The present disclosure relates to a connector; in particular, to an electrical connector and a transmission wafer thereof.
A conventional electrical connector includes a plurality of transmission wafers stacked in a row, and each of the transmission wafers includes an insulating frame and a shielding member fastened to the insulating frame. The shielding member includes a plurality of pins protruding from the insulating frame for being inserted into a printed circuit board. However, each of the pins of the shielding member is not supported from any component of the conventional electrical connector, so that when the stacked transmission wafers are mounted to the printed circuit board, the pins of the shielding members are easily deformed by an external force (or the printed circuit board).
The present disclosure provides an electrical connector and a transmission wafer thereof to solve the drawbacks associated with conventional electrical connectors.
The present disclosure provides an electrical connector, which includes an elongated housing, N numbers of first conductive modules, and M numbers of second conductive modules. A longitudinal direction of the housing defines an arrangement direction. N numbers of the first conductive modules and M numbers of the second conductive modules are inserted into the housing, and are arranged in a row along the arrangement direction. The first conductive module includes a plurality of first transmission wafers stacked along the arrangement direction. The second conductive module includes a plurality of second transmission wafers stacked along the arrangement direction. The structure of each of the first transmission wafers is different from that of each of the second transmission wafers. Each of N and M is a positive integer, and the sum of N and M is equal to or more than three. Each of the first transmission wafers includes a first insulating frame and a plurality of first signal terminals. The first insulating frame includes an elongated first front end portion and an elongated first bottom end portion. A longitudinal direction of the first front end portion is substantially perpendicular to that of the first bottom end portion, and the first bottom end portion has a plurality of retaining structures. Each of the first signal terminals includes a first middle segment, a first contacting segment extending from an end of the first middle segment, and a first mounting segment extending from another end of the first middle segment. The first middle segments are fixed in the first insulating frame, the first contacting segments protrude from the first front end portion and are inserted into the housing, and the first mounting segments protrude from the first bottom end portion. At least a portion of the first transmission wafers of N numbers of the first conductive modules each further includes a first shielding member. The first shielding member includes a first sheet portion, a plurality of first contacting portions extending from the first sheet portion, and a plurality of first mounting portions extending from the first sheet portion. The first sheet portion is fixed on an outer surface of the first insulating frame. The first contacting portions protrude from the first front end portion and are disposed in the housing. Each of the first mounting portions partially protrudes from the first bottom end portion, and the first mounting portions are respectively retained by the retaining structures. The first mounting portions and the first mounting segments are arranged in a row along an inserting direction perpendicular to the arrangement direction.
The present disclosure also provides a transmission wafer of an electrical connector. The transmission wafer includes an insulating frame, a plurality of signal terminals, and a shielding member. The insulating frame includes an elongated front end portion and an elongated bottom end portion. A longitudinal direction of the front end portion is substantially perpendicular to that of the bottom end portion, and the bottom end portion has a plurality of retaining structures. Each of the retaining structures has a retaining channel substantially perpendicular to the longitudinal direction of the front end portion and the longitudinal direction of the bottom end portion. A width of an upper half portion of each of the retaining channels is larger than that of a lower half portion of each of the retaining channels. Each of the signal terminals includes a middle segment, a contacting segment extending from an end of the middle segment, and a mounting segment extending from another end of the middle segment. The middle segments are fixed in the insulating frame, the contacting segments protrude from the front end portion, and the mounting segments protrude from the bottom end portion. The shielding member includes a sheet portion, a plurality of contacting portions extending from the sheet portion, and a plurality of mounting portions extending from the sheet portion. The sheet portion is fixed on an outer surface of the insulating frame, the contacting portions protrude from the front end portion, and each of the mounting portions partially protrudes from the bottom end portion. The mounting portions and the mounting segments are arranged in a row, and the mounting portions are respectively retained by the retaining structures.
In summary, the transmission wafer (e.g., the first transmission wafer) of the present disclosure is provided with the retaining structures formed on the insulating frame (e.g., the first insulating frame), and each of the mounting portions of the shielding member (e.g., each of the first mounting portions of the first shielding member) can obtain a supporting force from being retained by the corresponding retaining structure, so that the mounting portions of the shielding member are not easily deformed by an external force.
In order to further appreciate the characteristics and technical contents of the present disclosure, references are hereunder made to the detailed descriptions and appended drawings in connection with the present disclosure. However, the appended drawings are merely shown for exemplary purposes, and should not be construed as restricting the scope of the present disclosure.
Reference is made to
As shown in
As shown in
Referring to
The mating portion 11 is an elongated structure parallel to the longitudinal direction L. A ratio of a length of the mating portion 11 (in the longitudinal direction L) to a height of the mating portion 11 (in the height direction H) is preferably equal to or more than 3.5, but the present disclosure is not limited thereto. The mating portion 11 includes a plurality of terminal grooves 113 and a plurality of shielding grooves 114 which are penetratingly recessed from a front end surface 111 to a rear end surface 112 of the mating portion 11 (i.e., along the width direction W). The number of the terminal grooves 113 in the present embodiment is two times of the number of the shielding grooves 114. The terminal grooves 113 are substantially in a matrix arrangement, the shielding grooves 114 are substantially in a matrix arrangement, and the terminal grooves 113 and the shielding grooves 114 are in a staggered arrangement along the longitudinal direction L.
The extending plate 12 is an elongated structure parallel to the longitudinal direction L, and extends from the top edge of the rear end surface 112 of the mating portion 11 along the width direction W. The extending plate 12 has a plurality of engaging slots 121 recessed from a free end thereof, and the engaging slots 121 are arranged in a row parallel to the longitudinal direction L. The extending plate 12 has a plurality of thru-holes 122 respectively arranged adjacent to the engaging slots 121, and the thru-holes 122 are also arranged in a row parallel to the longitudinal direction L.
Each of the guiding columns 13 partially protrudes from the front end surface 111 of the mating portion 11. An arrangement of the guiding columns 13 that are formed on the top side of the mating portion 11 is different from an arrangement of the guiding columns 13 that are formed on the bottom side of the mating portion 11.
As shown in
In addition, the terms “first” and “second” in the present embodiment are used for distinguishing components, and do not have any structural or order limitation. For example, the “first” transmission wafer 2a can be named as a transmission wafer. Moreover, the transmission wafer in the present embodiment can be independently used (e.g., sold) or applied to other connectors, but the present disclosure is not limited thereto.
As shown in
Referring to
The first transmission wafer 2a includes a first insulating frame 21, a plurality of first signal terminals 22 fixed in the first insulating frame 21, and the first shielding member 23 fastened to the first insulating frame 21. In the present embodiment, the first signal terminals 22 of the first transmission wafer 2a are a plurality of pairs of differential signal terminals and are fixed in the first insulating frame 21 in an insert-molding manner, and the first shielding member 23 is engaged with the first insulating frame 21, but the present disclosure is not limited thereto.
The first insulating frame 21 is a sheet-like structure substantially perpendicular to the arrangement direction L. The first insulating frame 21 includes an elongated first front end portion 211, an elongated first rear end portion 212 that is opposite to the first front end portion 211, an elongated first bottom end portion 213, and an elongated first top end portion 214 that is opposite to the first bottom end portion 213. A longitudinal direction of the first front end portion 211 is substantially perpendicular to that of the first bottom end portion 213, a longitudinal direction of the first rear end portion 212 is substantially perpendicular to that of the first top end portion 214, and the longitudinal direction of the first front end portion 211 is substantially parallel to that of the first rear end portion 212, but the present disclosure is not limited thereto.
Specifically, the first rear end portion 212 has a first slot 2121 for receiving a part of the beam 4. The first bottom end portion 213 has a plurality of retaining structures 2131, and each of the retaining structures 2131 in the present embodiment is a retaining channel 2131 substantially parallel to the arrangement direction L. In each of the retaining channels 2131, a width of an upper half portion of the retaining channel 2131 is larger than that of a lower half portion of the retaining channel 2131. Moreover, the first top end portion 214 has a first engaging column 2141 for inserting into one of the engaging slots 121 of the housing 1.
Each of the first signal terminals 22 includes a first middle segment 221, a first contacting segment 222 extending from an end of the first middle segment 221 (e.g., the right end of the first middle segment 221 as shown in
Specifically, a part of each of the first middle segments 221 is exposed from the first insulating frame 21 and has a width larger than that of the other part of each of the first middle segments 221 embedded in the first insulating frame 21, but the present disclosure is not limited thereto. For example, in other embodiments of the present disclosure, the first middle segments 221 can be entirely embedded in the first insulating frame 21, and each part of the first middle segments 221 can have the same width.
The first shielding member 23 includes a first sheet portion 231 substantially perpendicular to the arrangement direction L, a plurality of first contacting portions 232 extending from a front edge of the first sheet portion 231, a plurality of first mounting portions 233 and an offset mounting portion 234 both extending from a bottom edge of the first sheet portion 231, and a first abutting portion 235 extending from a top edge of the first sheet portion 231. The first sheet portion 231 is fixed on an outer surface of the first insulating frame 21, the first contacting portions 232 protrude from the first front end portion 211 and are arranged in a row along the height direction H, and the offset mounting portion 234 and a part of each of the first mounting portions 233 protrude from the first bottom end portion 213.
Moreover, the first mounting portions 233 and the first mounting segments 223 are arranged in a row along an inserting direction W (that is identical to the width direction W) perpendicular to the arrangement direction L, and the offset mounting portion 234 is arranged at one side of the row of the first mounting portions 233 and the first mounting segments 223. The first mounting portions 233 are respectively retained by the retaining structures 2131 of the first insulating frame 21. Accordingly, each of the first mounting portions 233 of the first shielding member 23 can obtain a supporting force from being retained by the corresponding retaining structure 2131, so that the first mounting portions 233 of the first shielding member 23 are not easily deformed by an external force.
Specifically, each of the first mounting portions 233 includes a flat part 2331 bent with respect to the first sheet portion 231 in a substantial 90 degrees along a first rotation direction and an inserting part 2332 bent with respect to the flat part 2331 in a substantial 90 degrees along a second rotation direction (e.g., a clockwise direction that takes the width direction W as an axis of rotation as shown in
Referring to
The second transmission wafer 3a includes a second insulating frame 31, a plurality of second signal terminals 32 fixed in the second insulating frame 31, and the second shielding member 33 fastened to the second insulating frame 31. In the present embodiment, the second signal terminals 32 of the second transmission wafer 3a are a plurality of pairs of differential signal terminals and are fixed in the second insulating frame 31 in an insert-molding manner, and the second shielding member 33 is engaged with the second insulating frame 31, but the present disclosure is not limited thereto.
The second insulating frame 31 is a sheet-like structure substantially perpendicular to the arrangement direction L. The second insulating frame 31 includes an elongated second front end portion 311, an elongated second rear end portion 312 that is opposite to the second front end portion 311, an elongated second bottom end portion 313, and an elongated second top end portion 314 that is opposite to the second bottom end portion 313. A longitudinal direction of the second front end portion 311 is substantially perpendicular to that of the second bottom end portion 313, a longitudinal direction of the second rear end portion 312 is substantially perpendicular to that of the second top end portion 314, and the longitudinal direction of the second front end portion 311 is substantially parallel to that of the second rear end portion 312, but the present disclosure is not limited thereto.
Specifically, the second rear end portion 312 has a second slot 3121 for receiving a part of the beam 4. The second top end portion 314 has a second engaging column 3141 for inserting into one of the engaging slots 121 of the housing 1.
Each of the second signal terminals 32 includes a second middle segment 321, a second contacting segment 322 extending from an end of the second middle segment 321 (e.g., the right end of the second middle segment 321 as shown in
Specifically, the second middle segments 321 are entirely embedded in the second insulating frame 31, and each part of the second middle segment 321 has the same width, but the present disclosure is not limited thereto. For example, in other embodiments of the present disclosure, a part of each of the second middle segments 321 can be exposed from the second insulating frame 31 and have a width larger than that of the other part of each of the second middle segments 321 embedded in the second insulating frame 31.
The second shielding member 33 includes a second sheet portion 331 substantially perpendicular to the arrangement direction L, a plurality of second contacting portions 332 extending from a front edge of the second sheet portion 331, a plurality of second mounting portions 333 extending from a bottom edge of the second sheet portion 331, and a second abutting portion 334 extending from a top edge of the second sheet portion 331. The second sheet portion 331 is fixed on an outer surface of the second insulating frame 31, the second contacting portions 332 protrude from the second front end portion 311 and are arranged in a row along the height direction H, and a part of each of the second mounting portions 333 protrude from the second bottom end portion 313.
Moreover, the second mounting portions 333 and the second mounting segments 323 are arranged in a row along the width direction W. Specifically, each of the second mounting portions 333 is formed by being bent with respect to the second sheet portion 331 in a substantial 90 degrees along a third rotation direction (e.g., a clockwise direction that takes the height direction H as an axis of rotation as shown in
In addition, as shown in
As shown in
Specifically, the beam 4 is in an elongated shape and is integrally formed as a one-piece structure by punching. A ratio of a length of the beam 4 (in the longitudinal direction L) to a width of the beam 4 (in the height direction H) is preferably equal to or more than 19. The beam 4 includes a plurality of inserting portions 41 and a plurality of connecting portions 42 that are staggered with the inserting portions 41. Each of the connecting portions 42 connects the ends of two of the inserting portions 41 arranged adjacent to each other (e.g., the upper ends of two of the inserting portions 41 arranged adjacent to each other as shown in
Referring to
Reference is made to
Specifically, in each of the first transmission wafers 2a of the present embodiment, the bottom end portion 213 of the insulating frame 21 has an abutting rib 2132 arranged opposite to the retaining structures 2131. The abutting rib 2132 is in an elongated shape parallel to the width direction W. Moreover, in any two of the first transmission wafers 2a arranged adjacent to each other, the abutting rib 2132 of one of the two adjacent first transmission wafers 2a abuts against a part of the first sheet portion 231 of the other first transmission wafer 2a arranged adjacent to the first mounting portions 233, thereby improving the positioning effect of the first shielding member 23.
In summary, the transmission wafer (e.g., the first transmission wafer) of the present disclosure is provided with the retaining structures formed on the insulating frame (e.g., the first insulating frame), and each of the mounting portions of the shielding member (e.g., each of the first mounting portions of the first shielding member) can obtain a supporting force from being retained by the corresponding retaining structure, so that the mounting portions of the shielding member are not easily deformed by an external force.
The descriptions illustrated supra set forth simply the exemplary embodiments of the present disclosure; however, the characteristics of the present disclosure are by no means restricted thereto. All changes, alterations, or modifications conveniently considered by those skilled in the art are deemed to be encompassed within the scope of the present disclosure delineated by the following claims.
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