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Frontiers of Mechanical Engineering

ISSN 2095-0233

ISSN 2095-0241(Online)

CN 11-5984/TH

Postal Subscription Code 80-975

2018 Impact Factor: 0.989

Front. Mech. Eng.    2016, Vol. 11 Issue (4) : 344-350    https://doi.org/10.1007/s11465-016-0406-x
RESEARCH ARTICLE
Design and analysis of a new high frequency double-servo direct drive rotary valve
Muzhi ZHU(),Shengdun ZHAO,Jingxiang LI
School of Mechanical Engineering, Xi’an Jiaotong University, Xi’an 710049, China
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Abstract

Researchers have investigated direct drive valve for many years to solve problems, such as fluid force imbalance and switching frequency. The structure of the rotary valve has received considerable research interest because of its favorable dynamic properties and simple structure. This paper studied the high frequency double-servo direct drive rotary valve (DDRV), and proposed a novel structure and drive method satisfying high reversing frequency and adequate quantity of flow. Servo motors are integrated into the valve by the innovative structure, which is designed to equilibrate the unbalanced radial fluid force with the symmetric distributed oil ports. Aside from the fast reversing function of the valve, the DDRV presented high performance in linearity of the flow quantity and valve opening as a result of the fan-shaped flow ports. In addition, a computational fluid dynamics (CFD) method based on Fluent was conducted to verify the flux regulation effect of the height change of the adjustable boss.

Keywords direct drive rotary valve      computational fluid dynamics (CFD)      flow regulation     
Corresponding Author(s): Muzhi ZHU   
Just Accepted Date: 25 October 2016   Online First Date: 17 November 2016    Issue Date: 29 November 2016
 Cite this article:   
Muzhi ZHU,Shengdun ZHAO,Jingxiang LI. Design and analysis of a new high frequency double-servo direct drive rotary valve[J]. Front. Mech. Eng., 2016, 11(4): 344-350.
 URL:  
https://academic.hep.com.cn/fme/EN/10.1007/s11465-016-0406-x
https://academic.hep.com.cn/fme/EN/Y2016/V11/I4/344
Fig.1  Geometry model of the DDRV
Fig.2  3D model of the valve core components
Fig.3  Simplified view of the commutation principle
Fig.4  Varied height of adjustable fluid chamber
Fig.5  3D model of the flow channel
Fig.6  Flow variable curves of each oil port
Fig.7  Curve of the pressure-flow equation
Fig.8  One quarter model of the fluid flow channel
Fig.9  Velocity streamline curves and pressure contour at heights of (a) 10 mm, (b) 5 mm, and (c) 3 mm
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