Pressure-Flow Characteristics of Electromagnetic Directional Valve Under Foundation Vibration[J]. 2017, 51(11): 79-86+124.
DOI:
Pressure-Flow Characteristics of Electromagnetic Directional Valve Under Foundation Vibration[J]. 2017, 51(11): 79-86+124.DOI: 10.7652/xjtuxb201711012.
Pressure-Flow Characteristics of Electromagnetic Directional Valve Under Foundation Vibration
Aiming at the impact of foundation vibration on pressure-flow characteristics of electromagnetic directional valve
the mathematical model and simulation model of the electromagnetic directional valve under the foundation vibration are established by controlling differential pressure of valve port to simulate the pressure loss. The transient flow force and electromagnet force under the foundation vibration are considered
and the accuracy of the model is verified experimentally. The influences of foundation vibration parameters and structure parameters of the valve on the pressure-flow characteristics and the flow fluctuation are discussed. The results show that electromagnetic directional valve with small flow and low pressure loss is more suitable for the foundation vibration environment. The pressure-flow characteristic reduction zone and the flow fluctuation failure area under foundation vibration are obtained
and the pressure-flow characteristic reduction area for the differential pressure of 0.7 MPa gets 45 times of that of 0.4 MPa. The flow fluctuation amplitude can be decreased by reducing the spool mass and increasing the damping coefficient and the spring stiffness ought to be less than 5 kN/m.
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