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Bently Nevada Seri 3300

Seri Bently Nevada 3300 menghadirkan pemantauan rotor dan mesin yang presisi. Inventaris kami menyediakan sensor, probe, dan suku cadang untuk sistem lama maupun lama.

722 produk

  • Penjualan -50% Bently Nevada 330910-06-25-05-11-00 3300 NSv Proximity Probe Bently Nevada 330910-06-25-05-11-00 3300 NSv Proximity Probe

    Bently Nevada Bently Nevada 330910-06-25-05-11-00 3300 NSv Proximity Probe

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    Bently Nevada 330910-06-25-05-11-00 3300 NSv Proximity Probe The Bently Nevada 330910-06-25-05-11-00, also cataloged as the 330910 3300 NSv Proximity Probe, operates as a dedicated hardware component for non-contact shaft displacement measurement within Bently Nevada TSI monitoring systems. Hardware Specifications Parameter Specification Model 330910-06-25-05-11-00 Brand Bently Nevada Product Type 3300 NSv Proximity Probe Origin USA Weight 0.14 kg Dimensions 109 x 2 x 1.5 cm estimated shipping size Probe Type Eddy-current proximity probe Thread Type M10 x 1 thread Probe Construction Armored probe design Minimum Unthreaded Length 60 mm Maximum Length 250 mm Probe Length Configuration 0.5 meter (20 in) Connector Type Miniature coaxial ClickLoc connector with connector protector Cable Type FluidLoc cable Power Consumption Supplied by compatible Bently Nevada Proximitor interface Operating Temp Not specified in provided data Tariff Code 8537101190 Eddy-Current Measurement and Rotor Dynamics Interface The 330910 series probe uses eddy-current sensing technology to convert shaft displacement into an electrical output signal. Therefore, the probe supports vibration, radial position, and axial position monitoring when paired with a compatible Proximitor module. The probe design maintains measurement stability through controlled probe tip geometry and calibrated scaling characteristics. In addition, Bently Nevada systems apply gap voltage validation methods with typical -10 VDC target settings to verify correct probe installation and signal operating range. The miniature coaxial ClickLoc connector reduces connection errors during field installation. Furthermore, the FluidLoc cable construction limits fluid migration through the cable assembly, supporting continuous signal transmission in industrial rotating equipment environments. Frequently Asked Questions Q: What measurement technology does the 330910-06-25-05-11-00 use?A: The probe uses eddy-current measurement technology to detect shaft displacement without physical contact. Q: What connector configuration is included with this model?A: This model includes a miniature coaxial ClickLoc connector with connector protector and a FluidLoc cable. Q: Can this probe operate as a standalone monitoring device?A: No. The probe requires connection to a compatible Bently Nevada Proximitor interface to process the eddy-current signal. Field Installation Guidelines Install the probe with the specified M10 x 1 threaded mounting interface and maintain mechanical alignment with the monitored shaft surface. Route the FluidLoc cable away from high-current power conductors and sources of electromagnetic interference. Use proper cable support to prevent excessive mechanical stress at the connector area. Verify probe gap voltage after installation through the connected Proximitor system. Confirm that the signal output remains within the expected operating range before placing the rotating equipment into service. Maintain proper shielding and grounding practices according to the monitoring system installation requirements. Avoid sharp cable bends and protect the miniature coaxial ClickLoc connector from mechanical impact during commissioning.

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  • Penjualan -50% 330880-28-40-058-01-02 PROXPAC XL Proximity Sensors Bently Nevada 330880-28-40-058-01-02 PROXPAC XL Proximity Sensors Bently Nevada

    Bently Nevada 330880-28-40-058-01-02 PROXPAC XL Proximity Sensors Bently Nevada

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    Bently Nevada 330880-28-40-058-01-02 PROXPAC XL Proximity Transducer Assembly The Bently Nevada 330880-28-40-058-01-02, also cataloged as the 330880 PROXPAC XL Proximity Transducer Assembly, operates as a dedicated hardware component for non-contact shaft displacement measurement and vibration monitoring within Bently Nevada TSI monitoring systems. Hardware Specifications Parameter Specification Model 330880-28-40-058-01-02 Brand Bently Nevada Product Type PROXPAC XL Proximity Transducer Assembly Probe Type 3300 XL 8 mm eddy-current proximity probe Probe Diameter 8 mm Measurement Function Shaft vibration, axial position, and rotational speed measurement Linear Range 2.0 mm (80 mils) Typical Measurement Range 0.25 mm to 2.25 mm (10 mils to 90 mils) Incremental Scale Factor 7.87 V/mm (200 mV/mil) +/-5% Frequency Response 0 Hz to 10 kHz (+0, -3 dB) Power Supply Voltage -17.5 VDC to -26 VDC without barriers; -23 VDC to -26 VDC with barriers Output Impedance 50 Ohm nominal Housing Material Glass and conductive fiber-reinforced Polyphenylene Sulfide (PPS) Protection Rating IP66 / Type 4X Operating Temp Probe and housing: -51 deg C to +177 deg C; integrated Proximitor: -51 deg C to +100 deg C Humidity Range 0 to 95% non-condensing Impact Resistance Up to 7 Joules at ambient temperature Standoff Length 4.0 inches (102 mm) Probe Penetration 5.8 inches (147 mm) Mounting Thread 3/4-14 NPT Conduit Configuration One 3/4-14 NPT fitting and two plugs Weight Approx. 1.0 kg to 1.5 kg depending on configuration Dimensions Configuration dependent; includes 4.0 inch standoff and 5.8 inch probe penetration Power Consumption Supplied through integrated Proximitor electrical circuit Eddy-Current Probe Scaling and Rotor Dynamics Monitoring The 330880-28-40-058-01-02 uses a 3300 XL 8 mm eddy-current probe structure to convert shaft displacement into proportional voltage output. Therefore, the system maintains a calibrated scale factor of 200 mV/mil for vibration and position analysis. The integrated Proximitor performs signal conditioning inside the PPS housing. As a result, the assembly removes the external extension cable normally required between a conventional probe and signal conditioner. This configuration reduces installation complexity and improves mechanical protection. For TSI applications, the system supports rotor dynamics analysis by providing stable shaft displacement signals. In addition, technicians can validate probe gap conditions through gap voltage measurement, with typical Bently Nevada installations targeting approximately -10 VDC for correct probe positioning. Frequently Asked Questions Q: Does the 330880-28-40-058-01-02 require an external extension cable?A: No. The PROXPAC XL design integrates the Proximitor directly into the housing, eliminating the external probe-to-sensor extension cable. Q: What measurement principle does this assembly use?A: The assembly uses an eddy-current proximity measurement principle to detect shaft displacement without physical contact. Q: What installation factors affect measurement accuracy?A: Proper probe mounting, correct gap voltage adjustment, suitable grounding practices, and controlled cable routing conditions affect signal quality. Field Installation Guidelines Install the 3/4-14 NPT mounting connection with sufficient mechanical engagement and verify thread sealing requirements according to site standards. Position the probe tip according to the required shaft clearance and confirm the operating gap voltage before commissioning. Route signal wiring away from high-current power cables to reduce electromagnetic interference. Connect shielding according to plant grounding practices and avoid multiple ground paths that may introduce signal noise. Verify the PPS housing condition before operation because mechanical damage can affect environmental protection performance. Confirm the integrated Proximitor temperature limit before selecting the installation location.

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  • Penjualan -50% 330801-28-04-050-00-02 PROXPAC XL  Proximity Sensors Bently Nevada 330801-28-04-050-00-02 PROXPAC XL  Proximity Sensors Bently Nevada

    Bently Nevada 330801-28-04-050-00-02 PROXPAC XL Proximity Sensors Bently Nevada

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    Bently Nevada 330801-28-04-050-00-02 PROXPAC XL Proximity Transducer Assembly The Bently Nevada 330801-28-04-050-00-02, also cataloged as the 330801 PROXPAC XL Proximity Transducer Assembly, operates as a dedicated hardware component for non-contact shaft displacement and vibration measurement within Bently Nevada machinery protection systems. Hardware Specifications Parameter Specification Model 330801-28-04-050-00-02 Brand Bently Nevada Product Type PROXPAC XL Proximity Transducer Assembly Origin USA Weight Approximately 1.0 kg Dimensions Integrated enclosure with 40 mm standoff adapter and 50 mm probe penetration Operating Temp Probe tip: -51 deg C to +177 deg C; Housing and Proximitor: -34 deg C to +85 deg C Power Consumption Powered by -17.5 VDC to -26 VDC, typically -24 VDC Probe Type 3300 XL 8 mm Eddy Current Proximity Probe Measurement Range 2.0 mm linear range (80 mils) Target Material AISI 4140 Steel calibration target Sensitivity 7.87 V/mm (200 mV/mil) nominal Frequency Response 0 to 10 kHz Output Signal Analog negative voltage, -1 VDC to -17 VDC proportional to gap distance Housing Material Glass-reinforced Polyphenylene Sulfide (PPS) thermoplastic Ingress Protection IP66 / IP67 / Type 4X Mounting Thread 3/4-14 NPT Standoff Adapter 40 mm Probe Penetration 50 mm Fittings Configuration No fittings, supplied with two plugs and two washers Eddy-Current Probe Scaling and Rotor Dynamics Measurement The 330801-28-04-050-00-02 integrates a 3300 XL 8 mm eddy-current probe system with an internal Proximitor sensor. Therefore, the assembly directly converts shaft movement into a proportional analog voltage signal for machinery monitoring inputs. The eddy-current probe scaling provides a nominal 7.87 V/mm conversion factor, allowing monitoring systems to evaluate shaft displacement, radial vibration, and axial position. In addition, the system supports rotor dynamics analysis by maintaining consistent gap measurement performance across rotating equipment operating conditions. The probe system requires gap voltage validation during installation. Engineers typically verify the operating gap near the -10 VDC target point to confirm correct probe positioning and measurement range before machinery operation. Frequently Asked Questions Q: Does the 330801-28-04-050-00-02 require an external Proximitor sensor?A: No. The PROXPAC XL assembly integrates the Proximitor sensor inside the field enclosure, eliminating the need for a separate external Proximitor installation. Q: What type of signal does this assembly provide to a monitoring system?A: The assembly provides an analog negative voltage output ranging from -1 VDC to -17 VDC, proportional to the measured probe gap distance. Q: Can the assembly monitor both vibration and shaft position?A: Yes. The 3300 XL 8 mm probe technology supports radial vibration, axial position, and shaft displacement measurements when connected to compatible Bently Nevada monitoring platforms. Field Installation Guidelines Install the 330801-28-04-050-00-02 using the specified 3/4-14 NPT mounting interface and maintain correct mechanical alignment between the probe tip and rotating target surface. Verify the probe gap voltage before commissioning. The installation position should allow the system to achieve the required measurement range, with typical verification performed around the -10 VDC gap reference. Route signal wiring away from high-current power cables and variable frequency drive conductors to reduce electrical interference. Connect cable shields according to site grounding practices and avoid creating additional ground loops. Inspect the PPS enclosure, threaded connections, and sealing components before operation to maintain IP66 / IP67 / Type 4X environmental protection.

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  • Penjualan -50% 330880-16-00-075-00-02 Bently Nevada PROXPAC XL Proximity Sensors 330880-16-00-075-00-02 Bently Nevada PROXPAC XL Proximity Sensors

    Bently Nevada 330880-16-00-075-00-02 Bently Nevada PROXPAC XL Proximity Sensors

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    Bently Nevada 330880-16-00-075-00-02 PROXPAC XL Proximity Transducer Assembly The Bently Nevada 330880-16-00-075-00-02, also cataloged as the 330880 PROXPAC XL Proximity Transducer Assembly, operates as a dedicated hardware component for shaft vibration, axial position, and rotational speed measurement within Bently Nevada mechanical monitoring systems. Hardware Specifications Parameter Specification Model 330880-16-00-075-00-02 Brand Bently Nevada Product Type PROXPAC XL Proximity Transducer Assembly Origin USA Weight Approximately 1.44 kg Dimensions Integrated probe assembly with 75 mm penetration length, 3/4-14 NPT mounting thread Operating Temp -52 deg C to +100 deg C Power Consumption Requires -17.5 VDC to -26 VDC without barrier; -23 VDC to -26 VDC with barrier Probe Type 3300 XL 8 mm Eddy Current Proximity Probe Linear Range 0.25 mm to 2.3 mm Recommended Gap Setting 1.27 mm Scale Factor 7.87 V/mm (200 mV/mil) +/-5% Probe DC Resistance 50 ohm nominal Output Resistance 50 ohm Frequency Response 0 Hz to 10 kHz (+/-3 dB) Housing Material Polyphenylene Sulfide (PPS) glass and conductive fiber matrix Ingress Protection IP66 / Type 4X Humidity Limit 0% to 95% non-condensing Eddy-Current Measurement and Rotor Dynamics Monitoring The 330880 PROXPAC XL assembly integrates the probe, extension cable, and Proximitor sensor into one field-mounted enclosure. Therefore, the system reduces external wiring requirements while maintaining the electrical characteristics of the 3300 XL proximity measurement technology. The eddy-current probe scaling provides a 200 mV/mil output sensitivity for shaft displacement measurement. In addition, the recommended 1.27 mm gap setting allows operators to validate probe operating position through gap voltage monitoring. The system supports rotor dynamics analysis by measuring shaft vibration and axial movement signals from rotating equipment. The integrated Proximitor electronics maintain signal conditioning performance and support direct connection to compatible Bently Nevada monitoring platforms. Furthermore, the conductive fiber housing material reduces static accumulation during field operation. Frequently Asked Questions Q: What measurement signals can the 330880-16-00-075-00-02 provide?A: The assembly measures non-contact shaft displacement signals used for vibration monitoring, axial position measurement, and rotational speed detection. Q: Does this model include a separate external Proximitor module?A: No. The PROXPAC XL design integrates the probe, extension cable, and Proximitor sensor inside the same field housing. Q: What mounting interface does this configuration use?A: The 330880-16-00-075-00-02 configuration uses a 3/4-14 NPT mounting thread and includes no additional fittings. Field Installation Guidelines Install the PROXPAC XL assembly with correct mechanical alignment between the probe tip and the monitored shaft surface. Maintain the specified probe gap position before commissioning the vibration monitoring loop. Use shielded signal wiring according to the monitoring system installation requirements. Connect cable shielding and grounding points according to site electrical practices to reduce electromagnetic interference. Verify the probe gap voltage before operation. The installed probe position should allow proper electrical output scaling and stable shaft displacement measurement. Avoid routing proximity signal cables together with high-current power cables. Separate signal paths from sources of electrical noise to maintain measurement integrity. Confirm that the 3/4-14 NPT mounting connection is mechanically secured and that the enclosure maintains its IP66 / Type 4X protection after installation.

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  • Penjualan -50% 330880-16-00-075-00-02 Bently Nevada  Proximity Transducer Assembly 330880-16-00-075-00-02 Bently Nevada  Proximity Transducer Assembly

    Bently Nevada 330880-16-00-075-00-02 Bently Nevada Proximity Transducer Assembly

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    Bently Nevada 330880-16-00-075-00-02 PROXPAC XL Proximity Transducer Assembly The Bently Nevada 330880-16-00-075-00-02, also cataloged as the 330880 PROXPAC XL Proximity Transducer Assembly, operates as a dedicated hardware component for non-contact shaft displacement measurement within Bently Nevada vibration monitoring systems. Hardware Specifications Parameter Specification Model 330880-16-00-075-00-02 Brand Bently Nevada Product Type PROXPAC XL Proximity Transducer Assembly Origin USA Weight Approximately 5.3 kg Operating Temp -52 deg C to +100 deg C Power Consumption Powered by -17.5 VDC to -26 VDC supply without safety barriers Probe Diameter 8 mm Probe Type 3300 XL 8 mm Proximity Probe Probe Penetration Length 75 mm Mounting Thread 3/4-14 NPT Housing Material Glass and conductive fiber-reinforced Polyphenylene Sulfide (PPS) Linear Range 0.25 mm to 2.3 mm Recommended Gap Setting 1.27 mm Scale Factor 7.87 V/mm (200 mV/mil) +/-5% nominal Frequency Response 0 Hz to 10 kHz (+/-3 dB) Output Resistance 50 ohm nominal Probe DC Resistance 50 ohm nominal Ingress Protection IP66 / Type 4X Eddy-Current Probe Scaling and Rotor Dynamics Monitoring The 330880-16-00-075-00-02 assembly uses eddy-current probe scaling principles to convert shaft displacement into proportional electrical signals. The integrated 3300 XL 8 mm probe maintains a nominal scale factor of 7.87 V/mm, allowing vibration and axial position systems to process dynamic shaft movement data. Additionally, the assembly supports rotor dynamics monitoring by providing non-contact measurement of rotating shaft position changes. The system evaluates vibration displacement, shaft motion, and mechanical clearance behavior through continuous proximity signal output. The probe gap voltage requires proper validation during installation. Bently Nevada monitoring systems typically verify the operating gap condition around the -10 VDC target range to confirm correct probe positioning and signal linearity. Frequently Asked Questions Q: Does the 330880-16-00-075-00-02 require a separate Proximitor sensor housing?A: No. The PROXPAC XL assembly integrates the probe, cable, and Proximitor electronics into a single enclosure. Q: What signal measurement principle does this assembly use?A: The assembly uses an eddy-current proximity measurement principle to detect shaft displacement without physical contact. Q: Can the unit connect directly to Bently Nevada 3500 monitoring systems?A: Yes. The assembly provides proximity measurement signals compatible with Bently Nevada machinery protection monitoring architectures when the system configuration matches the required input characteristics. Field Installation Guidelines Install the 330880-16-00-075-00-02 using the specified 3/4-14 NPT mounting interface and ensure proper mechanical alignment between the probe tip and rotating shaft surface. Verify the probe gap before operation and confirm the electrical output remains within the expected operating range. Maintain correct cable routing to reduce electromagnetic interference from high-current power conductors. Connect the housing grounding path according to site grounding practices. Use proper shielding termination methods to minimize signal noise during vibration and displacement measurement. Inspect the probe tip, mounting thread, and cable condition before commissioning. Avoid mechanical impact on the PPS housing and maintain environmental sealing when installing the assembly in outdoor or contaminated areas.

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  • Penjualan -50% 330103-00-07-10-02-05 3300 XL 8 mm Probe | Bently Nevada 330103-00-07-10-02-05 3300 XL 8 mm Probe | Bently Nevada

    Bently Nevada 330103-00-07-10-02-05 3300 XL 8 mm Probe | Bently Nevada

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    Bently Nevada 330103-00-07-10-02-05 3300 XL 8 mm Probe The Bently Nevada 330103-00-07-10-02-05, also cataloged as the 3300 XL 8 mm Probe, operates as a dedicated eddy-current displacement sensing component for rotor position and vibration measurement within Bently Nevada TSI monitoring systems. Hardware Specifications Parameter Specification Model 330103-00-07-10-02-05 Brand Bently Nevada Product Type 3300 XL 8 mm Proximity Probe Origin USA Weight 0.05 kg Dimensions Estimated shipping size: 1.8 x 1.6 x 113 cm Probe Type Eddy-current proximity probe Thread Type M10 x 1 Armored Design Without armor Minimum Unthreaded Length 00 mm Overall Case Length 70 mm Total Length 1.0 meter (3.3 feet) Connector Type Miniature coaxial ClickLoc connector standard cable Agency Approvals CSA, ATEX, IECEx Eddy-Current Probe Scaling and Rotor Dynamics Monitoring The Bently Nevada 3300 XL 8 mm Probe uses eddy-current sensing technology to convert shaft displacement into proportional electrical signals. Therefore, the monitoring system can evaluate rotor position, radial vibration, and mechanical movement through calibrated probe output. The probe configuration supports gap voltage validation with standard Bently Nevada proximity system practices, including -10 VDC target gap verification. Additionally, the 8 mm sensing diameter provides compatibility with rotor dynamics measurement applications where accurate shaft displacement detection is required. The miniature coaxial ClickLoc connector maintains signal continuity between the probe and extension cable assembly. Furthermore, the cable configuration reduces installation complexity in TSI monitoring circuits while maintaining electromagnetic signal integrity. Frequently Asked Questions Q: What sensing technology does the 330103-00-07-10-02-05 use?A: The probe uses eddy-current displacement sensing technology to measure shaft position and vibration movement. Q: What is the thread specification of this proximity probe?A: The probe uses an M10 x 1 thread configuration with a 70 mm overall case length and 00 mm unthreaded length. Q: What approvals are included with this probe configuration?A: This model configuration includes CSA, ATEX, and IECEx agency approvals. Field Installation Guidelines Install the probe with correct mechanical clearance to maintain accurate displacement measurement. Verify the mounting thread condition before installation and avoid mechanical damage to the sensing tip. Connect the miniature coaxial ClickLoc connector according to the approved Bently Nevada wiring arrangement. Maintain proper cable routing and separate the probe cable from high-current power conductors to reduce electrical interference. Verify the probe gap voltage after installation using compatible TSI monitoring equipment. Confirm that the measured gap condition matches the required operating range before placing the machinery monitoring loop into service.

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  • Penjualan -50% Bently Nevada 330103-00-05-90-02-00 3300 XL 8 mm Proximity Probe Bently Nevada 330103-00-05-90-02-00 3300 XL 8 mm Proximity Probe

    Bently Nevada Bently Nevada 330103-00-05-90-02-00 3300 XL 8 mm Proximity Probe

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    Bently Nevada 330103-00-05-90-02-00 3300 XL 8 mm Proximity Probe The Bently Nevada 330103-00-05-90-02-00, also cataloged as the 330103 3300 XL 8 mm Proximity Probe, provides direct eddy-current displacement measurement for shaft position monitoring within Bently Nevada 3300 monitoring systems. Hardware Specifications Parameter Specification Model 330103-00-05-90-02-00 Brand Bently Nevada Product Type 3300 XL 8 mm Proximity Probe Origin USA Weight 0.15 kg Dimensions Estimated shipping size: 1.8 x 1.6 x 113 cm Probe Diameter 8 mm Thread Type M10 x 1 thread Armor Option Without armor Unthreaded Length 0 mm Case Length 50 mm Total Length 9.0 meters (29.5 feet) Connector Type Miniature coaxial ClickLoc connector standard cable Cable Type Standard coaxial extension cable assembly Eddy-Current Measurement and Rotor Dynamics Characteristics The Bently Nevada 330103-00-05-90-02-00 uses eddy-current probe scaling technology to convert shaft displacement into proportional electrical signals. The probe assembly works with compatible drivers to measure relative shaft vibration, radial position, and mechanical movement. Furthermore, the probe design supports gap voltage validation procedures. During commissioning, technicians typically verify the probe operating point against standard gap voltage targets, including the commonly applied -10 VDC reference condition for Bently Nevada proximity measurement systems. The 9.0 meter cable configuration maintains signal transmission between the probe tip and monitoring electronics. Therefore, correct cable routing and shielding practices help reduce signal interference and maintain accurate rotor dynamics analysis. Frequently Asked Questions Q: What measurement principle does the 330103-00-05-90-02-00 use?A: The probe uses eddy-current sensing technology to detect changes in the distance between the probe tip and the conductive shaft surface. Q: Does the 330103-00-05-90-02-00 include an armored probe housing?A: No. This configuration specifies a probe without armor and includes a 0 mm unthreaded length with a 50 mm case length. Q: What cable configuration is supplied with this model?A: This model includes a 9.0 meter total length configuration with a miniature coaxial ClickLoc connector standard cable. Field Installation Guidelines Install the probe with the specified M10 x 1 thread interface and maintain proper mechanical alignment with the monitored shaft surface. Route the coaxial cable away from high-current power conductors to reduce electromagnetic interference. Connect the cable shield according to the monitoring system grounding requirements and avoid improper shield termination. Verify probe gap voltage during commissioning to confirm correct mechanical positioning and signal conditioning. Protect the cable connector area from excessive mechanical stress, vibration, and sharp bending during installation. Confirm compatibility between the probe, extension cable, and proximity signal conditioner before system startup.

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  • Penjualan -50% Bently Nevada 16710-08 Interconnect Cable Bently Nevada 16710-08 Interconnect Cable

    Bently Nevada Bently Nevada 16710-08 Interconnect Cable

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    Bently Nevada 16710-08 Interconnect Cable The Bently Nevada 16710-08, also cataloged as the 16710-08 Interconnect Cable, operates as a dedicated hardware component for shielded signal transmission between accelerometers and monitoring systems within Bently Nevada machinery protection platforms. Hardware Specifications Parameter Specification Model 16710-08 Brand Bently Nevada Product Type Interconnect Cable Origin USA Weight 0.2 kg Dimensions Estimated shipping size: 25 x 25 x 3 cm Operating Temp -35 deg C to +105 deg C Power Consumption Passive cable assembly, no external power consumption Cable Length 8 feet (2.44 meters) Minimum Length 3 feet (0.91 meters) Maximum Length 99 feet (30.2 meters) Conductors 3-conductor shielded cable Conductor Gauge 22 AWG (0.5 mm2) Voltage Rating Typically 300 V Connector Type 3-socket plug at one end, terminal lugs at the other end Cable Construction Armored interconnect cable Machinery Monitoring Signal Interface Characteristics The Bently Nevada 16710-08 uses a 3-conductor shielded armored structure to maintain signal integrity between vibration sensors and monitoring equipment. Therefore, it supports direct connection of compatible accelerometers, including the 330400 and 330425 series, for casing acceleration measurement applications. The cable assembly provides mechanical protection through its armored construction while maintaining electrical shielding for vibration signal transmission. In addition, the terminal lug termination allows field wiring connection to monitoring system terminals. The connected accelerometers operate with defined sensitivity characteristics. The 330400 accelerometer provides a 50 g peak amplitude range with 100 mV/g sensitivity, while the 330425 model provides a 75 g peak amplitude range with 25 mV/g sensitivity. For machinery protection systems, proper cable routing and shielding practices help reduce signal interference and maintain accurate vibration data acquisition. The assembly supports applications requiring consistent acceleration measurement for conditions such as gear mesh monitoring. Frequently Asked Questions Q: What type of sensors can connect to the Bently Nevada 16710-08 cable?A: The 16710-08 cable is designed for 3-wire accelerometers, including compatible Bently Nevada 330400 and 330425 accelerometer models. Q: Does the 16710-08 cable require an external power supply?A: No. The cable is a passive interconnect component and does not consume electrical power. It transfers sensor signals between the accelerometer and monitoring hardware. Q: How should the cable shield be installed in the field?A: The shield should follow the machinery monitoring system grounding requirements. Field installation should avoid improper shield termination that may introduce electrical noise into vibration measurement circuits. Field Installation Guidelines Verify the cable length before installation because the 16710-08 series supports configured lengths from 3 feet (0.91 meters) to 99 feet (30.2 meters). Route the armored cable away from high-current power conductors to reduce electromagnetic interference. Connect the 3-socket plug end directly to the compatible accelerometer interface. Terminate the opposite end using the supplied terminal lugs according to the monitoring system wiring diagram. Maintain proper shield grounding practices to preserve vibration signal quality. Avoid excessive bending or mechanical stress on the armored cable during installation.

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  • Penjualan -50% 3300/16-12-01-02-03-02-00 | Vibration Monitor Modules Bently Nevada 3300/16-12-01-02-03-02-00 | Vibration Monitor Modules Bently Nevada

    Bently Nevada 3300/16-12-01-02-03-02-00 | Vibration Monitor Modules Bently Nevada

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    Bently Nevada 3300/16-12-01-02-03-02-00 XY/Gap Dual Vibration Monitor The Bently Nevada 3300/16-12-01-02-03-02-00, also cataloged as the 3300/16 XY/Gap Dual Vibration Monitor, operates as a dedicated hardware component for radial vibration and shaft position measurement within the Bently Nevada 3300 Series Machinery Monitoring System. The module processes eddy-current proximity probe signals, scales vibration inputs, and provides alarm, gap, and buffered output functions. Hardware Specifications Parameter Specification Model 3300/16-12-01-02-03-02-00 Brand Bently Nevada Origin USA Product Type XY/Gap Dual Vibration Monitor System Platform Bently Nevada 3300 Series Machinery Monitoring System Measurement Inputs Two independent radial vibration channels and average shaft position (DC Gap) Transducer Input 3300 8 mm, 3300 XL 8 mm, or 7200 5 mm and 8 mm Proximitor Sensors Full Scale Range 0 to 150 um peak-to-peak Input Impedance 10 kOhm Signal Accuracy +/- 0.33% typical, +/- 1% maximum at +25 deg C Frequency Response 4 Hz to 4,000 Hz standard; 1 Hz to 600 Hz low frequency mode Alarm Outputs Hermetically sealed relay outputs Alarm Adjustment Digital Alert and Danger setpoints from 0 to 100% full scale Gap Alarm Delay Fixed 6 seconds Recorder Outputs +4 to +20 mA, 0 to -10 VDC, or +1 to +5 VDC Buffered Outputs Front panel coaxial and rear terminal outputs, short-circuit protected Rack Position One slot in standard Bently Nevada 3300 rack Operating Temp 0 deg C to +65 deg C Power Consumption Not specified in available documentation Eddy-Current Probe Scaling and Rotor Dynamics Processing The 3300/16 monitor receives eddy-current proximity probe signals and converts dynamic shaft movement into calibrated vibration measurements. Therefore, the module maintains compatibility with Bently Nevada proximity transducer systems using standard sensitivity scaling of 200 mV/mil or 7.87 V/mm. The monitor evaluates XY shaft vibration behavior and average shaft position changes. Additionally, the circuit design supports rotor dynamics analysis by separating radial vibration signals from DC gap measurements. The module allows engineers to identify shaft motion conditions related to unbalance, misalignment, mechanical looseness, and rotor displacement. The gap measurement channel validates probe operating conditions through DC gap voltage monitoring. In Bently Nevada systems, -10 VDC probe gap targets are commonly used as reference values for correct eddy-current probe positioning and signal linearization. Frequently Asked Questions Q: What type of proximity probes can the 3300/16-12-01-02-03-02-00 accept?A: The module accepts Bently Nevada 3300 8 mm, 3300 XL 8 mm, and 7200 series 5 mm and 8 mm proximity probe systems with compatible signal sensitivity. Q: Does the 3300/16 provide direct vibration recorder outputs?A: Yes. The monitor provides programmable recorder outputs including +4 to +20 mA, 0 to -10 VDC, and +1 to +5 VDC signals proportional to the selected full-scale range. Q: How does the module handle shaft position measurement?A: The module processes DC gap voltage from eddy-current probes and provides average shaft position monitoring with a fixed 6 second gap alarm delay. Field Installation Guidelines Install the module in a compatible Bently Nevada 3300 rack slot and verify rack backplane connections before operation. Connect proximity probe wiring using shielded signal cables suitable for low-level eddy-current measurement circuits. Ground cable shields according to plant instrumentation grounding practices to reduce electrical interference. Verify probe polarity, extension cable compatibility, and Proximitor sensor configuration before commissioning. Adjust probe gap voltage during installation and confirm the operating point near the specified Bently Nevada gap voltage target. Separate vibration signal wiring from high-voltage power cables and variable frequency drive output cables. Confirm relay wiring, alarm setpoints, and recorder output scaling before placing the monitoring channel into service.

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  • Penjualan -50% Vibration Monitor Modules | 3300/16-12-01-02-00-00-00 Bently Nevada Vibration Monitor Modules | 3300/16-12-01-02-00-00-00 Bently Nevada

    Bently Nevada Vibration Monitor Modules | 3300/16-12-01-02-00-00-00 Bently Nevada

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    Bently Nevada 3300/16-12-01-02-00-00-00 XY/GAP Dual Vibration Monitor The Bently Nevada 3300/16-12-01-02-00-00-00, also cataloged as the 3300/16 XY/GAP Dual Vibration Monitor, operates as a dedicated hardware component for radial vibration and shaft gap measurement within the 3300 Series Monitoring System. Hardware Specifications Parameter Specification Model 3300/16-12-01-02-00-00-00 Brand Bently Nevada Origin USA Product Type XY/GAP Dual Vibration Monitor System Platform 3300 Series Asset Condition Monitoring System Input Type Proximity probe/Proximitor transducer voltage input Number of Channels Two independent radial vibration channels with shaft gap monitoring Input Impedance 10 kOhm Transducer Sensitivity 100 mV/mil (4 V/mm) or 200 mV/mil (8 V/mm), programmable Frequency Response 4 to 4,000 Hz (240 to 240,000 cpm) or 1 to 600 Hz (60 to 36,000 cpm), programmable Measurement Range 0 to 5 mils peak-to-peak or equivalent configured full-scale range Accuracy +/-0.33% of full scale typical, +/-1% maximum at 25 deg C Alarm Adjustment Digital Alert and Danger setpoint adjustment from 0 to 100% full scale Output Signal +4 to +20 mA DC recorder output configuration Display Type Non-multiplexing vertical bar graph LCD LED Indicators OK, Alert, Danger, and Bypass status indicators Operating Temp 0 deg C to +65 deg C Storage Temp -40 deg C to +85 deg C Relative Humidity Up to 95%, non-condensing Eddy-Current Probe Scaling and Rotor Dynamics Monitoring The Bently Nevada 3300/16 processes dynamic signals from eddy-current proximity probe systems and converts displacement voltage signals into vibration amplitude and shaft position values. The module supports programmable transducer scaling for 100 mV/mil and 200 mV/mil sensitivity configurations. Furthermore, the monitor validates mechanical clearance conditions through shaft gap measurement. The gap channel evaluates the average probe voltage position and supports rotor dynamics analysis by tracking radial movement, vibration amplitude changes, and shaft position variations. The module design maintains signal conditioning performance by separating vibration measurement channels and gap monitoring functions. Therefore, the system can detect mechanical changes without requiring external signal conversion equipment. Frequently Asked Questions Q: What type of transducers can the Bently Nevada 3300/16-12-01-02-00-00-00 accept?A: The module accepts voltage signals from Bently Nevada proximity probe and Proximitor transducer systems, including compatible 3300 XL 8 mm probe configurations. Q: Does the 3300/16 provide shaft gap measurement in addition to vibration monitoring?A: Yes. The module provides XY radial vibration monitoring and an additional gap measurement function for shaft position evaluation. Q: Can alarm values be adjusted during operation?A: The module provides digitally adjustable Alert and Danger alarm setpoints. Field adjustment procedures must follow the installed monitoring system configuration requirements. Field Installation Guidelines Install the module only in a compatible Bently Nevada 3300 Series rack configuration. Verify proximity probe wiring polarity and shield termination before applying power. Maintain separation between transducer signal cables and high-current power conductors to reduce electrical interference. Connect cable shields according to the plant grounding standard and avoid multiple-point shield grounding paths. Confirm probe gap voltage and transducer scaling parameters before placing the monitor into service. Verify channel OK status indicators after installation to confirm proper field wiring and sensor operation. Perform alarm setpoint verification after mechanical commissioning and rotor operating condition checks.

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  • Penjualan -50% Bently Nevada 3300/03-01-03 System Monitor Module Bently Nevada 3300/03-01-03 System Monitor Module

    Bently Nevada Bently Nevada 3300/03-01-03 System Monitor Module

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    Bently Nevada 3300/03-01-03 System Monitor Module The Bently Nevada 3300/03-01-03, also cataloged as the 3300/03 System Monitor Module, operates as a dedicated hardware component for Keyphasor signal management, rack alarm coordination, and system supervision within the Bently Nevada 3300 Machinery Protection System. Hardware Specifications Parameter Specification Model 3300/03-01-03 Brand Bently Nevada Origin USA Weight Approximately 0.66 kg to 0.7 kg Dimensions 5.7 cm x 20.3 cm x 33.0 cm Operating Temp 0 deg C to +65 deg C Power Consumption 2 W base consumption, up to 4.6 W with active interface operations Module Type System Monitor Module System Platform Bently Nevada 3300 Machinery Protection System Keyphasor Inputs Supports up to 4 proximity probe Keyphasor signals Input Impedance 10 kOhm Serial Data Interface SDI communication up to 19.2k baud Dynamic Data Interface DDI communication up to 38.4k baud Communication Interface RS232 up to 30 m, RS422 up to 1200 m Supply Voltage Monitoring +VRH, +VRL, +7.5 VDC, +5 VDC, -7.5 VDC, and -VT monitoring Relative Humidity Up to 95%, non-condensing Rack Position Dedicated second slot of 3300 rack Keyphasor Signal Conditioning and Rotor Dynamics Management The 3300/03-01-03 processes Keyphasor signals by providing excitation power, termination, signal conditioning, and distribution functions for proximity transducer inputs. Therefore, the module supports phase reference measurement required for rotor dynamics analysis, shaft position evaluation, and synchronous vibration tracking. The module maintains Keyphasor signal integrity through controlled input impedance and conditioning circuits. Additionally, it supports dynamic data transfer through the DDI interface, allowing waveform-level vibration information to be transmitted to external monitoring systems. The module also applies Bently Nevada eddy-current probe scaling methods when processing proximity transducer signals. Furthermore, technicians can verify probe gap voltage conditions against standard -10 VDC target values during commissioning and troubleshooting procedures. Frequently Asked Questions Q: Does the 3300/03-01-03 support direct vibration measurement channels?A: No. The module supervises the 3300 rack operation, manages Keyphasor signals, and coordinates system functions. Dedicated monitor modules perform vibration measurement processing. Q: What communication functions are available on the 3300/03-01-03?A: The module provides SDI and DDI communication interfaces. SDI supports static data transfer, while DDI supports dynamic waveform data transmission. Q: Can the module operate with multiple Keyphasor inputs?A: Yes. The module supports up to 4 Keyphasor proximity probe inputs for phase reference and speed-related measurements. Field Installation Guidelines Install the 3300/03-01-03 module in the designated second slot of a compatible Bently Nevada 3300 rack. Confirm rack power availability before inserting or removing the module. Verify rear terminal connections for Keyphasor wiring, communication interfaces, and power distribution. Use shielded cables for proximity probe signal wiring and connect cable shields according to site grounding practices. Separate low-level Keyphasor signal cables from high-voltage power conductors to reduce electromagnetic interference. Confirm probe polarity, signal conditioning settings, and gap voltage values before placing the machinery protection system into service. Verify communication settings for SDI or DDI interfaces before connecting external monitoring equipment.

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  • Penjualan -50% 3300/16-02-01-01-00-00-02 Bently Nevada XY/Gap Dual Vibration Monitor 3300/16-02-01-01-00-00-02 Bently Nevada XY/Gap Dual Vibration Monitor

    Bently Nevada 3300/16-02-01-01-00-00-02 Bently Nevada XY/Gap Dual Vibration Monitor

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    Bently Nevada 3300/16-02-01-01-00-00-02 XY/Gap Dual Vibration Monitor The Bently Nevada 3300/16-02-01-01-00-00-02, also cataloged as the 3300/16 XY/Gap Dual Vibration Monitor, operates as a dedicated hardware component for radial vibration and shaft gap measurement within the Bently Nevada 3300 Machinery Monitoring System. Hardware Specifications Parameter Specification Model 3300/16-02-01-01-00-00-02 Brand Bently Nevada Product Type XY/Gap Dual Vibration Monitor System Platform Bently Nevada 3300 Machinery Monitoring System Origin USA Weight Approx. 1.0 kg Dimensions 1 rack slot module format Operating Temp 0 deg C to +65 deg C Storage Temp -40 deg C to +85 deg C Relative Humidity Up to 95%, non-condensing Power Consumption System rack supplied power; specific consumption depends on rack configuration Signal Input One or two proximity probe systems Input Impedance 10 kOhm Full Scale Range 0 to 5 mils peak-to-peak Transducer Input 3300 8 mm, 3300 XL 8 mm, or 7200 5 mm and 8 mm Proximitor Sensors Transducer Sensitivity 200 mV/mil or 8 V/mm Frequency Response 4 to 4,000 Hz or 1 to 600 Hz low-speed mode Recorder Output +4 to +20 mA, +1 to +5 VDC, 0 to -10 VDC Output Load Current output: 0 to 600 Ohm; voltage output: minimum 10 kOhm Accuracy Within +/-0.33% of full scale typical; +/-1% maximum Trip Multiply Function 3X alarm limit multiplication during startup Alarm Relay Epoxy-sealed relay configuration Safety Barrier No internal safety barriers Agency Approval Standard configuration without agency approval Display Type Non-multiplexing vertical LCD bargraph Rack Position One rack slot, excluding power supply and system monitor reserved slots Eddy-Current Probe Scaling and Rotor Dynamics Monitoring The 3300/16 monitor processes eddy-current proximity probe signals for radial shaft vibration and average shaft position measurement. It applies probe scaling parameters based on compatible Bently Nevada transducer systems, including 3300 8 mm and 3300 XL 8 mm probes. The monitor evaluates dynamic vibration signals and gap voltage feedback from rotating equipment. In addition, the system architecture supports rotor dynamics analysis by providing buffered raw vibration outputs for external diagnostic instruments. The proximity input circuit validates probe operating conditions through gap voltage behavior. Standard Bently Nevada monitoring practices use negative gap voltage targets, typically near -10 VDC, to confirm correct probe installation and shaft position measurement range. The monitor also reduces measurement interference through signal conditioning functions designed for vibration channel separation and cross-talk suppression between monitoring inputs. Frequently Asked Questions Q: What type of transducer systems can the 3300/16-02-01-01-00-00-02 accept?A: The monitor accepts Bently Nevada 3300 8 mm, 3300 XL 8 mm, and 7200 series 5 mm or 8 mm proximity probe systems with 200 mV/mil sensitivity. Q: How does the 3X Trip Multiply function operate?A: The 3X Trip Multiply function increases programmed alarm thresholds by three times during machine startup conditions to prevent unnecessary trips during acceleration. Q: Does this module provide internal safety barriers?A: No. The 3300/16-02-01-01-00-00-02 configuration does not include internal safety barriers and requires external protection when hazardous area installation requires isolation. Field Installation Guidelines Install the 3300/16 module in an available Bently Nevada 3300 rack position according to the rack configuration requirements. The power supply and system monitor positions must remain reserved. Connect proximity probe wiring using shielded cables and maintain proper cable routing separation from high-current power conductors. Ground cable shields according to the monitoring system installation manual to reduce electrical noise. Verify the probe gap voltage before commissioning. Confirm that the proximity probe operates within the specified measurement range and that the vibration channel polarity matches the installed transducer configuration. Use the front-panel buffered outputs for diagnostic connections only. Avoid excessive cable loading on buffered signal outputs because additional loading can affect signal quality. Confirm alarm relay wiring, bypass status, and Trip Multiply operation before placing the machine protection system into service.

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  • Penjualan -50% Bently Nevada 105401-02 TDXnet Sampler Backplane Board Bently Nevada 105401-02 TDXnet Sampler Backplane Board

    Bently Nevada Bently Nevada 105401-02 TDXnet Sampler Backplane Board

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    Bently Nevada 105401-02 TDXnet Sampler Backplane Board The Bently Nevada 105401-02, also cataloged as the 105401-02 Sampler Backplane Board, operates as a dedicated hardware component for transient data acquisition and signal interface execution within the TDXnet Transient Data Interface system. Hardware Specifications Parameter Specification Model 105401-02 Brand Bently Nevada Product Type Sampler Backplane Board Series TDXnet Transient Data Interface Origin USA Weight Approx. 0.4 kg Power Consumption Backplane dependent, not specified Data Collection Method Parallel multi-channel data sampling Supported Data Types Static data, orbit data, spectrum data, startup/shutdown transient data Communication Interface Ethernet or serial communication link System Function Interface between machinery protection systems and online machinery management software Rotor Dynamics Data Acquisition and Signal Processing The Bently Nevada 105401-02 Sampler Backplane Board manages data exchange between connected machinery monitoring channels and the TDXnet Transient Data Interface architecture. Moreover, it collects steady-state and transient operating information in parallel to support vibration analysis functions. The board processes high-resolution static, orbit, and spectrum data from compatible monitoring channels. In addition, the hardware supports startup and shutdown data buffering through two independent transient collection buffers, allowing separate capture of machine acceleration and deceleration events. For machinery protection applications, the module supports eddy-current probe scaling data handling and gap voltage validation processes. Therefore, the TDXnet interface can maintain accurate proximity measurement data interpretation for rotor displacement monitoring. The architecture also applies signal management techniques to reduce cross-talk effects between vibration measurement channels. Frequently Asked Questions Q: Does the 105401-02 provide direct Ethernet communication capability?A: The 105401-02 operates as part of the TDXnet Transient Data Interface system, which supports Ethernet or serial data transmission paths for communication with compatible machinery management software. Q: What type of vibration data can the 105401-02 process?A: The board supports static values, orbit plots, spectrum information, and transient startup/shutdown data collected from connected monitoring channels. Q: Does the module store startup and shutdown transient records independently?A: Yes. The TDXnet architecture provides two independent startup/shutdown buffers for separate transient event data collection. Field Installation Guidelines Install the 105401-02 Sampler Backplane Board inside the designated TDXnet system chassis according to the equipment hardware configuration requirements. Verify that all backplane connections are fully seated before system power application. Additionally, maintain proper cable routing separation between vibration signal wiring and high-current power conductors to minimize electrical interference. Connect communication cables using the specified Ethernet or serial interface requirements. Furthermore, ensure cable shielding and grounding practices follow the machinery monitoring system installation standards. Before commissioning, confirm channel assignments, sensor input configuration, and data communication status through the compatible Bently Nevada monitoring software.

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  • Penjualan -50% Bently Nevada Coiled Interconnect Cable | 80705-01 Bently Nevada Coiled Interconnect Cable | 80705-01

    Bently Nevada Bently Nevada Coiled Interconnect Cable | 80705-01

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    Bently Nevada 80705-01 Coiled Interconnect Cable The Bently Nevada 80705-01, also cataloged as the 80705-01 Coiled Interconnect Cable, operates as a dedicated hardware component for dynamic vibration signal transmission between field sensors and BNC-equipped diagnostic instruments in Bently Nevada vibration monitoring systems. Hardware Specifications Parameter Specification Model 80705-01 Brand Bently Nevada Origin USA Product Type Coiled 2-Conductor Interconnect Cable Connector A Industrial 2-Pin Sensor Socket Connector B BNC Male Connector Cable Configuration Shielded 2-conductor coiled cable assembly Signal Type Dynamic analog vibration signals Supported Measurements Acceleration, velocity, displacement Retracted Length 0.5 m Extended Length Up to 2.0 m Cable Jacket Material Polyurethane (PU) Environmental Resistance Oil, chemical, moisture, and abrasion resistance Weight Approximately 300 g Power Consumption Passive cable assembly; no external power consumption Rotor Dynamics Signal Transmission and Vibration Interface Characteristics The Bently Nevada 80705-01 cable assembly provides a shielded signal path for vibration measurement circuits connected to portable analyzers and monitoring equipment. Moreover, the cable construction maintains electrical shielding between the sensor output and external interference sources in high-vibration machinery areas. The assembly supports vibration transducer connections commonly used in machinery condition monitoring applications. In addition, the coiled polyurethane jacket reduces mechanical strain during portable measurement operations and maintains cable flexibility during repeated deployment. For Bently Nevada vibration systems, signal integrity depends on proper sensor matching, cable shielding, and connection quality. Therefore, technicians should maintain correct sensor polarity and connector engagement when installing the 80705-01 assembly with vibration measurement equipment. Frequently Asked Questions Q: Does the Bently Nevada 80705-01 cable require external power during operation?A: No. The 80705-01 is a passive interconnect cable assembly and does not consume electrical power. It transfers analog vibration signals between connected sensor devices and monitoring instruments. Q: What type of sensors can connect to the 80705-01 cable?A: The cable uses a 2-pin sensor interface designed for compatible vibration sensors, including moving-coil velocity transducers and related vibration measurement devices. Q: How should the cable shield be handled during installation?A: The shield connection should follow the grounding requirements of the connected monitoring system. Technicians should avoid improper grounding paths that may introduce electrical noise into vibration signals. Field Installation Guidelines Verify that the sensor connector type matches the 2-pin socket interface before installation. Ensure the BNC connector is fully seated on the diagnostic instrument input to prevent intermittent signal transmission. Route the coiled cable away from rotating shafts, coupling guards, and high-temperature surfaces. Maintain proper cable separation from high-current power wiring to reduce electromagnetic interference. Inspect the polyurethane jacket and connectors before field use to confirm there is no physical damage. Avoid excessive stretching of the coiled section beyond its intended extension range.

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  • Penjualan -50% 285592-01 | Proximitor Sensor | Bently Nevada 285592-01 | Proximitor Sensor | Bently Nevada

    Bently Nevada 285592-01 | Proximitor Sensor | Bently Nevada

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    Bently Nevada 285592-01 Proximitor Sensor The Bently Nevada 285592-01, also cataloged as the 285592-01 Proximitor Sensor, operates as a dedicated hardware component for eddy-current displacement signal conditioning within Bently Nevada 3300 XL proximity monitoring systems. Hardware Specifications Parameter Specification Model 285592-01 Brand Bently Nevada Product Type Proximitor Sensor Origin USA Weight Approx. 91 g to 200 g Dimensions Not specified in available technical data Operating Temp -51 deg C to +100 deg C Power Consumption Not specified; operates from -24 VDC supply input Series Compatibility 3300 XL Series proximity monitoring system Input Voltage -24 VDC Output Voltage -18 VDC to -24 VDC Frequency Response 0 to 10 kHz Cable Length 9 m (30 ft) Measurement Function Shaft displacement and vibration monitoring Eddy-Current Probe Signal Processing and Rotor Dynamics The 285592-01 Proximitor Sensor processes eddy-current probe signals by converting probe gap variation into proportional electrical output signals. The sensor performs probe scaling based on the relationship between target surface distance and gap voltage response. Bently Nevada proximity systems use gap voltage validation methods to verify probe operating conditions. Standard commissioning procedures include checking probe bias conditions and confirming expected gap voltage values, with -10 VDC commonly used as a reference target for probe positioning verification. The sensor supports rotor dynamics analysis by providing vibration and shaft position signals for machinery protection channels. Signal conditioning functions reduce measurement interference and support stable transmission of dynamic vibration data. Cross-talk suppression techniques are applied within proximity measurement systems to minimize unwanted interaction between adjacent sensing channels. Frequently Asked Questions Q: What measurement principle does the 285592-01 Proximitor Sensor use?A: The sensor uses eddy-current measurement technology to process non-contact displacement signals from compatible proximity probes. Q: What type of signals does the 285592-01 provide?A: The device provides conditioned electrical signals representing shaft displacement and vibration information for machinery monitoring systems. Q: What power supply is required for the 285592-01?A: The sensor operates with a -24 VDC supply input according to the available technical specifications. Field Installation Guidelines Install the Proximitor Sensor in a suitable monitoring cabinet location with protection from excessive vibration and contamination. Verify compatibility between the probe, extension cable, and Proximitor Sensor before system commissioning. Confirm correct -24 VDC power polarity before applying electrical power. Perform gap voltage verification during installation to confirm proper probe positioning. Route proximity signal cables separately from high-current power cables to reduce electromagnetic interference. Maintain proper cable shielding and grounding practices according to industrial instrumentation installation standards.

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  • Penjualan -50% 109548-01 | Bently Nevada | Proximity Probes 109548-01 | Bently Nevada | Proximity Probes

    Bently Nevada 109548-01 | Bently Nevada | Proximity Probes

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    Bently Nevada 109548-01 Proximity Probes The Bently Nevada 109548-01, also cataloged as the 109548-01 Proximity Probes, operates as a dedicated hardware component for shaft displacement measurement within Bently Nevada machinery monitoring systems. Hardware Specifications Parameter Specification Model 109548-01 Spare Model P1407030-00100 Brand Bently Nevada Product Type Proximity Probes Origin USA Weight 0.2 kg Dimensions 20.5 x 22.5 x 3.5 cm (Estimated Shipping Size) Measurement Technology Eddy-current proximity sensing Application Function Shaft displacement and vibration measurement input Eddy-Current Probe Signal Characteristics The Bently Nevada 109548-01 uses eddy-current probe technology to generate non-contact displacement measurements between the probe tip and the monitored shaft surface. The probe system requires proper scaling verification between the sensing element and the monitoring channel to maintain accurate vibration and position data acquisition. Moreover, installation requires attention to probe gap voltage validation. Bently Nevada proximity systems commonly use a -10 VDC target gap voltage reference for establishing the electrical operating range between the probe and rotating surface. Proper gap adjustment supports stable rotor dynamics analysis and reduces measurement errors caused by incorrect probe positioning. Frequently Asked Questions Q: What signal type does the 109548-01 proximity probe provide?A: The 109548-01 provides eddy-current displacement measurement signals for connection to compatible Bently Nevada monitoring channels. Q: Does the 109548-01 require physical contact with the rotating shaft?A: No. The probe operates as a non-contact sensor and measures shaft displacement through an electromagnetic sensing field. Q: What installation factors affect measurement accuracy?A: Probe gap setting, mounting condition, cable routing, shielding practice, and proper grounding affect signal quality and measurement stability. Field Installation Guidelines Install the probe with correct mechanical alignment toward the target shaft surface. Maintain separation from high-current power cables to reduce electromagnetic interference. Connect cable shielding according to the monitoring system grounding requirements. Verify probe gap voltage before placing the monitoring channel into service. Inspect mounting hardware to prevent vibration-induced movement during operation.

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  • Penjualan -50% Bently Nevada 128228-01 Proximitor Seismic I/O Module Bently Nevada 128228-01 Proximitor Seismic I/O Module

    Bently Nevada Bently Nevada 128228-01 Proximitor Seismic I/O Module

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    Bently Nevada 128228-01 Proximitor Seismic I/O Module The Bently Nevada 128228-01, also cataloged as the 128228-01 Proximitor Seismic I/O Module, operates as a dedicated hardware component for vibration signal acquisition and conditioning within Bently Nevada machinery monitoring platforms. Hardware Specifications Parameter Specification Model 128228-01 Brand Bently Nevada Product Type Proximitor Seismic I/O Module Origin USA System Compatibility Bently Nevada rack-based monitoring system Input Signal Type Proximitor and seismic transducer signals Signal Processing Sensor signal conditioning and vibration data acquisition Communication Interface System backplane communication Input Range -10 VDC to +10 VDC Weight 0.20 kg Dimensions 241.3 mm x 24.4 mm x 99.1 mm Operating Temp -30 deg C to +65 deg C Power Consumption 10.5 W Mounting Type Rack module installation Eddy-Current Signal Scaling and Rotor Dynamics Processing The 128228-01 module processes displacement and seismic measurement inputs from compatible Bently Nevada sensors. The module supports eddy-current probe scaling functions by conditioning probe signals before system-level vibration analysis. The input processing path maintains signal accuracy for shaft displacement monitoring and seismic vibration measurement. Moreover, the module supports gap voltage validation using standard -10 VDC target references for eddy-current probe operation verification. The module architecture supports rotor dynamics monitoring requirements by transferring conditioned vibration data through the rack backplane. Signal processing functions are designed to maintain measurement consistency and reduce interference effects in multi-channel machinery monitoring installations. Frequently Asked Questions Q: What sensor signals can the Bently Nevada 128228-01 process?A: The module processes compatible Proximitor and seismic transducer signals for displacement and vibration monitoring applications. Q: Does the 128228-01 support rack backplane communication?A: Yes. The module communicates with the compatible Bently Nevada monitoring system through the rack backplane interface. Q: What installation requirements should be checked before operation?A: Verify module slot compatibility, sensor wiring polarity, signal shielding, and grounding conditions before commissioning. Field Installation Guidelines Install the module into the assigned rack position according to the monitoring system hardware configuration. Confirm sensor cable routing and maintain separation from high-voltage power wiring to reduce electrical interference. Connect cable shields according to the system grounding practice before applying power. Verify Proximitor and seismic input wiring before enabling vibration measurement channels. Confirm backplane communication status after module installation. Perform signal verification and sensor calibration through the configured monitoring software before machine operation.

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  • Penjualan -50% 1800/15-12-90-02-00 | Condition Monitoring Module | Bently Nevada 1800/15-12-90-02-00 | Condition Monitoring Module | Bently Nevada

    Bently Nevada 1800/15-12-90-02-00 | Condition Monitoring Module | Bently Nevada

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    Bently Nevada 1800/15-12-90-02-00 Series 1800 Condition Monitoring Module The Bently Nevada 1800/15-12-90-02-00, also cataloged as the 1800/15 Condition Monitoring Module, operates as a dedicated hardware component for transducer interfacing and dynamic signal processing within Bently Nevada machinery protection networks. Suffix Breakdown & Model Matrix Option Code Specification Field Description 1800/15 Base Model Series 1800 Condition Monitoring Module / Interface -12 Option 1 Specific channel configuration or transducer input type -90 Option 2 High-temperature or specific environment ruggedization -02 Option 3 Hazardous area / Agency Approval standard (e.g., ATEX/IECEx/CSA) -00 Option 4 Standard mounting, hardware revision, or faceplate option Hardware Specifications Parameter Specification Model 1800/15-12-90-02-00 Brand Bently Nevada Origin United States Weight Approx. 0.5 kg (estimated) Dimensions Standard DIN-rail / Chassis format Operating Temp -20 deg C to +70 deg C Storage Temp -40 deg C to +85 deg C Humidity 95% non-condensing Power Consumption 24 VDC Industrial Power Bus Signal Input Proximity Probes, Accelerometers, Velomitors Communication Proprietary Network / Modbus / Fieldbus Eddy-Current Probe Scaling and Gap Validation The module executes transducer linearization utilizing established eddy-current probe scaling factors. During installation, gap voltage validation must target -10 VDC to ensure optimal probe tip clearance relative to the observed metal surface. This configuration supports accurate rotor dynamics measurement by maintaining a stable operating point within the linear range of the proximity probe system. Cross-talk suppression between adjacent channels is achieved through internal shielding and differential signal routing. Frequently Asked Questions Q: What is the required gap voltage setting for 3300 XL proximity probes connected to this module? A: The standard target gap voltage is -10 VDC. This value corresponds to the midpoint of the probe's linear range and must be verified during initial commissioning. Q: Can the module be hot-swapped while the system is operational? A: No. The module does not support hot-swap operations. Power must be removed from the rack before removal or insertion to prevent damage to the backplane connectors and ensure personnel safety. Q: Does the -02 suffix affect the intrinsic safety barrier requirements? A: Yes. The -02 option indicates compliance with hazardous area standards such as ATEX/IECEx/CSA. External barriers may still be required depending on the specific field wiring and installation zone classification. Field Installation Guidelines Mount the module on a standard DIN rail or secure it within the designated Bently Nevada chassis using the provided locking tabs. Ensure all signal cables are routed separately from high-voltage power lines to minimize electromagnetic interference. Ground the shield of the transducer cable at the module end only, maintaining continuity with the chassis ground reference. Verify that the 24 VDC power supply is stable and free from transient surges prior to energizing the module. Perform a final functional test by observing the status LEDs and confirming signal output integrity via the host monitoring software.

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  • Penjualan -50% Bently Nevada 170133-050-00 Internal 3300 Proximitor Module Bently Nevada 170133-050-00 Internal 3300 Proximitor Module

    Bently Nevada Bently Nevada 170133-050-00 Internal 3300 Proximitor Module

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    Bently Nevada 170133-050-00 Internal 3300 Proximitor Module The Bently Nevada 170133-050-00, also cataloged as the 170133 Internal Proximitor Module, operates as a dedicated signal conditioning hardware component for processing raw eddy-current probe inputs within the 1701 FieldMonitor machinery protection system. Suffix Breakdown & Model Matrix Suffix Group Value Definition Base Model 170133 Internal 3300 Proximitor Module System Length -050 Calibrated for 5.0-meter total system length (probe + extension cable) Option -00 Standard configuration / Standard scale factor Hardware Specifications Parameter Specification Model 170133-050-00 Brand Bently Nevada Series 3300 Proximitor Channels Dual-channel (supports 2 proximity probes) Compatible Probes Standard 3300 series 5 mm and 8 mm proximity probes System Length 5.0 meters Scale Factor 200 mV/mil (7.87 mV/um) Linear Range 250 um to 2250 um (10 mils to 90 mils) DC Output Range -1 VDC to -17 VDC Frequency Response 0 Hz to 12.5 kHz (750,000 cpm), -3 dB Input Supply Voltage -24 VDC (via 1701 FieldMonitor terminal base) Standard Target Material AISI 4140 steel Minimum Target Size 15.2 mm (0.6 inch) diameter flat surface Minimum Shaft Diameter 50.8 mm (2.0 inches) Recommended Shaft Diameter >= 76.2 mm (3.0 inches) Operating Temperature -34 deg C to +85 deg C Storage Temperature -40 deg C to +85 deg C Relative Humidity Up to 100% condensing, non-submerged Weight 320 g (0.71 lb) Connector Type Miniature Coaxial (Click-Loc compatible, gold-plated or stainless steel) Installation Location Internal slot of Bently Nevada 1701 FieldMonitor chassis Eddy-Current Probe Scaling and Gap Voltage Validation The 170133 module conditions eddy-current probe signals using a nominal scale factor of 200 mV/mil. At installation, the gap voltage should be set to target approximately -10 VDC for standard 8 mm probes with a 50 mil standoff, ensuring the operating point sits within the linear calibration window. The module's dual-channel architecture provides independent signal paths to suppress inter-channel cross-talk, maintaining measurement integrity for simultaneous radial displacement and axial position monitoring on rotating machinery. Frequently Asked Questions Q: Can the 170133 module be hot-swapped in the field? A: No. The module must be installed or removed with the 1701 FieldMonitor chassis de-energized. The -24 VDC supply is delivered through the terminal base backplane, and live insertion may cause transient voltage spikes on adjacent channels. Q: What is the effect of using a probe and extension cable combination that exceeds the 5.0-meter system length? A: The -050 suffix calibration is valid only for a total system length of 5.0 meters. Using longer cable runs will shift the linear range and scale factor, resulting in measurement error. A different suffix variant calibrated for the actual system length must be selected. Q: Does the module require external power conditioning? A: No. The module draws nominal -24 VDC directly from the 1701 FieldMonitor terminal base. No external power supply or conditioning equipment is required. Field Installation Guidelines Probe Mounting: Install proximity probes with the probe tip perpendicular to the target surface. Ensure the target area meets the minimum 15.2 mm diameter flat surface requirement. For shaft diameters below 76.2 mm, verify probe clearance to avoid mechanical interference. Cable Routing: Route coaxial probe cables away from power conductors and variable frequency drive (VFD) output cables to minimize electromagnetic interference. Maintain separation of at least 150 mm from high-current carrying conductors. Connector Engagement: Use only Click-Loc compatible gold-plated or stainless steel connectors. Ensure the coaxial connector is fully seated and the locking mechanism is engaged. Improper seating will cause signal instability and gap voltage drift. Gap Voltage Verification: After installation, measure the DC gap voltage at the module terminals before applying runout compensation. The voltage should fall within the -1 VDC to -17 VDC range. A reading outside this range indicates incorrect probe-to-target distance or target material incompatibility. Grounding: The 1701 FieldMonitor chassis must be properly grounded per the installation manual. The coaxial cable shield should be connected to the module ground reference through the terminal base. Do not create additional ground paths at the probe end.

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  • Penjualan -50% Bently Nevada 3300/53-03-02-00-30-20-00-00-00 Vibration Monitor Module Bently Nevada 3300/53-03-02-00-30-20-00-00-00 Vibration Monitor Module

    Bently Nevada Bently Nevada 3300/53-03-02-00-30-20-00-00-00 Vibration Monitor Module

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    Bently Nevada 3300/53-03-02-00-30-20-00-00-00 Vibration Monitor Module The Bently Nevada 3300/53-03-02-00-30-20-00-00-00, also cataloged as the 3300/53 vibration monitor module, operates as a dedicated hardware component for eddy current-based shaft displacement acquisition within 3300 rack monitoring systems. Configured for continuous vibration and axial position measurement in rotating machinery, the module converts probe gap variations into electrical signals via rack backplane processing and conditioned 4-20 mA / relay outputs for downstream control logic execution. Suffix Breakdown & Model Matrix Base Model: 3300/53 Suffix String: 03-02-00-30-20-00-00-00-00 Function of Suffix Structure: Factory configuration encoding for channel allocation, output grouping, and rack compatibility profile within 3300 series architecture Note: No explicit manufacturer documentation provided for granular suffix decoding; internal segmentation is treated as fixed configuration identifier only Hardware Specifications Parameter Specification Model 3300/53-03-02-00-30-20-00-00-00 Brand Bently Nevada Origin USA Weight 1.8 kg Operating Temp -20 deg C to +65 deg C Power Consumption Powered via 3300 rack backplane Measurement Principle Eddy current displacement sensing Channels Multi-channel vibration monitoring Frequency Response 0.5 Hz – 10 kHz (probe dependent) Accuracy ±1% full-scale Outputs 4-20 mA outputs, relay alarm contacts Communication 3300 system rack bus interface Storage Temp -40 deg C to +85 deg C Certifications CE, UL/cUL, ATEX Zone 2, IECEx Eddy Current Signal Conditioning and Rotor Dynamics Behavior Within the 3300 rack architecture, the module processes eddy current probe impedance variation into calibrated shaft displacement signals referenced against bearing housing geometry. The system supports gap voltage linearization for proximity probe chains, maintaining stable -10 VDC nominal bias reference behavior across dynamic rotor movement ranges. Cross-talk suppression is implemented at backplane processing level to reduce channel interference in multi-probe turbine configurations, ensuring separation of radial vibration vectors and axial displacement components during transient rotor dynamics events. Frequently Asked Questions (FAQ) Q: Can the module be hot-swapped during rack operation?A: The 3300 rack architecture does not support unrestricted hot-swap under energized probe input conditions. Module replacement requires controlled rack power state to avoid backplane signal corruption. Q: How is backplane power distributed to the module?A: Power is supplied directly through the 3300 rack backplane bus, eliminating discrete field power wiring and ensuring centralized regulation across installed modules. Q: Does the module support redundant channel configuration?A: Channel redundancy is implemented at system architecture level within the 3300 rack, not internally within the module hardware. Field Installation Guidelines Install module into designated 3300 rack slot with full mechanical seating on backplane connector interface Ensure probe cable shielding is terminated at single-point earth ground to prevent ground loop formation Maintain separation between eddy current probe wiring and high-voltage conductors to reduce EMI coupling Verify correct rack slot assignment prior to energization to prevent channel mapping mismatch Avoid bending or mechanical stress on backplane connector during insertion/removal cycles Confirm proper grounding continuity across rack chassis before connecting probe input circuits

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  • Penjualan -50% Bently Nevada 145004-47 3300 XL Proximitor Sensor Bently Nevada 145004-47 3300 XL Proximitor Sensor

    Bently Nevada Bently Nevada 145004-47 3300 XL Proximitor Sensor

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    Bently Nevada 145004-47 3300 XL Proximitor Sensor The Bently Nevada 145004-47, also cataloged as the 330180-X1-05 MOD 145004-47 Proximitor Sensor, serves as the primary signal conditioning interface utilized to execute eddy-current proximity measurement conversion across the Bently Nevada 3300 XL Transducer System platforms. The unit conditions probe gap voltage into calibrated electrical outputs for vibration and position monitoring. Hardware Specifications Parameter Specification Model 145004-47 Brand Bently Nevada Origin USA Weight 0.25 kg Dimensions 102.2 cm x 12.4 cm x 12.6 cm Operating Temp -40 deg C to +125 deg C Power Consumption 12–30 VDC supply Series 3300 XL Transducer System Calibration Target AISI 1040 steel Operating Range 10–90 mils Sensitivity 200 mV/mil (ASF), 18 mV/mil (ISF) Output Type PWM, NPN open collector Connection Type M12 connector Eddy-Current Probe Scaling and Gap Voltage Conversion Logic The sensor operates as a signal conditioning stage for eddy-current transducer chains, performing linearization of probe gap response across calibrated AISI 1040 steel targets. The internal conversion network maintains proportional scaling between displacement input and output PWM duty representation, preserving stability across full operating range (10–90 mils). Gap voltage interpretation is stabilized through impedance matching between probe head and extension cable assembly, reducing drift under high EMI/RFI exposure. The system maintains consistent excitation behavior across 5 mm and 8 mm probe geometries, ensuring uniform transfer characteristics in mixed probe installations. Cross-system compatibility is maintained with legacy 3300 XL probe families, where sensitivity coefficients (ASF and ISF) are mapped to standardized displacement-to-voltage curves for downstream monitoring modules. Frequently Asked Questions (FAQ) Q: Does the module support both 5 mm and 8 mm probe systems simultaneously?A: Yes. The signal conditioning architecture supports both probe types through calibrated sensitivity mapping within the 3300 XL system. Q: Is the output analog or digital?A: The output stage uses PWM signaling with NPN open collector configuration for downstream interpretation. Q: Can the sensor operate under high EMI environments without external shielding modification?A: Yes. The design includes inherent EMI/RFI immunity, but correct grounding of the cable shield remains required. Field Installation Guidelines Install sensor with correct M12 connector torque specification to avoid signal intermittency Maintain continuous shield grounding along probe-to-sensor signal chain Route signal cables away from high-voltage switching conductors Ensure probe tip alignment perpendicular to target steel surface (AISI 1040 reference) Avoid mechanical stress on extension cable during installation and operation Verify calibration target alignment prior to commissioning Do not mix probe cable types without verifying sensitivity mapping compatibility

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  • Penjualan -50% Bently Nevada 3300/16-12-01-01-00-00-00 Vibration Monitor Module Bently Nevada 3300/16-12-01-01-00-00-00 Vibration Monitor Module

    Bently Nevada Bently Nevada 3300/16-12-01-01-00-00-00 Vibration Monitor Module

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    Bently Nevada 3300/16-12-01-01-00-00-00 Vibration Monitor Module The Bently Nevada 3300/16-12-01-01-00-00-00, also cataloged as the 3300/16 Vibration Monitor Module, operates as a dedicated hardware component for multi-channel vibration and position signal processing within the Bently Nevada 3300 rack monitoring platform. The module processes proximity probe and seismic transducer inputs through rack-bus acquisition, producing alarm logic outputs and condition data streams. Hardware Specifications Parameter Specification Model 3300/16-12-01-01-00-00-00 Brand Bently Nevada Weight 0.5 kg Dimensions 2.0 in x 0.0 in x 9.0 in Operating Temp -20 deg C to +65 deg C Power Consumption Powered via 3300 rack backplane Channels 12 dynamic channels Input Types Eddy current proximity probes, seismic transducers Frequency Response 0.5 Hz to 10 kHz Resolution 16-bit conversion Outputs 4-20 mA, relay alarm contacts Communication 3300 rack bus, optional Modbus gateway Eddy-Current Probe Scaling and Cross-Channel Signal Conditioning The module processes eddy-current probe signals through internal scaling networks aligned to displacement-to-voltage transfer functions. Input channels apply gain normalization to maintain consistent gap voltage representation across probe sets, including axial position measurement chains. Cross-channel signal processing is synchronized at rack level, reducing phase drift between vibration and position channels during steady-state and transient acquisition. The architecture applies channel grouping logic to prevent inter-channel interference in multi-probe configurations, particularly in tightly coupled rotor bearing systems. Frequently Asked Questions (FAQ) Q: Does each channel support independent alarm threshold configuration?A: Yes. Each of the 12 channels supports independent alert and danger threshold parameters with relay output assignment. Q: Is the module hot-swappable within the 3300 rack?A: No. The 3300 legacy architecture does not guarantee hot-swap continuity; rack power interruption is typically required for module replacement. Q: Can 4-20 mA outputs be mapped per channel?A: Yes. Each dynamic channel can be configured to produce proportional 4-20 mA outputs based on measured vibration or position values. Field Installation Guidelines Install module into designated 3300 rack slot with backplane alignment confirmed Ensure rack power is isolated before insertion or removal Maintain separation between probe signal wiring and relay output cabling Use shielded twisted-pair conductors for proximity probe inputs Ground cable shields at single-point earth reference only Verify correct probe-to-channel mapping prior to commissioning Avoid routing sensor wiring parallel to high-voltage switching conductors

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  • Penjualan -50% 84170-01 | Proximity Probe Extension Cable Assembly | Bently Nevada 84170-01 | Proximity Probe Extension Cable Assembly | Bently Nevada

    Bently Nevada 84170-01 | Proximity Probe Extension Cable Assembly | Bently Nevada

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    Bently Nevada 84170-01 Proximity Probe Extension Cable Assembly Configured for signal transmission integrity in Bently Nevada proximity transducer chains, the Bently Nevada 84170-01 (84170-01 extension cable assembly) provides direct electrical execution of low-level eddy-current signal routing between proximity probe assemblies and Proximitor sensor interfaces within the Bently Nevada 3300/7200 measurement architecture. The assembly functions as a controlled impedance transmission path for eddy-current displacement signals, maintaining electrical continuity between probe head and Proximitor input stage. It supports stable transfer of gap voltage and vibration-related signal components under EMI/RFI exposure conditions typical of industrial rotating machinery instrumentation channels. Suffix Breakdown & Model Matrix The 84170-01 is a single cataloged configuration. No manufacturer-published suffix segmentation or functional sub-variant matrix is defined for this part number. Hardware Specifications Parameter Specification Model 84170-01 Brand Bently Nevada Origin USA Operating Temp -51 deg C to +177 deg C Power Consumption Passive component (no excitation power) Impedance System matched (typically 50 ohm / 75 ohm depending on configuration) Signal Type Eddy-current proximity transducer signal Shielding EMI/RFI braided shielding with coaxial construction Connector Type Miniature coaxial industrial connector system Cross-Talk Suppression in Proximity Probe Cabling Systems In Bently Nevada eddy-current measurement chains, the 84170-01 assembly supports reduction of inter-channel electromagnetic coupling between adjacent probe channels and extension cabling runs. Shield continuity and coaxial geometry maintain controlled return-path impedance, limiting signal distortion under high-density routing conditions in turbine and compressor instrumentation racks. This behavior directly influences stability of gap voltage interpretation and reduces phase distortion in multi-channel rotor dynamic measurements. Frequently Asked Questions (FAQ) Q: Does the 84170-01 support hot-swap during active proximity monitoring?A: No. The cable is part of the analog signal path. Disconnection under energized probe conditions interrupts gap voltage continuity and invalidates measurement output at the Proximitor input stage. Q: What is the electrical impact of excessive cable length beyond system design limits?A: Increased cable length introduces attenuation and phase shift in the eddy-current signal path, affecting calibration scaling and reducing accuracy of displacement conversion. Q: Is the shielding layer required to be grounded at both ends?A: Standard Bently Nevada practice is single-point grounding of the shield at the monitoring system end to minimize ground loop currents in the signal return path. Field Installation Guidelines Install the 84170-01 with continuous shield integrity from probe interface to Proximitor input terminal. Avoid sharp bend radius below manufacturer coaxial cable mechanical limits. Maintain separation from high-voltage AC conductors and switching relays to reduce inductive coupling. Ensure connector mating surfaces are clean and fully engaged to specified torque/locking condition. Verify shield termination continuity and absence of open-circuit or intermittent grounding prior to system commissioning.

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  • Penjualan -50% Bently Nevada 80074-01 Connector Protector Kit Bently Nevada 80074-01 Connector Protector Kit

    Bently Nevada Bently Nevada 80074-01 Connector Protector Kit

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    Bently Nevada 80074-01 Connector Protector Kit Configured for secure low-loss signal transmission and connector interface protection in the Bently Nevada 3300/7200 Proximitor Sensor Series, the Bently Nevada 80074-01 (80074-01 Connector Protector Kit) provides direct physical/electrical execution between proximity probe assemblies and Proximitor sensor input stages. The component functions as an interconnect protection element for coaxial signal paths, maintaining impedance continuity and mechanical stability across vibration-prone junctions. It is designed to preserve eddy-current probe signal integrity under fluctuating environmental and mechanical stress conditions, ensuring consistent gap voltage transfer characteristics within the measurement chain. Suffix Breakdown & Model Matrix The 80074-01 model is defined as a single-order hardware identifier. No validated suffix segmentation or functional sub-variant matrix is published for this part number within standard Bently Nevada 3300/7200 system documentation. Hardware Specifications Parameter Specification Model 80074-01 Brand Bently Nevada Origin USA Operating Temp -51 deg C to +177 deg C (application dependent, system environment) Power Consumption Passive component, no power consumption Signal Function Coaxial signal continuity and connector protection Electrical Interface Proximitor probe / extension cable interface Impedance Behavior System-matched coaxial impedance (application dependent) Environmental Protection Moisture and oil ingress resistance via sealed connector interface Cross-Talk Suppression and Signal Integrity Behavior Within Bently Nevada proximity measurement chains, connector interfaces contribute to high-frequency noise coupling and channel cross-interference. The 80074-01 assembly supports mechanical isolation of mating junctions, reducing micro-movement-induced impedance variation and limiting cross-talk pathways between adjacent probe channels. This behavior stabilizes eddy-current probe scaling linearity and preserves gap voltage reference consistency (including -10 VDC nominal operating region validation in compatible proximitor architectures). Frequently Asked Questions (FAQ) Q: Does the 80074-01 support electrical signal conditioning or amplification?A: No. The device is a passive mechanical/electrical interconnect protection element and does not modify signal amplitude or frequency response. Q: Is hot-swap operation supported for this connector assembly?A: Hot-swap capability is not applicable. Connection and disconnection must be performed under de-energized or safe system conditions to avoid transient signal distortion. Q: Does installation affect backplane or Proximitor sensor loading?A: The component introduces no backplane load. It operates strictly within the coaxial probe-to-sensor signal path without affecting system power distribution. Field Installation Guidelines Ensure all mating connector surfaces are free from oil film, oxidation, and particulate contamination prior to assembly. Align coaxial connectors axially to avoid pin deformation or dielectric stress. Maintain controlled torque during threaded coupling to preserve impedance stability. Use approved protective sleeves or sealing tape where specified by system installation practice to reduce ingress of moisture in high-humidity environments. Avoid excessive cable bending near the connector interface to prevent micro-fractures in the coaxial dielectric structure. Ensure strain relief is properly anchored to prevent mechanical loading on the connector body during vibration exposure.

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