Linear frequency modulation pulse radar
By generating radar signals with periodically repeated oscillation trains of varying time spacing and frequency, the radar technology achieves high spatial resolution and low power consumption while accommodating diverse radar cross-sections.
Patent Information
- Application Number
- FR2023013339
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-11-30
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2043-11-30
AI Technical Summary
Existing radar technologies face challenges in achieving high spatial resolution and low power consumption while maintaining a wide dynamic range for radar cross-sections, particularly in environments with diverse target characteristics.
The proposed solution involves generating a radar signal composed of periodically repeated series of periodic oscillation trains with linearly variable time spacing and linearly varying frequency, allowing for time-separated echo signals and reduced ADC dynamic range and acquisition rate.
This approach enables the use of ADCs with lower dynamic range and acquisition rate without compromising spatial resolution or radar cross-section dynamic range, thereby reducing power consumption while maintaining effective target detection.
Smart Images

Figure 00000000_0000_ABST
Abstract
Description
Title of the invention: Linear frequency modulation pulse radar
[0001] The invention lies in the field of radars, and more particularly radars on a chip, which can be used in particular for measuring vital signals of a patient or as a presence detector, see for example (Antide 2020). These radars must have both a high spatial resolution (of the order of a few centimeters) and low consumption (a few tens of mW).
[0002] A commonly used technique for these applications is that of frequency-modulated continuous-wave, duty-cycle (FMCW-DC), see for example (Liu 2019) and (Siligaris 2023). Indeed, this technique exploits the principle of compressing a wave emitted with a wide bandwidth to a narrow bandwidth in intermediate frequency, which makes it possible to use analog-to-digital converters (ADCs) with a relatively low acquisition rate, of a few MSps or tens of MSps (IMSps = 10 6 samples per second - acronym for "Mega Samples per second").However, in the presence of targets with very diverse radar cross sections (RCS), it will be necessary to use ADCs with high dynamic range, for example 9 to 12 bits or more, and therefore relatively high power consumption.
[0003] An alternative is to use the ultra-wideband radio pulse (IR-UWB) technique, in which a short pulse is emitted and the time of flight of its echo is measured to determine the target distance. See for example (Andersen 2017). An advantage of this technique is that, as the echo signals are separated in time, it is possible to apply automatic gain control (AGC) to make it possible to acquire a highly contrasted environment in the presence of objects of very diverse RCS while limiting the dynamics of the ADCs. On the other hand, obtaining good spatial resolution relies on the use of a high acquisition rate, several GSpS IMSps = 109 samples per second - acronym for "Giga Samples per second").
[0004] The invention aims to overcome, in whole or in part, the aforementioned drawbacks of the prior art. More particularly, it aims to make it possible to use ADCs having a lower dynamic range than in FMCW-DC radars and a lower acquisition rate than in IR-UWB radars, without sacrificing either the spatial resolution or the RCS dynamic range of the detectable targets.
[0005] According to the invention, this aim is achieved by generating a radar signal consisting of periodically repeated series of periodic oscillation trains. The oscillation trains of the same series have a linearly variable time spacing while, within a series, the frequency of the oscillations varies linearly from one periodic oscillation train to another. The radar signal being pulsed (it is in fact made up of periodic oscillation trains spaced apart from each other), the echo signals are separated in time, as in the case of the IR-UWB technique, allowing a gain adjustment which authorizes the use of ADCs with relatively low dynamic range even in the presence of a contrasting environment.Furthermore, the combination of variable spacing of the oscillation trains and a modification of the oscillation frequency from one train to another allows - as will be demonstrated later - a compression of the echo bandwidth, allowing the use of ADCs with a relatively low acquisition rate without sacrificing spatial resolution, as in the case of the FMCW-DC technique.
[0006] Also, an object of the invention is a device for generating a radar signal comprising: - a generator of periodically repeated series of trigger pulses, the pulses of the same series having a linearly variable time spacing; and - an oscillator configured to receive said trigger pulses as input and to generate a train of periodic oscillations corresponding to each said trigger pulse; characterized in that - said oscillator has a variable frequency depending on a control signal; and in that - the device also comprises a generator of said control signal, adapted to vary linearly over time the frequency of the oscillator from one train of periodic oscillations to another for trains of periodic oscillations triggered by trigger pulses belonging to the same series.
[0007] According to particular embodiments of such a device:
[0008] - The oscillator and the generator of said control signal can be configured to that the average frequency of the oscillations of said periodic oscillation trains is a multiple, by a factor K>1, of an average repetition frequency of the trigger pulses.
[0009] - More particularly, said trigger pulse series generator comprises a first signal generator and a trigger pulse generator, the first signal generator being configured to generate a first signal consisting of periodic repetitions of trains of li- modulated oscillations fc(n) =K( nearly in frequency, the trigger signal generator being configured to receive said first signal as input and to generate said trigger pulses synchronously with the oscillations of said first signal.
[0010] - More particularly still, the oscillator and the generator of said control signal can be configured so that the frequency of the periodic oscillation train generated in correspondence with an nth trigger pulse of a said series is given by: , Bprf t „ x \ where fpRpo is the frequency of the oscillations of the j first signal at the beginning of each train of frequency modulated oscillations, bprf the Uhiip frequency modulation rate of said oscillations and ts(n) an instant of generation of said nth trigger pulse, with ts(n — 1) — 0-
[0011] - Said first signal generator can be configured so that the modulation in frequency of the oscillations of said first signal is controlled by said control signal.
[0012] - The factor K can advantageously be greater than or equal to 10 and preferably between 100 and 1000.
[0013] - The device may also comprise a pulse shaper for modify the time profile of said periodic oscillation trains.
[0014] - Said oscillator may be a microwave oscillator.
[0015] - The device may also comprise a device for applying jamming of phase to said trains of periodic oscillations.
[0016] Another object of the invention is a radar device comprising: - a transmission channel comprising a device for generating a radar signal as set out above; and - a reception channel configured to receive echoes of said radar signal and to demodulate them synchronously with their generation so as to extract time-of-flight information therefrom.
[0017] According to particular embodiments of such a radar device:
[0018] - The reception path may comprise an amplifier equipped with a device automatic gain adjustment to compensate for variations in the intensity of received echoes.
[0019] - The device for generating a radar signal from the transmission channel may comprise a said first signal generator configured to generate said first signal consisting of periodic repetitions of trains of oscillations linearly modulated in frequency; and the reception path may comprise: a frequency multiplier configured to receive as input said first signal and multiply its frequency by said factor K; and a mixer configured to receive as input said radar echoes and demodulating them by mixing with a signal from said frequency multiplier to obtain a demodulated signal; a low-pass filter configured to attenuate components of said demodulated signal at frequencies that are multiples of said average repetition frequency of the trigger pulses; and an analog-to-digital converter having an acquisition rate adapted to convert a signal at said average repetition frequency.
[0020] - The reception channel may comprise at least one analog converter - digital having an analog bandwidth of width at least equal to the spectral width of said received echoes but an acquisition rate adapted to convert a signal at said average repetition frequency of the trigger pulses, said converter being synchronized with said trigger pulses through a delay line.
[0021] - The device for generating a radar signal from the transmission channel may comprise a said first signal generator configured to generate said first signal consisting of periodic repetitions of oscillation trains linearly modulated in frequency; and the reception path may comprise: a frequency multiplier configured to receive said first signal as input and multiply its frequency by said K factor; and a mixer configured to receive said radar echoes as input and demodulate them by mixing with a signal from said frequency multiplier in order to obtain a demodulated signal; and at least one analog-digital converter having an analog bandwidth of width at least equal to the spectral width of said received echoes but an acquisition rate adapted to convert a signal at said average repetition frequency of the trigger pulses, said converter being synchronized with said trigger pulses through a delay line.
[0022] - More particularly, said delay line may have a variable delay.
[0023] - The reception path may comprise a plurality of said converters analog - digital synchronized with said trigger pulses through respective delay lines introducing different delays.
[0024] The device for generating a radar signal of the transmission path may comprise a device for applying phase jamming and the transmission path may comprise a phase descrambling device.
[0025] Yet another object of the invention is a method for generating a radar signal comprising the generation of periodically repeated series of periodic oscillation trains, the oscillation trains of the same series having a linearly variable time spacing; the frequency of the oscillations varying linearly from one periodic oscillation train to another in the same series.
[0026] Other characteristics, details and advantages of the invention will emerge upon reading from the description made with reference to the attached drawings given as examples and which represent, respectively:
[0027] [Fig.l], the functional diagram of a radar generation device according to an embodiment of the invention;
[0028] [Fig.2], the graph of a spectral template that the generated radar signals must respect;
[0029] [Fig.3], the spectrogram of the radar signal generated by the device of [Fig.l];
[0030] [Fig.4], the functional diagram of a radar device according to an embodiment of the invention;
[0031] [Fig.5A], the signal at the output of the mixer of the receiving channel of the device of the [Fig.4], represented in the time domain, in the case of a single target located at a distance of 3.75 m (time of flight: 25 ns);
[0032] [Fig.5B], an enlargement of a portion of [Fig.5A];
[0033] [Fig.6A], the signal at the output of the mixer of the receiving channel of the device of the [Fig.4], represented in the spectral domain, also in the case of a single target located at a distance of 3.75 m (time of flight: 25 ns);
[0034] [Fig.6B], an enlargement of a portion of [Fig.6A];
[0035] [Fig.7A], [Fig.7B] and [Fig.7C], respectively, the output signals of the channel of reception of the mixer of the device of [Fig.4], of the low-pass filter and of a module for calculating the Fourier transform, in the case of three targets located at 1m, 5m and 12m;
[0036] [Fig.8], the functional diagram of a radar device according to another mode of rea lization of the invention;
[0037] [Fig.9A], the signal subsampled by the receiving channel of the device of the [Fig.8], also in the case of three targets located at 1m, 5m and 12m;
[0038] [Fig.9B], an enlargement of a portion of [Fig.9A];
[0039] [Fig. 10], the functional diagram of a radar device according to yet another embodiment of the invention; and
[0040] [Fig. 11 A], the signal subsampled by the receiving channel of the device of [Fig. 10] in the case of three targets located at distances of 1 m, 5 m and 12 m, respectively;
[0041] [Fig. 1 IB], an enlargement of a portion of [Fig. 1 IA]; and
[0042] [Fig.llC], the signal obtained by Fourier transform of that of [Fig.llA].
[0043] The device for generating a radar signal of [Fig.l] comprises a first ge generator
[112] of a first signal sc(t) in the form of a periodic sequence of trains of oscillations modulated linearly in frequency (“chirped”, from the English “chirp”, chirping):
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
[0050]
[0051]
[0052]
[0053]
[0054]
[0055] - if n (2,t (ft + / 2)), V / e 0; T chirf\ 1 \ \ rKr 1 / * cha-p JJ r J where fpRFO is the frequency of the oscillations of the first signal at the beginning of each train of frequency modulated oscillations, bprf the frequency modulation rate 1 chirp of said oscillations, t the time and Tchirp the repetition period of the oscillation trains. We understand that a train starts with oscillations at the frequency lpm> - frequency which gradually increases up to fpi <F0 + BPrF; ^rf est donc la largeur de bande du signal spkf. En variante, la fréquence peut diminuer progressivement jusqu’à fpRFO - Bprf. Dans les deux cas, la fréquence des oscillations revient à une valeur fpRFO au bout du temps Tchiip ou bien Tchirp +Tguard si un intervalle de garde Tguard est nécessaire entre deux trains d’impulsions. The fpRFO frequency is generally of the order of a few MHz, for example between 1 and 100 MHz. In the following we will take f PRF0 = 19.4 MHz, BPRF = 1.2 MHz (which gives an average pulse repetition frequency of 20 MHz) and Tchirp = 40 ps. The first signal generator 112 may, for example, comprise a sawtooth waveform generator (voltage ramps) clocked by a clock 111 and driving a voltage controlled oscillator (not shown). The oscillatory signal sc is used by a trigger pulse generator 113 to generate periodically repeated series of trigger pulses synchronously with the oscillations of said first signal. For example, a trigger pulse can be generated in correspondence with each oscillation, or at each zero crossing of the first signal (therefore two trigger pulses per oscillation) etc. In the following, we consider a case where a trigger pulse is generated at each start of oscillation of the first signal, which can be obtained by using a duty cycle controller. It is easily found that the series of pulses corresponding to each repetition of the oscillation train of the first signal is given by n=l V f G Where the time positions ts(n) of each pulse are given by = ^^(-1 + ^+,^ 0-1)1,ne{l, <3) \ V d PRH) 1 dm'P! Nmax being the number of pulses in each series. We note that the spacing At?(n) = ts(n + 1) -ts(n) between two pulses varies linearly (at least to a first approximation) in time. In [Fig.l], block 110 designates the generator of series, repeated periodically, of variable-spaced sPRF trigger pulses. This block comprises the clock 111, the first signal generator 112 - in turn consisting, in the example considered here, of a voltage ramp generator and a frequency-controlled oscillator - and the pulse generator 113. Other architectures for implementing this functional block may be envisaged by those skilled in the art.
[0056] The sPRF trigger pulses activate an oscillator 120 for a short duration - of the order of magnitude of that of the pulse, which leads to the generation of a train of periodic oscillations at an oscillator frequency fc much higher than that of the oscillations of the first signal. Typically, if the frequency of the oscillations of the first signal is of the order of a few tens of MHz, fc will be of the order of a few GHz. The oscillator 120 therefore generates microwave pulses. By "microwave frequencies" we mean frequencies between 300 MHz and 300 GHz, but the oscillator 120 will preferably operate in the range 1 GHz - 100 GHz.
[0057] The waveform generated by the oscillator 120 activated / deactivated by a trigger pulse may have a spectrum incompatible with the regulations in force. For this reason, the oscillation trains (which, in the following, will also be called “microwave pulses”) can be shaped by a shaper 130. Several forms of microwave pulse envelopes are achievable, in order to be compatible with the regulations and the spectral masks to be respected. In the following, we will consider the case of Gaussian pulses whose envelope is given by
[0058]
[0059] Where T is a dimensionless parameter that fixes its position relative to the corresponding trigger pulse (for example, we can take y = 3) and r another parameter, having the dimensions of a time, fixes the duration of the microwave pulse, and therefore its spectral width. If the target bandwidth of the microwave pulse is BpUke, we obtain
[0060] (5) -y- — J................................ B draws
[0061] Where xdB is the reference level (in dB) used for measuring the Bpulse band (generally, xdB is chosen equal to -3dB or -10 dB).
[0062] The microwave oscillator 120 is a frequency-controlled generator driven by a control signal VtUne such that the frequency fc varies linearly in time over a period Tchiip, that is to say for microwave pulses corresponding to trigger pulses of the same series.
[0063] . Advantageously, this control signal is generated by the first generator of signals 112 so as to ensure synchronism between frequency variations oscillation of the oscillator 120 and the generation of the trigger pulses. In particular, the control signal Vtune may be a replica of the voltage ramps used in the generation of the first signal. Alternatively, a separate control signal generator may be used.
[0064] Optionally, a phase jammer 150 may cooperate with the pulse shaper to apply phase jamming to the microwave pulses, thereby smoothing their spectrum. A power amplifier 140 may also amplify the signal prior to its transmission.
[0065] The signal from the oscillator 120 can be written - unless there is a multiplicative coefficient defining its amplitude, and without considering possible phase interference: ï°°66l ^(t) =£“e-^ • sin(2rfc(n) •
[0067] Where the dependence of the oscillator frequency fc and the number of pulses, and therefore of the time, has been highlighted.
[0068] The oscillator 120 and its control signal VtUne are such that the frequency fc varies linearly in time from one microwave pulse to another, while remaining constant during the same pulse. More particularly, the evolution of the oscillation frequency fc is advantageously chosen so that the power spectral density of a high-order harmonic k of the minimum repetition frequency f PRFQ of the trigger pulses remains constant over a spectral band defined by a template. This is illustrated in [Fig.2] in the case f PRF0 =20 MHz and K=400. In the figure, the dotted line represents a spectral template centered around 8 GHz and the continuous line the spectrum of the harmonic k=400 (smoothed using phase scrambling to eliminate rapid oscillations at 20 MHz, see below).We understand that the spectral efficiency is maximum when the harmonic spectrum remains constant over the entire width of the template. For this, we choose a law of evolution of the frequency of the oscillator 120 given by .
[0069] \ _ K{ f + ^ELt(n]\ (T) Jc'A [ J PRFQ + TchirpJ
[0070] The spectrum STx(f) of the signal sTX(t) given by (6) and (7) can be written
[0071] H" -eA Ài'.U")H j ■ ci ^8^
[0072] Where “j” is the imaginary unit.
[0073] [Fig.3] is a spectrogram of the sTX(t) signal. The oblique dotted lines highlight the modulated (“chirped”) discrete harmonics whose frequency is given by t ( F , bprf f ]. K \ j PRFG^ TMrp'j
[0074] The spectrum of equation (8) can be approximated by
[0075] tt / (9) 5y^ ~ 2,j sq y^ j
[0076] Where II is a gate function, which is equal to 1 inside the interval [-½, 7] and 0 outside. It is possible to verify that the coefficients ck(t) of the series vary quite little over a duration Tchiip; it is therefore possible to replace them with their average values Q over said duration Tchiip. We therefore obtain:
[0077] M -M_y+°7 -nP2^ ô y Yl t TX\rJ- ^ / t=oC k 2-j 11I Tchirp I
[0079] Equation (10) highlights the fact that the generated radar signal can be written as a sum of frequency-modulated components around a multiple of the fundamental frequency f PRF0- The most intense component corresponds to k=K. Using a relatively low-frequency oscillatory signal (the first signal) to generate trigger pulses of a microwave oscillator allows for particularly low phase noise, as demonstrated in (Siligaris 2023). Unlike the case of (Siligaris 2023), however, in the case of the invention the radar signal is pulsed and the microwave carrier frequency evolves linearly from one pulse to the next.
[0080] The signal sTX(t) is intended to be emitted by a radar antenna and reflected by one or more targets. The echo signals are then detected and demodulated to extract information on the distance of the target. If we consider a single target at a distance D from the transmitting and receiving antennas (assumed to be coincident or co-located - the case of monostatic radar, but generalization to the bistatic case poses no difficulty), the echo is received with a delay t^ - DI c, where c is the speed of light. The received signal is therefore written (unless an amplitude multiplicative factor):
[0081] / X—Y14”",-.-. WtcFr TI ^TX 'd “ 1AR / — 2j ' v 1 [ lAR' 1chirp J (H)
[0082] Where "cc" denotes the complex conjugate and the gate function can be omitted since the time is only defined over a Tchirp^ interval, i.e. between the start of echo reception and the end of the transmission signal.
[0083] The demodulation of this received signal can be carried out in several ways. Two will be considered in the following (as well as their combination): - Coherent demodulation using a linearly frequency modulated local oscillator signal; - Non-uniform sampling.
[0084] [Fig.4] shows the functional diagram of a radar device according to a mode of rea embodiment of the invention comprising a transmission channel 1 and a reception channel 2. The transmission channel is essentially constituted by a device for generating a radar signal of the type of [Fig.l]. The reception channel 2 carries out a coherent demodulation of a received echo signal, as explained below.
[0085] The receiving channel 2 comprises a low-noise amplifier 210 for pre-amplifying the received signal, followed by an I / Q mixer 220 for converting it to an intermediate frequency. The mixer also receives as input a local oscillator signal sRX, which it multiplies by the pre-amplified echo signal. The local oscillator signal Srx is a linearly frequency modulated signal, which reproduces the harmonic K of the oscillations of the first signal. :
[0086] (12)
[0087] This signal is advantageously obtained by taking, by means of a separator 114, a portion of the first signal inside the module 110 and multiplying its frequency by a factor K, for example by means of a PLL 230.
[0088] By writing the echo signal as the sum of its two quadratures
[0089] sTX(t- rAR) = sTX(t- rAR)z + 7 ' sTX(t- tar) (13)
[0090] We find that the signal at the output of the mixer 220 can be written
[0091] SNnx(t) = -COnj(sRX (t)) = (14)
[0092] Where "conj" denotes the complex conjugation operation. By setting a — we chirp can write, more compactly:
[0093] Stfixtt) = E^CC (15)
[0094] We observe that, for k=K, we obtain a signal at "useful" intermediate frequency
[0095] S}F (t) = cki ■ ej27r[-2-Ka-rAR-î - kpfpR^rAR + k^AR) - . ej2n:(-2-K-(rr ARt. ) eÿp (16)
[0096] Where fa .f + j is a constant phase shift in the time. This signal s1F(t) is essentially a sinusoidal signal whose frequency is proportional to the shutter time and therefore to the distance of the target.
[0097] For any value of k other than K, there will be other contributions in the spectrum, namely spread spectra dependent on the difference K - k and carried at a frequency higher in absolute value than that of the useful signal sIF(t), dependent on k and with an additional phase shift dependent on the distance and proportional to k. The amplitude of these other contributions will be lower relative to the useful component sIF(t) because of the fact that these signals will be spectrally spread and weighted by the Q coefficients of lesser amplitude than ^k=K-
[0098] [Fig.5A] shows a graph of the I (upper panel) and Q (lower panel) components of the SMiX( / ) signal • [Fig.5B] is a detailed view obtained by dilating the time axis. [Fig.6A] is the spectrum of this signal, showing a central peak corresponding to the useful signal at intermediate frequency - whose position gives access to the target distance - and secondary peaks at higher frequencies (multiples of f PKFq) less intense and more spectrally spread, corresponding to harmonics of order different from K. [Fig.6B] is a detailed view obtained by dilating the time axis, so as to show only the central peak.
[0099] A low-pass filter 250 makes it possible to filter these undesirable spectral components, then an analog-to-digital converter 260 samples and digitizes the filtered signal. Thanks to the filtering of the harmonics of f PRF0 which avoids the effects of spectrum aliasing, the analog-to-digital converter 260 can operate at a relatively low acquisition rate, of the order of f PRF0 (20 MSpS for f PRFq=2Q MHz). Advantageously, the converter 260 can receive a timing signal from the first signal generator 110, and more particularly from the clock 111.
[0100] The radar device of [Fig.4] also operates in the presence of several targets at different distances. For example, [Fig.7A] illustrates the signal at the output of the mixer 220 in the case of three targets C1, C2 and C3 at distances of 1m, 5m and 12m, respectively. [Fig.7B] illustrates the signal at the output of the low-pass filter 250, and [Fig.7C] its spectrum, obtained for example at the output of a digital module for calculating the fast Fourier transform (FFT) 270. On the spectrum, the three peaks corresponding to the three targets are clearly distinguished.
[0101] The pulse nature of the received signal makes it possible to benefit from a gain adaptation system placed at the output of the mixer, which makes it possible either to compensate in an analog manner for the attenuation of the signal due to free space losses, or to compensate for the effects of radar cross section (RCS) disparities present in different distance boxes, or to attenuate parasitic echoes, or any combination of these different options. As illustrated in [Fig.4], the gain adaptation system comprises variable gain amplifiers 240 controlled by a gain profiler 245. The latter can apply a predefined gain profile or determine it automatically according to the temporal evolution of the amplitude of the received signal. Even in the absence of gain adaptation, the temporal separation of the pulses avoids saturating the receiver and therefore makes it possible to improve the dynamics of the radar.Due to the time separation of the pulses, the resolution of the 260 converter can be relatively low, for example equal to 8 bits.
[0102] [Fig.8] shows the functional diagram of a radar device according to another embodiment of the invention comprising a transmission channel 1 and a reception channel 2. The transmission channel is essentially made up of a device for generating a radar signal of the type shown in [Fig. 1]. The reception channel 2 differs from that of the device shown in [Fig. 8] mainly by the absence of the mixer 220 (and therefore also of the frequency multiplier 230), by the presence of a coupler 280 for generating the I and Q components from the received and preamplified signal and by the fact that the analog-digital converter is driven by the trigger pulses s prp coming from the generator 113 and shifted in time by a duration Tgaf(j by a delay line. As will be explained below, a given value of the delay only allows the detection of an echo signal corresponding to a time of flight tar “ ' sate. To detect targets at unknown distances, it is therefore possible to provide a variable delay line, for sequential acquisition, or a plurality of delay lines introducing different delays ...to drive converters. respective 260i ... 260L converters, each equipped with its own 270i ... 270L transform calculation module. It is this second solution that is shown in the figure. These converters operating in parallel have a low acquisition rate in the example considered, 20 MSps, where 1 MSps = 106 samples per second) and a modest resolution (for example 8 bits), they are therefore small and have low power consumption, which makes it possible to multiply their number. It is also possible to combine the approaches, by using several variable delay lines in parallel.
[0103] An analog-digital converter clocked by a trigger pulse time-shifted by a delay Tg«te acquires the echo signal - filtered by the low-pass filter 250' - at times
[0104] t (17) Ljn UTCATE+ts{n}+yr
[0105] It should be noted that the low-pass filter 250' has a cut-off frequency much higher than that of the filter 250 of the embodiment of [Fig.4], because it operates on a radio frequency signal.
[0106] The analog-to-digital converter has a wide analog bandwidth up to the microwave carrier (e.g., 8GHz) but its sampling rate is much lower (of the order of fpRpo, e.g., 20 MHz), which largely defines its energy consumption and feasibility.
[0107] Equation (17) defines a sub-sampling of the microwave echo signal, which makes it possible to extract the component corresponding to a “rsate” time of flight, as illustrated in [Fig.9A] and [Fig.9B]. In [Fig.9B], in particular, the groups of three echo pulses corresponding to the three targets are clearly distinguished.
[0108] The embodiment of [Fig. 10] combines frequency conversion by means of the 220 mixer and frequency multiplier, and direct detection by sampling using 260i ... 260L converters clocked by trigger pulses shifted by 290i .. .290L delay lines. This avoids the use of a low-pass filter.
[0109] [Fig. 11A] [Fig.llB] illustrate the sampling of the intermediate frequency signal in accordance with this embodiment of the invention. [Fig.llC] shows the Fourier transform of the sampled signals with three offsets corresponding to the times of flight for targets at 1, 5 and 12 meters.
[0110] The invention has been described with reference to particular embodiments, but variants are possible. For example, the generation of two components I and Q of the signals is not essential (but advantageous, because it makes it possible to reduce the acquisition rate). Similarly, the frequency ranges indicated are only given as a non-limiting example.
[0111] The invention is particularly suitable for producing “on-chip” radars in which the radar device (or at least the transmission channel and / or the acquisition channel) is monolithically integrated, but it is not limited to this scenario. References
[0112] (Antide 2020) E. Antide, M. Zarudniev, O. Michel and M. Pelissier, "Comparative Study of Radar Architectures for Human Vital Signs Measurement," 2020 IEEE Radar Conference (RadarConf20), Florence, Italy, 2020, pp. 1-6, doi: 10.1109 / RadarConf2043947.2020.9266569.
[0113] (Liu 209) Y.-H. Liu et al., "9.3 A680 qW Burst-Chirp UWB Radar Transceiver for Vital Signs and Occupancy Sensing up to 15m Distance," 2019 IEEE International Solid- State Circuits Conférence - (ISSCC), San Francisco, CA, USA, 2019, pp. 166-168, doi: 10.1109 / ISSCC.2019.8662536.
[0114] (Andersen 2017) N. Andersen et al., "A 118-mW Pulse-Based Radar SoC in 55-nm CMOS for Non-Contact Human Vital Signs Détection," in IEEE Journal of Solid-State Circuits, vol. 52, no. 12, pp. 3421-3433, Dec. 2017, doi: 10.1109 / JSSC.2017.2764051.
[0115] (Siligaris 2023) Siligaris, A., Bossuet, A., Barrau, L., Antide, E., Gonzalez-Jimenez, J. L., Dehos, C., & Zarudniev, M. (2023, September). Fast Chirping 58-64 GHz FMCW Radar Transceiver using D-PROT Multiplier in CMOS 45nm RFSOI for Vital Signs Détection. In ESSC1RC 2023-IEEE 49th European Solid State Circuits Conférence (ESSCIRC) (pp. 505-508). IEEE.
Claims
Claims
1. Device for generating a radar signal comprising: - a generator (110) of periodically repeated series of trigger pulses (sPRF), the pulses of the same series having a linearly variable time spacing; and - an oscillator (120) configured to receive said trigger pulses as input and to generate a train of periodic oscillations in correspondence with each said trigger pulse; characterized in that - said oscillator (120) has a variable frequency as a function of a control signal (Vtune); and in that - the device also comprises a generator (112) of said control signal, adapted to vary linearly in time the frequency of the oscillator (120) from one train of periodic oscillations to another for trains of periodic oscillations triggered by trigger pulses belonging to the same series.
2. Device according to claim 1 wherein the oscillator (120) and the generator (112) of said control signal are configured so that the average frequency of the oscillations of said periodic oscillation trains is a multiple, by a factor K>1, of an average repetition frequency of the trigger pulses.
3. Device according to claim 2 wherein said generator (110) of series of trigger pulses comprises a first signal generator (112) and a trigger pulse generator (113), the first signal generator (112) being configured to generate a first signal consisting of periodic repetitions of trains of oscillations linearly modulated in frequency, the trigger signal generator being configured to receive as input said first signal and to generate said trigger pulses synchronously with the oscillations of said first signal.
4. Device according to claim 3 wherein the oscillator (120) and the generator of said control signal (112) are configured so that the frequency of the train of periodic oscillations generated in correspondence of an nth trigger pulse of a said series is given by: fc(n) =K(fPRF0±^t5(n) ) where fpRFO is the frequency of the oscillations of the first signal at the beginning of each train of frequency modulated oscillations, bprf the frequency modulation rate of said oscillations and ts(n) an instant of generation of said nth trigger pulse, with ts(n = 1) = 0-
5. Device according to one of claims 3 or 4 wherein said first signal generator (112) is configured so that the frequency modulation of the oscillations of said first signal is driven by said control signal.
6. Device according to one of claims 2 to 5 in which the factor K is greater than or equal to 10 and preferably between 100 and 1000.
7. Device according to one of the preceding claims also comprising a pulse shaper (130) for modifying the time profile of said periodic oscillation trains.
8. Device according to one of the preceding claims in which said oscillator (120) is a microwave oscillator.
9. Device according to one of the preceding claims also comprising a device (150) for applying phase interference to said trains of periodic oscillations.
10. Radar device comprising: - a transmission channel (1) comprising a device for generating a radar signal according to one of the preceding claims; and - a reception channel (2) configured to receive echoes of said radar signal and to demodulate them synchronously with their generation so as to extract time-of-flight information therefrom.
11. Device according to claim 10 in which the reception path (2) comprises an amplifier (240) equipped with an automatic gain adjustment device (245) to compensate for variations in intensity of the received echoes.
12. Device according to one of claims 10 and 11 in which: - the device for generating a radar signal of the transmission channel (1) is a device according to one of claims 3 to 6, or one of claims 7 to 9 when it depends on claim 3, comprising said first signal generator (112) configured to generate said first signal consisting of periodic repetitions of trains of oscillations modulated linearly in frequency; and - the reception channel comprises: - a frequency multiplier (230) configured to receive as input said first signal and multiply its frequency by said factor K; and - a mixer (220) configured to receive said radar echoes as input and demodulate them by mixing with a signal from said frequency multiplier (230) in order to obtain a demodulated signal; - a low-pass filter (250) configured to attenuate components of said demodulated signal at frequencies that are multiples of said average repetition frequency of the trigger pulses; and - an analog-to-digital converter (260, 260i, 260L) having an acquisition rate adapted to convert a signal at said average repetition frequency.
13. Device according to one of claims 10 and 11 in which: - the device for generating a radar signal of the transmission channel (1) is a device according to claim 2; and - the reception channel (2) comprises at least one analog-digital converter (260i, 260l) having an analog bandwidth of width at least equal to the spectral width of said received echoes but an acquisition rate adapted to convert a signal at said average repetition frequency of the trigger pulses, said converter being synchronized with said trigger pulses through a delay line (290i, 290L).
14. Device according to one of claims 10 and 11 in which: - the device for generating a radar signal of the transmission channel (1) is a device according to one of claims 3 to 6, or one of claims 7 to 9 when it depends on claim 3, comprising said first signal generator (112) configured to generate said first signal consisting of periodic repetitions of trains of oscillations modulated linearly in frequency; and - the reception channel (2) comprises: - a frequency multiplier (230) configured to receive said first signal as input and multiply its frequency by said K factor; and - a mixer (220) configured to receive said radar echoes as input and demodulate them by mixing with a signal from said frequency multiplier (230) in order to obtain a demodulated signal; and - at least one analog-digital converter (260i, 260L) having an analog bandwidth of width at least equal to the spectral width of said received echoes but an acquisition rate adapted to convert a signal at said average repetition frequency of the trigger pulses, said converter being syn- timed with said trigger pulses through a delay line (290i, 290L).
15. Device according to one of claims 13 or 14 in which said delay line has a variable delay.
16. Device according to one of claims 13 or 14 in which the reception path comprises a plurality of said analog-digital converters (260i, 260L) synchronized with said trigger pulses through respective delay lines introducing different delays.
17. Device according to one of claims 10 to 16 in which the device for generating a radar signal of the transmission path (1) comprises a device for applying phase jamming (150) and the transmission path comprises a phase descrambling device (150).
18. A method of generating a radar signal comprising generating periodically repeated series of periodic oscillation trains, the oscillation trains in a series having a linearly variable time spacing; the frequency of the oscillations varying linearly from one periodic oscillation train to another in a series.
Citation Information
Patent Citations
Pulse radar with variable repetition frequency and carrier frequency transmitter or receiver system
FR2738352A1
RADAR DETECTION DEVICE
FR3116613A1
Cited By
Highly-integrated V-waveband broadband multichannel multimode detector front-end chip
CN120567050A