Introduction
Modern substations rely on SCADA systems for real-time monitoring and control. The architecture below shows how field devices connect to the central control layer.

Key Components
The main building blocks of a digital substation SCADA system:
| Component | Role |
|---|---|
| RTU / IED | Acquires field measurements, executes control commands |
| HMI | Operator interface for monitoring and manual control |
| Historian | Time-series storage of process values |
| Communication network | IEC 61850 / DNP3 / Modbus transport layer |
Communication Architecture
The data flow from field to control centre follows a strict hierarchy:
flowchart TD
A[Field Devices\nCTs / VTs / CBs] -->|IEC 61850 GOOSE| B[Bay Controller / IED]
B -->|MMS over TCP/IP| C[Station Bus]
C --> D[SCADA Server]
D -->|DNP3 / IEC 104| E[Control Centre]
D --> F[Historian]
D --> G[HMI Workstation]
Protection Coordination
Protection zones must be defined carefully to avoid overlaps and blind spots.

Key rules:
- Every primary equipment item must fall inside at least one protection zone.
- Zones should overlap at breakers — never at transformers or busbars.
- Communication-assisted schemes (POTT, PUTT) require end-to-end latency below 20 ms.
Signal Processing Pipeline
sequenceDiagram
participant IED
participant StationBus
participant SCADA
participant Historian
IED->>StationBus: GOOSE: CB status change
StationBus->>SCADA: MMS report
SCADA->>Historian: Tag write (timestamp, value, quality)
SCADA->>HMI: Alarm notification
System Diagram
The full system layout is shown below:
Further Reading
For detailed specifications and calculations, refer to the attached technical report:
Download the full technical report (PDF)
Conclusion
SCADA integration is a foundational requirement for digital substation operations. Proper architecture, redundant communication paths, and strict time synchronisation are essential for reliable protection and control.
