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Bently Nevada 21000-16-05-00-039-03-02 Vibration Monitoring Module – 3500 Series

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Key Product Information

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Brand
Bently Nevada
Primary Part Number
21000-16-05-00-039-03-02
Product Type
Vibration Monitoring Module
Series / Family
3500 Series
Country of Origin
US
Catalog Category
Sensors & Switches
Operating Temp.
0 °C to +65 °C
Humidity
5% to 95% RH, non-condensing
Warranty
12 months from date of shipment
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Product Overview

Bently Nevada 21000-16-05-00-039-03-02 — Continuous Vibration Monitoring for Critical Rotating Machinery

The Bently Nevada 21000-16-05-00-039-03-02 is a dedicated vibration monitoring module engineered for deployment within the 3500 Series Machinery Protection System (MPS). Its primary function is the acquisition, conditioning, and relay-trip processing of vibration signals from proximity probes and seismic transducers mounted on rotating equipment — turbines, compressors, pumps, and motors operating in continuous-duty industrial environments. Unlike general-purpose I/O modules, this unit is purpose-built for machinery health surveillance, where signal latency and measurement fidelity directly determine whether a protection trip occurs within the required response window.

Within a 3500 rack architecture, the module occupies a standard two-slot card position and communicates with the Rack Interface Module (RIM) via the internal TDI (Transient Data Interface) backplane bus. This bus operates at a deterministic scan rate, ensuring that vibration amplitude and phase data are refreshed and evaluated against configured alert and danger setpoints on every scan cycle — typically within 20 ms end-to-end from transducer input to relay output. The module supports both OK/Not-OK relay outputs and buffered transducer output (BTO) signals, allowing simultaneous protection and condition monitoring data acquisition without signal splitting or external signal conditioners.

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Technical Parameters

Parameter Specification
Part Number / SKU 21000-16-05-00-039-03-02
Brand Bently Nevada (Baker Hughes)
Series 3500 Machinery Protection System
Module Function Vibration Monitoring (Proximity / Seismic)
Input Channel Count 2 channels per module (differential input)
Input Signal Type Eddy-current proximity probe / velocity seismic
Measurement Parameters Direct (gap), 1X amplitude & phase, 2X, overall RMS, Smax
Full-scale Input Range 0–25 mil pp (proximity); configurable per transducer sensitivity
Frequency Response DC to 10 kHz (proximity); 1 Hz to 1 kHz (seismic)
Alert / Danger Setpoints Independently configurable per channel, latching or non-latching
Relay Output SPDT, rated 5 A @ 250 VAC / 30 VDC
Buffered Transducer Output BTO signal available on front panel BNC connector
Power Consumption ≤ 4 W per module (from rack backplane, +24 VDC)
Operating Temperature 0 °C to +65 °C
Storage Temperature −40 °C to +85 °C
Humidity 5% to 95% RH, non-condensing
EMC Compliance IEC 61000-4 series; CE marked
Safety Certification SIL 1 capable (system-level, per IEC 61511)
Country of Origin United States of America
Weight Approx. 1,300 g
Warranty 12 months from date of shipment

Hardware Logical Analysis

The 21000-16-05-00-039-03-02 implements a fully differential analog front-end on each input channel. Differential topology rejects common-mode noise injected by long cable runs through electrically noisy plant environments — a critical requirement when proximity probe cables traverse motor control center (MCC) rooms or run parallel to high-current power conductors. The common-mode rejection ratio (CMRR) of the input stage exceeds 60 dB at 50/60 Hz, which effectively suppresses power-frequency interference that would otherwise appear as a false 1X vibration component at synchronous speed.

Signal conditioning within the module employs a multi-stage active filter bank. A high-pass filter with a corner frequency of approximately 1 Hz removes DC bias from the proximity probe gap voltage before the AC vibration component is extracted. A low-pass anti-aliasing filter ahead of the analog-to-digital converter (ADC) prevents spectral folding of high-frequency mechanical noise into the measurement band. The ADC resolution is sufficient to resolve vibration amplitudes below 0.1 mil pp against a full-scale range of 25 mil pp, yielding a dynamic range adequate for early-stage fault detection before amplitudes reach alert thresholds.

The module’s setpoint comparison logic is implemented in dedicated hardware rather than firmware polling loops. This architecture guarantees that the time from a threshold crossing at the ADC output to relay coil energization is bounded and deterministic — a property that firmware-based comparators cannot guarantee under interrupt latency or task-scheduling jitter. The result is a protection response time that remains consistent regardless of rack communication load or host software polling activity.

EMC hardening extends to the module’s physical construction. The card substrate uses a multi-layer PCB with dedicated ground planes separating analog signal layers from digital logic layers. Bypass capacitors are placed at each power pin of every active device, and ferrite beads are inserted in series with the backplane power rails to attenuate high-frequency switching transients generated by adjacent modules. The front-panel I/O connectors are shielded and bonded to chassis ground through low-impedance paths, preventing shield currents from flowing through the signal return conductors.

System Integration Benefits

  • Deterministic protection response: Hardware-based setpoint comparison delivers relay trip output within a bounded latency window, independent of rack communication load or host software state — essential for API 670-compliant machinery protection.
  • Simultaneous protection and monitoring: Buffered transducer output (BTO) on the front panel allows a condition monitoring system (e.g., System 1) to acquire raw transducer signals concurrently with protection processing, eliminating the need for external signal splitters that introduce impedance mismatches.
  • Rack-level diagnostic transparency: The module continuously reports its own OK status to the RIM. A module failure or loss of transducer continuity generates a Not-OK condition that is distinguishable from a machinery alarm, preventing false trips and enabling maintenance personnel to isolate hardware faults without ambiguity.
  • Configurable voting logic: When multiple 21000-series modules are installed in the same rack, the 3500 system supports AND/OR voting across channels. This allows 2-out-of-3 (2oo3) protection logic to be implemented without external relay panels, reducing wiring complexity and single-point failure exposure.
  • Non-intrusive configuration: All setpoint and configuration changes are applied through the Rack Configuration Software (RCS) over the RS-232/RS-485 rack communication port. No hardware jumpers or potentiometers require physical adjustment, eliminating the risk of inadvertent setpoint drift during maintenance activities.
  • Transient data capture: Integration with the 3500/22M Transient Data Interface module enables the rack to capture high-resolution waveform data during startup, shutdown, and trip events. The 21000-16-05-00-039-03-02 feeds its digitized channel data into this capture buffer, providing the time-domain records needed for post-event root-cause analysis.
  • Hot-swap capability: The 3500 rack architecture supports module replacement under power in non-trip-critical configurations. This allows maintenance teams to swap a suspect 21000-series module during a planned maintenance window without requiring a full rack power-down, reducing mean time to repair (MTTR).
  • Scalable channel density: Multiple 21000-series modules can be populated in a single 3500 rack alongside temperature, speed, and position monitoring modules. A single rack can therefore provide complete machinery protection coverage for a multi-bearing machine train without requiring separate protection panels for each measurement parameter.

Quality Assurance & Global Logistics

Every Bently Nevada 21000-16-05-00-039-03-02 unit dispatched from our Xiamen, China facility is a genuine OEM component sourced through verified supply channels. Prior to shipment, each module undergoes a structured inspection protocol: visual examination of PCB, connector pins, and label authenticity; power-on functional verification; and output signal validation against reference standards. Units that do not pass all inspection checkpoints are quarantined and not offered for sale.

Packaging follows anti-static handling procedures throughout. Each module is placed in a conductive foam insert inside an ESD-shielded bag, then secured in a rigid outer carton with shock-absorbing foam padding rated for the module’s weight class. This packaging configuration is designed to withstand the mechanical shock and vibration profiles specified in ISTA 2A transit testing.

Logistics from Xiamen reach major industrial hubs on the following typical schedules: Southeast Asia 2–4 business days; Europe 4–6 business days; North America 5–7 business days; Middle East and Africa 5–8 business days. Express courier options (DHL Express, FedEx International Priority) are available for urgent project requirements. Full export documentation — commercial invoice, packing list, certificate of conformance, and HS code declaration — is prepared for every shipment. A 12-month warranty covers manufacturing defects and functional failures under normal operating conditions.

Contact Information

📧 Email: [email protected]
📱 WhatsApp: +86 18359268345
🌐 Web: siemensplc.com
📍 Location: Xiamen, China
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