This application is a national stage entry of PCT/CN2009/074068 filed Sep. 21, 2009, which is based upon and claims the benefit of priority from Chinese Application No. 200810216332.8 filed Sep. 23, 2008, the entire contents of which are incorporated herein by reference.
This invention relates to a record carrier which is used along with a machine. It specially relates to a record carrier with semiconductor circuit elements and especially a double frequency-conversion circuit and method used for a radio-frequency SIM card.
The radio-frequency wireless transceiver chip of the existing technology includes three implementation schemes, i.e., superheterodyne (double frequency-conversion), low-medium-frequency (single frequency-conversion), and zero-medium-frequency. Based on double frequency-conversion that works in the frequency band of 2.4 GH ISM, this invention proposes a smart frequency distribution scheme that is flexibly and successfully used in the radio-frequency SIM card of a radio-frequency handheld terminal.
As compared with the scheme adopted by the existing technology in the frequency band of 2.4 GHz ISM, this invention has the following advantages: it improves the signal image frequency to approximately 3 GHz through smart frequency distribution without using an external image rejection filter. As the frequency band of 3 GHz is rarely used, this effectively solves the image rejection problem in the application of 2.4 GHz ISM frequency band. It is used successfully in a radio-frequency SIM card.
The existing technology for frequency conversion has the following disadvantages: when a radio-frequency SIM card is used in the 2.4 GHz ISM frequency band, an external filter is needed to solve the image rejection problem in the actual application, and power consumption of the chip is relatively high.
The technical problem to be solved by this invention is to avoid the disadvantages of the existing technology and to propose a double frequency-conversion circuit and method used in a radio-frequency SIM card.
This invention provides a double frequency-conversion receiving circuit used for a radio-frequency SIM card, including a low-noise amplifier, a high-medium-frequency mixer, a low-medium-frequency mixer, a local oscillator, a quadrature I/Q circuit, and a low-medium-frequency processing circuit. It also includes a frequency divider which performs N frequency dividing to a high-local-oscillation signal generated by the local oscillator to obtain a low-local-oscillation signal, N being a positive integer, 5<N<12, wherein the divided low-local-oscillation signal is inputted into the quadrature I/Q circuit to obtain a low I/Q local-oscillation signal, the I/Q local-oscillation signal outputted from quadrature I/Q circuit and a high-medium-frequency signal outputted from the high-medium-frequency mixer are inputted into the low-medium-frequency mixer for mixing, to obtain a low-medium-frequency signal, and the low-medium-frequency signal is processed by the low-medium-frequency processing circuit to output the signal needed, which has gone through the double frequency-conversion.
This invention can also solve the technical problem through the following technical scheme: it provides a double frequency-conversion method used in the radio-frequency SIM card, based on the double frequency-conversion circuit used for the radio-frequency SIM card. The frequency-conversion method includes the following steps:
A. the local oscillator generates a high-local-oscillation signal LOH with a frequency fLO,highIF, which is inputted into the high-medium-frequency mixer and the frequency divider;
B. the frequency divider performs N frequency dividing to the high-local-oscillation signal LOH to obtain a low-local-oscillation signal LOL with a frequency fLO,lowIf, which is inputted into the quadrature I/Q circuit;
C. the quadrature I/Q circuit processes the inputted low-local-oscillation signal LOL to generate a quadrature I/Q local-oscillation signal, which is inputted into the low-medium-frequency mixer;
D. an antenna signal frf received from the antenna is inputted into the low-noise amplifier;
E. the antenna signal frf, after being amplified by the low-noise amplifier, is outputted to the high-medium-frequency mixer for mixing, to obtain a high-medium-frequency signal IFH with a frequency fIF,high;
F. the high-medium-frequency signal IFH and the quadrature I/Q local-oscillation signal are inputted into the low-medium-frequency mixer for mixing, to obtain a low-medium-frequency signal IFL with a frequency fIF,low; G. the low-medium-frequency signal IFL, after being processed by the low-medium-frequency processing circuit, is outputted as the signal needed, which has gone through the double frequency-conversion.
The frequency fLO,highIF of the high-local-oscillation signal LOH satisfies:
The radio-frequency SIM card includes a radio-frequency wireless transceiver chip, an interface treatment circuit, and a main control integrated circuit. The radio-frequency SIM card can, via the radio-frequency wireless transceiver chip, communicate with a supporting peripheral unit within a certain distance.
The radio-frequency wireless transceiver chip works in the frequency band of 2.4 GHz ISM.
As compared with the existing technology, this invention has the following beneficial effects: it can improve the signal image frequency to approximately 3 GHz through smart frequency distribution without using an external image rejection filter. This effectively solves the image rejection problem when using the radio-frequency SIM card in the 2.4 GHz ISM frequency band, and reduces power consumption of the chip.
Reference will now be made in detail to exemplary embodiments, examples of which are illustrated in the accompanying drawings.
This invention, a double frequency-conversion receiving circuit used for a radio-frequency SIM card as shown in
This invention can solve the technical problem through the following technical scheme: a double frequency-conversion method used in the radio-frequency SIM card, based on the double frequency-conversion circuit used in the radio-frequency SIM card as shown in
A. in Step 11, the local oscillator 04 generates a high-local-oscillation signal LOH with a frequency fLO,highIF, which is inputted into the high-medium-frequency mixer 02 and the frequency divider 06;
B. in Step 12, the frequency divider 06 performs N frequency dividing to the high-local-oscillation signal LOH to obtain a low-local-oscillation signal LOL with a frequency fLO,lowIF, which is inputted into the quadrature I/Q circuit 05;
C. in Step 13, the quadrature I/Q circuit 05 processes the inputted low-local-oscillation signal LOL to generate a quadrature I/Q local-oscillation signal, which is inputted into the low-medium-frequency mixer 03;
D. in Step 14, an antenna signal frf received from the antenna is inputted into the low-noise amplifier 01;
E. in Step 15, the antenna signal frf, after being amplified by the low-noise amplifier 01, is outputted to the high-medium-frequency mixer 02 for mixing, to obtain a high-medium-frequency signal IFH with a frequency fIF,high;
F. in Step 16, the high-medium-frequency signal IFH and the quadrature I/Q local-oscillation signal are both inputted into the low-medium-frequency mixer 03 to obtain a low-medium-frequency signal IFL with a frequency fIF,low;
G. in Step 17, the low-medium-frequency signal IFL, after being processed by the low-medium-frequency processing circuit 07, is outputted to obtain the signal needed, which has gone through the double frequency-conversion.
The frequency fLO,highIF of the high-local-oscillation signal LOH satisfies:
The realization method of this invention is described as follows, taking an embodiment as an example:
Supposing the frequency of the antenna signal frf is 2400 MHz, the frequency of the low-medium-frequency output signal is 2 MHz, and the frequency of the high-local-oscillation signal is 8 times that of the low-local-oscillation signal, i.e., N=8, according to the formula described above, the frequency of the high-local-oscillation signal is:
The frequency of the high-medium-frequency signal IFH is:
The high image signal is located at:
fimage,high=fLO,highIF+fIF,high=2745.143+345.143=3090.286 MHz
As the interference in the frequency band near 3 GHz is very limited, it is not necessary to use an external image rejection filter when the radio-frequency SIM card works at 2.4 GHz.
The frequency of the local-oscillation signal in the low-medium-frequency mixer is ⅛ that of the high-medium-frequency local-oscillation signal, i.e.:
fLO,lowIF=fLO,highIF/8=343.143 MHz
To check results, the frequency of the low-medium-frequency output signal is:
fIF,low=|fLO,lowIF−fIF,high|=2 MHz, which is completely correct.
In the low-medium-frequency mixer, when the medium frequency is 2 MHz, the image frequency of its 345.143 MHz high-medium-frequency is 347.143 MHz. It can be rejected with the structure of a traditional image rejection mixer. As the frequency has dropped from 2.4 GHz to 347.143 MHz, it is much easier to treat it with a traditional technical scheme than at the 2.4 GHz high frequency.
As shown in
The radio-frequency wireless transceiver chip 21 works in the frequency band of 2.4 GHz ISM.
The above realization process is the preferred realization process of this invention. Any normal change and replacement made by those of ordinary skill in the art on the basis of this invention are covered in the protection scope of this invention.
Number | Date | Country | Kind |
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2008 1 0216332 | Sep 2008 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2009/074068 | 9/21/2009 | WO | 00 | 3/22/2011 |
Publishing Document | Publishing Date | Country | Kind |
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WO2010/037322 | 4/8/2010 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
5390346 | Marz | Feb 1995 | A |
5697089 | Lundqvist et al. | Dec 1997 | A |
5758276 | Shirakawa et al. | May 1998 | A |
5774194 | Armbruster | Jun 1998 | A |
5930696 | Tzuang et al. | Jul 1999 | A |
6271603 | Kajita | Aug 2001 | B1 |
6298227 | Molnar | Oct 2001 | B1 |
6567654 | Coronel Arredondo et al. | May 2003 | B1 |
6735421 | Claxton et al. | May 2004 | B1 |
6741847 | Claxton et al. | May 2004 | B1 |
6768902 | Kajita | Jul 2004 | B1 |
7509104 | Song | Mar 2009 | B2 |
20070149160 | Tseng et al. | Jun 2007 | A1 |
Number | Date | Country | |
---|---|---|---|
20110170641 A1 | Jul 2011 | US |