Skip to content
2000
Volume 18, Issue 8
  • ISSN: 2352-0965
  • E-ISSN: 2352-0973

Abstract

Background

This article outlines the working principle of the nozzle baffle type electro-hydraulic servo valve and analyzes the progress of research on its characteristics more fully.

Objective

Firstly, it summarizes the research progress on the characteristics of the cavitation phenomenon, which is a common failure of nozzle baffle type electro-hydraulic servo valves; secondly, it comprehensively discusses the structural characteristics of nozzle baffle type electro-hydraulic servo valves: moving-iron torque motors and moving-coil torque motors, as well as the progress of the research on the characteristics of the power-stage valve spools and direct-injection valve spools.

Methods

It suggests to the readers other optimization methods that can be made for the cavitation phenomenon in the future, and brings innovative ideas for the readers in terms of moving-iron . moving-coil torque motors and other aspects that can be improved for the power-stage spools . direct-injection spools. Again, for the typical technical problems of nozzle baffle type electro-hydraulic servo valves, we have searched and organized the related technical patents at home and abroad and clearly outlined the current improvements for nozzle baffle type electro-hydraulic servo valves.

Results

Through the discussion of related articles and patents, it is found that although many methods have been proposed at home and abroad to address the shortcomings of the nozzle baffle type electro-hydraulic servo valve, it still has a high failure rate and has not been comprehensively solved, there is still a lot of room for optimization.

Conclusion

Finally, the new solutions proposed for the performance deficiencies of nozzle baffle type electro-hydraulic servo valves are summarized, and the future development trend of nozzle baffle type electro-hydraulic servo valves is predicted and outlooked.

Loading

Article metrics loading...

/content/journals/raeeng/10.2174/0123520965316691240802063822
2024-08-16
2025-11-15
Loading full text...

Full text loading...

References

  1. ZhengW. YuL. MaZ. Research on the performance of nozzle baffle electro-hydraulic servo valve.Metallurgical Equipment2021S24850
    [Google Scholar]
  2. XuH. XuW. LiG. Study and adjustment of zero deflection of nozzle baffle type electro-hydraulic servo valve.Thermal Turbine20235203237240
    [Google Scholar]
  3. QunF. ZengH. Development history, research status and development trend of electro-hydraulic servo valve.Machine Tools and Hydraulic200711162165
    [Google Scholar]
  4. BinChen YiMenglin Research status and development trend of electro-hydraulic servo valve.Hydraul. Pneumat.20050658
    [Google Scholar]
  5. QunFang Development of electro-hydraulic servo valve technology.Hydraul. Pneumat.201208143147
    [Google Scholar]
  6. ChenY. Introduction to electrohydraulic pressure servo valves.Machine Tools and Hydraulics2021497172177
    [Google Scholar]
  7. ShuoK. HaoY. ChangchunL.I. Research review of deflector jet servo valve.J. Beijing Jiaotong Univ.20174101130139
    [Google Scholar]
  8. ZhangS. AungN.Z. LiS. Reduction of undesired lateral forces acting on the flapper of a flapper–nozzle pilot valve by using an innovative flapper shape.Energy Convers. Manage.201510683584810.1016/j.enconman.2015.10.012
    [Google Scholar]
  9. WangZ. KaiZ. GangZ. Research and countermeasures of pollution failure of nozzle baffle servo valve.Machine Tools and Hydraulics20144221196199
    [Google Scholar]
  10. ChaoC. Pressure characterization of single-stage nozzle baffle electrohydraulic servo valve.ICEA2022047781
    [Google Scholar]
  11. WangC. Hydraulic control system.BeijingMachinery Industry Press200081100
    [Google Scholar]
  12. ChenZ. FanD. CaiY. Characterization of single-stage double-nozzle baffle electro-hydraulic servo valve.Machine Tools and Hydraulics200704114116
    [Google Scholar]
  13. ChristopherE. Fundamentals of Multiphase Flows.CambridgeCambridge University Press2005
    [Google Scholar]
  14. BrennenC.E. Cavitation and Bubble Dynamics.OxfordOxford University Press199510.1093/oso/9780195094091.001.0001
    [Google Scholar]
  15. ArndtR.E.A. Cavitation in vortical flows.Annu. Rev. Fluid Mech.200234114317510.1146/annurev.fluid.34.082301.114957
    [Google Scholar]
  16. LoC.W. ChenS.F. LiC.P. LuP.C. Cavitation phenomena in mechanical heart valves: Studied by using a physical impinging rod system.Ann. Biomed. Eng.201038103162317210.1007/s10439‑010‑0070‑y20490686
    [Google Scholar]
  17. DularM. BachertB. StoffelB. ŠirokB. Relationship between cavitation structures and cavitation damage.Wear2004257111176118410.1016/j.wear.2004.08.004
    [Google Scholar]
  18. SandhyaM. RajarajeswariK. SeetaramaiahP. Detecting inception of hydrodynamic cavitation noise of ships using quadratic phase coupling index as an indicator.Def. Sci. J.2015651536210.14429/dsj.65.7885
    [Google Scholar]
  19. Coutier-DelgoshaO. Fortes-PatellaR. ReboudJ.L. HofmannM. StoffelB. Experimental and numerical studies in a centrifugal pump with two-dimensional curved blades in cavitating condition.J. Fluids Eng.2003125697097810.1115/1.1596238
    [Google Scholar]
  20. AmrominE.L. Design approach for cavitation tolerant hydrofoils and blades.J. Fluids Structures2014459610610.1016/j.jfluidstructs.2013.11.014
    [Google Scholar]
  21. GohilP. SainiR. Numerical study of cavitation in francis turbine of a small hydro power plant.J. Appl. Fluid Mech.20169135736510.18869/acadpub.jafm.68.224.24080
    [Google Scholar]
  22. GaoH. FuX. YangH. TetsuhiroT. Numerical and experimental investigation of cavitating flow within hydraulic poppet valve.Jixie Gongcheng Xuebao2002388273010.3901/JME.2002.08.027
    [Google Scholar]
  23. WangG. Ostoja-StarzewskiM. Large eddy simulation of a sheet/cloud cavitation on a NACA0015 hydrofoil.Appl. Math. Model.200731341744710.1016/j.apm.2005.11.019
    [Google Scholar]
  24. JiB. LuoX. WuY. PengX. DuanY. Numerical analysis of unsteady cavitating turbulent flow and shedding horse-shoe vortex structure around a twisted hydrofoil.Int. J. Multiph. Flow201351334310.1016/j.ijmultiphaseflow.2012.11.008
    [Google Scholar]
  25. GavaisesM. VillaF. KoukouvinisP. MarengoM. FrancJ.P. Visualisation and les simulation of cavitation cloud formation and collapse in an axisymmetric geometry.Int. J. Multiph. Flow201568142610.1016/j.ijmultiphaseflow.2014.09.008
    [Google Scholar]
  26. HuangB. ZhaoY. WangG. Large Eddy Simulation of turbulent vortex-cavitation interactions in transient sheet/cloud cavitating flows.Comput. Fluids20149211312410.1016/j.compfluid.2013.12.024
    [Google Scholar]
  27. SalvadorF.J. Martínez-LópezJ. RomeroJ.V. RosellóM.D. Computational study of the cavitation phenomenon and its interaction with the turbulence developed in diesel injector nozzles by Large Eddy Simulation (LES).Math. Comput. Model.2013577-81656166210.1016/j.mcm.2011.10.050
    [Google Scholar]
  28. ZhangS. Research on transient cavitation and its rheological phenomenon in the flow field of nozzle baffle servo valve front stage.Harbin Institute of Technology2016
    [Google Scholar]
  29. LiSongjing XinbeiLv Characterization of fluid-solid coupling in the front stage of nozzle baffle servo valve.Hydraul. Pneumat.2017(06)16
    [Google Scholar]
  30. WeiL. Numerical simulation analysis of cavitation phenomenon at nozzle.Energy Conservation201231032123
    [Google Scholar]
  31. XiaoH. AungN.Z. CaoJ. Simulation and experimental study of air-cavitation phenomenon in the flow field of servo valve pre-stage.Electromechanical Engineering2014311012391243
    [Google Scholar]
  32. HuangJ. Cavitation in hydraulic systems.J. East China Metall. Inst.1991012837
    [Google Scholar]
  33. HongG. XinF. YangH. Numerical simulation and experimental study of the flow field in the vent of a cone valve.Jixie Gongcheng Xuebao2002082730
    [Google Scholar]
  34. DongZ. Research on the transient process of a low-pressure pipeline of the hydraulic system.Harbin Institute of Technology2006
    [Google Scholar]
  35. XinF. Observation of air pockets and flow field analysis in high-speed flow at valve port.Hydraulic and Pneumatic2006072931
    [Google Scholar]
  36. HongJ. Study on the noise characteristics of air pockets in the throttle groove of hydraulic valve spool.Zhejiang University2004
    [Google Scholar]
  37. CaoJ. Simulation and experimental study of air cavitation in the jet flow field of servo valve front stage.Harbin Institute of Technology2013
    [Google Scholar]
  38. LiS. FangZ. WuZ. Two-dimensional finite element analysis of servo valve torque motor using magnetic fluid.J. China Univ. Min. Technol.200602178181
    [Google Scholar]
  39. NanL. GaoY. Research on performance parameters of nozzle baffle servo valve.Hydraulic and Pneumatic2008106973
    [Google Scholar]
  40. YuZ. YangF. HanQ. Optimized design of moving coil force motor.Machine Tools and Hydraulics2004063738
    [Google Scholar]
  41. JingS. WuS. MinjianL. Magnetic field analysis of moving coil force motor based on NdFeB permanent magnet material.Electromechanical Engineering Technology2007056667
    [Google Scholar]
  42. MinjianL. Simulation and optimization research on industrial moving coil type electro-hydraulic servo valve.Wuhan University of Science and Technology2007
    [Google Scholar]
  43. WangJ. Research and simulation analysis of electro-hydraulic servo valve moving circle force motor based on ANSYS.Wuhan University of Science and Technology2005
    [Google Scholar]
  44. YangF. LiuX. LongY. Research on new high-frequency moving-coil linear force motor.Machine Tools and Hydraulics2012409112115
    [Google Scholar]
  45. ShiY. Research on the characteristics of all-electric feedback moving coil single-stage servo valve.BeijingBeijing Institute of Technology1999
    [Google Scholar]
  46. LiH. Design of single coil moving iron linear force motor.Lanzhou University of Science and Technology2013
    [Google Scholar]
  47. PingF. FanD. LiQ. Research on high-frequency moving-iron electro-mechanical converter.Zhongguo Jixie Gongcheng2005162320902092
    [Google Scholar]
  48. YongL. Research on key technology of low power consumption proportional electro-mechanical converter.Zhejiang University2009
    [Google Scholar]
  49. YangZ. Development of an automatic grinding system for servo valve spool throttling edge.HeilongjiangHarbin Institute of Technology2016
    [Google Scholar]
  50. WuH. HaoL. PengX. Study on the chattering response of proportional valve based on Karnopp friction model.Machine Tools and Hydraulics20214919152156
    [Google Scholar]
  51. TingyingL. HuangX. HeK. Fluent-based hydrodynamic study of hydraulic servo valve.Machine Tools and Hydraulics20113913131132
    [Google Scholar]
  52. ZhangS. Optimized design and experimental study of high-frequency loudness piezoelectric servo valve spool.SichuanSichuan University2021
    [Google Scholar]
  53. XiaoH. Research on spool position control of high-pressure and high-flow pneumatic proportional valve.HubeiHuazhong University of Science and Technology2014
    [Google Scholar]
  54. LiY. ChenK. A new type of electro-hydraulic servo valve.Machine Tools and Hydraulics20064142143
    [Google Scholar]
  55. Du JingminX.H. GaoL. Research on servo control of spool position of high-pressure high-flow pneumatic valve based on feedback linearization.Hydraulic and Pneumatic201456670
    [Google Scholar]
  56. KangD. ZhaoJ. JinY. A reset mechanism of hydraulic servo valve.Machine Tools and Hydraulics20134129395
    [Google Scholar]
  57. QiT. Research on the fluid steady-state force of direct-injection column hydraulic valve.Zhongguo Jixie Gongcheng2002131311021105
    [Google Scholar]
  58. A method for suppressing cavitation phenomenon in the front stage of a nozzle baffle type electro-hydraulic servo valve.C.N. Patent 2018109037442020
    [Google Scholar]
  59. China aviation industry corporation jincheng nanjing electromechanical hydraulic engineering research center. An armature assembly sealing structure for a single-stage nozzle baffle type electrohydraulic servo valve.C.N. Patent 2016212547962017
    [Google Scholar]
  60. An electro-hydraulic servo valve with anti-oil contamination nozzle baffle.C.N. Patent 202120715990.22022
    [Google Scholar]
  61. Piezoelectric chip-driven nozzle baffle pressure servo valve with main spool hydrodynamic compensation.C.N. Patent CN201910978608.42021
    [Google Scholar]
  62. Multi-nozzle baffle electro-hydraulic servo valve and its working method.C.N. Patent 201110191998.42011
    [Google Scholar]
  63. Nozzle baffle type two-stage electro-hydraulic servo valve with nozzle contaminant protection function.C.N. Patent 202123276436.82022
    [Google Scholar]
  64. An electro-hydraulic servo valve nozzle baffle.C.N. Patent 201921583277.62020
    [Google Scholar]
  65. A non-similar margin electro-hydraulic servo valve.C.N. Patent 201711113175.32020
    [Google Scholar]
  66. A nozzle-baffle type two-stage electro-hydraulic servo valve.C.N. Patent 200620045436.32007
    [Google Scholar]
  67. A kind of double nozzle baffle electro-hydraulic servo valve armature assembly press fitting tooling.C.N. Patent 202210404429.12022
    [Google Scholar]
  68. HydraulicHenan Aerospace A new type of high flow electro-hydraulic servo valve.C.N. Patent 202011344343.12021
    [Google Scholar]
  69. A new type of nozzle baffle type servo valve.C.N. Patent CN03211566.02004
    [Google Scholar]
  70. A piezoelectric double nozzle baffle electro-hydraulic servo valve.C.N. Patent CN202311136548.42023
    [Google Scholar]
  71. A combination nozzle for nozzle baffle type electro-hydraulic servo valve.C.N. Patent 201921537438.82020
    [Google Scholar]
  72. Shanghai Norma Hydraulic Systems Co Tool for debugging front stage differential pressure and nozzle baffle gap of electrohydraulic servo valve.C.N. Patent 200710041050.42008
    [Google Scholar]
  73. Shanghai Norma Hydraulic System Co Front stage primary seat structure for double nozzle baffle type electro-hydraulic servo valve.C.N. Patent 200820157473.22010
    [Google Scholar]
  74. HITACHI CONSTR MACH CO LTD Nozzle flapper type servo valve.J.P. Patent 199200085851993
    [Google Scholar]
  75. Tokyo seimitsu sokki KK. Nozzle flapper type servo valve.J.P. Patent 199301962671995
    [Google Scholar]
  76. TOYODA KOKIKK. Nozzle flapper type servo valve mechanism.J.P. Patent 198001686851982
    [Google Scholar]
  77. TOYODA KOKIKK. Nozzle flapper servo valve.J.P. Patent 198001502101982
    [Google Scholar]
/content/journals/raeeng/10.2174/0123520965316691240802063822
Loading
/content/journals/raeeng/10.2174/0123520965316691240802063822
Loading

Data & Media loading...

This is a required field
Please enter a valid email address
Approval was a Success
Invalid data
An Error Occurred
Approval was partially successful, following selected items could not be processed due to error
Please enter a valid_number test