IS200RAPAG1BBA Processor/Controller Mark VI System

Brand: GE

model: IS200RAPAG1BBA
System: Gas turbine system
Origin: United States

The GE IS200RAPAG1BBA turbine control module is used for various applications, including:

Electric power generation

Oil and Gas

EADS

ship

  • Email:Angela@sauldcsplc.com
  • Phone:+86 18350224834
  • WhatsApp:+8618350224834

Description

IS200RAPAG1BBA Product Introduction

GE IS200RAPAG1BBA Embedded Controller Module
 
GE IS200RAPAG1BBA Embedded Controller Module Product Details:
 
GE IS200RAPAG1BBA is an embedded controller module developed by General Electric (GE) for industrial automation and control systems.
The specific application scope of the product
will depend on the needs of system integration and industrial application, but generally speaking, this type of embedded controller module can be applied to the following categories:
 
Industrial automation: used to master and monitor various automation processes in the factory, such as production lines, machine installation,
manufacturing processes, etc.
Power industry: used for mastering and monitoring tasks in power plants and power distribution systems.
Chemical and process industries: used to monitor and grasp the production process in chemical plants, refineries, and other process industries.
Manufacturing industry: can be used to master and optimize the production process, ensuring the effectiveness of labor and product quality.
Transportation: The application in the traffic signal system, railway system, or other traffic control systems.
Construction automation: used for automation systems in construction, such as building management systems, intelligent construction control systems, etc.
Fire disposal punishment and situation control: application in the pollution fire disposal punishment plant, fire disposal punishment measures, and situation
monitoring and control system.
These are just some potential application areas, in fact, there can be more application scenarios, depending on the effectiveness and personality
of the controller module, as well as the specific needs of the customer.
 
 
General Electric has designed the processor/controller for the IS200RAPAG1BBA Mark VIe system. The Mark VI platform is General Electric”s Speedtronic range,
designed to manage gas or steam turbines.
It has a CIMPLICITY graphical interface and an HMI with software suitable for running heavy-duty turbines.
 
 
This IS200RAPAG1BBA is a single box assembly with a front panel for communication connections, two screws installed on the rear edge, and three grille holes for ventilation. The controller is designed to
be installed at the bottom of the cabinet. For a small setup that is easy to serve a triple redundant system, up to three components can be installed side by side.
 
IS200RAPAG1BBA uses the QNX operating system. It has a 667MHz Freescale 8349 processor. This board is powered by a 12 watt, 18-36 V DC power supply. Even at its maximum rated temperature, t
he board can operate within a temperature range of 0 to 65 degrees Celsius without the need for a fan for cooling. NFPA Class 1. This board can be used for two applications.
Contact Us
 
Mobile phone: 18350224834
 
E-mail: sauldcsplc@outlook.com
 
WhatsApp:+86 18350224834

3.2 Upgrading of regulators and control systemsFor the upgrade of the regulator, the original excitation control system cabinet structure is retained, and the entire system is upgraded by upgrading the board card. Among them, the CoB main board, MUB measurement board, F10 input and output board, and LCP local control panel were replaced with the PEC800 controller, CCM measurement control interface board, CIo comprehensive input and output board, and ECT excitation system control terminal in the Unitrol6800 system respectively.For the upgrade of the power cabinet, since the power of the excitation system will not change during the transformation, the N-1 redundant configuration of the five UNL3300 rectifier bridges in the original system has not been changed, but the control and measurement parts of the rectifier bridge have been upgraded. And the fan circuit and power control part of the rectifier bridge have been upgraded. Among them, the signal interface board (PsI) was changed to the rectifier bridge signal interface board (CsI), the circuit breaker of the rectifier bridge panel was changed from CDP to CCP, and the rectifier bridge control interface board (CIN) was changed to the rectifier bridge control board (CCI).For the upgrade of the demagnetization cabinet, the switch control part was mainly upgraded. By adding a CIo board to the switch cabinet and installing a special power distributor and relay to control the demagnetization switch, the original PsI board was removed. Secondly, in the transformation of the current detection part, the Hall element in the Unitrol5000 system was replaced by the current relay of the Unitrol6800 system.For the upgrade of the excitation current measurement part, the rectifier side Hall element of the rectifier bridge was replaced with an AC side CT. Relying on the linearity of the CT, the current sharing coefficient of the excitation system was increased to 0.98, so that the role of the rectifier bridge can be fully exerted in the system. . For the upgrade of the fan power supply circuit of the rectifier cabinet, each power cabinet can independently control the power supply of the fans in the cabinet to avoid the problem that if the power circuit relay fails in the original system, all the fans will not work.3.3Unitrol6800 functional logic configuration pointsThe Unitrol6800 system adds PT slow-blow judgment logic, and defines the actions of PT slow-blow as alarm and channel switching. The system PT slow-blow logic pressure difference is 2% to ensure sufficient sensitivity. Since some external reasons will cause the sequential increase or decrease of magnetic commands, a special increase or decrease magnetic contact adhesion judgment logic has been added to effectively lock out external causes. At the same time, it can avoid the jitter of the relay on the increase or decrease magnetic circuit and ensure the stability of the circuit. The excitation temperature detection is used to alarm in the system, but it cannot control the system tripping. The tripping intermediate relays K291 and K292 use high-power (≥5w) relays to avoid the problem of tripping of the excitation system due to signal interference.4 Problems discovered during the transformation and their solutionsAfter upgrading the excitation system from Unitrol5000 to Unitrol6800, since the partition between the regulator cabinets of the original excitation switch cabinet was removed and the mounting backplate of the regulator was moved forward, the hot air from the excitation switch cabinet will enter the excitation regulator cabinet, causing the cabinet to be damaged. The internal temperature rises, and sometimes the temperature can even reach 45°C. In order to avoid problems caused by high temperatures, partitions were added to reduce the temperature inside the switch cabinet and control the temperature to 30°C.During the maintenance process, if the grounding carbon brush of the generator is removed, it is easy to cause the rotor grounding relay isoLR275 to malfunction. Therefore, during maintenance, the power supply of the grounding relay will be disconnected and the large shaft in the magnetic cabinet will be short-circuited.5 ConclusionThrough the transformation of the excitation system, our company not only meets the needs of increasing the generator capacity, but also eliminates the safety hazards of ARCnet failure or flat cable damage in the excitation system of the unit. It can find the fault point during maintenance and prevent the unit from non-stop. event. The new board used in the new excitation system has modular characteristics, which can make online maintenance more convenient, and because the boards use trigger pulse generation communication and optical fiber redundant communication, the stability of information transmission is ensured. Avoid communication failures and damage to pulse lines.

DS200TCQAG1A High performance processor module GE
IS2020RKPSG From General Electric in the United States
IS215WEPAH2BA Gas turbine system Mark VI
IS210AEBIH1B From General Electric in the United States
IS400TCASH1AEC GE power control board
IS220PPRFH1A Gas turbine system Mark VI
IS200RCSAG1ABB Gas turbine system Mark VI
IS200JPDMG1A Gas turbine system Mark VI
DS2020FEXAG4 GE power control board
IS410TRLYS2F Processor/Controller Mark VI System
IS200ERIOH1ACB GE power control board
DS200DSPCH1ADA GE power control board
IS215UCCAM03A I/O excitation redundant module GE
IS230STCIH6A Gas turbine system Mark VI
IS200EPCTG1A From General Electric in the United States
IS200TTPWH1A I/O excitation redundant module GE
IS200SSCAH2AGD High performance processor module GE
DS200RTBAG2AGL High performance processor module GE
IS220PDIOH1B GE power control board
IS200TVIBH2BCC GE power control board
IS200ICIAH1ABB Processor/Controller Mark VI System
IS200EISBH1A GE power control board
IS400AEBMH1AJD Gas turbine system Mark VI
IS200TDBSH2AAA Gas turbine system Mark VI
IS215UCVEH2AB From General Electric in the United States
DS200KLDBG1ABC Gas turbine system Mark VI
IS200TSVCH2AED Gas turbine system Mark VI
IS210AEBIH1BED Processor/Controller Mark VI System
IS230STAIH2A Processor/Controller Mark VI System
DS200SLCCG3A Processor/Controller Mark VI System
DS200FCGDH1BBA High performance processor module GE
DS200RTBAG3A From General Electric in the United States
IS200TNH1A From General Electric in the United States
IS200DSPXH1DBD From General Electric in the United States
IS220PVIBH1A Processor/Controller Mark VI System
IS200STCIH2A From General Electric in the United States
IS420UCSBH4A I/O excitation redundant module GE
IS215UCVEM09A I/O excitation redundant module GE
IS420USBH1A From General Electric in the United States
IS200EPDMG1ABA Gas turbine system Mark VI
IS215VCMIH2CC Processor/Controller Mark VI System
IS200ERIOH1AAA I/O excitation redundant module GE
DS200QTBAG1ADC Gas turbine system Mark VI
IS200EAUXH1A High performance processor module GE
IS210AEDBH4A Gas turbine system Mark VI
IS215VPROH1BD From General Electric in the United States
IS200ACLEH1A From General Electric in the United States
IS200TBA1H1C GE power control board
DS3800HRCA1D1B GE power control board
IS200TVBAH2ACC Processor/Controller Mark VI System
DS3800HFXA1D1B High performance processor module GE
IS415UCVGH1A Gas turbine system Mark VI
IS410JPDHG1A Gas turbine system Mark VI
IS400WPDFH1A From General Electric in the United States
IS220PDIOH1B Gas turbine system Mark VI
IS200BPIHH1A High performance processor module GE
DS200TCEBG1ACD GE power control board
DS3800DFXA1B1C From General Electric in the United States
IS210AEBIH3BED I/O excitation redundant module GE
IS200TRTDH1B Gas turbine system Mark VI
IS215PCMIH1A High performance processor module GE
IS220PPRFH1B Gas turbine system Mark VI
IS420UCECH1B High performance processor module GE
DS200FCRRG1A From General Electric in the United States
DS200SDCCG1AHD I/O excitation redundant module GE
IS210MVRAH2A Gas turbine system Mark VI
IS200EXHSG1A GE power control board
IS220PHRAH1BD GE power control board
IS200IGPAG2AED From General Electric in the United States