Data CenterS27
Water Leakage Monitoring
Problem
Leaks under raised floors from CRAC units, chilled water pipes or humidifiers go unseen until equipment is wet, because the leak panel only sounds a local buzzer.
Opis rozwiązania
MILESGO gateways collect data from water leak detection controllers, valve actuators, run/stop and fault dry contacts over Modbus RTU, and deliver it to the DCIM, the BMS, SMS, email and messaging alarms as SNMP / BACnet/IP / MQTT. Field equipment keeps its own protocol and control logic; integration is done by configuration and point mapping, not custom code.
Typical scope
- water leak detection controllers
- valve actuators
- run/stop and fault dry contacts
Protocol path
Modbus RTU → SNMP / BACnet/IP / MQTT
Implementation checklist for the project manager
- For hard-wired signals, list each DI/DO/AI/AO with its type (dry contact, 4–20 mA, 0–10 V, PT1000) and choose I/O modules accordingly.
- Define an alarm matrix (priority, recipient, escalation) and test every alarm end to end at SAT.
- Write the control sequence (start/stop order, interlocks, set-points, fallback on communication loss) and have it approved before programming.
- Fix a site / asset naming convention before the first site so data from all sites can be compared.
- Confirm DIN-rail space and a stable 12–24 V supply in each panel; use UPS-backed power for critical monitoring.
- Hand over configuration backups, point table, IP plan and as-built drawings, with a short operator training.
Project deliverables
- Signed point table and protocol mapping
- Gateway configuration files and backups
- IP address plan and network drawing
- FAT and SAT test records
- As-built documentation and operator training
Architektura systemu
Field layer: water leak detection controllers, valve actuators, run/stop and fault dry contacts, connected over Modbus RTU. Edge and integration layer: MILESGO protocol gateways and edge controllers, mounted on DIN rail in existing panels, polling each device, time-stamping values and buffering them locally. Upper layer: the DCIM, the BMS, SMS, email and messaging alarms, which receives the data as SNMP / BACnet/IP / MQTT. Remote access for maintenance runs over VPN rather than open internet ports.
Skład systemu
- Field devices
- water leak detection controllers, valve actuators, run/stop and fault dry contacts
- Edge / integration
- MILESGO protocol gateways and edge controllers
- Upper systems
- the DCIM, the BMS, SMS, email and messaging alarms (SNMP / BACnet/IP / MQTT)
- Tools and commissioning
- Web-based configuration, point table import/export (Excel), off-site simulation and on-site diagnostic tools
Możliwości oprogramowania i AI
- Alarm noise reduction and root-cause groupingW planach
Etapy wdrożenia
- 1
Site survey and point list
Inventory devices, protocols, register maps, panel space, power and network paths.
- 2
Design and point table sign-off
Map every point to the target protocol and system; agree it with the client and the upper-system contractor.
- 3
Configuration and FAT
Build the gateway configuration off site, simulate it and test against the signed point table.
- 4
Installation and wiring
Mount gateways on DIN rail, wire RS-485 / I/O / Ethernet, apply the IP plan.
- 5
SAT and alarm tests
Verify values against local readings, test every alarm and command end to end.
- 6
Handover and support
Hand over configuration backups, point table and as-built documents; train operators.
Korzyści dla klienta
- Alarms reach the right person by SMS, email or messaging apps
- Abnormal conditions seen early, before they become failures
- Timestamped records for compliance and reporting
- One view of all subsystems instead of separate vendor consoles
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