The present invention relates generally to a frequency synthesizing device.
Phase-locked Loops (PLLs) are often used in the synthesis of frequencies in frequency synthesizing devices. In the book "Theorie und Anwendungen des Phase-locked Loops (Theory and Applications of the Phase-locked loop)" by Roland Best (Aarau, 1976), the principles of the mode of operation of these circuits is explained. FIG. 79e on page 82 thereof shows a phase-locked loop which is suitable for the generation of high frequencies, with a variable frequency divider and a mixer stage. A variable or fixed offset frequency and a fixed reference frequency are fed to the phase-locked loop. The phase noise of such an arrangement in this case is dependent upon the division ratio of the variable frequency divider and has a minimum value for the division ratio one. An improvement on this circuit, known from the HewlettPackard Journal (Feb. 1981), has the division ratio of the frequency divider always equal to one and feeds two variable frequencies to the phase-locked loop.
If the output signal of the phase-locked loop is to be free of interference by spurious signals, then the input offset and reference frequencies should likewise have no spurious signals. To eliminate interference from spurious signals, both the offset and reference frequencies are fed to a band-pass filter. However, the requisite filter equipment makes this solution a very expensive one.
An object of the present invention is therefore to improve on the known circuit.
In accordance with an aspect of the invention, a frequency synthesizing device for the generation of various frequency channels includes two reference frequency generators, an offset stage, and a phase-locked loop (PLL). The reference frequency generators generate signals (s.sub.RG1) and (s.sub.RG2), whose respective frequencies f.sub.RG1 and f.sub.RG2 can be selected to be equal to a fraction of a standard frequency f.sub.BZ. The frequency (f.sub.OS) of the output signal (s.sub.OS) of the offset stage (OS) takes on the value of a predetermined frequency f.sub.OR of an offset reference signal (s.sub.OR) or the value of a frequency (f.sub.OR + f.sub.RG2) or (f.sub.OR - f.sub.RG2) of a sum or difference signal formed by combining the signals (s.sub.OR) and (s.sub.RG2). At the output of the voltage-controlled oscillator VCO) in the phase-locked loop, there is generated the output signal (s.sub.A) of the frequency synthesizing device, whose frequency (fs.sub.A) results from the addition of the frequency (f.sub.RG1) and (f.sub.OS) of the signals (s.sub.RG1) and (s.sub.OS), respectively. The phase-locked loop is designed as a tracking filter. All of the frequencies of the reference frequency generators RG1, RG2 and the offset stage OS can be selected and combined with one another such that the resulting sidebands always lie outside the bandwidth of the tracking filter.
In accordance with another aspect of the invention, all the frequencies f.sub.RG1 and f.sub.RG2 emitted by reference frequency generators RG1 and RG2 correspond to a multiple of the lowest frequency f.sub.RG1min generated by the reference frequency generator RG1 and that the value of the frequency f.sub.RG1min is greater than half the bandwidth of the tracking filter (f.sub.RG1min > 1/2 BTF).
In accordance with yet another aspect of the invention, all the frequencies f.sub.RG2max correspond to a multiple of the highest frequency f.sub.RG1max generated by the reference frequency generator RG1.
In accordance with still another aspect of the invention, signals s.sub.A and s.sub.OS are fed to a mixer stage M1 in the phaselocked loop, at whose output there is formed a signal s.sub.M1 with the frequency (fs.sub.A -f.sub.OS), whose phase is compared in the phase detector PD of the phase-locked loop (PLL) with the phase of the signal s.sub.RG1.
A frequency synthesizing device according to the invention exhibits a reduced amount of circuitry, with a simultaneously increased spectral purity of the output signals, the elimination of the band-pass filters mentioned above, diminished phase noise and the freedom of the frequency spectrum of the output signal from interference by spurious signals.
The invention is explained below in detail, by way of an exemplary embodiment with the aid of a drawing.
The drawing shows a frequency synthesizing arrangement in accordance with the invention.
In the following description, it is sometimes convenient to refer to a "frequency" being "derived", "eliminated" and so forth, as the case may be, from which it will be understood, of course, that this will usually be a reference to a signal component of such frequency.
The frequency synthesizing device shown in the drawing includes a phase-locked loop PLL, comprising a phase detector PD, an amplifier module, a low-pass filter, a mixer stage M1 and a voltage-controlled oscillator VCO, to which there are fed two signals s.sub.OS and s.sub.RG1 with frequencies f.sub.OS and f.sub.RG1, respectively.
The frequency f.sub.RG1 derived in the first reference frequency generator RG1 by dividing a standard frequency f.sub.BZ and takes on any one of five values. The value of frequency f.sub.RG1 is selected by way of a multiplexer MU1. The frequency division takes place in a divider T1 with division factors X1 . . . X5. In addition to the basic frequency f.sub.RG1, harmonic oscillations may also occur in signal s.sub.RG1. Signal s.sub.RG1 is fed without prior filtering to an input of a phase detector PD of the phase-locked loop PLL.
In the same way, the frequency f.sub.RG2 is generated using division factors Y1 . . . Y4 and its value is selected by way of a multiplexer MU2. Signal s.sub.RG2 which, in addition to the basic frequency f.sub.RG2, likewise contains harmonic oscillations, is fed to a single sideband mixer stage M.sub.OS in an offset stage OS, at whose second input there is a signal s.sub.OR with the offset reference frequency f.sub.OR. At the output of the offset stage OS is the signal s.sub.OS with the frequency f.sub.OS =f.sub.OR +f.sub.RG2. In this case, the harmonic oscillations contained in the signal s.sub.RG2 are also superimposed on the offset reference frequency f.sub.OR. The signal s.sub.OS is fed unfiltered to an input of a mixer stage M1 in the phase-locked loop PLL.
The frequency fs.sub.A =f.sub.OR +f.sub.RG2 +f.sub.RG1 of the output signal s.sub.A of a voltage-controlled oscillator VCO, and thus of the frequency synthesizing device, is formed while the frequency difference f.sub.M1 =fs.sub.A -(f.sub.OR +f.sub.RG2) generated in the mixer stage M1 is compared in the phase detector PD with the frequency f.sub.RG1. When the loop is in a steady state, the frequencies f.sub.RG1 and f.sub.M1 take on the same value.
The mixing of the unfiltered signals s.sub.OS and s.sub.RG1 in the phase-locked loop generates frequencies f.sub.res, which satisfy the general equation
(l, m, n are positive or negative whole numbers). The frequency fs.sub.A in this case corresponds to the special case in which l, m, n =+1, that is, fs.sub.A =f.sub.OR +f.sub.RG2 +f.sub.RG1.
Since frequency f.sub.OR is ordinarily of the same order of magnitude as the frequency fs.sub.A, whole-number multiples of f.sub.OR are ignored in the subsequent considerations; in other words, the coefficient l in formula (1) is made equal to +1.
In addition to the desired frequency fs.sub.A, interfering frequencies occur in the phase-locked loop PLL, which can be derived from the following formula:
These interfering frequencies are eliminated, according to the invention, by two procedures:
First, the phase-locked loop is designed as a tracking filter. It thus acts as an adjustable bandpass filter with steep sides and a small bandwidth B.sub.TF, which is determined by the loop bandwidth of the phase-locked loop PLL. Frequencies f.sub.res that lie outside the bandwidth B.sub.TF of the tracking filter are consequently blocked. The construction and mode of operation of such a tracking filter are described in greater detail on page 55 of the book cited in the introduction.
The second method for the elimination of interference frequencies comprises selecting the reference frequencies f.sub.RG1 and f.sub.RG2 such that all the resulting frequencies f.sub.res without fs.sub.A (that is, in formula (2) f.sub.res with m,n=+1) lie outside the bandwidth B.sub.TF of the tracking filter, in accordance with the condition
In the event that higher attenuation values are required for the interference frequencies, the resulting value for 1/2 B.sub.TF can be multiplied by an additional factor ( > 1); in other words, interfering spurious signals are further outside the bandwidth B.sub.TF of the tracking filter and are more strongly attenuated, or suppressed altogether.
Not only are the selected reference frequencies f.sub.RG1 and f.sub.RG2 generated by the reference frequency generators RG1 and RG2, but so are their multiples as well. The resulting frequency distribution, with the narrowest interval between lines or spurious signals, as the case may be, is produced by the reference frequency generator RG1 when it generates the lowest frequency f.sub.RG1min.
The minimum line interval of this frequency distribution, which is fed to the tracking filter, accordingly corresponds to the value of the frequency f.sub.RG1min. By a proper selection of the other frequencies f.sub.RG1 and f.sub.RG2, it is now ensured that additional frequency distributions occurring in the phase-locked loop, which are fed through the offset stage OS and the mixer stage M1 to the tracking filter, have the same coverage as the above-mentioned frequency distribution (provided that no frequency gaps are present in it) and, consequently, also have the same line interval. According to formula (2), there occur in the phaselocked loop PLL frequencies f.sub.res =f.sub.OR +m f.sub.RG2 +n f.sub.RG1 which form a frequency distribution in the phase-locked loop PLL. Formula (2) also contains all the products that result from the various frequency distributions through mixing. Multiples of the offset reference frequency f.sub.OR are disregarded because, together with the frequency distributions they generate, they lie far outside the bandwidth B.sub.TF, of the tracking filter. The frequency distribution formed by the frequencies f.sub.res is fed to the tracking filter, which lets the output frequencies fs.sub.A =f.sub.OR +f.sub.RG2 +f.sub.RG1 pass through and blocks the spurious signals in accordance with formula (3). The spurious signals, however, are only blocked if they never fall short of the required line interval. Since all the reference frequencies f.sub.RG1 and f.sub.RG2 are selected as wholenumber multiples of the frequency f.sub.RG1min, the frequency distribution of f.sub.res has a minimum line interval, which corresponds to the frequency f.sub.RG1min. The smallest possible line interval of the output frequency fs.sub.A from the next spurious line or spurious signal therefore corresponds to the value of the frequency f.sub.RG1min. The resulting spurious signals are therefore suppressed by the tracking filter.
The reference frequencies f.sub.RG1 and f.sub.RG2 are now selected according to the following criteria:
1) All the reference frequencies f.sub.RG1min and f.sub.RG2 must correspond to a multiple of the frequency f.sub.RG1min. Preferably, the frequencies f.sub.RG2 are selected as a multiple of the higher frequency of f.sub.RG1.
2) The value of the frequency f.sub.RG1min must be larger than half the bandwidth of the tracking filter (f.sub.RG1min > 1/2 B.sub.TF). In order to achieve higher attenuation values for the spurious signals, the frequency f.sub.RG1min can be increased correspondingly.
Preferably, the frequencies f.sub.RG1 will be selected according to the following formula (4):
The maximum value of the frequency f.sub.RG1 is accordingly f.sub.RG1max =p.times.f.sub.RG1min. Preferably the frequencies f.sub.RG2 will satisfy the following equation:
The maximum value of the frequency f.sub.RG2 is therefore f.sub.RG2max =s.times.f.sub.RG1max. With these conditions for the frequencies f.sub.RG1 and f.sub.RG2 respectively, the output signal s.sub.A has the following characteristics:
The intervals between adjacent frequency channels are always the same.
The maximum possible number of channels in this example is K.sub.max =s.times.p.
In a numerical example given below by way of more detailed explanation, the frequencies f.sub.RG1 and f.sub.RG2 are selected as follows in accordance with formulas (4) and (5):
Insertion of the above values in formula (2) produces frequencies that correspond to the frequency fs.sub.A, or always deviate from it by multiples of 2.25 MHz. The operation of the tracking filter therefore ensures that only the frequency fs.sub.A arrives at the output of the phase-locked loop PLL.
The number of frequency channels can be increased, since not only the frequency (f.sub.OR +f.sub.RG2), but also the offset reference frequency f.sub.OR and the mixing product (f.sub.OR -f.sub.RG2) can be fed to the output of the offset stage OS, for example, by a multiplexer. The resulting maximum number of frequency channels then corresponds to the formula K.sub.max =p.times.(2s+1).
The offset reference frequency f.sub.OR, which must be free from interfering spurious signals, can be produced by multiplication or division from the standard frequency f.sub.BZ (f.sub.OR =k.times.f.sub.BZ) or through a selection from 1 to n sine wave generators (with the frequencies fOR.sub.1, . . . fOR.sub.n), n can be selected arbitrarily) or it can be generated by a frequency synthesizing device with a variable output frequency. The resulting spurious signals (for example, harmonic oscillations), whose frequencies correspond to a multiple of the offset reference frequency f.sub.OR, are permissible, since in the phase-locked loop they lie far outside the bandwidth B.sub.TF of the tracking filter, and are blocked. If the offset reference frequency f.sub.OR is scarned or varied, the number of frequency channels K.sub.max can be raised arbitrarily, or an entire band of frequencies can be covered.
For an additional increase of the output frequency fs.sub.A of the frequency synthesizing device in accordance with the invention, the signal s.sub.A can be fed to a frequency multiplication stage which multiplies the frequency fs.sub.A by any desired factor and feeds it to the output of the frequency synthesizing device.
The minimum length of time that the frequency synthesizing device described above requires for a frequency change corresponds roughly to the time it takes the phase-locked loop to reach a steady state at a new frequency. Shorter changing times are possible if the outputs of two or more frequency synthesizing devices in accordance with the invention, which cover identical or different frequency channels are interconnected through a multiplexer. The output of the frequency synthesizing device which generates the instantaneous output frequency fs.sub.A is selected by the multiplexer. In the other frequency synthesizing devices, frequencies that will be needed in the future are set and kept available, so that they can be selected immediately by the multiplexer.
If, from time to time, a more rapid frequency change is desired and the requirements for the quality of the output signals s.sub.A are reduced (increased phase noise), the input of the voltage-controlled oscillator VCO can be driven directly through a digital/analog converter, by way of which the desired frequency fs.sub.A is digitally selected.
Frequencies that do not correspond to the adjustable frequency channels can be generated with reduced quality (spurious signals and increased phase noise) if the signal s.sub.M1 is fed to a frequency divider which, in standard operation has a division ratio of one and, to generate the desired additional frequencies, has an appropriate division ratio not equal to one.