METHOD AND DEVICE FOR DETECTING INCIDENT LASER RADIATION ON A SPACECRAFT
20200271790 · 2020-08-27
Inventors
Cpc classification
G01S7/495
PHYSICS
G01S7/4804
PHYSICS
International classification
Abstract
A method for detecting incident laser radiation on a spacecraft, whereby incident radiation is detected separately in several discrete spectral ranges, the radiation recorded in the spectral ranges is converted into further processable electrical signals, and the signals are evaluated together. A device for detecting incident laser radiation on a spacecraft is configured to perform such a method.
Claims
1-21. (canceled)
22. A method for detecting incident laser radiation on a spacecraft, the method comprising: separately recording the incident radiation in several discrete spectral ranges; converting the radiation recorded in the spectral ranges into further processable electrical signals; and evaluating the electrical signals together.
23. The method of claim 22, further comprising: detecting the incident radiation in at least one narrowband and/or in at least one broadband spectral range.
24. The method of claim 23, further comprising: tuning the at least one narrowband spectral range to a specific laser frequency.
25. The method of claim 24, wherein the at least one narrowband spectral range is tuned to a wavelength of at least one of 532 nm, 1055 nm, 1064 nm, 1070 nm, 1315 nm or 1550 nm.
26. The method of claim 23, further comprising: tuning the at least one broadband spectral range so that it covers the optical spectrum.
27. The method of claim 26, wherein the at least one broadband spectral range is tuned to cover a wavelength range from approximately 400 nm to approximately 1700 nm.
28. The method of claim 22, further comprising at least one of: centrally inputting the electrical signals; processing the electrical signals; preparing the electrical signals; or making the electrical signals available.
29. The method of claim 22, further comprising at least one of: marking the measurement times using a synchronization signal; or making the measurement times available using a synchronization signal.
30. The method of claim 22, further comprising: adapting a measuring rate for characterizing a pulsed laser radiation.
31. The method of claim 22, further comprising: separately compensation-filtering the incident radiation in the spectral ranges.
32. The method of claim 22, further comprising: imaging the incident radiation in the spectral ranges on a plurality of pixels of a pixel matrix detector.
33. The method of claim 22, further comprising at least one of: detecting a pulsed laser radiation using an asynchronous laser pulse detection; or detecting continuous laser radiation in an imaging mode.
34. The method of claim 22, further comprising: distinguishing space-specific stray light sources.
35. The method of claim 22, further comprising: regulating a thermal household with the help of radiators.
36. The method of claim 22, wherein the incident radiation is separated in the spectral ranges using a beam splitter module so the incident radiation can be separately detected.
37. The method of claim 22, further comprising: inputting the incident radiation in parallel so that the radiation can be recorded separately in the spectral ranges.
38. A device for detecting incident laser radiation on a spacecraft, wherein the device is configured to performing a method according to claim 22.
39. The device of claim 38, comprising: a single optical module with a beam splitter module configured to separate the incident radiation into the spectral ranges; at least one optical sensor for each spectral range; and a single evaluation device configured for the joint evaluation of the electrical signals.
40. The device of claim 39, wherein the beam splitter module comprises a first beam splitter and two second beam splitters.
41. The device claim 38, comprising: a plurality of separate optical modules configured for the parallel supply of the incident radiation; at least one optical sensor for each spectral range; and a single evaluation device configured for the joint evaluation of the signals.
42. The device of claim 41, wherein the plurality of optical modules are constructed identically.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0033] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate exemplary embodiments of the invention and, together with a general description of the invention given above, and the detailed description given below, serve to explain the principles of the invention.
[0034]
[0035]
[0036]
[0037]
[0038]
DETAILED DESCRIPTION
[0039]
[0040]
[0041] The channels 210, 212, 214, 216 are matched to the spectral range. Two channels 210, 212 on the broadband spectral ranges for covering the optical spectrum with a wavelength range from approx. 400 nm to approx. 1700 nm and two channels 214, 216 on the narrowband spectral ranges for detecting laser radiation with the wavelengths 532 nm, 1055 nm, 1064 nm, 1070 nm, 1315 nm and/or 1550 nm are matched. In the channels 210, 212, 214, 216, the divided radiation is supplied via the bandpass filters 218, 220, 222, 224 to the sensors 226, 228, 230, 232 for a separate detection in the spectral ranges. The bandpass filters 218, 220, 222, 224 each have spectral and/or transmission filters for compensation purposes in order to use sensors 226, 228, 230, 232 of the same type. The sensors 226, 228, 230, 232 serve to convert the radiation detected in the spectral ranges into electrical signals that can be processed further. VIS-SWIR InGaAs detectors are used as sensors 226, 228, 230, 232, for example, which cover a required wavelength range with a local resolution of 12801024 picture elements and for which each 22 macro-pixel has a special circuit for the detection of pulsed laser radiation, which detects very fast light signal changes (ALPD function). Control and readout electronics 234, 236, 238, 240 are connected downstream from each of the sensors 226, 228, 230, 232.
[0042] The laser detector 200 comprises a single evaluation device 242 for the joint evaluation of the signals from the sensors 226, 228, 230, 232, a signal interface 244 for the signal output and a power supply 246.
[0043]
[0044]
[0045] The four optical modules 302 with the light diaphragms 304, 306, 308, 310 and the optics 312, 314, 316, 318, the four bandpass filters 320, 322, 324, 326, the four sensors 328, 330, 332, 334 and the four control and readout electronics 336, 338, 340, 342 form four channels 344, 346, 348, 350 for the incident radiation. The incident radiation comprises radiation from the electromagnetic spectrum, in particular non-ionizing radiation, in particular optical radiation, in particular infrared radiation, visible radiation and/or ultraviolet radiation, for example sunlight, moonlight and/or laser radiation to be detected. The channels 344, 346, 348, 350 are tuned for different spectral ranges. Two channels 344, 346 on the broadband spectral ranges for covering the optical spectrum with a wavelength range from approx. 400 nm to approx. 1700 nm and two channels 348, 350 on the narrowband spectral ranges for detecting laser radiation with the wavelengths 532 nm, 1055 nm, 1064 nm, 1070 nm, 1315 nm and/or 1550 nm are matched.
[0046] The laser detector 300 comprises a single evaluation device 352 for the joint evaluation of the signals from the sensors 328, 330, 332, 334, a signal interface 354 for the signal output and a power supply 356.
[0047]
[0048] The word can refers in particular to optional features of the invention. Accordingly, there are further developments and/or exemplary embodiments of the invention as well which additionally or alternatively comprise the respective feature or the respective features.
[0049] If necessary, isolated features can also be selected from the combinations of features disclosed and can be used in combination with other features to delimit the subject matter of the claim, while resolving a structural and/or functional relationship that may exist between the features.
[0050] While the present invention has been illustrated by a description of various embodiments, and while these embodiments have been described in considerable detail, it is not intended to restrict or in any way limit the scope of the appended claims to such detail. The various features shown and described herein may be used alone or in any combination. Additional advantages and modifications will readily appear to those skilled in the art. The invention in its broader aspects is therefore not limited to the specific details, representative apparatus and method, and illustrative example shown and described. Accordingly, departures may be made from such details without departing from the spirit and scope of the general inventive concept.
REFERENCE NUMERALS
[0051] 100 Laser detector field of view [0052] 102 Earth [0053] 104 Nadir [0054] 106 Direction of flight [0055] 200 Laser detector [0056] 202 Optical module [0057] 204 Light shield [0058] 206 Optics [0059] 208 Beam splitter module [0060] 210 Channel [0061] 212 Channel [0062] 214 Channel [0063] 216 Channel [0064] 218 Bandpass filter [0065] 220 Bandpass filter [0066] 222 Bandpass filter [0067] 224 Bandpass filter [0068] 226 Sensor [0069] 228 Sensor [0070] 230 Sensor [0071] 232 Sensor [0072] 234 Readout electronics [0073] 236 Readout electronics [0074] 238 Readout electronics [0075] 240 Readout electronics [0076] 242 Evaluation device [0077] 244 Signal interface [0078] 246 Power supply [0079] 248 Outer casing [0080] 300 Device, laser detector [0081] 302 Optical module [0082] 304 Light diaphragm [0083] 306 Light diaphragm [0084] 308 Light diaphragm [0085] 310 Light diaphragm [0086] 312 Optics [0087] 314 Optics [0088] 316 Optics [0089] 318 Optics [0090] 320 Bandpass filter [0091] 322 Bandpass filter [0092] 324 Bandpass filter [0093] 326 Bandpass filter [0094] 328 Sensor [0095] 330 Sensor [0096] 332 Sensor [0097] 334 Sensor [0098] 336 Control and readout electronics [0099] 338 Control and readout electronics [0100] 340 Control and readout electronics [0101] 342 Control and readout electronics [0102] 344 Channel [0103] 346 Channel [0104] 348 Channel [0105] 350 Channel [0106] 352 Evaluation device [0107] 354 Signal interface [0108] 356 Power supply [0109] 358 Outer casing