CN109036009B - Space remote sensing imaging semi-physical simulation platform based on sand table inclined mode - Google Patents

Space remote sensing imaging semi-physical simulation platform based on sand table inclined mode Download PDF

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CN109036009B
CN109036009B CN201810737740.1A CN201810737740A CN109036009B CN 109036009 B CN109036009 B CN 109036009B CN 201810737740 A CN201810737740 A CN 201810737740A CN 109036009 B CN109036009 B CN 109036009B
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sand table
solar simulator
gantry
remote sensing
reflecting mirror
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CN109036009A (en
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余晓刚
赵俊保
时春雨
周春平
朱莉珏
马璐
刘艳博
马楠
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Beijing Institute of Remote Sensing Information
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    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09BEDUCATIONAL OR DEMONSTRATION APPLIANCES; APPLIANCES FOR TEACHING, OR COMMUNICATING WITH, THE BLIND, DEAF OR MUTE; MODELS; PLANETARIA; GLOBES; MAPS; DIAGRAMS
    • G09B23/00Models for scientific, medical, or mathematical purposes, e.g. full-sized devices for demonstration purposes
    • G09B23/06Models for scientific, medical, or mathematical purposes, e.g. full-sized devices for demonstration purposes for physics
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09BEDUCATIONAL OR DEMONSTRATION APPLIANCES; APPLIANCES FOR TEACHING, OR COMMUNICATING WITH, THE BLIND, DEAF OR MUTE; MODELS; PLANETARIA; GLOBES; MAPS; DIAGRAMS
    • G09B23/00Models for scientific, medical, or mathematical purposes, e.g. full-sized devices for demonstration purposes
    • G09B23/06Models for scientific, medical, or mathematical purposes, e.g. full-sized devices for demonstration purposes for physics
    • G09B23/22Models for scientific, medical, or mathematical purposes, e.g. full-sized devices for demonstration purposes for physics for optics
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
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    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
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Abstract

The invention provides a space remote sensing imaging semi-physical simulation platform based on a sand table oblique mode, which comprises a motion system, a camera load, a solar simulator system and a sand table, wherein the motion system comprises an inner gantry, an outer gantry and a track which is respectively connected with the inner gantry and the outer gantry in a sliding manner; the solar simulator system comprises a solar simulator, a first sunlight reflector and a second sunlight reflector, wherein the first sunlight reflector is arranged right above the solar simulator, the second sunlight reflector is connected with the top of the inner gantry, the solar simulator and a track are placed on the ground, a sand table is obliquely placed on the ground, the track is arranged between the solar simulator and the sand table, and light emitted by the solar simulator is reflected to the sand table through the first sunlight reflector and the second sunlight reflector; the camera load is arranged at the top end of the outer gantry, so that imaging of the sand table is realized. The embodiment of the invention solves the problem of insufficient deployment space of the physical simulation system and reduces the overall construction difficulty.

Description

Space remote sensing imaging semi-physical simulation platform based on sand table inclined mode
Technical Field
The invention relates to the technical field of satellite remote sensing, in particular to a space remote sensing imaging semi-physical simulation platform based on a sand table oblique mode.
Background
Remote sensing refers to non-contact, remote detection techniques. Generally refers to the detection of the radiation and reflection characteristics of electromagnetic waves from an object using sensors/remote sensors. The remote sensing is a science and technology that detects the object ground object by using an electromagnetic wave sensitive instrument such as a remote sensor under the condition of being far away from the object and a non-contact object, acquires the reflected, radiated or scattered electromagnetic wave information (such as information of an electric field, a magnetic field, electromagnetic waves, seismic waves and the like), and extracts, judges, processes, analyzes and applies the electromagnetic wave information.
The semi-physical simulation is to perform dynamic simulation on each imaging link under laboratory conditions, combine partial computer simulation results, finally obtain remote sensing simulation images, test the performance of the remote sensing system through a near-real controllable simulation process, and give out evaluation results.
When an imaging experiment is carried out by using a remote sensing satellite, the imaging experiment is easily influenced by external environments such as orbit, weather and the like, and the comprehensive research data is difficult to acquire, so that the experimental data needs to be supplemented by means of a simulation experiment. At present, when a remote sensing system is subjected to semi-physical simulation, a large site space is often required due to requirements of experimental equipment and experimental effects. For example, solar simulators in remote sensing systems are relatively bulky and are not suitable for suspension and movement; the full-dimension solar simulator, the position relation between the imaging load and the test target, and the like need enough movable space. Therefore, the design deployment is carried out in a smaller space, and the overall construction difficulty is higher.
Disclosure of Invention
In view of the above problems, the present invention provides a space remote sensing imaging semi-physical simulation platform based on a sand table oblique mode, which overcomes the above problems or at least partially solves the above problems, so as to solve the problem that the existing simulation system is insufficient in deployment space, and reduce the overall construction difficulty.
The invention provides a space remote sensing imaging semi-physical simulation platform based on a sand table oblique mode, which comprises a motion system, a camera load, a solar simulator system and a sand table;
the motion system comprises an inner gantry, an outer gantry arranged outside the inner gantry and a track which is respectively connected with the inner gantry and the outer gantry in a sliding manner, wherein the inner gantry and the outer gantry move on the track;
the solar simulator system comprises a solar simulator, a first sunlight reflecting mirror and a second sunlight reflecting mirror, wherein the first sunlight reflecting mirror is vertically arranged right above the solar simulator, the second sunlight reflecting mirror is connected with the top of the inner gantry, the solar simulator is placed on the ground, the sand table is obliquely placed on the ground, the track is arranged between the solar simulator and the sand table, and light emitted by the solar simulator is reflected onto the sand table through the first sunlight reflecting mirror and the second sunlight reflecting mirror.
The camera load is disposed at a top end of the outer gantry, and a distance of the camera load relative to the solar simulator and the sand table is adjusted as the outer gantry moves on the track to image the sand table.
The platform further comprises a first triaxial holder and a second triaxial holder, the second sunlight reflecting mirror is connected with the outer gantry through the first triaxial holder, the camera load is connected with the inner gantry through the second triaxial holder, the camera load vertically and/or horizontally moves through the inner gantry and the outer gantry, and the first triaxial holder and the second triaxial holder move in pitching and/or rotating mode, so that multi-angle imaging of the sand table is achieved.
The platform further comprises a sand table adjusting device, and the sand table adjusting device is used for adjusting the inclination angle of the sand table.
The camera load comprises infrared, hyperspectral and micro-light camera loads so as to simulate different remote sensing imaging conditions.
The technical scheme provided by the embodiment of the invention has the following technical effects or advantages:
according to the embodiment, the relationship of vertical imaging of the camera load in remote sensing at the position of the understar point is replaced by horizontal imaging in the indoor physical simulation platform, so that the solar simulator does not need to be erected in the air, the construction difficulty is reduced, the problems that the imaging distance is too short and the breadth is too narrow under the condition that the floor height is limited are solved, and further the remote sensing imaging experiment and verification of full color, low light level and the like can be carried out in indoor supporting visible light characteristic simulation and target low light level characteristic simulation research.
The foregoing description is only an overview of the present invention, and is intended to be implemented in accordance with the teachings of the present invention in order that the same may be more clearly understood and to make the same and other objects, features and advantages of the present invention more readily apparent.
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Various other advantages and benefits will become apparent to those of ordinary skill in the art upon reading the following detailed description of the preferred embodiments. The drawings are only for purposes of illustrating the preferred embodiments and are not to be construed as limiting the invention. Also, like reference numerals are used to designate like parts throughout the figures. In the drawings:
fig. 1 is a schematic structural diagram of a space remote sensing imaging semi-physical simulation platform based on a sand table oblique mode according to an embodiment of the invention.
Detailed Description
Exemplary embodiments of the present disclosure will be described in more detail below with reference to the accompanying drawings. While exemplary embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure may be embodied in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art.
Fig. 1 schematically illustrates a structural schematic diagram of a space remote sensing imaging semi-physical simulation platform based on a sand table oblique mode according to an embodiment of the invention. Referring to fig. 1, the space remote sensing imaging semi-physical simulation platform based on a sand table tilting mode according to an embodiment of the present invention may be implemented indoors, including a motion system, a camera load 101, a solar simulator system, and a sand table 102, wherein:
the motion system comprises an inner gantry 103, an outer gantry 104 arranged outside the inner gantry, and a track 105 which is respectively connected with the inner gantry 103 and the outer gantry 104 in a sliding way, wherein the inner gantry 103 and the outer gantry 104 move on the track 105. Specifically, the inner gantry 103 and the outer gantry 104 may move in the same direction or in opposite directions on the track 105, and may move separately or simultaneously.
The solar simulator system comprises a solar simulator 106, a first solar reflecting mirror 107 and a second solar reflecting mirror 108, wherein the first solar reflecting mirror 107 is vertically arranged right above the solar simulator 106, the second solar reflecting mirror 108 is connected with the top of the inner gantry 103, the solar simulator 106 is placed on the ground, the sand table 102 is obliquely placed on the ground, the track 105 is arranged between the solar simulator 106 and the sand table 102, and light emitted by the solar simulator 106 is reflected onto the sand table 102 through the first solar reflecting mirror 107 and the second solar reflecting mirror 108.
The camera load 101 is disposed on top of the outer gantry 104, and the distance of the camera load 101 relative to the solar simulator 106 and the sand table 02 is adjusted as the outer gantry 104 moves on the rail 105 to image the sand table 102. The camera load 101 includes infrared, hyperspectral and glimmer camera loads to simulate different remote sensing imaging conditions.
According to the embodiment, the relationship of vertical imaging of the camera load in remote sensing at the position of the understar point is replaced by horizontal imaging in the indoor physical simulation platform, so that the solar simulator does not need to be erected in the air, the construction difficulty is reduced, the problems that the imaging distance is too short and the breadth is too narrow under the condition that the floor height is limited are solved, and further the remote sensing imaging experiment and verification of full color, low light level and the like can be carried out in indoor supporting visible light characteristic simulation and target low light level characteristic simulation research.
In another embodiment of the present invention, the platform further comprises a first three-axis pan-tilt head 109 and a second three-axis pan-tilt head 110, the second solar light mirror 108 is connected to the outer gantry 104 through the first three-axis pan-tilt head 109, the camera load 101 is connected to the inner gantry 103 through the second three-axis pan-tilt head 110, the camera load 101 is moved vertically and/or horizontally through the inner gantry 103, the outer gantry 104, and the pitching and/or rotating movements of the first three-axis pan-tilt head 109 and the second three-axis pan-tilt head 110 to achieve multi-angle imaging of the sand table.
Wherein, the first triaxial holder 109 and the second triaxial holder 110 are both provided with inclinometers for measuring pitch angles.
According to the embodiment, the relationship of vertical imaging of the camera load in remote sensing at the position of the understar point is replaced by horizontal imaging in an indoor physical simulation platform, so that a solar simulator does not need to be erected in the air, the construction difficulty is further reduced, the light propagation distance and the changing angle are increased, the area of light spots is increased, the problems that the imaging distance is too short and the width is too narrow under the condition that the floor height is limited are solved, and further the remote sensing imaging experiment and verification of full color, low light and the like can be carried out in indoor supporting visible light characteristic simulation and target low light characteristic simulation research.
In this embodiment of the invention, the platform further comprises a sand table adjusting device, wherein the sand table adjusting device is a rotary moving mechanism capable of moving up and down and left and right and is used for adjusting the inclination angle of the sand table.
In a specific embodiment of the present invention, the spatial remote sensing imaging semi-physical simulation platform comprises a motion system, a camera load, a three-axis cradle head, a solar simulator system and a sand table system, wherein:
1. the motion system specifically comprises:
the number of nested longmen is 2, the number of tracks is two, the nested longmen is arranged on the tracks, and the longmen can move in the vertical direction and the horizontal direction.
2. Camera load
The height is less than 40cm; the number of the cameras is 3, the mass of the cameras is less than 50kg, and in the embodiment of the invention, the camera load comprises infrared, hyperspectral and micro-light camera loads so as to simulate different remote sensing imaging conditions, and particularly, different camera loads can be selected according to the imaging conditions to be realized.
The low-light camera is a camera capable of shooting a long-distance scene under the light condition of weak natural light such as moonlight, starlight or sky light. The low-light camera has the advantage of recording the low-light image generated by the radiation conversion screen when being irradiated by high energy, and is widely used in the fields of reconnaissance, underwater weak target detection and the like. The camera consists of a strong light main lens, a micro light pipe, an image shifting lens, a photosensitive film with a special emulsion layer and the like.
The hyperspectral camera load is a camera for imaging by using a hyperspectral imaging technology, the hyperspectral imaging technology is an image data technology based on a plurality of narrow wave bands, the hyperspectral imaging technology is combined with a spectrum technology, two-dimensional geometric space and one-dimensional spectrum information of a target are detected, and continuous and narrow wave band image data with hyperspectral resolution are obtained.
3. The three-axis cradle head is 30cm in length; the number is 2, and 50kg can be borne;
one end of the triaxial holder is provided with a camera load so as to realize pitching and rotating movement of the camera.
4. A solar simulator system, comprising in particular:
the solar simulator emits light which is reflected by the two sets of reflectors, and the light can reach the irradiation spot size diameter of 2.5 meters and the light parallel precision of 6 degrees.
The solar simulator system can be used for simulating the conditions of light intensity, brightness and spectrum of real sun, and can be used for realizing the adjustment of the light intensity by adding a filter disc.
5. Sand table system
The sand table system comprises a sand table and a sand table bracket for placing the sand table, the sand table can be used for simulating the existing topography and geomorphology features, and the sand table bracket is a rotary moving mechanism capable of moving up and down and left and right.
The solar simulator is placed on the ground horizontally, the angle of the sand table is adjustable, a track is arranged between the solar simulator and the sand table, the upper parts of the two nested longerons are respectively provided with a triaxial tripod head, one end of the triaxial tripod head of the inner longeron of the nested longeron is provided with a first reflecting mirror, one end of the triaxial tripod head of the outer longeron of the nested longeron is provided with a camera load, the camera load moves vertically and horizontally through the longeron and the triaxial tripod head, multi-angle imaging is achieved, the solar simulator reflects light onto the sand table through a second reflecting mirror 1 arranged right above the solar simulator and the first reflecting mirror arranged on the inner longeron, and meanwhile, the irradiation light spots irradiated onto the sand table are enlarged through twice reflection.
In the embodiment of the invention, the solar simulator simulates solar radiation by using an artificial light source so as to overcome the defects that the solar radiation is influenced by time and climate, the total irradiance cannot be adjusted and the like, and the reflecting distance is increased by twice reflection, so that the light spots irradiated on the sand table are increased.
The camera load simulates the detected load on the satellite, and in this embodiment, the camera load can be adjusted by moving the camera load and the sand table to achieve vertical imaging of the camera load on the sand table.
In order to enable the result of the simulation experiment of the physical platform to be more similar to the actual experimental result, after the experimental data of the semi-physical simulation platform are obtained, the existing environmental data are added and overlapped with the simulation data, so that the result of the physical simulation is more similar to the actual remote sensing system.
According to the embodiment, the relationship of vertical imaging of the camera load in remote sensing at the position of the understar point is replaced by horizontal imaging in an indoor physical simulation platform, so that a solar simulator does not need to be erected in the air, the construction difficulty is further reduced, the light propagation distance and the changing angle are increased, the area of light spots is increased, the problems that the imaging distance is too short and the width is too narrow under the condition that the floor height is limited are solved, and further the remote sensing imaging experiment and verification of full color, low light and the like can be carried out in indoor supporting visible light characteristic simulation and target low light characteristic simulation research.
In the description provided herein, numerous specific details are set forth. However, it is understood that embodiments of the invention may be practiced without these specific details. In some instances, well-known methods, structures and techniques have not been shown in detail in order not to obscure an understanding of this description.
Similarly, it should be appreciated that in the foregoing description of exemplary embodiments of the invention, various features of the invention are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of one or more of the various inventive aspects. However, the disclosed method should not be construed as reflecting the intention that: i.e., the claimed invention requires more features than are expressly recited in each claim. Rather, as the following claims reflect, inventive aspects lie in less than all features of a single foregoing disclosed embodiment. Thus, the claims following the detailed description are hereby expressly incorporated into this detailed description, with each claim standing on its own as a separate embodiment of this invention.
Those skilled in the art will appreciate that the modules in the apparatus of the embodiments may be adaptively changed and disposed in one or more apparatuses different from the embodiments. The modules or units or components of the embodiments may be combined into one module or unit or component and, furthermore, they may be divided into a plurality of sub-modules or sub-units or sub-components. Any combination of all features disclosed in this specification (including any accompanying claims, abstract and drawings), and all of the processes or units of any method or apparatus so disclosed, may be used in combination, except insofar as at least some of such features and/or processes or units are mutually exclusive. Each feature disclosed in this specification (including any accompanying claims, abstract and drawings), may be replaced by alternative features serving the same, equivalent or similar purpose, unless expressly stated otherwise.
Furthermore, those skilled in the art will appreciate that while some embodiments herein include some features but not others included in other embodiments, combinations of features of different embodiments are meant to be within the scope of the invention and form different embodiments. For example, in the following claims, any of the claimed embodiments can be used in any combination.
Various component embodiments of the invention may be implemented in hardware, or in software modules running on one or more processors, or in a combination thereof.
It should be noted that the above-mentioned embodiments illustrate rather than limit the invention, and that those skilled in the art will be able to design alternative embodiments without departing from the scope of the appended claims. In the claims, any reference signs placed between parentheses shall not be construed as limiting the claim. The word "comprising" does not exclude the presence of elements or steps not listed in a claim. The word "a" or "an" preceding an element does not exclude the presence of a plurality of such elements. The invention may be implemented by means of hardware comprising several distinct elements, and by means of a suitably programmed computer. In the unit claims enumerating several means, several of these means may be embodied by one and the same item of hardware. The use of the words first, second, third, etc. do not denote any order. These words may be interpreted as names.

Claims (2)

1. The space remote sensing imaging semi-physical simulation platform based on the sand table oblique mode is characterized by comprising a motion system, a camera load, a solar simulator system and a sand table;
the motion system comprises an inner gantry, an outer gantry arranged outside the inner gantry and a track which is respectively connected with the inner gantry and the outer gantry in a sliding manner, wherein the inner gantry and the outer gantry move on the track;
the solar simulator system comprises a solar simulator, a first sunlight reflecting mirror and a second sunlight reflecting mirror, wherein the first sunlight reflecting mirror is vertically arranged right above the solar simulator, the second sunlight reflecting mirror is connected with the top of the inner gantry, the solar simulator and a track are placed on the ground, a sand table is obliquely placed on the ground, the track is arranged between the solar simulator and the sand table, and light emitted by the solar simulator is reflected onto the sand table through the first sunlight reflecting mirror and the second sunlight reflecting mirror;
the camera load is arranged at the top end of the outer gantry, and the distance between the camera load and the solar simulator and the sand table is adjusted along with the movement of the outer gantry on the track so as to image the sand table;
the platform further comprises a first triaxial holder and a second triaxial holder, the second sunlight reflecting mirror is connected with the outer gantry through the first triaxial holder, the camera load is connected with the inner gantry through the second triaxial holder, the camera load vertically and/or horizontally moves through the inner gantry and the outer gantry, and the first triaxial holder and the second triaxial holder move in a pitching and/or rotating mode so as to realize multi-angle imaging of the sand table; the first triaxial cradle head and the second triaxial cradle head are respectively provided with an inclinometer for measuring pitching angles;
the platform also comprises a sand table adjusting device, wherein the sand table adjusting device is used for adjusting the inclination angle of the sand table.
2. The sand table diagonal pattern based spatial remote sensing imaging semi-physical simulation platform of claim 1 wherein the camera load comprises infrared, hyperspectral and low-light camera loads to simulate different remote sensing imaging conditions.
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