Powertrain control system and method of VTOL aerial vehicle
View Patent ↗A powertrain control system is provided for a vertical take-off and landing aerial vehicle for urban air mobility. A powertrain of the vertical take-off and landing aerial vehicle is a hybrid type powertrain, in which the output shaft of a rotor driving motor is directly connected to a rotor, a battery is connected to the rotor driving motor to supply power thereto, and an engine and a generator are connected to a battery to charge and discharge the battery. The driving of the engine and the generator is controlled based on required power of the motor and the SOC of the battery in each flight step of the vertical take-off and landing aerial vehicle, and the SOC of the battery is constantly maintained at a predetermined level or higher.
1 . A powertrain control method of a vertical take-off and landing aerial vehicle, comprising:
determining, by a controller, a current flight step of the vertical take-off and landing aerial vehicle;
sequentially performing, by the controller, an engine driving mode determination step, an engine driving amount calculation step, a required engine torque determination step, and a required generator torque determination step for the determined flight step in order to drive an engine; and
operating, by the controller, a generator according to driving of the engine and charging a battery with power generated by the generator;
wherein the driving of the engine and the generator is controlled based on required power of a motor and a state of charge (SOC) of the battery in the determined flight step of the vertical take-off and landing aerial vehicle such that the SOC of the battery is constantly maintained at a predetermined level or higher; and
wherein, when the current flight step is determined to be a cruising step or a take-off preparation step and there is an oxygen sensor diagnosis request signal for engine self-diagnosis, the engine driving mode is determined to be engine passive run, and engine self diagnosis for analyzing a detected signal of an oxygen sensor is performed.
2 . The powertrain control method according to claim 1 , wherein, when the engine driving mode is determined to be engine part load or engine full load for the determined flight step, target torque of the engine and target RPM of the engine are calculated, and approval of injection of fuel to the engine and an engine torque command are determined, the generator is driven according to driving of the engine and the battery is charged with power generated by the generator.
3 . The powertrain control method according to claim 1 , wherein, when the current flight step is determined to be the take-off preparation step, the engine driving mode determination step, the engine driving amount calculation step, the required engine torque determination step, and the required generator torque determination step are sequentially performed, and then a step of determining take-off standby or not is performed.
4 . The powertrain control method according to claim 3 , wherein, when there is a catalyst heating request signal in the engine driving mode determination step, the engine driving mode is determined to be engine idle and a catalyst is heated to a predetermined temperature or greater before take-off.
5 . The powertrain control method according to claim 3 , wherein, when the SOC of the battery is equal to or less than a reference value of the SOC of the battery, a battery discharge limit is equal to or less than a reference value of the battery discharge limit, or catalyst heating is being continuously performed in the step of determining take-off standby or not, a take-off standby request signal is transmitted from a main controller to a flight controller such that the vertical take-off and landing aerial vehicle is maintained in a take-off standby state.
6 . A powertrain control method of a vertical take-off and landing aerial vehicle, comprising:
determining, by a controller, a current flight step of the vertical take-off and landing aerial vehicle;
sequentially performing, by the controller, an engine driving mode determination step, an engine driving amount calculation step, a required engine torque determination step, and a required generator torque determination step for the determined flight step in order to drive an engine; and
operating, by the controller, a generator according to driving of the engine and charging a battery with power generated by the generator;
wherein the driving of the engine and the generator is controlled based on required power of a motor and a state of charge (SOC) of the battery in the determined flight step of the vertical take-off and landing aerial vehicle such that the SOC of the battery is constantly maintained at a predetermined level or higher;
wherein, when the current flight step is determined to be a cruising step approaching a destination, the engine driving mode determination step, the engine driving amount calculation step, the required engine torque determination step, and the required generator torque determination step are sequentially performed, and then a step of determining landing standby or not is performed; and
wherein, when the SOC of the battery is equal to or less than a reference value of the SOC of the battery, a battery discharge limit is equal to or less than a reference value of the battery discharge limit RPM of the engine is equal to or less than a reference value of the RPM, or no fuel is injected in the step of determining landing standby or not, a landing standby request signal is transmitted from a main controller to a flight controller such that the vertical take off and landing aerial vehicle is maintained in a landing standby state.