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GE IS210DSVOH1B CARD ASSEMBLY DSVO
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GE IS210DSVOH1B CARD ASSEMBLY DSVO

+86-18144100983
kongjiangauto@163.com
wind, petroleum, chemical, natural gas, Marine, mining, aviation, electronics, steel, nuclear power, electric power, coking, air separation and so on
PLC, DCS, servo, analog, Ethernet, digital, redundant module, tension system, excitation, generator management, human-machine interface, detection card, sensor, AC drive, etc
IS210DSVOH1B
U.S.$10055.00
U.S.$4548.00
Weight:0.000KG
Quantity:
(Inventory: 5)
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Product parameters
  • Tell:+86-18144100983
  • email:kongjiangauto@163.com
  • Application:wind/ petroleum/ chemical/ natural gas/ Marine/ mining/ aviation/ electronics/ steel/ nuclear power/ electric power/ coking/ air separation and so on
  • Series:PLC/ DCS/ servo/ analog/ Ethernet/ digital/ redundant module/ tension system/ excitation/ generator management/ human-machine interface/ detection card/ sensor/ AC drive/ etc
Feature
IS210DSVOH1B

Part Number IS210DSVOH1B Manufacturer General Electric Country of Manufacture As Per GE Manufacturing Policy Series Mark VI/VIe Function Module Availability In StockIS210DSVOH1B is a Servo Terminal Board developed by GE. It is part of Mark VI control system. The board represents a compact and versatile servo terminal board specifically engineered for DIN-rail mounting, catering to diverse industrial applications. Offering a range of features and capabilities, the board stands as a cornerstone component within servo control systems, facilitating precise positioning and flow measurement functionalities.

KEY FEATURES

Two servo outputs enable precise control over servo mechanisms, ensuring accurate and responsive motion control. Input/output (I/O) interfaces for six LVDT (Linear Variable Differential Transformer) position sensors provide precise position feedback, enhancing control accuracy and system performance. Two active pulse rate inputs cater to flow measurement applications, providing real-time data acquisition for fluid dynamics analysis and control. Jumper-selectable servo coil currents ranging from 10 to 120 mA offer flexibility in adapting to various servo motor specifications and operational requirements.

PRODUCT ATTRIBUTES

Connection and Compatibility: Seamless integration with the VSVO processor board is facilitated through a standardized 37-pin cable interface, ensuring compatibility with existing system configurations.

This cable interface aligns with those utilized on larger TSVO boards, streamlining installation and maintenance procedures. Versatile Mounting Options: The board's compact design allows for efficient utilization of space, with the flexibility to stack terminal boards vertically on DIN-rails. This space-saving configuration optimizes cabinet space usage, ensuring efficient layout and organization within industrial control systems. Scalability and Configuration Options: For applications requiring expanded functionality, it supports the connection of multiple boards to the VSVO processor board, accommodating diverse system requirements. However, it's important to note that only the simplex version is currently available, providing streamlined functionality tailored to specific application needs. With its compact design, comprehensive features, and seamless compatibility with VSVO processor boards, it offers unparalleled performance and flexibility in industrial automation environments. Whether used for precise motion control or flow measurement tasks, the board stands as a trusted component for enhancing operational efficiency and system reliability. INSTALLATION Mounting the Holder: The board is first inserted into a plastic holder specifically designed for DIN-rail mounting. This holder securely mounts onto the DIN-rail, providing stability and ease of access for installation and maintenance tasks.

Wiring Servo I/O: The servo input/output (I/O) connections are wired directly to the Euro-Block type terminal block affixed to the board. Depending on the specific model variant, the terminal block may feature either 36 terminals (DSVOH1A) or 42 terminals (DSVOH1B, H2B). Typically, #18 AWG shielded twisted pair wiring is used for these connections, ensuring reliable signal transmission and minimizing electromagnetic interference. Ground Connection: Grounding is crucial for maintaining signal integrity and electrical safety within the system. The board features six screws dedicated to the SCOM (ground) connection. It's essential to ensure that these ground connections are made with the shortest distance possible to minimize the risk of interference and optimize system performance.

FAULT DETECTION

Servo Current Out of Limits or Not Responding: Check servo motor connections and ensure they are securely connected to the board. Verify servo coil current settings using jumper configurations and ensure they align with the motor specifications. Monitor servo output signals and compare them with expected values to identify abnormalities. Inspect the servo motor for mechanical issues or binding that may impede its movement. Conduct a functional test to validate servo motor operation under load conditions. Excitation Out of Range: / Verify power supply connections to the board and ensure adequate voltage levels are maintained.

Check wiring connections to the sensors and ensure they are securely terminated. Measure excitation voltage levels at the terminals and compare them with specified values. Inspect sensor cables for damage or wear that may affect signal integrity. Calibrate sensors as per manufacturer recommendations to ensure accurate position feedback. LVDT Feedback Out of Limits: Monitor feedback signals and compare them with expected position values. Verify wiring connections and ensure proper termination to the board. Check for mechanical obstructions or misalignments affecting sensor performance. Inspect signal conditioning circuits and ensure they are functioning correctly. Recalibrate sensors and adjust signal processing parameters as needed. Failed ID Chip: Verify ID chip connections and ensure they are securely seated on the board. Check for physical damage or corrosion on the ID chip and surrounding components. Replace the ID chip with a compatible spare to determine if the fault persists. Inspect communication interfaces and connectors for damage or contamination. Reset the board and restart the system to re-establish communication.

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