General electric IS200ESELH1AAA Exciter Collector Board

General electric IS200ESELH1A 
General electric IS200ESELH1A 
General electric IS200ESELH1A 

IS200ESELH1AAA Product datasheet 

Model number:

IS200ESELH1AAA

 

Module Type:

Exciter Collector Board

Manufacture:

GE

 

Condition:

Brand New

Range of Product:

EX2100

 

Lead time:

In Stock

Weight:

0.22 kg

 

HS CODE:

8537101190

Dimension:

2.1x18.6x26.3cm

 

MOQ:

1

Product Origin:

USA

 

System:

DCS

Discontinued on:

Active

 

Communication Service:

Ethernet router

 

IS200ESELH1AAA Functional Description    


The IS200ESELH1AAA is an Exciter Collector Board used within the Mark VI Turbine Control System. This board receives logic-level gate pulses from an EMIO board, which is a VME board responsible for managing the inputs and outputs of terminal boards. It can receive up to six gate pulse signals, which are then sent to the EGPA exciter gate pulse amplifier board located in a separate cabinet. In a simplex system, one IS200ESELH1AAA is used, while a TMR system requires one board driven by M1 and another connected to M2.

 

The GE Speedtronic EX2100 Excitation Control IS200ESELH1A  features a narrow attached faceplate with three LED indicators near the top: power, active, and gating. The faceplate is marked with the board's ID and the GE logo, positioned on clips that secure the board within the rack. The board also includes two backplane connectors, and its surface is covered with over 200 resistors, numerous capacitors, transistors, diodes, and integrated circuits, all of which contribute to the board's voltage suppression and limitation strategy.

 

Although there is limited original documentation available online for the GE Speetronic MKVI IS200ESELH1AAA, its specifications and components can be identified through visual inspection. The IS200ESELH1A EX2100 Power Distribution Module functional product number, designed by General Electric, indirectly indicates key hardware qualities, providing further insight into the Exciter Collector Board’s design and functionality within the larger Mark VI Turbine Control System series. This product plays a vital role in ensuring the stability and efficiency of turbine control operations.

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GE Gas Turbine Control System


The GE Mark VI system is a comprehensive control solution used primarily in power generation and other industrial applications. It controls, protects, and monitors gas and steam turbines, generators, and auxiliary systems.

The SPEEDTRONIC™ Mark VI turbine control is the current state-of-the-art control for GE turbines that have a heritage of more than 30 years of successful operation. It is designed as a complete integrated control, protection, and monitoring system for generator and mechanical drive applications of gas and steam turbines. It is also an ideal platform for integrating all power island and balance-of-plant controls. Hardware and software are designed with close coordination between GE’s turbine design engineering and controls engineering to insure that your control system provides the optimum turbine performance and you receive a true “system” solution. With Mark VI, you receive the benefits of GE’s unmatched experience with an advanced turbine control platform. 

 

The heart of the control system is the Control Module, which is available in either a 13- or 21- slot standard VME card rack. Inputs are received by the Control Module through termination boards with either barrier or box-type terminal blocks and passive signal conditioning. Each I/O card contains a TMS320C32 DSP processor to digitally filter the data before conversion to 32 bit IEEE-854 floating point format. The data is then placed in dual port memory that is accessible by the on-board C32 DSP on one side and the VME bus on the other. In addition to the I/O cards, the Control Module contains an “internal” communication card, a main processor card, and sometimes a flash disk card. Each card takes one slot except for the main processor that takes two slots. Cards are manufactured with surface-mounted technology and conformal coated per IPC-CC830. I/O data is transmitted on the VME backplane between the I/O cards and the VCMI card located in slot 1. The VCMI is used for “internal” communications between:

■ I/O cards that are contained within its card rack

■ I/O cards that may be contained in expansion I/O racks called Interface Modules

■ I/O in backup <P> Protection Modules

■ I/O in other Control Modules used in triple redundant control configurations

 

■ The main processor card


Triple Redundancy

Mark VI control systems are available in Simplex and Triple Redundant forms for small applications and large integrated systems with control ranging from a single module to many distributed modules. The name Triple Module Redundant (TMR) is derived from the basic architecture with three completely separate and independent Control Modules, power supplies, and IONets. Mark VI is the third generation of triple redundant control systems that were pioneered by GE in 1983. System throughput enables operation of up to nine, 21-slot VME racks of I/O cards at 40 ms including voting the data. Inputs are voted in software in a scheme called Software Implemented Fault Tolerance (SIFT). The VCMI card in each Control Module receives inputs from the Control Module back-plane and other modules via “its own” IONet. Data from the VCMI cards in each of the three Control Modules is then exchanged and voted prior to transmitting the data to the main processor cards for execution of the application software. Output voting is extended to the turbine with three coil servos for control valves and 2 out of 3 relays for critical outputs such as hydraulic trip solenoids. Other forms of output voting are available, including a median select of 4-20ma outputs for process control and 0- 200ma outputs for positioners. Sensor interface for TMR controls can be either single, dual, triple redundant, or combinations of redundancy levels. The TMR architecture supports riding through a single point failure in the electronics and repair of the defective card or module while the process is running. Adding sensor redundancy increases the fault tolerance of the overall “system.” Another TMR feature is the ability to distinguish between field sensor faults and internal electronics faults. Diagnostics continuously monitor the 3 sets of input electronics and alarms any discrepancies between them as an internal fault versus a sensor fault. In addition, all three main processors

continue to execute the correct “voted” input data,More info pls check GEH-6005 datasheet

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