Radio control is a legacy architecture for tactical combat.
of tactical front-line strike drones deployed in high-intensity combat zones already operate in complete RF silence.
of military drones are projected to execute their missions in complete RF silence.
Optical fibre, un-jammable satellite uplinks such as narrow-beam directional arrays, and low-cost edge-AI microchips mean that relying on passive RF detectors to warn you a drone is coming will leave you blind to the vast majority of threats.
Pronounced “mew naught” — after μ0, the magnetic constant.
Active Near-Field Magnetic Radar (ANFMR) for Autonomous Air Defence
ANFMR forces the internal, unshieldable permanent magnets of a drone’s brushless motor to generate distinctive, high-confidence frequency sidebands. The threat identifies itself by its physics, not by its radio.
The technology we use: quasi-static near-field magnetic coupling.
Traditional radar looks for reflections off the hull. Active Sideband Radar forces the motor’s own magnets to create entirely new frequencies, and sees straight through stealth composites.
Farrman does not replace early warning. It authenticates at the last line.
A definitive physical trigger, independent of radio, for short-range Directed Energy Weapons (DEW) and High-Power Microwave (HPM) effectors — neutralising RF-silent threats in the terminal phase, before payload delivery.
Long-range, low-cost sensors — passive acoustic arrays, thermal cameras, conventional micro-radar — detect a fast-moving object kilometres away and slew an interceptor toward it. Under heavy jamming they cannot say whether it is a hostile autonomous drone, a fibre-optic drone, a friendly asset, or a bird.
The object enters the forty-metre induction zone. Within 300 milliseconds the array isolates the physical motor sidebands and confirms what it is: a spinning permanent-magnet motor, travelling at 40 m/s. The target is authenticated.
An automated point-defence intercept system or kinetic C-RAM effector needs only a fraction of a second to track and engage a terminal threat. Farrman gives it that fraction.
The moment the sideband signature is validated, a localised, directional electromagnetic or microwave burst is triggered.
For smaller tactical threats, the 300 ms cue fires automated pneumatic net-cannons that wrap the propellers and disable the motor before it reaches the asset.
Short-range by design.
The near field falls with the cube of distance. We do not claim to see kilometres. We hold the last forty metres, around the assets that matter most.
From workbench to field. Then to the femtotesla.
Active interrogation and sideband extraction, proven on the bench.
Ruggedised, automated systems cueing effectors in the field.
Laser-threshold, optically pumped. Already on the workbench, targeting femtotesla baseline accuracy.