Simulate the electric UAV powertrain as one coupled battery-to-propeller system. Use 4,500+ motors, propellers, and batteries or custom data, run operating points, sweeps, and dynamic missions, then automate through the REST API or official Python SDK.
I'm Kyle, the founder and solo builder behind ThrustLab.
I competed in the DARPA Lift Challenge and saw that UAV competition is
shifting toward aircraft optimized at the system level. I wanted a full
simulation platform instead of another online calculator, one that treats the
battery-to-propeller powertrain as a coupled system.
I built ThrustLab over four years of iterative R&D, testing, and validation to
close the gap between conceptual drone design and real-world testing. It
supports steady-state operating points, sweeps, and dynamic mission
simulation. Propeller aerodynamics are validated against the UIUC propeller
wind-tunnel database.
ThrustLab now has a growing database of 4,500+ readily available motors,
propellers, and batteries, plus custom component inputs. It also has a REST
API, an official Python SDK, and FMI 3.0 export with worked SITL examples for
ArduPilot, Betaflight, Gazebo, and Simulink. The exported model runs inside a
real autopilot loop and supplies per-rotor thrust and torque, battery voltage
sag, and state of charge. Non-commercial users can choose from tiered
subscriptions, while businesses can contact me about commercial licensing and
special implementations.
If you manufacture COTS or custom propellers, brushless motors, batteries,
battery cells, or ESCs, I would like to get your components into the database.
I am especially interested in NDAA-compliant components.