CONNECTOR, CONNECTOR ASSEMBLY, AND ELECTRONIC DEVICE
20230079030 · 2023-03-16
Inventors
Cpc classification
International classification
Abstract
A connector, a connector assembly, and an electronic device are provided to improve crosstalk phenomenon between signals and optimize signal transmission performance. The connector includes a plurality of first terminal modules arranged in an array manner, where the first terminal module includes a shielding unit and a first signal terminal, and the shielding unit includes a plurality of shielding boards that are sequentially connected to form a shielding cavity. A first surface of the shielding board back to the shielding cavity is used to cooperate with a peer shielding board of a paired connector, and a contact unit protruding from the first surface is further disposed on the shielding board. The contact unit is configured to electrically connect to the peer shielding board of the paired connector, and the first signal terminal is located in the shielding cavity.
Claims
1. A connector, comprising a plurality of first terminal modules arranged in an array manner, and the first terminal module comprises a shielding unit and a first signal terminal, wherein the shielding unit comprises a plurality of shielding boards sequentially connected to form a shielding cavity, a first surface that is of the shielding board and that is back to the shielding cavity is configured to cooperate with a peer shielding board of a paired connector, a contact unit protruding from the first surface is further disposed on the shielding board, and the contact unit is configured to electrically connect to the peer shielding board of the paired connector; and the first signal terminal is located in the shielding cavity.
2. The connector according to claim 1, wherein the contact unit is a rigid contact unit or an elastic contact unit.
3. The connector according to claim 2, wherein the rigid contact unit is of a protrusion structure.
4. The connector according to claim 2, wherein the elastic contact unit is a first spring arm, and the first spring arm is disposed and inclined in a direction away from the first face.
5. The connector according to claim 4, wherein a length of the first spring arm may be between 0.9 mm and 2.5 mm.
6. The connector according to claim 2, wherein the elastic contact unit comprises two second spring arms, the two second spring arms are respectively disposed and inclined to the direction away from the first surface, and first ends of the two second spring arms are separately connected to the shielding board; and second ends of the two second spring arms intersect with each other.
7. The connector according to claim 1, wherein a quantity of shielding boards in the shielding unit is four.
8. The connector according to claim 7, wherein each two of the four shielding boards are disposed opposite to each other, and in the two shielding boards disposed opposite to each other, a contact unit disposed on at least one shielding board is an elastic contact unit.
9. The connector according to claim 7, wherein the four shielding boards are respectively a first shielding board, a second shielding board, a third shielding board, and a fourth shielding board, the first shielding board and the third shielding board are disposed opposite to each other and arranged in a column direction, and the second shielding board and the fourth shielding board are disposed opposite to each other and arranged in a row direction; and first shielding boards that are of the plurality of first terminal modules and that are disposed in the same row are connected to each other; and third shielding boards that are of the plurality of first terminal modules and that are disposed in the same row are connected to each other.
10. The connector according to claim 1, wherein at least one contact unit is disposed on each shielding board.
11. A connector assembly, comprising a connector, which comprises a plurality of first terminal modules arranged in an array manner, and the first terminal module comprises a shielding unit and a first signal terminal, wherein the shielding unit comprises a plurality of shielding boards sequentially connected to form a shielding cavity, a first surface that is of the shielding board and that is back to the shielding cavity is configured to cooperate with a peer shielding board of a paired connector, a contact unit protruding from the first surface is further disposed on the shielding board, and the contact unit is configured to electrically connect to the peer shielding board of the paired connector; and the first signal terminal is located in the shielding cavity; and, a paired connector that is paired with and connected to the connector in an interposing manner, wherein the paired connector comprises a plurality of second terminal modules arranged in an array manner, and the second terminal modules comprise a second signal terminal and a plurality of peer shielding boards; the plurality of peer shielding boards are disposed around the second signal terminal, and a quantity of peer shielding boards in the second terminal module is equal to a quantity of shielding boards in a first terminal module; and when the paired connector and the connector are mutually paired, the second signal terminal is electrically connected to a corresponding first signal terminal, the peer shielding board is interposed between two adjacent first terminal modules, and two sides of the peer shielding board are respectively electrically connected to shielding boards of the two first terminal modules.
12. The connector assembly according to claim 11, wherein a quantity of peer shielding boards in the second terminal module is four.
13. The connector assembly according to claim 12, wherein the four peer shielding boards are respectively a fifth shielding board, a sixth shielding board, a seventh shielding board, and an eighth shielding board, the fifth shielding board and the seventh shielding board are disposed opposite to each other and arranged in a column direction, and the sixth shielding board and the eighth shielding board are disposed opposite to each other and arranged in a row direction; and fifth shielding boards that are of the plurality of second terminal modules and that are disposed in the same row are connected to each other to form a one-piece shielding board, and seventh shielding boards that are of the plurality of second terminal modules and that are disposed in the same row are connected to each other to form a one-piece shielding board.
14. The connector assembly according to claim 13, wherein the one-piece shielding board has a first side surface facing a first direction, and the first side surface comprises flat parts located on two ends and an arc notch disposed between the two flat parts; and the first direction is an interposing direction of the paired connector and the connector.
15. An electronic device, comprising a first circuit board, a second circuit board, and the connector assembly comprising a connector, which comprises a plurality of first terminal modules arranged in an array manner, and the first terminal module comprises a shielding unit and a first signal terminal, wherein the shielding unit comprises a plurality of shielding boards sequentially connected to form a shielding cavity, a first surface that is of the shielding board and that is back to the shielding cavity is configured to cooperate with a peer shielding board of a paired connector, a contact unit protruding from the first surface is further disposed on the shielding board, and the contact unit is configured to electrically connect to the peer shielding board of the paired connector; and the first signal terminal is located in the shielding cavity; and, a paired connector that is paired with and connected to the connector in an interposing manner, wherein the paired connector comprises a plurality of second terminal modules arranged in an array manner, and the second terminal modules comprise a second signal terminal and a plurality of peer shielding boards; the plurality of peer shielding boards are disposed around the second signal terminal, and a quantity of peer shielding boards in the second terminal module is equal to a quantity of shielding boards in a first terminal module; and when the paired connector and the connector are mutually paired, the second signal terminal is electrically connected to a corresponding first signal terminal, the peer shielding board is interposed between two adjacent first terminal modules, and two sides of the peer shielding board are respectively electrically connected to shielding boards of the two first terminal modules, wherein the connector is disposed on the first circuit board, and is electrically connected to the first circuit board; and a paired connector is disposed on the second circuit board, and is electrically connected to the second circuit board.
16. The electronic device according to claim 15, wherein the first circuit board is a line card, and the second circuit board is a network interface card.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0026]
[0027]
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[0029]
[0030]
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[0039]
REFERENCE NUMERALS
[0040] 100: Base 200: First terminal module 10: First signal terminal 20: Shield unit 21: Shielding board [0041] 22: Shielding cavity 23: First shielding board 24: Second shielding board 25: Third shielding board 26: Fourth shielding board [0042] 211: First surface 51: Peer shielding board 30: Elastic unit 31: Protrusion structure 32: First spring arm 27: Notch [0043] 33: Second spring arm 300: Second terminal module 40: Second signal terminal 52: Fifth shielding board 53: Sixth shielding board [0044] 54: Seventh shielding board 55: Eighth shielding board 56: One-piece shielding board 28: Long female shielding board 57: Arc notch [0045] 58: Flat part
DESCRIPTION OF EMBODIMENTS
[0046] To make objectives, technical solutions, and advantages of this application clearer, the following further describes this application in detail with reference to the accompanying drawings.
[0047] For ease of understanding a connector provided in embodiments of this application, the following first describes an application scenario of the connector. The connector may be applied to an electronic device, and is configured to transmit a high-speed differential signal, a single-end signal, or the like. The electronic device may be a device such as a communications device, a server, a supercomputer, a router, or a switch in the conventional technologies. When a male connector and a female connector are mutually paired, to ensure signal transmission quality, a grounding shielding structure is generally disposed between signals. With a gradually increase of a signal path rate and density, for a conventional shielding structure, a phenomenon such as crosstalk resonance between signals occurs due to a problem such as a relatively small quantity of grounding points and an excessively long return path. Especially, in a data transmission scenario at 56 Gbps or a higher rate, encapsulation crosstalk of the connector has become a crosstalk bottleneck of the entire device. A design of the shielding structure has important impact on whether signal transmission quality can be improved.
[0048] On this basis, an embodiment of this application provides a connector. In the connector, shielding boards are disposed around a signal terminal. When the connector and a paired connector are mutually paired, each shielding board may be separately electrically connected to a peer shielding board of the paired connector. Therefore, there are relatively sufficient signal return paths. A shielding structure surrounding the signal terminal may be formed, to implement a good shielding effect and optimize crosstalk performance of the connector. The following describes in detail the connector provided in embodiments of this application with reference to the accompanying drawings.
[0049]
[0050] In an array of the first terminal modules 200, each first terminal module 200 may be disposed adjacent to N other first terminal modules 200. It may be understood that N is a quantity of shielding boards 21 in the shielding unit 20. In specific implementation, N may be three, four, five, or more, provided that various shielding boards 21 can form the shielding cavity 22 accommodating the first signal terminal 10. This is not limited in this application. The following specifically uses four shielding boards 21 as an example for description.
[0051] For ease of description, the four shielding boards 21 are respectively referred to as a first shielding board 23, a second shielding board 24, a third shielding board 25, and a fourth shielding board 26. The first shielding board 23, the second shielding board 24, the third shielding board 25, and the fourth shielding board 26 are sequentially connected. The first shielding board 23 and the third shielding board 25 are disposed opposite to each other, and the second shielding board 24 and the fourth shielding board 26 are disposed opposite to each other. In the array of the first terminal modules, the first shielding board 23 and the third shielding board 25 may be arranged in a row direction (that is, an x direction) of the array, and the second shielding board 24 and the fourth shielding board 26 may be arranged in a column direction (that is, a y direction) of the array. To simplify a structure and a manufacturing process of the connector, in this embodiment of this application, the first shielding boards 23 that are of the plurality of first terminal modules 200 and that are disposed in the same row may be connected to each other as an integral structure. Similarly, the third shielding boards 25 that are of the plurality of first terminal modules 200 and that are disposed in the same row may be connected to each other as an integral structure.
[0052] In this embodiment of this application, each shielding board 21 may be specifically grounded when being electrically connected to the peer shielding board of the paired connector. In specific implementation, the shielding board 21 has a first surface 211 back to the shielding cavity 22. The first surface 211 is a surface of the shielding board 21 in cooperation with the peer shielding board. A first terminal module A in
[0053] Similarly, a second shielding board 24 of the first terminal module A and a fourth shielding board 26 of a first terminal module C on a right side may be electrically connected to the same peer shielding board. A third shielding board 25 of the first terminal module A and a first shielding board 23 of a first terminal module D on a lower side may be electrically connected to the same peer shielding board. A fourth shielding board 26 of the first terminal module A and a second shielding board 24 of a first terminal module E on a left side may be electrically connected to the same peer shielding board.
[0054] To improve reliability of the electrical connection between the shielding board 21 and the peer shielding board, a contact unit protruding from the first surface 211 may be further disposed on the shielding board 21. The electrical connection between the shielding board 21 and the peer shielding board is specifically implemented by using the contact unit. In specific implementation, the contact unit may be a rigid contact unit, or may be an elastic contact unit. This is not specifically limited in this embodiment of this application.
[0055]
[0056] In the foregoing embodiment, a specific structure form of the protrusion structure 31 is not limited. For example, the protrusion structure 31 may be an arc protrusion or a column protrusion. To ensure reliable contact between the contact unit 30 and the peer shielding board 51, in this embodiment of this application, the top part of the protrusion structure 31 may be designed as a plane shape, to increase a contact area between the protrusion structure 31 and the peer shielding board 51.
[0057]
[0058] In the foregoing embodiment, a length range of the first spring arm 32 may be between 0.9 mm and 2.5 mm. For example, a length of the first spring arm 32 may be specifically 0.9 mm, 1.1 mm, 1.3 mm, 1.5 mm, 1.7 mm, 1.9 mm, 2.1 mm, 2.3 mm, or 2.5 mm. In comparison with a spring arm with a length greater than 3 mm in the conventional technologies, the length of the return path can be obviously shortened in this solution. In addition, to maintain relatively good elasticity performance of the first spring arm 32, a width dimension of the first spring arm 32 may be designed relatively small. In this embodiment of this application, a width range of the first spring arm 32 may be between 0.25 mm and 0.3 mm. For example, a width of the first spring arm 32 may be specifically 0.25 mm, 0.26 mm, 0.27 mm, 0.28 mm, 0.29 mm, or 0.3 mm Because both the length dimension and the width dimension of the first spring arm 32 are relatively small, inductivity of the formed return path is reduced. Therefore, high-frequency signal resonance above 30 GHz can be effectively reduced.
[0059] In addition, in some embodiments of this application, a notch 27 may be further disposed on the shielding board 21. The first spring arm 32 may be specifically disposed in the notch 27, to reduce an overall thickness of the shielding board 21. In specific implementation, the first end of the first spring arm 32 may be connected to an inner wall of the notch 27, to improve structural stability of the first spring arm 32.
[0060]
[0061] Similarly, in some embodiments of this application, the elastic contact unit may alternatively be specifically disposed in the notch 27 of the shielding board, to reduce an overall thickness of the shielding board 21. In specific implementation, first ends of the two second spring arms 33 may be separately connected to the inner wall of the notch 27, to improve structural stability of the contact unit 30.
[0062]
[0063] For the second shielding board 24 and the fourth shielding board 26, the second shielding board 24 and the fourth shielding board 26 of the first terminal module 200 on a right side may be electrically connected to the same peer shielding board 51, and the fourth shielding board 26 and the second shielding board 24 of the first terminal module 200 on a left side may be electrically connected to the same peer shielding board 51. Therefore, for the peer shielding board 51 disposed in the column direction, the peer shielding board 51 is always interposed between the second shielding board 24 and the fourth shielding board 26 of two adjacent first terminal modules 200. Similarly, to ensure reliability of an electrical connection between the peer shielding board 51 and each of the corresponding second shielding board 24 and the fourth shielding board 26, in this embodiment of this application, the contact unit disposed on at least one shielding board of the second shielding board 24 and the fourth shielding board 26 is an elastic contact unit. For example, the contact unit 30 disposed on the second shielding board 24 is an elastic contact unit, and the contact unit 30 disposed on the fourth shielding board 26 is a rigid contact unit. A specific connection effect is similar to the foregoing solution. Details are not described herein again.
[0064] It should be noted that, in an interposing direction of the connector and the paired connector, a vertical length of the contact unit 30 disposed on each of the first shielding board 23, the second shielding board 24, the third shielding board 25, and the fourth shielding board 26 in this direction may be set to be within 1 mm. In this design, it is ensured that conversion points of a signal current and a grounding return current are basically on the same plane, thereby reducing conversion in which a signal returns to a reference ground, pushing back occurrence of a frequency of a crosstalk resonance point, and improving crosstalk performance after the connectors are mutually paired.
[0065] In addition, one or more contact units 30 may be disposed on each shielding board 21. A specific quantity of disposed contact units 30 may be determined based on a size of the shielding board 21, to increase a signal return path between the connector and the paired connector as much as possible without affecting normal performance of the connector, thereby improving a signal crosstalk phenomenon after the connectors are mutually paired. For example, in the embodiment shown in
[0066] In conclusion, this embodiment of this application provides the connector. The shielding boards are disposed around the first signal terminal. Each shielding board may be electrically connected to the peer shielding board of the paired connector by using the contact unit. Therefore, there are relatively sufficient signal return paths. A shielding structure surrounding the signal terminal may be formed, to implement a good shielding effect and optimize crosstalk performance of the connector.
[0067]
[0068] Still with reference to
[0069] The paired connector may include a plurality of second terminal modules disposed in an array. The second terminal module may specifically include a second signal terminal 40 and a plurality of peer shielding boards 51. The plurality of peer shielding boards 51 may be disposed around the second signal terminal 40. When the paired connector and the connector are mutually paired and connected, the second signal terminal 40 is specifically configured to electrically connect to the first signal terminal 10, to transmit a differential signal in an electronic device. The peer shielding board 51 may be interposed between two adjacent first terminal modules. Two sides of the peer shielding board 51 may be respectively electrically connected to two shielding boards 21 of two adjacent first terminal modules.
[0070] In specific implementation, there may alternatively be three, four, five, or more peer shielding boards 51 in the second terminal module. This is not limited in this application. It may be understood that, to ensure adaptation between the paired connector and the connector and a shielding effect after the mutual pairing, a quantity of peer shielding boards 51 in the second terminal module may be equal to a quantity of shielding boards 21 in the first terminal module.
[0071] Similarly, four peer shielding boards 51 are used as an example. With reference to a schematic diagram of a structure of a second terminal module 300 shown in
[0072] With reference to
[0073] As shown in
[0074] It can be learned that the connector assembly provided in this embodiment of this application can not only implement a relatively good shielding effect through cooperation between the shielding board and the peer shielding board, but also improve a structure of the long shielding board. In this way, a problem of a bent pin easily occurring when connectors on two sides are mutually paired can be resolved, to improve structural reliability of the connector assembly.
[0075] An embodiment of this application further provides an electronic device that uses the connector in the foregoing embodiment. The electronic device may be a device such as a communications device, a server, a supercomputer, a router, or a switch in the conventional technologies. The electronic device may include a first circuit board, a second circuit board, and a circuit board assembly in the foregoing embodiments. A connector may be disposed on the first circuit board, and is electrically connected to the first circuit board. A paired connector may be disposed on the second circuit board, and is electrically connected to the second circuit board. In this way, when the connector and the paired connector are paired and connected, a signal may be transmitted between the first circuit board and the second circuit board. Because of relatively good shielding performance of the connector assembly, a crosstalk phenomenon between signals can be improved, and signal transmission performance can be optimized.
[0076] In the foregoing solutions, specific types of the first circuit board and the second circuit board are not limited. For example, in some implementations, the first circuit board may be specifically a line card, and the second circuit board may be specifically a network interface card.
[0077] The foregoing descriptions are merely specific implementations of this application, but are not intended to limit the protection scope of this application. Any variation or replacement readily figured out by a person skilled in the art within the technical scope disclosed in this application shall fall within the protection scope of this application. Therefore, the protection scope of this application shall be subject to the protection scope of the claims.