1. Technical Field
The present disclosure relates to printed circuit boards that can save layout space on the printed circuit board.
2. Description of Related Art
Common-mode noise in signals is rejected by using differential signal transmission pair that has a first transmission line and a second transmission line. When the differential signal transmission pair is laid on a printed circuit board (PCB), opposite ends of the differential signal transmission pair are laid on an outer signal layer of the PCB, and middle portions of the differential signal transmission pair are laid on an inner signal layer of the PCB. The portions of the differential signal transmission pair which are laid on the outer signal layer of the PCB are called microstrip lines. The portions of the differential signal transmission pair which are laid on the inner signal layer of the PCB are called striplines.
Further, crosstalk is the electrical “noise” caused by mutual inductance and mutual capacitance between differential signal transmission pairs, due to the close proximity of the differential signal transmission pairs to each other. Crosstalk can cause digital system failure due to false signals appearing on a receiver. A typical layout method for reducing the crosstalk is to increase the distance between the two differential signal transmission pairs, which occupies extra space and increases cost.
Therefore, there is room for improvement within the art.
Many aspects of the embodiments can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the embodiments. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
The disclosure is illustrated by way of example and not by way of limitation in the figures of the accompanying drawings in which like references indicate similar elements. It should be noted that references to “an” or “one” embodiment in this disclosure are not necessarily to the same embodiment, and such references mean “at least one.”
Referring to
The first differential signal transmission pair 60 includes a first positive transmission line 61 and a first negative transmission line 62. The first positive transmission line 61 includes a first positive microstrip line 611, which is laid on the outer signal layer 10, and a first positive stripline 612, which is laid on the inner signal layer 30. The first negative transmission line 62 includes a first negative microstrip line 621, which is laid on the outer signal layer 10, and a first negative stripline 622, which is laid on the inner signal layer 30. The first positive microstrip line 611 and the first negative microstrip line 621 compose a first microstrip line pair. The first positive stripline 612 and the first negative stripline 622 compose a first stripline pair. Lengths of the first positive microstrip line 611 and the first negative microstrip line 621 are both L1. Therefore, a first microstrip line pair length is L1. Lengths of the first positive stripline 612 and the first negative stripline 622 are both L2. Therefore, a first stripline pair length is L2. Widths of the first positive microstrip line 611 and the first negative microstrip line 621 are both W1. Widths of the first positive stripline 612 and the first negative stripline 622 are both W2. A distance between the first positive microstrip line 611 and the first negative microstrip line 621 is S1. A distance between the first positive stripline 612 and the first negative stripline 622 is S2.
The second differential signal transmission pair 70 includes a second positive transmission line 71 and a second negative transmission line 72. The second positive transmission line 71 includes a second positive microstrip line 711, which is laid on the outer signal layer 10, and a second positive stripline 712, which is laid on the inner signal layer 30. The second negative transmission line 72 includes a second negative microstrip line 721, which is laid on the outer signal layer 10, and a second negative stripline 722, which is laid on the inner signal layer 30. The second positive microstrip line 711 and the second negative microstrip line 721 compose a second microstrip line pair. The second positive stripline 712 and the second negative stripline 722 compose a second stripline pair. Lengths of the second positive microstrip line 711 and the second negative microstrip line 721 are both L1. Therefore, a second microstrip line pair length is L1. Lengths of the second positive stripline 712 and the second negative stripline 722 are both L2. Therefore, a second stripline pair length is L2. Widths of the second positive microstrip line 711 and the second negative microstrip line 721 are both W1. Widths of the second positive stripline 712 and the second negative stripline 722 are both W2. A distance between the second positive microstrip line 711 and the second negative microstrip line 721 is S1. A distance between the second positive stripline 712 and the second negative stripline 722 is S2.
A distance between the first microstrip line pair and the second microstrip line pair is IPS1. A distance between the first stripline pair and the second stripline pair is IPS2. The values of the distance IPS1 is related to distance h3. The values of the distance IPS2 is related to the smaller one of the first distance h1 and the second distance h2. In the embodiment, the distances IPS1 and IPS2 are both set to be a distance IPS. In other words, the value of the distances IPS1 and IPS2 are related to the value h.
In one embodiment, the first distance h1 is 5 mils, the second distance h2 is 4 mils, the third distance h3 is 2.7 mils, the widths W1 and W2 are 5 mils, the distance S1 is 7 mils, the distance S2 is 6.5 mils, the distance IPS1 is 24 mils and the distance IPS2 is 12 mils. Therefore, the value h is 4 mils. A signal generator (not shown) is connected to input ends of the first differential signal transmission pair 60 and the second differential signal transmission pair 70. An oscillograph (not shown) is connected to output ends of the first differential signal transmission pair 60 and the second differential signal transmission pair 70. A frequency of the signal generator in transmitting data is 8G bit/s. A bit error rate of the transmission receiving data is 1E-12.
Referring to
When the distance IPS increases beyond 7 mils, the microstrip line eye width E1 increases. For striplines 612, 622, 712, and 722, the stripline eye width E2 increases incrementally along the distance IPS. When the distance IPS increases beyond 3 mils, the stripline eye width E2 is substantially constant.
Referring to
Referring to
Corresponding to conventional printed circuit boards, it saves a distance of 24 mil−5 mil=19 mils on the outer signal layer 10, and saves a distance of 12 mil−5 mil=7 mils on the inner signal layer 30. It is apparent that the embodiment of the printed circuit board saves a plurality of space.
Therefore, for differential signal transmission pairs of the embodiment of the printed circuit board, the distance IPS1 and the distance IPS2 are both set to be equal to IPS, and kept in the range of h and h×3 to saves a plurality of space and ensure high-quality signals. In another aspect, L1/L is kept to not more than 10% to ensure good signals.
In another embodiment, the first positive transmission line 61 can be set to include a plurality of first positive microstrip lines and a plurality of first positive striplines. A total length of plurality of first positive microstrip lines is set to be not more than 10% of the length of the first positive transmission line 61. The first negative transmission line 62, the second positive transmission line 71 and the second negative transmission line 72 can also be set as the above first positive transmission line 61 to include a plurality of microstrip lines and a plurality of striplines.
Further, in the embodiment, the inner signal layer 30 is not limited to be laid on a third layer (the inner signal line 30) of the printed circuit board. Any inner signal layers of the printed circuit can be used to receive the stripline laid thereon. Please referring to
It is to be understood, however, that even though numerous characteristics and advantages of the embodiments have been set forth in the foregoing description, together with details of the structure and functions of the embodiments, the disclosure is illustrative only, and changes may be made in detail, especially in the matters of shape, size, and arrangement of parts within the principles of the present disclosure to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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201110443940.4 | Dec 2011 | CN | national |