COMPACT CONNECTOR FOR TRANSMITTING SUPER HIGH FREQUENCY SIGNAL
20200395653 ยท 2020-12-17
Assignee
Inventors
- Byoung Nam Kim (Gyeonggi-do, KR)
- Kyoung Il Kang (Gyeonggi-do, KR)
- Sung Gyu PARK (Gyeonggi-do, KR)
- Joung Min Park (Gyeonggi-do, KR)
- Sang Woo HAN (Gyeonggi-do, KR)
- Ji Hun Kang (Gyeonggi-do, KR)
Cpc classification
H01R12/714
ELECTRICITY
H01Q1/2283
ELECTRICITY
H01R13/6591
ELECTRICITY
H01R12/778
ELECTRICITY
H01R13/6594
ELECTRICITY
H01R9/0515
ELECTRICITY
H01R12/598
ELECTRICITY
H01Q23/00
ELECTRICITY
H01R12/79
ELECTRICITY
International classification
H01Q1/22
ELECTRICITY
H01Q1/52
ELECTRICITY
Abstract
Disclosed herein is a compact connector for transmitting super-high-frequency signals, which is adapted to connect a printed circuit board (PCB) to a single or multiple high-frequency signal lines transmitting super-high frequency signals therethrough. The compact connector includes: a male connector connected to the single or multiple super-high frequency signal lines and comprising a male connector housing receiving, securing, and protecting terminals of the single or multiple super-high frequency signal lines; and a connector socket mounted on the PCB and receiving the male connector housing fastened to the male connector, wherein the super high-frequency signal line terminals in the male connector are brought into direct contact with and connected to signal line terminal pads formed on the printed circuit board, respectively.
Claims
1. A compact connector for transmitting super-high-frequency signals, which is adapted to connect a printed circuit board (PCB) to a single or multiple super-high-frequency signal lines transmitting super-high frequency signals therethrough, the compact connector comprising: a male connector connected to the single or multiple super-high-frequency signal lines and comprising a male connector housing receiving, securing, and protecting terminals of the single or multiple super-high frequency signal lines; and a connector socket mounted on the PCB and receiving the male connector housing to be fastened to the male connector, wherein the super-high-frequency signal line terminals in the male connector are brought into direct contact with and connected to signal line terminal pads formed on the printed circuit board, respectively.
2. The compact connector for transmitting super-high-frequency signals according to claim 1, wherein: the male connector housing is a shielding can connected to shielding layers blocking electromagnetic waves generated from the single or multiple super-high frequency signal lines; and the connector socket receives the shielding can and is electrically connected to the shielding can and a ground terminal of the PCB.
3. The compact connector for transmitting super-high-frequency signals according to claim 2, wherein the male connector further comprises an adapter allowing the super-high-frequency signal lines to be brought into contact with the signal line terminal pads formed on the PCB, respectively, and connected at one end thereof to the super high-frequency signal lines and at the other end thereof to the circuit signal line terminal pads on the PCB, and the super-high-frequency signal lines are connected to the circuit signal line terminal pads on the printed circuit board via the adapter of the male connector.
4. The compact connector for transmitting super-high-frequency signals according to claim 2, wherein the shielding can comprises an adapter reception portion receiving multiple adapters one-to-one connected to inner conductors of multiple coaxial cables, the adapter reception portion being configured to individually shield the adapters.
5. The compact connector for transmitting super-high-frequency signals according to claim 1, wherein the connector socket further comprises a fastening portion to be fastened to the male connector.
6. The compact connector for transmitting super-high-frequency signals according to claim 1, wherein the connector socket is mounted on the PCB by surface-mount technology (SMT), through-hole-mount technology, such as single in-line package (SIP) technology, dual in-line package (DIP) technology, and quad in-line package (QIP) technology, or a combination of surface-mount technology and through-hole-mount technology.
7. The compact connector for transmitting super-high-frequency signals according to claim 1, wherein the connector socket is integrally formed with the PCB.
8. The compact connector for transmitting super-high-frequency signals according to claim 1, wherein the super-high frequency signal line comprises one selected from the group of a coaxial cable, a wire, a flexible flat cable (FFC), and a flexible printed circuit (FPC).
9. The compact connector for transmitting super-high-frequency signals according to claim 8, wherein the super-high frequency signal line comprises a combination of at least two selected from the group of a coaxial cable, a wire, a flexible flat cable (FFC), and a flexible printed circuit (FPC).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0022] Hereinafter, embodiments of the present invention will be described with reference to the accompanying drawings. It will be understood that the embodiments and the drawings described in the specification are not exhaustive but solely illustrative and there are present various alterations and equivalent embodiments thereof at the time of filing the present application.
[0023] A compact connector for transmitting super-high frequency signals according to the present invention is a PCB connector which connects a printed circuit board (PCB) to a single or multiple super-high frequency signal lines for transmitting super-high frequency signals, and includes a male connector and a connector socket. The male connector is connected to the single or multiple super-high frequency signal lines and includes a male connector housing receiving terminals of the single or multiple super-high frequency signal lines to secure and protect the signal line terminals. The connector socket is mounted on the PCB and receives the male connector housing fastened to the male connector. Here, the super-high frequency signal line terminals in the male connector may be brought into direct contact with and connected to signal line terminal pads formed on the PCB, respectively.
[0024]
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[0026] When the housing 270, 280, 290 of the male connector 20 is inserted into and fastened to the connector socket 225 mounted on the PCB 125, the cable signal line terminals 255 are brought into direct contact with circuit signal line terminal pads 214 formed on the PCB 215, respectively, without using a separate reception member for receiving the cable signal line terminals 255. According to the present invention, since the connector socket 225 mounted on the PCB 125 is not provided with such a reception member for receiving the cable signal line terminals 255, as shown in
[0027] Examples of the single or multiple super-high frequency signal lines for transmitting super-high frequency signals, which are connected via the compact connector for transmitting super-high frequency signals according to the present invention, may include coaxial cables, wires, flexible flat cables (FFCs), flexible printed circuits (FPCs), S-Teflon, and the like. However, it will be understood that the present invention is not limited thereto and the super-high frequency signal lines may include any signal line that is adapted to transmit electrical signals therethrough.
[0028]
[0029] The adapter unit 40 includes multiple adapters. Each of the adapters 42 is configured to be easily shielded by the shielding can 270, 280, 290 and to allow easy connection between the inner conductor 210 of the coaxial cable 30 and the circuit signal line terminal pad 214 formed on the PCB 215, and includes a conductor portion 250 and a dielectric portion 260. One end of the conductor portion 250 is brought into contact with and connected to the signal line terminal pad 214 on the PCB 215 and the other end of the conductor portion 250 receives and is connected to the signal line 210, that is, the inner conductor of the coaxial cable 30. When the inner conductor, that is, the signal line of the cable, is received in and connected to the adapter 42, the one end of the conductor portion 250, which corresponds to the cable signal line terminal 255 of
[0030] The dielectric portion 260 serves to separate the conductor portion 250 received in the shielding can 270, 280, 290 from the shielding can.
[0031] The shielding can 270, 280, 290 includes an adapter reception portion 272 formed therein and having cylindrical portions adapted to receive the adapters 42 one-to-one connected to the inner conductors 210 of the single or multiple coaxial cables, respectively. The adapter reception portion 272 is configured to form shielding walls adapted to separate the adapters received in the adapter reception portion from one another and to shield the adapters upon coupling of the lower shielding member 270 to the upper shielding member 280 and the front shielding member 290.
[0032]
[0033] The compact connector for transmitting super-high frequency signals according to the present invention can provide maximized shielding against electromagnetic waves generated from signal lines when coaxial cables are used as the signal lines. Specifically, the shielding can 270, 280, 290 of the male connector 20 is connected to the outer conductors 230 of the coaxial cables 30. The connector socket 215 formed of a conductor is connected to a ground terminal of the PCB 215. When the male connector 20 is inserted into and fastened to the connector socket 225 mounted on the PCB 215, the shielding can 270, 280, 290 of the male connector 20 connected to the outer conductors 230 of the coaxial cables 30 is brought into contact with and connected to the connector socket 225 connected to the ground terminal of the PCB 215, thereby maximizing shielding effects against electromagnetic waves generated from the signal line terminals in the male connector, which directly contact the terminal pads 214 on the PCB 215, respectively.
[0034] Although some embodiments have been described herein with reference to the accompanying drawings, it should be understood by those skilled in the art that these embodiments are given by way of illustration only and that various modifications, variations, and alterations can be made by those skilled in the art without departing from the spirit and scope of the present invention. Therefore, the scope of the invention should be limited only by the accompanying claims and equivalents thereto.
TABLE-US-00001 <List of Reference numerals> 110: Male connector 112: Male connector housing 114: Electrical signal line 150: Female connector 152: Female connector housing 154: Terminal (pin) reception member 20: Male connector 210: Inner conductor (signal line) 214: PCB terminal pad 215: Printed circuit board (PCB) 220: Dielectric 222: Fastening portion 225: Connector socket 230: Outer conductor (shielding layer) 240: Sheath (jacket) 250: Adapter conductor portion 255: Cable signal line terminal 260: Adapter dielectric portion 270: Lower shielding member 272: Adapter reception portion 280: Upper shielding member 290: Front shielding member 30: Coaxial cable 40: Adapter unit 42: Adapter 50: Coaxial cable connected to adapter 60: Unstripped coaxial cable