Results from this simulator are a rough approximation for motor design exploration only. This tool and SuperMotor products are still early in development.

SuperMotor Simulator

Define geometry and materials — evaluate torque, speed, losses, pricing, and direct-drive humanoid joint fit with pricing included.

Left-drag orbit · Right-drag pan · Scroll zoom · Copper ring = phase winding · Grey claws = SMC C-cores · Red/blue ferrite · Grey wedges = flux concentrators · Silver ring = aluminum hub (shell thickness)

Design warnings

Overall Dimensions

Mass breakdown

    Power & Electrical (Peak)

    Performance metrics

    Efficiency sample map (RPM x current)

    Each cell estimates electrical-to-mechanical efficiency at that RPM/current point for the current design. It is not used by the optimizer.

    About the SuperMotor transverse flux motor simulator

    SuperMotor includes a transverse flux motor, or TFM, path for hollow-shaft direct-drive robotics. The TFM uses a different magnetic path than a typical BLDC motor so it can increase pole count and produce more low-speed torque without stretching into a long, heavy package. This simulator lets you compare magnet materials, geometry, cooling, joint targets, and estimated pricing while development is still early.

    Built for robot joints

    Size a direct-drive motor for arms, quadruped legs, humanoid joints, and compact actuators that need low-speed torque, easier backdriving, and force feedback without a gearbox.

    TFM torque density

    The transverse flux architecture should allow more magnetic torque in less space than a conventional BLDC motor and gearbox stack.

    Magnet material options

    Compare anisotropic Sr-ferrite, iron nitride, SmFeN, and NdFeB to see the tradeoff between domestic simplicity, peak weight, and performance.

    Auto-configurator

    Enter torque, speed, diameter, axial length, mass, or temperature targets and let the optimizer search for a lighter feasible TFM geometry.

    What does the TFM simulator estimate?
    It estimates motor size, peak and continuous torque, speed, losses, efficiency, thermal behavior, weight, joint fit, and material-only pricing for early design exploration.
    Why model a transverse flux motor for robot joints?
    A TFM can deliver strong low-speed torque in a compact magnetic direct-drive package, which is useful when you want to drop the gearbox from a joint.
    What makes the TFM path different from a BLDC motor and gearbox?
    SuperMotor is being developed as a hollow-shaft direct-drive actuator to reduce gearbox friction, backlash, backdrive force, and actuator complexity.
    Is this simulator a final motor specification?
    No. The numbers are rough estimates for exploration while SuperMotor is still early in development.