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Synergy Automatics · Industrial IoT

Collision-Avoidance & Proximity Detection

Detect hazardous proximity between people, vehicles and fixed infrastructure and provide graded warnings or machine-interface outputs.

Real-time visibilityEdge data continuitySystem integration

Reduced struck-by and interaction riskDetect hazardous proximity between people, vehicles and fixed infrastructure and provide graded warnings or machine-interface outputs.

Graded alerts before critical proximityConnected data supports faster, evidence-based operational decisions.

Visibility of recurring near missesConnected data supports faster, evidence-based operational decisions.
Application overview

What this connected-mine application does

Detect hazardous proximity between people, vehicles and fixed infrastructure and provide graded warnings or machine-interface outputs.

The practical objective is not simply to collect more data. It is to establish a trustworthy measurement chain, detect abnormal conditions, preserve the relevant operating context and route information to the team that can act on it.

Typical points monitored

  • Vehicle-to-person distance
  • Vehicle-to-vehicle distance
  • Speed, direction and braking state
  • Blind-zone and intersection occupancy
  • Tag and antenna health
  • Warning, acknowledgement and intervention events
Primary field devices UWB, radar, RFID or electromagnetic proximity sensors; Vehicle display, buzzer and haptic tag; Speed and CAN-bus interface; Intersection beacon or traffic controller; Event logger and analytics gateway
Data update pattern Event-driven alarms with periodic telemetry. Critical events should be timestamped and transmitted immediately where the communications design permits.
Connectivity options Industrial Ethernet, fibre, Wi-Fi, leaky-feeder, LoRaWAN or private LTE/5G as site conditions permit.
Alarm and analytics Issue advisory, warning and critical alarms by validated separation zones; log overrides and system faults.
Common integration Common interfaces include dry contacts, 4–20 mA, Modbus RTU/TCP, OPC UA, EtherNet/IP, CAN/J1939, MQTT, SNMP or REST APIs where supported by the source equipment.
Data continuity Timestamp at the edge, monitor signal quality and device health, and use store-and-forward buffering so short network outages do not create silent data gaps.
Environmental design Use mine-suitable enclosures, protected cabling and glands, appropriate ingress/impact resistance, and certified equipment wherever the hazardous-area classification requires it.

How it works

A five-layer implementation pattern

Measure

Approved sensors and machine interfaces capture the required physical or operating state.

Control locally

Existing PLCs, protection and safety systems retain their required local authority.

Acquire at edge

A rugged gateway timestamps, buffers, normalises and validates incoming data.

Transmit securely

Mine communications carry telemetry and alarms with health and quality monitoring.

Visualise and integrate

Dashboards, historians and APIs support response, maintenance and reporting.

Typical deployment locations

Where the solution can be applied

  • Loading and dumping areas
  • Haulage intersections
  • Workshop and parking zones
  • Continuous-miner and shuttle-car districts
Operational value

Potential benefits

  • Reduced struck-by and interaction risk
  • Graded alerts before critical proximity
  • Visibility of recurring near misses
  • Safer traffic management improvements
  • Evidence for training and route redesign

Engineering considerations

Design details that determine success

  • Technology selection must suit mine geometry and machine types
  • Machine intervention requires rigorous functional-safety engineering
  • Control nuisance alarms through site testing
  • Maintain antenna placement, tag discipline and exclusion rules
Safety and control boundary

Keep protection local and approved.

Issue advisory, warning and critical alarms by validated separation zones; log overrides and system faults. Dashboard alerts, remote notifications and analytics should complement—not replace—certified protection, local interlocks, emergency procedures, statutory inspections and competent decision-making.

Related applications

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Frequently asked questions

Implementation questions

Can Collision-Avoidance & Proximity Detection connect to existing PLC, SCADA or mine systems?

Usually, yes. The preferred approach is to reuse approved source data and add isolated field instrumentation only where required. The final interface depends on available protocols, network segregation, data ownership and the source equipment vendor.

Does the IoT layer replace local protection or safety controls?

No. Protection relays, safety PLCs, emergency stops, gas trips, fire systems and other approved local functions remain the primary safety and control layer. IoT adds visibility, history, notifications and decision support.

What happens when underground communications are interrupted?

Critical local functions continue independently. A suitable edge gateway buffers timestamped data, raises a communications-health alarm and forwards retained records after the connection returns.

How are sensors and alarm levels selected?

Selection starts with the mine risk assessment, required decision, environmental classification, measuring range, response time, maintainability and applicable rules. Alarm and trip levels must be approved for the specific site and jurisdiction.

Discuss Collision-Avoidance & Proximity Detection

Discuss field instrumentation, edge connectivity, dashboards and integration with the Synergy Automatics team.

Talk to our experts

Engineering note: Instrument selection, hazardous-area certification, alarm limits, interlocks and network architecture must be validated against the mine risk assessment, applicable legislation, equipment approvals and site operating procedures.