TECHNOLOGY

Look inside
electric motion.

Every useful performance claim begins with a connected system model—and ends with evidence.

Exploded electric powertrain with motor, transmission, inverter and electronics
Electric powertrain visual supplied by Atom Motors
Detailed power-electronics control board
CONNECTED DISCIPLINES

No isolated optimisation.

A gain in one domain can create a loss somewhere else. The engineering loop must expose those interactions early.

01

Electromagnetic

Topology, winding, materials, loss models, flux weakening and efficiency mapping.

02

Thermal

Heat sources, cooling architecture, temperature limits and the real duty cycle.

03

Mechanical

Rotor stress, bearings, critical speed, housing stiffness, sealing and assembly.

04

NVH

Force orders, structural response, bearing excitation and control interactions.

05

Power electronics

Semiconductors, switching, DC-link, protection, cooling and packaging.

06

Controls

Current control, torque response, flux weakening, protection and calibration.

REAL HARDWARE · REAL WORKFLOWS

See the complete electric-drive problem.

Atom Motors-supplied product and engineering visuals are presented in full colour. Existing supporting photography remains documented to its original source; no generated imagery is used.

Exploded electric powertrain showing motor, gearbox, inverter and electronic assemblies

Complete e-powertrain

Motor, inverter, transmission and supporting electronics are resolved as one connected propulsion system.

Exploded axial-flux motor assembly

Axial-flux architecture

Rotor, stator, cooling and structural interfaces are separated so package and flux-path decisions remain visible.

Close-up of power-electronics processors and control circuitry

Inverter control electronics

Power stage, control board, sensing, protection and thermal paths are engineered around the machine.

Electric drive unit with orange high-voltage connections

High-voltage integration

Electrical, mechanical and cooling interfaces are reviewed in the package where the drive will operate.

Electric traction motor cutaway showing its stator and rotor

Windings & magnetics

Stator, rotor and air-gap geometry are resolved against torque, loss, temperature and manufacturability.

Automated electronics line handling populated control boards

Electronics production

Board handling, inspection and process capability connect the electrical definition to repeatable hardware.

Engineers reviewing CAD geometry and simulation results

Coupled analysis

CAD, FEA and operating data let teams review the same geometry from electromagnetic, thermal and mechanical perspectives.

Integrated electric drive unit showing motor, transmission and inverter

Integrated electric drive

Machine, inverter, gearbox, cooling and structural interfaces are developed as one propulsion package.

Exploded electric powertrain with motor and transmission components

System architecture

Exploded system context reveals torque path, electrical interfaces, installation sequence and service access.

DEVELOPMENT LOOP

From unknowns
to evidence.

01

Frame

Translate the application into measurable operating, packaging and environmental requirements.

02

Explore

Compare machine and system architectures with visible assumptions and trade-offs.

03

Resolve

Develop the chosen concept through coupled electromagnetic, thermal and mechanical analysis.

04

Prove

Correlate models, integrate controls and validate the evidence required for release.

DIGITAL TO PHYSICAL

The model gets better
when hardware answers back.

Prototype evidence identifies gaps, updates parameters and improves the next design iteration.

Bring us the requirement