In-wheel motor vehicle
11104217 · 2021-08-31
Assignee
Inventors
Cpc classification
B60K2001/003
PERFORMING OPERATIONS; TRANSPORTING
B60K17/356
PERFORMING OPERATIONS; TRANSPORTING
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
H02K7/1846
ELECTRICITY
B60K1/00
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/14
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
B60K17/354
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/7072
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
International classification
B60K1/00
PERFORMING OPERATIONS; TRANSPORTING
H02K7/18
ELECTRICITY
B60K7/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The vehicle includes a pair of power control units (PCUs) provided corresponding to each of a pair of in-wheel motors. The pair of PCUs include two PCUs having a common structure. The PCU includes a cuboid housing, an MG terminal provided on a first side surface of the cuboid housing, and a battery terminal provided on a second side surface orthogonal to the first side surface. Each of the pair of power control units is arranged such that each of the MG terminals faces a vehicle width direction in which a corresponding in-wheel motor is located and each of the battery terminals faces a same direction in a vehicle front-rear direction.
Claims
1. An in-wheel motor vehicle comprising: a pair of in-wheel motors corresponding to each of a pair of wheels; a battery for storing electric power for driving the pair of in-wheel motors; and a pair of power control units configured to control each of the pair of in-wheel motors, the pair of power control units including two power control units having surfaces that contact each other, wherein each power control unit comprises: a cuboid housing, an MG terminal provided on a first side surface of the cuboid housing, for connecting an MG cable which is connected to an in-wheel motor, among the pair of in-wheel motors, and a battery terminal provided on a second side surface orthogonal to the first side surface, for connecting a battery cable which is connected to the battery, and wherein each of the pair of power control units is arranged such that the MG terminal of each power control unit faces a vehicle width direction in which a connected in-wheel motor is located and both of the battery terminals face a same direction that is in a vehicle front-rear direction.
2. The in-wheel motor vehicle according to claim 1, wherein the surfaces in contact with each other are side surfaces of the cuboid housings that are opposite the first side surface.
3. The in-wheel motor vehicle according to claim 1, wherein each power control unit comprises: a cooler provided inside the cuboid housing, and a connection port provided on a side surface opposite to the second side surface, for connecting between the cooler and an external pipe.
4. The in-wheel motor vehicle according to claim 1, wherein the battery terminals of both power control units face towards the battery.
5. The in-wheel motor vehicle of claim 1, wherein the vehicle comprises two sets of the pair of in-wheel motors, and two sets of the pair of power control units.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENT
(13) Embodiments of the present disclosure will be described below with reference to the drawings. Note that when the numerals of the numbers, the quantities, the amounts, the ranges and the like of the respective elements are mentioned in the embodiments shown as follows, the present disclosure is not limited to the mentioned numerals unless specially explicitly described otherwise, or unless the disclosure is explicitly specified by the numerals theoretically. Further, the structures, steps and the like that are described in the embodiments shown as follows are not always indispensable to the disclosure unless specially explicitly shown otherwise, or unless the disclosure is explicitly specified by the structures, steps and the like theoretically.
FIRST EMBODIMENT
1-1. CONFIGURATION OF IN-WHEEL MOTOR VEHICLE OF FIRST EMBODIMENT
(14) Hereinafter, First Embodiment will be described with reference to the drawings.
(15) The in-wheel motor vehicle 100 according to the first embodiment includes four wheels 10. In the four wheels 10, the front wheels and the rear wheels are arranged apart from each other in the X direction, and the left wheels and the right wheels are arranged apart from each other on the same axle extending in the Y direction. In the following description, when distinguishing the wheels 10 in particular, the right front wheel, the left front wheel, the right rear wheel, and the left rear wheel are denoted as wheels 10fr, 10fl, 10rr, and 10rl, respectively.
(16) Inside the pair of wheels 10rr and 10rl, in-wheel motors 12 for independently driving the corresponding wheels are disposed. In the following description, when the in-wheel motors 12 provided for the wheels 10rr and 10rl are particularly distinguished, it will be referred to as in-wheel motors 12rr and 12rl, respectively.
(17) The pair of in-wheel motors 12rr and 12rl are configured as brushless motors, for example. The rotation torques of the in-wheel motors 12rr and 12rl are transmitted to the corresponding wheels 10rr and 10rl, respectively. In the vehicle 100 according to the first embodiment, the braking and driving forces generated in the wheels 10rr and 10rl can be independently controlled by independently controlling the rotational torques of the in-wheel motors 12rr and 12rl.
(18) The pair of in-wheel motors 12rr and 12rl are connected to a corresponding power control unit 20 via an MG cable 14. Hereinafter, the power control unit 20 is simply referred to as “PCU” 20. In the following explanation, when the MG cable 14 and the PCU 20 connected to the pair of in-wheel motors 12rr and 12rl are particularly distinguished from each other, they are denoted as MG cables 14rr and 14rl and PCUs 20rr and 20rl, respectively. The pair of PCUs 20 include two PCUs 20rr and 20rl having the same structures. The configuration and layout of the respective PCU 20 will be described in detail later. The MG cable 14 is configured as a three-phase cable for passing a three-phase alternating current, for example.
(19) A battery 16 is disposed at the central of the vehicle 100. The battery 16 is connected to the PCU 20 via battery cables 18. The PCU 20 boosts DC power supplied from the battery 16 and converts the DC power into AC power. The PCU 20 supplies the converted AC power to the in-wheel motor 12. As a result, the in-wheel motor 12 generates driving torque by power running control, and directly generates driving force to the wheels 10rr and 10rl.
(20) A radiator 22 is disposed in front of the vehicle 100. As will be described in detail later, the PCU 20 includes a cooler for cooling heat generated by supplying power. The radiator 22 is connected to the cooler of the PCU 20 via an external pipe 24. The PCU 20 is cooled by exchanging heat between the radiator and the cooler by circulation of the coolant through the external pipe 24.
1-2. CONFIGURATION OF POWER CONTROL UNIT
(21) Next, the configuration of the PCU 20 will be described.
(22) As shown in
(23) Various electric components for controlling the electric power supplied to the in-wheel motor 12 are mounted inside the PCU 20. Specifically, as shown in
1-3. IN-VEHICLE STRUCTURE OF POWER CONTROL UNIT
(24) Next, a in-vehicle structure of the PCU 20, which is characteristic of the vehicle 100 of the first embodiment, will be described.
(25) According to the PCU 20 of such an arrangement, the MG terminal 202rr of the PCU 20rr is direct toward the right side (i.e., −Y side) of the vehicle in which the in-wheel motor 12rr is arranged, and the MG terminal 202rl of the PCU 20rl is direct toward the left side (i.e., +Y side) of the vehicle in which the in-wheel motor 12rl is arranged. This makes it possible to prevent the MG cables 14rr and 14rl from becoming complicated to be routed.
(26) Both the battery terminal 204rr of the PCU 20rr and the battery terminal 204rl of the PCU 20rl faces the front side (i.e., +X direction) of the vehicle in which the battery 16 is located. In this manner, since the battery terminals 204rr and 204rl are provided in the same direction, it is possible to prevent the connection of the battery cable 18 from becoming complicated.
(27) Both the connection port 206rr of the PCU 20rr and the connection port 206rl of the PCU 20rl faces the rear side (i.e., −X direction) of the vehicle. This makes it possible to prevent the external pipe 24 from becoming complicated.
(28) The PCU 20 has a third side surface S3 on which a terminal or a connection port for connection with another device is not provided. As a result, the PCUs 20rr and 20rl can be arranged in contact with each other, so that the arrangement can be made compact.
(29) As described above, according to the vehicle 100 of the first embodiment, since it is possible to deal with the problem by using a pair of PCU 20 having the same configuration without requiring dedicated PCU corresponding to the control of the two in-wheel motors, it is possible to provide an in-wheel motor vehicle excellent in cost-reduction effects.
1-4. MODIFICATION EXAMPLES
(30) The in-wheel motor vehicle 100 of the first embodiment may be modified as described below.
(31) The pair of PCUs 20rr and 20rl may be disposed without contacting each other. That is, the pair of PCUs 20rr and 20rl may have a gap between the third side surfaces S3. This also applies to the vehicle 100 of a second embodiment, which will be described later.
(32) The PCU 20 may be configured without the cooler. In this case, since the PCU 20 does not include the connection port 206, the layout of the connection port 206 does not need to be considered.
(33) The positional relation between the battery 16 and the PCU 20 is not particularly limited. That is, the battery 16 may be disposed not on the side facing the second side surface S2 of the PCU 20, but on the side facing the fourth side surface S4 of the PCU 20, for example. This also applies to the vehicle 100 of the second embodiment, which will be described later.
(34) The in-wheel motor vehicle 100 may have a configuration in which not only the rear wheels but also all four wheels 10 are provided with in-wheel motors.
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Second Embodiment
(36) Next, features of the in-wheel motor vehicle of the second embodiment will be described.
2-1. FEATURES OF POWER CONTROL UNIT
(37) The in-wheel motor vehicle 100 according to the second embodiment is characterized by the layout and structure of the PCU 20 battery terminals.
(38) In the pair of PCUs 20rr and 20rl, the PCU 20rl is rotated by 180 degrees about the Z-direction axis so that both are axially symmetric with respect to the Z-axis. The pair of PCUs 20rr and 20rl are arranged such that the third side surfaces S3 are contacted with each other.
(39) Further, as shown in these drawings, connection ports 209rr and 209rl of variable connection directions are respectively arranged on the bottom surface S6 of the pair of PCUs 20rr and 20rl. The connection ports 209rr and 209rl are configured so that the connection direction with the external pipe 24 can be adjusted in an arbitrary direction along the bottom surface S6. The structure of the connection ports 209rr and 209rl is not particularly limited. That is, the connection ports 209rr and 209rl may be realized by using a known technique for flexibly rotating the direction of the connection ports.
(40) According to the PCU 20 of such an arrangement, the MG terminal 202rr of the PCU 20rr faces the right side (i.e., −Y side) of the vehicle in which the in-wheel motor 12rr is arranged, and the MG terminal 202rl of the PCU 20rl faces the left side (i.e., +Y side) of the vehicle in which the in-wheel motor 12rl is arranged. This makes it possible to prevent the MG cables 14rr and 14rl from becoming complicated to be routed.
(41) Both the battery terminals 208rr of the PCU 20rr and the battery terminals 208rl of the PCU 20rl direct the connection direction with the battery cables 18 toward the front of the vehicle in which the battery 16 is disposed (+X direction). This makes it possible to prevent the battery cable 18 from becoming complicated to be routed.
(42) Both the connection port 209rr of the PCU 20rr and the connection port 209rl of the PCU 20rl direct the connection direction with the external pipe 24 toward the front of the vehicle in which the radiator 22 is disposed (+X direction). This makes it possible to prevent the external piping 24 from becoming complicated.
2-2. MODIFICATION EXAMPLES
(43) The in-wheel motor vehicle 100 of the second embodiment may be modified as described below.
(44) The PCU 20 may be configured without a cooler. In this instance, the PCU 20 need not consider the construction and arrangement of the ports 209rr, 209rl.
(45) The in-wheel motor vehicle 100 may be configured to have an in-wheel motor on all four wheels 10. In this instance, similarly to the configuration of the vehicle 100 of the first embodiment, the pair of PCUs 20fr and 20fl having the same configuration as the pair of PCUs 20a and 20rl of the second embodiment may be provided.
(46) The pair of PCUs 20a and 20rl is not limited to the embodiment in which the battery terminals 208rr, 208rl are directed upward (+Z direction), may be placed so that the battery terminals 208rr, 208rl are directed downward (−Z direction).