LiDAR window integrated optical filter
11598909 · 2023-03-07
Assignee
- Hyundai Motor Company (Seoul, KR)
- Kia Motors Corporation (Seoul, KR)
- OPTRONTEC CO., LTD (Changwon-si, KR)
Inventors
- Kyoung-Chun Kweon (Seoul, KR)
- Seon-Yong An (Gangwon-do, KR)
- Min-Seok Oh (Gyeongsangnam-do, KR)
- Jang-Seob Kim (Daejeon, KR)
- Jae-Bum Kim (Gyeonggi-do, KR)
Cpc classification
C23C28/042
CHEMISTRY; METALLURGY
G02B5/208
PHYSICS
C23C28/42
CHEMISTRY; METALLURGY
G02B5/282
PHYSICS
G01S7/481
PHYSICS
C23C28/04
CHEMISTRY; METALLURGY
International classification
F21V9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01S7/481
PHYSICS
Abstract
Disclosed is a LiDAR window integrated optical filter that includes a window of a polymer material for absorbing a visible light band and transmitting a near-infrared band; and an upper reflective layer and a lower reflective layer formed on the upper surface and the lower surface of the window. The upper reflective layer and the lower reflective layer may be formed in a thin film including titanium dioxide (TiO.sub.2) and silicon dioxide (SiO.sub.2).
Claims
1. A light detection and ranging (LiDAR) window integrated optical filter, comprising: a window comprising a polymer material; an upper reflective layer formed on an upper surface of the window; and a lower reflective layer formed on a lower surface of the window; wherein the polymer material absorbs a visible light and transmits a near-infrared light, wherein each of the upper reflective layer and the lower reflective layer is formed in a film comprising titanium dioxide (TiO.sub.2) and silicon dioxide (SiO.sub.2).
2. The LiDAR window integrated optical filter of claim 1, wherein the each of the upper reflective layer and the lower reflective layer are formed in a multilayer film by vapor deposition.
3. The LiDAR window integrated optical filter of claim 2, wherein the each of the upper reflective layer and the lower reflective layer is formed with the film by laminating a plurality of SiO.sub.2 layers and TiO.sub.2 layers.
4. The LiDAR window integrated optical filter of claim 3, wherein a thickness of the upper reflective layer is about 4 to 7 μm.
5. The LiDAR window integrated optical filter of claim 3, wherein the upper reflective layer is deposited as a multilayer structure of 25 to 30 layers.
6. The LiDAR window integrated optical filter of claim 5, wherein the upper reflective layer reflects infrared light having a wave length of about 1,400 to 1,600 nm.
7. The LiDAR window integrated optical filter of claim 3, wherein a thickness of the lower reflective layer is about 4 to 7 μm.
8. The LiDAR window integrated optical filter of claim 7, wherein the lower reflective layer is deposited as a multilayer structure of 25 to 30 layers.
9. The LiDAR window integrated optical filter of claim 8, wherein the lower reflective layer reflects infrared light having a wavelength of about 1,100 to 1,400 nm.
10. The LiDAR window integrated optical filter of claim 3, wherein a thickness difference between the upper reflective layer and the lower reflective layer is less than about 2 μm.
11. The LiDAR window integrated optical filter of claim 3, wherein the window comprises a transparent plastic material comprising a visible light absorbing material added thereto, and has a thickness of about 2 to 4 mm.
12. The LiDAR window integrated optical filter of claim 3, wherein the transmittance at a wavelength of 905 nm is about 90% or greater.
13. The LiDAR window integrated optical filter of claim 12, wherein the transmittance at a wavelength of 1,550 nm is about 1% or less.
14. A light detection and ranging (LiDAR) window integrated optical filter, comprising: a window comprising a polymer material absorbing visible light having a wavelength of about 350 nm to 780 nm; an upper reflective layer laminated on an upper surface of the window to reflect infrared light having a wavelength of about 1,400 to 1,600 nm; and a lower reflective layer laminated on the lower surface of the window to reflect infrared light having a wavelength of about 1,100 to 1,400 nm.
15. The LiDAR window integrated optical filter of claim 14, wherein the transmittance at a wavelength of about 905 nm is about 90% or greater.
16. The LiDAR window integrated optical filter of claim 15, wherein the transmittance at a wavelength of 1,550 nm is about 1% or less.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(13) The terminology used herein is for the purpose of describing particular exemplary embodiments only and is not intended to be limiting of the invention. As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items.
(14) Unless specifically stated or obvious from context, as used herein, the term “about” is understood as within a range of normal tolerance in the art, for example within 2 standard deviations of the mean. “About” can be understood as within 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, 0.1%, 0.05%, or 0.01% of the stated value. Unless otherwise clear from the context, all numerical values provided herein are modified by the term “about.”
(15) In order to fully understand the present invention, the operational advantages of the present invention, and the object achieved by the practice of the present invention, reference should be made to the accompanying drawings that exemplify preferred embodiments of the present invention and the contents described in the accompanying drawings.
(16) In describing the various exemplary embodiments of the present invention, well-known techniques or repeated descriptions that may unnecessarily obscure the subject matter of the present invention will be shortened or omitted.
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(18) The LiDAR window integrated optical filter according to an exemplary embodiment of the present invention is for a LiDAR system, and a window integrated optical filter disposed in front of the LiDAR sensor (APD chip), and for simultaneously performing the role of a conventional optical filter and a cover.
(19) The LiDAR is an essential sensor for autonomous driving, and may calculate the distance to a target through a signal that hits the target and returns by using infrared light of the wavelength of 905 nm. Among other things, the optical filter is used to minimize noise interference such as sunlight and other signals from the outside during transmission and reception.
(20) For this purpose, the LiDAR window integrated optical filter of the present invention is configured to include a window 10, an upper reflective layer 20 and a lower reflective layer 30, and the window 10 is a polymer material, and for example, formed of a transparent plastic (11, PC) having a visible light absorbing material added thereto, and the reflective layers 20, 30 are formed of a thin film multilayer deposition film by vacuum deposition.
(21) Accordingly, the visible light may be absorbed by the window 10, and the infrared light of the target wavelength or more may be reflected by the reflective layers 20, 30.
(22) The thicknesses, the number of layers, or the like of the window 10 and the reflective layers 20, 30 are summarized as in Table 1.
(23) TABLE-US-00001 TABLE 1 Reflective layer - thin film Window-transparent multilayer deposition film plastic injection substrate 10 Upper reflective Lower reflective 905 nm layer 20 layer 30 Thick- transmit- Thick- The Thick- The ness tance ness number of ness number of (mm) (%) (μm) layers (μm) layers 2 to 4 85 to 92 4 to 7 25 to 30 4 to 7 25 to 30
(24) That is, the thickness of the upper reflective layer 20—thin film multilayer deposition film deposited on the upper portion of the window 10 with SiO.sub.2 and TiO.sub.2 may be about 4 to 7 μm and 25 to 30 layers.
(25) In addition, the thickness of the lower reflective layer 30—thin film multilayer deposition film deposited on the lower portion of the window 10 with SiO.sub.2 and TiO.sub.2 may be about 4 to 7 μm and 25 to 30 layers.
(26) The thickness difference between the upper reflective layer 20 and the lower reflective layer 30 may be less than about 2 μm, because bending may occur when the thickness difference is about 2 μm or greater.
(27) In addition, the window 10 may suitably have the transmittance of 85 to 92% at the wavelength of 905 nm with the thickness of about 2 to 4 mm.
(28) Furthermore, the surface of the upper reflective layer 20 may constitute a low reflective coating material, a hard coating, or the low reflective coating and the hard coating at the same time.
(29) When describing more in detail with reference to
(30) On the contrary, in the case of the LiDAR window integrated optical filter according to an exemplary embodiment of the present invention shown in
(31) In particular, since the transmittance of the wavelength of 905 nm used for the LiDAR is about 90% or greater and the transmittance of the wavelength of 1,550 nm is about 0.1%, there is no noise crosstalk with the LiDAR using the band of 1,550 nm.
(32) In the example, the lower reflective layer 30 may be deposited with 30 layers of SiO.sub.2 and TiO.sub.2 to reflect the wavelength of about 1,100 to 1,400 nm, and the upper reflective layer 20 may be deposited with 27 layers of SiO.sub.2 and TiO.sub.2 to reflect the wavelength of about 1,400 to 1,600 nm.
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(34) Accordingly, it is important to maintain the transmittance of 95% or greater in the wavelength of 905 nm even when the incident light changes from 0 degrees to 40 degrees. In addition, it is important that the transmittance in the wavelength of 1,550 nm is within 1%, and it may be achieved by the present invention.
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(36) In order to form a thick deposition film having a large number of layers, the plastic base 5 having a relatively low heat deformation temperature in a high temperature deposition process is exposed, thereby occurring bending.
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(38) TABLE-US-00002 TABLE 2 Front Side (concave) Back Side (convex) Average X- Y- X- Y- X, Y- Items axis(μm) axis(μm) axis(μm) axis(μm) axes(μm) Before 8.0 4.5 28.0 8.0 ±6.1 coating After 600.0 510.0 570.0 610.0 ±286.25 coating
(39) In addition, when the deposition film is formed only on one surface, it may be confirmed that the transmittance is about 15% when the incident angle is 50 degrees in the band of 1,550 nm. That is, since the noise signal of the LiDAR using the band of 1,550 nm may pass through as it is, distortion of the LiDAR signal occurs due to the bending.
(40) An object of the present invention is to have a high transmittance at 905 nm and to have a low transmittance at 1,550 nm, and the object is not achieved by the configuration as in the Comparative Example 2. On the contrary,
(41) TABLE-US-00003 TABLE 3 Front Side (concave) Back Side (convex) Average X- Y- X- Y- X, Y- Items axis (μm) axis (μm) axis (μm) axis (μm) axes(μm) Before 8.0 4.5 28.0 8.0 ±6.1 coating After 140.0 50.0 200.0 40.0 ±53.7 coating
(42) As may be seen from Table 3, when the reflective layer is deposited on the upper surface and the lower surface as in the present invention, the bending after deposition may be insignificant to about 53 μm even at the thickness of 2 mm to minimize the bending phenomenon, thereby not affecting the LiDAR signal.
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(44) In addition,
(45) In the experiment, the illuminance of lighting used 5,500 to 5,800 cd, the illuminometer used CL200-A, the glossmeter used AG-446, and the artificial sunlight used SOLAX XC-500.
(46) The artificial sunlight (S) acts as a noise to interfere with the normal operation of the LiDAR (L). The LiDAR uses the wavelength in the wavelength of 905 nm of infrared light, and APD also receives only the wavelength of 905 nm not to convert it into an electrical signal, and also changes some peripheral wavelengths into the electrical signal, thereby requiring high filter performance that selectively transmits only the wavelength of 905 nm at maximum in the optical filter.
(47) It was confirmed that when the light reflected from the artificial sunlight (S) on the wall (W) was incident on the LiDAR L to act as a noise, in the case of the plastic cover having only the visible light absorption function, a LiDAR signal was cut off by the sunlight as in
(48) This means that when the LiDAR window integrated optical filter according to various exemplary embodiments of the present invention is used in an actual autonomous vehicle, the sensing performance may be significantly increased to ensure the safety of a driver and a pedestrian.
(49) The LiDAR for experiment is an 8-channel LiDAR, and 8 channels (layers) are formed vertically.
(50) As described above, according to the various exemplary LiDAR window integrated optical filter of the present invention, the cover itself may function as the optical filter without having to constitute the separate optical filter on the LiDAR, thereby reducing the manufacturing cost, and the like compared to the conventional one, and nonetheless, it is more effective for the LiDAR reception performance.
(51) Although the present invention as described above has been described with reference to the exemplified drawings, it is not limited to the described embodiments, it is apparent by those skilled in the art that various modifications and changes may be made without departing from the spirit and scope of the present invention. Accordingly, the modified examples or changed examples should be included in the claims of the present invention, and the scope of the present invention should be interpreted based on the appended claims.