Light module for the emission of light directed in parallel
专利摘要:
The invention relates to a light module (1) for emitting parallel-directed light in a main emission direction (x), comprising a reflector (2) with a focal point (F) at its front, at least one substantially at the focal point (F) of the reflector ( 2) arranged LED light source (3) for irradiation of light in the reflector (2), and arranged on the back of the reflector (2) heat sink, wherein the LED light source (3) opposite to the main emission (x) is oriented, wherein the reflector (2) is arranged to direct the light irradiated by the at least one LED light source (3) into the reflector (2) in parallel and to radiate it in the direction of the main emission direction (x), wherein the at least one LED light source ( 3) by means of at least one of the heat sink (4) towards the LED light source (3) extending connecting web (5) is held. 公开号:AT520487A1 申请号:T50800/2017 申请日:2017-09-21 公开日:2019-04-15 发明作者: 申请人:Litestudio Og; IPC主号:
专利说明:
Light module for the emission of light directed in parallel The invention relates to a luminous module for emitting (preferably exclusively) collimated light in a main emission direction, comprising a reflector with a focal point located at its front, at least one LED light source arranged substantially at the focal point of the reflector for irradiating light into the reflector, and a heat sink disposed at the rear of the reflector. Furthermore, the invention relates to a lighting device, in particular a film headlight, for the emission of collimated light, comprising a number of lighting modules according to the invention. From the prior art, different lighting modules for the emission of collimated light have become known. Conventional stage headlamps for radiating collimated light have e.g. Gas discharge lamps, which are arranged in the region of a focal point of a reflector. Due to the spatial extent of the gas discharge lamps, however, it is not possible to arrange such a light source exclusively in the focal point of the reflector. Conventional headlamps of this type have a not insignificant divergence and considerable spatial dimensions, which stand in the way of the production of a compact sheet light. Alternatively, lighting modules with LED light sources have already been provided. The LED light source has small spatial dimensions compared to a gas discharge lamp. The light exit surface of an LED light source is comparatively small and can be arranged well within a reflector. The emission by an LED light source is generally inhomogeneous, i. the emission takes place in the form of a typically nonlinear diverging light distribution and the light intensity varies as a function of the emission angle. The known from the prior art lighting modules have a lot of space and / or are not suitable to realize the most accurate parallel light emission. It is therefore an object of the invention to overcome the mentioned disadvantages of the prior art. This object is achieved by a light module of the type mentioned, in which according to the invention the LED light source is oriented counter to the main emission direction, wherein the reflector is adapted to direct the irradiated by the at least one LED light source in the reflector light in parallel and Direction of the main emission direction, wherein the at least one LED light source is held by at least one of the heat sink to the LED light source extending connecting web, wherein the at least one connecting web is arranged for heat conduction from the at least one LED light source to the heat sink, and the at least one connecting web, which preferably consists at least partially of metal, which thermally contacts at least one LED light source and the heat sink, wherein the at least one connecting web further comprises means for electrically contacting the at least one LED light source. By aligning the LED light source according to the invention counter to the main emission direction, it is possible to compensate the emission characteristic of an LED light source by the reflector such that the light emitted by the light module can be emitted only as collimated light. The expression "arranged essentially at the focal point" takes into account that the at least one LED light source - due to the spatial extent of its light exit surface - can never be completely exclusively in the focal point, however, the LED light source is aimed for emitting parallel-directed light to arrange as precisely as possible in this focal point or to arrange a center of gravity of the light exit surface in this focal point. By means of the luminous module according to the invention, a compact luminous device for emitting light directed in parallel is created, which basically can be dimensioned as desired over a large area by juxtaposing further luminous modules. It can be used in particular in the following technical fields or products or for the following purposes: film and photography, replica of sunlight without the blemish of other approaches (stage lights, Arri M series, PAR spotlights, brood lights), Light Tubes (Photography of automobiles and large glossy surfaces, soft light with soft shadows). In particular, the light module according to the invention is for use by lighting, gaffer, photographer, Production companies, lighting and camera rental, sales of lighting equipment and in connection with event technology particularly suitable. By means of the lighting module according to the invention, extremely narrow light beams can be realized over great distances. Also, single-pixel solutions and RGB special effects are conceivable at concerts, in theaters or for applications in the field of lighting of buildings. Likewise, artificial suns (= light spots with high illuminance compared to the environment in buildings to imitate the sunlight), floodlights (sports, airports, large facilities) or narrow beam emitters (facade lighting, lighting of buildings and bridges, lighting over long distances) or searchlight realize. In order to enable a particularly good heat-conducting stable connection of the LED light source with the cooling body can be provided that the at least one connecting web is formed as a metal tube with recorded within the metal tube cooling liquid. In particular, it can be provided that the lighting module has at least two connecting webs, preferably exactly three connecting webs, which extend through the reflector towards at least one LED light source, wherein the angle, the adjacent connecting webs within a normal to the main emission direction imaginary plane to each other , is the same for all connecting bridges. This makes it possible to achieve a particularly stable arrangement by means of which the electrical and thermal contacting of the LED light source can be facilitated. If two connecting webs are provided, they enclose an angle of 180 ° to one another; in the case of three connecting webs, these are arranged at an angle of 120 ° to each other, etc. Advantageously, it can be provided that the means for electrically contacting the at least one LED light source by the connecting web itself (the connecting web can be made electrically conductive) is formed by at least one metallic electrical line along the connecting web is formed as part of the connecting web. Alternatively, it can be provided that the means for electrically contacting the at least one LED light source is formed by at least one guided along the web separate electrical line. In order to create a particularly compact and robust lighting module, it can be provided that the heat sink, the reflector, the at least one connecting web and the at least one LED light source form a structural unit. In addition, it can be provided that the front of the reflector is covered by a transparent protective glass, wherein the at least one LED light source between reflector and protective glass is included. In particular, it may be provided that the reflector is limited by parallel to the main emission direction oriented side surfaces (which may be formed as part of the reflector and / or part of a housing) is limited and the protective glass extends to the side surfaces, wherein the side surfaces also the geometric dimensions of the light module set normal to Hauptabstrahlrichtung. By extending the transparent protective glass to the edge of the reflector and avoiding protruding beyond the edge elements is possible that the lighting modules can be strung together almost seamlessly, so that a homogeneous light transition between directly adjacent lighting modules is possible. Preferably, it can be provided that the protective glass and the reflector are sealed to each other, and the at least one connecting web and the reflector are sealed to each other. Thus, the light module itself is sealed and thus protected against the entry of dust or water. In order to manually position the LED light source exactly at the focal point in order to optimize focusing, or to dislodge it for the purpose of slight defocusing, the at least one LED light source can be rigidly connected to the heat sink by means of the at least one connecting web, the reflector being guided along an inward direction Main emission direction oriented portion of the at least one connecting web with respect to the at least one LED light source (or vice versa) is displaceable. As a particularly expedient embodiment may be provided for this purpose that, for displacement of the reflector with respect to the at least one LED light source of the reflector by means of an adjusting screw on the heat sink attacks, by means of which the reflector in Main emission is displaced. To change the light characteristic, the LED can be moved out of the ideal focus. This can be advantageous for special applications if, depending on the target distance, more or less light is to be directed to a specific area. In this context, other types of focusing or defocusing are conceivable: 1.) Focusing to the adjustment of the modules with each other, each module is therefore adjusted individually. 2.) Focusing, whereby all modules can be coupled. This variant can e.g. be implemented with the aid of a servomotor. To limit any divergence to a minimum, it can be provided that the ratio of maximum LED light exit surfaces diagonal to maximum reflector diagonal is at most 1:20, preferably at most 1:40. This makes it possible to achieve a particularly reliable bundling of the light beams. In the case of circular shapes, the maximum diagonal corresponds to the circle diameter. By means of the lighting module according to the invention, it is possible to realize particularly powerful parallel radiators. For this purpose, it can be provided that the reflector surface and luminous flux of the LED are chosen such that the illuminance between 50,000 and 150,000 lx is in the vicinity of the front of the reflector in a normal plane to the main emission. By the term short range is meant a distance in the order of one to five times the diameter of the reflector. In order to optimize the light distribution emitted by the LED light source, provision can be made for a primary optics, in particular a lens and / or a mixing rod or a reflector, to be attached to the at least one LED light source, by means of which the at least one LED light source radiated light distribution is changed. In this way, another possibility for optimization is provided, e.g. flatter reflector designs or the reduction of inhomogeneities within the light distribution emitted by the light module allows. In order to achieve the most homogeneous possible transition between the light modules in the case of using multiple light modules, it can be provided that the geometric shape of the light module is chosen such that by flat side and / or superimposing individual light modules of the same geometric shape an arbitrarily extensible form-fitting area-filling arrangement of lighting modules within a plane can be achieved. The term "superimposition" is understood to mean an arrangement in which the lighting modules are arranged above or below each other within a normal plane formed relative to the main emission direction. Furthermore, the invention relates to a lighting device, in particular film headlights, for emitting light directed in parallel, comprising a number of lighting modules according to the invention, wherein adjacent lighting modules adjoin one another in a form-fitting manner. The term "a number of" in the context of this disclosure, unless otherwise stated, means a number which may be, for example, one, two, three, four or more, in particular six, eight, ten, fifteen, twenty or more. The person skilled in the art is able to select the number of lighting modules corresponding to the desired light exit surface of the lighting device. In addition, it can be provided that the lighting modules are arranged in the form of a matrix, wherein the matrix has at least n rows and at least m columns, where n and m are natural numbers and at least 1, 2, 3,4, 5, or at least 10 , In order to achieve a rectified radiation by means of all lighting modules, it can be provided that all lighting modules are arranged flat within a plane, wherein the main emission of the individual lighting modules matches. Before discussing an exemplary embodiment of the invention in more detail, some general information will now follow in connection with the present invention. By means of the luminous module or the lighting device according to the invention, a property which is very important for film application, namely a relatively large and homogeneous beam cross-section, is already realized shortly after emerging from the luminaire system. At a ratio of the diameter of the LED (LES [= Light Emitting Surface]) to the diameter of the module (perimeter) of 1 to 40 (real Dimensions preferably 3mm to 120mm) can be built very close-bunching systems that have almost sun-like light properties. Preferably white LEDs are used with the light color warm white, neutral white or cold white, with exactly one LED per reflector can be provided. Alternatively, an array of small single LEDs may be provided. Also, a variant may be provided with a multi-chip LED. The LEDs may have different colors of light, e.g. warm white and cool white and / or red, green or blue. By being able to individually control the LEDs individually, both the luminous intensity and the light color can be varied in a targeted manner. On the one hand, the modularity of the lighting modules is of particular advantage. On the other hand, it is also conceivable to use the lighting modules individually. So could e.g. a single high power module with a LED (LES = 19mm) with 500W and a reflector with a diameter of 500mm to 700mm be provided. The connecting webs may e.g. In principle, any other, thermally well-conductive material is also conceivable.With more powerful modules, liquid cooling could also be considered. If the power supply is realized directly via the connecting webs as a conductor, preferably two connecting webs are provided. Should a color temperature change also be provided, it is advantageous to feed in via three connecting webs (for example, 1x common cathode and 2x an anode). The reflector preferably has a parabolic contour and consists, for example, of injection molding, which is vapor-deposited with a reflective layer, or of metal (for example formed of aluminum sheet). A primary optic could e.g. be designed as a primary lens. By changing the light distribution of the LED (ie how much light hits where and how strongly on the reflector), the light distribution of the module is also affected. Thus one can achieve an optimal overlay of the single modules. The invention is explained in more detail below with reference to exemplary and non-limiting embodiments, which are illustrated in the figures. It shows 1a and b) each show a schematic representation of the emission characteristic of a reflector arrangement according to the prior art, 2 shows a perspective view of an embodiment of a lighting module according to the invention, FIG. 3 is a schematic sectional view of the lighting module according to FIG. 2, FIG. 4 shows an exploded view of the lighting module according to FIGS. 2 to 3, FIG. 5 a sectional representation of a further embodiment of a lighting module according to the invention, FIGS. 6a to f show a schematic sectional illustration of further embodiments of a lighting module according to the invention, FIG. 7 a shows a lighting device according to the invention comprising a number of lighting modules according to the invention, FIG. 7b shows a shadow image produced by a lighting device according to FIG. 7a, FIG. 8 shows a schematic illustration of the visual impression that a viewer receives from an operating lighting device as a function of its position, and 9a, a lighting device according to the prior art, as well as FIG. 9b shows a shadow image produced by the illumination device according to FIG. 9a. In the following figures, unless otherwise stated, like reference numerals designate like features. Figures la and b) each show a schematic representation of the radiation characteristic of a reflector assembly according to the prior art, in which a light source, for example in the form of an LED, is arranged in the center of the reflector and emits light in a main emission. It can be seen that a portion of the light of the light source is reflected by the reflector on the one hand and aligned with it, on the other hand, however, a remaining portion leaves the reflector unreflective at an exit angle of up to 40 °. Such arrangements are therefore hardly suitable for the imaging of exclusively collimated light. FIG. 2 shows a perspective illustration of an embodiment of a lighting module 1 according to the invention. The lighting module 1 is designed to emit light directed in parallel into a main emission direction x, and has a reflector 2 with a focal point F at its front, at least one focal point F of the light source Reflector arranged LED light source 3 for the irradiation of light in the reflector 2, and arranged on the back of the reflector 2 heat sink 4. The LED light source 3 is oriented counter to the main emission direction x (which in turn is oriented parallel to the optical axis of the reflector), wherein the reflector 2 is adapted to direct the incident of the at least one LED light source 3 in the reflector 2 in parallel and to radiate x in the direction of the main emission direction x. The at least one LED light source 3 is held by means of at least one of the heat sink 4 toward the LED light source 3 extending connecting web 5 - in the present embodiment, three connecting webs 5 are provided. The at least one connecting web 5 is designed for heat conduction from the at least one LED light source 3 to the heat sink 4 and is preferably at least partially made of metal. Each connecting web 5 is thermally connected to the at least one LED light source and the heat sink, wherein the connecting web 5 also comprises means for electrically contacting the at least one LED light source 3. These may be separate electrical lines, for example insulated electrical strands guided along the bridge 5, or lines integrated in the bridge 5 (the bridge 5 may itself be electrically conductive for this purpose). FIG. 3 shows a schematic sectional illustration of the lighting module 1 according to FIG. 2. It can be seen that the front side of the reflector 2 is covered by a transparent protective glass 6, the at least one LED light source 3 being enclosed between the reflector 2 and the protective glass 6. The at least one LED light source 3 is rigidly connected to the heat sink 4 by means of the at least one connecting web 5, the reflector 2 being displaceable along a section of the connecting webs 5 oriented in the main emission direction with respect to the at least one LED light source 3. For the displacement of the reflector 2 in relation to the at least one LED light source 3, the reflector 2 engages by means of an adjusting screw 7 on the heat sink 4, wherein the reflector 2 by rotation of the adjusting screw 7 in the main radiation x is displaceable with respect to the light emitting diode 3. FIG. 4 shows an exploded view of the lighting module 1 according to FIGS. 2 to 3. It can be seen that the protective glass 6 engages a housing 8, that the side walls 2 a of the reflector 2 surrounds flush and extends up to the protective glass 6. FIG. 5 shows a sectional view of a further embodiment of a lighting module 1 according to the invention. A primary optic 9, in the present case in the form of a primary lens, is attached to the at least one LED light source 3, by means of which the light distribution emitted by the at least one LED light source is changed is. FIGS. 6a to f show schematic sectional views of further embodiments of a luminous module 1 according to the invention, wherein the variant according to FIG. 6a has no primary optics, in the variant according to FIG. 6b the primary optics 9 as lens, in FIG. 6c as reflector, in FIG. 6d as Mixing rod (for mixing different light colors, which are irradiated for example by different light exit surfaces of a corresponding light source or corresponding light sources in the mixing rod), in Fig. 6e as a combination of mixing rod and primary lens and in Figure 6f as a mixing rod with integrated exit optics at the light exit surface of the light rod is trained. FIG. 7 a shows a lighting device 10 according to the invention comprising a number of lighting modules 1 according to the invention, which are arranged in a form-fitting manner next to one another and one above the other in a single plane. FIG. 7b shows a shadow image produced by an illumination device 10 according to FIG. 7a. It can be seen that the shadow of the window shown therein is sharply outlined due to the parallel light emission and corresponds to a normal projection of the window on the shadow plane. FIGS. 9a and 9b show, by comparison, a lighting device according to the prior art, as well as a shadow image produced therewith. In it a blurred image of the shadow and the expansion of the shadow elements is clearly visible. FIG. 8 shows a schematic illustration of the visual impression that a viewer receives from an operating lighting device 10 as a function of its position. The radiation of the light emitted by the illumination device 10 is directed to a large extent in parallel, so that only those areas that are directly in the main emission direction x in front of the eye are perceived as light-emitting for a viewer. In view of this teaching, one skilled in the art will be able to arrive at other, not shown embodiments of the invention without inventive step. The invention is therefore not limited to the embodiment shown. Also, individual aspects of the invention or the embodiment can be taken up and combined with each other. Essential are the ideas underlying the invention, which can be performed by a person skilled in the knowledge of this description in a variety of ways and still remain maintained as such. Any reference numbers in the claims are exemplary and are only for ease of reading the claims without limiting.
权利要求:
Claims (18) [1] 1. luminous module (1) for emitting parallel-directed light in a main emission direction (x), comprising - a reflector (2) with a focal point (F) lying on its front side, - at least one essentially at the focal point (F) of the reflector ( 2) arranged LED light source (3) for irradiation of light in the reflector (2), - and one at the back of the reflector (2) arranged heat sink (4), characterized in that the LED light source (3) against the Main direction of emission (x) is oriented, wherein the reflector (2) is adapted to direct the light emitted from the at least one LED light source (3) in the reflector (2) in parallel and to radiate in the direction of the main emission (x), wherein the at least one LED light source (3) is held by means of at least one connecting web (5) extending from the heat sink (4) to the LED light source (3), wherein the at least one connecting web (5) for heat conduction from the at least an LED light source (3) is arranged towards the heat sink (4), and the at least one connecting web (5), which preferably consists at least partially of metal, the at least one LED light source (3) and the heat sink (4) thermally wherein the at least one connecting web (5) also has means for electrically contacting the at least one LED light source (3). [2] Second light module (1) according to claim 1, wherein the at least one connecting web (5) is formed as a metal tube with recorded within the metal tube cooling liquid. [3] 3. lighting module (1) according to claim 1 or 2, wherein the light module (1) at least two connecting webs, preferably exactly three connecting webs, extending through the reflector (2) through to the at least one LED light source (3), wherein the angle, the adjacent connecting webs within a normal to the main emission direction (x) imaginary plane to each other, is the same for all connecting webs (5). [4] 4. lighting module (1) according to any one of the preceding claims, wherein the means for electrically contacting the at least one LED light source (3) by the connecting web (5) itself is formed by at least one metallic electrical line along the connecting web (5) as Part of the connecting web (5) is formed. [5] 5. lighting module (1) according to one of claims 1 to 3, wherein the means for electrically contacting the at least one LED light source (3) by at least one along the connecting web (5) guided separate electrical line is formed. [6] 6. lighting module (1) according to any one of the preceding claims, wherein the heat sink, the reflector (2), the at least one connecting web (5) and the at least one LED light source (3) form a structural unit. [7] 7. lighting module (1) according to any one of the preceding claims, wherein the front of the reflector (2) by a transparent protective glass (6) is enclosed, wherein the at least one LED light source (3) between the reflector (2) and protective glass (6). is included. [8] 8. lighting module (1) according to claim 7, wherein the reflector (2) by parallel to the main emission direction (x) oriented side surfaces (2a) is limited and the protective glass (6) extends to the side surfaces (2a), wherein the side surfaces ( 2a) also set the geometric dimensions of the light module normal to Hauptabstrahlrichtung (x). [9] 9. lighting module (1) according to any one of the preceding claims, wherein the protective glass (6) and the reflector (2) are sealed to each other, and the at least one connecting web (5) and the reflector (2) are sealed to each other. [10] 10. Light module (1) according to any one of the preceding claims, wherein the at least one LED light source (3) by means of the at least one connecting web (5) is rigidly connected to the heat sink (4), wherein the reflector (2) along a in Hauptabstrahlrichtung (x) oriented portion of the connecting web (5) with respect to the at least one LED light source (3) is displaceable. [11] 11. Light module (1) according to claim 10, wherein the displacement of the reflector (2) with respect to the at least one LED light source (3) of the reflector (2) by means of an adjusting screw (7) on the heat sink (4) engages by means of which the reflector (2) in the main emission (x) is displaceable. [12] 12. lighting module (1) according to any one of the preceding claims, wherein the ratio of maximum LED Lichtaustrittsflächenendiagonale to maximum reflector diagonals at most 1:20, preferably a maximum of 1:40. [13] 13. light module (1) according to any one of the preceding claims, wherein the reflector surface and luminous flux of the LED are chosen such that in the vicinity of the front of the reflector (2) in a normal plane to the main emission (x) the illuminance between 50 000 and 150 000 lx weight. [14] 14 light module (1) according to any one of the preceding claims, wherein at the at least one LED light source (3) a primary optics (9), in particular a lens and / or a mixing rod or a reflector (2) is mounted, by means of the by the at least one LED light source (3) emitted light distribution is changed. [15] 15. Light module (1) according to any one of the preceding claims, wherein the geometric shape of the light module (1) is chosen such that by flat side and / or superimposing individual light modules (1) the same geometric shape an arbitrarily extensible form-fitting surface-filling arrangement of light modules (1) achievable within one level. [16] 16. Lighting device (10), in particular film headlights, for emitting parallel-directed light, comprising a number of lighting modules (1) according to one of the preceding claims, wherein adjacent lighting modules (1) adjoin one another in a form-fitting manner. [17] 17. Lighting device (10) according to claim 16, wherein the lighting modules (1) are arranged in the form of a matrix, wherein the matrix has at least n rows and at least m columns, where n and m are natural numbers and at least 1, 2, 3, 4, 5, or at least 10. [18] 18. Lighting device (10) according to claim 16 or 17, wherein all lighting modules (1) are arranged flat within a plane, wherein the main radiation direction (x) of the individual lighting modules (1) coincides.
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公开号 | 公开日 EP3685098B1|2021-07-07| ES2892312T3|2022-02-03| US10995944B2|2021-05-04| WO2019056032A1|2019-03-28| US20200292162A1|2020-09-17| AT520487B1|2019-07-15| EP3685098A1|2020-07-29|
引用文献:
公开号 | 申请日 | 公开日 | 申请人 | 专利标题 WO2010119580A1|2009-04-16|2010-10-21|株式会社光波|Light source module| WO2012141036A1|2011-04-15|2012-10-18|シーシーエス株式会社|Reflective type lighting device| KR20130070284A|2011-12-19|2013-06-27|엘지이노텍 주식회사|Led lighting system| WO2013123570A1|2012-02-21|2013-08-29|Huizhou Light Engine Ltd.|Non-glare reflective led lighting apparatus with heat sink mounting| DE102012020931A1|2012-10-25|2014-04-30|Rüdiger Lanz|High power head lamp for use as military searchlight, has high power light emitting diode light source and reflector, where tightly packed light emitting diode chip is used with light radiation as high-power light emitting diode lamp| US20060124953A1|2004-12-14|2006-06-15|Negley Gerald H|Semiconductor light emitting device mounting substrates and packages including cavities and cover plates, and methods of packaging same| DE102007028301A1|2007-06-20|2007-12-13|Daimlerchrysler Ag|Vehicle headlight has housing and semiconductor light source, which is arranged in housing and is thermally connected with heat sink by heat pipe| DE102007050893B4|2007-10-24|2011-06-01|Continental Automotive Gmbh|Method for positioning and mounting a LED assembly and positioning body therefor| US8567989B2|2012-03-16|2013-10-29|Osram Sylvania Inc.|Heat sink assembly and light| US20150204520A1|2014-01-21|2015-07-23|Dennis Pearson|Indirect Dome Light| JP6331814B2|2014-07-22|2018-05-30|岩崎電気株式会社|Lighting device|CN110985947B|2019-12-30|2020-09-08|广州兰天电子科技有限公司|LED spotlight assembling method|
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申请号 | 申请日 | 专利标题 ATA50800/2017A|AT520487B1|2017-09-21|2017-09-21|Light module for the emission of light directed in parallel|ATA50800/2017A| AT520487B1|2017-09-21|2017-09-21|Light module for the emission of light directed in parallel| EP18773923.0A| EP3685098B1|2017-09-21|2018-09-12|Illumination module for emitting light directed in parallel| US16/649,296| US10995944B2|2017-09-21|2018-09-12|Illumination module for emitting light directed in parallel| ES18773923T| ES2892312T3|2017-09-21|2018-09-12|Illumination module for parallel directed light emission| PCT/AT2018/060208| WO2019056032A1|2017-09-21|2018-09-12|Illumination module for emitting light directed in parallel| 相关专利
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