MOOG D635-671E R02FB1F0NSM2M Hydraulic Valve

Application Scenarios: The Moog D635-671E is explicitly engineered for high-precision, closed-loop electro-hydraulic control systems where high frequency response and low flow control are vital. It is extensively applied in plastic injection molding machines (specifically for micro-injection or precise holding pressure control), blow molding parison controls, and high-frequency fatigue testing rigs. Because its dynamic performance is entirely independent of system pressure, it is also highly favored in robotics, flight simulators, and laboratory automation where fluid loops experience rapid, unpredictable pressure fluctuations but require flawless cylinder tracking near the hydraulic null position.

Usage Precautions:

  • Tank Line Pressure Management: Being a direct-operated valve, the back-pressure at Port T must not exceed 50 bar unless the external leakage port (Port Y) is utilized. Excessive back-pressure can distort the internal linear motor’s zero balance or damage the electronic housing seals.

  • Transient Current Overhead: The internal permanent magnet linear force motor demands instantaneous peak currents during high-frequency cycles or abrupt plug-reversals. Ensure your 24 VDC power supply can deliver transient peaks up to 1.5A to 2.0A without sagging below 18V, which would trigger an electronic fault code.

  • Fluid Cleanliness for Sharp Edges: Although the direct drive design exerts massive mechanical force to shear through particle silt-up, maintaining an ISO 4406 17/14/11 (or better) oil purity is crucial. This preserves the razor-sharp metering edges of the spool, ensuring that the sub-0.2% hysteresis does not degrade due to abrasive wear.

  • Signal Shielding and Noise Isolation: The high-resolution analog electronics are susceptible to electromagnetic interference (EMI). Use shielded twisted-pair cabling for the command signal and actual value feedback, grounding the shield strictly on the control cabinet side to eliminate signal jitter.

Original price was: $5,548.00.Current price is: $2,985.00.

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ParameterSpecification Details
Valve SeriesD635 Series (Direct Drive Analog Servo Valve)
Mounting PatternISO 4401-03-03-0-05 (Size 03 / NG6 / Cetop 3)
Rated Flow ($Q_n$)3.8 L/min to 40 L/min (depending on the specific spool profiling under $\Delta p_N = 35$ bar per land)
Max Operating Pressure350 bar (5,000 psi) at ports P, A, and B
Port T Pressure Limit50 bar (725 psi) without external drain Y; 350 bar with external drain Y
Actuation TypeDirect Driven by Permanent Magnet Linear Motor (Pressure-independent dynamics)
Response Time ($T_{90}$)$\le$ 12 ms (Extremely rapid step response for 0 to 100% stroke)
Supply Voltage24 VDC (18 to 32 VDC)
Command Signal$\pm$10 VDC or 4-20 mA (Configurable depending on the OBE board sub-model)
Hysteresis / Resolution$\le$ 0.2% / $\le$ 0.1% (Provides exceptional threshold and micro-positioning capabilities)
Degree of ProtectionIP 65 (with properly mounted mating connector)
Valve MassApprox. 2.5 kg
Seal MaterialFKM (Viton) or NBR (Buna-N)

📦  Warranty&Reture Policy:

🛡️  1、One year warranty. If the product malfunctioned under proper usage per instructions manual within the warranty period, please contact us to obtain shipping instructions and send it back at your shipping costs.
🔍 2、14days evaluation and investigation takes placed after receiving your return item.

 

What Is a Proportional Valve?

A proportional valve is a hydraulic valve where a coil-driven solenoid pushes the spool directly in proportion to the input current.

🔍Key Characteristics:

  • Higher flow than a servo valve
  • Lower bandwidth
  • ️ More tolerant of dirtier oil

Many include a position sensor (LVDT) on the spool, which closes the loop and turns the unit into a servoproportional. The valve shown here is a Bosch Rexroth 4WRPEH, one of the more common servoproportionals we see on the bench.

️🛡️A Solenoid-Driven Hydraulic Valve: Two Main Forms

Proportional valves come in two main forms: standard proportional (open-loop) and servoproportional (closed-loop with spool-position feedback). Most of what comes through the bench is one or the other, and the bench work overlaps but is not identical.

1️⃣ Standard Proportional (Open-Loop)

This is the simpler pattern. A pair of large coils on each end of the spool produces a magnetic force that pushes the spool against centering springs. The spool position is roughly proportional to the input current.

  • Feedback: No internal position feedback; if the spool is fighting a load, the position can drift.
  • Performance: Bandwidth is modest (often < 50 Hz), but flow capacity is higher than a servo valve and the tolerance for dirty oil is better.
  • Common Models:
  • Atos: DHZO, DKZOR (without transducer)
  • Bosch Rexroth: 4WRA
  • Yuken: EFBG

2️⃣ Servo Valve proportional (Closed-Loop)

This type adds an LVDT (linear variable differential transformer) that measures actual spool position and feeds it back to onboard or external electronics. The drive electronics adjust coil current continuously to push the spool to the commanded position, even under load.

  • Feedback: Continuous position feedback
  • Performance: Bandwidth is higher than a standard proportional, deadband is smaller, and accuracy is better.
  • Common Models:
  • Atos: DLHZO, DLKZOR
  • Bosch Rexroth: 4WRPH, 4WRPEH, 4WREE
  • Yuken: EHFBG
  • Duplomatic: DXE

Shared Skeleton & Bench Work

Both types share the same core anatomy:

  • A body bore with a spool inside
  • Two solenoid coils on each end
  • Centering springs
  • Four hydraulic ports
  • (On servoproportional variants) An LVDT and either an external driver card or onboard electronics (OBE)

Bench Work Note:
The differences are in the feedback loop and the accuracy of the spool fit. However, bench work overlaps a lot. A burned coil is a burned coil. A worn spool is a worn spool. The differences primarily show up in the LVDT and OBE channels on servoproportionals (which do not exist on the standard variants).

Bench Work Note:
The differences are in the feedback loop and the accuracy of the spool fit. However, bench work overlaps a lot. A burned coil is a burned coil. A worn spool is a worn spool. The differences primarily show up in the LVDT and OBE channels on servoproportionals (which do not exist on the standard variants).

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