COUPLING CIRCUITS WITH CAPACITORS
20170194931 ยท 2017-07-06
Inventors
Cpc classification
H03H7/482
ELECTRICITY
H03H7/1708
ELECTRICITY
International classification
Abstract
The network filtering circuit includes a cable side for connection with a network cable, a physical side for connection with a mother board, and a plurality of transmission channels connected between the cable side and the physical side. Each of the transmission channels includes a first transmission line and a second transmission line with a CMC linked therebetween. Two filtering (Y type) capacitors are further linked between the first transmission line and the second transmission line with a middle line connected between the two filtering capacitors and having an extension line wherein in such an extension line there are a resistor and an optional adjusting capacitor to a ground node at the end in series connection
Claims
1. A network filtering circuit comprising: a cable side for connection to a network cable; a physical side for connection to a mother board; and a plurality of transmission channels connected between the cable side and the physical side, each transmission channel comprising: a first transmission line and a second transmission line, a common mode choke having a first coil and a second coil respectively connected to the corresponding first transmission line and second transmission line, respectively; two first capacitors respectively connected between the corresponding first transmission line and the corresponding second transmission line in series connection, wherein the common mode choke is closer to the physical side while the two first capacitors are closer to the cable side; a middle line linked between the first two capacitors with an extension line having a distal end connected to a ground node; and two second capacitors respective connected with the corresponding first transmission line and the corresponding second transmission line; wherein there is at least a resistor positioned in the extension line for enhancing EMC (Electro Magnetic compatibility).
2. The network filtering circuit as claimed in claim 1, further including a third capacitor linked between the ground node and the first capacitor in the extension line of each transmission channel
3. The network filtering circuit as claimed in claim 2, wherein all transmission channels share the same third capacitor and the same ground node.
4. The network filtering circuit as claimed in claim 2, further including two fourth capacitors respectively connected to the corresponding fist transmission line the corresponding second transmission line in each transmission channel, wherein each fourth capacitor is further linked to another ground node.
5. The network filtering circuit as claimed in claim 4, wherein said fourth capacitors are located between the second capacitors and the common mode choke.
6. The network filtering circuit as claimed in claim 4, wherein in each transmission channel, the two fourth capacitors share the same another ground node.
7. The network filtering circuit as claimed in claim 4, wherein in each of the first transmission line and the second transmission line, the corresponding fourth capacitor and the corresponding first capacitor are respectively linked to two opposite ends of the corresponding second capacitor.
8. The network filtering circuit as claimed in claim 1, wherein said two second capacitors are located between the common mode choke and the two first capacitors.
9. The network filtering circuit as claimed in claim 8, wherein all transmission channels share the same third capacitor and the same ground node.
10. A network filtering circuit comprising: a cable side for connection to a network cable; a physical side for connection to a mother board; and a plurality of transmission channels connected between the cable side and the physical side, each transmission channel comprising: a first transmission line and a second transmission line, a common mode choke having a first coil and a second coil respectively connected to the corresponding first transmission line and second transmission line, respectively; two first capacitors respectively connected between the corresponding first transmission line and the corresponding second transmission line in series connection, wherein the common mode choke is closer to the physical side while the two first capacitors are closer to the cable side; a middle line linked between the first two capacitors with an extension line having a distal end connected to a ground node; and two second capacitors respective connected with the corresponding first transmission line and the corresponding second transmission line; wherein said two second capacitors are located between the common mode choke and the two first capacitors.
11. The network filtering circuit as claimed in claim 10, further including two additional capacitors respectively connected to the corresponding fist transmission line the corresponding second transmission line in each transmission channel, wherein each additional capacitor is further linked to another ground node.
12. The network filtering circuit as claimed in claim 11, wherein said additional capacitors are located between the second capacitors and the common mode choke.
13. The network filtering circuit as claimed in claim 11, wherein in each of the first transmission line and the second transmission line, the corresponding additional capacitor and the corresponding first capacitor are respectively linked to two opposite ends of the corresponding second capacitor.
14. The network filtering circuit as claimed in claim 10, wherein there is at least a resistor positioned in the extension line for enhancing EMC (Electro Magnetic compatibility).
15. The network filtering circuit as claimed in claim 14, further including a third capacitor linked between the ground node and the first capacitor in the extension line of each transmission channel
16. The network filtering circuit as claimed in claim 15, wherein all transmission channels share the same third capacitor and the same ground node.
Description
BRIEF DESCRIPTION OF THE DRAWING
[0009]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0010] Reference will now be made in detail to some preferred embodiments of the present invention.
[0011] Referring to
[0012] Each of the transmission channels 60 includes a first (differential) transmission line 201, the second (differential) transmission line 202, and a CMC 40 and two filtering/first capacitors 60 linked, in series connection, between the first transmission line 201 and the second transmission line 202. The CMC 40 includes a first coil 401 and a second coil 402 coupled with each other and respectively connected with the corresponding first transmission line 201 and the second transmission line 202. Two coupling/second capacitors 50 are respectively connected with the corresponding first transmission line 201 and the second transmission line 202 and linked to the corresponding first coil 401 and second coil 402 in series connection. Notably, the CMC is closer to the physical side while the second capacitors 50 are closer to the cable side 10.
[0013] A middle line 601 is between the two first capacitors 60 with an extension line (not labeled), and in such an extension line there are a resistor 70 and an adjusting/third capacitor 80 and a ground node 90 at the end in series connection sequentially wherein the resistor 70 is connected between the middle line 601 and the third capacitor 80.
[0014] Notably, the second capacitors 50 are located between the CMC and the first capacitors 40. Each of the first transmission line 201 and the second transmission line 202 further includes a fourth capacitor 95 located between the CMC and the corresponding second capacitor 50, and is further directly connected to another ground node 90. Under this arrangement, the first capacitor 60 and the fourth capacitor 95 are respectively linked to two opposite ends of the corresponding second capacitor 50. In this design, the resistor 70 is of 75, the third capacitor 80 is of 1000 pF.
[0015] Compared with the prior arts, the invention provides the middle line 601 with an additional resistor 70 and an optional third capacitor 80 before reaching the ground node 90 so as to achieve an efficient grounding effect and the better EMC and corresponding impedance matching.
[0016] It is to be understood, however, that even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.