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330910-00-16-10-02-00

3300 NSv Proximity Probes
In Stock

Product Information:

3300 NSv Proximity Probes

330910 3300 NSv Probe, M10X1 thread,

with armor

3300 XL NSv Proximity Transducer System

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Technical specifications for 330910-00-16-10-02-00

  • Manufacturer:
    Bently Nevada
  • Product Category:
    TSI System
  • Estimated shipping dimensions:
    116 x 1.2 x 1.3 cm
  • Weight:
    0.13 kg
  • Tariff Code:
    8537101190
  • Country of origin:
    USA
  • Place of shipment:
    Xiamen, Fujian, China
  • Unthreaded Length:
    0 mm
  • Overall Case Length:
    160 mm
  • Total Length:
    1.0 meter (39 in)
  • Connector and Cable-Type:
    Miniature coaxial ClickLoc connector, standard cable
  • Agency Approval:
    Not required
  • Product Type:
    Proximity Probes
  • Stock:
    30

Information

Overview Manuals Principle Application Areas

Features:

  • 3300 NSv Proximity Probes
  • 330910 3300 NSv Probe, M10X1 thread, with armor
  • 3300 XL NSv Proximity Transducer System
The 3300 XL NSv Proximity Transducer system is intended for use with centrifugal air compressors, refrigeration compressors, process gas compressors, and other machines with tight installation requirements.

The primary uses for the 3300 XL NSv Transducer System are for areas where counter bore, sideview, or rearview restrictions limit the use of standard Bently Nevada 3300 and 3300 XL 5 and 8 mm Transducer Systems. It is also ideal for small target applications, such as measuring radial vibration on shafts smaller than 51 mm (2 in) or axial position on flat targets smaller than 15 mm (0.6 in).

The 330910-00-16-10-02-00 Bently Nevada 3300 NSv Proximity Probes may still be available for purchase and support from Moore Automated Company beyond End-Of-Life (EOL) by the manufacturer (OEM).
Bently Nevada 330910-00-16-10-02-00 3300 NSv Proximity Probes Manuals(Datasheets), Link Important Notice: Other accessories, manuals, cables, calibration data, software, etc. are not included with this equipment unless listed in the above stock item description. All prices are shown in USD.
The 3300 XL NSv sensor system has an average scale factor of 7.87 V/mm (200 mV/mil), which is the most commonly used output value for eddy current sensors. Its enhanced side-view and small-target characteristics result in a shorter linear range than the Bently Nevada 3300 XL series 5 mm and 8 mm sensor systems. Its 1.5 mm (60 mil) linear range surpasses that of the 3000 series 190 sensor system.
NSv systems are specifically designed for monitoring liquid film bearing machinery with tight installation clearances:
 
Centrifugal air compressors: The most common application area is centrifugal air compressors, where the small internal counterbore and limited side view can easily interfere with standard probe signals.
Refrigeration and process gas compressors: Used for continuous vibration and shaft position monitoring in compact designs.
Small shaft measurement: Ideal for measuring radial vibration of shafts with diameters less than 51 mm (2.0 inches).
Small planar targets: Suitable for measuring the axial (thrust) position of targets less than 15 mm (0.6 inches).
Velocity and timing: Commonly used as a keyer reference for phase measurements and tachometer signals in confined spaces.

Ask our team:

  • How does the 330910-00-16-10-02-00 maintain high-precision signal transduction in eddy-current proximity systems? The 330910-00-16-10-02-00 converts analog probe signals into calibrated voltage outputs with exceptional linearity, ensuring accurate displacement measurement of rotating machinery components. Q2. Why is the 330910-00-16-10-02-00 essential for real-time shaft position monitoring? By continuously translating micro-displacements into stable electrical signals, the 330910-00-16-10-02-00 enables precise detection of shaft movements, supporting vibration analysis and operational safety. Q3. What electromagnetic compatibility measures are integrated into the 330910-00-16-10-02-00? The 330910-00-16-10-02-00 features advanced shielding and internal filtering to suppress EMI/RFI interference, ensuring signal fidelity in electrically noisy industrial environments. Q4. How does the 330910-00-16-10-02-00 preserve measurement linearity across fluctuating thermal and mechanical conditions? Temperature-compensated circuitry and optimized impedance matching within the 330910-00-16-10-02-00 stabilize output signals, maintaining consistent calibration and measurement reliability. Q5. Why is the 330910-00-16-10-02-00 critical for predictive maintenance programs? The 330910-00-16-10-02-00 delivers high-resolution displacement and vibration data, enabling early detection of mechanical anomalies and facilitating condition-based maintenance strategies. Q6. How does system integration impact the performance of the 330910-00-16-10-02-00? Compatibility with specific eddy-current probes and extension cabling ensures that the 330910-00-16-10-02-00 maintains its calibrated response, preserving overall system accuracy. Q7. What mechanical robustness features define the 330910-00-16-10-02-00 for demanding industrial applications? The 330910-00-16-10-02-00 incorporates ruggedized housing, oil-resistant insulation, and vibration-tolerant design to withstand harsh operating conditions. Q8. How does the 330910-00-16-10-02-00 improve dynamic vibration analysis and rotor health monitoring? By providing stable, low-noise voltage outputs, the 330910-00-16-10-02-00 enhances the accuracy of high-frequency vibration measurements, facilitating precise rotor diagnostics. Q9. Why is proper installation and grounding critical for the 330910-00-16-10-02-00? Correct cable routing, secure connections, and effective grounding maximize electromagnetic shielding performance, ensuring consistent signal transmission for monitoring systems. Q10. How does the 330910-00-16-10-02-00 contribute to long-term machinery reliability and operational safety? The 330910-00-16-10-02-00 provides continuous, calibrated displacement data that supports proactive maintenance, minimizes unplanned downtime, and enhances overall equipment protection.
    The 330910-00-16-10-02-00 converts analog probe signals into a calibration voltage output with excellent linearity, ensuring accurate displacement measurement of rotating machinery components.
  • Why is the 330910-00-16-10-02-00 crucial for real-time shaft position monitoring?
    The 330910-00-16-10-02-00 enables precise detection of shaft motion by continuously converting minute displacements into stable electrical signals, supporting vibration analysis and operational safety.
  • What electromagnetic compatibility measures are integrated into the 330910-00-16-10-02-00?
    The 330910-00-16-10-02-00 employs advanced shielding and internal filtering technology to suppress electromagnetic interference/radio frequency interference, ensuring a stable signal even in noisy industrial environments.
  • How does the 330910-00-16-10-02-00 maintain measurement linearity under fluctuating temperature and mechanical conditions?
    The 330910-00-16-10-02-00's internal temperature compensation circuitry and optimized impedance matching stabilize the output signal, thus maintaining calibration consistency and measurement reliability.
  • How does system integration affect the performance of the 330910-00-16-10-02-00?
    Compatibility with specific eddy current probes and extension cables ensures the 330910-00-16-10-02-00 maintains its calibration response, thus guaranteeing the overall accuracy of the system.
  • Why is proper installation and grounding crucial for the 330910-00-16-10-02-00?
    Proper cable routing, robust connections, and effective grounding maximize electromagnetic shielding performance, ensuring the stability of signal transmission in the monitoring system.
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Moore Disclaimer: Moore Automated's sales automation equipment and related solutions are intended for industrial automation and business operational efficiency improvement purposes only. Product information, technical parameters, and application cases are for reference only and do not constitute an absolute guarantee of performance for any specific industry, scenario, or final application. Actual equipment performance may vary depending on factors such as the usage environment, system integration method, and maintenance conditions. Users should confirm compatibility and safety based on professional technical assessments. Moore Automated assumes no liability for any direct or indirect losses caused by improper use, modification, or failure to operate according to specifications, to the extent permitted by law.