The present invention relates to an electrical connector, and more particularly, to an electrical connector having a lock mechanism.
In the prior art, in order to prevent a plug electrical connector from being accidentally disengaged from a receptacle electrical connector after the plug and receptacle electrical connectors are coupled together, a lock mechanism is generally formed on the plug electrical connector. When the plug electrical connector is inserted into the receptacle electrical connector, the plug electrical connector and the receptacle electrical connector are locked by the lock mechanism. It is necessary to release the lock mechanism before pulling the plug electrical connector out of the receptacle electrical connector.
In the prior art, the lock mechanism generally comprises a horizontal elastic piece. When an operator presses the horizontal elastic piece downward in a vertical direction by his/her fingers or a tool, the lock mechanism is released. However, releasing the lock mechanism by pressing the horizontal elastic piece in the vertical direction requires a large operation space for the operator's fingers especially in the vertical direction. In some conditions where the electrical connectors are arranged in a high density, there is not enough operation space between adjacent electrical connectors in the vertical direction, and releasing the lock mechanism by pressing the horizontal elastic piece in the vertical direction becomes very difficult or even impossible. Therefore, in arrangements of known electrical connectors, the connectors cannot be arranged in high density, and there is a large distance between adjacent electrical connectors in the vertical direction. Furthermore, the lock mechanism of known electrical connectors is often very complicated, increasing the cost of the electrical connector.
An object of the invention, among others, is to provide an electrical connector which can be arranged in high density having a simple, low cost locking mechanism. The disclosed electrical connector includes a housing, a lock mechanism, a trigger, and a strap. The lock mechanism is mounted on the housing and has a locking member. The lock mechanism is movable between a locking position in which the locking member locks the electrical connector to a mating electrical connector and an unlocking position in which the locking member is disengaged from the mating electrical connector. The trigger is pivotally mounted on the housing and is movable between a deactivated position and an activated position. The trigger moves the lock mechanism from the locking position to the unlocking position as the trigger moves between the deactivated position and the activated position. The strap is connected to the trigger and moves the trigger from the deactivated position to the activated position upon applying an activation force to the strap.
The invention will now be described by way of example with reference to the accompanying figures, of which:
Exemplary embodiments of the present invention will be described hereinafter in detail with reference to the attached drawings, wherein like reference numerals refer to like elements. The present invention may, however, be embodied in many different forms and should not be construed as being limited to the embodiments set forth herein; rather, these embodiments are provided so that the present disclosure will be thorough and complete, and will fully convey the concept of the disclosure to those skilled in the art.
An electrical connector 10 according to the invention is shown generally in
The housing 100 is shown in
The trigger 200 is shown in
The strap 300 is shown in
The lock mechanism 400 is shown in
Assembly of the electrical connector 10 will now be described in greater detail with reference to
The end plates 220 are pivotally connected to the housing 100, so that the trigger 200 is disposed in the first groove 120 and rotatable about an axis in the width direction X of the housing 100. The hole 221 formed in each end plate 220 is mated with one shaft 121 of the housing, as shown in
The strap 300 is placed on a top surface of the housing 100 in the second groove 130 and horizontally extends beyond a rear end of the housing 100 in the length direction Y of the housing 100, as shown in
As shown in
The trigger 200, the strap 300, and the lock mechanism 400 are positioned and received in the first, second and third grooves 120, 130, 140 formed in the housing 100, without occupying any additional space outside the top surface of the housing 100; in this way, the size of the entire electrical connector 10 can be reduced, and the electrical connectors can be arranged in higher density.
The use of the electrical connector 10 will now be described in greater detail with reference to
In the shown embodiments, the electrical connector 10 is a plug connector and the mating electrical connector 20 is a receptacle connector. The mating electrical connector 20 may be mounted on a panel, for example, a circuit board 1. The electrical connector 10 may be electrically connected to ends of wires of a cable. The electrical connector 10 and the mating electrical connector 20 may be a pair of power connectors for transmitting electric power, or alternatively, the electrical connector 10 and the mating electrical connector 20 may be connectors for transmitting signals or other types of connectors.
The electrical connector 10 has a front end and a rear end opposite to the front end in a length direction Y thereof. The front end of the electrical connector 10 is adapted to be inserted into a port 23 of the mating electrical connector 20, so that the conductive contacts in the electrical connector 10 electrically contact with conductive contacts 24 in the mating electrical connector 20. A fourth groove 22 for receiving a front of the resilient arm 420 therein is formed in the mating electrical connector 20, and a mating locking member 21 is formed on a bottom wall of the fourth groove 22.
As shown in
When the electrical connector 10 is inserted into the mating electrical connector 20, the mating locking member 21 is snapped into the locking member 421 formed in one end of the resilient arm 420 of the electrical connector 10. In this way, the electrical connector 10 is locked to the mating electrical connector 20 in the locking position.
With the lock mechanism 400 in the locking position, when an activation force is exerted on the trigger 200 by pulling the strap 300, the trigger 200 is moved from a deactivated position to an activated position and pushes the lock mechanism 400 to move from the locking position to the unlocking position, so that the locking member 421 of the lock mechanism 400 is disengaged from the mating locking member 21 of the mating electrical connector 20. When the activation force is exerted on the trigger 200 by pulling the strap 300, the trigger 200 pivots and pushes the resilient arm 420 in a height direction Z to move to the unlocking position.
The lock mechanism 400 is configured to be able to automatically move from the unlocking position to the locking position upon removing the activation force from the trigger 200 by loosening the strap 300. When the activation force is removed from the trigger 200 by loosening the strap 300, the resilient arm 420 presses against the trigger 200 and automatically pivots the trigger 200 back to the deactivated position, also the locking position of the lock mechanism 400, under a restoring force of the resilient arm 420.
In the shown embodiment, the locking member 421 is a locking opening and the mating locking member 21 is a locking protrusion. In other embodiments, as would be understood by those with ordinary skill in the art, the locking member 421 may be a locking protrusion and the mating locking member 21 may be a locking opening.
Advantageously, in the electrical connector 10 according to the present invention, the lock mechanism 400 may be released by pulling the strap 300 in a horizontal direction instead of pressing the trigger 200 in a vertical direction. Accordingly, the present invention can reduce an operation space for releasing the lock mechanism 400, and the electrical connectors 10 of the present invention may be arranged in high density as the distance between adjacent electrical connectors 10 may become very small. Furthermore, the locking and unlocking mechanisms of the electrical connector 10 are simple to manufacture, decreasing the cost of the electrical connector 10.
Number | Date | Country | Kind |
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201410482109.3 | Sep 2014 | CN | national |
This application is a continuation of PCT International Application No. PCT/IB2015/057191, filed on Sep. 18, 2015, which claims priority under 35 U.S.C. §119 to Chinese Patent Application No. 201410482109.3, filed on Sep. 19, 2014.
Number | Date | Country | |
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Parent | PCT/IB2015/057191 | Sep 2015 | US |
Child | 15463689 | US |