Electrical connector for flat cable

Information

  • Patent Grant
  • 6315603
  • Patent Number
    6,315,603
  • Date Filed
    Tuesday, August 1, 2000
    25 years ago
  • Date Issued
    Tuesday, November 13, 2001
    24 years ago
Abstract
An electrical connector for flat cable which removably connects a flat cable at its end. A housing defines an insertion space for insertion of the end of the flat cable in a predetermined direction. A retainer is connected to the housing as allowed to slide substantially along the predetermined direction. A reinforcement member made of metal is fixed to the housing. The reinforcement member inhibits the removal of the retainer from the housing.
Description




BACKGROUND OF THE INVENTION




1. Field of the Invention




The present invention relates to an electrical connector for flat cable for connecting a flexible board such as called FPC (Flexible Printed Circuit) board or a flat cable such as FFC (Flexible Flat Cable) to a circuit board.




2. Description of Related Arts




As a slide-type retainer (hereinafter, simply referred to as “slider”) used in the connectors of this type, various types have been proposed which are formed of a synthetic resin material as a whole and include a transversely extended main body having an insertable projection and a pair of connection arms extended therefrom (see, for example, Japanese Utility Model Laid-Open Gazette No. 6-82783(1994) and Japanese Patent Laid-Open Gazette No. 9-283236(1997). Along with an FPC board (flexible printed circuit board), the insertable projection is inserted in an insertion space of a synthetic-resin housing retaining a group of contacts, thereby pressing the FPC board into contact with the contact group. On the other hand, the pair of connection arms serve to interconnect the housing and the retainer, as extended from transversely opposite ends of the main body along lateral side surfaces of the housing in a manner to sandwich the insertable projection therebetween.




The connection arms of the retainer are slidably received by guide grooves formed at lateral sides of the housing. With the connection arms drawn out to limit (moved to forward position), engaged sections formed at the connection arms are engaged with anti-deviation stoppers provided in the guide grooves, whereby the retainer is prevented from being drawn any further.




Unfortunately, the deviation of the connection arms is prevented by way of the engagement between the synthetic resin members, which engagement tends to become loose. As a result, the synthetic resin members fail to positively prevent the deviation of the arms.




It may be contemplated to increase the anti-deviation stopper in the engagement height. However, a problem exists with the assembly work of a connector of this arrangement, which includes the assembling of the connection arms in the guide grooves. In order to assemble the connection arms in the housing, the arms must be resiliently deformed for allowing their engaged sections to slide over the anti-deviation stoppers of the housing. Unfortunately, a great amount of deformation of the connection arms may result in plastic deformation thereof.




SUMMARY OF THE INVENTION




In view of the foregoing, it is an object of the invention to provide an electrical connector for flat cable ensuring positive prevention of the deviation of the connection arms.




According to a preferred mode of the invention for achieving the above object, an electrical connector for flat cable for removably connecting a flat cable at its end comprises a housing defining an insertion space for insertion of the flat cable in a predetermined direction, a retainer connected to the housing as allowed to slide in the predetermined inserting direction, and a reinforcement member made of metal and fixed to the housing, wherein the reinforcement member includes inhibition means for inhibiting removal of the retainer from the housing. This arrangement utilizes the metallic member for preventing the deviation of the retainer, thus accomplishing reliable prevention of the deviation of the retainer.




Preferably, the reinforcement member is soldered to a circuit board so as to be fixed thereto. This results in the positive prevention of the deviation of the retainer. The reinforcement member soldered to the circuit board is normally disposed at the connector mounted on the circuit board surface. Therefore, the number of components is not increased.




Preferably, the retainer includes an insertable projection slidably inserted in the insertion space, and a pair of connection arms slidably received by a pair of slide grooves of the housing for connection with the housing, whereas the insertable projection includes a pressing portion for pressing an end of the flat cable in the insertion space into contact with a group of contacts. This arrangement positively prevents the connection arms from deviating from the slide grooves.











BRIEF DESCRIPTION OF THE DRAWINGS





FIG. 1

is a plan view showing an electrical connector according to one embodiment of the invention with a slide-type retainer (hereinafter, referred to as “slider”) drawn out;





FIG. 2

is a plan view showing the connector with the slider inserted;





FIGS. 3A and 3B

are a plan view and rear view of the slider;





FIG. 4

is an exploded perspective view showing the slider, a housing and a reinforcement tab;





FIG. 5

is a sectional view taken on the line V—V in

FIG. 3A

;





FIG. 6

is a sectional view taken on the line VI—VI in

FIG. 3A

;





FIG. 7

is a sectional view showing the connector with the slider and an FPC inserted therein;





FIG. 8

is a sectional view showing the connector with the reinforcement tab preventing the deviation of the connection arm;





FIG. 9A

is a sectional view showing the connector with the connection arm inclined in a slide groove, whereas

FIG. 9B

is a sectional view showing the connector with an insertable projection inclined in an insertion space in association with the state of

FIG. 9A

; and





FIG. 10

is a plan view showing a slider according to another embodiment of the invention.











DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS




Preferred embodiments of the invention will be described with reference to the accompanying drawings.




Referring to

FIGS. 1 and 2

, a connector


1


according to one embodiment hereof includes a housing


4


retaining a plurality of contacts


3


transversely arranged in its insertion space


2


opening in a forward direction X, and a slider


6


having an insertable projection


5


to be inserted in or removed from the insertion space


2


of the housing


4


. The insertable projection


5


is inserted into the insertion space


2


in a predetermined insertion direction (equivalent to a rearward direction Y) together with an FPC


7


as the flat cable (see FIGS.


7


and


9


B). At the deepest position in the insertion direction Y, the insertable projection presses the FPC


7


into contact with the plural contacts


3


by means of its lower surface


5




b


, shown in

FIGS. 3B

,


5


and


7


, serving as a pressing portion.




The slider


6


includes a main body


8


formed of a synthetic resin, and a pair of connection arms


9


A,


9


B, made of metal, which are mirror images of each other. The connection arms


9


A,


9


B are independent from each other and partially embedded in the main body


8


by insert molding. The main body


8


includes an elongate body section


10


extended transversely, and the insertable projection


5


extended from the body section


10


. The insertable projection


5


is formed with receiving grooves


12


in its upper surface


5




a


, which individually correspond to fixing pieces


11


(

FIG. 7

) of fork-shaped portions of the contacts


3


(see

FIGS. 1

,


3


A and


3


B).




Turning to

FIGS. 1 and 2

, the housing


4


includes a pair of symmetrical slide grooves


13


A,


13


B opening in the forward direction X and an upward direction W (FIG.


4


), the grooves located laterally opposite places with respect to the insertion space


2


. As shown in

FIGS. 1 and 2

, the connection arms


9


A,


9


B of the slider


6


are adapted to slide in the forward direction X and the rearward direction Y (the directions to remove and insert the insertable projection


5


) as received by the corresponding slide grooves


13


A,


13


B. The connection arms are also prevented from deviating from the slide grooves


13


A,


13


B by corresponding reinforcement tabs


14


A,


14


B made of metal. The reinforcement tabs


14


A,


14


B are symmetrically shaped. After the connection arms


9


A,


9


B are inserted in the slide grooves


13


A,


13


B, the reinforcement tabs are press-inserted from above to be fixed to given places of the housing


4


in a manner to span the respective slide grooves


13


A,


13


B.




As seen in

FIG. 1

, the connection arms


9


A,


9


B each include a lock section


19


. As shown in

FIG. 2

, the lock sections


19


come into engagement with corresponding engageable extensions


25


disposed in the slide grooves


13


A,


13


B, thereby locking the slider


6


to the housing


4


.




Referring to FIG.


4


and

FIGS. 7 and 9B

showing the connector in section, the contact


3


includes a resilient piece


44


inserted in a receiving groove


43


formed in a top surface of a lower plate


42


of the housing


4


, and the fixing piece


11


disposed above the resilient piece


44


to form the fork shape jointly with the resilient piece


44


. The fixing piece


11


and the resilient piece


44


have their rear end portions interconnected by a main body


45


. The main body


45


includes a locking projection


46


wedgingly engaging the lower plate


42


. The main body


45


is press-inserted, from rear, into a fixing hole


47


of the housing


4


to be fixed therein. The main body


45


also has a substantially L-shaped lead portion


48


extended from an upper part of a rear end thereof. The lead portion


48


is soldered to a board surface on which the connector


1


is mounted. A chevron-shaped projection


49


ensures contact pressure by pressing against the inserted FPC


7


. In

FIGS. 7 and 9B

, an unhatched area represents the section of the contact


3


.




Next, referring to

FIG. 3A

, an exploded perspective view of

FIG. 4

,

FIG. 5

representing a sectional view taken on the line V—V in FIG.


3


A and

FIG. 6

representing a sectional view taken on the line VI—VI in

FIG. 3A

, the connection arms


9


A,


9


B of the slider


6


are each formed of a sheet metal into shape, including a buried portion


15


buried in the body section


10


of the main body


8


, and a projecting portion


16


extended outwardly of the body section


10


in parallel relation with the insertable projection


5


. The projecting portion


16


extends in the sliding direction Y.




The buried portion


15


includes a first section


21


coplanar with the projecting portion


16


and extended in the sliding direction X, and a second section


22


extended in a direction Z crossed by the sliding direction X as bent square to the first section


21


. In forming a sheet metal, a substantially L-shaped piece of flat sheet metal in development is worked in such a manner that one part thereof (defining the second section


22


) is bent square to the other part (defining the projecting portion


16


and the first section


21


of the buried portion


15


). Since the buried portion


15


includes the bent section (the second section) extended in the direction Z crossed by the sliding direction X, the connection arm


9


A,


9


B is positively prevented from deviating from the body section


10


.




The projecting portion


16


extends parallel to a side surface


5




b


of the insertable projection


5


(or parallel to a side surface


4




a


of the housing


4


). A distal end


17


of the projecting portion


16


defines a hook portion


18


projected upward in a hook-like fashion. The distal end


17


of the projecting portion


16


is tapered at its lower side which thus defines a slope


40


inclined upward toward the end.




The connection arm


9


B(


9


A) can be inclined by bringing the slope


40


into intimate contact with a lower plate


50


of the slide groove


13


B, as shown in FIG.


9


A. Therefore, a relatively large entrance to an introduction space


41


for the FPC


7


may be defined below the insertable projection


5


in the insertion space


2


, as shown in FIG.


9


B. This facilitates the insertion of the FPC


7


.




The connection arms


9


A,


9


B are formed with the lock sections


19


near the respective distal ends


17


thereof, the lock sections being comprised of a recess and disposed in face-to-face relation. With the insertable projection


5


positioned to press the FPC


7


into contact with the plural contacts


3


, the lock sections


19


are in engagement with the engageable extensions


25


in the slide grooves


13


A,


13


B of the housing


4


thereby locking the slider


6


to the housing


4


. In a process where the slider


6


drawn out to limit, as shown in

FIG. 1

, is inserted deepest in the housing, as shown in

FIG. 2

, the connection arms


9


A,


9


B are resiliently distended so as to allow the distal ends


17


of the projecting portions


16


to slide over the corresponding engageable extensions


25


, thereby bringing their lock sections


19


into engagement with the engageable extensions


25


, as shown in FIG.


2


. Indicated at


20


is a bead portion comprised of a hollow projected rib for reinforcement of the projecting portion


16


.




The first section


21


of each buried portion


15


is of a vertical plate continuous to the projecting portion


16


, whereas the second section


22


is of a horizontal plate bent into square along a line corresponding to an upper edge of the first section


21


and extended toward the counterpart buried portion


15


. The second section


22


includes a projection


23


, which is exposed outside via a recess


24


formed in the body section


10


. The projection


23


is used for retaining the connection arm


9


A,


9


B at place during molding so as to prevent the connection arm from being displaced in molding dies. That is, the connection arm


9


A,


9


B with high positional precisions may be obtained because the connection arm


9


A,


9


B is retained at both a part defining the projecting portion


16


and a part defining the projection


23


during the insert molding thereby ensuring the prevention of displacement thereof.




Turning to

FIG. 4

, the slide groove


13


B extends parallel with the side surface


4




a


of the housing


4


. As mentioned supra, the slide groove opens in the forward direction X and the upward direction W for receiving the corresponding connection arm


9


B from front. Out of opposite side walls


26


,


27


of the slide groove


13


B, the one


26


away from the side surface


4




a


is vertically formed with a first press-fit groove


28


at place closer to its front end, the groove


28


communicating with the slide groove


13


B and press-fittedly receiving the reinforcement tab. The side wall


26


is further formed with the engageable extension


25


at place closer to its rear end. The first press-fit groove


28


opens upward. The engageable extension


25


is of a chevron shape in section and vertically extended.




On the other hand, the side wall


27


closer to the side surface


4




a


is formed with a relief groove


29


at its upper part, corresponding to the position of the first press-fit groove


28


. The side wall


27


is further formed with a second press-fit groove


30


comprised of a through groove for press-fittedly receiving the reinforcement tab, the groove extended along an overall vertical length of an outer side of the side wall


27


. A large part of the press-fit groove


30


opens to the side surface


4




a


of the housing


4


so that only a rear part


31


thereof is defined by opposite side walls.




The reinforcement tab


14


B is formed of a sheet metal into a ladle-like shape in front elevation. Specifically, the reinforcement tab


14


B includes a first and second press-fitted sections


32


,


33


as fixed portions to be press-fitted in the first and second press-fit grooves


28


,


30


, and an interconnection section


34


interconnecting respective upper ends of the first and second press-fitted sections


32


,


33


. The press-fitted section


33


includes an extension


35


extended rearwardly. The first press-fitted section


32


is formed with a press-fit projection


36


at its rear end surface, whereas a press-fit projection


37


is formed at a rear end surface of the extension


35


of the second press-fitted section


33


. Further, a leg


38


is horizontally extended from a lower end of the second press-fitted section


33


, as bent square thereto. The leg


38


is soldered to a conductive area of a printed circuit board


51


. The leg is shaped like comb teeth for increased solderability.




As shown in

FIG. 8

, a rear edge of the interconnection section


34


defines an anti-deviation engagement section


39


which engages the hook portion


18


of the connection arm


9


B for preventing the connection arm


9


B from displacing forward out of the slide groove


13


B. The connection arm


9


B is adapted to slide with a lower edge of the projecting portion


16


thereof guided by the lower plate


50


defining the bottom of the slide groove


13


B, as shown in FIG.


8


.




After the connection arm


9


B is inserted, from front, into the slide groove


13


B, the reinforcement tab


14


B is mounted to the housing


4


in a manner that the first and second press-fitted sections


32


,


33


are press-fitted in the first and second press-fit grooves


28


,


30


of the housing


4


, respectively. Thus, the reinforcement tab serves as the anti-deviation section for the connection arm


9


B.




The embodiment of the invention is designed to prevent the deviation of the connection arms


9


A,


9


B by way of engagement between the hook portions


18


of the connection arms


9


A,


9


B and the anti-deviation engagement sections


39


of the reinforcement tabs


14


A,


14


B. Since the metallic members define the anti-deviation sections for the connection arms


9


A,


9


B, the deviation of the connection arms is positively prevented. In addition, the metallic reinforcement tabs


14


A,


14


B normally included in the connector mounted on the board surface are used as the metallic members defining the anti-deviation sections so that the number of components is not increased.




Furthermore, the reinforcement tab


14


A,


14


B is rigidly secured to the press-fit grooves


28


,


30


of the housing


4


by press-fitting the pair of press-fitted sections


32


,


33


thereof on the opposite sides of the interconnection section


34


including the anti-deviation engagement section


39


, thus accomplishing a more reliable anti-deviation effect. Since the anti-deviation deviation effect is accomplished through the engagement between the metallic members, the connection arms


9


A,


9


B are more positively prevented from deviating.




The connection arms


9


A,


9


B are rigidly connected to the main body


8


because they are inserted in a synthetic resin being molded to form the main body


8


. Besides, the connection arms


9


A,


9


B reduced in thickness and size permit the so-called inner-lock layout such as of the invention to be embodied in the connector


1


which need not be upsized. This contributes to the downsizing and thin design of the connector


1


.




The slide grooves


13


A,


13


B opening forwardly and upwardly of the housing


4


and the press-fit grooves


28


,


30


opening upwardly of the housing


4


allow for assembly steps of slidingly inserting the connection arms


9


A,


9


B of the slider


6


into the slide grooves


13


A,


13


B of the housing


4


from front and then press-fitting the reinforcement tabs


14


A,


14


B into the press-fit grooves


28


,


30


of the housing


4


from above, resulting in the improved assemblability of the connector


1


. Unlike the arrangements of the foregoing official gazettes, the arrangement of the embodiment does not involve the excessive deformation of the connection arms during assembly because the connection arms need not be slid over the anti-deviation stoppers.




It is noted that the present invention is not limited to the foregoing embodiment. As shown in

FIG. 10

, for instance, the pair of connection arms


9


A,


9


B may be interconnected at the second sections


22


of their buried portions


15


so that the connection arms


9


A,


9


B may be formed of one piece member.




Alternatively, the connection arms may be formed of a synthetic resin into one piece combined with the main body of the slider.




The invention is also applicable to a layout of a non-inner lock type wherein the slide grooves open laterally of the housing.




In the foregoing embodiment, the connector is a so-called back-side contact type wherein a back side of the FPC


7


is pressed into contact with the contacts disposed thereunder. However, the invention is not limited to the above and the connector may be of a so-called top-side contact type wherein a top side of the FPC


7


is pressed into contact with the contacts disposed thereabove.




Although the foregoing embodiment is arranged such that the press-fit grooves open upwardly of the housing for press-fitting the reinforcement tabs from above the housing, the invention is not limited to this arrangement. Alternatively, the press-fit grooves may open downwardly of the housing for press-fitting the reinforcement tabs from below of the housing and fixed in places. In this case, the slide grooves also open downwardly.




The invention is also applicable to a so-called vertical-type connector wherein the housing


4


is laid out on the circuit board in a manner that the insertion space


2


opens upward for insertion or removal of the slider


6


from above.




Further, the reinforcement tab


14


A,


14


B may omit either one of the press-fitted sections


32


,


33


thereof. Other various modifications may be contemplated within the scope of the invention.



Claims
  • 1. An electrical connector for flat cable for removably connecting a flat cable at its end comprising:a housing defining an insertion space for insertion of the flat cable in a predetermined direction and including a pair of slide grooves, each slide groove defined by opposed walls, a retainer connected to the housing as allowed to slide substantially in the predetermined direction, and including a pair of connection arms that are slidably received by said pair of slide grooves, and a reinforcement member made of metal and fixable within the respective slide groove of the housing, wherein the reinforcement member includes a member that inhibits the removal of the retainer from the housing.
  • 2. The electrical connector for flat cable claimed in claim 1, wherein the reinforcement member is soldered to a circuit board.
  • 3. The electrical connector for flat cable claimed in claim 1, wherein the reinforcement member includes an engagement section to be engaged with a hook portion disposed at each of the connection arms.
  • 4. The electrical connector for flat cable claimed in claim 1, wherein the connection arms include a lock section, and the housing includes extensions that are disposed within the slide grooves and that engageable with the lock sections of the connection arms.
  • 5. The electrical connector for flat cable claimed in claim 1, wherein each of said connection arms includes a sloped portion that engages with a bottom wall of said housing only when said retainer is allowed to slide substantially in the predetermined direction, each of said bottom walls connecting said opposing walls of said slide grooves.
  • 6. The electrical connector for flat cable claimed in claim 1,wherein the retainer further includes an insertable projection slidably inserted in the insertion space, the insertable projection including a pressing portion for pressing an end of the flat cable inserted in the insertion space into contact with a plurality of contacts retained by the housing.
  • 7. The electrical connector for flat cable claimed in claim 6,wherein the reinforcement member further includes a pair of fixing sections that are fixable to the housing, and an interconnection section interconnecting the pair of fixing sections and spanning the slide groove when fixed to the housing, and wherein the member that inhibits the removal of the retainer is disposed at the interconnection section.
  • 8. The electrical connector for flat cable claimed in claim 7, wherein the member that inhibits the removal of the retainer includes an engagement section to be engaged with a hook portion disposed at each of the connection arms, and an edge of the interconnection section includes the engagement section.
  • 9. The electrical connector for flat cable claimed in claim 7, wherein the fixing sections are fixed by press-fitting in corresponding press-fit grooves of the housing.
  • 10. The electrical connector for flat cable claimed in claim 9, wherein the slide grooves and the press-fit grooves open to respectively receive the retainer and the connection arms in a direction crossed by the predetermined direction and the slide grooves also open in an opposite direction to the predetermined direction.
  • 11. The electrical connector for flat cable claimed in claim 6,wherein the retainer possesses a synthetic-resin main body including the insertable projection, and wherein the connection arms are formed of metal and each include a buried portion embedded in the main body during the molding of the main body.
  • 12. The electrical connector for flat cable claimed in claim 11, wherein each of the buried portions of the connection arms includes a bent section that is bent approximately at a square angle.
Priority Claims (1)
Number Date Country Kind
11-220284 Aug 1999 JP
CROSS REFERENCE TO RELATED APPLICATION

This application claims the benefit under 35 U.S.C. §119 of Japanese Patent Application No.11-220284, the abstract of disclosure of which is incorporated herein by reference.

US Referenced Citations (5)
Number Name Date Kind
3084302 Braeutigam Apr 1963
3149897 Martineck Sep 1964
5354214 Aso et al. Oct 1994
5882223 Igarashi Mar 1999
6155864 Yoshiura Dec 2000
Foreign Referenced Citations (3)
Number Date Country
UM6-82783 Nov 1994 JP
7-106028 Apr 1995 JP
9-283236 Oct 1997 JP