This patent application claims priority of a Chinese Patent Application No. 202111524642.8, filed on Dec. 14, 2021 and titled “ELECTRICAL CONNECTOR”, and a Chinese Patent Application No. 202211025117.6, filed on Aug. 25, 2022 and titled “ELECTRICAL CONNECTOR AND ASSEMBLY THEREOF”, the content of which is incorporated herein by reference in its entirety.
The present disclosure relates to an electrical connector and a connector assembly thereof, which belongs to a technical field of connectors.
With the continuous development of electrical connectors, the conductive terminals of the electrical connectors have more and more appearances. Some of the conductive terminals are used to transmit high-speed signals, and these conductive terminals are called high-speed signal terminals. Some conductive terminals are used to transmit non-high-speed signals, and these conductive terminals are called non-high-speed signal terminals.
In the related art, it is generally not distinguished whether the conductive terminals are high-speed signal terminals or non-high-speed signal terminals, and cable connection or circuit board connection is used uniformly. However, this approach still has room for improvement.
An object of the present disclosure is to provide an electrical connector and a connector assembly thereof with a hybrid connection for conductive terminals.
In order to achieve the above object, the present disclosure adopts the following technical solution: an electrical connector, including: an insulating body including a mating surface and a receiving slot extending through the mating surface; a plurality of conductive terminals, each conductive terminal including a mating portion protruding into the receiving slot and a tail portion opposite to the mating portion, the plurality of conductive terminals including a plurality of first signal terminals and a plurality of second signal terminals, each tail portion of the first signal terminals including a connection portion; an adapter circuit board including a first insertion portion and a second insertion portion, the first insertion portion including a plurality of first mating conductive pads, the plurality of first mating conductive pads being in contact with the tail portions of the plurality of second signal terminals, the second insertion portion including a plurality of second mating conductive pads, the plurality of second mating conductive pads being configured to mate with a mating electrical connector; and a plurality of cables which are in contact with the connection portions of the first signal terminals.
In order to achieve the above object, the present disclosure adopts the following technical solution: a connector assembly, including: an electrical connector and a mating electrical connector which are mated with each other, the electrical connector including: an insulating body including a mating surface and a receiving slot extending through the mating surface; a plurality of conductive terminals, each conductive terminal including a mating portion protruding into the receiving slot and a tail portion opposite to the mating portion, the plurality of conductive terminals including a plurality of first signal terminals and a plurality of second signal terminals, each tail portion of the first signal terminals including a connection portion; an adapter circuit board including a first insertion portion and a second insertion portion, the first insertion portion including a plurality of first mating conductive pads, the plurality of first mating conductive pads being in contact with the tail portions of the plurality of second signal terminals, the second insertion portion including a plurality of second mating conductive pads, the plurality of second mating conductive pads being configured to mate with the mating electrical connector; and a plurality of cables which are in contact with the connection portions of the first signal terminals; the mating electrical connector including: a mating insulating body including a mating surface and a mating slot extending through the mating surface, the adapter circuit board being at least partially inserted into the mating slot; and a plurality of mating conductive terminals, each mating conductive terminal including a contact portion extending into the mating slot, the contact portions of the plurality of mating conductive terminals being in electrical contact with the adapter circuit board; wherein the electrical connector and the mating electrical connector further include interlocking structures to prevent the electrical connector from being detached from the mating electrical connector.
Compared with the prior art, the first/high-speed signal terminals of the present disclosure are connected to the cables, and are transmitted through the cables, which reduces distortion and improves the quality of signal transmission. At the same time, the second/non-high-speed signal terminals are electrically connected to the adapter circuit board, which simplifies a circuit design of the adapter circuit board. The conductive terminals of the electrical connector of the present disclosure are connected by the cables and the adapter circuit board in a hybrid manner, which can not only adapt to the transmission of high-speed signal terminals and non-high-speed signal terminals, but also balance the design of the electrical connector and save costs.
Exemplary embodiments will be described in detail here, examples of which are shown in drawings. When referring to the drawings below, unless otherwise indicated, same numerals in different drawings represent the same or similar elements. The examples described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of devices and methods consistent with some aspects of the application as detailed in the appended claims.
The terminology used in this application is only for the purpose of describing particular embodiments, and is not intended to limit this application. The singular forms “a”, “said”, and “the” used in this application and the appended claims are also intended to include plural forms unless the context clearly indicates other meanings.
It should be understood that the terms “first”, “second” and similar words used in the specification and claims of this application do not represent any order, quantity or importance, but are only used to distinguish different components. Similarly, “an” or “a” and other similar words do not mean a quantity limit, but mean that there is at least one; “multiple” or “a plurality of” means two or more than two. Unless otherwise noted, “front”, “rear”, “lower” and/or “upper” and similar words are for ease of description only and are not limited to one location or one spatial orientation. Similar words such as “include” or “comprise” mean that elements or objects appear before “include” or “comprise” cover elements or objects listed after “include” or “comprise” and their equivalents, and do not exclude other elements or objects. The term “a plurality of” mentioned in the present disclosure includes two or more.
Hereinafter, some embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. In the case of no conflict, the following embodiments and features in the embodiments can be combined with each other.
Referring to
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Since the structure of the electrical connector 100 corresponding to each receiving slot 110 is similar, only one of the receiving slots 110 will be described below as an example.
The insulating body 1 includes a top wall 14 and a bottom wall 15. The receiving slot 110 is located between the top wall 14 and the bottom wall 15. The top wall 14 includes a first hollow groove 140 and a plurality of first spacing grooves 141 connected to the first hollow groove 140. The bottom wall 15 includes a second hollow groove 150 and a plurality of second spacing grooves 151 connected to the second hollow groove 150.
Referring to
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In the illustrated embodiment of the present disclosure, the electrical connector 100 includes a first terminal module 201 and a second terminal module 202. The first terminal module 201 and the second terminal module 202 are assembled to the insulating body 1. The first terminal module 201 includes a first insulating block 23. The plurality of first conductive terminals 21 are insert-molded with the first insulating block 23. The second terminal module 202 includes a second insulating block 24. The plurality of second conductive terminals 22 are insert-molded with the second insulating block 24. Of course, in other embodiments, the first conductive terminals 21 and the second conductive terminals 22 may also be directly assembled to the insulating body 1.
Referring to
Each second conductive terminal 22 includes a second mating portion 221 protruding into the receiving slot 110, and a second tail portion 222 opposite to the second mating portion 221. The plurality of second conductive terminals 22 include a plurality of second high-speed signal terminals (High speed Signal, HS2) and a plurality of second non-high-speed signal terminals (Non-High speed Signal, NHS2). The second tail portion 222 of the second high-speed-signal terminal HS2 includes a second connecting portion 2221. The second tail portion 222 of the second non-high-speed signal terminal NHS2 includes a second elastic mounting arm 2222. In an embodiment of the present disclosure, the second high-speed signal terminals HS2 are differential pair signal terminals. The second non-high-speed signal terminals NHS2 are single signal terminals. The first connecting portion 2121 has a shape of a flat plate. The first elastic mounting arm 2122 extends beyond the first connecting portion 2121 in a direction (for example, a front-to-back direction) away from the first mating portion 211. The second connecting portion 2221 has a shape of a flat plate. The second elastic mounting arm 2222 extends beyond the second connecting portion 2221 in a direction (for example, the front-to-back direction) away from the second mating portion 221. In the embodiment shown in the present disclosure, the first mating portions 211 and the second mating portions 221 are elastic mating portions, so as to improve the mating reliability when mating with the mating element.
In the illustrated embodiment of the present disclosure, the first mating portions 211 have same structures, and the second mating portions 221 also have same structures. The first mating portions 211 and the second mating portions 221 are symmetrically disposed on opposite sides (for example, upper and lower sides) of the receiving slot 110.
Referring to
The plurality of second conductive terminals 22 include a plurality of second signal terminal pairs (Signal Pair, SP2) and a plurality of second ground terminals G2. The second ground terminals G2 are disposed on left and right sides of each second signal terminal pair SP2, respectively. Each second signal terminal pair SP2 includes two second signal terminals S2. The electrical connector 100 further includes a second ground connection piece 26 connecting the plurality of the second ground terminals G2 in series in order to improve the grounding shielding effect. The second ground connection piece 26 is provided with a plurality of second relief recesses 261 of which each corresponds to a corresponding second signal terminal pair SP2 to avoid short circuit due to contact with the second signal terminal pair SP2. The second conductive terminals 22 are correspondingly located in the second spacing grooves 151 to achieve positioning. The second conductive terminals 22 are at least partially exposed downwardly in the second hollow groove 150 to adjust impedance.
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The second insulating block 24 is provided with a second mounting groove 241 for mounting the second ground connection piece 26, a plurality of second protruding blocks 242, and a second positioning groove 243 located between two adjacent second protruding blocks 242. The second ground connection piece 26 includes a second protrusion 262 clamped in the second positioning groove 243.
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Similarly, each second ground terminal G2 includes a third inclined arm 223 connected to the second mating portion 221 of the second ground terminal G2. Each second signal terminal S2 includes a fourth inclined arm 224 connected to the second mating portion 221 of the second signal terminal S2. A width of the third inclined arm 223 is greater than a width of the fourth inclined arm 224. In the illustrated embodiment of the present disclosure, the third inclined arm 223 is provided with a second slot 2231 to adjust impedance.
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In the illustrated embodiment of the present disclosure, the first connecting portions 2121, the second connecting portions 2221, the first elastic mounting arms 2122 and the second elastic mounting arms 2222 all extend backwardly beyond the rear end surface 12. When the adapter circuit board 3 is assembled in place, the adapter circuit board 3 is clamped between the first elastic mounting arms 2122 and the second elastic mounting arms 2222. Referring to
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Compared with the prior art, the first high-speed signal terminals HS1 and the second high-speed signal terminals HS2 of the present disclosure are connected to the first cables 41 and the second cables 42, and are transmitted through cables, which reduces the signal distortion that may be caused when high-speed signals are transmitted through a circuit board, thereby improving the quality of signal transmission. At the same time, the first non-high-speed signal terminals NHS1 and the second non-high-speed signal terminals NHS2 are electrically connected to the adapter circuit board 3, which simplifies the circuit design of the adapter circuit board 3. The first conductive terminals 21 and the second conductive terminals 22 of the electrical connector 100 of the present disclosure are connected by a combination of the cables and the adapter circuit board 3, which facilitates better arrangement of the conductive terminals 2. This can not only adapt to the transmission of high-speed signal terminals and non-high-speed signal terminals, but also balance the design of the electrical connector 100 and save costs.
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The electrical connector 100 in the second embodiment of the present disclosure includes an insulating body 1, a plurality of conductive terminals 2, an adapter circuit board 3, and a plurality of cables 4. The electrical connector 100 is adapted for mating with a mating element (e.g., an electronic card or a tongue plate of a mating connector corresponding to the electrical connector 100) to transmit data and access power.
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The second insertion portion 37 is an output port. The second insertion portion 37 includes an insertion tongue 370 and a plurality of second mating conductive pads 371 disposed on the insertion tongue 370. In the illustrated embodiment of the present disclosure, an extending direction of the insertion tongue 370 and an extending direction of the plug plate portion 360 are perpendicular to each other. The plurality of second mating conductive pads 371 are configured to mate with the mating electrical connector 200. In the illustrated embodiment of the present disclosure, the plurality of second mating conductive pads 371 are located on two opposite surfaces of the insertion tongue 370.
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In the embodiment shown in the present disclosure, the first support plate 271 includes a first support surface 2711, a second support surface 2712, and a first abutting surface 2713 connecting the first support surface 2711 and the second support surface 2712. The first support surface 2711, the second support surface 2712 and the first abutting surface 2713 is of a stepped configuration. The second support surface 2712 is closer to a middle plane between the first support plate 271 and the second support plate 272 than the first support surface 2711. In other words, the second support surface 2712 is lower than the first support surface 2711. In this way, when the first cables 41 are assembled, the second support surface 2712 can provide a certain degree of space for the first cables 41. In addition, the first abutting surface 2713 can play a limiting function on the first cables 41.
Similarly, the second support plate 272 includes a third support surface 2721, a fourth support surface 2722, and a second abutting surface 2723 connecting the third support surface 2721 and the fourth support surface 2722. The third support surface 2721, the fourth support surface 2722 and the second abutting surface 2723 are of a stepped configuration. The fourth support surface 2722 is closer to the middle plane between the first support plate 271 and the second support plate 272 than the third support surface 2721. In other words, the fourth support surface 2722 is higher than the third support surface 2721. In this way, when the second cables 42 are assembled, the fourth support surface 2722 can provide a certain degree of space for the second cables 42. The second abutting surface 2723 can play a limiting function on the second cables 42.
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The metal shell 8 includes a first wall portion 81, a second wall portion 82 opposite to the first wall portion 81, a connecting portion 83 at least partially connecting the first wall portion 81 and the second wall portion 82, a buckle portion 84 for closing the metal shell 8, and a receiving cavity 80 located between the first wall portion 81 and the second wall portion 82. In an embodiment of the present disclosure, the metal shell 8 is formed by punching, bending and buckling a piece of metal sheet. Buckling structures (such as dovetail grooves and protrusions which cooperate with each other) are provided on the buckle portion 84. The buckle portion 84 and the connecting portion 83 are located on two sides of the receiving cavity 80, respectively. A height of the buckle portion 84 is lower than a height of the connecting portion 83. The first wall portion 81, the second wall portion 82, the connecting portion 83 and the buckle portion 84 encloses an outer wall of the mating insulating body 6, so that the mutual fixation of the metal shell 8 and the mating insulating body 6 is realized.
Specifically, the first wall portion 81 includes a first mounting foot 811 extending downwardly and toward a side away from the second wall portion 82. The second wall portion 82 includes a second mounting foot 821 extending downward and toward a side away from the first wall portion 81. The first mounting foot 811 and the second mounting foot 821 are adapted for being mounted on the main circuit board. In the embodiment shown in the present disclosure, in order to further enhance the structural strength, the heights of the first wall portion 81, the second wall portion 82 and the connecting portion 83 are set as high as possible. A height of the connecting portion 83 is the same as a height of the first wall portion 81 and a height of the second wall portion 82.
The metal shell 8 further includes a first tab 851 bent from the first wall portion 81 toward the second wall portion 82, and a second tab 852 bent from the second wall portion 82 toward the first wall portion 81. The metal shell 8 further includes a first extension portion 861 extending forwardly from the first wall portion 81, and an elastic locking arm 863 extending upwardly from the first extension portion 861. The metal shell 8 further includes a second extension portion 871 extending forwardly from the second wall portion 82.
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When the electrical connector 100 is mated with the mating electrical connector 200, the first tab 851 and the second tab 852 are locked in a first slit 52 and a second slit 53 of the over-molding block 5, respectively, so as to achieve better positioning. A relative position of the elastic locking arm 863 and the locking protrusion 51 changes along the guide surface 512 of the locking protrusion 51.
When the electrical connector 100 and the mating electrical connector 200 are mated in place, the elastic locking arm 863 release the elastic force, so that the locking protrusion 51 is locked in the locking hole 8631. A portion of the elastic locking arm 863 located on an upper edge of the locking hole 8631 can abut against the locking surface 511 in a vertical direction, so as to prevent the electrical connector 100 from being improperly separated from the mating electrical connector 200 in a direction opposite to an insertion direction. At this time, the insertion tongue 370 of the electrical connector 100 and part of the over-molding block 5 are accommodated in the mating electrical connector 200. The insertion tongue 370 is inserted into the mating slot 62 to achieve electrical connection with the mating conductive terminals 7.
When in use, the mating element (e.g., an electronic card) is inserted into the receiving slot 110, which exerts an insertion force on the electrical connector 100 in a direction opposite to a first direction A1. In the embodiment shown in the present disclosure, the first tab 851 and the second tab 852 are locked in the first slit 52 and the second slit 53 of the over-molding block 5, respectively. Therefore, the integrity of the connector assembly is improved, and the possible adverse effects of the insertion force on the connector assembly are reduced. In addition, by elevating the first wall portion 81, the second wall portion 82 and the connecting portion 83, the connecting portion 83 can better stop the electrical connector 100, thereby further reducing the possible adverse effects of the insertion force on the connector assembly. For example, the risk of loosening of the mating electrical connector 200 and the main circuit board at a soldering position caused by the insertion force is reduced, and the risk of poor contact between the second mating conductive pads 371 of the insertion tongue 370 and the mating conductive terminals 7 is reduced.
When unlocking is required, the inclined portion 8632 is pulled or pushed outwardly to make the locking protrusion 51 disengage from the locking hole 8631. Then, by applying a force opposite to a second direction A2, the electrical connector 100 can be pulled out from the mating electrical connector 200.
Compared with the prior art, the electrical connector 100 and the mating electrical connector 200 can prevent the electrical connector 100 from being disengaged in a direction opposite to the second direction A2 through interlocking structures. Thus, the mating reliability of the electrical connector 100 and the mating electrical connector 200 is improved. The interlocking structures include the elastic locking arm 863 and the locking protrusion 51 which cooperate with each other. Of course, it is understandable to those skilled in the art that, in order to improve the locking effect, the second side wall 18 may also be provided with a locking protrusion 51. Correspondingly, the metal shell 8 further includes an elastic locking arm 863 extending from the second wall portion 82.
In the illustrated embodiment of the present disclosure, the locking protrusion 51 is provided on the electrical connector 100, and the elastic locking arm 863 is provided on the mating electrical connector 200. Alternatively, the locking protrusion 51 can be provided on the mating electrical connector 200, the elastic locking arm 863 can be provided on the electrical connector 100, and the function of the interlocking structures can also be achieved.
The above embodiments are only used to illustrate the present disclosure and not to limit the technical solutions described in the present disclosure. The understanding of this specification should be based on those skilled in the art. Descriptions of directions, although they have been described in detail in the above-mentioned embodiments of the present disclosure, those skilled in the art should understand that modifications or equivalent substitutions can still be made to the application, and all technical solutions and improvements that do not depart from the spirit and scope of the application should be covered by the claims of the application.
Number | Date | Country | Kind |
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202111524642.8 | Dec 2021 | CN | national |
202211025117.6 | Aug 2022 | CN | national |