1. Field of the Invention
The present invention relates to a radiocommunications apparatus comprising means suited to the application of a coefficient N to a useful signal or to useful signals sent out by the apparatus.
It can be applied to the multiplication of signal frequency by a coefficient N.
The expression “useful signal” hereinafter designates an information-carrier signal.
The invention is used in the phase modulation and/or frequency modulation of the useful signal.
It relates for example to radiocommunications apparatuses (using wireless beams, unicast links, multicast links etc) working in the millimetrical frequency band.
2. Description of the Prior Art
In radiocommunications apparatuses, the transmission system generally comprises a device used to transpose the information-carrying useful signal into a radiofrequency band. The frequency Fol of the local oscillator is therefore of the same magnitude as the transmission frequency Fe. This implies the development of functions in the high frequency ranges that are difficult to attain, especially in the millimeter range.
There are also known transmission systems where the frequency multiplication step is performed on the signal subjected to frequency transposition.
The invention relies on a novel approach in which the coefficient N is applied to the useful signal or signals transmitted by a radiocommunications apparatus.
The object of the invention relates to a radiofrequency apparatus comprising at least one transmitter of one or more useful signals S0′ comprising at least one device adapted to the application of a coefficient N to the useful signal or signals S0′ wherein said apparatus comprises at least one device adapted to the frequency modulation or phase modulation of the useful signal or signals with a frequency Fm, the multiplier device being positioned after said modulation device and at least one frequency transposition device and a device to mix the modulated useful signal S1 at the frequency Fm with the transposition frequency Fol in order to obtain a signal S3 at a frequency Frf that is substantially equal to Fol+Fm and wherein the modulation is a phase modulation and the multiplication coefficient N is an odd number greater than or equal to m−1, where in is the number of states of the modulation.
The apparatus is used for example in the range of frequencies greater than 10 GHz and preferably greater than 25 GHz.
The invention also relates to a method used in an apparatus for the transmission and/or reception of one or more useful signals S0 comprising at least one step in which a coefficient N is applied to the useful signal or signals, wherein the method comprises at least the following steps:
The invention offers especially the following advantages:
Other advantages and characteristics of the invention shall appear more clearly from the following description, given by way of an illustration that in no way restricts the scope of the invention and made with reference to the appended drawings, of which:
In order to provide for a clearer understanding of the object of the invention, the following description, given by way of an illustration that in no way restricts the scope of the invention, pertains a transmission system of a radiofrequency apparatus incorporating a device adapted to the multiplication by N of the useful signal or signals S0 sent.
Without departing from the framework of the invention, the coefficient could be a division coefficient leading to a result identical to the one obtained with the multiplication coefficient.
The system comprises a modulator 1 giving a useful, information-carrier signal S1 that is phase modulated and has a frequency Fm, a local oscillator 2 at a frequency Fol and a mixer 3. This mixer 3 receives the modulated useful signal and a signal S2 at the frequency Fol in order to mix them and produce a signal S3 at a frequency Frf that is equal or substantially equal to Fm+Fol. This frequency-transposed signal S3 is sent to a device 4 adapted to the multiplication of this signal by a coefficient N so as to produce a signal S4 at the transmission frequency Fe, (Fe=N(Fol+Fm)). The multiplied signal is then sent to an amplifier 5 through which it is given sufficient power for its transmission.
The multiplication by N of the signal S3 with a frequency Frf and an initial phase Φr generates a transmission frequency Fe=N.Frf and a phase rotation N.Φr.
The principle of operation of the transmission system in the case of phase modulation is described here below.
At output of the modulator 1, the signal S1 with a frequency Fm is modulated by phase leaps corresponding to the data or bits representing information to be sent. The letter m designates the number of states and depends on the phase modulation used.
a) for a BPSK (Binary Phase Shift Keying modulation) type modulation the modulated carrier may take the following form:
S1(t)=A×V(kTs)cos(2πFmt+φ(t))
with:
The value of r depends on the modulation used, for example r=1 in BPSK.
The phases or phase leaps have the following value:
for i ε[0, . . . m−1],
In BPSK modulation, m=2 and two phase states 0 and π are thus obtained.
b) For a QPSK (Quadrature Phase Shift Keying) modulation
the modulated carrier S1 (t) takes the following expression:
There are then two possible choices for the values of VI and VQ in the time interval [kTs, (k+1)Ts]:
The coefficient m representing the number of phase states for a given modulation is m=2r. The value of the coefficient r depends on the modulation used.
For example, for the BPSK modulation, r=1 and m=2, for QPSK modulation, r=2 and m=4.
The value of the multiplication coefficient N is chosen for example as a function of the architecture of the transmission system and the performance of the radiofrequency apparatus.
In the case of a QPSK type of modulation, with a frequency multiplication coefficient N chosen as being an odd number with a value greater than or equal to (m−1), the original phase leaps
become respectively phase leaps of
In this example, all the phase states modulo 2π are obtained.
To this end, the transmission system comprises, in addition to the elements described in
Without departing from the framework of the invention, the divider may be located outside the modulator.
The modulator 1 produces a signal S″1, whose phase Φ is divided by a coefficient K2 giving Φ/K2. This signal is then transmitted to the mixer in order to undergo frequency transposition by means of the frequency Fol according to the scheme described with reference to
The values of the coefficients K1 and K2 are chosen for example according to criteria similar to those used for the choice of the multiplication coefficient N.
The fact of performing a division gives especially the following possibilities:
The phase modulator 1 generates a frequency Fm at 1 GHz modulated by phase leaps corresponding to the data. The phase leaps are not filtered and the modulated signal obtained is a modulated signal with constant envelope.
The frequency Fm is then transposed by the local oscillator at 12.5 GHz to obtain a signal whose frequency Frf is equal to 13.5 GHz. The signal is then multiplied by 3, using a frequent multiplier-amplifier by 3, and then sent on to a set of amplifiers 5 in order to give it the required transmission value.
The constant envelope modulation makes it possible especially to saturate the transmission system without impairing transmission performance.
The choice for the value of N is, for example, a function of the modulation.
In BPSK modulation, the original phase leaps, 0/π, become 0/3π phase leaps. This again gives 0/π (modulo 2π).
In QPSK modulation, the phase leaps 0, π/2, π, 3 π/2, become 0, 3π/2, 3 πand 9 π/2 namely 0, π/2, π and 3π/2 (modulo 2π).
In the two examples mentioned above, the phase states modulo 2π, are found again.
The device described above can be applied to all frequency values but prove to be particularly valuable in the case of a transposition frequency source that is difficult to obtain or is of high cost. This corresponds to high local oscillator and RF radiofrequencies.
The above example implements a phase modulation. However it can be used, without departing from the framework of the invention, for a frequency modulation.
Although the principle implemented in the present invention has been given for a transmission system, the invention can also be applied to a reception system in a radiofrequency apparatus.
Similarly, any modulation other than the BPSK, QPSK modulation mentioned here above that keeps a constant or substantially constant envelope may be used within the framework of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
01 05729 | Apr 2001 | FR | national |
Number | Name | Date | Kind |
---|---|---|---|
3754101 | Daspit et al. | Aug 1973 | A |
3854094 | Towler | Dec 1974 | A |
4176319 | Kahn | Nov 1979 | A |
4355404 | Uzunoglu | Oct 1982 | A |
4585998 | Veillard | Apr 1986 | A |
5237292 | Chethik | Aug 1993 | A |
5309479 | Cheah | May 1994 | A |
5640125 | Alard | Jun 1997 | A |
5903609 | Kool et al. | May 1999 | A |
6242990 | Sokolov | Jun 2001 | B1 |
20010006539 | Kim | Jul 2001 | A1 |
Number | Date | Country | |
---|---|---|---|
20020176515 A1 | Nov 2002 | US |