AI

The **SSR-RACK24** is a professional-grade interface board designed to house and control up to 24 individual Solid State Relays (SSRs). It acts as a bridge between low-power control logic (like a PLC, DAQ board, or Microcontroller) and high-power industrial loads.
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## 1. Core Component Specifications
The rack itself is a passive PCB interface, but its performance depends on the modules installed. It typically supports **G5 series** or standard **SIP-style** SSRs.
| Feature | Specification (Typical) |
| :--- | :--- |
| **Number of Channels** | 24 Independent Channels |
| **Logic Voltage** | 5V DC (Common) or 12V/24V (Version dependent) |
| **Output Type** | AC (Triac/SCR) or DC (Mosfet/Transistor) |
| **Input Connection** | 50-pin Header (Compatible with OPTO-22 standard) |
| **Mounting** | DIN-rail or Standoffs |
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## 2. Key Electronic Sections
### A. The Input Interface (Control Side)
* **50-Pin Header:** Most SSR-RACK24 units use a standard 50-pin ribbon cable connector. This is pin-compatible with many industrial data acquisition boards (like those from National Instruments or Advantech).
* **Logic Ground/VCC:** The rack provides a common bus for the control voltage, allowing you to trigger relays by pulling the signal line low (Active Low) or high (Active High).
### B. The Relay Sockets
* **Replaceable Modules:** Unlike integrated boards, the SSRs are plugged into sockets. If one channel fails due to a short circuit, you only replace the single SSR module, not the entire rack.
* **Isolation:** The primary electronic advantage is **Optical Isolation**. There is no physical electrical connection between the 50-pin control header and the high-voltage output terminals.
### C. Protection and Feedback
* **LED Indicators:** Each of the 24 channels features a dedicated LED. This allows for instant visual debugging to see which control signals are active.
* **Fusing:** High-quality racks include a socket for a 5x20mm or similar fuse on every output channel to protect the PCB traces and the SSR from overcurrent.
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## 3. Wiring Configuration
| Component | Function |
| :--- | :--- |
| **Field Terminals** | Screw terminals for connecting the Load and the Power Line. |
| **Barrier Strips** | Physical plastic barriers between terminals to prevent accidental arching or shorts between high-voltage lines. |
| **Logic Header** | Connection to the Microcontroller/PLC. |
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## 4. Example Application Code
If you were controlling the first channel of the rack using an Arduino-style microcontroller, the logic would look like this:
```cpp
const int SSR_Channel_1 = 2; // Connected to Pin 1 of the Rack
void setup() {
pinMode(SSR_Channel_1, OUTPUT);
}
void loop() {
digitalWrite(SSR_Channel_1, HIGH); // Turn ON the high-power load
delay(5000);
digitalWrite(SSR_Channel_1, LOW); // Turn OFF the high-power load
delay(5000);
}
```
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- ⤷
What are the compatible SSR module types for this specific rack?
- ⤷ How do I wire a common ground versus a common VCC on the 50-pin header?
- ⤷ What is the maximum current rating per channel for the PCB traces?