1. Field of the Invention
The present invention relates to an electrical connector provided with a lock mechanism that retains a signal transmission medium inserted into an insulating housing and provided with an unlock mechanism thereof.
2. Description of Related Art
Generally, in various electrical devices, etc., various electrical connectors are widely used as means for electrically connecting various signal transmission media such as flexible printed circuits (FPC) and flexible flat cables (FFC). For example, in an electrical connector mounted and used on a printed wiring board like Japanese Patent Application Laid-Open No. 2009-231069 described below, a signal transmission medium consisting of, for example, a FPC or FFC is inserted to the interior thereof from a front-end-side opening of an insulating housing (insulator), and an actuator (connection operating means) is then turned by operating force of an operator so as to be pushed down toward a connection action position in a connector front side or rear side. As a result, part of a lock member drops in an engagement part provided at a terminal part of the signal transmission medium to achieve an engaged state, and the terminal part of the signal transmission medium is configured to be retained in an approximately immobile state by the lock member.
In this manner, the electrical connector provided with the actuator is configured to operate engagement/detachment of the lock member by subjecting the actuator to a turning operation between a connection cancel position and a connection action position; wherein, operation efficiency may be problematic since the actuator has to be operated separately from the operation of inserting the signal transmission medium (for example, FPC, FFC). Therefore, conventionally, an electrical connector provided with a so-called one-action auto-lock mechanism is sometimes employed, wherein the mechanism is configured so that part of the lock member is elastically displaced so as to be placed over the signal transmission medium inserted in the insulating housing and that part of the lock member then drops in an engagement part of the signal transmission medium to carry out engagement. When an electrical connector provided with such a one-action auto-lock mechanism is used, the signal transmission medium can be retained in an approximately immobile state only by inserting the signal transmission medium to a predetermined position in the electrical connector, wherein operation efficiency is improved.
However, although the one-action auto-lock mechanism employed in conventional electrical connectors has an advantage that locking and retention is carried out only by inserting the signal transmission medium (for example, FPC, FFC) into the electrical connector as described above, when an unlock operation for removing the signal transmission medium from the insulating housing is to be carried out, while carrying out the unlock operation with one hand, an operation of removing the signal transmission medium with the other hand in parallel with the unlock operation has to be carried out. The unlock operation takes labor, and the operation of removing the signal transmission medium cannot be efficiently carried out in some cases.
We disclose the prior art that we are aware of to be materials for the examination of the application as follows.
[Unexamined Publication Gazette 1] JP 2009-231069 A
[Unexamined Publication Gazette 2] JP 2011-108500 A
[Unexamined Publication Gazette 3] JP 2011-108501 A
Therefore, it is an object of the present invention to provide an electrical connector that enables an efficient removal operation of a signal transmission medium consisting of, for example, FPC or FFC with a simple configuration.
In order to achieve the above described object, the present invention employs a configuration of an electrical connector having a lock mechanism having a latch lock part that is engaged with part of a signal transmission medium inserted in an insulating housing and retains an inserted state of the signal transmission medium and an unlock mechanism that causes the signal transmission medium to be removable from the insulating housing by an unlock operation of moving the latch lock part of the lock mechanism from an engagement position to a detachment position with respect to the signal transmission medium; wherein the unlock mechanism is provided with an unlock maintaining part that maintains the latch lock part at the detachment position in conjunction with the unlock operation.
According to the present invention having such a configuration, when the latch lock part of the lock mechanism is to be detached from the signal transmission medium by the unlock operation, the unlock maintaining part, which is moved in conjunction with the unlock operation, causes the latch lock part to be maintained in a state in which it is detached from the signal transmission medium. Therefore, thereafter, the signal transmission medium is maintained in a removable state even without continuing the unlock operation; and the unlock operation can be completed at first for example with one hand, and the signal transmission medium can be removed thereafter.
Herein, in the present invention, it is possible that the lock mechanism has a lock biasing member that retains the latch lock part at the engagement position with respect to the signal transmission medium and an unlock operating part that moves the latch lock part to the detachment position against the lock biasing member; the unlock maintaining part has an unlock maintaining nail that is moved to a position at which the nail abuts the signal transmission medium in conjunction with the unlock operation; and the unlock maintaining nail is configured to be brought into contact with the signal transmission medium with a pressure by biasing force of the lock biasing member so as to retain the latch lock part at the detachment position.
In the present invention, it is possible that the lock biasing member has first and second elastic arm-shaped members that are elastically displaced in two directions, the two directions being in planes approximately orthogonal to an insertion direction of the signal transmission medium and being approximately orthogonal to each other. It is desirable that the first elastic arm-shaped member of the lock biasing member in this case is disposed to be elastically displaceable along a board-thickness direction of the signal transmission medium, and the second elastic arm-shaped member of the lock biasing member is disposed to be elastically displaceable along a board-width direction of the signal transmission medium.
According to the present invention having such a configuration, the lock mechanism and the unlock operation mechanism can be configured to be mutually shared, and the whole electrical connector has a simple configuration.
As described above, in the electrical connector according to the present invention, a lock mechanism having a latch lock part, which retains an inserted state of the signal transmission medium by engagement with the signal transmission medium inserted in an insulating housing, is provided with an unlock maintaining part, which retains the latch lock part at a detachment position in conjunction with an unlock operation. It is configured so that, when the latch lock part of the lock mechanism is to be detached from the signal transmission medium by the unlock operation, an unlock maintaining part, which is moved in conjunction with the unlock operation, causes the latch lock part to be retained in a state in which it is detached from the signal transmission medium, and the signal transmission medium is maintained in a removable state thereafter even without continuing the unlock operation so that the unlock operation is completed at first for example only with one hand, and the signal transmission medium can be removed thereafter. Therefore, a removable operation of the signal transmission medium consisting of, for example, a FPC or FFC can be efficiently carried out with a simple configuration, and reliability of the electrical connector can be significantly improved at low cost.
Hereinafter, an embodiment in which the present invention is applied to an electrical connector, which is to be mounted and used on a wiring board in order to establish connection of a signal transmission medium consisting of a flexible printed circuit (FPC), a flexible flat cable (FFC), or the like, will be explained in detail based on drawings.
[About Overall Configuration of Electrical Connector]
The electrical connector 10 according to the embodiment of the present invention shown in
[About Insulating Housing]
The above described insulating housing 11 is formed of a hollow insulating member, which is extending so as to form a shape of a narrow long flat plate. The longitudinal width direction of the insulating housing 11 will be hereinafter referred to as “connector longitudinal direction”, the upstream side in the direction of inserting the terminal part of the signal transmission medium (for example, FPC or FFC) F will be referred to as “connector front side”, and the downstream side thereof will be referred to as “connector rear side”.
A front edge part (right edge part in
A connector-rear-side edge part (left edge part in
[About Electrically-Conductive Contacts]
The plurality of electrically-conductive contacts 12 inserted in the insulating housing 11 in the above described manner are disposed to be multipolar with appropriate intervals therebetween in the connector longitudinal direction, and the electrically-conductive contacts 12 are formed of thin-plate-shaped metal members having mutually the same shapes. The electrically-conductive contacts 12 are attached so as to be inserted in the medium insertion path from the part attachment opening, which is provided in the rear end side of the insulating housing 11, toward the connector front side in the above described manner. Fixing base parts 12a provided at insertion-direction rear-end parts of the electrically-conductive contacts 12 are fixed by being press-fitted to an inner wall part of the connector rear end side of the insulating housing 11.
Each of the electrically-conductive contacts 12 is used as either for signal transmission or for ground connection in a state in which the electrically-conductive contact is mounted by solder joint with an electrically-conductive path formed on a main printed wiring board (illustration omitted). Therefore, the disposed positions of the electrically-conductive contacts 12 attached in the insulating housing 11 in the above described manner are set to correspond to a wiring pattern provided on the signal transmission medium (for example, FPC or FFC) F, which is to be inserted in the insulating housing 11 through the medium insertion opening 11a. The wiring pattern of the signal transmission medium F is signal-transmission electrically-conductive paths (signal-line pads) or shielded electrically-conductive paths (shielded line pads) disposed at appropriate pitch intervals.
The configuration of each of the electrically-conductive contacts 12 will be explained in detail. First, a board connecting part 12a 1 is formed at a lower end part of the fixing base part 12a, which is press-fitted in the connector rear-end-side part of the insulating housing 11 in the above described manner; and the board connecting part 12a 1 is configured to be connected by soldering to the electrically-conductive path formed on the main printed wiring board (illustration omitted).
Furthermore, a pair of movable beams 12b and 12c is extended so as to be divided into to upper and lower two branches from the above described fixing base part 12a toward the connector front side (right side in
Furthermore, end parts (right-end-side parts in
[About One-Action Auto-Lock Mechanism]
The electrical connector 10 according to the present embodiment is provided with a one-action auto-lock mechanism as described above. As a condition thereof, particularly as shown in
[About Lock Members]
The lock members 13 disposed at the connector-longitudinal-direction both-side parts of the insulating housing 11 in the above described manner constitute the locking mechanism and the unlocking mechanism for the signal transmission medium (for example, FPC or FFC) F. When the signal transmission medium F is inserted into the electrical connector 10, the insertion-side distal edge of the signal transmission medium F abuts part of the lock members 13, more specifically, later-described latch lock parts 13a, thereby causing the latch lock parts 13a to retract toward the outer sides in the connector longitudinal direction (see
Both of the lock members 13, 13 disposed in both sides of the connector longitudinal direction have mutually symmetrical structures in the connector longitudinal direction. Therefore, in the below explanation, only one of the lock members 13 will be explained.
Particularly as shown in
More specifically, the above described fixing board 13b is disposed so as to be extended like a thin long belt along the connector front-rear direction at a position corresponding to a bottom surface plate of the insulating housing 11, and the fixing board 13b is fixed to a lateral surface plate of the insulating housing 11 via a fixing piece 13b 1, which is projecting toward the outer side of the connector longitudinal direction from a one-side edge of a front part of the fixing board 13b.
The board connecting part 13c is integrally continued to a front-side edge part (right side in
Furthermore, the first elastic arm-shaped member 13d constituting part of the lock biasing member is continued to a rear-end-side part (left-end-side part in
The first elastic arm-shaped member 13d is set so that the board-width direction thereof is the connector longitudinal direction (horizontal direction) and the board-thickness direction is the vertical direction; and the first elastic arm-shaped member 13d is configured to be elastically displaced mainly in the vertical direction which is the thin board-thickness direction. The first elastic arm-shaped member 13d of the cantilever structure having such a bent shape is configured to swing in the vertical direction about the bent shape thereof or the vicinity thereof. The latch lock part 13a, which will be described later, is configured to be reciprocated in the vertical direction in the paper surface of
On the other hand, the second elastic arm-shaped member 13e is integrally extended from an extended-side end part of the above described first elastic arm-shaped member 13d toward the connector front side (right side in
In this manner, in the present embodiment, the first elastic arm-shaped member 13d and the second elastic arm-shaped member 13e serving as the lock biasing member are configured to be elastically displaced in the two directions, which are in the planes approximately orthogonal to the insertion direction of the signal transmission medium (for example, FPC or FFC) F and are approximately orthogonal to each other. At an extended-side end part (right-side end part in
The latch lock part 13a therein consists of a hook-shaped member projecting from the extended-end part (right edge part in
An inclined guiding side, which is to face the signal transmission medium (for example, FPC or FFC) F to be inserted in the medium insertion path, is formed at a front edge part of the latch lock part 13a. The insertion-side distal-edge part of the signal transmission medium F inserted in the medium insertion path has a positional relation by which the insertion-side distal-edge part abuts the inclined guiding side of the latch lock part 13a. Particularly as shown in
Furthermore, particularly as shown in
On the other hand, the unlock operating part 13g is integrally formed with an upper edge part of the second elastic arm-shaped member 13e. More specifically, the unlock operating part 13g is formed from a plate-shaped member having an approximately rectangular shape in a plane, which is formed by extending a front end part (right end part in
Next, the unlock maintaining nail 13f is disposed at a position somewhat away from the above described latch lock part 13a to the connector rear side, and the unlock maintaining nail 13f is formed by causing part of the second elastic arm-shaped member 13e to project toward the connector inner side, i.e., toward the signal transmission medium (for example, FPC or FFC) F side. The unlock maintaining nail 13f is formed so as to have an approximately arc-shaped outer-diameter shape in both of a planar view and a lateral view and is disposed at a position somewhat in the upper side with respect to the above described latch lock part 13a.
In more detail, a bottom surface part and a lateral surface part of the above described unlock maintaining nail 13f are formed to be curved so as to have an approximately arc-shaped outer-diameter shape, and the position of a top part of the arc-shaped bottom surface of the unlock maintaining nail 13f is set so as to be at a position above the upper surface position of the latch lock part 13a by about half of the thickness size of the signal transmission medium (for example, FPC or FFC) F.
A flat-surface part of the unlock maintaining nail 13f is formed so as to have an outer-diameter shape which is approximately arc shaped in a lateral face. The flat-surface parts of the unlock maintaining nails 13f are in an arrangement relation in which they are overlapped with both-side edge parts of the signal transmission medium (for example, FPC or FFC) F in a planar view.
When the signal transmission medium (for example, FPC or FFC) F is inserted into the electrical connector 10, the insertion-side distal-end part of the signal transmission medium F causes the latch lock part 13a to retract to the connector outer side in the above described manner (see
On the other hand, when an unlock operation of pressing the unlock operating part 13g downward against the elastic force of the first elastic arm-shaped member 13d is carried out for example as shown in
As a result, the approximately arc-shaped flat-surface part of the unlock maintaining nail 13f becomes a state in which the part is in contact with the lower surface of the signal transmission medium (for example, FPC or FFC) F from the lower side (see
The state of engagement/disengagement from insertion of the signal transmission medium (for example, FPC or FFC) F will be explained in detail. First, as shown in
When the unlock operating part 13g is pressed downward against the elastic force of the first elastic arm-shaped member 13d to carry out an unlock operation as shown in
Then, when the unlock operating part 13g is operated to detach the latch lock part 13a of the lock mechanism from the signal transmission medium (for example, FPC or FFC) F in the above described manner, the unlock maintaining nail 13f is moved to from the position above the signal transmission medium F to a position therebelow along with the unlock operation via the unlock operating part 13g, the unlock maintaining nail 13f becomes a state in which it is in contact with the signal transmission medium F with a pressure, thereby maintaining the latch lock part 13a in a state detached from the signal transmission medium F. Thereafter, even when the unlock operating part 13g is not kept being operated, the signal transmission medium F is maintained in a removable state; and, for example by operation with only one hand, the operation of the unlock operating part 13g can be completed at first, and the signal transmission medium F can be then removed.
In this process, in the present embodiment, the first elastic arm-shaped member 13d constituting the lock biasing member, which retains the latch lock part 13a of the lock mechanism, is configured to be shared as an elastic member which retains the unlock operating part 13g of the unlock operating mechanism, and the lock mechanism and the unlock operating mechanism are configured to be mutually shared. Therefore, the whole electrical connector has a simple configuration.
Hereinabove, the invention accomplished by the present inventor has been explained in detail based on the embodiment. However, the present invention is not limited to the above described embodiment, and it goes without saying that various modifications can be made within a range not departing from the gist thereof.
For example, in the above described embodiment, the flexible printed circuit (FPC) and the flexible flat cable (FFC) are employed as signal transmission media to be fixed to the electrical connector. However, the present invention can be similarly applied to a case in which other signal transmission media, etc. are used.
Furthermore, the electrically-conductive contacts having the same shape are used in the electrical connector according to the above described embodiment. However, the present invention can be similarly applied even to a structure in which electrically-conductive contacts having different shapes are alternately disposed.
The present invention can be applied widely to various electrical connectors used in various electrical equipment.
Number | Date | Country | Kind |
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2012-093572 | Apr 2012 | JP | national |
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