Inverter system for vehicle
10771005 ยท 2020-09-08
Assignee
Inventors
- Beom Sik Kim (Gwangmyeong-si, KR)
- Jin Hwan Jung (Suwon-si, KR)
- Sang Cheol SHIN (Suwon-si, KR)
- Ji Woong Jang (Hwaseong-si, KR)
- Ki Young Jang (Incheon, KR)
- Ki Jong Lee (Osan-si, KR)
Cpc classification
Y02T10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60L2260/26
PERFORMING OPERATIONS; TRANSPORTING
H02P29/028
ELECTRICITY
B60L3/0061
PERFORMING OPERATIONS; TRANSPORTING
H02M7/493
ELECTRICITY
Y02T10/64
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H02P27/085
ELECTRICITY
International classification
H02P1/30
ELECTRICITY
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
H02P29/028
ELECTRICITY
H02P3/00
ELECTRICITY
Abstract
An inverter system for a vehicle includes: an energy storage device configured to store electrical energy, a first inverter including a plurality of first switching elements and configured to convert the electrical energy stored in the energy storage device into alternating-current (AC) electric power, a second inverter including a plurality of second switching elements different from the plurality of first switching elements, a motor configured to be driven by receiving the AC power converted by the first inverter and the second inverter, current sensors disposed between the first inverter and the motor and the second inverters and the motor, respectively, and configured to detect a current input to the motor, and a controller configured to generate a pulse width modulation (PWM) signal for controlling driving of the motor.
Claims
1. An inverter system for a vehicle, comprising: an energy storage device configured to store electrical energy; a first inverter including a plurality of first switching elements, wherein the first inverter is configured to convert the electrical energy stored in the energy storage device into alternating-current (AC) electric power; a second inverter including a plurality of second switching elements different from the plurality of first switching elements, wherein the second inverter is connected to the energy storage device in a parallel relationship with the first inverter, and is configured to convert the electrical energy stored in the energy storage device into AC power; a motor configured to be driven by receiving AC power converted by the first inverter and the second inverter; current sensors disposed between the first inverter and the motor and disposed between the second inverter and the motor, respectively, wherein each of the current sensor is configured to detect a current input to the motor; and a controller configured to generate a pulse width modulation (PWM) signal for controlling driving of the motor, to determine a failure occurrence position between the first inverter and the motor or the second inverter and the motor based on the detected current, and to control the motor to be driven by the first inverter or the second inverter according to the failure occurrence position, wherein, when a failure does not occur between the first inverter and the motor or the second inverter and the motor, the controller controls driving of the first inverter and the second inverter based on a required output amount of the motor, wherein, when the required output amount of the motor is smaller than a reference value, the controller controls the plurality of first switching elements to drive the first inverter, and wherein switching and conduction losses of the first inverter are smaller than those of the second inverter.
2. The inverter system of claim 1, wherein, when the failure occurs between the first inverter and the motor, the controller controls the motor to be driven by the second inverter, and when the failure occurs between the second inverter and the motor, the controller controls the motor to be driven by the first inverter.
3. The inverter system of claim 1, wherein, when the required output amount of the motor is greater than the reference value, the controller controls the plurality of second switching elements to drive the second inverter.
4. The inverter system of claim 1, wherein, when the required output amount of the motor is greater than the reference value, the controller inputs a first PWM signal obtained by converting the PWM signal to the first inverter to control the plurality of first switching elements to be turned on prior to the plurality of second switching elements and to be turned off later than the plurality of second switching elements.
5. The inverter system of claim 1, wherein, when the required output amount of the motor is greater than the reference value, the controller inputs a second PWM signal obtained by converting the PWM signal to the first inverter to control the plurality of second switching elements to be turned on later than the plurality of first switching elements and to be turned off prior to the plurality of first switching elements.
6. The inverter system of claim 1, wherein each of the plurality of first switching elements is a silicon carbide-field effect transistor (SiC-FET), and each of the plurality of second switching elements is a Si-insulated gate type bipolar transistor (IGBT).
7. The inverter system of claim 1, wherein the first inverter has a rated output for driving the motor, which is smaller than that of the second inverter.
8. The inverter system of claim 1, wherein the motor is a single motor operated by selectively or simultaneously receiving the electric power converted by the first inverter and the second inverter according to the required output amount of the motor.
9. The inverter system of claim 1, wherein the motor includes: a first motor driven by receiving the electric power converted by the first inverter; and a second motor driven by receiving the electric power converted by the second inverter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other objects, features and other advantages of the present disclosure will be more clearly understood from the following detailed description when taken in conjunction with the accompanying drawings, in which:
(2)
(3)
(4)
(5)
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DETAILED DESCRIPTION
(7) Hereinafter, an inverter system for a vehicle according to exemplary embodiments of the present disclosure will be described with reference to the accompanying drawings.
(8)
(9) As shown in
(10) The energy storage device 100 stores electrical energy and serves to provide the electrical energy for driving the motor M. According to the present embodiment, the energy storage device 100 may be a battery for storing and providing electrical energy for driving the motor M of the vehicle. However, this is merely one example, and various devices including a supercapacitor and the like may be used as an energy storage device of the present disclosure as long as they can serve to store and provide electrical energy for driving a motor of a vehicle.
(11) The first inverter 200 includes a plurality of first switching elements 210 and serves to convert the electrical energy stored in the energy storage device 100 into alternating-current (AC) electric power. Here, as shown in
(12) Each of the plurality of first switching elements 210 may be a silicon carbide-field effect transistor (SiC-FET). In the present disclosure, the reason for using the SiC-FET as each of the plurality of first switching elements 210 is that the SiC FET has switching and conduction losses that are relatively significantly lower than those of a Si-insulated gate bipolar transistor (IGBT) at a lower load. That is, when a required output amount of the motor M is small, the motor M is driven through the first inverter 200 including the SiC-FET such that switching and conduction losses may be reduced and thus overall fuel efficiency of the vehicle may be improved.
(13) The first inverter 200 configured with the plurality of first switching elements 210 may have switching and conduction losses that are lower than those of the second inverter 300 which will be described below. Further, the first inverter 200 may have a rated output for driving the motor M, which is smaller than that of the second inverter 300.
(14) The second inverter 300 includes a plurality of second switching elements 310 different from kinds of the plurality of first switching elements 210 and serves to convert the electrical energy stored in the energy storage device 100 into the AC electric power. Here, as shown in
(15) Further, the plurality of second switching elements 310 in the second inverter 300 may be turned on and off by the controller 400, which will be described below, to convert the DC electric power transmitted from the energy storage device 100 into the AC electric power. The conversion from the DC electric power into the AC electric power through the inverter is a well-known technique, a detailed description thereof will be omitted.
(16) The second switching element 310 may be a silicon insulated gate bipolar transistor (Si-IGBT). In the present disclosure, the plurality of second switching elements 310 which are Si-IGBTs are connected in parallel and the motor M is driven by the second inverter 300 including the Si-IGBTs in a high output mode in which a required output amount of the motor M is high such that a high output may be output. For convenience of description, in the following detailed description, it will be described by assuming that the plurality of first switching elements 210 are SiC-FET devices and the plurality of second switching elements 310 are Si-IGBT devices.
(17) The motor M may be driven by receiving the AC electric power converted through the first inverter 200 and the second inverter 300. That is, the motor M is driven through the electric power supplied through the first inverter 200 and the second inverter 300 to drive the vehicle.
(18) As shown in
(19) The controller 400 may generate a PWM signal for controlling driving of the motor M. Here, the controller 400 may receive an output current of the motor M, compare the output current of the motor M with a current reference, and generate a PWM signal to direct the output current of the motor M to converge on the current reference.
(20) Further, the controller 400 may determine a failure occurrence position between the first and second inverters 200 and 300 and the motor M on the basis of the detected current at the current sensor 500. In this case, when a current is not detected at a specific position through the current sensor 500, the controller 400 may determine a failure such as disconnection as occurring at the corresponding position. Further, if a failure occurrence position is determined, the controller 400 may drive the motor M by the first inverter 200 or the second inverter 300 according to the failure occurrence position.
(21) For example, to describe with reference to
(22) As described above, in the present disclosure, when a failure such as disconnection or the like occurs between an inverter and a motor, the vehicle is continuously driving in a limp home mode according to the above-described method such that it is possible to store the vehicle in a service center for repairing.
(23) On the other hand, when a failure is determined as not occurring between the first and second inverters 200 and 300 and the motor M, the controller 400 may control the driving of the first inverter 200 and the second inverter 300 on the basis of a required output amount of the motor M. Here, the required output amount of motor M may be a required output amount of the vehicle. In other words, the controller 400 may drive one or more of the first inverter 200 and the second inverter 300 according to a fuel economic driving mode in which the required output amount of the vehicle is relatively low and a sport mode or a high output mode in which the required output amount of the vehicle is relatively high, thereby driving the motor M.
(24) More specifically, when the required output amount of the motor M is smaller than a reference, i.e., in the fuel economic driving mode in which the required output amount of the vehicle is relatively low, the controller 400 may drive the first inverter 200 by inputting the PWM signal to the plurality of first switching elements 210. In other words, when the required output amount of the motor M is smaller than the predetermined reference, the controller 400 converts the electrical energy provided from the energy storage device 100 into AC electric power through the first inverter 200 and transmits the AC electric power to the motor M, thereby improving overall fuel efficiency of the vehicle.
(25) Further, when the required output amount of the motor M is greater than the reference, i.e., in the sport mode or the high output mode in which the required output amount of the vehicle is relatively high, the controller 400 may drive the second inverter 300 by inputting the PWM signal to the plurality of second switching elements 310. In other words, when the required output amount of the motor M is greater than the predetermined reference, the controller 400 converts the electrical energy provided from the energy storage device 100 into AC electric power through the second inverter 300 and transmits the AC electric power to the motor M, thereby outputting a high output.
(26) Referring to
(27) As described above, in the present disclosure, when the required output amount of the motor M is greater than the reference, the PWM signal is converted and input to the first inverter 200 and the second inverter 300 so as to control the plurality of first switching elements 210 to be turned on prior to the plurality of second switching elements 310 and to be turned off later than the plurality of second switching elements 310 such that switching losses of the plurality of first and second switching elements 210 and 310 of the first and second inverters 200 and 300 may be reduced.
(28) Referring back to
(29) Referring to
(30) In accordance with the present disclosure, points of time for turning a first inverter and a second inverter on and off are controlled to be different on the basis of an output amount of a motor such that efficiency and an output of a vehicle can be improved and a switching loss can be reduced.
(31) Further, when a failure such as disconnection or the like occurs between the motor and the first and second inverters, limp home driving is performed such that driving of the vehicle can be maintained.
(32) Although specific embodiments of the present disclosure has been described and illustrated, those skilled in the art will appreciate that various alternations and modifications are possible without departing from the technical spirit of the present disclosure as disclosed in the appended claims.