1. Field of the Invention
The present invention is generally related to an electrical connector, and more particularly, to an electrical connector used for connecting with a flexible print circuit board or a flexible ribbon cable.
2. Description of Related Art
A variety of flexible printed circuits are widely used in electronic devices, such as notebooks, mobile phones and fax machines. Various electrical connectors are adapted for connecting corresponding flexible printed circuits. There is a conventional flexible printed circuit connector disclosed in U.S. Pat. No. 5,842,883. The flexible printed circuit connector includes an insulative housing, a plurality of contacts and an actuator. The actuator defines an open position and a close position relative to the insulative housing, and brings the flexible printed circuits into contact with the contacts during a rotation from the open position to the close position. The insulative housing is formed with a pair of horizontal passages and a pair of horizontal slots on an inner face of sidewalls thereof. The actuator has a pair of turning shafts respectively set pivotally in said passages and a pair of projections respectively accepted in said slots for keeping the actuator in the close position. However, the configuration of the insulative housing is complex, and the projections of the actuator are easily destroyed during the actuator rotation to the close position, that brings the actuator become loose and the electrical connection between the flexible printed circuit connector and the flexible printed circuit become unreliable.
Another type of flexible printed circuit connector further includes a pair of metal ears inserted into opposite sidewalls of the insulative housing. Each metal ear has a first sidewall with a pivot portion at an end thereof, a second sidewall paralleled to the first sidewall for fixing the metal ear to the insulative housing and a bottom plate joining the first and second sidewalls. The actuator is assembled on the insulative housing by pivotally engaging with the pivot portion of the metal ears set on the insulative housing. But this arrangement of the actuator can not ensure the actuator in the close position reliable and that will influence the electrical connection between the flexible printed circuit connector and the flexible printed circuit.
Hence, an electrical connector is highly desired to overcome the aforementioned disadvantages of the prior art.
Accordingly, an object of the present invention is to provide an electrical connector, which prevents an actuator from loosing and has a reliable electrical connection between electrical contacts and a flexible printed circuit.
Another object of the present invention is to provide an electrical connector, which provides a pair of metal ears locking the actuator in a close position.
In order to achieve the object set forth, an electrical connector is provided. The electrical connector comprises an insulative housing, a plurality of electrical contacts received in the insulative housing, a pair of metal ears respectively inserted into lateral sides of the insulative housing and an actuator assembled on the insulative housing via the metal ears. The insulative housing defines a longitudinal direction and a mating direction perpendicular to the longitudinal direction and has a base portion and a mating portion extending forwardly along the mating direction from the base portion. Each metal ear stamped by a piece of metal has a main body, an elastic arm and a latch arm both extending from an upside of an end of the main body to define a hole together and a claw formed on the other end of the main body adjacent to an end of the mating portion away from the base portion in the mating direction. The actuator has an approximately rectangle board and a pair of turning shafts projecting from lateral sides of the board. The turning shafts are pivotally received in corresponding holes of the metal ears and abut against corresponding elastic arms of the metal ears. When a flexible printed circuit is inserted into the electrical connector, the actuator is rotated from an open position to a close position relative to the insulative housing to press the electrical contacts against the flexible printed circuit and achieve an electrical connecting between the electrical contacts and the flexible printed circuit. Finally, the claws of the metal ears lock the actuator in the close position reliably to prevent the actuator from loosing. During the process of the claw locking with the actuator, the claw of each metal ear and the actuator collide with each other in the mating direction. Since the elastic arms of the metal ears abutting against the turning shafts of the actuator are elastic, the actuator is allowed to move rearwardly and is prevented from destroying the claw.
Other objects, advantages and novel features of the present invention will be drawn from the following detailed description of a preferred embodiment of the present invention with attached drawings:
Reference will now be made in detail to the preferred embodiment of the present invention.
Referring to
The insulative housing 22 defines a longitudinal direction and a mating direction perpendicular to the longitudinal direction. The insulative housing 22 comprises a base portion 220, a mating portion 222 extending forwardly along the mating direction from a center of the base portion 220 and two brachial portion 224 extending forwardly from opposite ends of the base portion 220. The base portion 220 defines a plurality of channels 226 arranged in an upper line and a lower line and running through the base portion 220. Each channel 226 in the upper line is face to face with a corresponding channel 226 in the lower line. The mating portion 222 defines a plurality of passages 228 respectively communicating with corresponding channels 226 in the lower line of the base portion 220 and passing through the mating portion 222. Furthermore, the insulative housing 22 defines a pair of slots 230 between each brachial portion 224 and the mating portion 222 and through the base portion 220 rearwardly for receiving the metal ears 26.
Referring to
The actuator 28 defines an open position and a close position relative to the insulative housing and has an approximately rectangle board 280, a pair of turning shafts 282 projecting from lateral sides of the board 280 and a pair of blocks 284. The board 280 comprises a top wall 286, a bottom wall 288, a front wall 290 and a rear wall 292 both joining the top wall 286 and the bottom wall 288. The turning shafts 282 are near the rear wall 292. The blocks 284 are disposed symmetrically on opposite sides of the board 280 and near the front wall 290 for engaging with the metal ears 26.
Referring to
Referring to
The claw 266 of each metal ear 26 is adjacent to an end of the mating portion 222 away from the base portion 220 of the insulative housing 22 in the mating direction. The claw 266 is bended from an end of the main body 260, and has an upright portion 267 extending downwardly from an end of the main body 260, a flat portion 268 extending forwardly from an end of the upright portion 267, a locking portion 269 extending upwardly from an end of the flat portion 268. The flat portion 268 has a soldering portion at a center thereof for soldering the metal ears 26 to the print circuit board to enhance the stability of the connecting between the electrical connector 20 and the print circuit board. And the locking portion 269 is formed with a curve face for leading the actuator 28 moving downwardly.
When assembling the actuator 28 on the electrical connector 20, first, the metal ears 26 are partially received the insulted housing 22, the turning shaft 282 of the actuator 28 are respectively plugged in the holes 265 of the metal ears 26, then the metal ears 26 are completely inserted into the insulted housing 22. Finally the flat portion 268 of the metal ears 26 and the soldering portion 246 the electrical contacts 24 are respectively soldered with the print circuit board. After the electrical connector 20 is assembled, the distance between the rear wall 292 of the actuator 28 and the base portion 220 is further than the distance between the electrical contacts 24 and the base portion 220 to allow the actuator to rotate freely from the open position to the close position.
Referring to
During the process of the claw 266 of each metal ear 26 locking with the actuator 28, the claw 266 and the actuator 28 collide with each other in the mating direction. Since the stretch tails 263 of the elastic arms 262 abutting against the turning shafts are elastic, the actuator 28 is allowed to move rearwardly in the mating direction to reduce a distortion of the claw 266 and prevent the claw 266 from yielding. When the actuator 28 is completely locked by the claws 266, the turning shafts 282 are secured in the holes 265, the stretch tails 263 of the elastic arms 262 abut against the turning shafts 282, that arrangement can avoid the turning shafts 282 shaking in the hole 265.
Furthermore, the claw 266 of the metal ears 26 is bended with a extending portion, and the intensity of tension of the claw 266 can be enhance by increasing the length of the extending portion of the claw 266. And the metal ears can be replaced with mounting ears formed from another elastic material.
It is to be understood, however, that even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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2004 2 0622054 U | Jun 2004 | CN | national |
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Number | Date | Country | |
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20050287865 A1 | Dec 2005 | US |