MOOG G761 and 761 Series Servo Valves Direct-Operated Flow Control for Analog Signals
- 2-stage flow control Mechanical Feedback (MFB) Servo Valve
- Nozzle-flapper pilot stage technology provides high dynamics, high resolution and low hysteresis
- High spool driving forces and rugged design ensures long-life operation
- Compact design enables applications with limited footprint
- Instrinsically-safe versions (G761K and 761K) available for applications requring products certified for use in potentially hazardous environments
The G761/761 Series Flow Control Servo Valves are throttle valves for 3 and preferably 4-way applications. They are a high performance, 2-stage design that covers the range of rated flows from 4 to 63 l/min (1 to 16.5 gpm) at 35 bar (500 psi) valve pressure drop per spool land. The design is simple and rugged for dependable, long life operation. The output stage is a closed center, 4-way sliding spool. The pilot stage is comprised of a symmetrical, double nozzle dry torque motor. The 2nd stage spool position is controlled by a carbide tipped feedback wire. The carbide ball on the end of the feedback wire is a mandatory design requirement that ensures high accuracy, reliable operation and long service life. All of our Servo Valves are known for high accuracy and reliable operation even in the harshest industrial applications. These valves are suitable for electrohydraulic position, speed, pressure or force control systems with high dynamic response requirements.
Description of Operation
The G761/761 Series Flow Control Servo Valve consists of a polarized electrical torque motor and two stages of hydraulic power amplification. The motor armature extends into the air gaps of the magnetic flux circuit and
is supported in this position by a flexure tube member. The flexure tube acts as a seal between the electromagnetic and hydraulic sections of the valve. The 2 motor coils surround the armature, one on each side of the flexure
tube. The flapper of the first stage hydraulic amplifier is rigidly attached to the midpoint of the armature. The flapper extends through the flexure tube and passes between 2 nozzles, creating two variable orifices between the nozzle tips and the flapper. The pressure controlled by the flapper and nozzle variable orifice is fed to the end areas of the second stage spool.
The second stage is a conventional four-way spool design in which output flow from the valve, at a fixed valve pressure drop, is proportional to spool displacement from the null position. A cantilever feedback spring is fixed to
the flapper and engages a hole in the center of the spool. Displacement of the spool defects the feedback spring which creates a force on the armature/flapper assembly. Input signal induces a magnetic charge in the armature and causes a deflection of the armature and flapper. This assembly pivots about the flexure tube and increases the size of one nozzle orifice and decreases the size of the other.
The differential pressure created by this action causes spool motion. The resulting spool displacement induces a linear force in the feedback wire which opposes the original input signal torque. Spool movement continues until the feedback wire force equals the input signal force.
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HONGKONG XIEYUAN TECH CO., LIMITED
Add: 7-A16,Caishen Commercial Plaza,Hankou Railway Station,Wuhan, China
Contact: Ms. Lily
WhatsApp/Skype: +86 13789949182