Hydrogen from four of the twelve roof cylinders feeds three 2 MW fuel-cell banks of four 500 kW modules, their bipolar plates drawn as fine vertical lines; one of the three air compressors spins above them. The inverter and the 2 MWh braking battery sit at right on the same bus.
01Hydrogen cylinders — 4 of 12, 700 bar, 600 kg total
06Catenary input — pantograph, on electrified corridors
07To the motors — 6 × 1 MW
Axle-hung traction motor — rotating view
One of six identical axle drives: a 1 MW motor hangs from the bogie frame parallel to the axle and drives it through a pinion and bull gear; both wheels spin on the rail. Its inverter sits on the frame beam.
01Traction motor — 1 MW, permanent-magnet, axle-hung
02Pinion and bull gear — 4.7:1
03Axle — 32 t axle load, two 42-inch wheels
04Bogie frame beam — carries motor and inverter
05Inverter — one per axle, 3 kV DC in
06Rail — 68 kg/m welded
07Six per locomotive — 6 MW total
08Regeneration — motor as generator on grades and stops
Naked drivetrain
III · The cars
Four car types, one coupler.
Every car carries its own sensors, brakes and identity, so The Brain knows the state of each wheelset on the train.
AI throughput10,000 TOPS total (2 × 5,000, INT8 / FP4 sparse)
Memory2 × 128 GB LPDDR6 at 600 GB/s per module; 4 TB solid-state event recorder
Power draw236 W compute; ≈ 0.5 kW with cameras, lidars, radars and switches — 0.01% of the 6 MW plant
Process node2 nm-class SoC; SIL 4 computer on a mature 16 nm node, 15-year supply. Compute is a line-replaceable unit, swapped at mid-life
RedundancyEvery sensor is wired to both modules. Each module is primary for its zone and hot standby for the other; both must agree to keep speed. The SIL 4 computer (three safety controllers voting two out of three) holds speed, braking and signals, and stops the train with no AI module running.
Sensors8 long-range cameras (6 visible 4K, 2 thermal; 2 km), 3 long-range lidars, 2 radars, aggregated over automotive Ethernet into both modules; bearing, wheel and brake data from every car over the ECP trainline
Safety sensorsThe SIL 4 channel reads its own: 2 axle tachometers, a Doppler ground-speed radar, brake-pipe and brake-cylinder pressure transducers, GNSS and wayside transponder readers, a safety-rated obstacle radar
LinkTrackside radio, corridor 5G and low-orbit satellite, ≈ 1 Mbit/s used; the train plan comes from The Brain and is held aboard
A freight train at 120 km/h needs about a kilometre to stop, so the modules watch two kilometres ahead and must agree to keep speed. Commands pass from the train agent through the SIL 4 channel to the axle inverters and brakes, and reach them no other way. Each axle inverter closes its current loop at 1 kHz on its own. A software fault can never drive the locomotive outside its certified safe envelope.