The invention relates to an apparatus for ascertainment of a distance to an object. The apparatus can be used to ascertain distances to both moving and stationary objects and, in particular, to ascertain the topography or form of a spatially extended three-dimensional object.
For the purposes of measuring the distance to objects by optical means, a measurement principle also referred to as LIDAR is known, amongst others, in which an optical signal whose frequency changes in time is emitted to the relevant object and evaluated after back-reflection has taken place at the object.
An evaluation device (not illustrated) is used to evaluate the detector signal supplied by the detector 460 relative to the measuring apparatus or the light source 410, with the difference frequency 431 between the measurement signal 421 and reference signal 422, said difference frequency being captured at a certain time and illustrated in the diagram in
By determining characteristic parameters of the time curve of the difference frequency, in particular the time curve of the instantaneous frequency, it is possible to ascertain the relative acceleration between the object 440 and the measuring apparatus or the light source 410, in addition to the relative speed. In this context, reference is made to the patent application DE 10 2018 201 735.2, filed on Feb. 5, 2018.
In practice, there is a need to realize a distance measurement that is as accurate as possible with a high scan rate (i.e., a high speed of scanning individual regions of the object) even in the case of objects (possibly even moving objects) that are situated at relatively large distances, which could be vehicles in traffic, for example. With regard to the prior art, reference is made purely by way of example to US 2016/0299228 A1.
Against the aforementioned background, it is an object of the present invention to provide an apparatus for scanning ascertainment of a distance to an object, which facilitates a distance measurement at a high scan rate and with a limitation of the equipment outlay required to this end, even for an object situated at a comparatively large distance (e.g., of several 100 m).
This object is achieved by way of the features of independent patent claim 1.
An apparatus according to the invention for scanning ascertainment of a distance to an object comprises:
In an apparatus for scanning ascertainment of a distance to an object, proceeding from the principle described on the basis of
In turn, this renders it possible to distinguish the relevant different angles, set by the deflection device according to the invention, on a detector arrangement during the subsequent separation of the different frequencies or frequency ranges in space by way of a suitable spectral element, as will still be explained in more detail below.
Here, an assignment between the frequencies and frequency ranges, angles and locations is achieved overall on the detector arrangement on account of, firstly, the assignment of different frequencies or frequency ranges of the measurement signal to different angles, implemented by way of the deflection device, and on account of, secondly, the assignment of different frequencies or frequency ranges to different locations in space, generated by the aforementioned spectral element. In turn, this assignment can be used to determine the corresponding object distances by way of the calculation of the difference frequency with respect to the frequency of the reference signal, which is not reflected at the object. For moving objects, this assignment can be used to determine the corresponding object distances by way of determining characteristic parameters of the time curve of the difference frequency, in particular of the time curve of the instantaneous frequency.
As a result, this allows a significant increase to be obtained in the scan rate when ascertaining the distance of even faraway objects (e.g., objects situated at a distance of several hundred meters). Here, the scan rate is understood to mean the number of scanned pixels per second (corresponding to the reciprocal of the time required to scan a pixel).
According to one embodiment, a scan rate obtainable by the apparatus when capturing object distances of up to 100 m is increased by a factor of at least two, in particular by a factor of at least three, further particularly by a factor of at least four, in relation to an analogous apparatus without the change of the angle implemented during a period with a monotonic time dependence of the frequency of the optical signal.
Expressed differently, according to one embodiment, a scan rate obtainable by the apparatus according to the invention when capturing object distances of up to 100 m is increased by a factor of at least two, in particular by a factor of at least three, further particularly by a factor of at least four, in relation to a second scan rate, this second scan rate being obtainable by an alternative apparatus for scanning ascertainment of a distance to an object, wherein this alternative apparatus comprises a light source for emitting an optical signal with a time-varying frequency and an evaluation device for ascertaining a distance to the object on the basis of a measurement signal that arose from the optical signal and was reflected at the object and on the basis of a reference signal that was not reflected at the object, wherein, in this alternative apparatus, the angle at which the measurement signal is steered to the object is constant during a period with a monotonic time dependence of the frequency of the optical signal.
According to the invention, the scan rate is increased by virtue of the fact that (as illustrated schematically in
Here, the invention takes account of, in particular, the problem that the maximum scan rate realizable when carrying out the scanning process is limited by the light or signal time of flight (TOF) in conventional approaches. Compared to such conventional approaches, the method according to the invention is advantageous in that a substantially faster scanning process can be realized than in a time-of-flight- or TOF-limited method since, as a consequence of the aforementioned inventive assignment “Frequency of the measurement signal Angle of the beam steered on to the object Location on the object (pixel)”, the dwell time of a respective measurement spot on the object to be scanned can be chosen without taking account of the time of flight of the signal and, in particular, can be chosen to be substantially shorter than this time of flight. Expressed differently, on account of the circumstances that the measurement spots or pixels scanned on the object during the scanning process according to the invention are ultimately encoded by different frequencies of the measurement signal, which, in turn, are decoded on the detector side (within the meaning of “demultiplexing”) or assigned to the individual locations on the object (pixel), the time-of-flight- or TOF-limit is lifted, with the consequence that the scan rate ultimately is only restricted by electronics (specifically, by the chirp rate able to be set by the light source and by the frequency resolution obtainable on the detector side of the difference frequencies to be measured in each case).
Objects measured in respect of their distance from the apparatus according to the invention within the scope of the invention can be, in a purely exemplary manner (and without the invention being restricted thereto), robot components such as robot arms or else objects that are relevant in road traffic or in the automotive sector (e.g. other vehicles). In addition to ascertaining the distance, the speed, for example, can also be ascertained (as known per se from US 2016/0299228 A1, for example).
According to one embodiment, the apparatus further comprises an element for frequency-selective spatial division of the measurement signal reflected by the object.
According to one embodiment, this element for frequency-selective spatial division of the measurement signal reflected by the object comprises an AWG (=array waveguide grating). The use of such an AWG is particularly advantageous to the extent that a (wafer-)integrated and hence particularly compact structure is facilitated.
However, the invention is not restricted to the realization of the frequency-selective spatial division by way of an AWG. In further embodiments, use can also be made of a different element bringing about the frequency-selective spatial division or a different dispersive element, for example a prism, a diffraction grating or Bragg grating or a spatial light modulator (e.g., an acoustic or electro-optic modulator).
According to one embodiment, the apparatus comprises a coupler array with a plurality of mutually independently operable coupling elements for respectively separate merging of partial signals, which were generated by the frequency-selective spatial division of the measurement signal reflected by the object, with the reference signal.
According to one embodiment, the apparatus comprises a detector arrangement with a plurality of mutually independently operable detector elements for generating detector signals, wherein these detector signals are each characteristic for the difference frequency between the frequency of the partial signal generated by the frequency-selective spatial division of the measurement signal reflected by the object and the frequency of the reference signal.
According to one embodiment, mutually different detector elements of this detector arrangement are assigned to different angles set by the deflection device.
According to one embodiment, the deflection device comprises a rotatable mirror.
According to one embodiment, the apparatus is designed to capture object distances of more than 30 m, in particular of more than 100 m, further particularly of more than 200 m.
According to one embodiment, the light source is designed to emit the optical signal with a time-varying frequency over a tuning range of more than 100 GHz, in particular of more than 400 GHz, further particularly of more than 1000 GHz.
According to one embodiment, a scan rate of at least 0.6 MHz, in particular of at least 0.8 MHz, further particularly of at least 1 MHz, is obtainable when capturing object distances of up to 100 m with the apparatus.
According to one embodiment, a scan rate of at least 0.3 MHz, in particular of at least 0.4 MHz, further particularly of at least 0.5 MHz, is obtainable when capturing object distances of up to 200 m with the apparatus.
Further configurations of the invention can be gathered from the description and the dependent claims.
The invention will be explained in greater detail below on the basis of an embodiment that is illustrated in the accompanying figures.
Further features and advantages of the invention will become apparent from the following description of exemplary embodiments with reference to the drawings, in which:
Below, structure and functionality of an embodiment of an apparatus according to the invention are described with reference to the schematic illustration of
Initially proceeding from the conventional concept already described on the basis of
Even though embodiments of the invention can also use periods with opposite time derivatives of the frequency, in a manner analogous to
In a manner likewise analogous to the conventional concept of
In a manner analogous to
Following the reflection at the object 140, the signal path back extends through the optical circulator 120 to an element 145, designed as an AWG (=“array waveguide grating”) in the embodiment, for the frequency-selective spatial division of the measurement signal reflected by the object 140. On account of the frequency-selective spatial division by the element 145, the different frequencies or frequency ranges are spatially separated from one another.
In particular, the coupler array 150 can comprise an array of optical waveguides (e.g., optical fibers), wherein each of these waveguides can be coupled to a detector element (e.g., configured as a photodiode) of a detector arrangement, which is likewise configured as an array. The above-described partial signals generated by the frequency-selective spatial division of the measurement signal 121 are merged in the coupler array 150 with the reference signal 122, as a consequence of which the detector signals generated by the detector arrangement (not illustrated in
The above-described functional principle of the invention has as a consequence, as explained below on the basis of a comparison calculation on the basis of exemplary values and as illustrated in
Here, the invention makes use of the fact that the measurement spots or pixels scanned on the object 140 during the scanning process according to the invention are ultimately encoded by different frequencies of the measurement signal, which, in turn, are decoded on the detector side (within the meaning of “demultiplexing”) or assigned to the individual locations (pixels) on the object 140 such that the timeof-flight- or TOF-limit is lifted. As a consequence, the scan rate ultimately is only restricted by electronics (specifically, by the chirp rate able to be set by the light source and by the frequency resolution obtainable on the detector side of the difference frequencies to be measured in each case), whereas a time overlap between measurement signal and reference signal, required in conventional approaches, can be dispensed with. Expressed differently, what is achieved according to the invention is that the obtainable scan rate approaches the electronic limit (i.e., the limit taking account of the chirp rate able to be set by the light source 110 and the frequency resolution obtainable on the detector side of the difference frequencies to be measured in each case).
The following treatment for comparing scan rates obtainable according to the invention with scan rates obtainable conventionally is based on the following exemplary values according to Table 1:
Chirp rates able to be set by the light source 110 can typically range between (1013-1016) Hz/s, in particular (1014-1015) Hz/s, as a matter of principle. In the case of a conventional, time-of-flight- or TOF-limited scanning method, the minimum achievable measurement time per pixel (chirp duration CHD) and hence the obtainable scan rate SR are restricted by the required temporal overlap between the measurement signal and reference signal. This temporal overlap arises from the product of the time of flight TOF (which, in the case of an exemplary object distance of L=150 m and the speed of light c=3*108 m/s, emerges as TOF=2*150 m/(3*108 m/s)=1 μs) and an electronics-dependent factor k, for which a typical value of k=5.6 is used in exemplary fashion here.
In both scenarios, the scan rate SR1,2 respectively emerges as the reciprocal of the chirp duration CHD1 and CHD2. Said chirp duration CHD1,2 now adopts different values depending on whether the first scenario of the conventionally given time-of-flight-limit of the chirp duration is present or whether this chirp duration is only limited by electronics according to the invention in the second scenario:
In the conventionally given first scenario with the TOF-limit, the following applies to the chirp duration per pixel with the aforementioned, electronics-dependent factor k: CHD1=2*k*(L/c). Using the aforementioned values, a value of CHD1=2*k*(L/c)=2*5.6*200 m/(3*108 m/s)≅7.46610−6 s arises for the chirp duration per pixel, from which a value of SR1=1/CHD1≅0.134 MHz follows for the scan rate in the first scenario.
By contrast, in the second, inventive scenario where the scan rate is only limited by the electronics CHR2=fb,max*c/(2*L) applies, from which the following follows for the chirp duration per pixel:
CHD2=CHSres/CHR2=c*2*L/(2*Res*fb,max*c)=L/(Res*fb,max).
Using the aforementioned values, a value of CHD2=L/(Res*fb,max)=200 m/(0.1 m*109 Hz)=2*10−6 s arises for the chirp duration per pixel, from which a value of SR2=1/CHD2≅5*105 Hz=0.5 MHz follows for the scan rate in the second scenario according to the invention. It should be observed that in the case of an increase in the maximum detectable difference frequency (beat frequency) fb,max beyond the value of 2*109 Hz specified in the calculation example, which may be possible in future applications, the chirp duration can be reduced even further according to the invention and hence the scan rate can be increased even more.
The tuning range CHS to be traversed by the light source 110 for complete coverage of an angular range to be scanned in the x-direction of FoVx=120° with an angular resolution of A=0.1° emerges as follows: For this angular range to be scanned, the number of pixels to be scanned equals the value of FoVx/A. The required bandwidth CHS, corresponding to the tuning range, for covering the aforementioned angular range emerges as CHS=2*CHSres*FoVx/A (with the factor of 2 being introduced here in order to ensure that the total chirp size CHS is sufficient for all potential object distances or pixels up to the maximum distance to be captured). Using the values assumed in the example, the following arises for the tuning range: CHS=2*c*FoVx/(2*Res*A)=(2*3*108 m/s*120°)/(2*0.1m*0.1°)=3.6*1012 Hz=3.6 THz. In relation to the wavelength, this tuning range emerges as Δλ=λ02*(CHS/c)=(1.55*10−6 m)2*3.6*1012 Hz/(3*108 m/s)≅28.8 nm.
On the basis of the aforementioned calculation and proceeding from the aforementioned values, the diagrams of
Even though the invention has been described on the basis of specific embodiments, numerous variations and alternative embodiments will be apparent to the person skilled in the art, for example through combination and/or exchange of features of individual embodiments. Accordingly, it goes without saying for the person skilled in the art that such variations and alternative embodiments are concomitantly encompassed by the present invention, and the scope of the invention is restricted only within the meaning of the appended patent claims and the equivalents thereof.
Number | Date | Country | Kind |
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10 2018 203 316.1 | Mar 2018 | DE | national |
This application is a continuation application of International application No. PCT/EP2019/055494, filed Mar. 6, 2019, which claims priority to German patent application No. 10 2018 203 316.1 filed Mar. 6, 2018. Each of these applications is incorporated by reference herein in its entirety.
Number | Date | Country | |
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Parent | PCT/EP2019/055494 | Mar 2019 | US |
Child | 17010726 | US |