CN109510033B - Female connector for high-speed differential signal connector - Google Patents

Female connector for high-speed differential signal connector Download PDF

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Publication number
CN109510033B
CN109510033B CN201910020331.4A CN201910020331A CN109510033B CN 109510033 B CN109510033 B CN 109510033B CN 201910020331 A CN201910020331 A CN 201910020331A CN 109510033 B CN109510033 B CN 109510033B
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China
Prior art keywords
signal transmission
module
female end
connector
shielding plate
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CN201910020331.4A
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Chinese (zh)
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CN109510033A (en
Inventor
江帆
代秀云
何洪
张洺诚
邱雪梅
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Sichuan Huafeng Technology Co Ltd
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Sichuan Huafeng Technology Co Ltd
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Priority to CN201910020331.4A priority Critical patent/CN109510033B/en
Publication of CN109510033A publication Critical patent/CN109510033A/en
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/648Protective earth or shield arrangements on coupling devices, e.g. anti-static shielding  
    • H01R13/658High frequency shielding arrangements, e.g. against EMI [Electro-Magnetic Interference] or EMP [Electro-Magnetic Pulse]
    • H01R13/6581Shield structure
    • H01R13/6585Shielding material individually surrounding or interposed between mutually spaced contacts
    • H01R13/6588Shielding material individually surrounding or interposed between mutually spaced contacts with through openings for individual contacts
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/02Contact members
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/46Bases; Cases
    • H01R13/514Bases; Cases composed as a modular blocks or assembly, i.e. composed of co-operating parts provided with contact members or holding contact members between them
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/46Bases; Cases
    • H01R13/516Means for holding or embracing insulating body, e.g. casing, hoods
    • H01R13/518Means for holding or embracing insulating body, e.g. casing, hoods for holding or embracing several coupling parts, e.g. frames
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/648Protective earth or shield arrangements on coupling devices, e.g. anti-static shielding  
    • H01R13/658High frequency shielding arrangements, e.g. against EMI [Electro-Magnetic Interference] or EMP [Electro-Magnetic Pulse]
    • H01R13/6581Shield structure

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  • Details Of Connecting Devices For Male And Female Coupling (AREA)

Abstract

The application discloses a female end connector for a high-speed differential signal connector, which comprises a female end base and a plurality of female end signal transmission modules which are parallelly arranged on the female end base, wherein each female end signal transmission module comprises a signal transmission module and a metal shielding plate fixed on the signal transmission module, each signal transmission module comprises a module shell, a signal transmission reed and a plastic package module, a plurality of concave cavities are formed on the module shell, the signal transmission reeds are arranged in the concave cavities, the plastic package modules correspond to the concave cavities one by one and cover the concave cavities to seal the concave cavities; the lower end part of the metal shielding plate is provided with protruding teeth which are used for being fixed and conducted with a female end base, and a convex hull structure is arranged at the position, corresponding to the protruding teeth, on the female end base. The application can reduce the mutual interference between differential signal pairs and is beneficial to shortening the reflux path.

Description

Female connector for high-speed differential signal connector
Technical Field
The application relates to the technical field of high-speed differential signal connectors, in particular to a female end connector for a high-speed differential signal connector.
Background
In the existing high-speed differential signal connector, the reflow paths around the differential signals in the transmission link are realized by reducing the reflow paths through multipoint connection and through mutual communication among metal shielding pieces, and other structures are required to be assisted for keeping the consistent space between the metals, so that the process is complex and difficult to control.
In the current high-speed differential signal connector, due to the limitation of the structure, crosstalk among signals is serious, differential signals interfere with each other, and finally the transmission effect of the signal connector is affected.
Disclosure of Invention
The application aims to provide a female end connector for a high-speed differential signal connector, which solves the problem that crosstalk is easy to occur between signal pairs due to the limitation of a signal transmission module structure.
In order to solve the technical problems, the application adopts the following technical scheme:
the female end connector comprises a female end base and a plurality of female end signal transmission modules which are arranged on the female end base in parallel, wherein each female end signal transmission module comprises a signal transmission module and a metal shielding plate fixed on the signal transmission module, each signal transmission module comprises a module shell, a signal transmission reed and a plastic package module, a plurality of concave cavities are formed in the module shell, the signal transmission reeds are arranged in the concave cavities, the plastic package modules correspond to the concave cavities one by one and cover the concave cavities to seal the concave cavities, and the signal transmission reeds form a sealed signal channel; the plastic package modules on the adjacent concave cavities are connected into a whole through transverse ribs, and transverse ribs are connected near the two end parts of the plastic package modules; the lower end part of the metal shielding plate is provided with protruding teeth which are used for being fixed and conducted with a female end base, and a convex hull structure is arranged at the position, corresponding to the protruding teeth, on the female end base.
Preferably, an "L" shaped latch for fixing to a female terminal base is provided on one side of the metal shielding plate, and a plurality of shielding plate slots are provided on a side wall of the female terminal base, on which the female terminal signal transmission module is mounted, at intervals, the "L" shaped latch corresponding to the shielding plate slots.
Preferably, the two transverse ribs at two ends of the plastic package module are arranged in a 90-degree direction, and the module shell is provided with grooves matched with the transverse ribs.
Preferably, the metal shielding plate is provided with two or more bridge structures at intervals, and the bridge structures are protruded toward the outer side of the metal shielding plate.
Preferably, two or more protruding structures are provided at intervals on one side of the metal shielding plate, protruding points are provided above the protruding structures, and the protruding structures protrude toward the outer side of the metal shielding plate.
Preferably, when the metal shielding plate is mounted on the signal transmission module, the protruding structure is located between adjacent differential signal pairs of the signal transmission module.
Preferably, the two signal transmission reeds form differential pairs and are arranged in the same concave cavity, and the two signal transmission reeds in each differential pair are symmetrically arranged.
Preferably, the concave cavities are distributed according to the differential signal routing paths of the signal transmission reeds, and the cavity edges of the concave cavities are spaced from the differential routing edges of the differential signal transmission reeds.
Preferably, the differential routing path extends from one side of the module case to an adjacent side of the module case, and the contact terminal of the signal transmission reed extends to the outside of the module case.
Preferably, a shielding member mounting groove for mounting a shielding member is formed in a side of the module housing away from the signal transmission reed contact terminal, a bending convex portion is formed at a corresponding position on the metal shielding plate, the bending convex portion is adapted to the shielding member mounting groove, and a bending direction of the bending convex portion is opposite to a protruding direction of the bridge structure.
Compared with the prior art, the application has the beneficial effects that at least one of the following is adopted:
according to the application, the plurality of concave cavities are arranged on the module shell in the female end signal transmission module of the high-speed differential signal connector, the cavities are distributed according to the differential wiring paths, and the signal transmission reeds are fixed in the concave cavities, so that a closed signal channel is formed, and finally, the concave cavities are distributed on three sides around the transmitted differential signals in an electroplating way, so that the mutual interference between differential signal pairs can be reduced.
On the other hand, the application limits the structure of the plastic package module, and the arrangement of the transverse ribs is used for the convenience of installation, on the one hand, the differential pair formed by the signal transmission reeds can be better fixed, and the signal crosstalk between the differential pairs is further reduced.
The convex teeth are arranged at the lower end part of the metal shielding plate, and the matched convex hull structure is arranged on the female end base, so that the female end signal transmission module and the metal shielding plate can be conveniently fixed, and meanwhile, the metal shielding plate can be communicated with the female end base, so that a relatively short reflux path is formed, and the reduction of the reflux path of differential signals is facilitated.
According to the application, the L-shaped latch is arranged on the metal shielding plate, and meanwhile, the matched shielding plate clamping groove is arranged on the female end base, so that the female end signal transmission module and the metal shielding plate can be conveniently fixed, and meanwhile, the metal shielding plate can be communicated with the female end base, so that a relatively short reflux path is formed, and the reduction of the reflux path of differential signals is facilitated.
Drawings
Fig. 1 is a schematic view of a female connector according to the present application.
Fig. 2 is a schematic structural diagram of a female signal transmission module according to the present application.
Fig. 3 is a schematic structural diagram of a signal transmission module according to the present application.
Fig. 4 is a schematic structural diagram of the metal shielding plate of the present application clamped with the female base.
Fig. 5 is a schematic structural view of the metal shielding plate of the present application.
Fig. 6 is a schematic structural view of the module case of the present application.
Fig. 7 is a schematic structural view of the signal transmission reed of the present application mounted on a module housing.
Fig. 8 is a schematic structural view of the plastic package module and the transverse ribs of the present application.
Fig. 9 is a schematic diagram of the overall structure of the metal shielding member and the female signal transmission module after installation.
Detailed Description
The present application will be described in further detail with reference to the drawings and examples, in order to make the objects, technical solutions and advantages of the present application more apparent. It should be understood that the specific embodiments described herein are for purposes of illustration only and are not intended to limit the scope of the application.
Referring to fig. 1 to 8, for one embodiment of the present application, a female connector for a high-speed differential signal connector includes a female base 400 and a plurality of female signal transmission modules mounted on the female base 400 in parallel, and in order to satisfy the use of the high-speed differential signal connector, the female signal transmission modules need to be mounted on the female base as a carrier so that the female connector and the male connector can be used in cooperation.
As shown in fig. 1, female-end module fixing grooves 402 for placing female-end signal transmission modules are respectively arranged on the female-end base, and inserting grooves 401 distributed along an array and used for extending out of differential pairs are also arranged in the female-end base 400, and in the inserting grooves 401, contact terminals of signal transmission reeds of the female-end signal transmission modules are mutually matched with pins of a male-end signal transmission module in the male-end connector.
The female-end signal transmission module comprises a signal transmission module 100 and a metal shielding plate 200 fixed on the signal transmission module 100, wherein the metal shielding plate 200 is installed on the signal transmission module, can shield differential signals, and meanwhile, the reflux path is further shortened through the arrangement of the metal shielding plate.
The signal transmission module 100 includes a module housing 101, a signal transmission reed 102, and a plastic package module 103, where the module housing 101 is provided with a plurality of concave cavities 104, the signal transmission reed 102 is installed in the concave cavities 104, and the plastic package module 103 covers the concave cavities 104 and seals the concave cavities 104, so that the signal transmission reed 102 forms a closed signal channel. In the signal transmission module, the concave cavity is arranged on the module shell 101, and the differential signal pair consisting of the signal transmission reed 102 is fixed in the concave cavity, so that after the module shell is electroplated, the concave cavity is electroplated and distributed on three surfaces around the transmission differential signal, and the mutual interference between the differential signal pair can be reduced.
The plastic package modules 103 on the adjacent concave cavities 104 are connected into a whole through transverse ribs 107, and the transverse ribs 107 are connected near the two ends of the plastic package modules 103. To the horizontal muscle 107 on this plastic envelope module 103, all be provided with on each spill cavity 104 with the plastic envelope module of this spill cavity 104 looks adaptation, in order to embody the stability after the structure equipment, consequently link as an organic wholely the plastic envelope module on each spill cavity 104 through horizontal muscle 107 to all be provided with horizontal muscle near the both ends of plastic envelope module 103 and connect fixedly, conveniently stabilize the difference pair that signal transmission reed 102 constitutes and fix, realize the convenience of structure installation and overall structure's steadiness simultaneously.
Fig. 6 shows a schematic structural view of the module case 101, and according to the display of the module case 101, a concave cavity 104 is provided on the surface of the module case 101, and the concave cavity 104 takes a curved groove shape, and the concave cavity 104 extends from one side of the module case 101 toward an adjacent side.
Fig. 7 shows a schematic structural view of the signal transmission reed 102 mounted on the module case 101, and the signal transmission reed 102 is mounted along the direction of the concave cavity 104 when the signal transmission reed 102 is mounted in the concave cavity 104. During installation, the plastic package module 103 is divided into two pieces, each two signal transmission reeds 102 form a differential pair, and one signal transmission reed 102 is installed to cover one plastic package module 103, so that the two signal transmission reeds 102 between the same differential pair form a distance, and are convenient to form fit with a pin of a male end.
The metal shielding plate 200 has a protruding tooth 204 at a lower end thereof for being fixed to and connected with the female terminal base 400, and a protruding structure is provided at a position of the female terminal base 400 corresponding to the protruding tooth 204. The metal shielding plate 200 is fixed on the signal transmission module of each female end signal transmission module, that is, each signal transmission module necessarily corresponds to one metal shielding plate 200, as shown in fig. 4, in order to make the whole female end signal transmission module more stable when being fixed on the female end base 400, therefore, a convex hull structure is arranged at a position on the female end base corresponding to the lower end part of the metal shielding plate, and meanwhile, convex teeth are arranged at the lower end part of the metal shielding plate 200, so that the female end signal transmission module and the metal shielding plate are convenient to fix, and meanwhile, the metal shielding plate can be communicated with the female end base, thereby forming a relatively short reflux path, and being beneficial to shortening the reflux path of differential signals. The convex hull structure is a convex structure with convex points, which is arranged on the side surface of the metal shielding plate inserted on the base of the female end.
Further, according to another embodiment of the present application, on the basis of the above embodiment, an "L" shaped latch 205 for fixing with the female base 400 is provided on one side of the metal shielding plate 200, a plurality of shielding plate slots 405 are provided on the side wall of the female base 400 on which the female signal transmission module is mounted at intervals, and the "L" shaped latch 205 corresponds to the shielding plate slots 405. In this embodiment, the metal shielding plate 200 is fixed on the signal transmission module of each female end signal transmission module, that is, each signal transmission module necessarily corresponds to one metal shielding plate 200, so that in order to make the whole female end signal transmission module more stable when being fixed on the male end base 300, the shielding plate clamping groove 405 is arranged on the side wall of the female end signal transmission module installed on the female end base, and meanwhile, the side edge of the metal shielding plate 200 is provided with the "L" shaped clamping teeth, so that the female end signal transmission module and the metal shielding plate can be fixed conveniently, and meanwhile, the metal shielding plate can be communicated with the female end base, thereby forming a relatively short backflow path, and thus being beneficial to reducing the backflow path of the differential signal.
Because the male connector and the female connector are matched with each other in the high-speed differential signal connector, the male base in the male connector and the female base in the female connector are matched in a plugging manner, a plurality of plugging grooves 401 are distributed on the plugging end of the female base 400 according to an array, adjacent plugging grooves 401 are separated by a partition board, and a plurality of module fixing grooves 402 for placing the female signal transmission module are arranged at the other end of the female base 400 at intervals. The module fixing groove 402 for placing the female end signal transmission module is formed in the female end base 400, and because in the female end signal transmission module, two signal transmission reeds form a signal pair to be matched with the male end contact pin, in order to enable the signal pair to be matched with the male end contact pin, the signal pair is not affected by each other, signal interference is reduced, a plurality of inserting grooves 401 are formed in the inserting end of the female end base 400, and each inserting groove 401 forms an independent space through a partition plate.
Further, according to another embodiment of the present application, on the basis of the above embodiment, two transverse ribs 107 at two ends of the plastic package module 103 are disposed in a 90 degree direction, and a groove 108 adapted to the transverse ribs 107 is disposed on the module housing 101.
In fig. 8, the connection structure of the plastic package module 103 and the transverse ribs 107 is shown, and as seen from fig. 8, in this embodiment, three plastic package modules 103 are respectively arranged corresponding to three concave cavities 104, the plastic package modules 103 are connected into a whole through two transverse ribs 107 arranged in a 90-degree direction on the plastic package modules 103, and when in installation, only the plastic package modules 103 connected into a whole through the transverse ribs 107 need to be covered on the concave cavities 104 according to corresponding positions, so that the structure is stable and convenient to install, and meanwhile, in order to enable the transverse ribs 107 to be attached to the module housing 101 more, grooves 108 matched with the transverse ribs 107 are formed on the module housing 101; in addition, in order to minimize the mutual interference between the differential signal pairs by using all the grooves or concave cavities, it is preferable to set the two transverse ribs 107 on the plastic package module 103 in a 90 degree direction, so as to avoid any slotting to affect the crosstalk between signals.
Further, according to another embodiment of the present application, on the basis of the above embodiment, two or more bridge structures 201 are disposed on the metal shielding plate 200 at intervals, and the bridge structures 201 are protruded toward the outer side of the metal shielding plate 200. The bridge structure 201 on the metal shielding plate 200 is an arch bridge structure protruding from the metal shielding plate 200, and the purpose of arranging more than two bridge structures 201 on the metal shielding plate 200 is that after the metal shielding plate 200 is fixed with the signal transmission modules, the plurality of signal transmission modules are arranged in parallel, so that the metal shielding plate 200 and the shielding shells of the adjacent signal transmission modules can be communicated in multiple points, and the backflow path is shortened.
Further, according to another embodiment of the present application, on the basis of the above embodiment, two or more bridge structures 201 are uniformly arranged in a diagonal manner, that is, the center points of two or more bridge structures 201 are distributed on the same diagonal line, that is, are uniformly arranged on the metal shielding plate 200 in a diagonal direction, and by adopting the arrangement manner, a plurality of communication points of the metal shielding plate 200 and the signal transmission module are all distributed on different transverse lines or longitudinal lines, so that multi-point communication between the metal shielding plate 200 and the shielding shell of the signal transmission module at different positions is further realized, and a backflow path is shortened.
In addition, more than two bridge structures 201 face the same direction of the metal shielding plate 200, the bridge structures face the same direction, so that the stress angles are consistent when stressed, the stability of the structure is facilitated, strip-shaped through grooves 202 are formed in the positions, corresponding to the bridge structures 201, on the metal shielding plate 200, two ends of the bridge structures 201 are respectively and movably connected to two ends of the strip-shaped through grooves 202, the strip-shaped through grooves 202 are hollow groove bodies with two closed ends, and the strip-shaped through grooves are formed to facilitate connection of the bridge structures, so that the shielding plate and the signal transmission module can be stably and multi-point communicated; on the other hand, the bridge structure 201 is movably connected to two ends of the strip-shaped through groove 202, that is, the bridge structure 201 can rotate at a certain angle, so that a hinged mode can be adopted for realizing the structure. Through simulation analysis of mechanics, the bridge structure has smaller stress and equivalent stress when being rotated at a certain angle compared with the fixed connection of the bridge structure, namely, stronger interaction force can be born in a movable connection mode, so that the whole structure is more stable.
Further, according to another embodiment of the present application, on the basis of the above embodiment, two or more protruding structures 206 are disposed at intervals on one side of the metal shielding plate 200, and protruding points 207 are disposed above the protruding structures 206, and the protruding structures 206 protrude toward the outside of the metal shielding plate 200. The bump structure 206 is a bump formed on one side of the shield plate body 200 and extending upward on the side, and the bump is used for contacting with an adjacent signal transmission module. In this embodiment, after the metal shielding plate is fixed to the male pin or the female signal transmission module, the plurality of signal transmission modules are arranged in parallel, and the protruding structure 206 can enable the metal shielding plate to be in multipoint communication with the shielding shell of the adjacent signal transmission module, so that the reflow path is shortened.
Further, for another embodiment of the present application, when the metal shielding plate 200 is mounted on the signal transmission module, the protrusion structure 206 is located between adjacent differential signal pairs of the signal transmission module. As shown in fig. 9, when the bump structure 207 on the metal shielding plate is mounted on the signal transmission module, the ground hole 208 is formed between the differential signal pairs 301, so the bump structure should be located between the adjacent differential signal pairs of the signal transmission module, thereby reducing crosstalk between signals.
Further, for another embodiment of the present application, on the basis of the above embodiment, the two signal transmission reeds 102 are installed in the same concave cavity 104 as each other to form a differential pair, and the two signal transmission reeds 102 in each differential pair are symmetrically arranged. In this embodiment, in order to mate with the pin in the male connector, two signal transmission reeds 102 need to be fixed in the same concave cavity 104, and the two signal transmission reeds 102 form a differential pair for mating with the pin of the male connector, and the contact terminals of the signal transmission reeds 102 mated with the pin of the male connector are in opposite wavy bending arrangement, and perform signal transmission with the pin of the male connector.
Further, for another embodiment of the present application, based on the above embodiment, the concave cavity 104 is distributed according to the differential signal routing paths of the signal transmission reed 102, and a cavity edge of the concave cavity 104 and a differential routing edge of the differential signal transmission reed 102 have a space. In this embodiment, the cavities are distributed according to differential paths, so that on one hand, the return paths are shortened as much as possible, and the crosstalk between differential signals is reduced, and on the other hand, the concave cavities are at a certain distance from the differential signals, so as to perform impedance matching better.
Further, for another embodiment of the present application, on the basis of the above embodiment, the differential routing path extends from one side of the module housing 101 to an adjacent side of the module housing 101, and the contact terminal 1021 of the signal transmission reed 102 extends to the outside of the module housing 101. In this embodiment, the paths of the differential wires are defined, and since the signal transmission reed 102 is to transmit signals, both ends of the signal transmission reed 102 may transmit signals with other structures, so according to the transmission principle of the signal connector, the signal transmission reed 102 is in an arc-shaped curved arrangement, and therefore the paths of the differential wires extend from one side of the module housing 101 to the adjacent side of the module housing 101, so that the contact terminal 1021 of the signal transmission reed 102 is matched with the male pin, and the contact terminal 1021 of the signal transmission reed 102 extends to the outside of the module housing 101.
Further, according to another embodiment of the present application, on the basis of the above embodiment, a shield mounting groove 105 for mounting a shield is formed on a side of the module case 101 away from the contact terminal of the signal transmission reed 102, a bending protrusion 203 is formed at a corresponding position on the metal shield 200, the bending protrusion 203 is adapted to the shield mounting groove 105, and a bending direction of the bending protrusion 203 is opposite to a protruding direction of the bridge structure 201. When the metal shield 200 is mounted on the module case 101, the bent convex portion 203 of the metal shield 200 is just inserted into the shield mounting groove 105 on the module case 101, so that the metal shield 200 can be more firmly fixed on the module case 101, and the module case 101 can be treated as metal after being electroplated, so that the arrangement of the structure can ensure multi-point communication between the module case 101 and the metal shield 200.
The end of the module housing 101 provided with the shielding member mounting groove 105 is provided with a mounting protrusion 106, so that the female end transmission module is conveniently mounted on the female end base and clamped by the tail clamp.
Reference throughout this specification to "one embodiment," "another embodiment," "an embodiment," "a preferred embodiment," etc., means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the present application as broadly described. The appearances of the phrase in various places in the specification are not necessarily all referring to the same embodiment. Further, when a particular feature, structure, or characteristic is described in connection with any embodiment, it is intended that such feature, structure, or characteristic be implemented within the scope of the application.
Although the application has been described herein with reference to a number of illustrative embodiments thereof, it should be understood that numerous other modifications and embodiments can be devised by those skilled in the art that will fall within the scope and spirit of the principles of this disclosure. More specifically, various variations and modifications may be made to the component parts and/or arrangements of the subject combination arrangement within the scope of the disclosure, drawings and claims. In addition to variations and modifications in the component parts and/or arrangements, other uses will be apparent to those skilled in the art.

Claims (8)

1. A female connector for a high-speed differential signal connector, comprising: comprises a female end base (400) and a plurality of female end signal transmission modules which are arranged on the female end base (400) in parallel,
the female end signal transmission module comprises a signal transmission module (100) and a metal shielding plate (200) fixed on the signal transmission module (100), the signal transmission module (100) comprises a module shell (101), a signal transmission reed (102) and a plastic package module (103),
the module shell (101) is provided with a plurality of concave cavities (104), the signal transmission reeds (102) are arranged in the concave cavities (104), the plastic package modules (103) are in one-to-one correspondence with the concave cavities (104) and cover the concave cavities (104) to seal the concave cavities (104), so that the signal transmission reeds (102) form a sealed signal channel;
the plastic package modules (103) on the adjacent concave cavities (104) are connected into a whole through transverse ribs (107), and the transverse ribs (107) are connected near two end parts of the plastic package modules (103);
the lower tip of metal shield (200) is provided with and is used for being fixed, switch on with female end base (400) protruding tooth (204), on female end base (400) with the position department that protruding tooth (204) corresponds is provided with convex hull structure, be provided with on one side edge of metal shield (200) be used for with female end base (400) fixed "L" latch (205), install on female end base (400) a plurality of shield plate draw-in grooves (405) are provided with on the lateral wall of female end signal transmission module at intervals, "L" latch (205) are corresponding with shield plate draw-in groove (405), be 90 degrees orientation setting between two transverse ribs (107) of plastic envelope module (103) both ends, and be provided with on module shell (101) with recess (108) of transverse rib (107) looks adaptation.
2. The female end connector for a high-speed differential signal connector according to claim 1, wherein: more than two bridge structures (201) are arranged on the metal shielding plate (200) at intervals, and the bridge structures (201) protrude towards the outer side of the metal shielding plate (200).
3. The female connector for a high-speed differential signal connector according to claim 1 or 2, wherein: more than two protruding structures (206) are arranged on one side edge of the metal shielding plate (200) at intervals, protruding points (207) are arranged above the protruding structures (206), and the protruding structures (206) protrude towards the outer side of the metal shielding plate (200).
4. A female end connector for a high-speed differential signal connector as defined in claim 3, wherein: when the metal shield (200) is mounted on the signal transmission module, the bump structure (206) is located between adjacent differential signal pairs of the signal transmission module.
5. The female end connector for a high-speed differential signal connector according to claim 1, wherein: the two signal transmission reeds (102) form differential pairs and are arranged in the same concave cavity (104), and the two signal transmission reeds (102) in each differential pair are symmetrically arranged.
6. The female end connector for a high-speed differential signal connector according to claim 1, wherein: the concave cavities (104) are distributed according to the differential signal routing paths of the signal transmission reeds (102), and the cavity edges of the concave cavities (104) are spaced from the differential routing edges of the signal transmission reeds (102).
7. The female end connector for a high-speed differential signal connector according to claim 6, wherein: the differential signal wiring path extends from one side edge of the module housing (101) to an adjacent side edge of the module housing (101), and the contact terminal (1021) of the signal transmission reed (102) extends to the outside of the module housing (101).
8. The female end connector for a high-speed differential signal connector according to claim 7, wherein: the module is characterized in that a shielding piece mounting groove (105) for mounting a shielding piece is formed in one side, far away from the contact terminal of the signal transmission reed (102), of the module shell (101), a bending convex part (203) is arranged at a corresponding position on the metal shielding plate (200), the bending convex part (203) is matched with the shielding piece mounting groove (105), and the bending direction of the bending convex part (203) is opposite to the protruding direction of the bridge structure (201).
CN201910020331.4A 2019-01-09 2019-01-09 Female connector for high-speed differential signal connector Active CN109510033B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201910020331.4A CN109510033B (en) 2019-01-09 2019-01-09 Female connector for high-speed differential signal connector

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201910020331.4A CN109510033B (en) 2019-01-09 2019-01-09 Female connector for high-speed differential signal connector

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CN109830850B (en) * 2019-03-29 2024-04-19 四川华丰科技股份有限公司 Module structure for high-speed connector and high-speed connector
CN109830848B (en) * 2019-03-29 2023-12-05 四川华丰科技股份有限公司 Module structure for high-speed connector and high-speed connector
CN109830849B (en) * 2019-03-29 2023-11-03 四川华丰科技股份有限公司 Module structure for high-speed connector and high-speed connector

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