Datacenter · Strong theory

Raised-Floor Leak Radar

Spots water or coolant spreading under the floor days before puddle sensors trip.

Strong theory Strong theory

The physics is solid; our own validation is scheduled.

WiFi waves slow down and fade sharply when they cross water — far more than when crossing dry floor. A spreading wet patch under the raised floor bends the signals in a fixed, growing spot. The system maps where the wet area is and watches it grow.

In the physics: Water's relative permittivity (~80) dwarfs dry floor/concrete (~2-6): a spreading wet patch slows and attenuates paths crossing the plenum, producing measurable extra delay (path through 10cm of wet zone adds ~ns-scale excess delay) and a growing high-eps_r region in the reconstructed material map.
Preparing the recorded fieldLoading real LatentField pipeline output…

This is real pipeline output for Datacenter, replayed. The exact reading depends on your room.

Bring this into the real roomCage & Plenum Sentinel6 sensing nodes · ~$320 parts · about 120 min
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How the field becomes an answer

CIR delay/attenuation drift on floor-crossing links RFF/NeRF eps_r map differential vs. dry baseline compartment Kalman spatial model of moisture spread CUSUM over hours-to-days for slow seepage alarms.

How we prove it

Own-hardware: raised-floor testbed, introduce controlled water volumes (0.5-20L) under tiles, measure detection latency and localization vs. spot leak-rope sensors; moisture-vs-eps_r physics is textbook (class B on our integration).

Who it is for

Wide-area leak detection that sees under every tile, not just where the leak rope happens to lie — sold to the DC facilities manager as insurance against the classic 'CRAC leak found by the downstairs tenant' incident.

Complete first-room estimateCage & Plenum Sentinel6 nodes · ~$320 parts · 120 min Request kit, subscribe, or set up →
Compatible DIY hardware options
Operator Single-Venue$280–380

120 min · advanced

Operator Multi-Node$700–950

240 min · installer

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