This application claims benefit of priority to European Patent Application No. 20166374.7 filed in the European Patent Office on Mar. 27, 2020, the entire disclosure of which is hereby incorporated by reference.
The invention relates to an electrical connector, and, more particularly to a system for mating two electrical connectors with each other.
It is known to use mate-assist systems on electrical connectors, in particular when such connectors are used in automotive applications, and especially where either a high number of input/output connections per connector are required or where the terminal has a large cross-section often required for high power connections.
Such an electrical connector includes:
When a high number of wires or cables are connected to the terminals and/or when cables with a large section are connected to the terminals, the cable harness becomes quite rigid. Further, the cables may be short and/or sometimes there is not much room around the connector and the mating connector. Then the bending of the cables may be difficult and consequently, it can be difficult to find a proper alignment of the connector and the mating connector along the mating direction.
Further, as schematically illustrated in
An aim of the disclosure is to present a connector and/or a connector assembly that at least partially mitigates the problems encountered with the prior art connectors.
According to one or more aspects of the present disclosure, an electrical connector includes electrical terminals, a housing having the electrical terminals accommodated therein, and a mate assist system for assisting in mating the electrical connector to a mating electrical connector. The mate assist system includes a user actuatable member longitudinally slidably mounted on the housing configured to slide along an operating direction between a rear position and a forward position, a first rack section extending parallel to the operating direction, and a first rotatable cam member including a cam slot for receiving a first mounting pin extending from a first side of the mating electrical connector. The first cam member has a first gear section with teeth engaging the first rack section. The engagement of the teeth with the first rack section results in the rotation of the first cam member in a first direction of rotation when the user actuatable member is actuated from the rear position to the forward position. The mate assist system also has a second rack section extending parallel to the first rack section and a second rotatable cam member including a cam slot for receiving a second mounting pin extending from a second side of the mating electrical connector. The second side is opposite to the first side of the mating electrical connector. The second cam member has a second gear section with teeth engaging said second rack section. The engagement of the teeth of the second gear section with the second rack section results in the rotation of the second cam member in a second direction of rotation when the user actuatable member is actuated from the rear position to the forward position. The first direction of rotation is opposite to the second direction of rotation when the first cam member and the second cam member are viewed from a same side of the connector.
In one or more embodiments of the electrical connector according to the previous paragraph, respective cam slots of the first and second cam members share a cam race and the first and second cam members rotate about a shared axis.
In one or more embodiments of the electrical connector according to any one of the previous paragraphs, the user actuatable member includes the first and second rack sections and the first and second rotatable cam members are rotatably mounted to the housing.
In one or more embodiments of the electrical connector according to any one of the previous paragraphs, the user actuatable member has four walls generally extending in planes parallel to a longitudinal central axis and defining a generally rectangular cross-section, the first and second rack sections being located respectively on an inner surface of the user actuatable member and generally symmetrically arranged about the longitudinal central axis.
In one or more embodiments of the electrical connector according to any one of the previous paragraphs, the first and second rotatable cam members are identical.
In one or more embodiments of the electrical connector according to any one of the previous paragraphs, the housing has four outer surfaces generally extending in planes parallel to a longitudinal central axis and defining a generally rectangular cross-section, the first and second rotatable cam members being each respectively mounted on an opposed outer surface.
In one or more embodiments of the electrical connector according to any one of the previous paragraphs, the first and second rotatable cam members are each respectively mounted on opposed outer surfaces of the four outer surfaces, perpendicular to a line that joins two terminals.
In one or more embodiments of the electrical connector according to any one of the previous paragraphs, the electrical connector further includes locking means slidably mounted along a locking direction parallel to the operating direction, between an unlocking position and a locking position. The locking means engages at least one of the first and second rotatable cam members when the user actuatable member is in its forward position.
According to one or more aspects of the present disclosure, an electrical connector assembly includes the electrical connector according to any one of the previous paragraphs and a mating connector. First and second mounting pins are respectively arranged on opposite outer surfaces of the mating connector housing.
According to one or more aspects of the present disclosure, an electrical connector assembly includes the electrical connector according to any one of the previous paragraphs and a mating connector. First and second mounting pins protrude in opposite directions along a shared axis.
The present invention will now be described, by way of example with reference to the accompanying drawings, in which:
An example of a connector assembly 100 is shown in
The mating connector 2 is for example a male connector with a dielectric housing 3 accommodating two male power terminals 4 extending longitudinally parallel to an operating or mating direction OD. Each terminal 4 has a linking end 5 for a connection with a busbar or a cable. Each terminal 4 also has a connection end (not shown) intended to be mated with a female power terminal (not shown) accommodated in the housing 11 of the connector 1. The mating connector 2 also includes interlock terminals (not shown) electrically linked to signal wires 6.
The housing 3 accommodates each one of the male power terminals 4 in a separate cavity 7. The housing 3 includes a flange 8 for mounting the mating connector 2 onto a wall, a box, or any other equipment. The housing 3 includes walls 9 extending in the operation direction OD, perpendicular to the flange 8. For example, each wall 9 has a generally tubular shape. The housing 3 includes two mounting pins 10. For example, each mounting pin 9 extends radially perpendicular to the operation direction OD, from a wall 9. The two mounting pins 9 are, for example, aligned to each other in the same axis PD and protrude from the housing 3 on opposite directions along this same axis PD. Shielding and sealing means (not shown) are mounted to the mating connector 2.
The connector 1 includes a housing 11, a user actuatable member 20 (or slider), two cam members 30 and two female power terminals (not shown) accommodated in the housing 11. The female power terminals are electrically linked to cables (not shown) with cross sections ranging, for example, between 35 to 95 square millimetres (and possibly even higher). Shielding and sealing means are mounted to the connector 1. The housing 11, the user actuatable member 20 and the two cam members 30 are made of dielectric material. The two cam members 30 are identical. This reduces the number of different parts to be manufactured and managed. They can be manufactured in the same mould cavity.
As shown in
The user actuatable member 20 forms a slider which is guided along the operation direction OD with rails 28 slidably engaged in counterpart rails 29 protruding on the outer surfaces of the housing 11 (see
Each cam member 30 is rotatably mounted onto an outer lateral surface 12 of the housing, between this outer lateral surface 12 and the inner surface 23A or 24A of a lateral wall 23 or 24 of the user actuatable member 20. As shown in
When the connector 1 is directed toward the mating connector 2, the connector 1 and the mating connector 2 are oriented in relation to each other so that each mounting pin 10 faces a corresponding cam member inlet 32. Advantageously the user holds the connector 1 by the user actuatable member 20 which is in its rear position. When moving the connector 1 and the mating connector 2 further toward each other, each mounting pin 19 enters a cam slot 31. When each mounting pin 10 abuts a stop surface 35 of the cam slot 31, there is a resistance in the movement of the respective housings of the connector and mating connector toward each other. Then, if the user actuatable member 20 is pushed from its rear position towards its forward position, the first 25 and second 26 rack sections engage the teeth 34 respectively of the first and second cam members 30. As a result, each cam member 30 rotates and the mounting pins 10 are urged and guided in their respective cam slot 31.
As shown in
Locking means 40 are slidably mounted along a locking direction parallel to the operating direction, between an unlocking position and a locking position.
In the forward position of the user actuatable member 20, the locking means 40 can be pushed from its unlocking position to its locking position, where it engages at least one of the rotatable cam members 30. Then, the rotation of at least one rotatable cam member 30 is blocked by the locking means 40 and this rotatable cam member 30 can no longer rotate. The user actuatable member 20 is locked as well.
The cam members 30 are the same. Consequently, when seen from the same direction, the cam slots 31 are directed in opposite directions (clockwise for one of the cam members, and counterclockwise for the other). The cam member 30 shown in
As shown in
Further, due to the double mate-assist system (cam member 30/mounting pin 10) the robustness of the connector assembly 100 is increased.
Alternative embodiments of the connector assembly 100 may be envisioned. For example, a connector assembly may be provided with or without electromagnetic shielding and/or with or without a sealing means.
The cam members 30 can be mounted on the user actuatable member 10 and the rack sections 25, 26 can be mounted on the connector housing 11.
The connector 1 can have a third rack section and a fourth rack section and a third rotatable cam member and a fourth rotatable cam member, the third and fourth rotatable cam members are arranged on opposed outer surfaces which are perpendicular to the outer surfaces onto which the first and second rotatable cam members 30 are mounted.
Number | Date | Country | Kind |
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20166374.7 | Mar 2020 | EP | regional |