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Bentley Nevada

Bently Nevada menyediakan solusi pemantauan kondisi tepercaya untuk mesin industri. Inventaris global kami mencakup sensor, probe, kabel, dan modul untuk sistem baru maupun lama.

1377 produk

  • 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% 330905-00-10-05-02-CN | Bently Nevada 3300 NSv Proximity Probe 330905-00-10-05-02-CN | Bently Nevada 3300 NSv Proximity Probe

    Bently Nevada 330905-00-10-05-02-CN | Bently Nevada 3300 NSv Proximity Probe

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    Bently Nevada 330905-00-10-05-02-CN 3300 NSv Proximity Probe The Bently Nevada 330905-00-10-05-02-CN, also cataloged as the 330905 3300 NSv Proximity Probe, operates as a dedicated hardware component for non-contact shaft displacement measurement within Bently Nevada 3300 NSv machinery monitoring systems. Hardware Specifications Parameter Specification Model 330905-00-10-05-02-CN Brand Bently Nevada Product Series 3300 NSv Proximity Transducer System Product Type 5 mm Non-contact Proximity Probe Origin USA Dimensions 5 mm probe tip diameter; 1.0 inch case length; 0.5 meter cable length Thread Type M10 x 1 metric thread Unthreaded Length 0 mm Probe Tip Material Polyphenylene sulfide (PPS) Probe Case Material AISI 303 / 304 stainless steel Cable Construction 75 Ohm triaxial FEP insulated cable Connector Type Miniature coaxial ClickLoc connector Operating Temp -51 deg C to +177 deg C Power Consumption Supplied through compatible Bently Nevada Proximitor sensor interface Measurement Principle Eddy-current displacement sensing Linear Range 0.25 mm to 2.0 mm Average Scale Factor 7.87 V/mm (200 mV/mil), +/-5% typical Frequency Response 0 Hz to 10 kHz, +/-3 dB Output Signal Analog DC voltage proportional to probe gap Environmental Protection IP67 rated Target Application Small shaft diameters below 51 mm or small flat targets below 15 mm Compliance Designed for API 670 machinery protection applications Eddy-Current Probe Scaling and Gap Voltage Validation The 3300 NSv probe uses an eddy-current sensing circuit to convert shaft displacement into an analog voltage output. The probe maintains a defined relationship between physical gap distance and output voltage through the calibrated scale factor. The installation process requires gap voltage validation through the connected Proximitor interface. Technicians typically verify the probe operating point near the standard -10 VDC target position to confirm correct measurement range and signal stability. The narrow side-view construction reduces metallic interference from surrounding installation structures. Therefore, the probe can operate in restricted mounting locations where conventional 8 mm proximity probes may experience side-wall effects. Frequently Asked Questions Q: What type of machinery is the 330905-00-10-05-02-CN designed for?A: The probe is designed for compact rotating equipment requiring non-contact shaft displacement measurement, including small compressors, pumps, motors, and machines with limited installation clearance. Q: Does the probe require a separate signal conditioning device?A: Yes. The probe operates as part of the Bently Nevada 3300 NSv Proximity Transducer System and requires a compatible Proximitor sensor interface to provide excitation and signal conversion. Q: What installation factor affects measurement accuracy?A: Correct probe gap adjustment, proper target material conditions, and controlled cable routing affect eddy-current measurement accuracy. Shielding and grounding practices must follow the system installation requirements. Field Installation Guidelines Install the 330905-00-10-05-02-CN probe using the specified M10 x 1 mounting thread and maintain mechanical clearance around the probe tip to avoid unwanted metallic interference. Route the 75 Ohm triaxial cable away from high-current power conductors, variable frequency drive cables, and strong electromagnetic noise sources. Avoid sharp cable bends that may affect cable integrity. Connect the ClickLoc coaxial connector using proper hand tightening procedures. Verify the probe gap voltage after installation and confirm that the operating point remains within the calibrated measurement range. Use appropriate grounding methods for the monitoring system. The cable shield termination must follow Bently Nevada installation practices to minimize electrical noise and signal distortion.

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  • Penjualan -50% Bently Nevada 330901-00-41-05-02-CN 3300 NSv Proximity Probe Bently Nevada 330901-00-41-05-02-CN 3300 NSv Proximity Probe

    Bently Nevada Bently Nevada 330901-00-41-05-02-CN 3300 NSv Proximity Probe

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    Bently Nevada 330901-00-41-05-02-CN 3300 NSv Proximity Probe The Bently Nevada 330901-00-41-05-02-CN, also cataloged as the 330901 3300 NSv Proximity Probe, operates as a dedicated hardware component for non-contact shaft displacement measurement within the 3300 NSv Proximity Transducer System. Hardware Specifications Parameter Specification Model 330901-00-41-05-02-CN Brand Bently Nevada Origin USA Product Type 3300 NSv Proximity Probe Transducer System 3300 NSv Proximity Transducer System Sensing Method Non-contact eddy current measurement Scale Factor 7.87 V/mm (200 mV/mil) with matching 3300 NSv Proximitor Sensor Thread Type 1/4-28 UNF Unthreaded Length 0.0 in Overall Case Length 4.1 in Probe Cable Length 0.5 m (20 in) Connector Type Miniature coaxial ClickLoc connector Construction Material Stainless steel body with PPS probe tip Weight Approx. 350 g Dimensions 4.1 in case length, 0.5 m cable length Operating Temp -51 deg C to +177 deg C Power Consumption Supplied through compatible 3300 NSv Proximitor Sensor Target Application Shafts smaller than 51 mm (2 in) or flat targets smaller than 15 mm (0.6 in) Hazardous Area Certification -CN configuration with applicable China hazardous area approvals Eddy-Current Measurement and Rotor Dynamics Characteristics The 330901-00-41-05-02-CN uses an eddy-current sensing principle to convert shaft displacement into an electrical signal. The 3300 NSv probe geometry directs the electromagnetic field toward the target surface and reduces side-view interference from surrounding metallic structures. Furthermore, the probe supports rotor dynamics monitoring by providing stable vibration and axial position signals for machinery protection systems. The narrow side view design allows installation in restricted mechanical clearances where standard proximity probes may experience target distortion or signal interference. The matched Proximitor Sensor applies eddy-current probe scaling at 7.87 V/mm (200 mV/mil). In addition, the system supports gap voltage validation procedures using the typical -10 VDC target reference for correct probe-to-target positioning. Frequently Asked Questions Q: What type of target does the 330901-00-41-05-02-CN measure?A: The probe measures conductive shaft or target displacement through non-contact eddy-current technology. It is optimized for small diameter shafts and limited installation spaces. Q: Can the 330901-00-41-05-02-CN operate without a Proximitor Sensor?A: No. The probe requires a compatible 3300 NSv Proximitor Sensor to provide excitation, signal conditioning, and displacement output conversion. Q: What installation factors affect measurement accuracy?A: Proper probe gap setting, correct target material, cable routing, and avoidance of metallic interference near the sensing tip affect signal stability. Field Installation Guidelines Install the probe with the sensing tip aligned directly toward the measured shaft or target surface. Maintain the specified mechanical clearance to prevent side metal influence on the eddy-current field. Connect the ClickLoc miniature coaxial connector securely and route the cable away from high-current power conductors to reduce electrical interference. Use proper cable shielding and grounding practices according to the machinery monitoring system installation requirements. Before commissioning, verify the probe gap voltage and confirm the output signal from the connected Proximitor Sensor. Check the probe mounting thread engagement and ensure that mechanical vibration does not introduce movement at the probe mounting point.

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  • Penjualan -50% TK-3E 177313-02-01 | Bently Nevada | Proximity Sensors TK-3E 177313-02-01 | Bently Nevada | Proximity Sensors

    Bently Nevada TK-3E 177313-02-01 | Bently Nevada | Proximity Sensors

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    Bently Nevada TK-3E 177313-02-01 TK3 Proximity System Test Kit The Bently Nevada TK-3E 177313-02-01, also cataloged as the TK-3E Proximity System Test Kit, provides mechanical positioning and electrical verification functions for Bently Nevada proximity probe calibration and vibration monitoring system testing. Hardware Specifications Parameter Specification Model TK-3E 177313-02-01 Brand Bently Nevada Product Type TK3 Proximity System Test Kit Spare Model 177313-02-01 Origin USA Weight 5.5 kg Dimensions 30 x 25 x 20 cm shipping size Operating Temp 0 deg C to 50 deg C (32 deg F to 122 deg F) Storage Temp -18 deg C to 65 deg C (0 deg F to 150 deg F) Humidity 95% non-condensing humidity Power Consumption 95-125 VAC, 50/60 Hz, minimum 1 A or 190-250 VAC, 50/60 Hz, minimum 1 A Drive Type Electric driven mechanism Air Supply 90 psi (6.2 bar) maximum Configuration 02 Metric / 01 American Spindle Micrometer Range 0 - 25.4 mm (0 - 1000 mils) Target Button and Wobble Plate Material AISI 4140 alloy steel Vibration Amplitude Range 50 um to 254 um Eddy-Current Probe Scaling and Gap Voltage Validation The TK-3E test kit provides controlled mechanical displacement for verifying eddy-current probe scaling characteristics. The spindle micrometer generates precise target movement, allowing technicians to evaluate probe output response across the calibrated displacement range. In addition, the test procedure supports gap voltage validation for Bently Nevada proximity systems. The measurement process verifies probe operating position and confirms electrical output behavior before field installation on machinery monitoring channels. The alloy steel target button and wobble plate provide a defined conductive surface for proximity probe excitation and signal response evaluation. Therefore, the kit supports rotor dynamics measurement preparation where accurate displacement reference is required. Frequently Asked Questions Q: What type of proximity probes can be evaluated with the TK-3E 177313-02-01?A: The TK-3E is designed for testing Bently Nevada proximity systems by providing controlled target displacement and mechanical reference movement for eddy-current probe verification. Q: Does the TK-3E require external air supply during operation?A: The unit supports an air supply input with a maximum rating of 90 psi (6.2 bar). The provided configuration also includes an electrically driven mechanism. Q: What environmental conditions are specified for operating the TK-3E?A: The specified operating temperature range is 0 deg C to 50 deg C with 95% non-condensing humidity. Storage conditions are specified from -18 deg C to 65 deg C. Field Installation Guidelines Install the TK-3E on a stable work surface before performing proximity probe verification procedures. Ensure that the mechanical spindle assembly moves freely and that the target button remains clean and free from contamination. Connect the AC power supply according to the specified voltage range. Use appropriate protective grounding practices and verify electrical connections before energizing the equipment. When connecting proximity probes, maintain proper cable routing to reduce electrical interference. Keep signal cables separated from high-current power conductors and verify shielding continuity according to the monitoring system installation requirements. Before testing, confirm the probe gap position and perform mechanical alignment checks. Use the spindle micrometer adjustment to apply controlled displacement while monitoring the corresponding probe output response.

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  • Penjualan -50% Bently Nevada 125710-01 3500 Series 4-Channel Relay I/O Module

    Bently Nevada Bently Nevada 125710-01 3500 Series 4-Channel Relay I/O Module

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    Bently Nevada 125710-01 3500 Series 4-Channel Relay I/O Module The Bently Nevada 125710-01, also cataloged as the 125710-01 4-Channel Relay I/O Module, operates as a dedicated hardware component for relay signal execution within the Bently Nevada 3500 Series Machinery Protection System. The module receives alarm logic signals from monitoring modules and controls external relay contact circuits. Hardware Specifications Parameter Specification Model 125710-01 Brand Bently Nevada Origin USA Module Type 4-Channel Relay Input/Output Module System Compatibility Bently Nevada 3500 Series Machinery Protection System Function Relay output interface for alarm and shutdown signal execution Channel Count 4 independent relay channels Relay Type Electromechanical SPDT (Form C) relay contacts Contact Rating 2 A at 30 VDC or 250 VAC resistive load Operating Voltage +24 VDC via 3500 rack backplane Weight Approx. 0.45 kg Dimensions 241 mm x 24.4 mm x 99.1 mm Operating Temp -30 deg C to +65 deg C Storage Temp -40 deg C to +85 deg C Humidity Up to 95% RH, non-condensing Power Consumption Approx. 2.8 W Rack Position Any slot to the right of the Main Interface Module Rotor Protection Relay Logic Interface The Bently Nevada 125710-01 module processes relay commands generated by 3500 monitoring modules and transfers these commands to external control circuits. In addition, the module supports programmable AND/OR voting logic to define relay activation conditions. The module operates with the 3500 system architecture where vibration, position, speed, and other machinery parameters are evaluated before relay outputs change state. Therefore, the relay contacts normally connect to PLC inputs, shutdown logic circuits, annunciators, or interlock systems rather than directly switching high-power loads. For machinery monitoring applications, the 3500 platform validates sensor signals through functions such as eddy-current probe scaling and gap voltage measurement. The relay interface then executes the configured protection response after the monitoring logic confirms an alarm condition. Frequently Asked Questions Q: Can the 125710-01 relay contacts directly control high-power motors or actuators?A: No. The onboard relay contacts are pilot contacts designed for signaling circuits, PLC inputs, interlocks, or external relay interfaces. External switching devices should control higher current loads. Q: Does the 125710-01 support hot replacement in a powered 3500 rack?A: The module supports replacement in a powered rack when the correct system maintenance procedures and bypass conditions are applied. The connected protection logic must be evaluated before removal. Q: How does the module receive relay activation commands?A: The module receives relay control commands from the 3500 system backplane after monitoring modules process configured alarm conditions and logic states. Field Installation Guidelines Install the Bently Nevada 125710-01 module only in compatible 3500 rack positions located to the right of the Main Interface Module. Use proper cabinet grounding practices and maintain separation between relay wiring and high-voltage power conductors. Connect shielded signal cables according to the system grounding design to reduce electrical interference. Verify relay contact ratings before connecting external circuits. Use external interposing relays or contactors when the controlled device exceeds the module contact capability. Confirm the 3500 rack configuration, module addressing, and relay logic settings before placing the machinery protection system into operation.

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  • Penjualan -50% 170180-01-05 | External Transducer I/O Modules Bently Nevada 170180-01-05 | External Transducer I/O Modules Bently Nevada

    Bently Nevada 170180-01-05 | External Transducer I/O Modules Bently Nevada

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    Bently Nevada 170180-01-05 FieldMonitor External Transducer I/O Module Configured for dual-channel transducer signal acquisition in the FieldMonitor system, the Bently Nevada 170180-01-05 (170180 FieldMonitor External Transducer I/O Module) provides direct physical and electrical interface execution for -24 VDC Proximitor or accelerometer inputs. This module is also cataloged as Solar Part Number 1034549-80. Hardware Specifications Parameter Specification Model 170180-01-05 Brand Bently Nevada Series FieldMonitor External Transducer I/O Module Product Type External Transducer I/O Module Origin USA Weight Approx. 0.60 lbs (272 g) Dimensions Approx. 3.1 cm x 19 cm x 12.8 cm Operating Temp -40 deg C to +85 deg C Power Consumption Approx. 20 mA input current Channel Configuration 2 independent channels Input Capacity Supports up to two transducer inputs Channel A Input -24 VDC Proximitor or accelerometer Channel B Input -24 VDC Proximitor or accelerometer Terminal Base Occupancy One FieldMonitor Terminal Base slot Output Signal Range 0 to 10 VDC Measurement Type Dynamic vibration and static position measurement Frequency Response 10 Hz to 10 kHz Accuracy +/- 1% of full scale Humidity Range 5% to 95% relative humidity, non-condensing EMC Compliance EN 50081-2, EN 50082-2 Eddy-Current Probe Scaling and Gap Signal Processing The Bently Nevada 170180-01-05 processes proximity and accelerometer signals through two independent input channels. Therefore, each channel maintains separate signal conditioning paths for connected transducers. The module supports -24 VDC Proximitor operation and allows FieldMonitor systems to acquire vibration and displacement-related signals. In addition, eddy-current probe scaling functions maintain the relationship between probe output voltage and mechanical shaft position measurements. For proximity measurement applications, gap voltage validation uses the typical Bently Nevada -10 VDC target reference for probe operating condition verification. The module architecture supports accurate rotor dynamics monitoring by preserving vibration waveform characteristics and reducing signal interference between measurement channels. Frequently Asked Questions Q: How many transducer inputs can the Bently Nevada 170180-01-05 accept?A: The module provides two independent input channels and accepts up to two transducer inputs through Channel A and Channel B. Q: Can the 170180-01-05 support both Proximitor and accelerometer inputs?A: Yes. Each channel supports -24 VDC Proximitor or accelerometer signal inputs according to the configured measurement application. Q: Does the module require a dedicated FieldMonitor Terminal Base position?A: Yes. The 170180-01-05 occupies one slot within a FieldMonitor Terminal Base for mechanical installation and electrical connection. Field Installation Guidelines Install the module only in a compatible FieldMonitor Terminal Base slot. Verify channel configuration before connecting field transducers. Use shielded instrumentation wiring for vibration and displacement signal connections. Connect cable shields according to site grounding practices to reduce electrical noise. Separate transducer signal wiring from high-current power cables and switching circuits. Confirm Proximitor supply polarity before energizing the module. Check sensor wiring continuity and insulation resistance before system startup. Verify gap voltage readings after installation to confirm correct probe positioning.

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  • Penjualan -50% 330104-00-05-05-01-00 | 3300 XL 8 mm Proximity Probe | Bently Nevada 330104-00-05-05-01-00 | 3300 XL 8 mm Proximity Probe | Bently Nevada

    Bently Nevada 330104-00-05-05-01-00 | 3300 XL 8 mm Proximity Probe | Bently Nevada

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    Bently Nevada 330104-00-05-05-01-00 3300 XL 8 mm Proximity Probe The Bently Nevada 330104-00-05-05-01-00, also cataloged as the 330104 3300 XL 8 mm Proximity Probe, operates as a dedicated eddy-current sensing component for shaft displacement measurement within Bently Nevada TSI monitoring systems. Hardware Specifications Parameter Specification Model 330104-00-05-05-01-00 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 121 cm Power Consumption Supplied by compatible proximity transducer system, not specified in provided data Probe Type Eddy-current displacement probe Thread Type M10 x 1 thread Armor Option Armored probe design Unthreaded Length 0 mm Overall Case Length 50 mm Total Length 0.5 meter (1.6 feet) Connector Type Miniature coaxial ClickLoc connector with connector protector Cable Type Standard cable Tariff Code 8537101190 Eddy-Current Measurement and Rotor Dynamics The Bently Nevada 3300 XL 8 mm Proximity Probe uses eddy-current measurement technology to convert shaft surface movement into electrical displacement signals. Therefore, the probe provides dynamic and static shaft position information for machinery monitoring applications. The probe design supports Bently Nevada proximity measurement systems by maintaining consistent probe scaling characteristics. Additionally, the system configuration allows engineers to validate gap voltage conditions, including the commonly applied -10 VDC target range for correct probe positioning. The 330104-00-05-05-01-00 model includes a 0.5 meter standard cable assembly and miniature coaxial ClickLoc connector. Furthermore, the connector protector improves mechanical protection at the probe connection point during field installation. Frequently Asked Questions Q: What measurement technology does the 330104-00-05-05-01-00 probe use?A: The probe uses eddy-current sensing technology to measure shaft displacement without physical contact between the probe tip and rotating shaft surface. Q: What is the thread specification of this proximity probe?A: The probe uses an M10 x 1 thread configuration with a 50 mm overall case length and 0 mm unthreaded length option. Q: Does this model include agency approval certification?A: No. The 330104-00-05-05-01-00 configuration does not include an agency approval option. Field Installation Guidelines Install the probe with correct mechanical alignment to maintain accurate shaft displacement measurement. Ensure the M10 x 1 threaded section engages properly with the mounting bracket or probe holder. Route the standard cable away from high-current conductors and strong electromagnetic interference sources. Use proper cable support to prevent excessive mechanical stress on the miniature coaxial ClickLoc connector. Connect the probe to the compatible Bently Nevada monitoring interface and verify the gap voltage before commissioning. The installation team should confirm probe clearance, signal polarity, and shielding continuity according to the applicable machinery monitoring system requirements.

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  • Penjualan -50% 2155/40-02 | Communication Processors | Bently Nevada 2155/40-02 | Communication Processors | Bently Nevada

    Bently Nevada 2155/40-02 | Communication Processors | Bently Nevada

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    Bently Nevada 2155/40-02 TDISecure Communication Processor The Bently Nevada 2155/40-02, also cataloged as the 2155/40 TDISecure Communication Processor, operates as a dedicated hardware component for parallel machinery data acquisition and communication within the Bently Nevada System 1 monitoring network. Hardware Specifications Parameter Specification Model Bently Nevada 2155/40-02 Brand Bently Nevada Origin USA Product Type TDISecure Communication Processor Weight Approx. 3.9 kg Dimensions 384 mm x 216 mm x 136 mm Operating Temp -30 deg C to +65 deg C Power Consumption 35 W maximum Power Input 20 to 36 VDC Dynamic Analog Inputs 24 differential channels Dynamic Input Frequency Range DC to 30 kHz Dynamic Input Signal Range -25 V to +25 V, 25 V peak-to-peak maximum Dynamic Input Impedance 143 kOhm Dynamic Input Accuracy +/- 1% Full Scale Process Inputs 24 channels, divided into 2 groups of 12 Process Signal Types 4-20 mA, 0-5 V, 1-5 V, 0-10 V, 2-10 V Process Input Impedance 250 Ohm current mode / 400 kOhm voltage mode Process Input Scan Rate 400 ms for all 24 channels Process Input Accuracy +/- 0.32% FS at 25 deg C for 10 V FS; +/- 0.64% FS at 25 deg C for 4-20 mA Discrete Inputs 24 channels, Positive or Negative logic configurable Keyphasor Inputs 4 channels, up to 20 kHz speed input Communication Interfaces Dual Ethernet RJ45 ports, Modbus serial communication Software Integration System 1 Asset Management Software, Data Manager 2000 Storage Temperature -40 deg C to +85 deg C Relative Humidity Maximum 95%, non-condensing Operating Altitude Up to 2,000 m Installation Category Category II Pollution Degree 2 Mounting Method Rack or panel installation Eddy-Current Signal Processing and Rotor Dynamics Monitoring The Bently Nevada 2155/40-02 processes machinery condition signals from vibration, position, and speed measurement channels through parallel sampling architecture. Therefore, the module captures transient machine behavior during startup, shutdown, and changing load conditions. The processor supports Bently Nevada machinery monitoring functions, including eddy-current probe scaling, gap voltage validation, and rotor dynamics analysis. It manages proximity probe signal conversion by maintaining accurate probe voltage relationships and supports typical Bently Nevada gap measurement practices with -10 VDC target gap voltage validation. Furthermore, the module applies signal processing methods to reduce measurement interference. The hardware architecture supports cross-talk suppression between dynamic input channels, allowing multiple machinery signals to be collected within the same monitoring system. Frequently Asked Questions Q: Does the Bently Nevada 2155/40-02 support direct connection to proximity probe signals?A: Yes. The module provides 24 differential dynamic analog inputs that accept machinery monitoring signals within the specified DC to 30 kHz frequency range. Q: What communication interfaces are available on the 2155/40-02?A: The processor provides dual Ethernet RJ45 ports and Modbus serial communication for integration with System 1 Asset Management Software and related monitoring networks. Q: Can the 2155/40-02 replace older TDXnet processors?A: The module provides legacy-compatible functionality for TDXnet processor replacement applications when system configuration requirements match the installed monitoring architecture. Field Installation Guidelines Install the Bently Nevada 2155/40-02 in a rack or panel enclosure that maintains the specified operating environment. Verify that the 20 to 36 VDC power source meets the module input requirements before energizing the unit. Use shielded instrumentation cables for dynamic signal wiring. Connect cable shields according to the plant grounding practice to minimize electromagnetic interference. Separate low-level vibration signal cables from high-current power conductors and switching circuits. For Keyphasor and proximity probe connections, verify cable polarity, signal routing, and termination requirements before commissioning. Confirm eddy-current probe calibration, gap voltage range, and channel configuration through the monitoring software before placing machinery into service. Maintain proper Ethernet cable routing and avoid parallel installation with high-voltage conductors. Verify communication addressing and Modbus configuration before integrating the processor into the System 1 monitoring network.

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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% Bently Nevada 3300/20-12-01-02-03-02 Dual Thrust Position Monitor Bently Nevada 3300/20-12-01-02-03-02 Dual Thrust Position Monitor

    Bently Nevada Bently Nevada 3300/20-12-01-02-03-02 Dual Thrust Position Monitor

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    Bently Nevada 3300/20-12-01-02-03-02 Dual Thrust Position Monitor The Bently Nevada 3300/20-12-01-02-03-02, also cataloged as the 3300/20 Dual Thrust Position Monitor, operates as a dedicated hardware component for axial shaft displacement measurement using proximity transducer signals within Bently Nevada 3300 monitoring systems. It processes two thrust position channels and provides alarm, voting, and recorder outputs for machinery protection circuits. Hardware Specifications Parameter Specification Model 3300/20-12-01-02-03-02 Brand Bently Nevada Product Type Dual Thrust Position Monitor Origin USA Weight Approximately 1.0 kg Dimensions 83 mm vertical display bar graph Operating Temp 0 deg C to +65 deg C Storage Temp -40 deg C to +85 deg C Power Consumption 1.5 Watts nominal Power Supply 120 VAC nominal Monitoring Channels 2 independent thrust position channels Full Scale Range +/- 1.0 mm (40-0-40 mils) Input Impedance 10 kOhm Transducer Compatibility 3300 or 7200 Proximitor systems Transducer Supply Voltage Programmable -24 VDC or -18 VDC Input Sensitivity 200 mV/mil (8 V/mm) or 100 mV/mil (4 V/mm) Display Accuracy +/- 1.6% of full scale Signal Conditioning Accuracy +/- 0.33% typical, +/- 1% maximum at +25 deg C Alarm Relay Type Hermetically sealed relays Voting Logic AND / OR dual-channel voting Recorder Outputs +4 to +20 mA, 0 to -10 VDC, +1 to +5 VDC Buffered Outputs Front panel coaxial and terminal connectors Humidity Rating Up to 95%, non-condensing Safety Function Internal safety barriers for field probe circuits Certifications CSA / NRTL / C compliant, Class 1 Division 2 ready Eddy-Current Probe Scaling and Rotor Dynamics Monitoring The 3300/20-12-01-02-03-02 processes eddy-current probe signals by applying configured sensitivity values for accurate axial position measurement. Therefore, the monitor maintains consistent scaling between probe displacement signals and displayed thrust position values. The module supports gap voltage validation functions associated with Bently Nevada proximity measurement technology. Field probe installation typically uses a nominal -10 VDC gap voltage target to maintain proper linear operating range before machine operation. Furthermore, the dual-channel architecture supports rotor dynamics analysis by monitoring axial movement changes caused by thrust loading variations. The AND/OR voting logic allows engineers to configure trip decisions according to machine protection requirements while reducing unwanted relay activation. Frequently Asked Questions Q: How many thrust position inputs does the 3300/20-12-01-02-03-02 monitor support?A: The monitor supports two independent axial thrust position channels. Each channel accepts signals from compatible Bently Nevada 3300 or 7200 Proximitor systems. Q: Does this model provide hazardous area signal isolation?A: Yes. The -02 safety barrier option integrates internal safety barriers that limit energy delivered to field-installed proximity probes. Q: What type of alarm relay configuration does this monitor use?A: The -02 relay option provides hermetically sealed alarm relays designed for operation in environments where contact contamination may affect switching performance. Field Installation Guidelines Install the monitor inside a compatible Bently Nevada 3300 rack environment following the system installation manual. Connect proximity probe signals using shielded cables and maintain proper cable separation from high-voltage power conductors. Verify probe polarity, signal scaling, and gap voltage before placing the machinery into operation. Adjust probe installation position to achieve the specified operating gap range and confirm the -10 VDC target gap voltage. Ground cable shields according to plant electrical grounding practices to reduce electromagnetic interference. Verify alarm relay logic settings, including AND/OR voting configuration, before enabling machinery protection functions. Confirm recorder output wiring for the selected current or voltage signal format before connecting external monitoring equipment.

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  • Penjualan -50% 3300/50-01-02-03-02 | Bently Nevada | Tachometer Monitor 3300/50-01-02-03-02 | Bently Nevada | Tachometer Monitor

    Bently Nevada 3300/50-01-02-03-02 | Bently Nevada | Tachometer Monitor

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    Bently Nevada 3300/50-01-02-03-02 Tachometer Monitor The Bently Nevada 3300/50-01-02-03-02, also cataloged as the 3300/50 Tachometer Monitor, operates as a dedicated hardware component for shaft speed measurement, acceleration monitoring, and zero speed detection within the Bently Nevada 3300 Monitoring System. Hardware Specifications Parameter Specification Model 3300/50-01-02-03-02 Brand Bently Nevada Origin USA Product Type Tachometer Monitor Module System Platform 3300 Machinery Protection System Input Type Proximity probe and magnetic pickup signals Input Channels Up to 2 transducer inputs with voting logic Input Impedance 10 kOhm nominal Speed Measurement Range 1 to 99,999 rpm Rotor Acceleration Range -9,999 to 9,999 rpm/min Zero Speed Detection Typically below 100 rpm Accuracy Within +/-1 rpm for speed display; within +/-20 rpm/min for acceleration display at 25 deg C Buffered Output Front panel coaxial output per transducer channel Buffered Output Impedance 100 Ohm Recorder Output 4-20 mA DC proportional output Display Type 7-segment LCD display Alarm Functions Alert and Danger adjustable setpoints Relay Operation Normally energized/de-energized, latching or non-latching modes Power Consumption 2.5 Watts nominal 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 TSI Signal Processing and Rotor Dynamics Features The Bently Nevada 3300/50-01-02-03-02 processes rotational speed signals from eddy-current probes or magnetic pickups and converts pulse inputs into shaft speed and acceleration values. The module applies tachometer signal conditioning to maintain measurement accuracy during changing rotor operating conditions. Furthermore, the module supports eddy-current probe scaling and gap voltage validation principles used in Bently Nevada machinery monitoring systems. The transducer interface evaluates input signal amplitude and operating point conditions to maintain correct measurement conversion. The module architecture supports rotor dynamics monitoring by tracking speed variation, acceleration behavior, and zero speed conditions. Additionally, the buffered outputs provide isolated access for external diagnostic equipment while maintaining front panel signal availability. Frequently Asked Questions Q: Does the 3300/50-01-02-03-02 support dual transducer inputs?A: Yes. The module accepts up to two transducer inputs and uses internal voting logic to reduce false trip conditions caused by individual signal disturbances. Q: What output signal does the recorder interface provide?A: The module provides a proportional 4-20 mA DC recorder output for connection to external PLC, DCS, or data acquisition systems. Q: Can the module monitor zero speed conditions?A: Yes. The tachometer function supports zero speed monitoring applications and typically operates below 100 rpm for low-speed detection. Field Installation Guidelines Install the 3300/50-01-02-03-02 module inside the designated 3300 rack slot according to the system configuration requirements. Use shielded signal wiring for proximity probe and magnetic pickup connections. Connect cable shields according to the plant grounding standard to reduce electromagnetic interference. Maintain proper separation between tachometer signal cables and high-current power wiring. Avoid routing sensor cables near motor feeders, variable frequency drive outputs, or switching power sources. Verify transducer polarity, signal amplitude, and mechanical target condition before commissioning. For eddy-current probe installations, confirm the probe gap voltage and scaling parameters match the configured monitoring range. Check relay logic configuration, alarm setpoints, and 4-20 mA output scaling before placing the machinery protection channel into service.

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  • Penjualan -50% 149776-01 | Ethernet Communication Cards | Bently Nevada 149776-01 | Ethernet Communication Cards | Bently Nevada

    Bently Nevada 149776-01 | Ethernet Communication Cards | Bently Nevada

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    Bently Nevada 149776-01 10/100 TX Copper Ethernet Communication Card The Bently Nevada 149776-01, also cataloged as the 149776-01 10/100 TX Copper Ethernet Communication Card, operates as a dedicated hardware component for Ethernet data communication between Trendmaster Dynamic Scanning Module (DSM) racks and System 1 platforms. Hardware Specifications Parameter Specification Model 149776-01 Brand Bently Nevada Origin USA Product Type Ethernet Communication Card System Platform Trendmaster Dynamic Scanning Module (DSM) Communication Interface 10/100 TX Copper Ethernet Connector Type RJ45 Network Protocols TCP/IP, UDP for initialization, Modbus over TCP/IP Modbus Capability Supports up to 6 clients Modbus Response Time 0.5 sec Data Rate 10 Base-T or 100 Base-TX, auto-negotiating Cable Type Category 5 twisted pair Maximum Cable Length 100 meters (328 feet) Status Indicator Tri-color Status LED for DSM and input module diagnostics Link Indicator Tri-color Link/Activity LED for Ethernet communication status Weight Approx. 0.2 kg to 0.5 kg Dimensions Approx. 21 cm x 13 cm x 11 cm Operating Temp -20 deg C to +65 deg C Power Consumption Not specified by manufacturer Eddy-Current Signal Network and DSM Communication Characteristics The 149776-01 Ethernet Communication Card transfers Trendmaster DSM measurement data through TCP/IP and Modbus over TCP/IP communication channels. Moreover, the card provides direct network access between DSM input modules and System 1 condition monitoring software. The DSM architecture processes vibration-related measurement data from connected monitoring modules. Therefore, the Ethernet interface maintains structured data transmission for machinery monitoring applications without requiring additional protocol converters. The card supports Bently Nevada machinery monitoring functions, including signal processing workflows associated with rotor dynamics analysis and vibration condition tracking. In addition, the communication path maintains data integrity between field acquisition modules and supervisory software. Frequently Asked Questions Q: Does the 149776-01 support direct Modbus communication without System 1 software?A: Yes. The module supports Modbus over TCP/IP operation independently from System 1 software. Q: What Ethernet cable specification does the 149776-01 require?A: The module requires Category 5 twisted pair cable with a maximum communication distance of 100 meters. Q: What diagnostic information do the onboard LEDs provide?A: The tri-color Status LED indicates DSM and input module conditions, while the Link/Activity LED indicates Ethernet network connection and activity status. Field Installation Guidelines Install the 149776-01 in the dedicated communication slot of the Trendmaster DSM rack according to the rack hardware configuration. Use Category 5 twisted pair Ethernet cable with an RJ45 connector for network connection. Keep communication wiring separated from high-voltage power cables and high-current switching conductors to reduce electrical interference. Connect the cable shield according to the site grounding standard. Verify network link status through the Link/Activity LED after applying system power. Before commissioning, confirm TCP/IP addressing, Modbus communication parameters, and DSM module recognition within the monitoring network.

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  • Penjualan -50% Bently Nevada 149787-01 TIM Input Card Bently Nevada 149787-01 TIM Input Card

    Bently Nevada Bently Nevada 149787-01 TIM Input Card

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    Bently Nevada 149787-01 TIM Input Card The Bently Nevada 149787-01, also cataloged as the 149787-01 TIM Input Card, operates as a dedicated hardware component for simultaneous vibration signal acquisition within the Trendmaster Dynamic Scanning Module (DSM) system. It processes TIM sensor inputs through two independent input lines with synchronized sampling capability. Hardware Specifications Parameter Specification Model 149787-01 Brand Bently Nevada Product Type TIM Input Card System Platform Trendmaster Dynamic Scanning Module (DSM) Input Lines 2 input lines per card, both lines sampled simultaneously Supported TIM Modules All proTIM modules, 1900/15, 1900/25, 1900/55 TIM Cable Length 1200 m (4000 ft) maximum A/D Resolution 14 bits Accuracy +/-2% of full-scale range Short Circuit Current Limit 43 mA maximum Hardware Frequency Response 1/3 Hz and 20 kHz 3 dB corners Direct Filter 2-pole high-pass, 1 Hz to 12.8 kHz Prime Spike Filter 4-pole high-pass, 1 Hz to 12.8 kHz; 2-pole low-pass, 10 Hz to 12.8 kHz Rotor Region Filter 2-pole high-pass, 1 Hz to 12.8 kHz; 2-pole low-pass, 10 Hz to 12.8 kHz High Frequency Filter 4-pole high-pass, 1 Hz to 12.8 kHz Synchronous Waveform Samples 32, 64, or 128 samples per revolution Synchronous Frequency Span 20 to 36,000 CPM Maximum Waveform Size 8192 samples Asynchronous Frequency Spans 20 Hz, 50 Hz, 100 Hz, 200 Hz, 500 Hz, 1000 Hz, 2000 Hz Asynchronous Sample Rates 51.2 Hz, 128 Hz, 256 Hz, 512 Hz, 1280 Hz, 2560 Hz, 5120 Hz, 12800 Hz, 25600 Hz Spectral Lines 100, 200, 400, 800, 1600, 3200 Spectrum Averages Up to 8 Eddy-Current Signal Scaling and Rotor Dynamics Processing The 149787-01 TIM Input Card acquires dynamic machinery signals through TIM interface modules and transfers conditioned measurement data into the DSM architecture. Moreover, the module supports vibration monitoring applications that require accurate signal conversion and frequency-domain analysis. The input architecture maintains synchronized sampling across two TIM lines. Therefore, the card can process multiple sensor channels through connected proTIM modules while preserving timing relationships required for rotor dynamics evaluation. The card supports configurable filtering paths, including direct filtering, prime spike filtering, rotor region filtering, and high frequency filtering. These functions allow the monitoring system to separate vibration components according to measurement frequency requirements. Frequently Asked Questions Q: How many TIM input lines does the 149787-01 TIM Input Card support?A: The card supports two TIM input lines, and both lines are sampled simultaneously. Q: Does the 149787-01 support synchronous waveform acquisition?A: Yes. The module supports software-configurable synchronous waveforms with 32, 64, or 128 samples per revolution and waveform sizes up to 8192 samples. Q: Which TIM modules can connect to the 149787-01?A: The card supports all proTIM modules, including 1900/15, 1900/25, and 1900/55 TIM modules. Field Installation Guidelines Install the 149787-01 TIM Input Card only in the designated DSM rack slot configuration defined by the Trendmaster system hardware manual. Connect TIM cables according to the approved wiring layout and maintain proper cable routing separation from high-voltage power conductors to reduce electrical interference. Use appropriate cable shielding and grounding practices at the system connection points. Avoid unnecessary cable loops and mechanical stress on TIM connectors during installation. Verify TIM module compatibility before commissioning. Check input signal behavior, communication status, and waveform acquisition settings through the connected monitoring software.

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  • Penjualan -50% Bently Nevada 149744 Trendmaster Dynamic Scanning Module Bently Nevada 149744 Trendmaster Dynamic Scanning Module

    Bently Nevada Bently Nevada 149744 Trendmaster Dynamic Scanning Module

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    Bently Nevada 149744 Trendmaster Dynamic Scanning Module The Bently Nevada 149744, also cataloged as the 149744 Trendmaster Dynamic Scanning Module, operates as a dedicated hardware component for dynamic vibration data acquisition within the Trendmaster DSM and System 1 software network. Hardware Specifications Parameter Specification Model 149744 Brand Bently Nevada Product Type Trendmaster Dynamic Scanning Module Origin USA Weight DSM rack without input cards: 0.76 kg; Input card: 0.2 kg; Power supply: 0.5 kg Dimensions DIN rail mounting requires 26.7 cm rail length; Bulkhead mounting requires 4 #8 screws Operating Temp -20 deg C to +65 deg C Storage Temp -40 deg C to +85 deg C Operating Humidity 95% non-condensing; 100% condensing in weatherproof housing with power applied Power Consumption 18 watts maximum Input Voltage 20 to 30 VDC Fuse Rating 1 amp slow-blow Rack Configuration 5 card slots Communication Interface Copper or fiber Ethernet communication card Input Card Support TIM input cards connected to Bently Nevada TIM and proTIM modules TIM Line Capacity 2 TIM lines per input card, up to 254 channels per TIM line Vibration Resistance 2 g from 10 to 55 Hz; 10 g from 55 to 500 Hz Shock Resistance 6-inch drop to plywood surface when installed in terminal base Rotor Dynamics Data Processing and Trendmaster Interface The 149744 Trendmaster Dynamic Scanning Module processes vibration acquisition signals from TIM and proTIM modules through dedicated TIM input cards. Each input card provides two independent TIM communication lines, and each line supports up to 254 monitoring channels. Moreover, the onboard processing architecture allows the DSM to calculate processed variables locally before transmission to the host computer. Therefore, the system reduces network traffic requirements while maintaining access to vibration parameters, waveforms, and spectrum data when raw acquisition data is required. The DSM platform supports Bently Nevada mechanical monitoring functions, including eddy-current probe scaling, rotor dynamics analysis, and vibration signal conditioning. In addition, local processing improves signal handling efficiency by minimizing unnecessary data transfer across the Ethernet communication network. Frequently Asked Questions Q: How many TIM channels can one 149744 DSM input card support?A: Each TIM input card provides two TIM lines, and each TIM line supports up to 254 channels connected through compatible TIM and proTIM modules. Q: Does the 149744 DSM return both processed variables and raw vibration data?A: Yes. The module can transmit locally processed variables to reduce bandwidth usage and can also provide waveforms and spectrum data when the host system requires raw information. Q: What communication cards are supported by the DSM rack?A: The first rack slot accepts either copper Ethernet or fiber Ethernet communication cards for connection with System 1 software. Field Installation Guidelines Install the 149744 DSM rack on a suitable 35 mm DIN rail or bulkhead mounting surface according to the mechanical installation requirements. Ensure the 20 to 30 VDC power supply connection is routed separately from high-voltage switching circuits and high-current motor cables. Use proper grounding practices for communication shields and signal reference connections. Connect TIM input wiring with attention to cable routing and separation from electromagnetic interference sources. Verify TIM and proTIM module addressing before system commissioning. Maintain environmental protection when installing the DSM in outdoor or high-humidity locations. The weatherproof housing configuration requires power application conditions for fully condensing humidity environments.

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  • Penjualan -50% Transducer Interface Modules | Bently Nevada | 170180-01-00 Transducer Interface Modules | Bently Nevada | 170180-01-00

    Bently Nevada Transducer Interface Modules | Bently Nevada | 170180-01-00

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    Bently Nevada 170180-01-00 FieldMonitor External Transducer I/O Module Configured for dual-channel transducer signal acquisition in the Bently Nevada FieldMonitor system, the Bently Nevada 170180-01-00 (170180 FieldMonitor External Transducer I/O Module) provides direct physical interface execution for Proximitor and accelerometer inputs. Hardware Specifications Parameter Specification Model 170180-01-00 Brand Bently Nevada Product Type FieldMonitor External Transducer I/O Module Origin USA Weight 0.28 kg Dimensions 12.7 x 2.1 x 10.5 cm Power Consumption 24 VDC input supply Channel Count 2 channels Input Configuration Channel A: -24 VDC Proximitor or Accelerometer; Channel B: -24 VDC Proximitor or Accelerometer Installation Position One slot in FieldMonitor terminal base Transducer Capacity Supports up to two external transducer inputs System Compatibility Bently Nevada FieldMonitor platform Manufacturer Status Discontinued by manufacturer Eddy-Current Probe Interface and Mechanical Signal Processing The 170180-01-00 module processes field transducer signals from Proximitor and accelerometer devices through two independent input channels. Moreover, the module supports eddy-current probe scaling functions required for displacement monitoring applications. The module maintains signal conditioning between the external transducer and the FieldMonitor monitoring platform. Therefore, proper probe wiring, shield termination, and signal reference connections directly affect measurement stability. For eddy-current proximity systems, engineers typically verify probe gap voltage conditions before commissioning. The Bently Nevada monitoring architecture commonly uses -10 VDC gap voltage targets as a reference point for correct probe operating position. In addition, correct installation reduces measurement errors caused by rotor dynamics variations and electrical interference. Frequently Asked Questions Q: How many transducer inputs does the Bently Nevada 170180-01-00 support?A: The module provides two independent channels and accommodates up to two Proximitor or accelerometer transducer inputs. Q: Can the 170180-01-00 operate as a standalone monitoring device?A: No. The module requires installation in a Bently Nevada FieldMonitor terminal base and functions as an external transducer interface component. Q: What installation considerations apply to the transducer wiring?A: Installers should maintain proper cable routing, separate signal wiring from high-current conductors, and apply correct shield grounding practices according to the system installation requirements. Field Installation Guidelines Install the 170180-01-00 module into the designated FieldMonitor terminal base slot. Confirm the 24 VDC power supply connection before connecting field transducer wiring. Connect Channel A and Channel B inputs according to the selected Proximitor or accelerometer configuration. Use appropriate cable shielding practices to reduce electrical noise coupling into low-level vibration signals. Verify transducer polarity, signal reference, and gap voltage conditions during commissioning. Avoid routing transducer cables parallel to high-voltage or high-frequency switching cables. Check mechanical mounting security and terminal connections during maintenance inspections.

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  • Penjualan -50% 1034549-20| Bently Nevada | Proximity Sensors 1034549-20| Bently Nevada | Proximity Sensors

    Bently Nevada 1034549-20| Bently Nevada | Proximity Sensors

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    Bently Nevada 1034549-20 FieldMonitor Dual-Channel Proximitor Input Monitor The Bently Nevada 1034549-20, also cataloged as the 1034549-20 FieldMonitor Dual-Channel Proximitor Input Monitor, operates as a dedicated hardware component for eddy-current probe signal processing within the FieldMonitor 1701/15 system. Hardware Specifications Parameter Specification Model 1034549-20 Brand Bently Nevada Product Type Dual-Channel Proximitor Input Monitor Module Series FieldMonitor 1701/15 Origin United States (USA) Weight Approx. 0.5 kg Dimensions Approx. 21 cm x 13 cm x 11 cm Supported Transducers Eddy-current proximity probes (Proximitor sensors) Measurement Functions Radial vibration, axial displacement, shaft position Input Channels 2 channels Alarm Configuration Alarm 1 Alert, Alarm 2 Danger Alarm Mode Non-latching configuration Alarm Time Delay 0.15, 0.2, 0.3, 0.5, 0.6, 1.0, 2.0, 3.0, 5.0, 6.0, 10.0, and 20.0 seconds Trip Multiply Options None, 1.5, 2, or 3 OK Mode Non-latching system integrity monitoring System Compatibility Bently Nevada FieldMonitor 1701/15 series, Solar Turbines systems Eddy-Current Probe Signal Scaling and Rotor Dynamics Processing The 1034549-20 processes eddy-current proximity probe signals by conditioning, amplifying, and linearizing the transducer output before measurement evaluation. Moreover, the module maintains signal accuracy for radial vibration and thrust position monitoring by applying dedicated proximity measurement processing. The module supports gap voltage validation functions associated with eddy-current probe operation. Therefore, technicians can evaluate probe operating conditions through the generated measurement values before analyzing vibration or shaft position data. The signal path design also reduces measurement interference from field wiring conditions and supports stable rotor dynamics analysis. Frequently Asked Questions Q: Does the Bently Nevada 1034549-20 support direct connection with eddy-current proximity probes?A: Yes. The module accepts signals from Bently Nevada Proximitor sensors and processes the input for vibration and displacement measurements. Q: What alarm functions are available on the 1034549-20 module?A: The module provides Alarm 1 and Alarm 2 configurations with non-latching operation. It also supports adjustable alarm time delays and trip multiply options. Q: Can the module monitor both radial vibration and axial position signals?A: Yes. The dual-channel architecture supports monitoring of radial vibration, thrust displacement, and shaft position measurements depending on the connected transducer configuration. Field Installation Guidelines Install the 1034549-20 module inside the designated FieldMonitor 1701/15 mounting system according to the system hardware manual. Use shielded instrumentation wiring for eddy-current probe connections to reduce electromagnetic interference. Connect cable shields according to site grounding practices and avoid routing probe cables near high-current power conductors. Verify probe wiring polarity, signal continuity, and gap voltage conditions before commissioning. Additionally, confirm channel configuration settings, alarm thresholds, and delay parameters before placing the machinery protection system into operational service. Maintain proper separation between signal cables and power cables during installation. Inspect connectors and terminal interfaces periodically to prevent signal degradation caused by mechanical looseness or environmental contamination.

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