analysis. It is verified that this electro-hydraulic vibration system could achieve high working frequency, up to 2 000 Hz. The excited waveform is similar to the sinnsoidal waveform. And the ascent and decent slopes of the waveforms are somewhat asymmetrical. This asymmetry is not only caused by the change of the direction of the elastic force but also dependent on the bias position of the vibration. Consequentky the distortion of effective working waveform is less tha~ 10%. This electro-hydraulic vibrator controlled by the multiple valves could not only greatly enhance the working frequency but also precisely control the vibration characteristic variables such as waveform shape. The existing research of the electro-hydraulic vibrator mainly focuses on system stability, working frequency width and output waveform distortion. However, this high frequency performance of the electro-hydraulic vibrator is difficult to be improved greatly due to fast insufficiently frequency response of the servo valve itself and limited compensation capability of the control structure in the vibrator system. In this paper, to realize high frequency vibration, an improved two-dimensional valve (here within defined as a 2D valve) as a main control component is adopted to the parallel connection with a servo valve to control the electro-hydraulic vibrator, Because the output waveforms of this electro-hydraulic vibrator are incapable to be verified through timely feedback as in the conventional electro-hydraulic servo system, the analysis to the output waveform becomes crucial to the design and control of the electro-hydraulic vibrator. The mathematical models of hydraulic actuation mechanism and the orifice area of the parallel valves connection are established first. And then the vibration process is divided into two sections in terms of the direction of the flow, the analytical expression of the excited waveform is solved. Based on relationships exist between working states and the control parameters the analytical results, the vibration boundary positions and the are derived. Finally an experimental system was built to validate the theoretical analysis. It is verified that this electro-hydraulic vibration system could achieve high working frequency, up to 2 000 Hz. The excited waveform is similar to the sinnsoidal waveform. And the ascent and decent slopes of the waveforms are somewhat asymmetrical. This asymmetry is not only caused by the change of the direction of the elastic force but also dependent on the bias position of the vibration. Consequentky the distortion of effective working waveform is less tha~ 10%. This electro-hydraulic vibrator controlled by the multiple valves could not only greatly enhance the working frequency but also precisely control the vibration characteristic variables such as waveform shape.
出处 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2014年第1期186-197,共12页 中国机械工程学报(英文版)
基金 supported by National Natural Science Foundation of China(Grant No.50675204) Zhejiang Provincial Natural Science Foundation of China(Grant No.D1080667)
关键词 2D valves hydraulic multiple-valve system electro-hydraulic vibrator excited waveform 2D valves, hydraulic multiple-valve system, electro-hydraulic vibrator, excited waveform
  • 相关文献

参考文献4

二级参考文献26

  • 1宫福昌,左曙光,张友坤.激振式扭转疲劳试验台载荷波形畸变分析[J].农业机械学报,1993,24(3):70-75. 被引量:3
  • 2樊映川.高等教学讲义(上册)[M].北京:人民教育出版社,1958..
  • 3Kokusyo T, Iwatate T. Scaled Model Vibration Tests and Numerical Analysis on Nonlinear Dynamic Response of Subway Structure[C]//Proceedings of the 24th JSCE Earthquake Engineering Symposium. Kobe, Japan, 1979 : 233-236.
  • 4Stroud R C, Hamma G A. Multiexciter and Multiaxis Vibration Exciter Control Systems[J]. Sound and Vibration, 1988,22(4) : 18-28.
  • 5Suzuki M, Miyahara S,Kitagawa T, et al. Effect of Mold Oscillation Curves on Heat Transfer and Lubrication Behaviour in Mold at High Speed Continuous Casting of Steel Slabs[J]. Iron and Steel, 1992, 78(1 ) : 113-120.
  • 6Dolores V M, Maria J M, Camilo Q, et al. A Data Acquisition Reconfigurable Coprocessor for Virtual Instrumentation Applications [M]. Berlin: Springer Berlin, 2003.
  • 7Ghafari S H,Golnaraghi F,Ismail F. Effect of Localized Faults on Chaotic Vibration of Rolling Element Bearings [J]. Nonlinear Dynamics, 2008, 53 (4) :287-301.
  • 8Dotsenko S F. Evaluation of the Parameters of Tsunami Waves along the South Coast of the Crimean Peninsula[J]. Physical Oceanography, 2005,15 ( 3 ) 133-141.
  • 9骆涵秀,李世伦,朱捷,等.机电控制[M].杭州:浙江大学出版社,1993.
  • 10周浩敏,王睿.测试信号处理技术[M].北京:北京航空航天大学出版社,1993.

共引文献55

同被引文献79

引证文献10

二级引证文献14

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部