1. Field of the Invention
The invention relates to a terminal fitting and to a method of producing it.
2. Description of the Related Art
Japanese Unexamined Patent Publication No. 2011-238372 discloses a terminal fitting with a tubular connecting portion and a spring piece resiliently deformably arranged in the connecting portion. The connecting portion includes a base wall in the form of a flat plate extending in forward and backward directions and side walls standing up from opposite widthwise ends of the base wall. The spring piece is folded backward from the front end of the base wall and resiliently deformed toward the base wall when a tab of a mating terminal fitting inserted into the connecting portion comes into contact therewith. Further, cuts are made in the both side walls and cut portions are bent to project into the connecting portion, thereby forming excessive deformation preventing pieces. The spring piece is prevented from being excessively resiliently deformed by coming into contact with the excessive deformation preventing pieces.
Distances from the both side walls to the spring piece become longer, for example, if the width of the spring piece is smaller than that of the base wall. Thus, the projection amounts of the excessive deformation preventing pieces become larger and it becomes difficult to ensure a space for forming the excessive deformation preventing pieces on the both side walls by cutting and bending.
Further, in the above conventional configuration, the spring piece may be warped and deformed into a U shape so that a widthwise central portion drops toward the base wall with the opposite widthwise ends held in contact with the excessive deformation preventing pieces as supporting points.
In view of the above situation, it is also possible to form excessive deformation preventing pieces on the base wall. However, for example, when the spring piece is divided into a first spring piece and a second spring piece and the second sprint piece is provided on the base wall, there is a problem of being difficult to ensure a space for arranging the excessive deformation preventing pieces on the base wall.
Japanese Unexamined Patent Publication No. 2004-362832 discloses a terminal fitting with a tubular main portion and a resilient piece resiliently deformably arranged in the main portion. The resilient piece is in the form of a tongue piece extending backward in a cantilever manner from an arcuate supporting point portion connected to the front end of the main portion. A male tab of a mating terminal fitting is inserted into the main portion from front. The inserted male tab resiliently comes into contact with the resilient piece, whereby both terminal fittings are electrically connected.
If the resilient piece is narrow when the male tab is wide, the resilient piece cannot stably support the male tab and the male tab may be inclined such as by rolling about an axis.
On the other hand, if the resilient piece is made wider in conformity with the size of the male tab, a resilient reaction force applied to the male tab from the resilient piece becomes excessive and insertion operability of the male tab may be deteriorated. Contrary to this, if the resilient reaction force is reduced, such as by cutting the supporting point portion of the resilient piece, the male tab cannot be stably supported and may be inclined about the axis as in the above case.
Japanese Unexamined Patent Publication No. 2009-48831 discloses a terminal fitting with includes a rectangular tube which can come into contact with a tab portion of a male terminal fitting. The rectangular tube is composed of a bottom plate, a pair of side plates standing up from opposite side edges of the bottom plate, a ceiling plate bent at the upper end edge of one side plate and extending toward the other side plate and a pressing portion bent at the upper end edge of the other side plate and configured to prevent the opening of the ceiling plate by pressing the upper surface of the ceiling plate.
However, this configuration is not preferable in reducing the height of the terminal fitting since the pressing portion is placed on the ceiling plate and projects upward from the ceiling plate. As a countermeasure, it is thought to form a recessed area in the ceiling plate and place the pressing portion in this recessed area.
The following problem needs to be solved even if the above countermeasure is taken. Specifically, if the recessed area of the ceiling plate is formed by press working, a peripheral edge part in the recessed area generally becomes a moderately arcuate surface (R-surface). Thus, the pressing portion has to be arranged in a part of the recessed area inside the peripheral edge part while avoiding the peripheral edge part which is the R-surface. Then, a gap is formed between the peripheral edge of the recessed area and the end edge of the pressing portion.
On the other hand, in the process of inserting the terminal fitting into a cavity of a connector housing, a locking lance formed in the cavity slides in contact with the outer surface of the rectangular tube portion while being resiliently deformed. Thus, if the above gap is located on this slide contact path, the locking lance may drop into the gap and be caught by the end edge of the pressing portion, with the result that smooth insertion of the terminal fitting may be obstructed.
Japanese Unexamined Patent Publication No. 2004-206912 discloses a female terminal fitting with a rectangular tube composed of a bottom plate, a pair of side plates standing up from opposite side edges of the bottom plate and a pair of ceiling walls bent from the rising end edges of the both side plates. A leading end part of one of the both ceiling walls is bent downwardly to form a step, and a leading end part of the other ceiling wall is placed on this step part. A locking hole is formed in the step part. By fitting a locking piece formed by bending the leading end part of the other ceiling wall into this locking hole, the ceiling walls are prevented from being displaced in forward and backward directions.
However, the following problem needs to be solved in the case of adopting a displacement prevention structure as described above. Specifically, the locking piece projects outwardly from an end edge of the ceiling wall in the above female terminal fitting, which is not preferable in cutting layout.
The present invention was completed in view of the above situation and an object thereof is to improve overall operability and space efficiency.
The invention relates to a terminal fitting formed by bending an electrically conductive plate material to include a connecting portion with a base wall in the form of a substantially flat plate. The connecting portion is to be connected to a mating tab for connection with a mating terminal fitting; a first spring piece is cantilevered in or at the connecting portion and resiliently deformed toward the base wall when the tab comes into contact therewith. At least one second spring piece projects from the base wall toward the first spring piece and is resiliently deformed together with the first spring piece while coming into contact with the first spring piece from the side of the base wall. One or more excessive deformation preventing pieces project from the base wall at substantially opposite widthwise sides of the second spring piece to prevent excessive resilient deformation of the first spring piece by coming into contact with the first spring piece from the side of the base wall.
Operability and space efficiency are improved by arranging excessive deformation preventing pieces with high space efficiency while preventing a spring piece from being warped and deformed.
The connecting portion preferably has a tubular shape into which the mating tab is to be inserted for connection. The second spring piece preferably is narrower than the first spring piece and projects into the connecting portion from the base wall.
The excessive deformation preventing pieces project into the connecting portion from the base wall. Thus, the first spring piece about to be excessively resiliently deformed toward the base wall stably comes into contact with the excessive deformation preventing pieces at the base wall side to prevent warping and deformation. Although the second spring piece projects from the base wall, a space for arranging the excessive deformation preventing piece(s) is ensured because the second spring piece is narrower than the first spring piece and because the excessive deformation preventing pieces are adjacent to the second spring piece.
The present invention can be further embodied as follows.
A punched hole preferably penetrates through the base wall and the second spring piece and the excessive deformation preventing pieces are formed by bending parts of the base wall defining the punched hole. Space efficiency is improved since the second spring piece and the excessive deformation preventing pieces are formed via the common punched hole.
A free end portion of the first spring piece preferably is narrower than a base end portion which serves as a supporting point of resilient deformation. According to such a configuration, stress generated when the tab comes into contact with the first spring piece is distributed well. Further, since the excessive deformation preventing pieces project from the base wall, the excessive deformation preventing pieces can contact the first spring piece even if the free end portion of the first spring piece is narrow.
The invention also relates to a terminal fitting with a tubular main portion for receiving a male tab of a mating terminal fitting. A first resilient piece in the form of a tongue is arranged in or at the main portion and is cantilevered back from a support at the front end of the main portion. The male tab inserted in the main portion resiliently contacts a rear end portion of the first resilient piece, thereby electrically conductively connecting the terminal fitting to the mating terminal fitting. The first resilient piece has a constant width from the support to the rear end portion. A through hole penetrates through the support and is shaped to become gradually wider toward the back of the first resilient piece while leaving opposite widthwise ends and the rear end portion of the first resilient piece.
Accordingly, overall operability is improved by providing a terminal fitting capable of stably supporting a male tab while maintaining good insertion operability of the male tab.
Since the first resilient piece particularly substantially has the constant width from the supporting point portion to the rear end portion, a large width of the rear end portion to be held in contact with the male tab can be ensured. Thus, the male tab is more stably supported by the resilient piece. Further, the through hole is formed in the (first) resilient piece while leaving the substantially opposite widthwise end portions and the rear end portion of the resilient piece, penetrates through the supporting point portion and is shaped to become gradually wider toward the back. Thus, the magnitude of a resilient reaction force of the supporting point portion is adjusted to a proper one. As a result, insertion operability of the male tab is improved.
A second resilient piece may be arranged at a position substantially facing the (first) resilient piece in a resilient deforming direction of the (first) resilient piece in the main portion. The second resilient piece particularly is arranged to be able to come into contact substantially with a widthwise central portion of the rear end portion of the (first) resilient piece and is resiliently deformed by being pressed by the (first) resilient piece when the male tab at least partly is inserted into the main portion. Since the second resilient piece can come into contact with the widthwise central portion of the rear end portion of the (first) second resilient piece, the male tab is more stably supported by the rear end portion of the resilient piece.
Excessive deformation preventing pieces may be arranged adjacent to the second resilient piece, particularly at substantially opposite widthwise sides of the second resilient piece in the main portion. The one or more, particularly pair of excessive deformation preventing pieces are arranged to be able to come into contact with the (first) resilient piece, particularly with the substantially opposite widthwise end portions of the rear end portion of the (first) resilient piece and/or prevent excessive resilient deformation of the (first) resilient piece by coming into contact with the (first) resilient piece. Since the second resilient piece is arranged to be able to come into contact substantially with the widthwise central portion of the rear end portion of the (first) resilient piece and the one or more, particularly the pair of excessive deformation preventing pieces are arranged to be able to come into contact the (first) resilient piece, particularly with the substantially opposite widthwise sides of the rear end portion of the resilient piece, the second resilient piece and the one or more, particularly pair of excessive deformation preventing pieces are arranged with high space efficiency while the stable support of the male tab is ensured.
The invention further relates to a terminal fitting with a tube for receiving a mating terminal fitting. A locking lance formed in a cavity of a connector housing being restored to be engaged with the tube after sliding in contact with the outer surface of the tube while being resiliently deformed when the terminal fitting is at least partly accommodated into the cavity. The tube includes a base plate, a pair of side plates projecting from the base plate and a ceiling plate extending from the rising end edge of one of the side plates substantially in parallel to the base plate. The outer surface of the ceiling plate is struck into the tube, thereby forming a struck area to form a contact portion for the mating terminal fitting. A pressing portion extends from the rising end edge of the other side plate and is bent to extend from the rising end edge of the other side plate substantially in parallel to the bottom plate. The pressing portion is placed on the outer surface of the ceiling plate in the struck area to prevent the opening of the ceiling plate. At least one bridge is arranged on the slide contact path and in at least one gap between the end edge of the pressing portion and the peripheral edge of the struck area. The bridge is formed to make the outer surface of the ceiling plate and that of the pressing portion substantially continuous along a slide contact path along which the locking lance slides in contact with the outer surface of the tube. Accordingly, overall operability is improved by providing a terminal fitting smoothly at least partly insertable into a cavity.
The extending end edge of the ceiling plate may be supported in contact with at least one receiving portion formed on the other side plate.
According to the above, in forming the rectangular tube, the pressing portion enters an inner part of the struck area to come into contact with the outer surface of the struck area, thereby preventing the opening of the ceiling plate. At this time, the gap is formed between the pressing portion and the peripheral edge of the struck area. On the other hand, in the process of inserting the terminal fitting into the cavity of the connector housing, the locking lance slides in contact with the outer surface of the rectangular tube portion while being resiliently deformed. Since the bridge portion is formed on the slide contact path of the locking lance to fill up the gap between the peripheral edge of the struck area and the end edge of the pressing portion during this time, the locking lance can move between the ceiling plate and the pressing portion without being caught by the bridging of the bridge portion. Therefore, the terminal fitting can be smoothly inserted.
The depth of the struck area preferably is set to be substantially equal to the thickness of walls forming the tube, and the outer surface of the bridge is substantially flat and/or the height of the outer surface of the bridge is set to be substantially equal to those of the outer surface of the ceiling plate and the outer surface of the pressing portion. According to this configuration, the terminal fitting can be more smoothly inserted since the locking lance is not substantially vertically displaced while passing on the outer surface of the rectangular tube portion. Further, the outer surface of the pressing portion is aligned at the same height as the outer surface of the ceiling plate and does not project out, which contributes to a reduction in the height of the entire terminal fitting.
At least one R-surface which is formed on a peripheral edge part and a flat surface which is formed at the inner side of the R-surface and with which the pressing portion comes into contact may be formed in the struck area; and the bridge may be formed by striking a part of the R-surface corresponding to the slide contact path in a direction outward of the (particularly rectangular or polygonal) tube. According to this configuration, the bridge can be easily formed by striking the part of the R-surface outward.
One or more, particularly a pair of bridges may be arranged at such positions as to hold the pressing portion therebetween in an extending direction of the slide contact path. According to this configuration, it can be reliably avoided that the locking lance sliding in contact is caught since a pair of gaps located on the slide contact path of the locking lance can be respectively filled up by the bridges. Further, an effect of restricting a displacement of the pressing portion in a sliding direction of the locking lance by the both bridge portions can also be obtained.
The invention also relates to a terminal fitting, comprising a tube for receiving a mating terminal fitting. The tube includes a base plate, a first side plate and a second side plate projecting from the base plate and a ceiling plate bent to extend from the rising end edge of the first side plate substantially in parallel to the base plate. At least one pressing portion is formed on the rising end edge of the second side plate and is bent to be placed on the outer surface of the ceiling plate. An engaging portion is formed on either one of the ceiling plate and the second side plate, and a displacement preventing portion engageable with the engaging portion is formed on the other one of the ceiling plate and the second side plate. The displacement preventing portion is arranged at a position spaced inward in a width direction from the extending end edge of the ceiling plate or the extending end edge of the pressing portion on the ceiling plate or the second side plate. Accordingly, overall operability is improved by providing a terminal fitting capable of improving yield.
The displacement preventing portion formed on either the ceiling plate or the second side plate is engaged with the front and/or rear parts of the engaging portion formed on the mating side to prevent displacements of the ceiling plate in forward and backward directions. Further, the displacement preventing portion does not project in the width direction from the extending end edge of the ceiling plate or that of the second side plate and is formed at the position spaced inwardly from the extending end edge and provided within the width range of the ceiling plate or the second side plate. This is advantageous in cutting layout.
In the terminal fitting of the present invention, it is preferable that an extending end part of the ceiling plate is struck inwardly of the tube to form a struck or bent portion and the pressing portion is placed on the outer surface of the struck or bent portion to be substantially flush with the ceiling plate.
The engaging portion preferably is an opening formed in the struck portion; and the displacement preventing portion is formed on the second side plate and inserted into the opening to be engageable with front and/or rear sides of the opening edge. According to such a configuration, the height of the terminal fitting can be reduced since the pressing portion is placed to be substantially flush with the ceiling plate. Further, since the engaging portion is the opening in the struck portion located below the pressing portion and the displacement preventing portion is engaged with the front and/or rear sides of the opening edge of this opening, engaged parts of the displacement preventing portion and the engaging portion do not project out from the outer surface of the pressing portion. This also contributes to a reduction in the height of the terminal fitting.
The displacement preventing portion may be formed by bending an inner area of a substantially U-shaped cut formed at a position spaced inwardly from the extending end edge of the pressing portion such that the inner area having a width substantially equal to the width of the opening in forward and backward directions at least partly is inserted into the opening. According to such a configuration, the displacement preventing portion is formed by bending the inner area of the cut formed in the pressing portion and inserting it into the opening of the struck portion. By engaging the thus formed displacement preventing portion with the front and rear sides of the opening edge of the opening, displacements of the ceiling plate in forward and backward directions can be prevented.
The displacement preventing portion may be formed by causing a part spaced inwardly from the extending end edge of the pressing portion to project in a rib-like manner in a height direction so as to be inserted into the opening while having a width substantially equal to the width of the opening in forward and backward directions. According to such a configuration, the displacement preventing portion is formed by causing the part of the displacement preventing portion to project in a rib-like manner and inserting this part into the opening. By engaging the thus formed displacement preventing portion with the front and rear sides of the opening edge of the opening, displacements of the ceiling plate in forward and backward directions can be prevented.
The displacement preventing portion may be formed by causing a part of the second side plate near the rising end edge to project in a rib-like manner in the width direction within a standing height range of the second side plate from the base or bottom plate so as to be inserted into the opening while having a width substantially equal to the width of the opening in forward and backward directions. According to such a configuration, the displacement preventing portion is formed by causing the part of the second side plate to project in the width direction and inserting this part into the opening. By engaging the thus formed displacement preventing portion with the front and/or rear sides of the opening edge of the opening, displacements of the ceiling plate in forward and backward directions can be prevented.
The terminal fitting may be processed in a developed state and a plurality of terminal fittings may be coupled to a carrier in a chain-like manner in the developed state; and the extending end edge of the pressing portion and that of the ceiling plate particularly may face each other in a linkage direction between the terminal fittings adjacent to each other in the linkage direction in the coupled state. According to such a configuration, the extending end edge of the pressing portion and that of the ceiling plate face each other between the terminal fittings adjacent to each other in the developed state. In such a case, the displacement preventing portion does not project from the extending end edge of the second side plate or the ceiling plate, but is formed at the position spaced inwardly from the extending end edge. Thus, the extending end edge of the pressing portion and that of the ceiling plate can be proximate to each other. This is advantageous in cutting layout of the terminal fittings and can achieve a yield improvement.
These and other objects, features and advantages of the present invention will become more apparent upon reading of the following detailed description of preferred embodiments and accompanying drawings. It should be understood that even though embodiments are separately described, single features thereof may be combined to additional embodiments.
A first embodiment of the invention is described with reference to
The connecting portion 11 is located before the wire barrel 12 with a coupling portion 13 located between the connecting portion 11 and the wire barrel 12. As shown in
A bent piece 18 is formed at the upper end of the second side wall 16 and is bent toward an upper end of the first side wall 15. As shown in
The ceiling wall 17 is struck, hammered, embossed, stamped or otherwise deformed at a position substantially parallel to the first receiving portion 21 in a width direction WD to project inward to form a second receiving portion 23. The first and second receiving portions 21, 23 are long narrow ribs that extend in forward and backward directions FBD for contacting the tab inserted into the connecting portion 11.
A stabilizer 24 projects out from the first side wall 15, as shown in
A first resiliently deformable spring piece 25 is arranged in the connecting portion 11. As shown in
As shown in
As shown in
A second resiliently deformably spring piece 31 is arranged in the connecting portion 11. As shown in
As shown in
Excessive deformation preventing pieces 36 are arranged fixedly in the connecting portion 11. The excessive deformation preventing pieces 36 project up at positions near a front end of the base wall 14. Specifically, as shown in
As shown in
The terminal fitting 10 is formed by bending the second spring piece 31 to be raised from the punched hole 37 and the excessive deformation preventing pieces 36 are bent to be raised from the punched hole 37 while being cut along cutting lines 38 of the base wall 14 shown in
The terminal fitting 10 then is inserted into the cavity of the unillustrated connector housing and the tab is inserted into the connecting portion 11 from the front as the connector housing is connected. The tab contacts the contact 29 of the first spring piece 25 and is sandwiched resiliently between the contact 29 and the first and second receiving portions 21, 23. At this time, the first spring piece 25 is deformed resiliently out toward the base wall 14 and the second spring piece 31 is pressed by the first spring piece 25 and also is deformed resiliently toward the base wall 14. Resilient forces of the first and second spring pieces 25, 31 apply appropriate contact pressure to the tab.
On the other hand, the bulges 28 of the first spring piece 25 can contact the corresponding excessive deformation preventing pieces 36 to prevent excessive deformation of the first spring piece 25. In this case, the free end 27 of the first spring piece 25 is narrow and the excessive deformation preventing pieces 36 prevent the excessive deformation of the first spring piece 25 at the positions near the widthwise center of the base wall 14. Thus, the first spring piece 25 will not warp into a U shape.
The excessive deformation preventing pieces 36 of the first embodiment project from the base wall 14. Thus, the surface of the first spring piece 25 that faces the base wall 14 stably contacts the excessive deformation preventing pieces 36 before the first spring piece 25 is deformed excessively and the contact is at locations on the first spring piece 25 to prevent warping deformation. The second spring piece 31 is narrower than the first spring piece 25. Thus, a space for the excessive deformation preventing pieces 36 is ensured by arranging the excessive deformation preventing pieces 36 adjacent opposite widthwise sides of the second spring piece 31
The punched hole 37 penetrates the base wall 14 and both the second spring piece 31 and the excessive deformation preventing pieces 36 are formed by bending parts of the base wall 14 defining the punched hole 37. Thus, it is not necessary to form separate punched holes for the second spring piece 31 and for the excessive deformation preventing pieces 36. Therefore, space efficiency is improved and the terminal fitting 10 can be miniaturized.
The free end 27 of the first spring piece 25 is narrower than the base end 26. Thus, stress generated when the tab contacts the first spring piece 25 can be distributed substantially equally in the entire first spring piece 25. Further, the excessive deformation preventing pieces 36 project from the base wall 14 and can contact the first spring piece 25 even if the free end 27 of the first spring piece 25 is narrow.
As shown in
As shown in
The second embodiment achieves larger contact areas of the first spring piece 25 and the excessive deformation preventing pieces 36A because the length of the second piece 42 of each excessive deformation preventing pieces 36 in forward and backward directions FBD is longer than in the first embodiment.
The invention is not limited to the above described embodiments. For example, the following embodiments also are included in the scope of the invention.
The second spring piece and the excessive deformation preventing pieces may be formed via separate punched holes.
The bulges may not be formed on the first spring piece.
The excessive deformation preventing pieces may be arranged to contact the base end of the first spring piece.
The first spring piece may have substantially the same width over the entire length may have a free end wider than the base end.
The second spring piece may have substantially the same width over the entire length or may have the free end wider than the base end.
The excessive deformation preventing pieces may be shaped differently from each other.
A third embodiment of the invention is described with reference to
As shown in
The main portion 120 is a substantially rectangular tube and, as shown in
As shown in
The second resilient piece 126 is cantilevered obliquely up and in to the front from the rear end of the punched hole 125, as shown in
As shown in
As shown in
As shown in
As shown in
The male tab 181 slides along the contact 143 of the first resilient piece 140 as the male tab 181 is inserted into the main portion 120 from the front, as shown in
The male tab 181 is supported stably along the width direction WD by the wide rear end of the first resilient piece 140 and will not incline about an axis. In addition, the through hole 144 penetrates through the support 141 and becomes gradually wider toward the back. Thus, a resilient reaction force applied to the male tab 181 from the first resilient piece 140 is adjusted properly without becoming too large. Further, the second resilient piece 126 contacts the widthwise central portion of the rear end of the first resilient piece 140 for resiliently supporting the rear end of the first resilient piece 140 from below. Thus, posture stability of the rear end of the first resilient piece 140 is good and the male tab 181 is supported more stably.
The male tab 181 or unillustrated external matter may enter the main portion 120 and contact the first resilient piece 140 in an oblique direction. This contact could deform the first resilient piece 140 beyond a proper amount of resilient deformation. However, the excessive deformation preventing pieces 127 contact opposite widthwise sides of the rear end of the first resilient piece 140 from below to prevent excessive deformation. Further, the excessive deformation preventing pieces 127 contact the opposite widthwise sides of the rear portion of the first resilient piece 140 to ensure posture stability of the rear end of the first resilient piece 140 when the first resilient piece 140 is about to be excessively deformed. The excessive deformation preventing pieces 127 are adjacent to opposite widthwise sides of the narrow front portion of the second resilient piece 126 and the excessive deformation preventing pieces 127 and the second resilient piece 126 are bent from the same punched hole 125. Hence, space efficiency is improved and the miniaturization of the terminal fitting 110 can be realized.
The invention is not limited to the above embodiment and may be embodied as follows.
The second resilient piece may be omitted.
Two excessive deformation preventing pieces may project into the main portion from the opposite side plates.
The through hole may be formed at a position deviated from the widthwise central portion of the first resilient piece.
A fourth embodiment of the invention is described with reference to
As shown in
As shown in
As shown in
As shown in
The ceiling plate 212 extends from the upper end of the first side plate 210 toward the second side plate 211 substantially parallel to the bottom plate 209. As shown in
As shown in
As shown in
The ceiling plate contact 222 is formed by striking, hammering, stamping, embossing or otherwise deforming an area of the ceiling plate 212 into the tube 204 as indicated by imaginary line in
The depth of the struck area P is substantially equal to the plate thickness of the walls forming the tube 204. Thus, the upper surface of the pressing portion 220 is substantially flush with that of the ceiling plate 212 when the flat surface 225 is pressed by the pressing portion 220.
A line L in
Front and rear bridges 226A, 226B are formed on or at the R-surface 224 on this slide contact path L. The bridges 226A, 226B are formed by being struck in a direction substantially opposite to a striking direction of the struck area P, i.e. in a direction outward of the tube 204. The bridges 226A, 226B have widths in forward and backward directions FBD to fill the gap between the peripheral opening edge of the ceiling plate 212 and the respective end edge of the pressing portion 220 and to be substantially continuous with the ceiling surfaces of the ceiling plate 212 and the pressing portion 220. Further, the upper surfaces of the bridges 226A, 226B are substantially horizontal, substantially rectangular and substantially flush with the upper surfaces of the ceiling plate 212 and the pressing portion 220. Both bridges 226A, 226B are formed through a striking process of striking parts, where the bridges 226 are to be formed from the opposite side after the struck area P is formed on the ceiling plate 212, i.e. after the R-surface 224 is formed.
The terminal fitting T is inserted into the cavity 202 from behind in a posture so that the ceiling plate 212 faces down. Then, as shown in
Sufficient insertion of the terminal fitting T causes the locking projection 203A of the locking lance 203 to pass on the outer surface of the rectangular tube 204 from the front end toward the rear end along the slide contact path L shown in
The bridges 226A, 226B fill the gap between the pressing portion 220 and the ceiling plate 212 and are substantially continuous with upper surfaces of the ceiling plate 212 and the pressing portion 220. Thus, the locking projection 203A moves smoothly along the slide contact path L without dropping being caught in the gap between the ceiling plate 212 and the pressing portion 220. Further, the bridges 226A, 226B are flush with the pressing portion 220 and the ceiling plate 212. Thus, the deformed amount of the locking lance 203 is substantially constant during the insertion so that insertion resistance hardly changes and the terminal fitting T can be inserted smoothly.
The bridges 226A, 226B are formed easily by striking parts of the R-surface 224 in the struck area P in the opposite direction. Furthermore, the bridges 226A, 226B are at positions to hold the pressing portion 220 therebetween from front and rear sides so that the pressing portion 220 will not displace in forward and backward directions.
If the struck area P is made narrower in the width direction than in this embodiment and the slide contact path L is deviated from the struck area P, the locking lance 203 is not caught. However, if such a configuration is adopted, the pressing portion 220 becomes narrower as the struck area P is made narrower. As a result a function of preventing the opening of the ceiling plate 212 is reduced. In this embodiment, the locking lance 203 is not caught even if the wide struck area P is set to such an extent that the slide contact path L passes therethrough. Thus, an effect of being able to improve the function of preventing the opening of the ceiling plate 212 also is obtained.
The invention is not limited to the above described embodiment. For example, the following embodiments are also included in the scope of the invention.
The upper surfaces of the pressing portion 220 and the ceiling plate 212 are substantially flush with each other in the above embodiment. However, the depth of the struck area P may exceed the plate thickness so that the upper surface of the pressing portion 220 is lower than that of the ceiling plate 212. In that case, the upper surfaces of the bridges 226A, 226B preferably are smoothly inclined surfaces extending from the upper surface of the ceiling plate 212 to that of the pressing portion 220.
Although the bridges 226A, 226B are formed by being struck in the opposite direction after the struck area P is formed in the above embodiment, it is also possible to form the struck area P excluding the bridges 226A, 226B. By doing so, it is sufficient to perform the striking step once.
The front end of the formed terminal fitting T1 includes a substantially rectangular tube 302 that is hollow in forward and backward directions FBD. A wire barrel 303 is rearward of the tube 302 and is to be crimped, bent or folded into connection with a wire core. An insulation barrel 304 is formed on the rear of the terminal fitting T1 and is to be crimped, bent or folded connected to an insulation coating.
As shown in
As shown in
A resiliently deformable auxiliary spring piece 314 extends forward from the rear of the punched hole 312 and becomes gradually narrower toward the front. The front end of the auxiliary spring piece 314 projects arcuately up and may be held constantly in contact with the lower surface of the rear end of the tongue 309 or may be separated slightly in a natural state and come into contact after the start of resilient deformation of the tongue 309, as shown in
As shown in
An extending end part of the ceiling plate 308 is shaped, bent or struck inward of the rectangular tube 302 to form a struck portion 318. As shown in
As shown in
Receiving portions 321 are formed on front and rear end parts of the rising end of the second side plate 307 for supporting the respective projecting pieces 319 of the ceiling plate 308. A pressing portion 322 projects out in the width direction WD between the receiving portions 321 on the second side plate 307. Further, recessed grooves 315 are formed at front and rear ends of the pressing portion 322 and the pressing portion 322 is bent at a substantially right angle at the rising end of the second side plate 307 and is placed on the upper or outer surface of the struck portion 318. The pressing portion 322 prevents the opening of the ceiling plate 308 and hence the opening of the entire rectangular tube 302.
A substantially U-shaped cut 324 crosses over the bending edge of the pressing portion 322 in an intermediate part of the pressing portion 322 in forward and backward directions FBD. An inner area of this U-shaped cut 324 forms a displacement preventing portion 323. As shown in
Further, as shown in
When the terminal fittings T1 in the developed state are coupled to the carrier 301, as shown in
The terminal fitting T1 of the fifth embodiment is configured so that relative displacements of the pressing portion 322 and the ceiling plate 308 in forward and backward directions FBD are prevented since the displacement preventing portion 323 is inserted into the opening 320 and the front and rear edges thereof engage the front and rear sides of the opening edge of the opening 320. Therefore, the rectangular tube 302 can be maintained in a proper shape even if being subjected to an external force.
The displacement preventing portion 323 is spaced inwardly from the extending end edge of the pressing portion 322 and the displacement preventing portion 323 does not project outwardly in the width direction WD as before. Thus, as shown in FIG. 25, a distance between the extending end edge of the pressing portion 322 and that of the ceiling plate 308 can be shortened between the adjacent terminal fittings T1. Therefore, cutting layout of the terminal fittings T1 is excellent, which can contribute to a yield improvement.
The terminal fitting T1 of the fifth embodiment has the struck portion 318, and the pressing portion 322 is placed on the slightly lowered ceiling plate 308. Thus, the pressing portion 322 does not project out from the ceiling plate 308 so that the height of the terminal fitting T1 is reduced. Further, the opening 320 is below the pressing portion 322 and the displacement preventing portion 323 is locked therein. Therefore, the displacement prevention structure is accommodated within the height range of the rectangular tube 302, thereby contributing to a reduced height of the terminal fitting T1.
Also in this embodiment, a displacement preventing portion 325 is arranged at a position spaced inwardly in the width direction WD from the extending end edge of the pressing portion 322. Specifically, the displacement preventing portion 325 is formed by causing a part corresponding to the opening 320 to project out toward the opening 320 and has a substantially V-shaped cross-section. Thus, the displacement preventing portion 325 projects in a rib-like manner on the inner surface of the pressing portion 322 while having a width slightly shorter than the width of the opening 320 in forward and backward directions FBD and is inserted into the opening 320 from above. As a result, the front and rear ends of the displacement preventing portion 325 engage respective front and rear sides of the opening edge of the opening 320 to prevent relative displacements of the pressing portion 322 and the ceiling plate 308 in forward and backward directions FBD.
Other configurations are substantially same or similar to the fifth embodiment and, hence, same or similar functions and effects can be achieved.
The invention is not limited to the above described embodiments. For example, the following embodiments also are included in the scope of the invention.
The displacement preventing portion 323, 325, 326 is on the side of second side plate 307 and the engaging portion (opening 320) is on the side of the ceiling plate 308 in the above embodiments. However, a reverse arrangement may be adopted.
Although the opening 320 serves as the engaging portion in the above embodiments, the displacement preventing portion may be locked utilizing another configuration, e.g. a projecting structure such as the projecting pieces 319 formed by cutting and bending or a protrusion formed by striking.
Number | Date | Country | Kind |
---|---|---|---|
2012-101369 | Apr 2012 | JP | national |
2012-112587 | May 2012 | JP | national |
2012-113595 | May 2012 | JP | national |
2012-123467 | May 2012 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
5540603 | Fujiwara | Jul 1996 | A |
5839925 | Simmons | Nov 1998 | A |
6244910 | Grubbs | Jun 2001 | B1 |
6264509 | Kwang et al. | Jul 2001 | B1 |
6752660 | Fujita et al. | Jun 2004 | B2 |
6955571 | Fujii | Oct 2005 | B2 |
7144281 | Maeda | Dec 2006 | B2 |
7156704 | Shimizu | Jan 2007 | B2 |
7347747 | Shimizu | Mar 2008 | B2 |
7458864 | Philipp | Dec 2008 | B2 |
8241075 | Ishikawa et al. | Aug 2012 | B2 |
8454394 | Iihoshi | Jun 2013 | B2 |
8662935 | Jouas et al. | Mar 2014 | B2 |
20030224668 | Matsuda | Dec 2003 | A1 |
20110294366 | Iihoshi | Dec 2011 | A1 |
20120252283 | Muro | Oct 2012 | A1 |
20130288548 | Amano et al. | Oct 2013 | A1 |
Number | Date | Country |
---|---|---|
2004-362832 | Dec 2004 | JP |
2009-48831 | Mar 2009 | JP |
2011-238372 | Nov 2011 | JP |
Number | Date | Country | |
---|---|---|---|
20130288545 A1 | Oct 2013 | US |