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GE VPROH2B IS215VPROH2BC Emergency Turbine Protection Card

GE VPROH2B IS215VPROH2BC Emergency Turbine Protection Card photo-1
GE VPROH2B IS215VPROH2BC Emergency Turbine Protection Card photo-2
Negotiable MOQ: 1 Piece (Price negotiable depending on order volume and customization)
Key Specifications
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Material:
Other, Global universal model
Condition:
Other, Global universal model
Task:
Other, Global universal model
Payment & Shipping
Payment Methods:
Port of Shipment:
China
Delivery Detail:
Delivery time depends on order quantity.
Material Other, Global universal model
Condition Other, Global universal model
Task Other, Global universal model
Mathematical Model Other, Global universal model
Signal Other, Global universal model
Customized Non-Customized
Structure Other, Global universal model
Power Supply 24V DC
Operating Temperature 0℃ - 45℃

1. Overview


The GE VPROH2B IS215VPROH2BC is a steam turbine protection board, serving as a key component of GE's Mark VI product series. It is mainly applied in GE's gas and steam turbine control systems. This protection board undertakes the important responsibility of ensuring the safe and stable operation of steam turbines and plays a crucial role in the fields of industrial power generation, energy production, and more.


Its core function focuses on providing Emergency Overspeed (EOS) protection for steam turbines. During the operation of the steam turbine, it continuously monitors the turbine's speed. Once the speed exceeds the pre-set safety limit, it will quickly trigger an emergency shutdown command, promptly preventing severe damage to the equipment or various safety accidents that may be caused by overspeed operation, thereby greatly reducing potential risks.


The IS215VPROH2BC adopts a unique redundant design, composed of three redundant VPRO boards. This design ensures extremely high reliability—even if one of the boards malfunctions, the other two can still work normally, continuously providing reliable protection for the steam turbine. This effectively enhances the stability and safety of the entire system's operation and provides strong support for the continuity of industrial production.


IS215VPROH1BD (1)


2. Technical Parameters

  • Power Supply Parameters: The rated operating voltage is 125V DC. This standard industrial DC voltage is compatible with the power supply systems of most power plants, energy stations, and other sites. It provides sufficient power for the stable operation of the protection board, ensuring reliable performance under various working conditions.
  • Signal Monitoring: Six passive magnetic speed sensors are used to accurately monitor the speed of the steam turbine. These sensors feature high sensitivity and can capture subtle changes in the turbine's speed. Meanwhile, the board is also equipped with thermocouple and analog input interfaces for real-time monitoring of key parameters such as the gas turbine exhaust temperature. The analog input range can be flexibly configured according to actual application scenarios, ensuring comprehensive perception of the equipment's operating status.

  • Control Logic: Through complex and precise control logic and algorithms, it realizes accurate speed regulation and overspeed protection of the steam turbine. It has an extremely fast response speed—after detecting an abnormal situation, it can respond within milliseconds and execute corresponding control actions to ensure equipment safety.
  • Communication Capability: It is equipped with an Ethernet connection interface and supports the IONet communication protocol, enabling efficient data interaction with control modules and other system components. The maximum communication rate can reach 10 Mbits/sec, which ensures the timeliness and stability of data transmission. This facilitates the real-time transmission of turbine operating data, alarm information, etc., to the monitoring center, and also allows it to receive commands from the upper-level control system to achieve remote monitoring and management.

  • Operating Environment: The operating temperature range is 0℃ - 45℃, which can adapt to temperature changes in common industrial environments. The relative humidity requirement is 10% - 95% (non-condensing), ensuring stable operation even in humid environments. In terms of protection, although the protection level is not explicitly specified, Surface Mount Technology (SMT) is adopted, which enhances the reliability of the circuit board and resists erosion from dust, moisture, and other substances to a certain extent. It can be installed in environments with relatively good protection, such as indoor control cabinets.

  • Physical Dimensions: It adopts a 6U high VME board design with a width of 0.787 inches (approximately 19.9mm). Its compact size facilitates integration into various control cabinets and system frameworks, saving installation space and contributing to the miniaturization and integrated layout of the system.
  • Memory Configuration: It is equipped with 16MB of DRAM memory, which provides sufficient space for data processing, algorithm operation, and parameter storage. This ensures the smooth operation of the equipment during complex calculations and large-volume data interaction, preventing issues such as lagging and data loss caused by insufficient memory.


3. Functional Features

  • Excellent Overspeed Protection Performance: Relying on high-precision speed sensors and advanced control algorithms, the GE VPROH2B IS215VPROH2BC can conduct real-time and accurate monitoring and analysis of the steam turbine's speed. Once the speed approaches or exceeds the preset threshold, it immediately triggers the emergency shutdown process. By controlling relevant actuators (such as trip solenoid valves), it quickly cuts off the turbine's power source, effectively avoiding severe accidents such as blade breakage and shaft system damage caused by overspeed, and protecting the safety of equipment and on-site personnel.

  • Reliable Redundant Design: The design of three redundant VPRO boards greatly improves the fault tolerance of the system. During operation, the three boards work simultaneously and mutually verify data and status. When one board malfunctions, the system can automatically identify the fault and switch to the normal boards to continue working without manual intervention. This ensures uninterrupted protection functions, significantly improving the reliability and availability of the system and reducing the risk of protection failure due to hardware faults.

  • Comprehensive Parameter Monitoring and Control: In addition to speed monitoring, this protection board can also collect and analyze key parameters such as gas turbine exhaust temperature and pressure in real-time through thermocouples and analog input interfaces. Based on these parameters and combined with pre-set internal control strategies, it can optimize and adjust the operating status of the steam turbine—for example, controlling the speed and temperature by adjusting the air intake volume. This ensures that the steam turbine always operates under safe and efficient working conditions, extending the service life of the equipment.

  • Convenient Communication and System Integration: Supported by the Ethernet interface and IONet communication protocol, the GE VPROH2B IS215VPROH2BC can be easily integrated into the entire industrial control system network. It can achieve seamless connection with upper-level monitoring systems and other control modules, upload equipment operating data and alarm information in real-time, and receive remote control commands. This allows operation and maintenance personnel to conduct comprehensive monitoring and management of the steam turbine in the monitoring center, improving the automation level and management efficiency of the production process.

  • Good Stability and Adaptability: Adopting industrial-grade components and rigorous circuit design, this protection board has strong anti-interference capabilities and can operate stably in complex electromagnetic environments. At the same time, it has a wide adaptation range for operating temperature and humidity, enabling it to adapt to industrial application scenarios in different regions and under different working conditions—whether in high-temperature tropical areas, cold northern regions, or humid coastal factories, it can reliably fulfill the steam turbine protection task.


IS215VPROH1BD (4)


4. Common Faults and Troubleshooting Methods


Fault 1: False Operation of Overspeed Protection

  • Symptom: The actual operating speed of the steam turbine is normal, but the GE VPROH2B IS215VPROH2BC frequently triggers overspeed protection, leading to unnecessary emergency shutdown of the steam turbine and affecting production continuity.
  • Possible Causes:
    • Malfunction of the speed sensor (e.g., the sensor probe is contaminated or damaged, resulting in incorrect speed signal output);

    • Fault in the speed measurement circuit inside the protection board, causing incorrect processing of the sensor signal;

    • Unreasonable setting of the overspeed protection threshold (the threshold is too sensitive, and normal speed fluctuations trigger the protection).

  • Troubleshooting Methods:
  1. First, inspect the speed sensor: Clean the sensor probe to remove any oil, dust, or other impurities. If the probe is damaged, replace it with a new one in a timely manner.

  2. Then, use professional testing equipment to inspect the speed measurement circuit inside the protection board, checking for damaged components, loose solder joints, or other issues. Repair or replace the relevant components if any problems are found.

  3. Finally, re-evaluate the normal speed fluctuation range of the steam turbine. Combined with the equipment's operating characteristics, reasonably adjust the overspeed protection threshold to avoid false operations caused by improper threshold settings.


Fault 2: Communication Fault

  • Symptom: The GE VPROH2B IS215VPROH2BC cannot communicate normally with the monitoring system or other control modules. The monitoring center cannot obtain real-time operating data of the steam turbine, nor can it perform remote control on the turbine.
  • Possible Causes:
    • Damage or looseness of the Ethernet communication cable, leading to interruption of the physical connection;

    • Fault of the communication interface module (e.g., damaged interface chip, short circuit in the interface circuit);

    • Incorrect setting of communication parameters (e.g., IP address, subnet mask, communication protocol) that do not match those of other equipment.

  • Troubleshooting Methods:
  1. Carefully inspect the communication cable: Check for damage or breaks, and re-plug the interfaces at both ends of the cable to ensure a secure connection.

  2. If the cable is normal, use tools such as a multimeter to test the electrical performance of the communication interface module and determine if there is a fault. Replace the communication interface module if necessary.

  3. Verify the communication parameters to ensure they are consistent with those of the monitoring system and other control modules. Reconfigure the parameters if necessary and conduct communication tests until normal communication is restored.


Fault 3: Board Hardware Fault

  • Symptom: The indicator lights of the protection board flash abnormally or do not light up; some functions fail (e.g., inability to monitor certain parameters normally or no response to abnormal situations); in severe cases, the entire protection board fails to work.
  • Possible Causes:
    • Aging or damage of components on the board due to long-term operation (e.g., capacitor leakage, resistor burnout, chip failure);

    • Physical damage to the board caused by harsh industrial site conditions (e.g., high temperature, humidity, strong electromagnetic interference);

    • Abnormal power supply (voltage surges or dips) that may damage the power circuit and other sensitive components on the board.

  • Troubleshooting Methods:
  1. For aging or damaged components, use professional electronic repair tools (such as a hot air gun, soldering iron) to replace them.

  2. Improve the working environment of the board: Strengthen heat dissipation measures, install dehumidification equipment, and perform electromagnetic shielding on the control cabinet to reduce the impact of environmental factors on the board.

  3. Inspect the power supply system: Use a regulated power supply to ensure the input voltage is stably maintained within the range of 125V DC ±5%. If the power circuit is damaged, repair or replace the power module. After replacing components or repairing the circuit, conduct a comprehensive functional test on the protection board to ensure it resumes normal operation.


Fault 4: Abnormal Temperature Monitoring

  • Symptom: The gas turbine exhaust temperature displayed by the GE VPROH2B IS215VPROH2BC has a large deviation from the actual temperature, or the temperature data fluctuates abnormally, affecting the accurate judgment of the steam turbine's operating status.
  • Possible Causes:
    • Thermocouple fault (e.g., broken thermocouple wire, poor contact), leading to interruption or inaccuracy of temperature signal transmission;

    • Fault in the temperature acquisition circuit on the protection board, causing incorrect processing of the thermocouple signal;

    • Incorrect setting of temperature compensation parameters, which are not calibrated according to actual working conditions.

  • Troubleshooting Methods:
  1. Inspect the thermocouple connection to ensure secure wiring. If the thermocouple wire is broken, replace the thermocouple with a new one.

  2. Use equipment such as an oscilloscope to test the temperature acquisition circuit on the protection board, locate and repair the fault point.

  3. Re-calibrate the temperature compensation parameters: Compare the actual measured temperature with the temperature displayed by the protection board, and adjust the compensation parameters according to the deviation to ensure accurate and reliable temperature display.

Product Tags: VPROH2B , IS215VPROH2BC

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Verified Business License
Business Type
Trading Company
Year Established
2014
Factory Size
1,000-3,000 square meters
Product Certifications
SA8000