1. Technical Field
The present disclosure relates to signal transmission systems, and particularly to a signal transmission apparatus used in a signal receiver or a signal transceiver of a wireless transmission system.
2. Description of Related Art
Wireless transmission is widely used in communications and networks. Consequently, electronic devices can be moved freely without limitations of wires when transmitting signals. In a wireless transmission system, a signal for transmission is modulated by a high frequency carrier in a signal transceiver, to generate a radio frequency signal. The radio frequency signal is transmitted to a signal receiver via air, and is demodulated into the signal for transmission in the signal receiver. Bad signal quality may be induced if signal transmission paths of the radio frequency signal in the signal transceiver and the signal receiver are improperly designed.
Referring to
A differential pair 10 includes two transmission lines 11 and 12 is arranged in the signal layer 20. The transmission lines 11 and 12 are arranged side by side in the signal layer 20.
The differential pair 10 includes a plurality of section pairs arranged along a signal transmission direction of the differential pair 10. Each section pair includes a section arranged in the transmission line 41 and a section arranged in the transmission line 42. The two sections of each section pair are symmetrical with each other. Every two adjacent sections arranged in each of the transmission lines 41 and 42 are different in width.
Referring to
The filter 50 includes seven capacitors C1-C7 and six inductors L1-L6. The section pairs Z1-Z7 are equivalent to the capacitors C1-C7 respectively. The section pairs Z8-Z13 are equivalent to the inductors L1-L6 respectively. The line width of each section of each of the section pairs Z1-Z13 is determined by parameters of a corresponding equivalent capacitor or inductor. The parameters may include a capacitance of each of the capacitors C1-C7 correspondingly or an inductance of each of the inductors L1-L6.
A length of each section of each of the section pairs Z1-Z7 is determined according to a first formula
and a length of each section of each of the section pairs Z8-Z13 is determined according to a second formula
Where C is a capacitance of a corresponding one of the capacitors C1-C7, L is an inductance of a corresponding one of the inductors L1-L6, Z0 is a desired characteristic impedance of a corresponding one of the section pairs Z1-Z13 under a desired frequency bandwidth, such as 3 gigahertzs (GHZ), of the differential pair 10, l is the length of each section of the corresponding one of the section pairs Z1-Z13, f is a cut-off frequency of the low pass filter 50, λg is a wavelength of signals transmitted on the differential pair 10 under the cut-off frequency. Values of the cut-off frequency and wavelength of the signals under the cut-off frequency are fixed. The capacitances of the capacitors C1-C7, the inductances of the inductors L1-L6 are predetermined. Therefore, the length of each section of each of the section pairs Z1-Z13 can be determined according the characteristic impedance of the section pairs Z1-Z13 correspondingly.
The desired characteristic impedances of each of the section pairs Z1-Z13 and the corresponding frequency bandwidth of the differential 10 can be achieved by simulating the apparatus 1 of
Curve 4a represents a simulation result of the differential pair 10 in a condition that the distance between the two transmission lines 11 and 12 is 50 mils, the line width of each section of the differential pairs Z1-Z7 is 107.73 mils, and a line width of each section of the section pairs Z8-Z13 is 15.324 mils. In this condition, the frequency bandwidth of the differential pair 10 is 3.19 GHZ. Curve 4b and 4c respectively represents simulation results of the differential pair 10 in conditions that the line width of each section of the differential pairs Z8-Z13 decreases to be 12.324 mils and 9.324 mils. When the line width of each section of the differential pairs Z8-Z13 is adjusted to be 9.324 mils, the required 3 GHZ frequency bandwidth of the differential pair 10 is achieved. In addition, the frequency response is also changed. Therefore, both of the frequency bandwidth and the frequency response of the differential pair 10 can be adjusted by changing the line width of each section of the section pairs Z8-Z13.
It can be determined from a comparison of
Curve 5a represents a simulation result of the differential pair 10 in a condition that the line width of each section of the differential pairs Z1-Z7 is 107.73 mils, and a line width of each section of the section pairs Z8-Z13 is 9.324 mils, and the distance between the two transmission lines 11 and 12 is 10 mils. In this condition, the frequency bandwidth of the differential pair 10 is 2.88 GHZ. Curves 5b and 5c respectively represent simulation results of the differential pair 10 in conditions that the distance between the two transmission lines 11 and 12 increases to be 30 mils and 50 mils. When the distance between the two transmission lines 11 and 12 is adjusted to be 50 mils, the required 3 GHZ frequency bandwidth of the differential pair 10 at a gain of −3 decibels (dB) is achieved. It can be determined from
Accordingly, required frequency bandwidth and frequency response of the differential pair 10 can be achieved by adjusting each of the distances between the two transmission lines 11 and 12, the line width of each section of the capacitance section pairs, and the line width of each section of the inductance section pairs. The signal transmission apparatus 1 can be used in wireless transmission devices, such as a wireless network card and an access point. The signal transmission apparatus 1 can also be used in wired transmission devices.
The foregoing description of the exemplary embodiments of the disclosure has been presented only for the purposes of illustration and description and is not intended to be exhaustive or to limit the disclosure to the precise forms disclosed. Many modifications and variations are possible in light of the above everything. The embodiments were chosen and described in order to explain the principles of the disclosure and their practical application so as to enable others of ordinary skill in the art to utilize the disclosure and various embodiments and with various modifications as are suited to the particular use contemplated. Alternative embodiments will become apparent to those of ordinary skills in the art to which the present disclosure pertains without departing from its spirit and scope. Accordingly, the scope of the present disclosure is defined by the appended claims rather than the foregoing description and the exemplary embodiments described therein.
Number | Date | Country | Kind |
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200910305355.0 | Aug 2009 | CN | national |