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180-E2D
The 180 series of high-pressure aluminium hydraulic rotary shear directional control valves are the ideal solution for control of hydraulic actuators on mobile and industrial applications where internal leakage must be minimised.
180-E0F
The 180 series of high-pressure aluminium hydraulic rotary shear directional control valves are the ideal solution for control of hydraulic actuators on mobile and industrial applications where internal leakage must be minimised.
180-E0G
The 180 series of high-pressure aluminium hydraulic rotary shear directional control valves are the ideal solution for control of hydraulic actuators on mobile and industrial applications where internal leakage must be minimised.
180-E1F
The 180 series of high-pressure aluminium hydraulic rotary shear directional control valves are the ideal solution for control of hydraulic actuators on mobile and industrial applications where internal leakage must be minimised.
180-E2F-B
The 180 series of high-pressure aluminium hydraulic rotary shear directional control valves are the ideal solution for control of hydraulic actuators on mobile and industrial applications where internal leakage must be minimised.
180-E2F-A
The 180 series of high-pressure aluminium hydraulic rotary shear directional control valves are the ideal solution for control of hydraulic actuators on mobile and industrial applications where internal leakage must be minimised.
FDC60-05-8-50/50
A 3-port pressure compensated flow divider-combiner, ideal for driving two cylinders in close unison regardless of individual loads or flow direction
FDC60-50-7-1
A 3-port pressure compensated flow divider-combiner, ideal for driving two cylinders in close unison regardless of individual loads or flow direction
FDC60-05-6-50/50
A 3-port pressure compensated flow divider-combiner, ideal for driving two cylinders in close unison regardless of individual loads or flow direction
FDC60-60-8-15/85
A 3-port pressure compensated flow divider-combiner, ideal for driving two cylinders in close unison regardless of individual loads or flow direction