Drivetrain with infinitely and electrically variable transmission capabilities
Methods and systems are provided for an electric drive train of a hybrid electric vehicle (HEV). In one example, the electric drive train may include a four-node planetary gear set with a first motor coupled to a first input node, a second motor coupled to a second input node and an engine coupled to a third input node of the planetary gear set. The third node is positioned between the first and second input nodes. Torque delivered to each input node is summed at an output node of the four-node planetary gear set.
1 . A method for a drive train for a hybrid electric vehicle (HEV), comprising:
while a state of charge of a traction battery is below a threshold value, outputting torque at an output node of a four-node planetary of the drive train by operating the drive train at a first mechanical point of two mechanical points when the drive train is in a power split mode; and
while the state of charge of the traction battery is above the threshold value, outputting torque at the output node by operating the drive train in an EV mode by operating a first electric machine and a second electric machine to achieve a target torque output while an engine is off;
wherein operation at the first mechanical point is enabled when the first electric machine of the drive train is commanded to operate at zero speed and the second electric machine of the drive train supplements torque provided by the engine of the HEV;
wherein the engine is coupled to a carrier or a ring gear without a clutch, and without a brake; and
wherein the ring gear is coupled to the carrier, and a first sun gear is coupled to the ring gear and a second sun gear is coupled to the carrier.
2 . The method of claim 1 , wherein outputting torque at the output node further includes operating the drive train at a second mechanical point of the two mechanical points and wherein operation at the second mechanical point is enabled when the second electric machine of the drive train is commanded to operate at zero speed and the first electric machine supplements torque provided by the engine of the HEV.
3 . The method of claim 2 , wherein operating the drive train at each of the first mechanical point and the second mechanical point includes adjusting operation of the drive train between dual electric machine operation and single electric machine operation without use of a clutch.
4 . The method of claim 1 , wherein outputting torque at the output node of the four-node planetary includes outputting torque at one of a Ravigneaux gear set, a pair of simple planetary gear sets, compound planetary gear sets, and stepped planetary gear sets.
5 . The method of claim 1 , wherein the first electric machine is coupled to the four-node planetary without clutches.
6 . The method of claim 1 , wherein, at the first mechanical point, the second electric machine provides torque to supplement torque generated by the engine.
7 . The method of claim 1 , wherein, at the second mechanical point, the first electric machine provides torque to supplement torque generated by the engine.
8 . The method of claim 1 , wherein, at the second mechanical point, the first electric machine provides torque to supplement torque generated by the engine.
9 . The method of claim 1 , wherein the four-node planetary is a Ravigneaux gear set, and wherein the first sun gear is a different size than the second sun gear.
10 . The method of claim 9 , wherein the engine is coupled to a ring gear of the Ravigneaux gear set and the output node is located at a carrier of the Ravigneaux gear set.
11 . The method of claim 9 , wherein the engine is coupled to a carrier of the Ravigneaux gear set and the output node is located at a ring gear of the Ravigneaux gear set.
12 . The method of claim 1 , wherein the first electric machine and the second electric machine are asymmetric with different operating speed and torque ranges, and wherein the second electric machine is a low speed, high torque motor and the first electric machine is a high speed, low torque motor.
13 . The method of claim 1 , wherein the first electric machine and the second electric machine are symmetric with similar operating speed and torque ranges.