EP4409220A2 - Wellenfrontkorrektur für aerodynamische und atmosphärische effekte eines optischen sensors auf einem hochgeschwindigkeitsflugfahrzeug - Google Patents

Wellenfrontkorrektur für aerodynamische und atmosphärische effekte eines optischen sensors auf einem hochgeschwindigkeitsflugfahrzeug

Info

Publication number
EP4409220A2
EP4409220A2 EP22871084.4A EP22871084A EP4409220A2 EP 4409220 A2 EP4409220 A2 EP 4409220A2 EP 22871084 A EP22871084 A EP 22871084A EP 4409220 A2 EP4409220 A2 EP 4409220A2
Authority
EP
European Patent Office
Prior art keywords
optical
sensor
aero
window
wavefront
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
EP22871084.4A
Other languages
English (en)
French (fr)
Inventor
Sean D. Keller
David J. Knapp
Jon E. LEIGH
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Raytheon Co
Original Assignee
Raytheon Co
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US17/725,872 external-priority patent/US20230101430A1/en
Application filed by Raytheon Co filed Critical Raytheon Co
Publication of EP4409220A2 publication Critical patent/EP4409220A2/de
Pending legal-status Critical Current

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F41WEAPONS
    • F41GWEAPON SIGHTS; AIMING
    • F41G7/00Direction control systems for self-propelled missiles
    • F41G7/20Direction control systems for self-propelled missiles based on continuous observation of target position
    • F41G7/22Homing guidance systems
    • F41G7/2246Active homing systems, i.e. comprising both a transmitter and a receiver
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F41WEAPONS
    • F41GWEAPON SIGHTS; AIMING
    • F41G7/00Direction control systems for self-propelled missiles
    • F41G7/20Direction control systems for self-propelled missiles based on continuous observation of target position
    • F41G7/22Homing guidance systems
    • F41G7/2273Homing guidance systems characterised by the type of waves
    • F41G7/2293Homing guidance systems characterised by the type of waves using electromagnetic waves other than radio waves
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S7/00Details of systems according to groups G01S13/00, G01S15/00, G01S17/00
    • G01S7/48Details of systems according to groups G01S13/00, G01S15/00, G01S17/00 of systems according to group G01S17/00
    • G01S7/497Means for monitoring or calibrating
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B26/00Optical devices or arrangements for the control of light using movable or deformable optical elements
    • G02B26/08Optical devices or arrangements for the control of light using movable or deformable optical elements for controlling the direction of light
    • G02B26/0816Optical devices or arrangements for the control of light using movable or deformable optical elements for controlling the direction of light by means of one or more reflecting elements
    • G02B26/0833Optical devices or arrangements for the control of light using movable or deformable optical elements for controlling the direction of light by means of one or more reflecting elements the reflecting element being a micromechanical device, e.g. a MEMS mirror, DMD
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/0025Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00 for optical correction, e.g. distorsion, aberration

Definitions

  • This invention relates to optical sensing systems on-board supersonic flight vehicles with high resolution electro-optic infrared (EO/IR) sensors, and more particularly to a system and method for sensing aerodynamic effects (optical and thermal) on or immediately in front of the vehicle’s window or dome and compensating for those effects.
  • the system may also be configured to measure and compensate for atmospheric effects such as turbulence between the flight vehicle and a target.
  • Flight vehicles such as missiles, rockets, guided projectiles, drones, manned aircraft etc. employ EO/IR sensors to detect, track, classify and select aim points on targets. It is critical that the actual location of a target in the sensor’s field-of-view (FOV) is very close to the location of the target detected by the EO/IR sensor. Certain in-flight conditions such as aerodynamic effects on or immediately in front of the sensor’s optically transparent window/dome or atmospheric effects (e.g., turbulence) between the sensor and the target can cause errors in target locations that impact system performance.
  • FOV field-of-view
  • Aerodynamic effects include aero-optical and aero-thermal effects. Aero- optical effects are caused by fluctuations of refractive index due to temperature and pressure differences in the air around the flight vehicle, which may be caused by compression of air and turbulence around the flight vehicle such as turbulence from thick boundary layers, dome physical distortion, shock waves, plasmas, and atmospheric turbulence. These variations in index will affect light passing through this air by creating a phase difference across the wavefront, called wavefront distortion, which spreads and distorts the light that comes to a focus at an image plane. Wavefront distortion may also alter the apparent angle of arrival of light entering an EO/IR sensor. Aero-thermal effects are caused by heating of the window/dome and optical system by compression of the air by the flight vehicle operating at high speeds.
  • the heating of the window causes variations in refractive index and distortion of the window shape. This in turn affects light passing through the window and optical system by creating a phase difference across the wavefront that spreads and distorts the light that comes to a focus at an image plane. Wavefront distortion due to window heating and shape distortion may also alter the apparent angle of arrival of light entering an EO/IR sensor.
  • the LUT is a “model”, not a measurement.
  • Optical wavefront distortion effects which degrade sensor resolution are typically not addressed on-board high-speed flight vehicles, and must be accommodated in the error budget for system performance.
  • the present invention provides a system and method for measurement and correction of aero-optical and aero-thermal effects to an EO/IR sensor’s window/dome on a supersonic flight-vehicle.
  • an optical sensor for a supersonic flight vehicle in which an optical window to the sensor undergoes aero-optical and aero-thermal effects in flight includes a pulsed laser that emits laser pulses through the optical window with timing codes referenced to a clock, a wavefront sensor referenced to the clock to detect returning laser pulses that lie within a short time delay window to measure the aero-optical and aero-thermal effects on or just in front of the optical window, an optical detector, an optical path that couples light received through the optical window onto the optical detector and a deformable mirror positioned in the optical path, said deformable mirror responsive to command signals to piston orthogonal to the plane of the mirror to correct a wavefront of the received light for the measured aero-optical and aero-thermal effects.
  • the wavefront sensor detects returning laser pulses that lie within a long time delay window to measure atmospheric effects beyond the optical window.
  • the pulses for the long time delay window may be lengthened to improve SNR.
  • the returned laser pulses in the long time delay windows may be corrected and sensed by the optical detector to locate a target (“active imaging”).
  • a first control algorithm and control loop measures the aero-optical and aero-thermal effects and updates the deformable mirror at a slow update rate and a second control algorithm and control loop measures the atmospheric effects and updates the deformable mirror at a fast update rate. Separating the control algorithms and loops simplifies the algorithms and improves performance.
  • the deformable mirror is one of (a) a single mirror with piston actuators, (b) multiple segmented mirrors with respective piston actuators or (c) multiple segmented mirrors with respective tip, tilt and piston actuators.
  • the deformable mirror comprises a Micro-Electro- Mechanical System (MEMS) Micro-Mirror Array (MMA) that includes a plurality of mirrors independently responsive to command signals to tip and tilt about first and second axes, respectively, and to piston in translation along a third axis in three degrees-of-freedom (3DOF) to correct the wavefront.
  • MEMS Micro-Electro- Mechanical System
  • MMA Micro-Mirror Array
  • This device allows for a range of translation along the third axis for piston is greater than 1 wavelength at the laser wavelength or received light center wavelength.
  • This device allows for tip and tilt to control a local slope to reduce aberrations.
  • the deformable mirror is placed at or near (as packaging inside the sensor allows) the optical conjugate location of the window (the source of the wavefront distortions). Multiple deformable mirrors may be placed near different optical conjugate locations of different sources of wavefront distortion. A first deformable mirror may be placed at a pupil conjugate location and a second deformable mirror may be placed at an intermediate image conjugate location in the optical path.
  • an optical sensor for a supersonic flight vehicle in which an optical window to the sensor undergoes aero-optical and aero-thermal effects in flight comprises one or more optical detectors and an optical path that couples light from a target returned through the optical window onto the optical detector.
  • a laser emits laser energy into a beam combiner in the optical path that combines the laser energy to propagate in the optical path through the optical window.
  • a wavefront sensor in the optical path detects returning laser energy (split off by a beam splitter) to measure the aero-optical and aero-thermal effects on or just in front of the optical window.
  • a deformable mirror positioned in the optical path upstream of the wavefront sensor and the laser is responsive to command signals to piston orthogonal to the plane of the mirror to correct a wavefront of the emitted laser energy and to correct a wavefront of the returned laser energy and received passive light for the measured aero-optical and aerothermal effects.
  • the one or more optical detectors are configured to sense both the wavefront corrected returned laser energy and wavefront corrected received passive light to form active and passive images of the target.
  • the laser emits laser pulses with timing codes referenced to a clock and the wavefront sensor detects returning laser pulses referenced to the clock that lie in a short time delay window to measure aero-optical and aero-thermal effects of the vehicle window and near the vehicle window.
  • the laser emits pulses in a long time delay window to also measure atmospheric effects from the optical path beyond the vehicle window.
  • a gimbal is used to point the laser and the optical path.
  • an optical sensor for a supersonic flight vehicle in which an optical window to the sensor undergoes aero-optical and aero-thermal effects in flight includes an optical detector, an optical path that couples light received through the optical window onto the optical detector and a MEM MMA positioned in the optical path.
  • the MMA comprises a plurality of mirrors independently responsive to command signals to tip and tilt about first and second axes, respectively, and to piston in translation along a third axis in three degrees- of-freedom (3DOF) to correct a wavefront of the received light for the measured aero-optical and aero-thermal effects.
  • the MMA allows for a range of translation along the third axis for piston is greater than 1 wavelength at the laser wavelength or received light center wavelength.
  • the MMA allows for tip and tilt to control a local slope to reduce aberrations.
  • the command signals for the MEMS MMA may be provided by (a) a LUT indexed by speed, (b) CW or pulsed laser w/ a wavefront sensor which may or may not be integrated into the optical path to the detector and which may be on or off the flight vehicle.
  • FIG. 1 is an optical sensor in which a transmit beam is used as both a source for wavefront measurement and correction and for active detection and passive detection;
  • FIG. 2 is an illustration of aerodynamic and atmospheric effects between a supersonic flight vehicle and a target
  • FIG. 3 is a simplified optical schematic in which a laser beam is folded into the optical path for a passive detector, a laser return is split off to a wavefront sensor and a deformable mirror is controlled to correct the wavefront of either active returns or passive light for aerodynamic and atmospheric effects;
  • FIG. 4 is an illustration in which a pulsed laser is range-gated to separately measure the aerodynamic effects on or immediately in front of the window/dome and the atmospheric effects between the vehicle and the target;
  • FIG. 5 is an embodiment in which separate control algorithms and control loops are configured to update corrections for the deformable mirror to address slower aerodynamic effects and faster atmospheric effects, respectively;
  • FIGs. 6A-6B are illustrations of a known embodiment of a Tip/Tilt/Piston (“TTP”) MEMS MMA and a single mirror actuated to tip, tilt and piston to scan and correct the laser beam; and
  • TTP Tip/Tilt/Piston
  • FIG. 7 is an illustration in which MEMS MMA piston is used to perform the primary wavefront correction and tip/tilt is used to provide local slope correction to reduce aberrations.
  • the present invention provides a system and method for measurement and correction of aero-optical and aero-thermal effects to an EO/IR sensor’s window/dome on a supersonic flight-vehicle.
  • EO/IR sensor e.g., a laser-based laser sensor
  • the impact of aerodynamic (aero-optical and aero-thermal effects) on the sensor’s window/dome get much worse and the impact on the higher resolution sensors more problematic.
  • Atmospheric effects beyond the window/dome and to a target also have a greater effect on higher resolution sensors.
  • a supersonic flight vehicle 10 such as a missile, rocket, projectile etc.
  • a gimbaled optical sensor 14 directs a laser beam 16 towards a scene 18, which reflects the light to generate a laser return 20 that is collected by the sensor’s telescope.
  • FOV field-of-view
  • passive emissions or visible reflections 24 are also collected by the sensor’s telescope.
  • the gimbal scans the laser beam 16 and sensor FOV 22 over a larger field-of-regard 26 to detect a target 28.
  • the laser beam, and thus the returns, may be in the same or different band as the passive light.
  • the passive light may span a portion of the near infrared (NIR) band and the laser beam could occupy a very narrow band (few nm) around a specific wavelength(s) in the NIR band.
  • the passive light may span a portion of the NIR band and the laser beam could occupy a narrow band around a specific wavelengths(s) in the visible band.
  • the sensor may be configured to not sense the laser return.
  • a wavefront sensor detects the laser returns 20 to measure the aero-optical 30 and aero-thermal 32 effects on or just in front of the optical window/dome 34 and possibly atmospheric effects 36 (e.g., turbulence) beyond the window/dome to the target 28.
  • a deformable mirror positioned in the optical path is responsive to command signals to piston orthogonal to the plane of the mirror to correct a wavefront of the received light for the measured aero-optical and aero-thermal effects and possibly the atmospheric effects.
  • the laser emits laser pulses with timing codes referenced to a clock and the wavefront sensor detects returning laser pulses referenced to the clock that lie in a short time delay window to measure aero- optical and aero-thermal effects and in a long time delay window to measure atmospheric effects and form the active images.
  • a gimbal is used to point the laser and the optical path.
  • the deformable mirror is a MEMS MMA comprising a plurality of mirrors independently responsive to command signals to tip and tilt about first and second axes, respectively, and to piston in translation along a third axis in three degrees-of-freedom (3DOF) to correct a wavefront of the received light for the measured aero-optical and aero-thermal effects.
  • the MMA allows for a range of translation along the third axis for piston is greater than 1 wavelength at the laser wavelength or received light center wavelength.
  • the MMA allows for tip and tilt to control a local slope to reduce aberrations.
  • an embodiment of an optical sensor 100 for a supersonic flight vehicle in which an optical window/dome 102 to the sensor undergoes aero-optical and aero-thermal effects in flight includes one or more optical detectors 104 and an optical path 106 including a plurality of optical elements that couples light from a target returned through the optical window/dome 102 onto the one or more optical detectors.
  • the optical path is suitably routed through a dual-axis gimbal to point over a field-of-regard (FOR). Alternately, pointing can be achieved by maneuvering the flight vehicle.
  • Optical path 106 includes a focusing element 103 positioned behind optical window/dome 102, a field lens optical element 105, and optical elements 107 and 109, which relay the intermediate after element 105 to detector 104.
  • a pulsed laser 108 (UV, IR, Visible) emits laser pulses 110 that are combined into the optical path via beam combiner 112 and transmitted through the optical window/dome.
  • the laser pulses include timing codes referenced to a clock 114.
  • a wavefront sensor 116 referenced to the clock is positioned relative to a beam splitter 118 in the optical path to detect returning laser pulses that lie within a short time delay window 120 to measure the aero-optical and aerothermal effects on or just in front of the optical window and a long time delay window 122 to measure atmospheric effects beyond the window/dome and to the target.
  • the short and long time delay windows correspond to shorter and longer round trip times, respectively, for the laser pulses 110 for range-gating.
  • a deformable mirror 124 is positioned in the optical path and is responsive to command signals from a mirror controller 126 to piston orthogonal to the plane of the mirror to correct a wavefront of the received light for the measured aero- optical and aero-thermal effects.
  • deformable mirror 126 is drawn in an unfolded optical layout. It functions as a fold mirror that can apply phase corrections to a wavefront by actively articulating the mirror or mirror elements.
  • a processor 128 receives the wavefront measurements and computes the actuation command signals that are provided to the mirror controller.
  • the deformable mirror 124 is placed at or near (as packaging inside the sensor allows) the optical conjugate location of the window (the source of the wavefront distortions). Multiple deformable mirrors 124 may be placed at or near different optical conjugate locations of different sources of wavefront distortion. A first deformable mirror may be placed at a pupil conjugate location and a second deformable mirror may be placed at an intermediate image conjugate location in the optical path.
  • the returned laser pulses in the long time delay windows may be corrected by the deformable mirror and sensed by the optical detector to locate a target (“active imaging”).
  • a single point measurement of the laser through the window/dome may be compared to a model based on geometry, materials, temperature gradients, compression effects etc. across the window/dome. For instance, one model might describe a linear heating of a window that is hotter near the leading edge of the vehicle compared to the edge farther away. An analytical model could predict the heating of the window over a high speed flight with assumptions on angle of attack and atmospheric conditions. By directly measuring a wavefront through the window at a given point in time, one can compare this to the model to determine which conditions create this wavefront (thermal variation) through this part of the window and thus predict the temperature and shape of the window at other places outside of the optical footprint on the window.
  • a first control loop 140 receives short time delay window measurements of the aero-optical and aero-thermal effects 141, applies a control algorithm for aerodynamic effects at a slow update rate to compute waveform conjugate 142 and updates command signals 143 to actuate the deformable mirror at the slow update rate and a second control loop 145 receives long time delay window measurements of the atmospheric effects 146, applies a control algorithm for aerodynamic effects at a fast update rate to compute waveform conjugate 147 and updates command signals 148 to actuate the deformable mirror at a fast update rate.
  • Separating the control algorithms and loops simplifies the algorithms and improves performance.
  • Either or both control algorithms may, for example, be a Proportional-Integral-Derivative (PID) control loop algorithm.
  • PID Proportional-Integral-Derivative
  • the speed of the update rates refers to the relative change in wavefront distortion vs. time.
  • wavefront distortions affecting performance of an EO/IR system in an aerial vehicle changes will occur at different time scales.
  • Aerodynamic heating of a window can occur over a period of seconds.
  • the aerodynamic heating and deformation of the window surfaces will introduce a corresponding optical path difference that varies with the rate of heating and the rate of change of a sensor viewing angle through the window.
  • Other aberrations can change relatively quickly. Specifically, air in a turbulent flow can have variations in density and temperature that change very quickly according to the speed of the flow.
  • optical path distortions e.g., the aerodynamic effects
  • fast optical correction loop that responds to high rate variation optical path distortions (e.g., the atmospheric effects) of lower magnitude. This allows for the temporal bandwidth and optical path difference dynamic range of the corrective components such as deformable mirrors and MMAs to be matched against the physical processes causing the optical distortions.
  • the deformable mirror is one of (a) a single mirror with piston actuators, (b) multiple segmented mirrors with respective piston actuators or (c) multiple segmented mirrors with respective tip, tilt and piston actuators.
  • the deformable mirror comprises a MEMS MMA including a plurality of mirrors independently responsive to command signals to tip and tilt about first and second axes, respectively, and to piston in translation along a third axis in three degrees-of-freedom (3DOF) to correct the wavefront.
  • 3DOF degrees-of-freedom
  • an exemplary MEMS MMA 150 comprises a plurality of independently and continuously controllable mirrors 152 to re-direct light in three DOF.
  • Each mirror is capable of at least “Tip” (rotation about an X-axis), “Tilt” (rotation about a Y-axis) and “Piston” (translation along a Z-axis, perpendicular to the XY plane) where the X, Y and Z are orthogonal axes in a three-dimensional space.
  • the MEMS MMA is preferably capable of tipping and tilting over range of at least -15° x +15° to steer over a range of +/-3O 0 x 30° and pi stoning (translating) over a range of at least +/- 15 microns (at least one-half wavelength in either direction) piston at a rate of at least 1 KHz ( ⁇ 1 millisecond).
  • the MEMS MMA must have a sufficient number of mirrors, mirror size/resolution, fill factor, range of motion, response time, response accuracy and uniformity across the array.
  • mirrors 152 piston 158 in translation perpendicular to the plane of the array to correct the wavefront 160 of the light (laser pulses or passively received light).
  • the mirrors may also tip/tilt to provide a local slope to reduce aberrations from discontinuities between adjacent mirrors.

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  • Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • General Engineering & Computer Science (AREA)
  • Electromagnetism (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Radar, Positioning & Navigation (AREA)
  • Remote Sensing (AREA)
  • Optical Radar Systems And Details Thereof (AREA)
EP22871084.4A 2021-09-27 2022-09-23 Wellenfrontkorrektur für aerodynamische und atmosphärische effekte eines optischen sensors auf einem hochgeschwindigkeitsflugfahrzeug Pending EP4409220A2 (de)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
US202163248623P 2021-09-27 2021-09-27
US17/725,872 US20230101430A1 (en) 2021-09-27 2022-04-21 Wavefront correction for aerodynamic and atmospheric effects to an optical sensor on a high-speed flight vehicle
PCT/US2022/044535 WO2023064085A2 (en) 2021-09-27 2022-09-23 Wavefront correction for aerodynamic and atmospheric effects to an optical sensor on a high-speed flight vehicle

Publications (1)

Publication Number Publication Date
EP4409220A2 true EP4409220A2 (de) 2024-08-07

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EP22871084.4A Pending EP4409220A2 (de) 2021-09-27 2022-09-23 Wellenfrontkorrektur für aerodynamische und atmosphärische effekte eines optischen sensors auf einem hochgeschwindigkeitsflugfahrzeug

Country Status (4)

Country Link
EP (1) EP4409220A2 (de)
JP (1) JP7804759B2 (de)
IL (1) IL311130A (de)
WO (1) WO2023064085A2 (de)

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US12372658B2 (en) 2020-10-12 2025-07-29 Raytheon Company Negative obstacle detector using micro-electro-mechanical system (MEMS) micro-mirror array (MMA) beam steering
US12066574B2 (en) 2021-01-15 2024-08-20 Raytheon Company Optical system for object detection and location using a Micro-Electro-Mechanical System (MEMS) Micro-Mirror Array (MMA) beamsteering device
CN116626890B (zh) * 2023-05-22 2026-03-13 河海大学 一种成像系统中基于毛玻璃滤波的湍流噪声抑制装置及方法

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8731013B2 (en) * 2007-01-24 2014-05-20 Raytheon Company Linear adaptive optics system in low power beam path and method
US8362410B2 (en) * 2010-07-26 2013-01-29 Raytheon Company Source-independent beam director and control system for a high-energy electromagnetic radiation source
US10444492B2 (en) * 2013-07-16 2019-10-15 Lawrence Livermore National Security, Llc Flexure-based, tip-tilt-piston actuation micro-array
JP2016042550A (ja) * 2014-08-19 2016-03-31 株式会社東芝 レーザ照射装置、およびレーザ照射方法
US10502951B2 (en) * 2016-06-07 2019-12-10 Raytheon Company High-performance beam director for high-power laser systems or other systems
US10151635B1 (en) * 2017-06-08 2018-12-11 Raytheon Company Real time correction of optical window thermal gradients
JP7315827B2 (ja) * 2019-07-01 2023-07-27 ミツミ電機株式会社 光走査装置及びその制御方法

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JP7804759B2 (ja) 2026-01-22
WO2023064085A3 (en) 2023-07-06
JP2024538579A (ja) 2024-10-23
WO2023064085A2 (en) 2023-04-20
IL311130A (en) 2024-04-01

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