DRIVE AND METHOD FOR OPERATING A DRIVE
20220402343 ยท 2022-12-22
Assignee
Inventors
Cpc classification
B60Y2400/72
PERFORMING OPERATIONS; TRANSPORTING
B60K1/02
PERFORMING OPERATIONS; TRANSPORTING
B60K1/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A drive includes a rotatably mounted planet carrier, planet gears, a ring gear having internal teeth and external teeth, a rotatably mounted sun gear, and a first gear wheel meshing with the external teeth of the ring gear. The first gear wheel is connected in a rotationally fixed manner to the rotor shaft of a first electric motor, the drive has a second gear wheel meshing with a toothed part, the second gear wheel is connected in a rotationally fixed manner to the rotor shaft of a second electric motor, and the toothed part is connected in a rotationally fixed manner to the sun gear.
Claims
1.-16. (canceled)
17. A drive for power transmission from a driving shaft to a driven shaft, comprising: a first electric motor; a second electric motor; a mechanical transmission; a first inverter; and a second inverter; wherein the first electric motor is adapted to operate as a generator, to be fed by a part of power to be transmitted from the driving shaft, and to convert the part of the power into electrical power that is at least partially fed to the second electric motor operated as a motor and adapted to feed mechanical power to the driven shaft, the first electric motor adapted to feed an AC voltage side connection of the first inverter, a DC voltage side connection of the first inverter adapted to feed a DC voltage side connection of the second inverter, an AC voltage side connection of the second inverter adapted to feed the second electric motor, the mechanical transmission adapted to transmit a remaining portion of the power to be transmitted from the driving shaft to the driven shaft.
18. The drive according to claim 17, wherein the mechanical transmission includes a planetary gear, and the driving shaft includes a planet carrier.
19. The drive according to claim 17, wherein the first electric motor includes an electromagnetically actuated holding brake, activation of the holding brake making the part vanishingly small and deactivation of the brake making the part controllable by at least one of the first inverter and the second inverter.
20. The drive according to claim 17, further comprising a rotatably mounted planet carrier, planet gears rotatably mounted on bolts connected to the planet carrier, a ring gear having internal teeth and external teeth, a rotatably mounted sun gear, and a first gear wheel meshing with the external teeth of the ring gear, the first gear connected in a rotationally fixed manner to a rotor shaft of the first electric motor, the drive including a second gear wheel meshing with a toothed part, the second gear connected in a rotationally fixed manner to a rotor shaft of the second electric motor, the toothed part connected in a rotationally fixed manner to the sun gear.
21. The drive according to claim 17, wherein the planet carrier is connected to a drive shaft in a rotationally fixed manner, the first electric motor is arranged as a synchronous motor and/or a three-phase motor, the second electric motor is arranged as a synchronous motor and/or a three-phase motor, the toothed part includes a third gear wheel.
22. The drive according to claim 17, wherein the first electric motor is fed from the AC voltage side connection of the first inverter, the DC voltage side connection of the first inverter being electrically connected to the DC voltage side connection of the second inverter, the AC voltage side connection of the second inverter feeding the second electric motor.
23. The drive according to claim 17, further comprising first signal electronics adapted to generate activation signals for the first inverter and second signal electronics adapted to generate activation signals for the second inverter.
24. The drive according to claim 23, wherein the first signal electronics include a controller arranged as a speed controller, a first linear controller, a P controller, and/or PI controller, and wherein a manipulated variable of the controller is a generator torque of the first electric motor.
25. The drive according to claim 24, wherein the second signal electronics include a second linear controller, and wherein a manipulated variable of the second linear controller is a motor torque of the second electric motor.
26. The drive according to claim 23, wherein (a) a first sensor adapted to detect a speed of a first gear wheel is connected to the first signal electronics and/or a sensor adapted to detect a voltage applied to the DC voltage side connection of the first inverter, and/or (b) a second sensor adapted to detect a speed of the second gear wheel is connected to the second signal electronics and a sensor adapted to detect a voltage applied to the DC voltage side connection of the second inverter.
27. The drive according to claim 23, wherein a first sensor adapted to detect an output current at the AC voltage side connection of the first inverter is connected to the first signal electronics, and/or a second sensor adapted to detect an output current of the second inverter at the AC voltage side connection is connected to the second signal electronics.
28. The drive according to claim 17, wherein an energy storage device is electrically connected in parallel to the DC voltage side connections of the first inverter and the second inverter.
29. The drive according to claim 28, wherein the energy storage device includes an accumulator, a double-layer capacitor, and/or an ultracap.
30. The drive according to claim 17, wherein the first electric motor and/or the second electric motor is arranged as a synchronous motor.
31. A method for operating a drive as recited in claim 17, comprising: setting a torque of the first electric motor to detect and control a speed of a rotor shaft of the first electric motor to a first setpoint value; and setting a torque of the second electric motor by controlling a detected voltage applied to the DC voltage side connection of the second inverter to a second setpoint value.
32. The method according to claim 31, wherein the setting of the torque of the first electric motor includes setting a motor current of the first electric motor and/or setting a motor voltage of the first electric motor to control and control the speed of the rotor shaft of the first electric motor to the first setpoint value by the first inverter, the setting of the torque of the second electric motor including setting a motor current of the second electric motor and/or a motor voltage of the second electric motor by controlling the detected voltage applied to the DC voltage side connection of the second inverter to the second setpoint value by the second inverter.
33. The method according to claim 31, wherein the first setpoint value is determined from a speed detected on a rotor shaft of the second electric motor, taking into consideration a specified transmission ratio and a specified split ratio.
34. The method according to claim 33, wherein the transmission ratio equals a desired value of a quotient of a speed of the sun gear shaft and a speed of the planet carrier or a desired value of a quotient of the speed of the rotor shaft of the second electric motor and the speed of the first electric motor.
35. A method for operating a drive as recited in claim 17, comprising: setting a torque of the first electric motor to detect and control a speed of a rotor shaft of the first electric motor to a first setpoint value; setting a torque of the second electric motor to detect and control a speed of a first shaft of the second electric motor to a second setpoint value; and determining the second setpoint value from the detected speed of the rotor shaft of the first electric motor, taking into account a specified transmission ratio and a specified split of the transmission ratio for electrical and mechanical branches of the drive.
36. The method according to claim 35, wherein the setting of the torque of the first electric motor includes setting a motor current of the first electric motor and/or a motor voltage of the first electric motor to detect and control the speed of the rotor shaft of the first electric motor to the first setpoint value by the first inverter, the setting of the torque of the second electric motor including setting a motor current and/or a motor voltage of the second electric motor to detect and control the speed of the rotor shaft of the second electric motor by the second inverter.
37. The method according to claim 35, wherein the transmission ratio of the drive is specified as a monotonically increasing function of a time and, when a target value is reached, a holding brake of the first motor is activated and/or applied, and wherein the transmission ratio of the drive with a fixed ring gear is equal to a target value.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0032]
DETAILED DESCRIPTION
[0033] A drive according to an example embodiment of the present invention is schematically illustrated in
[0034] As illustrated in
[0035] Bolts aligned in parallel to the axis of rotation of the planet carrier 2 are connected to the planet carrier 2, on which planet gears 4 are rotatably mounted, e.g., via needle bearings or other roller bearings.
[0036] The planet gears 4, which are, for example, evenly spaced apart from one another in the circumferential direction, are meshed on the one hand with a centrally arranged sun gear 5 and on the other hand with a rotatably mounted ring gear 3 that radially surrounds the planet gears 4.
[0037] The ring gear 3 not only has internal teeth that mesh with the external teeth of the planet gears 4, wherein the external teeth of the planet gears 4 mesh with the external teeth of the sun gear 5, but the ring gear 3 also has external teeth that mesh with the external teeth of a first gear wheel 6.
[0038] This first gear wheel 6 is rotatably mounted and connected in a rotationally fixed manner to the rotor shaft of a first electric motor, e.g., a synchronous motor, which can be fed by an inverter 7. When operating as a generator, torque is thus transmitted from the ring gear 3 to the first gear wheel 6 and, depending on the speed of the first gear 6, electrical power is conducted from the first electric motor to the inverter.
[0039] The AC voltage side connection of the inverter 7 is connected to the connection of the electric motor, e.g., to the stator of the first electric motor.
[0040] The DC voltage side connection of the inverter 7 is connected to the DC voltage side connection of a second inverter 9, whose AC voltage side connection is connected to the connection of a second electric motor, e.g., a synchronous motor. This second electric motor drives, e.g., directly, a second gear wheel 10, which meshes with a toothed part 11, e.g., a third gear wheel, which is connected in a rotationally fixed manner to that shaft 12 which is connected in a rotationally fixed manner to the sun gear 5, e.g., to the output shaft of the planetary gear. Thus, the sun gear 5 is connected to the toothed part 11 in a rotationally fixed manner.
[0041] The connection of the DC voltage side connections of the two inverters (7, 9) can be referred to as an intermediate circuit 8, wherein an upper potential of this DC voltage and a lower potential of this DC voltage, that is to say an intermediate circuit voltage, is provided.
[0042] Optionally, an energy storage device can be added to this intermediate circuit 8, so that an amount of energy generated as a generator is storable in the energy storage device, e.g., usable as buffer energy.
[0043] The first inverter 7 has a device for detecting the motor current, that is to say the output current to the first electric motor, the rotor shaft of which is connected in a rotationally fixed manner to the first gear wheel 6.
[0044] A transmission ratio is specified for operating the drive. To achieve this, the first inverter is operated in speed control. The detected speed n1_Ist of the first gear wheel 6 is controlled to a target value n1_Soll in that a torque M1 is set. The torque is generated as a generator, so it has a negative value.
[0045] The actual value U_z_Ist of the intermediate circuit voltage is detected and controlled to a setpoint value U_z_Soll by the second inverter 9, in that a torque M2 is introduced via the second motor to the second gear wheel 10 as a manipulated variable.
[0046] The setpoint value U_z_Soll is specified as low as possible, for example, 100 volts.
[0047] The power supplied as a generator attempts to increase the intermediate circuit voltage, which is limited to a maximum value U_z_max, however, for example, to 650 volts or a value between 650 volts and 800 volts.
[0048] Thus, the first inverter 7 tends to increase the intermediate circuit voltage and the second inverter 9 tends to decrease the intermediate circuit voltage. In the ideal case, the intermediate circuit voltage initially remains at a moderate value, wherein the intermediate circuit voltage reaches a negligibly small value, e.g., zero, after the brake of the first electric motor has been activated, e.g., applied.
[0049] By providing a capacitance in the intermediate circuit 8, e.g., by providing an energy storage device in the intermediate circuit 8, control fluctuations of the first inverter 7 influence the control behavior of the second inverter less and the tendency of the entire system to oscillate is reduced.
[0050] The speed controller of the first inverter 7 is, for example, arranged as a linear controller, such as a P controller or PI controller. The controller of the second inverter 9 is, for example, also arranged as a linear controller, such as a P controller or PI controller.
[0051] Thus, only one speed detection on the first electric motor and one detection of the intermediate circuit voltage as well as the detection of the output currents of the two inverters (7, 9) at their respective AC voltage side connection is necessary. In addition, it is helpful to detect the speed of the second electric motor in order to generate a rotating field that is as well adapted as possible.
[0052] The first electric motor is, for example, arranged as a three-phase motor, and the second electric motor is also.
[0053] The respective inverter (7, 9) has a parallel circuit of three series circuits fed from the intermediate circuit voltage, wherein each of the series circuits has two controllable semiconductor switches, e.g., IGBT or MOSFET, connected in series. In this manner, a three-phase voltage can be provided at the at the AC voltage side connection of the respective inverter.
[0054] The control voltages for the semiconductor switches are generated by signal electronics, which are, for example, composed of a first part, which is arranged in a housing with the first inverter 7, and a second part, which is arranged in a housing with the second inverter 9. The two parts are connected by a data exchange connection. The first part contains the speed controller and the second part contains the voltage controller, wherein both controllers each have a torque as a manipulated variable.
[0055] The sun gear 5 is arranged radially inside the planet gears 4, which in turn are arranged radially inside the ring gear 3.
[0056] In further exemplary embodiments, a different controller structure is used. Both inverters 7 and 9 are each operated in speed control and specify a desired transmission ratio for the electrical branch. The speed n1_ist detected on the first electric motor is controlled to a specified setpoint speed curve n1_Soll (t), in that a torque M1 is set and thus fed to the first gear wheel 6 via the first electric motor. The second inverter receives a value dependent on the detected speed n1_ist as setpoint speed n2 and controls the detected speed n2_ist of the toothed part 11 to this setpoint speed n2, in that it sets a corresponding torque M2. The setpoint speed is, for example, determined as the sum of the speed of the planet carrier 2, which is multiplied by the mechanical transmission ratio and detected by a speed sensor, and the speed additionally generated via the electrical path.
[0057] In further exemplary embodiments, instead of a constant value for the transmission ratio, e.g., a gear ratio, a time curve of the transmission ratio is specified. For example, to start a drive, during the acceleration starting from the speed zero until reaching the setpoint speed, the transmission ratio increases from zero to a value which corresponds to the solely mechanical transmission ratio of the planetary gear, e.g., that transmission ratio which is achieved with activated brake of the first motor, e.g., fixing of the ring gear 3, when the second motor is deactivated. The brake is therefore only activated and the ring gear 3 is only fixed when the transmission ratio has reached the value that can be achieved solely mechanically by the planetary gear.
TABLE-US-00001 LIST OF REFERENCE NUMERALS 1 torque source, e.g., electric motor 2 planet carriers 3 ring gear 4 planet gear 5 sun gear 6 first gear wheel 7 inverters, e.g., inverters operated as generators 8 intermediate circuit 9 inverters, e.g., inverters operated as motors 10 second gear wheel 11 toothed part, e.g., third gear wheel 12 shaft, e.g., output shaft