This application is a 35 USC § 371 national stage of international application No. PCT/CN2020/076663, which is entitled “HIGH AND LOW BEAM INTEGRATED VEHICLE LAMP LIGHTING DEVICE, VEHICLE LAMP, AND VEHICLE,” was filed Feb. 25, 2020, and claims the benefit of Chinese patent application No. 201910138161.X, filed on Feb. 25, 2019, and Chinese patent application No. 201921500240.2, filed on Sep. 10, 2019, all of which are incorporated herein by reference as if fully set forth.
The disclosure relates to a vehicle lamp lighting device, in particular to a high and low beam integrated vehicle lamp lighting device. In addition, the disclosure further relates to a vehicle lamp and a vehicle.
High and low beams are commonly used lighting tools for vehicles during travelling. When driving in open or dark places such as highways or suburbs, people need to use high beams, but when there is a vehicle on the opposite side that needs to pass each other, people need to switch to low beams. Moreover, driving on urban roads, low beams are generally used to prevent the high beams from affecting the vision of the driver of the oncoming vehicle and the pedestrians on the road due to the large angle of the high beams, causing a safety hazard.
At present, automobile front combination lamps mostly use a high and low beam integrated light emitting module. A low beam light condenser and a high beam light condenser are superimposed up and down to collect and collimate light emitted from a light source to form the corresponding light shape. Structures of the low beam light condenser and the high beam light condenser both extend in a front-rear direction, so the arrangement in the lamp has certain limitations.
In view of this, it is necessary to design a novel high and low beam integrated vehicle lamp lighting device that can overcome the above technical problems and effectively solve or alleviate the above technical problems.
The basic technical problem to be solved by the disclosure is to provide a high and low beam integrated vehicle lamp lighting device, which can not only enable the size in a front-rear direction to be reduced, but also has good heat dissipation performance and is convenient for miniaturization.
Further, the technical problem to be solved by the disclosure is to provide a vehicle lamp, which has a smaller size in the front-rear direction and has good heat dissipation performance.
In addition, the technical problem to be solved by the disclosure is to provide a vehicle, which has a vehicle lamp having a smaller size and is convenient to design.
In order to solve the above technical problems, the disclosure provides a high and low beam integrated vehicle lamp lighting device, including at least one first light source, at least one first light-condensing element, at least one second light source, at least one second light-condensing element, a light distribution element and a lens, wherein the first light-condensing element is arranged to be capable of condensing light emitted by the corresponding first light source and making the light projected through the lens by means of the light distribution element to form a low beam shape, and the second light-condensing element is arranged to be capable of condensing light emitted by the corresponding second light source and making the light projected through the lens by means of the light distribution element to form a high beam shape; wherein the light exit direction of at least one of the first light-condensing element and the second light-condensing element intersects with a light shape projection direction.
Optionally, the light distribution element includes an oblique reflecting surface and a front-rear extending reflecting surface, the oblique reflecting surface and the front-rear extending reflecting surface are connected to form a bent structure, and a front end of the front-rear extending reflecting surface is provided with a cut-off boundary; the first light-condensing element is arranged to make exit light thereof intercepted by the cut-off boundary and projected through the lens to form the low beam shape with a low beam cut-off line, exit light of the second light-condensing element propagates along an up-down direction, and the second light-condensing element is arranged to make the exit light thereof reflected by the oblique reflecting surface to form the high beam shape; or the exit light of the first light-condensing element propagates along the up-down direction, the first light-condensing element is arranged to make the exit light thereof reflected by the oblique reflecting surface, intercepted by the cut-off boundary and finally projected through the lens to form the low beam shape with a low beam cut-off line, and the second light-condensing element is arranged to make the exit light thereof projected through the lens to form the high beam shape.
Specifically, the light distribution element is a bent plate, the oblique reflecting surface and the front-rear extending reflecting surface are formed on an outer surface or an inner surface of the light distribution element, and the cut-off boundary is formed on an upper edge of the front end of the light distribution element.
More specifically, a plate thickness of the light distribution element is not less than 0.1 mm and not greater than 2 mm.
Optionally, the plate thickness of the light distribution element is not less than 0.1 mm and not greater than 0.5 mm.
Optionally, a front end of the front-rear extending reflecting surface is of a concave arc shape.
Specifically, the first light-condensing element and the second light-condensing element are both transparent total internal reflection lenses.
Optionally, a light exit surface of the first light-condensing element and/or a light exit surface of the second light-condensing element is a grid surface.
Optionally, the light distribution element includes a first light passing portion and a second light passing portion, the first light passing portion is connected to the second light passing portion through a total reflection surface to form an L-shaped structure, and the second light passing portion is provided with a cut-off portion for forming a low beam cut-off line; the first light-condensing element is disposed on a light entrance surface of the first light passing portion and is integrally formed with the first light passing portion; and the second light-condensing element is located behind and below the light distribution element and is arranged to make the exit light thereof projected through the lens to form the high beam shape; or the second light-condensing element is disposed on the light entrance surface of the first light passing portion and is integrally formed with the first light passing portion; and the first light-condensing element is located behind and above the light distribution element and is arranged to make the exit light thereof intercepted by the cut-off portion and projected through the lens to form the low beam shape with the low beam cut-off line.
Further, the light distribution element further includes a III region forming portion, the III region forming portion is located on a first surface or a second surface of the second light passing portion, and the first surface and the second surface are disposed opposite to each other.
Optionally, the III region forming portion is disposed on the first surface, and the III region forming portion is a groove.
Further, a bottom surface of the groove is provided with a grid pattern or a strip pattern.
Optionally, the III region forming portion is disposed on the first surface, the III region forming portion is a protrusion, and a surface of the protrusion opposite to the first surface is disposed at an included angle with the first surface.
Further, the surface of the protrusion opposite to the first surface is provided with a grid pattern or a strip pattern.
Optionally, the III region forming portion is disposed on the second surface, the III region forming portion is a protrusion, and a cross section of the protrusion is triangular.
Optionally, a light exit surface of the second light passing portion is a concave curved surface.
Optionally, the light distribution element includes an L-shaped low beam distribution element and an L-shaped high beam distribution element, the low beam distribution element corresponds to each of the first light-condensing elements, and the high beam distribution element corresponds to each of the second light-condensing elements.
Further, the low beam distribution element includes a low beam up-down light channel, a low beam total reflection surface and a low beam front-rear light channel, the low beam up-down light channel is connected to the low beam front-rear light channel through the low beam total reflection surface to form an L-shaped structure, and a light entrance surface of the low beam up-down light channel is integrally provided with the first light-condensing elements; and the high beam distribution element includes a high beam up-down light channel, a high beam total reflection surface and a high beam front-rear light channel, the high beam up-down light channel is connected to the high beam front-rear light channel through the high beam total reflection surface to form an L-shaped structure, and a light entrance surface of the high beam up-down light channel is integrally provided with the second light-condensing elements.
Optionally, the low beam total reflection surface is a flat surface, a concave surface or a convex surface, and the high beam total reflection surface is a flat surface, a concave surface or a convex surface.
Optionally, a lower side line of a light exit surface of the low beam distribution element is in contact with an upper side line of a light exit surface of the high beam distribution element, and a wedge-shaped gap gradually increasing from front to rear is formed between the low beam distribution element and the high beam distribution element.
Optionally, the low beam total reflection surface and/or a lower side surface of the low beam front-rear light channel is provided with a high-reflecting film, the light exit surface of the low beam distribution element is provided with an anti-reflection film, the high beam total reflection surface and/or an upper side surface of the high beam front-rear light channel is provided with a high-reflecting film, and the light exit surface of the high beam distribution element is provided with an anti-reflection film.
Optionally, the lens is a planoconvex lens or a biconvex lens.
Optionally, a light entrance surface and/or a light exit surface of the lens is provided with an anti-reflection film.
On the basis of the above technical solutions, the disclosure further provides a vehicle lamp, including the high and low beam integrated vehicle lamp lighting device according to any one of the above technical solutions.
On the basis of the above technical solution, the disclosure further provides a vehicle, including the vehicle lamp according to the above technical solution.
By adopting the above basic technical solutions of the disclosure, compared with the technical solution of the existing high and low beam integrated light emitting module in which the low beam light condenser and the high beam light condenser are superimposed up and down and structures of the low beam light condenser and the high beam light condenser both extend in the front-rear direction, the high and low beam integrated vehicle lamp lighting device of the disclosure using the light distribution element effectively enables the sizes of the low beam light-condensing structure and the high beam light-condensing structure formed by the first light-condensing element, the second light-condensing element and the light distribution element in the front-rear direction to be reduced, which is more conducive to the layout design in the vehicle lamp. Moreover, a distance between the first light source for forming the low beam and the second light source for forming the high beam is increased, so that the heat dissipation performance is effectively enhanced, and the overall size of the high and low beam integrated vehicle lamp lighting device can be reduced, which is convenient for miniaturization of the vehicle lamp.
Particularly, the light distribution element uses a bent structure, such as an L-shape structure, so that the size of the high and low beam integrated vehicle lamp lighting device in the front-rear direction is effectively reduced to some extent, and the vehicle lamp is more miniaturized.
Other features and advantages of the disclosure will be described in detail in the detailed description which follows.
The following accompanying drawings serve to provide a further understanding of the disclosure and constitute a part of the description, and together with the following specific implementations, serve to explain the disclosure. However, the protection scope of the disclosure is not limited to the following accompanying drawings and specific implementations. In the accompanying drawings:
The specific implementations of the disclosure will be described in detail in conjunction with the accompanying drawings. It should be understood that the specific implementations described here are only used to illustrate and explain the disclosure, and the protection scope of the disclosure is not limited to the following specific implementations.
In addition, the terms “first” and “second” are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, the features defined with “first” and “second” may explicitly or implicitly include one or more of the features.
It should be understood that, in order to facilitate the description of the disclosure and simplify the description, the terms “front, rear” refer to the front-rear direction of the high and low beam integrated vehicle lamp lighting device along the light exit direction thereof, for example, in
As shown in
Wherein, by setting the positional relationship between the first light-condensing element 2, the second light-condensing element 4 and the light distribution element, the light exit direction of at least one of the first light-condensing element 2 and the second light-condensing element 4 intersects with the light shape projection direction. Here, the “light shape projection direction” refers to a direction in which light exits from a light exit surface of the lens 7. The above “the light exit direction of at least one of the first light-condensing element 2 and the second light-condensing element 4 intersects with the light shape projection direction” means that light of at least one of the first light-condensing element 2 and the second light-condensing element 4 propagates generally along the up-down direction, as shown in
It can be understood that the number of the first light sources 1 and the number of the second light sources 3 can be set according to design requirements.
The disclosure can realize the technical effect of reducing the size in the front-rear direction through various specific structures of light distribution elements.
As a specific embodiment, as shown in
Specifically, the light distribution element is a bent plate, the oblique reflecting surface 501 and the front-rear extending reflecting surface 502 are formed on an outer surface or an inner surface of the light distribution element, and the cut-off boundary 503 is formed on an upper edge of the front end of the light distribution element. A plate thickness of the light distribution element is not less than 0.1 mm and not greater than 2 mm. Preferably, the plate thickness of the light distribution element is not less than 0.1 mm and not greater than 0.5 mm. Wherein, the cut-off boundary 503 is formed at the front end of the front-rear extending reflecting surface 502. Further, the front end of the front-rear extending reflecting surface 502 may be designed as a concave arc shape to be able to form a clear light shape. The principle lies in that: the concave arc shape is a concave arc shape adapted to the focal plane of the lens 7, and the so-called focal plane refers to a plane orthogonal to the optical axis of the lens 7. However, due to the phase difference in field curvature, the focal plane of the lens 7 is actually a curved surface that is concave rearward, so that the closer the part of the front-rear extending reflecting surface 502 is to the focal plane, the clearer the light pixel formed by the light emitted through this part passing through the lens 7. Therefore, in order to be able to form a clear light shape, it is necessary to design the front end of the front-rear extending reflecting surface 502 into a concave arc shape which is the same or substantially the same as the focal plane of the lens 7.
Generally, the first light-condensing element 2 and the second light-condensing element 4 may be transparent optical elements, such as total internal reflection lenses that use the total reflection principle to collect and process light. According to the light energy distribution characteristics of the LED, discrete points on contour lines of the refracting surface and the reflecting surface of the total internal reflection lens are obtained by controlling the light path, a spline curve is obtained by interpolation, and then by rotating 360°, a model of the total internal reflection lens is obtained. While maintaining the small size of the lens, the light energy utilization rate is 95.26%.
Specifically, the first light-condensing element 2 and the second light-condensing element 4 may be in a light-condensing cup structure with a concave cavity in which a curved protrusion facing the light source is arranged. The light exit path can be controlled by adjusting the curvature of the side wall of the concave cavity and the curvature of the curved protrusion in the concave cavity to effectively adjust the energy distribution of the output light shape. The light-condensing elements have multiple adjustable structures, and are convenient for adjustment and more accurate in light shape control. Of course, the first light-condensing element 2 and the second light-condensing element 4 may be provided with no concave cavity inside, being only solid bodies of which the outer contour is a curved structure gradually increasing from the rear end to the front end, and the light entrance portion is of a light-condensing cup structure with a flat surface, a convex curved surface or a concave curved surface, so that the light can be better collected. The first light-condensing element 2 and the second light-condensing element 4 may be made of transparent plastic, glass or silicone, and the outer contour is a curved structure gradually increasing from the rear end to the front end, so that the light emitted from the corresponding light source can be well collected and collimated, thereby enhancing the light utilization rate.
In addition, a light exit surface of the first light-condensing element 2 and/or a light exit surface of the second light-condensing element 4 may be a grid surface to facilitate dimming and obtain a more uniform light shape. Wherein, the grid surface may be formed by splicing a plurality of flat surfaces or curved surfaces. Of course, in order to simplify the process, the light exit surface of the first light-condensing element 2 and the light-condensing element 4 may be a flat surface, as shown in
In the above embodiment, the front-rear extending reflecting surface 502 is located above the oblique reflecting surface 501 to form an approximately inverted L-shaped bent plate. Correspondingly, by simple changes, an approximately L-shaped bent plate as shown in
As another specific embodiment, as shown in
Specifically, as shown in
In addition, as shown in
Wherein, for the specific structural form of the grid surface, reference may be made to
Further, as shown in
Chinese patent No. CN106122870B discloses an LED-light-source high and low beam integrated vehicle lamp module. A III region forming structure of the LED-light-source high and low beam integrated vehicle lamp module is disposed on an upper surface of a light condenser. Low beam light propagates from the upper part of the light condenser, so the III region forming structure may block a part of the low beam light or change the propagation path of a part of the low beam light. This part of light is the part of light close to the low beam cut-off line, which may affect the performance of the low beam, for example, reduce the brightness of the 75R test point. In addition, the upper surface of the light condenser is a total reflection surface of the high beam. Disposing the III region forming structure on the upper surface of the light condenser may change the angle of part of the total reflection surface, which will change the total reflection light path of the high beam and lower the performance of the high beam.
Therefore, as shown in
There are various specific structure forms of the III region forming portion 6 that can be used to form the low beam III region light shape 700. Specifically, as shown in
Wherein, the bottom surface of the groove is an upper end surface of the groove shown in
In a specific embodiment, as shown in
As shown in
The arrowed lines in
The arrowed lines in
In addition, as shown in
Further, as shown in
As another specific embodiment, as shown in
In this embodiment, the second light-condensing element 4 is configured as a high beam primary optical element of the high and low beam integrated vehicle lamp lighting device, the integral piece formed by the first light-condensing element 2 and the light distribution element is configured as a low beam primary optical element of the high and low beam integrated vehicle lamp lighting device, the light distribution element is disposed in an L shape, and the light exit surface of the second light passing portion 505 of the light distribution element faces the lens 7. At the same time, a front edge of the second surface 5052 of the second light passing portion 505 has the cut-off portion 507 for forming the low beam cut-off line 900, and light emitted to the cut-off portion 507 is refracted through the lens 7 to form the low beam cut-off line 900.
Light emitted by the first light source 1 enters the light distribution element through the first light-condensing element 2, a part of the light is reflected by the total reflection surface 506 to the light exit surface of the second light passing portion 505, emitted to the lens 7, and refracted through the lens 7 to form the light shape below the low beam cut-off line 800, and the other part of the light is reflected by the total reflection surface 506 to the III region forming portion 6, emitted from a front side surface of the III region forming portion 6 to the lens 7, and refracted through the lens 7 to form the low beam III region light shape 700. Light emitted by the second light source 3 is condensed by the second light-condensing element 4, emitted through the lower part of the second light passing portion 505 to the lens 7, and refracted by the lens 7 to form the high beam shape.
Wherein, the light exit surface of the second light passing portion 505 may be set as a concave curved surface to be capable of forming a clear light shape. The principle lies in that: the concave curved surface is adapted to the focal plane of the lens 7, and the so-called focal plane refers to a plane orthogonal to the optical axis of the lens 7. However, due to the phase difference in field curvature, the focal plane of the lens 7 is actually a curved surface that is concave rearward, so that the closer the part of the light exit surface of the second light passing portion 505 is to the focal plane, the clearer the light pixel formed by the light emitted through this part passing through the lens 7. Therefore, in order to be able to form a clear light shape, it is necessary to design the light exit surface of the second light passing portion 505 into a concave curved surface which is the same or substantially the same as the focal plane of the lens 7.
As another specific embodiment, as shown in
Wherein, the optical axis direction of the first light source 1 is the up-down direction, and the light emitting direction faces downward. The low beam distribution element 508 is of an L shape, with one end facing upward and connected to the first light-condensing element 2 and the other end facing forward. The first light source 1 is disposed above the first light-condensing element 2, and the bend of the low beam distribution element 508 has a low beam total reflection surface 5082. The optical axis direction of the second light source 3 is the up-down direction, and the light emitting direction faces upward. The high beam distribution element 509 is of an inverted L shape, with one end facing downward and connected to the second light-condensing element 4 and the other end facing forward. The first light source 3 is disposed below the second light-condensing element 4, and the bend of the high beam distribution element 509 has a low beam total reflection surface 5092. To some extent, the low beam distribution element 508 and the high beam distribution element 509 reduce the size of the high and low beam integrated vehicle lamp lighting device in the front-rear direction, and optimizes and improves the assembly size of the high and low beam integrated vehicle lamp lighting device, so that the high and low beam integrated vehicle lamp lighting device is more miniaturized. Moreover, the first light-condensing element 2 and the second light-condensing element 4 are respectively located at an upper part and a lower part of the space of the high and low beam integrated vehicle lamp lighting device, so that the first light source 1 and the second light source 3 are respectively correspondingly disposed at the upper part and the lower part of the space of the high and low beam integrated vehicle lamp lighting device. A certain distance is left between the first light source 1 and the second light source 3, and the low beam LED accounting for the main power is arranged at the upper part, so the heat dissipation performance is greatly improved. Due to the above special design, the size of the radiator matched therewith is correspondingly reduced, thereby realizing the advantages of small size, light weight and low cost.
In a specific embodiment, as shown in
Specifically, the front-rear extending reflecting surface 502 is formed on a lower surface of the low beam front-rear light channel 5083, the cut-off boundary 503 is formed at a front edge of the lower surface of the low beam front-rear light channel 5083, and light emitted by each of the first light-condensing elements 2 is reflected by the low beam total reflection surface 5082 with the same function as the oblique reflecting surface 501, and thus, is intercepted by the cut-off boundary 503 at the front edge of the lower surface of the low beam front-rear light channel 5083 and projected through the lens 7 to form the low beam shape with the low beam cut-off line. The front-rear extending reflecting surface 502 is formed on an upper surface of the high beam front-rear light channel 5093, the cut-off boundary 503 is formed at a front edge of the upper surface of the high beam front-rear light channel 5093, and light emitted by each of the second light-condensing elements 4 is reflected by the high beam total reflection surface 5092 with the same function as the oblique reflecting surface 501, and thus, is intercepted by the cut-off boundary 503 at the front edge of the upper surface of the high beam front-rear light channel 5093 and projected through the lens 7 to form the high beam shape with the high beam cut-off line. The upper and lower cut-off boundaries 503 are in contact.
As shown in
In a specific embodiment, the low beam total reflection surface 5082 is a flat surface, a concave surface or a convex surface, and the high beam total reflection surface 5092 is a flat surface, a concave surface or a convex surface. The lower surface of the low beam front-rear light channel 5083 is a flat surface or a cambered surface, the diameter of the arc being 100 mm-500 mm. The upper surface of the high beam front-rear light channel 5093 is a flat surface or a cambered surface, the diameter of the arc being 100 mm-500 mm. wherein, the concave surface, the convex surface or the cambered surface may be used to adjust the reflectivity of the surface, the light shape of light distribution of the vehicle lamp, the shape of the light shape cut-off line and the like.
As shown in
In order to enhance optical properties of the low beam distribution element 508 and the high beam distribution element 509, the low beam total reflection surface 5082 and/or a lower side surface of the low beam front-rear light channel 5083 is provided with a high-reflecting film, the light exit surface of the low beam distribution element 508 is provided with an anti-reflection film, the high beam total reflection surface 5092 and/or an upper side surface of the high beam front-rear light channel 5093 is provided with a high-reflecting film, and the light exit surface of the high beam distribution element 509 is provided with an anti-reflection film.
In a specific embodiment, the lens 7 may be a planoconvex lens, or the lens 7 may be a biconvex lens. By using the biconvex lens, the size of the lens is smaller, the sunlight focusing risk is lower, and the dispersion is better.
Further, the material of the lens 7 is PMMA with a refractivity of 1.49-1.51, and the light entrance surface and/or the light exit surface of the lens 7 is provided with an anti-reflection film.
In a specific embodiment, the number of the first light sources 1 is greater than or equal to 4, and the number of light source light emitting chips near the middle is greater than or equal to the number of light source light emitting chips on the two sides, so as to increase the brightness of the middle position of the light shape. The number of the second light sources 3 is greater than or equal to 2, the number of the first light-condensing elements 2 is greater than or equal to the number of the first light sources 1, and the number of the second light-condensing elements 4 is greater than or equal to the number of the second light sources 3.
Specifically, the first light source 1 and the second light source 3 are both LED light sources. The number of the LED light source light emitting chips of the first light source 1 near the middle is 3, and the rest are single-chip LED light sources. The number of the first light-condensing elements 2 is 6, and each of the first light sources 1 is surrounded by the corresponding first light-condensing element 2. The number of the second light-condensing elements 4 is 3, and each of the second light sources 1 is surrounded by the corresponding second light-condensing element 2.
It should be noted that the light source of the disclosure may adopt an LED light source, but is not limited to the LED light source only, and the use of a laser light source or other similar light sources shall also fall within the protection scope of the disclosure. There are multiple light sources that are disposed dispersedly, so that heat sources may be dispersed, thereby enhancing the heat dissipation performance. In addition, in a specific embodiment, the first light-condensing elements 2 may be disposed dispersedly or connected integrally. Similarly, the second light-condensing elements 4 may be disposed dispersedly or connected integrally.
The disclosure further provides a vehicle lamp, which may have the high and low beam integrated vehicle lamp lighting device according to any embodiment above, that is, use all technical solutions of all the embodiments of the high and low beam integrated vehicle lamp lighting device above, and therefore, has at least all beneficial effects brought by the technical solutions of the embodiments of the high and low beam integrated vehicle lamp lighting device above.
Further, a light propagation path is formed in the vehicle lamp. The vehicle lamp includes the high and low beam integrated vehicle lamp lighting device, a radiator and a lens mounting bracket. The high and low beam integrated vehicle lamp lighting device is mounted on the radiator and located in a cavity enclosed by the radiator and the lens mounting bracket. Thus, the vehicle lamp has a correspondingly reduced size and good heat dissipation performance.
The disclosure further provides a vehicle, which may have the vehicle lamp according to any embodiment above, that is, use all technical solutions of all the embodiments of the vehicle lamp above, and therefore, has at least all beneficial effects brought by the technical solutions of the embodiments of the vehicle lamp above.
The preferred implementations of the disclosure have been described in detail above in conjunction with the accompanying drawings, but the disclosure is not limited to the specific details in the above implementations, and various simple variations may be made to the technical solutions of the disclosure within the scope of the technical idea of the disclosure. These simple variations are all within the protection scope of the disclosure. It should be further noted that the specific technical features described in the above specific implementations may be combined in any suitable manner in the case of no contradiction. In order to avoid unnecessary repetition, the disclosure will not be further described in various possible combinations.
In addition, any combination of the various different implementations of the disclosure may be made as long as it does not deviate from the idea of the disclosure, and it should also be regarded as the contents of the disclosure.
Number | Date | Country | Kind |
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201910138161.X | Feb 2019 | CN | national |
201921500240.2 | Sep 2019 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2020/076663 | 2/25/2020 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2020/173444 | 9/3/2020 | WO | A |
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Entry |
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English translation of written opinion in the international search report of the corresponding PCT application WO2020/173071A1. |
Number | Date | Country | |
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20220136671 A1 | May 2022 | US |