AMM22C Yokogawa Series Datasheet & Technical Manual
Manufacturer: Yokogawa
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Part Number: AMM22C
Condition:New with Original Package
Product Type: Analog Input Modules
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Country of Origin: Japan
Payment:T/T, Western Union
Shipping port: Xiamen
Warranty: 12 months
Yokogawa AMM22C MV Input Multiplexer Module
The Yokogawa AMM22C serves as the primary AMM22C MV Input Multiplexer Module utilized to execute multi-channel current and voltage signal acquisition across CENTUM VP, CS 3000, and STARDOM platforms. The hardware acts as a high-density processing interface that actively acquires raw analog measurements from interconnected transmitters, converting physical field signals into digitized values for upstream distributed control networks via integrated analog-to-digital converter circuitry.
Hardware Specifications
| Parameter | Specification |
| Model | AMM22C |
| Brand | Yokogawa |
| Origin | Japan |
| Weight | 1.8 kg |
| Dimensions | 125 x 130 x 248 mm |
| Operating Temp | -20 to +55 deg C |
| Power Consumption | 24 V DC via I/O base unit |
| Channels | 16 analog input channels |
| Signal Types | 4-20 mA DC (current), 1-5 V DC (voltage) |
| Resolution | 12-16 bit (depending on configuration) |
| Accuracy | +/-0.1% of span |
| Input Impedance | 250 Ohm (for current input) |
| Storage Temp | -40 to +70 deg C |
| Humidity | 5-95% RH non-condensing |
Process Control & DCS Instrumentation Properties
This multiplexing module incorporates robust channel-to-channel isolation parameters alongside system-side galvanic separation to shield internal processing logic from high-voltage field transients. The hardware executes parallel analog conversion routines with integrated diagnostics that constantly supervise the loops for open circuit states, localized short circuits, and out-of-bounds signal range monitoring. When embedded within an upgrade path or a dual-redundant layout, the physical terminal connections remain identical, allowing synchronous parameter handshakes without disrupting the active process variable arrays.
Frequently Asked Questions
Q: How does the module execute online hot-swap operations within active I/O bases?
A: The physical module architecture is engineered to isolate bus logic pins during removal. The hardware permits complete hot-swap replacement while the FIO base unit is powered, ensuring adjacent online module communication and loop current execution remain undisturbed.
Q: What mechanisms govern the selection between current and voltage monitoring ranges?
A: Internal hardware matching dictates the impedance profile. When configured for current loops, the card provides an input impedance of approximately 250 Ohm to convert the 4-20 mA current inputs into readable voltage thresholds before 12-16 bit digitization occurs.
Q: What diagnostics are triggered if a loop wire decays or detaches?
A: The internal microprocessors perform continuous loop continuity validation. If an input loop exhibits an open circuit fault or a short circuit condition, the module switches its diagnostic registers to a fault state, outputting error parameters to the central controller.
Field Installation Guidelines
- Mechanical Seating: Place the module vertically onto the designated DIN rail or rack-mounted structure. Engage the primary locking mechanisms fully to secure the unit against standard field vibration profiles.
- Shielding and Grounding Matrix: Terminate all instrument twisted-pair shielding strictly at the single point ground bar within the marshalling cabinet. Never ground both ends of the shield to eliminate potential ground loop noise from degrading analog accuracy.
- Wiring Conductor Isolation: Maintain a minimum physical spacing of 50 mm between low-voltage analog signal cables and high-voltage AC distribution circuits inside the containment trays.
- Terminal Block Execution: Ensure that the A, B, and C terminal configurations match the designated signal types as outlined in the wiring drawings, maintaining equivalent connection profiles when executing channel-level hardware upgrades.