2013 ◽  
Vol 444-445 ◽  
pp. 468-475 ◽  
Author(s):  
Huan Yang ◽  
Jing Luo ◽  
Sen Hui ◽  
Shi Yin Qiu ◽  
Rong Ping Xue ◽  
...  

The static-state error is existed in the pressure valve, coupled with the characteristics of high vaporization pressure, low viscosity, and small compressibility, so that the fluid dynamics and friction force of hydraulic pressure valve are increased. The pressure valve will easily come up with produce cavitation erosion and wire drawing. Those appearances would seriously affect the performance of the pressure valve and its life cycle. A new type of static water pressure reducing valve is designed in this paper. It has a special structure which can complete the internal dynamic pressure feedback of the valve. The static mathematical model of value is established. And the static characteristic is analysed by using MATLAB simulation, which provides the static pressure characteristic curve, static pressure flow curve. It comes up with a result that this valve has good static pressure, and high precision pressure regulator.


1997 ◽  
Vol 119 (3) ◽  
pp. 467-473 ◽  
Author(s):  
N. D. Manring ◽  
R. E. Johnson

In this paper, the flow gain of a hydraulic pressure-reducing valve is examined. It is noted that classical linear-analysis is typically used to optimize the flow gain of hydraulic control-systems and that in practice this parameter is usually nonlinear. For this reason, it is important that a designer know how to reconcile the optimization using linear analysis with the implementation of the nonlinear physical design. In particular, this paper concerns itself with the steady-state flow gain and the shape of the flow passage that contributes to the nonlinear flow-gain characteristics. The shapes of a circle, a rectangle, a diamond, and a triangle are discussed and it is shown that a triangular shape provides an optimal flow passage compared to other shapes of similar size.


2017 ◽  
Vol 139 (4) ◽  
Author(s):  
Xiaofeng He ◽  
Daoxin Zhao ◽  
Xiao Sun ◽  
Bihai Zhu

A three-way water hydraulic pressure reducing valve (PRV) was developed in this paper for a test equipment in laboratory for adapting complex conditions. The designed PRV has a damping chamber with an orifice located at the spring chamber. Two types of throttles and orifice diameter were investigated through dynamic simulation and optimization, and their dimensions were determined and applied to the manufactured valve prototype. The static and dynamic performances of the valve were tested by experiments. At the preset pressure of 5.0 MPa, the outlet pressure variations for the pressure-reducing port and the relief port, are 0.73 MPa and 1.44 MPa, respectively, while the flow variation is up to 18.0 l/min. The experimental rising times and settling times of the PRV under the inlet pressure step for preset pressures of 5.0 MPa are 33.7 ms and 120.2 ms, respectively, and the overshoot is 3.76%. The test results at each preset pressure agree well with the simulation which verifies that the simulation model can be used to predict the dynamic performance of the PRV. The experimental results for the valve under flow step input conclude that it can work stably at small flow state. The research indicates that making the spring chamber a damping chamber by using an orifice is a feasible way to increase the pressure stability and the dynamic performance of the PRV. However, the damping effect of this structure is insufficient at high working pressure.


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