Description
GE General Electric Technical Specifications: IS200HSLAH2ADE
In this example, two of the Output module’s output points drive solenoids that control the
advance and retract travel IS200HSLAH2ADE of a hydraulic cylinder. The solenoid manufacturer’s data sheet
shows that each solenoid draws 1.0 Amp. The cylinder advances and retracts once every 60
seconds that the machine is cycling. It takes 6 seconds to advance and 6 seconds to retract.
Since the cylinder takes equal time to advance and retract, both solenoids are on for equal
IS200HSLAH2ADE lengths of time: 6 seconds out of every 60 seconds, which is 10% of the time. Therefore, since
both solenoids have equal current draws and on–times, our single calculation can be applied to
both outputs.
brand | Product Name | Product model | Order No |
GE Fanuc | Module card | IS200HSLAH2ADE | nothing |
Place of Origin | Marketable land | Imported or not | defects liability period |
Europe and America | Nationwide and overseas | yes | a year |
Place of shipment | Delivery method | How to use | Applicable industries |
Xiamen | Shunfeng Express | Commissioning and installation | Power Plant Steel Plant Cement Plant Shipboard Papermaking |
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A Discrete Input or Combination Module requires two calculations, one for the module’s
signal–level circuits, which was already done in Step 1, and one for the input circuits. Note that
the power dissipated by the input circuits comes from a separate power source, so are not
included in the figure used to calculate PLC power supply dissipation in Step 2. We will
assume that all input circuit power delivered to these modules is eventually dissipated as heat.
The IS200HSLAH2ADE procedure is (note that AC input modules have the additonal power factor constant in
their formula):
Find the value for the Input Current in the “Specifications” table for your Input or
Combination I/O module in Chapters 6 or 8.
For DC input modules, multiply the input voltage times the current value times the
estimated percent of on–time to arrive at average power dissipation for that DC input.
For AC input modules, multiply the input voltage times the current value times the
estimated percent of on–time times 0.10 (power factor constant) to arrive at average power
dissipation for that AC input.
Repeat for all inputs on the module. To save time, you could determine if several inputs
were similar in current draw and on–time so that you would only have to make their
calculation once.
Repeat these calculations for all Discrete Input modules in the rack.
Discrete AC Input Module Example:
(Note the use of the power factor constant in the calculation for this AC input module.
The power factor constant is only used for AC input module calculations.)
The “Specifications” table for the IC693MDL240 16–Point Discrete 120 VAC Input Module in
Chapter 6 gives the following information:
Input Current: 12 mA (typical) at rated voltage
Use this value for all of the input calculations for this module.
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The maximum number of 8-Channel Analog Current/Voltage Output modules that can be installed
in a system are:
4 in a system using CPU Models 311, 313, or 323
8 in a system using CPU Model 331
32 in a system using CPU Models 340 and 341
64 in a system using CPU Models 350 – 364
Other Configuration Considerations
When planning the module configuration for your application you must also consider the load
capacity of the installed power supply and the total load requirements of all modules that are
installed in the baseplate.
Refer to Chapter 1 in this manual for details on power supply, baseplate, and module load
requirements. The following table lists the specifications for this module. Note that test conditions,
unless otherwise noted, are: VUSER = 24 VDC at an ambient temperature of 25 C (77 F)
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