Electrical connector assembly with a releasable locking structure
11637396 · 2023-04-25
Assignee
- Hyundai Motor Company (Seoul, KR)
- Kia Corporation (Seoul, KR)
- Yura Co., Ltd (Hwaseong-si, KR)
- YURA CORPORATION CO., LTD. (Seongnam-si, KR)
Inventors
- Sam Gyun Lee (Seoul, KR)
- Jeong Hyeon Sim (Hwaseong-si, KR)
- Young Ho Jo (Seongnam-si, KR)
- Hae Sung Park (Suwon-si, KR)
Cpc classification
H01R13/4538
ELECTRICITY
International classification
Abstract
An electrical connector assembly has a moving plate for protecting a terminal, which may easily separate the moving plate from a male plate for a rework operation for realigning a terminal pin without damage and may decrease a force when a female connector is inserted into and fastened to the male connector to push the moving plate. This improves the quality by reducing the difficulty when the female connector is inserted into and fastened to the male connector and improves a locking projection structure of the female connector such that the moving plate may easily return to the original location at all times when the female connector is separated.
Claims
1. An electrical connector assembly comprising a male connector, a moving plate movably mounted within the male connector for holding a plurality of terminal pins, and a female connector inserted into and fastened to the male connector, wherein a slide groove having a fastening projection is formed on an inner surface of a side plate of the male connector, and outer surfaces of both sides of the moving plate are formed with elastic hooks configured to move along the slide groove while being locked to the fastening projection, wherein a locking end is formed on a rear plate of the moving plate such that the moving plate is fixed to a location for holding the terminal pin, and elasticity fixing levers constraining the locking end are formed on inner surfaces of an upper plate and a lower plate of the male connector, wherein a front edge location of the female connector is formed with a constraint release protrusion configured to push the elasticity fixing levers constraining the locking end in the constraint release direction, wherein both side plates of the moving plate are formed with elasticity return levers, and wherein locking projections are formed to protrude from both side surfaces of the female connector and configured to push up the elasticity return levers.
2. The electrical connector assembly of claim 1, wherein, at locations of both sides of a rear plate of the male connector, tool insertion holes are formed for introducing jig tools for unlocking toward the elastic hooks locked to the fastening projections.
3. The electrical connector assembly of claim 1, wherein the locking end is formed on all sides of the rear plate of the moving plate, and the elasticity fixing levers are formed on locations of both sides of the upper plate and the lower plate of the male connector.
4. The electrical connector assembly of claim 3, wherein a support end for constraining the locking end is integrally further formed adjacent to the elasticity fixing levers.
5. The electrical connector assembly of claim 3, wherein an upper plate and a lower plate of the moving plate are formed with openings such that the elasticity fixing levers are configured to enter into the locking end to be constrainable.
6. The electrical connector assembly of claim 1, wherein, to decrease a force by which the constraint release protrusion of the female connector pushes the elasticity fixing levers in the constraint release direction, a rear end of the elasticity fixing levers is integrally connected to rear ends of the upper plate and the lower plate of the male connector to maximize a length of the elasticity fixing levers.
7. The electrical connector assembly of claim 1, wherein the locking projections are formed to be inclined toward a front side of the female connector at 45° to 60° with respect to both side surfaces of the female connector in order to guarantee that the elasticity return levers are pushed up while minimizing a gap with a lower end of the elasticity return levers.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other features of the present disclosure are now described in detail with reference to certain examples thereof illustrated in the accompanying drawings, which are given herein below by way of illustration only, and thus do not limit the present disclosure, and wherein:
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(17) It should be understood that the appended drawings are not necessarily to scale, presenting a somewhat simplified representation of various features illustrative of the basic principles of the disclosure. The specific design features of the present disclosure as disclosed herein, including, for example, specific dimensions, orientations, locations, and shapes should be determined by the particular intended application and use environment.
(18) In the figures, reference numbers refer to the same or equivalent sections of the present disclosure throughout the several figures of the drawing.
DETAILED DESCRIPTION
(19) Hereinafter, an embodiment of the present disclosure is described in detail with reference to the accompanying drawings. When a component, device, element, or the like of the present disclosure is described as having a purpose or performing an operation, function, or the like, the component, device, or element should be considered herein as being “configured to” meet that purpose or to perform that operation or function.
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(21) As illustrated in
(22) A male connector housing having the form illustrated in
(23) Referring to
(24) Referring to
(25) Therefore, when the moving plate 200 is inserted into and fastened to the male connector 100, as also illustrated in
(26) The moving plate 200 inserted into and fastened to the male connector 100 should be fixed to a location for holding the terminal pin 400 before the female connector 300 is fastened.
(27) To this end, as illustrated in
(28) A support end 109 integrated just next to or adjacent the elasticity fixing lever 106 serves to substantially constrain the locking end 203.
(29) In an embodiment, the locking end 203 is formed on locations of all sides of the rear plate 202 of the moving plate 200. The elasticity fixing lever 106 is formed on locations of both sides of the upper plate 104 and the lower plate 105 of the male connector 100.
(30) In an embodiment, as illustrated in
(31) Therefore, when the moving plate 200 is inserted into and fastened to the male connector 100, as also illustrated in
(32) As illustrated in
(33) Here, a process of assembling the electrical connector assembly according to the present disclosure is described in order as follows.
(34) First, an operation of fastening the terminal pin 400 to the male connector 100 and the female connector 300 precedes.
(35) As illustrated in
(36) At this time, as illustrated in
(37) As illustrated in
(38) Meanwhile, after the terminal pins 400 are inserted into and fastened to the male connector 100, as illustrated in
(39) To this end, as illustrated in
(40) Therefore, as illustrated in
(41) As described above, upon the rework operation for realigning the terminal pins 400 after the terminal pins 400 of the male connector 100 are mis-inserted into the moving plate 200 or the like, it is possible to easily separate the moving plate 200 from the male connector 100 without damage. This facilitates the rework operation such as realigning the terminal pins and facilitates recycling of the moving plate 200 again without damage.
(42) Next, the female connector 300 may be fastened to the male connector 100 in the state where the terminal pins 400 of the male connector 100 are correctly aligned and the moving plate 200 holds the front ends of the terminal pins 400.
(43) As illustrated in
(44) Therefore, as illustrated in
(45) When the elasticity fixing lever 106 is pushed in the constraint release direction, the support end 109 is pushed together. Thus, the moving plate 200 becomes in the state of being movable to the inside of the male connector 100.
(46) Subsequently, when the female connector 300 continues to be inserted into and fastened to the male connector 100 deeper, the moving plate 200 maximally moves to the inside of the male connector 100 by an insertion and pressing force of the female connector 300.
(47) As described above, when the moving plate 200 maximally moves to the inside of the male connector 100, the terminal pins 400 of the male connector 100 are arranged to protrude to the outside of the moving plate 200. Thus, the respective terminal pins 400 may be easily inserted into and fastened to the female connector 300 to be conductible.
(48) The length of the elasticity fixing lever 106 may be maximized in order to decrease the force by which the constraint release protrusion 301 of the female connector 300 pushes the elasticity fixing lever 106 in the constraint release direction to an appropriate level.
(49) For example, as illustrated in the left side image (a) of
(50) On the other hand, as illustrated in the right side image (b) of
(51) To this end, as illustrated in
(52) Therefore, when the female connector 300 is inserted into and fastened to the male connector 100 to push the moving plate 200, it is possible to decrease the force by which the constraint release protrusion 301 of the female connector 300 pushes the elasticity fixing lever 106 in the constraint release direction to the appropriate level.
(53) Thus, this may improve the quality, i.e., reduce the difficulty when the female connector 300 is inserted into and fastened to the male connector 100.
(54) Here, a process of separating the female connector of the electrical connector assembly according to the present disclosure from the male connector is described as follows.
(55) When the female connector 300 is separated from the male connector 100, the moving plate 200 should return to the location for holding the front ends of the terminal pins 400, which are the original locations.
(56) To this end, as illustrated in
(57) At this time, when the female connector 300 is fastened to the male connector 100, the locking projection 302 of the female connector 300 is maintained in the state of having gone through the elasticity return lever 207 of the moving plate 200.
(58) In such a state, an operator laterally moves the female connector 300 to separate the female connector 300 from the male connector 100, as illustrated in
(59) Furthermore, if the locking projection 302 is formed to be inclined toward the front side of the female connector 300 at 30°, which is less than 45°, with respect to both side surfaces of the female connector 300, the gap between the locking projection 302 and the elasticity return lever 207 may be further increased.
(60) Therefore, when the female connector 300 is separated from the male connector 100, the locking projection 302 does not properly push up the elasticity return lever 207. Thus, the moving plate 200 does not return to the location for holding the front ends of the terminal pins 400, which is the original location, thereby losing the unique function of the moving plate holding the terminal pin.
(61) To solve such a problem, in other words, the operation in which the locking projection 302 pushes up the elasticity return lever 207 while minimizing the gap between the locking projection 302 and the elasticity return lever 207 should be guaranteed.
(62) To this end, the locking projection 302 is formed to be inclined toward the front side of the female connector 300 at 45° to 60° with respect to both side surfaces of the female connector 300.
(63) Therefore, as illustrated in
(64) Therefore, when the female connector 300 is separated from the male connector 100, the moving plate 200 may move along the slide groove 103 to easily return to the original location. The unique function of the moving plate holding the front ends of the terminal pins 400 may thus be easily maintained.