MOOG G761-3004B H38JOGM4VPL Servo Valve In Stock

Application Scenarios & Maintenance Notices

The Moog G761-3004B mechanical feedback servo valve is engineered for low-to-medium flow closed-loop systems that demand extreme precision, high frequency response, and reliable position, speed, or force profiling. It is widely implemented in flight control surface simulators, automotive durability testing rigs, motorsport active suspension systems, metallurgical mill automatic gauge control (AGC), and high-accuracy robotic manipulators.

Key Precautions: First, because the symmetrical nozzle-flapper pilot stage features ultra-fine micro-orifices, absolute fluid hygiene is mandatory; always maintain hydraulic fluid cleanliness at ISO 4406 < 15/13/10 using non-bypass high-pressure inline filters ($\beta_5 \ge 75$) right before the inlet. Second, never connect this precision-machined valve during initial system flushing; utilize a temporary blanking plate to cycle out welding slag and pipe dust. Finally, use shielded twisted-pair cabling to prevent high-frequency factory electromagnetic interference from provoking unmanaged valve null drift or erratic jitter.

Original price was: $3,250.00.Current price is: $2,980.00.

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ParameterSpecification Details
Valve Type2-Stage Flow Control Servo Valve with Mechanical Feedback (MFB)
Pilot Stage DesignDry Torque Motor with Symmetrical Nozzle-Flapper Technology
Mounting PatternISO 10372-04-04-0-92 (Size 04 / Standard 4-Port)
Rated Flow (Model Specific)4 to 63 l/min (1.0 to 16.5 gpm) at $\Delta p = 35 \text{ bar}$ (500 psi) per land
Max Operating Pressure

Ports P, A, B, X: 315 bar (4,500 psi) (Aluminum body variant)

 

Port T: 210 bar (3,000 psi)

Rated Signal / Current8 mA to 200 mA analog command current (depending on specific coil wiring)
Spool Position FeedbackMechanical feedback via a cantilever spring wire with a precision carbide ball tip
Step Response Time (0–100%)$\le$ 16 ms at 210 bar (Delivering lightning-fast control dynamics)
Hysteresis / ThresholdHysteresis: $\le$ 3.0% / Threshold: $\le$ 0.5%
Fluid Cleanliness Class

Functional Safety: ISO 4406 < 17/14/11

 

Extended Service Life: ISO 4406 < 15/13/10 (NAS 1638 Class 4)

Seal Material / WeightFKM (Viton®) 85 Shore A / 1.08 kg (2.4 lbs)

                                                       📦  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 yourreturn item.

 

                                         ❓ Frequently Asked Questions: Moog Proportional Valves

1. 🔍 Why is fluid cleanliness so critical, and what is the recommended standard?

First and foremost, Moog proportional and servo valves feature highly sensitive pilot stages, such as ServoJet® or nozzle-flapper systems, which operate with extremely tight tolerances. Consequently, even microscopic particulate contamination can jam spools, cause erratic control, or accelerate premature wear.

To prevent these issues, operators must maintain a fluid cleanliness level of ISO 4406 < 14/11 for an extended service life (or at least ISO 4406 < 16/13 for standard operations). In addition, you should always install a 10 $mu m$ absolute filter ($beta_{10} ge 75$) without a bypass line directly upstream from the valve inlet to catch harmful debris before it enters the system.

2. ⚡ What are the typical command signal options, and how do I prevent signal interference?

Generally speaking, modern Moog proportional valves (like the D661 series) utilize Integrated Electronics (OBE) and accept standard analog command signals, most commonly $pm$10 V or 4 to 20 mA. While voltage signals offer convenience for basic setups, current signals (4 to 20 mA) provide superior resistance to voltage drops and signal degradation during long-distance transmissions.

To ensure optimal performance, you must mitigate Electromagnetic Interference (EMI). Specifically, always use properly shielded cables and connect them correctly to the 6+PE electrical connector housing. Furthermore, keep all low-voltage signal wiring physically separated from high-voltage power lines to maintain absolute signal integrity.

3. 🛡️ What happens during a power failure, and how does the fail-safe logic work?

In the event of a sudden power loss or cable break, system safety becomes the top priority. Fortunately, Moog engineers built-in fail-safe centering logic layouts into these valves. Depending on your specific model configuration, internal spring forces or pilot pressure will automatically shift the valve spool to a predetermined safe position—such as a completely closed (neutral) position or a specific flow path.

Therefore, before initiating your very first system startup, you must verify the exact fail-safe code on your valve’s nameplate. By doing so, you ensure that your machinery’s emergency shut-down behavior aligns perfectly with your plant’s operational safety protocols.

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