This patent application claims priority of a Chinese Patent Application No. 202010400361.0, filed on May 12, 2020 and titled “Modular connector”, the entire content of which is incorporated herein by reference.
The present disclosure relates to a modular connector which belongs to a technical field of electrical connectors.
In order to improve the shielding effect of connectors, some existing RJ45 connectors include coil modules. In general, there are two types of coil modules. One type of the coil modules has eight coils and the other type of the coil modules has twelve coils. Each coil includes a ring-shaped magnetic body and a coil wire wound on the ring-shaped magnetic body. In other words, one type of the existing coils has eight ring-shaped magnetic bodies and eight coil wires, and the other type of the existing coil modules has twelve ring-shaped magnetic bodies and twelve coil wires. However, the electromagnetic shielding effect of the coil module with eight coils is general, which is not suitable for applications with strict electromagnetic shielding requirements. The coil module with twelve coils is generally composed of eight coils and four coils. Although it can achieve a better electromagnetic shielding effect, the cost is higher.
An object of the present disclosure is to provide a modular connector with lower cost and better electromagnetic shielding effect.
In order to achieve the above object, the present disclosure adopts the following technical solution: a modular connector, comprising a housing; a circuit board located in the housing; a connector assembly electrically connected to the circuit board, the connector assembly comprising a plurality of conductive terminals extending obliquely; and a coil module mounted to the circuit board; wherein the coil module comprises a first coil module and a second coil module, the first coil module comprises a plurality of first coils and a plurality of first coil groups, and each first coil group is formed by two first coils; and wherein the second coil module comprises a second coil, the second coil is divided into a plurality of second coil groups along a circumference thereof, and the first coil groups are coupled with corresponding second coil groups.
In order to achieve the above object, the present disclosure adopts the following technical solution: a modular connector, comprising a housing; a circuit board located in the housing; a connector assembly comprising a plurality of conductive terminals electrically connected to the circuit board; and a coil module mounted to the circuit board; wherein the coil module comprises a first coil module and a second coil module, the first coil module comprises a plurality of first coils and a plurality of first coil groups, and each first coil group is formed by two adjacent first coils; and wherein the second coil module comprises a single second coil, the second coil is divided into a plurality of second coil groups along a circumference thereof, numbers of the second coil groups and the first coil groups are the same, and the first coil groups and second coil groups are coupled so as to improve electromagnetic shielding effect of the modular connector.
Compared with the prior art, the coil module of the present disclosure includes a first coil module and a second coil module. The first coil module includes a plurality of first coil groups each of which is composed of a first coil and a second coil. The second coil module includes a plurality of second coil groups distributed along a circumference of a third magnetic body. Through the coupling of the first coil groups and the corresponding second coil groups, the electromagnetic shielding effect of the modular connector is improved. In addition, by distributing the second coil groups along the circumference of the third magnetic body, a diameter of the third magnetic body can be set to be relatively large, thereby facilitating winding, facilitating manufacturing and reducing cost.
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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The housing 1 includes an outer shell made of a metal material in order to achieve a certain degree of electromagnetic shielding function. In the illustrated embodiment of the present disclosure, the housing 1 includes a top wall 11, two side walls 12, a front wall 13 and a rear wall 14. The four ports 101 are all exposed on the front wall 13.
Referring to
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Each connector assembly 3 includes a connector body 31 and a plurality of conductive terminals 32 fixed to the connector body 31. The conductive terminals 32 extend obliquely in the port 101. In the illustrated embodiment of the present disclosure, the number of conductive terminals 32 of each connector assembly 3 is eight.
The first circuit board 21 includes a plurality of first conductive holes 211 electrically connected to the connector assembly 3 and a plurality of second conductive holes 212 connected to the first conductive holes 211 through conductive paths (not shown).
Referring to
The mounting module 7 includes a mounting insulation body 71 and a plurality of mounting terminals 72 fixed in the mounting insulation body 71. The mounting terminals 72 are divided into two groups each of which is L-shaped. One group of the mounting terminals 72 is used to connect one circuit board module 103 to the bottom circuit board 200, and the other group of the mounting terminals 72 is used to connect the other circuit board module 103 to the bottom circuit board 200.
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Numbers of the first golden fingers 221 and the second golden fingers 222 are both twelve, and numbers of the third golden fingers 223 and the fourth golden fingers 224 are both eight. The twelve first golden fingers 221 include four groups and a plurality of first pads 2211 each of which is located between adjacent two groups of the first golden fingers 221. Each group of the first golden fingers 221 includes two adjacent first golden fingers 221. The first pads 2211 are connected to capacitors C. The twelve second golden fingers 222 include four groups and a plurality of second pads 2221 each of which is located between adjacent two groups of the second golden fingers 222. Each group of the second golden fingers 222 includes two adjacent second golden fingers 222. Each group of the third golden fingers 223 and a corresponding group of the second golden fingers 222 are connected through conductive paths of the second circuit board 22. The second pads 2221 are connected to resistors R of the second circuit board 22. The eight third golden fingers 223 are divided into four groups, in which each group includes two adjacent third golden fingers 223. The eight fourth golden fingers 224 are divided into four groups, in which each group includes two adjacent fourth golden fingers 224. Each group of the fourth golden fingers 224 is connected to the third conductive holes 225 for mounting the transfer terminals 62 through conductive paths of the second circuit board 22.
In use, the signal on the bottom circuit board 200 is input to the third conductive holes 225 of the second circuit board 22 through the mounting module 7, the third conductive holes 225 transmit the signal to the first golden fingers 221 through coupling, and the first golden fingers 221 are connected to the second golden fingers 222 through the first coil module 41 so as to filter the signal. Then, the second golden fingers 222 are further connected to the third golden fingers 223. After the signal is filtered by the second coil module 42, the signal is transmitted to the first golden fingers 221. In this process, the input signal is filtered by the first coil groups 410 and the second coil groups 420, which improves the quality of signal transmission. Then, the signal is transmitted to the fourth conductive holes 226 which are connected to the first golden fingers 221 (referring to
Compared with the prior art, the coil module 4 of the present disclosure includes the first coil module 41 and the second coil module 42. The first coil module 41 includes the plurality of first coils 411, the plurality of second coils 412, and the plurality of first coil groups 410 each of which is formed by one first coil 411 and one second coil 412. The second coil module 42 includes a plurality of second coil groups 420 distributed along the circumference of the third magnetic body 4211. Through the coupling of the first coil groups 410 and the corresponding second coil groups 420, the electromagnetic shielding effect of the modular connector 100 is improved.
Firstly, compared to the coil module with twelve coils composed of eight coils and four coils in the prior art, the number of coils disclosed in the present disclosure is nine (i.e., four first coils 411, four second coils 412 and one third coil 421) reduces the number of coils on the premise of achieving the same shielding effect. Secondly, in the present disclosure, by installing the first coils 411 and the second coils 412 in the first housing 416 and by installing the third coil 421 in the second housing 422, respectively, on the one hand, it can be shared with the existing eight-coil mold for saving the cost; on the other hand, it is convenient to arrange the coils. Thirdly, by distributing the plurality of second coil groups 420 along the circumference of the single third magnetic body 4211, the diameter of the third magnetic body 4211 can be set to be relatively large, thereby facilitating winding, facilitating manufacturing and reducing cost.
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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202010400361.0 | May 2020 | CN | national |
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1731628 | Feb 2006 | CN |
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Entry |
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Office Action issued in CN Application No. 202010400361.0 dated Jan. 22, 2021. |
Number | Date | Country | |
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20210359476 A1 | Nov 2021 | US |