ABB XVC767AE102 3BHB007209R0102 Power Servo Control Module
ABB XVC767AE102 3BHB007209R0102 Power Servo Control Module
ABB XVC767AE102 3BHB007209R0102 Power Servo Control Module
/ 3

ABB XVC767AE102 3BHB007209R0102 Power Servo Control Module

  • Manufacturer: ABB

  • Part Number: XVC767AE102 3BHB007209R0102

  • Condition:New with Original Package

  • Product Type: Servo Drive Modules

  • Country of Origin: Sweden

  • Payment:T/T, Western Union

  • Shipping port: Xiamen

  • Warranty: 12 months

ABB XVC767AE102 3BHB007209R0102 Servo Drive Module

Configured for regulated DC power distribution and closed-loop synchronous motor control in Automate platforms, the ABB XVC767AE102 (XVC767 Servo Drive / Power Supply Module) provides direct physical/electrical execution. Under order code 3BHB007209R0102, the hardware executes pulse-width modulation tracking, processes differential incremental encoder feedback waveforms, and controls phase current limits to drive permanent magnet AC servo and brushless DC motor systems.

Hardware Specifications

Parameter Specification
Model XVC767AE102 (Order Code: 3BHB007209R0102)
Brand ABB
Origin Germany
Weight 0.1 kg
Dimensions 170 mm x 100 mm x 40 mm
Operating Temp -10 deg C to +50 deg C
Storage Temp -25 deg C to +70 deg C
Power Consumption 200 W typical output capacity
Input Voltage Range 100-240 V AC (Power module) / 24-48 V DC (Servo drive variant)
Output Voltage / Current 24 V DC / 8.3 A regulated DC bus
Servo Drive Output 3 A continuous per phase, 6 A peak per phase
Motor Feedback Support TTL / HTL incremental encoder (A/B/Z signals)
Communication Protocols Profinet, Modbus, discrete analog/digital I/O channels
Protection Rating IP65 (dust and water resistant)

Industrial Control & Network Determinism Profiles

The processing unit coordinates digital logic routing and maintains synchronous axis parameters across Profinet / EtherNet/IP deterministic networks. The internal operating kernel dictates backplane bus communication velocity Licences to manage decentralized cluster modules while continuously enforcing structural I/O density scaling profiles. During the startup configuration phase, the control board runs pre-execution check loops to verify firmware flash compatibility parameters across all attached local expansion components and active communications couplers before enabling the primary servo power output loops.

Frequently Asked Questions

Q: How does the XVC767AE102 handle firmware flash compatibility errors when configured alongside older AC800M system modules?

A: The main microcontroller executes an initialization scan upon boot; any detected revision mismatch across the interface line trips the watchdog timer, disables phase excitation, and records a fault code to the Modbus diagnostics loop.

Q: What are the restrictions regarding the maximum I/O density scaling on the local power rails under peak load?

A: The layout configuration restricts expansion based on total current draw; engineers must balance the peripheral layout so that cumulative milliamps do not exceed the 8.3 A output limit of the integrated 24 V DC supply section.

Q: Can the internal power section survive a sustained short-circuit across the servo phase terminals?

A: The electronic tracking logic monitors individual phase outputs; a direct short-circuit trips the overcurrent and short-circuit protection features inside the module, dropping output voltage levels to prevent thermal destruction.

Field Installation Guidelines

Mount the IP65-rated housing securely onto the structural mounting panel or standard DIN-rail matrix, confirming that all locking mechanisms engage fully to prevent high-frequency mechanical vibration from weakening terminal connections. Ensure a direct metal-to-metal contact path between the module chassis and the grounded enclosure backplane to minimize inductive noise interference.

Installation technicians must route all low-voltage encoder lines, digital signals, and Profinet communication lines through dedicated, grounded metallic conduits separate from high-power 240 V AC supply drops and three-phase motor outputs. Shield lines must be unbraided and bonded directly to the primary chassis ground bar at a single termination point to prevent ground loops. Verify that adequate structural spacing exists around the assembly to permit unrestricted passive heat dissipation, maintaining ambient temperatures within the required -10 deg C to +50 deg C operational envelope before initializing system power.

You may also like