Connector for directly connecting an inverter and a motor
09698528 ยท 2017-07-04
Assignee
- AutoNetworks Technologies, Ltd. (Yokkaichi, Mie, JP)
- Sumitomo Wiring Systems, Ltd. (Yokkaichi, Mie, JP)
- SUMITOMO ELECTRIC INDUSTRIES, LTD. (Osaka-shi, Osaka, JP)
Inventors
Cpc classification
H01R13/58
ELECTRICITY
B60L53/16
PERFORMING OPERATIONS; TRANSPORTING
H01R13/28
ELECTRICITY
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
H01R12/91
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
H01R13/5202
ELECTRICITY
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
H01R13/6315
ELECTRICITY
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
H02K5/22
ELECTRICITY
Abstract
A connector includes a first housing (50) supported on a first supporting surface (32A) in an inverter-side terminal block (30) in a floating manner and a second housing (60) supported on a second supporting surface (34A) in the inverter-side terminal block (30) in a floating manner. A first terminal (52) in the first housing (50) mates with an inverter-side terminal (82) in a direction orthogonal to the first supporting surface (32A). A second terminal (62) in the second housing (60) mates with a motor-side terminal (92) in a motor-side terminal block (40) in a direction orthogonal to the second supporting surface (34A). A braided wire (70) has one end connected to the first terminal (52) and another end connected to the second terminal (62) and is arranged slidably in directions along the first supporting surface (32A) and along the second supporting surface (34A).
Claims
1. A connector for connecting an inverter and a motor, comprising: an inverter-side terminal block provided on the inverter side, the inverter-side terminal block having a first mounting portion with a first tube and a first supporting surface extending transverse to the first tube, and further having a second mounting portion with a second tube and a second supporting surface extending transverse to the second tube; a motor-side terminal block provided on the motor side; a first housing mounted at least partly in the first tube and supported on the first supporting surface, the first housing being cross-sectionally smaller than the first tube so that the first housing can float within the first tube on the first supporting surface; a second housing mounted at least partly in the second tube and supported on the second supporting surface, the second housing being cross-sectionally smaller than the second tube so that the second housing can float within the second tube and on the second supporting surface; a first terminal held in the first housing and to be mated with an inverter-side terminal for supplying alternating-current power from the inverter in a direction orthogonal to the first supporting surface; a second terminal held in the second housing and to be mated with a motor-side terminal provided in the motor-side terminal block in a direction orthogonal to the second supporting surface; and a flexible conductive wire having a first end part connected to the first terminal and a second end part connected to the second terminal and arranged slidably in each of directions along the first supporting surface and along the second supporting surface.
2. The connector of claim 1, wherein: the conductive wire is arranged in the inverter-side terminal block; and the first and second supporting surfaces are provided in parallel in the inverter-side terminal block.
3. The connector of claim 1, wherein the first tube opens in a first direction and the second tube opens in a second direction that is opposite to the first direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DESCRIPTION
(9) An embodiment is described with reference to the drawings. In this embodiment, connectors 1 are illustrated which electrically connect an unillustrated inverter and an unillustrated motor, for example, in a hybrid vehicle or an electric vehicle. Note that an X axis, a Y axis and a Z axis orthogonal to each other are shown in a part of each drawing and each axial direction is drawn to be a direction shown in each drawing. Out of these, the Z-axis direction coincides with a vertical direction with an upper side on the planes of
(10) In this embodiment, the inverter is accommodated into an inverter case 10 and the motor is accommodated into a motor case 20 with an upper side as an inverter side and a lower side as a motor side. Note that, in each drawing, only a lower part of the inverter case 10 for covering a lower side of the inverter is shown and only an upper part of the motor case 20 for covering an upper side of the motor is shown.
(11) Six connectors 1 of this embodiment are arranged side by side along the Y-axis direction between the inverter side and the motor side to connect the inverter and the motor as shown in
(12) First, the configurations of the inverter-side terminals 82, the inverter case 10 and the motor case 20 are described. The inverter-side terminal 82 is a male terminal extending from the inverter side electrically connected to the inverter and supplies alternating-current power supplied from the inverter side to the motor. As shown in
(13) As shown in
(14) Next, the configuration of the connector 1 is described. As shown in
(15) As shown in
(16) As shown in
(17) As shown in
(18) On an upper opening side in the first housing 50, the first terminal 52, which is a female terminal, is held by a locking lance 54 extending from the inner wall of the first housing 50 with a connection port thereof facing upward. A part of the first terminal 52 on a side opposite to the connection port extends up to the vicinity of the lower opening along the inner wall of the first housing 50 and serves as a first connecting portion 52A to be connected to the braided wire 70 to be described later.
(19) The first housing 50 is mounted in the first mounting portion 32 with the first protruding portion 51 thereof placed on the first supporting surface 32A of the first mounting portion 32, thereby being supported on the first supporting surface 32A in a floating manner. The first housing 50 is slidable in directions parallel to the first supporting surface 32A, i.e. along the X-Y plane by being supported on the first supporting surface 32A in a floating manner.
(20) As shown in
(21) On a lower opening side in the second housing 60, the second terminal 62, which is a female terminal, is held by a locking lance 64 extending from the inner wall of the second housing 60 with a connection port thereof facing downward. A part of the second terminal 62 on a side opposite to the connection port extends up to the vicinity of the upper opening along the inner wall of the second housing 60 and serves as a second connecting portion 62A to be connected to the braided wire 70 to be described later.
(22) The second protruding portion 61 of the second housing 60 is placed on the second supporting surface 34A of the second mounting portion 34. Further, an annular retainer member 72 is mounted from the lower opening side of the second mounting portion 34 while the second housing 60 is inserted therein. In this way, the second housing 60 is mounted in the second mounting portion 34 with the second protruding portion 61 thereof sandwiched between the second supporting surface 34A and the retainer member 72, thereby being supported on the second supporting surface 34A in a floating manner. The second housing 60 is slidable in directions parallel to the second supporting surface 34A, i.e. along the X-Y plane by being supported on the second supporting surface 34A in a floating manner.
(23) The braided wire 70 is a flexible conductive member and laid slidably in X-Y plane directions in the inverter-side terminal block 30. In other words, the braided wire 70 is arranged slidably in directions along the first supporting surface 32A and directions along the second supporting surface 34A in the inverter-side terminal block 30.
(24) Further, one end part 70A of the braided wire 70 is electrically connected to the first connecting portion 52A of the first terminal 50 held in the first housing 50, and another end part 70B thereof is electrically connected to the second connecting portion 62A of the second terminal 62 held in the second housing 60. Thus, the first and second terminals 52, 62 are electrically connected via the braided wire 70 in the inverter-side terminal block 30.
(25) As shown in
(26) As shown in
(27) As shown in
(28) The connector 1 of this embodiment is configured as described above. Next, its connecting procedure is described. In the case of connecting the inverter and the motor using the connector 1, the main body portion 42 of the motor-side terminal block 40 is placed on the motor-side rib 22 of the motor case 20 via a first seal member S1 and the lower part of the projecting portion 44 is inserted into the motor-side opening 24 of the motor case 20 as shown in
(29) Note that, the first seal member S1 is arranged between the main body portion 42 of the motor-side terminal block 40 and the motor-side rib 22 in assembling the motor-side terminal block 40 with the motor-side 20 as shown in
(30) Subsequently, as shown in
(31) Subsequently, the lower surface of the inverter-side terminal block 30 is placed on the inner wall of the lower part of the inverter case 10 and the lower part of the second housing 60 is inserted into the inverter-side opening 14 of the inverter case 10 as shown in
(32) Subsequently, the inverter case 10 and the motor case 20 are positioned relative to each other in the X-Y plane directions. Here, in this embodiment, an unillustrated knock pin is provided on either one of the inverter case 10 and the motor case 20 and an unillustrated bracket is provided on the other. By fitting these knock pin and bracket, the inverter case 10 and the motor case 20 can be positioned relative to each other in the X-Y plane directions.
(33) Subsequently, as shown in
(34) Note that a second seal member S2 is arranged between the inverter-side rib 12 and the main body portion 42 of the motor-side terminal block 40 in connecting the second terminal 62 and the motor-side terminal 92 as shown in
(35) By the connecting procedure as described above, the inverter-side terminal 82 and the motor-side terminal 92 are electrically connected via the connector 1 and the alternating-current power converted by the inverter is supplied to the motor. Note that since a downward acting force is applied to the motor-side terminal block 40 by the own weight of the inverter-side terminal block 30 with the second terminal 62 and the motor-side terminal 92 connected, the second terminal 62 and the motor-side terminal 92 are unlikely to be separated in the vertical direction.
(36) In the connector 1 according to the embodiment described above, relative positions of the inverter-side terminal 82 and the first terminal 52 may be displaced in each of the X-axis direction, the Y-axis direction and the Z-axis direction due to component variations and assembly variations in fitting the both terminals 82, 52 in the above connecting procedure. In this respect, since the inverter-side terminal 82 and the first terminal 52 are mated in the direction orthogonal to the first supporting surface 32A, i.e. in the Z-axis direction in this embodiment, displacements in the Z-axis direction can be absorbed by changing a degree of mating connection. Further, since the first housing 50 having the first terminal 52 held inside is supported on the first supporting surface 32A in a floating manner and the braided wire 70 connected to the first terminal 52 is slidable in the directions along the first supporting surface 32A, i.e. in the X-Y plane directions, displacements in the X-axis direction and the Y-axis direction can be absorbed by sliding movements of the first housing and the first terminal together with the braided wire 70.
(37) Further, in the connector 1 according to the embodiment described above, relative positions of the motor-side terminal 92 and the second terminal 62 may be displaced in each of the X-axis direction, the Y-axis direction and the Z-axis direction due to component variations and assembly variations in fitting the both terminals 92, 62 in the above connecting procedure. In this respect, since the motor-side terminal 92 and the second terminal 62 are mated in the direction orthogonal to the second supporting surface 34A, i.e. in the Z-axis direction in this embodiment, displacements in the Z-axis direction can be absorbed by changing a degree of mating connection. Further, since the second housing 60 having the second terminal 62 held inside is supported on the second supporting surface 34A in a floating manner and the braided wire 70 connected to the second terminal 62 is slidable in the directions along the second supporting surface 34A, i.e. in the X-Y plane directions, displacements in the X-axis direction and the Y-axis direction can be absorbed by sliding movements of the second housing 60 and the second terminal 62 together with the braided wire 70.
(38) As described above, in the connector 1 of this embodiment, displacements in each of the X-axis direction, the Y-axis direction and the Z-axis direction in fitting the inverter-side terminal 82 and the first terminal 52 and fitting the motor-side terminal 92 and the second terminal 62 can be effectively absorbed. Thus, even if relative positions of the both terminals are displaced in each direction in fitting the inverter-side terminal 82 and the first terminal 52 and fitting the motor-side terminal 92 and the second terminal 62, the terminals can be satisfactorily fitted. As a result, connection between the inverter and the motor can be facilitated.
(39) Further, in the connector 1 of this embodiment, the braided wire 70 is arranged in the inverter-side terminal block 30 and the first and second supporting surfaces 32A, 34A are provided in parallel in the inverter-side terminal block 30. By adopting this configuration, the directions along the first supporting surface 32A and those along the second supporting surface 34A are the same directions. Thus, the braided wire 70 has only to be arranged slidably in one plane direction (X-Y plane direction) and the braided wire 70 can be easily arranged in the inverter terminal 30.
(40) Modifications of the above embodiment are listed below.
(41) Although the first and second supporting surfaces are provided in parallel in the inverter-side terminal block in the above embodiment, the first and second supporting surfaces may not be provided in parallel in the inverter-side terminal block.
(42) Although the inverter-side terminal is a male terminal and the first terminal is a female terminal in the above embodiment, the inverter-side terminal may be a female terminal and the first terminal may be a male terminal.
(43) Although the motor-side terminal is a male terminal and the second terminal is a female terminal in the above embodiment, the motor-side terminal may be a female terminal and the second terminal may be a male terminal.
(44) Although the second housing is supported by the retainer member in the inverter-side terminal block in the above embodiment, supporting modes of the first and second housings in the inverter-side terminal block are not limited.
(45) Although the braided wire is illustrated as an example of a conductive wire in the above embodiment, the configuration of the conductive wire is not limited.
(46) Although the embodiment of the present invention is described in detail above, it is merely illustrative and not intended to limit the scope of claims. The art set forth in the claims includes various modifications and changes of the specific example illustrated above.
LIST OF REFERENCE SIGNS
(47) 1 . . . connector 10 . . . inverter case 20 . . . motor case 30 . . . inverter-side terminal block 32 . . . first mounting portion 32A . . . first supporting surface 34 . . . second mounting portion 34A . . . second supporting surface 40 . . . motor-side terminal block 50 . . . first housing 52 . . . first terminal 60 . . . second housing 62 . . . second terminal 70 . . . braided wire 72 . . . retainer member 80 . . . inverter-side housing 82 . . . inverter-side terminal 90 . . . motor-side housing 92 . . . motor-side terminal