Lighting module and corresponding lighting device
The lighting module uses a substrate, resin layer, and lens plate with openings and protrusions to achieve efficient three-dimensional lighting with reduced components, improving reliability and image diversity in display and vehicle lamps.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-12-16
- Publication Date
- 2026-03-24
AI Technical Summary
Existing lighting devices using LEDs require multiple point sources to achieve three-dimensional lighting, limiting image diversity and efficiency.
A lighting module with a substrate, resin layer, light-shielding layer, and lens plate that includes openings and protrusions to emit uniform point light sources, allowing for three-dimensional surface illumination and image projection.
Enables flexible, thin, and reliable three-dimensional lighting with reduced components, applicable to various display and vehicle lamps, enhancing optical reliability and image variety.
Smart Images

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Abstract
Description
Technical Field
[0001] Embodiments of the invention relate to a lighting module and a lighting device having a plurality of light sources. Embodiments of the invention relate to a lighting module, a lighting device or a vehicle lamp that provides three-dimensional lighting.
Background Art
[0002] Lighting includes not only vehicle lighting but also backlights for displays and signs. Light-emitting diodes (LEDs) have advantages such as low power consumption, semi-permanent lifespan, fast response speed, safety, and environmental friendliness compared to existing light sources such as fluorescent lamps and incandescent lamps. Such light-emitting elements are applied to various lighting devices such as various display devices, indoor lights or outdoor lights. Recently, lamps adopting light-emitting elements such as light-emitting diodes as vehicle light sources have been proposed. Compared with incandescent lamps, light-emitting diodes are advantageous in that they consume less power. However, light-emitting diodes emit light in the form of point sources, and one light-emitting diode is matched to each individual image of three-dimensional lighting. In order to realize all of a plurality of individual images, a plurality of light-emitting diodes are required. Also, when using the same light-emitting diode, since the width of the individual images of three-dimensional lighting is the same, there is a problem that the diversity of the images cannot be expressed. Accordingly, when using a light-emitting diode as a vehicle lamp, there is a requirement to reduce the number of light-emitting diodes and realize various images.
Summary of the Invention
Problems to be Solved by the Invention
[0003] Embodiments of the invention provide a lighting module or lighting device having openings on its emission surface. The emission surface provides a plurality of openings and a point light source of uniform intensity through the plurality of openings, and the point light source emitted through the openings can provide three-dimensional surface illumination or a three-dimensional image. Embodiments of the invention provide a lighting module or lighting device that illuminates one or more three-dimensional images. Embodiments of the invention provide a lighting module or lighting device that illuminates the same or different three-dimensional images. Embodiments of the invention can provide a light unit, display device or vehicle lamp having the lighting module. [Means for solving the problem]
[0004] An embodiment of the invention includes a substrate, a plurality of light sources disposed on the substrate, a resin layer covering the light sources on the substrate, a light-shielding layer having at least one opening on the resin layer, and a lens plate disposed on the light-shielding layer, wherein the lens plate includes a transmissive portion and a plurality of protrusions arranged on one or the other surface of the transmissive portion, the sum of the areas of the openings being 50% or less of the area of the emitting surface through which light is emitted via the resin layer, and the distance between the lens plate and the light-shielding layer may be greater than the length of the openings. According to an embodiment of the invention, one or more light-transmitting layers are included between the resin layer and the light-shielding layer, the one or more light-transmitting layers may include at least one of a diffusing agent, a phosphor, or ink particles. According to an embodiment of the invention, the light-shielding layer is in contact with the light-transmitting layer, the openings provide surface illumination to the lens plate, and the sum of the areas of the openings may be in the range of 1% to 25% of the upper surface area of the resin layer. The protrusions are arranged in a plurality in a first direction, each of the plurality of protrusions having a longer length in a second direction perpendicular to the first direction, and the maximum width of each of the plurality of protrusions in the first direction may be greater than the height of each of the plurality of protrusions. The protrusions include hemispherical or polygonal shapes, and the openings may include circular, elliptical, or polygonal shapes. At least a portion of the lens plate may be inclined or tilted at a predetermined angle with respect to the light-shielding layer with respect to the first or second direction. The lens plate can be rotated at a predetermined angle with respect to a vertical axis. The first reflective layer is positioned between the substrate and the resin layer. The protrusions include lenticular lenses, and light transmitted through the lens plate illuminates a three-dimensional surface or a three-dimensional image. [Effects of the Invention]
[0005] According to embodiments of the invention, a lighting device having a three-dimensional effect through one or more regions can be realized. A lighting device having the same or different three-dimensional images can be realized. By making the three-dimensional surface lighting tilt or rotate, a variety of three-dimensional effects can be provided. This makes it possible to reduce the thickness of the lighting device or module that can provide the three-dimensional effect. Furthermore, a flexible lighting module or lighting device can be realized, and optical reliability can be improved. The reliability of vehicle lighting devices having the lighting module can be improved and can be applied to light units, various display devices, surface light source lighting devices or vehicle lamps. [Brief explanation of the drawing]
[0006] [Figure 1] Figure 1 is a plan view showing a lighting device according to a first embodiment of the invention. [Figure 2] Figure 2 is an example of a cross-sectional view of the lighting device shown in Figure 1, specifically the A1-A1 side. [Figure 3] Figure 3 is a diagram illustrating the three-dimensional effect in the lighting device shown in Figure 2. [Figure 4] Figure 4 is a diagram illustrating an example in which the size of the three-dimensional image is adjusted according to the distance between the lens plate and the lighting module in the lighting device shown in Figure 3. [Figure 5] Figure 5 is a perspective view showing an example of a lens plate in a lighting device according to an embodiment of the invention. [Figure 6] Figure 6 shows a first modified example of the lighting module in the lighting device shown in Figure 2. [Figure 7] Figure 7 shows a second modified example of the lighting module in the lighting device shown in Figure 2. [Figure 8] Figure 8 shows another example of a lens plate in the lighting device shown in Figure 7. [Figure 9] Figure 9 shows an example of the path of light emitted by the lens plate in Figure 8. [Figure 10] Figure 10 shows a first modified example of the lens portion of the lens plate shown in Figures 8 and 9. [Figure 11] Figure 11 shows a second modified example of the lens portion of the lens plate shown in Figures 8 and 9. [Figure 12] Figure 12 shows another example of a lens plate in the lighting device shown in Figure 2. [Figure 13] Figure 13 is an example of a side cross-sectional view of a lighting device according to a second embodiment of the invention. [Figure 14] Figure 14 shows a first modified example of the lens plate in the lighting device shown in Figure 13. [Figure 15] Figure 15 shows a second modified example of the lens plate in the lighting device shown in Figure 13. [Figure 16] Figure 16 shows a first modified example of a lighting module in a lighting device according to the first and second embodiments of the invention. [Figure 17] Figure 17 shows a second modified example of the lighting module in the lighting device according to the first and second embodiments of the invention. [Figure 18] Figure 18 is an example of a plan view of a lighting device according to a third embodiment of the invention. [Figure 19] Figure 19 is an example of a side cross-sectional view of the lighting device shown in Figure 18. [Figure 20] Figure 20 is an example of a plan view of a lighting device according to the fourth embodiment of the invention. [Figure 21] Figure 21 is an example of a side cross-sectional view of the lighting device shown in Figure 20. [Figure 22] Figure 22 is an example of a side cross-sectional view of a lighting device according to the fifth embodiment of the invention. [Figure 23] Figure 23 shows a modified example of the first embodiment of the invention. [Figure 24] Figure 24 is another modified example of Figure 23. [Figure 25] Figure 25 shows an example of the output image of the lighting device when the shape of the opening according to an embodiment of the invention is circular. [Figure 26] Figures 26(A) to (E) are drawings showing three-dimensional surface illumination or a three-dimensional image according to the rotation angle of the lens plate in an illumination device according to an embodiment of the invention. [Figure 27](A) to (D) of FIG. 27 are drawings showing three-dimensional surface illumination or three-dimensional images according to the tilt of the lens plate in the lighting device according to an embodiment of the invention. [Figure 28] (A) to (C) of FIG. 28 are drawings showing three-dimensional surface illumination or three-dimensional images according to the rotation and tilt of the lens plate in the lighting device according to an embodiment of the invention. [Figure 29] (A) to (D) of FIG. 29 are drawings showing three-dimensional surface illumination or three-dimensional images according to the distance between the lens plate and the opening of the lighting module in the lighting device according to an embodiment of the invention. [Figure 30] FIG. 30 is a plan view of a vehicle to which a lamp having a lighting device or a lighting module according to an embodiment of the invention is applied. [Figure 31] FIG. 31 is a drawing showing a lamp having the lighting module or the lighting device of FIG. 30.
Mode for Carrying Out the Invention
[0007] Hereinafter, preferred embodiments will be described in detail with reference to the accompanying drawings, which will allow a person with ordinary skill in the art to easily implement the present invention. However, it should be understood that the embodiments described herein and the configurations illustrated in the drawings are merely preferred embodiments of the present invention, and that there may be a variety of equivalents and modifications that can be substituted therein at the time of filing. In the detailed description of the operating principles of preferred embodiments of the present invention, if a specific description of such known configuration or function is deemed to unnecessarily disrupt the gist of the invention, such detailed description will be omitted. The terms used herein are defined in consideration of the function of the present invention, and the meaning of each term should be interpreted in accordance with the content throughout this specification. Throughout the drawings, parts having similar functions and operations will be denoted by the same reference numerals. Hereafter, embodiments will be evident from the accompanying drawings and descriptions thereof. In the description of embodiments, when each layer, region, pattern, or structure is described as being formed "on" or "below" the substrate, each layer, region, pad, or pattern, "on" and "below" include those formed "directly" or "interposed between other layers." Furthermore, the reference points for the layers above or below each layer will be explained based on the drawings.
[0008] <First Example> Figure 1 is a plan view showing a lighting device according to a first embodiment of the invention; Figure 2 is an example of a cross-sectional view of the lighting device of Figure 1 from the A1-A1 side; Figure 3 is a diagram illustrating the three-dimensional effect in the lighting device of Figure 2; Figure 4 is a diagram illustrating an example in the lighting device of Figure 3 where the size of the three-dimensional image is adjusted according to the distance between the lens plate and the lighting module; Figure 5 is a perspective view showing an example of a lens plate in a lighting device according to an embodiment of the invention; Figure 6 is a first modified example of the lighting module in the lighting device of Figure 2; Figure 7 is a second modified example of the lighting module in the lighting device of Figure 2; Figure 8 is another example of the lens plate in the lighting device of Figure 7; Figure 9 is an example showing the path of light emitted by the lens plate of Figure 8; Figure 10 is a first modified example of the lens portion of the lens plate of Figures 8 and 9; Figure 11 is a second modified example of the lens portion of the lens plate of Figures 8 and 9; and Figure 12 is another example of the lens plate in the lighting device of Figure 2.
[0009] Referring to Figures 1 to 5, the lighting device 101 may include a lighting module 100 and a lens plate 70. The lighting module 100 can irradiate a point light source of uniform intensity in one direction through an opening 53 located on the emission surface. One or more openings 53 are arranged, and the number of openings 53 determines the number of stereoscopic images of the lighting device 101. The lens plate 70 may be positioned in the direction of light emission of the lighting module 100. The lens plate 70 will emit the incident light as a stereoscopic image or stereoscopic illumination. The stereoscopic image or stereoscopic illumination can be embodied with a contrast ratio having a difference between the brightest and darkest regions, or it can give a sense of depth in a three-dimensional form by utilizing the depth of luminous intensity or the difference in luminous intensity. The lighting module 100 may include a substrate 11, light sources 21 and 22 arranged on the substrate 11, a resin layer 31 covering the light sources 21 and 22, and a light-shielding layer 51 having an opening 53 on the resin layer 31. The lighting module 100 may have one or more first light-transmitting layers 41 positioned between the light-shielding layer 51 and the resin layer 31. The first light-transmitting layer 41 may be a layer free of impurities, or a layer having at least one or both of a diffusing agent and a phosphor. Light passing through the first light-transmitting layer 41 is manifested as a surface light source with uniform intensity, but after passing through the opening 53, it can be emitted as a point light source with uniform intensity corresponding to the shape of the opening 53. At least one of the openings 53 may be positioned in the region closest to at least one of the light sources 21, 22, or one or more may be positioned between the upper regions of the light sources 21, 22. The thickness of the lighting module 100 can be the vertical distance from the bottom surface of the substrate 11 to the surface from which light is emitted or the top surface of the light-shielding layer 51, or it can be 5 mm or less, for example, in the range of 2 mm to 5 mm or 2.5 mm to 3 mm. Such lighting modules 100 are provided in a thin thickness, allowing them to be applied in a flexible structure or to lamp housings and brackets having various curves or curved surfaces. The thickness of the lighting module 100 can be 200% or less of the thickness of the resin layer 31, for example, in the range of 150% to 200%.If the thickness of the lighting module 100 is thinner than the range, the light diffusion space decreases and hot spots occur. If the thickness is greater than the range, the module thickness reduces spatial installation constraints and design freedom. Embodiments of the invention provide a lighting module 100 with a thickness of 5 mm or less, enabling a curved structure, thereby reducing design freedom and spatial constraints. The lighting module 100 is applicable to various modules or lamp devices that require three-dimensional lighting or three-dimensional effects, such as vehicle lamps, household lighting devices, and industrial lighting devices. For example, in the case of a lighting module applied to vehicle lamps, it is applicable to headlamps, side marker lights, side mirror lights, fog lamps, taillights, turn signal lamps, reverse lights, stop lamps, daytime running lights, vehicle interior lighting, door scarves, rear combination lamps, backup lamps, etc.
[0010] <Substrate 11> The substrate 11 may include a printed circuit board (PCB) having wiring. The substrate 11 may include, for example, a resin-based printed circuit board (PCB), a metal core PCB, a flexible PCB, a rigid PCB, a ceramic PCB, or an FR-4 substrate. The substrate 11 includes a wiring layer (not shown) on top, and the wiring layer is electrically connected to the light sources 21 and 22. If multiple light sources 21 and 22 are arranged on the substrate 11, the multiple light sources 21 and 22 may be connected in series, parallel, or series-parallel by the wiring layer. The substrate 11 can function as a base member or support member located below the light sources 21 and 22 and the resin layer 31. The length of the substrate 11 in the first direction Y and the length in the second direction X may be the same or different, for example, the length in the first direction Y may be greater than or equal to the length in the second direction X. The first direction Y and the second direction X may be mutually orthogonal directions. The thickness of the substrate 11 can be 0.5 mm or less, for example, in the range of 0.3 mm to 0.5 mm. Since the substrate 11 is thin, the thickness of the lighting module is not increased. In the lighting module 100, the plurality of light sources 21, 22 may be arranged to face at least one side of the substrate 11, both opposite sides, different sides, or all sides. The substrate 11 can be equipped with connectors in part to supply power to the light sources 21, 22. The area on the substrate 11 where the connector is located may be a part of the substrate 11, where the resin layer 31 is not formed. If the connector is located on the bottom surface of the substrate 11, the area may be removed. The top view shape of the substrate 11 may be rectangular, or other polygonal, or it may be a bar shape with a curved surface. The substrate 11 may include a member having a protective layer or reflective layer on top. The protective or reflective layer may include a component having a solder resist material, and the solder resist material, being a white material, can reflect incident light.
[0011] <Reflection layer 15> The reflective layer 15 is attached to the upper surface of the substrate 11 or placed between the substrate 11 and the resin layer 31. An adhesive layer, such as a UV adhesive, silicone, or epoxy, may be formed between the reflective layer 15 and the substrate 11. The reflective layer 15 may be provided as a film composed of one of the following materials: resin, transparent PET, white PET (white polyethylene terephthalate), or Ag sheet. A plurality of reflective dots are arranged on the reflective layer 15 to reflect incident light. The plurality of reflective dots may contain ink and can be printed with a material containing one of the following: TiO2, CaCO3, BaSO4, Al2O3, Silicon, or PS. The plurality of reflective dots may also be arranged such that the distance between them decreases or the density increases as they move away from the light sources 21 and 22, or the cross-sectional area increases. Here, the reflective layer 15 may have an open region through which the light sources 21 and 22 are positioned. The reflective layer 15 may be formed over the entire upper surface of the substrate 11, or it may be arranged on a single or multiple regions having a predetermined shape. As another example, a layer having a phosphor may be arranged in the region of the reflective layer 15. That is, a phosphor layer may be arranged between the upper surface of the substrate 11 and the resin layer 31. The phosphor layer arranged below the resin layer 31 will provide wavelength-converted light in the direction of the emission surface.
[0012] <Resin layer 31> The resin layer 31 is placed on the substrate 11. The light sources 21 and 22 are covered or sealed by the resin layer 31 on the substrate 11. The light sources 21 and 22 can be adjacent to at least one or both sides of the sides Sa and Sb of the resin layer 31. For example, the first light source 21 may be positioned adjacent to the first side Sa of the resin layer 31, and the second light source 22 may be positioned adjacent to the second side Sb opposite to the first side Sa. At least one or more of the sides of the resin layer 31 may be straight or curved, and may be coverted to the side of the substrate 11. The resin layer 31 emits light through its top surface Sc and / or sides. The top surface of the resin layer 31 may be a flat horizontal surface, or may include a concave or convex surface. The resin layer 31 may be bonded to the top surface of the substrate 11, or bonded to the substrate 11 and the reflective layer 15. The resin layer 31 may be made of a transparent material. The resin layer 31 may include a transparent resin material or plastic material such as silicone or epoxy. The resin layer 31 may be a transparent resin material, for example, a UV (Ultra Violet) resin (Resin), epoxy, or silicone. The UV resin can be, for example, a resin (oligomer type) with urethane acrylate oligomer as the main raw material. The resin layer 31 using the above composition is formed with a resin such as silicone, epoxy, or UV resin instead of a light guide plate, making it easy to adjust the refractive index and thickness, and satisfying adhesive properties, reliability, and mass production speed. As another example, a diffusing agent may be added to the resin layer 31 to diffuse light. The diffusing agent may include at least one of PMMA (Poly Methyl Meth Acrylate)-based, TiO2, SiO2, Al2O3, or silicon-based agents.
[0013] <Light source 21, 22> The plurality of light sources 21, 22 may include a plurality of first light sources 21 and / or a plurality of second light sources 22. The first light source 21 may be adjacent to or facing a first side surface Sa of the resin layer 31, and the second light source 22 may be adjacent to or facing a second side surface Sb of the resin layer 31. The first light source 21 is arranged in at least one row on a first region of the substrate 11, and the second light source 22 is arranged in at least one row on a second region of the substrate 11. Either the first or second light sources 21, 22 may be arranged in two or more rows. As shown in Figures 1 and 13, when the first and second light sources 21, 22 are arranged in an N×M matrix on the substrate 11, N may be one row or two or more rows, and M may be one column or two or more columns. The light sources 21, 22 can emit light in at least one direction. For example, the first light source 21 can emit light in the direction of the second light source 22 or the second side surface Sb. The second light source 22 can emit light in the direction of the first light source 21 or the first side Sa. Each of the light sources 21 and 22 may be embodied in a side-view type package having an LED chip. As another example, each of the light sources 21 and 22 may be embodied in a top-view type package having an LED chip or in an LED chip. For example, it may be embodied in a flip chip, a horizontal chip or a vertical chip. The package includes a body or reflective body arranged around the LED chip, which can adjust the directional angle of the LED chip and protect the LED chip. Light sources 21 and 22 in such package forms can emit light in one direction or on one surface. The LED chip may include at least one or all of blue LED chips, red LED chips, and green LED chips. Each of the packages may have one LED chip or different LED chips from each other, and at least one or both of the first and second light sources 21 and 22 may emit at least one or more of blue, green, red, or white light. The first light source 21 can emit light through the first surface S1, and the second light source 22 can emit light through the second surface S2.The first surface S1 may be the surface facing the second light source 22, and the second surface S2 may be the surface facing the first light source 21. The first light source 21 and the second light source 22 may be arranged facing each other or offset from each other. As another example, the light sources 21 and 22 may include OLEDs (Organic Light Emitting Diodes).
[0014] <First transparent layer 41> The first light-transmitting layer 41 is placed on the resin layer 31. The first light-transmitting layer 41 may be bonded to the upper surface of the resin layer 31 in the form of a film or formed from a resin material. The first light-transmitting layer 41 may be bonded by the adhesive strength of the resin layer 31 itself without the need for a separate adhesive. This reduces the need for a separate adhesive application step and eliminates the need to use adhesives harmful to the human body, thus reducing waste of processes and materials. The first light-transmitting layer 41 may be removed. The first light-transmitting layer 41 can diffuse the light emitted after passing through the resin layer 31. The first light-transmitting layer 41 can diffuse and mix the light, as this may prevent specific colors from mixing when the light intensity is high. The material of the first light-transmitting layer 41 may be a diffusing material or a light-guiding material. The first light-transmitting layer 41 may include at least one of polyester (PET) film, PMMA (Poly Methyl Methacrylate) material, or PC (Poly Carbonate). The first light-transmitting layer 41 may be provided as a film of a resin material such as silicone or epoxy. The first light-transmitting layer 41 may be a single layer or a multilayer. The thickness of the first light-transmitting layer 41 may be thinner than the thickness of the resin layer 31. The thickness of the first light-transmitting layer 41 is 25 μm or more, and can be in the range of 25 to 250 μm or 100 to 250 μm. Such a first light-transmitting layer 41 can provide uniform surface illumination of incident light within the said thickness range. The first light-transmitting layer 41 may contain at least one or more of the following: a diffusing agent such as beads, a phosphor, and ink particles. The phosphor may include at least one of the following: red, amber, yellow, green, or white phosphor. The ink particles may include at least one of the following: metallic ink, UV ink, or curing ink. The size of the ink particles may be smaller than the size of the phosphor. The surface color of the ink particles may be any one of green, red, yellow, or blue.
[0015] <Light blocking layer 51> The light-shielding layer 51 may be located on the uppermost layer of the lighting module 100. The light-shielding layer 51 may be located in the layers of the lighting module 100 so as to be closest to the lens plate 70. The light-shielding layer 51 may include metallic or non-metallic materials. The light-shielding layer 51 may include absorbing or reflective materials. The light-shielding layer 51 may be a layer printed on the first light-transmitting layer 41 or a layer attached separately. The light-shielding layer 51 can absorb or reflect visible light, infrared rays, or some ultraviolet rays. For example, the light-shielding layer 51 can absorb or reflect wavelengths in the range of 380 nm to 800 nm. For example, the light-shielding layer 51 may be a black ink or black printed layer. The light-shielding layer 51 may be an absorbing material having carbon or carbon nanotubes, or a black resist material or a black matrix material. As another example, the light-shielding layer 51 may be a reflective layer, and may be formed of, for example, a layer having aluminum (Al) or silver (Ag), or an alloy layer having at least one of the metals. The light-shielding layer 51 may be a single layer or a multilayer layer. For example, if it is a multilayer layer, it may include a first layer of black material and a second layer of reflective material, in which case the first layer may be placed on top of the second layer. The light-shielding layer 51 can be embodied using a masking film. The thickness of the light-shielding layer 51 may be 0.1 μm or more, for example, in the range of 0.1 to 5 μm. If the thickness of the light-shielding layer 51 is greater than the range, the improvement in light-shielding efficiency will be minimal, and if it is smaller than the range, the transmittance will be high. The light-shielding layer 51 may include one or more openings 53. The openings 53 may penetrate vertically from the top surface to the bottom surface of the light-shielding layer 51. The top view shape of the openings 53 may be a polygon such as a rectangle, rectangle, triangle or pentagon, or it may be circular or elliptical, or it may be an irregular shape. The length D1 in the first direction Y and the length D3 in the second direction X of the openings 53 may be the same or different. The multiple openings 53 may be spaced apart from each other. The distance between adjacent openings 53 can be greater than the lengths D1, D3 in any one direction of each opening 53.In other words, the spacing between the openings 53 minimizes interference between adjacent openings 53 and maximizes the three-dimensional effect. The plurality of openings 53 may be arranged at regular intervals in the first direction and / or in the second direction, or at different intervals from each other.
[0016] As shown in Figure 1, the openings 53 may be the same shape or different shapes. Also, at least one or more of the openings 53 may be positioned on a straight line through which the first and second light sources 21 and 22 pass, due to the luminous intensity of the light emitted from the light sources 21 and 22. The openings 53 of the light-shielding layer 51 may be air regions or formed of resin material for the linearity of light. The lengths D1, D3 in any one direction of the openings 53 may be smaller than the distance G1 between the light-shielding layer 51 and the lens plate 70, i.e., the minimum distance. That is, the distance G1 > lengths D1, D3 can be satisfied. The lengths D1, D3 in one direction of the openings 53 may be at least 3 mm or more, and can be in the range of 3 mm to 10 mm or 4 mm to 8 mm, for example. If the lengths D1, D3 of the openings 53 are larger or smaller than the range, the stereoscopic effect will be reduced. Here, at least one or all of the openings 53 may be positioned in a region that does not overlap with the light sources 21 and 22 in the direction perpendicular to or in the direction of light emission. In the light-shielding layer 51, the sum of the areas of the openings 53 can be 50% or less of the upper surface area of the resin layer 31, for example, in the range of 1% to 50% or 1% to 25%. If the sum of the areas of the openings 53 is greater than the range, the three-dimensional effect of the openings 53 will decrease. The first light-transmitting layer 41 and the light-shielding layer 51 can be in close contact with the upper surface of the resin layer 31 or separated from the upper surface of the resin layer 31. The first light-transmitting layer 41 and the light-shielding layer 51 may be positioned in the region between the resin layer 31 and the lens plate 70.
[0017] <Lens Plate 70> The lens plate 70 may include a transmissive portion 72 and a plurality of protrusions 71. The plurality of protrusions 71 may be arranged on one or the other surface of the transmissive portion 72. The plurality of protrusions 71 may be arranged on one surface from which light is incident toward the transmissive portion 72, or on the other surface from which light exits the transmissive portion 72. The protrusions 71 may include a lenticular lens shape or a semi-cylindrical microlens shape. The transmissive portion 72 may be a member that supports the plurality of protrusions 71. The transmissive portion 72 is provided in the form of a plate or film and will emit incident light from the inside in the exit direction. As shown in Figure 5, the transmissive portion 72 and the plurality of protrusions 71 may be integrally formed. As another example, the plurality of protrusions 71 may be attached to one or the other surface of the transmissive portion 72 with a translucent material. The material of the transmissive portion 72 can be resin or glass, and the resin may include a thermoplastic polymer or a photocurable polymer. Furthermore, the material of the transparent portion 72 may include polycarbonate, PMMA (Polymethylmethacrylate), polystyrene, or polyethylene terephthalate. The material of the transparent portion 72 may consist of an ultraviolet-curable resin containing an oligomer, and more specifically, a resin mainly composed of urethane acrylate oligomer. That is, a resin mixed with a polymer type, such as a synthetic oligomer, such as urethane acrylate oligomer, and polyacrylic, can be used. The protrusions 71 may be formed of a thermoplastic polymer or a photocurable polymer, or of the same material as the transparent portion 72. Such protrusions 71 may be formed through a photomasking process on one or the other surface of the transparent portion 72. The protrusions 71 may have no refractive index difference from the transparent portion 72 or a refractive index difference of 0.2 or less, thereby minimizing light loss due to refractive index difference. The thickness of the transparent portion 72 can be 0.1 mm or more, for example, in the range of 0.1 mm to 10 mm or 0.1 mm to 0.25 mm.If the thickness of the transparent portion 72 is less than the range, the stereoscopic effect decreases, and if it is thicker than the range, the improvement in the stereoscopic effect is minimal and the thickness of the lighting device increases. As shown in Figures 2 to 5, the plurality of protrusions 71 may be arranged in a first direction Y on the lower surface (or one surface) or upper surface (or other surface) of the transparent portion 72 and have a long length in a second direction X. The protrusions 71 may also be arranged in a second direction X according to the stereoscopic image of the lighting device 101 and have a long length in the first direction Y. The protrusions 71 may be in the shape of a stripe or bar, a sinusoidal wave, or a sawtooth shape, with a long length in the second direction X. The plurality of protrusions 71 may be arranged in combination of lens portions or unit patterns placed on one or the other surface of the transparent portion 72. The side cross-sectional shape of the protrusions 71 in the second direction X may be hemispherical, semi-elliptical, or polygonal. The protrusion 71 may be provided in a shape that can refract incident light and form a three-dimensional effect. The lens plate 70 may be provided with an area equal to or larger than the top surface area of the lighting module and be arranged to extend further in a direction perpendicular to the direction from which light is emitted from the light sources 21, 22 (e.g., the Y direction) (e.g., the X direction), or to extend further in a region between the X and Y directions, so that the length of the protrusion 71 is longer than the length of the lighting module. The protrusion 71 can reflect and / or refract incident light and form a three-dimensional effect in the image of light emitted through the other surface of the transmissive portion 72. The lens plate 70 can extract a point light source of uniform intensity incident through the protrusion 71 as a three-dimensional image or three-dimensional illumination. Here, the lens plate 70 may have a flat surface on the opposite side of the surface on which the protrusion 71 is formed (e.g., the top surface or the other surface). As shown in Figure 3, the width R2 of the protrusion 71 is the maximum length in a direction perpendicular to the length direction of the protrusion 71 (for example, the first direction), and can be 5 μm or more, for example, in the range of 5 to 100 μm or 10 to 80 μm. The smaller the width R2 of the protrusion 71, the better the clarity of the three-dimensional image. The height R1 of the protrusion 71 is the height of the protrusion and may be smaller than the width R2.For example, the width R2 can be 0.5 or less, for example, in the range of 0.1 to 0.48. If the height R1 of the protrusions 71 is greater than the range, the size of the unit pattern (i.e., the protrusions) increases, reducing the stereoscopic effect, and if it is smaller than the range, the difference in the clarity of the stereoscopic image decreases. The spacing R3 between the protrusions 71 can be 1 μm or more, for example, in the range of 1 to 100 μm or 1 to 10 μm. The width R2 and height R1 of the protrusions 71 can be selected within the range, taking into consideration the difference in the clarity of the stereoscopic image or stereoscopic surface illumination. As shown in Figure 3, the lower surface of the light-shielding layer 51 or the upper surface Sc1 of the first light-transmitting layer 41 can emit surface illumination through the opening 53. Light L1 emitted through the opening 53 of the light-shielding layer 51 is emitted as a point source with uniform intensity, and the light L2 refracted and transmitted by the curved surface 73 of the convex portion 71 of the lens plate 70 forms a three-dimensional image in the upper region Rz of the opening 53 in a direction perpendicular to the length direction of the convex portion 71. At this time, the center region Rc, which is perpendicular to the opening 53, has the highest luminous intensity, and the side regions Ra and Rb may have lower luminous intensity than the center region Rc. The three-dimensional image of the lighting device 101 is realized by such differences in luminous intensity. As shown in Figure 4, the three-dimensional image on the lens plate 70 changes depending on the spacing G1, either in the regions Rc1 and Rc2) where the three-dimensional image is formed, or in the shape and size of the three-dimensional image. The spacing G1 is realized as a first air layer 55, and the first air layer 55 may be a region with a gap between two layers, or a region to which a bracket is attached to the outer edge.
[0018] According to an embodiment of the invention, the lens plate 70 and the light-shielding layer 51 can be separated by a predetermined distance. The distance G1 is a distance at which light incident through the opening 53 of the light-shielding layer 51 can be diffused, and may be a distance at which the size of the stereoscopic image can be adjusted. The distance G1 can be 5 mm or more, for example, in the range of 5 mm to 50 mm or 5 mm to 20 mm. If the distance G1 is smaller than the range, the size of the stereoscopic image is small, making it difficult to obtain a stereoscopic effect due to the difference in luminosity, and if it is larger than the range, the size of the stereoscopic image increases and the stereoscopic effect decreases.
[0019] The lens plate 70 can be parallel to the upper surface of the light-shielding layer 51, inclined with respect to a first direction Y, inclined with respect to a second direction X, or inclined with respect to both the first and second directions Y and X. Here, the inclination in the first direction Y may result in a gradual decrease or increase in the distance between the lens plate 70 and the light-shielding layer 51 from one end to the other in the first direction Y. The inclination in the second direction X may result in a gradual decrease or increase in the distance between the lens plate 70 and the light-shielding layer 51 from one end to the other in the second direction X. Depending on the inclination angle or direction of the lens plate 70, various stereoscopic effects can be given due to the luminous intensity and path difference of the light emitted through the lens plate 70, for example, the stereoscopic image may include curvature that is not linear. The lens plate 70 can rotate with respect to an axis (e.g., the Z direction) perpendicular to the center of the resin layer 31 in the first direction Y. When the lens plate 70 rotates on the shielding layer 51, the stereoscopic image or stereoscopic illumination may be provided in a rotated form depending on the angle of rotation. In this case, the clarity of the stereoscopic image may be provided in a manner in which it gradually decreases. For example, Figures 26(A) to (E) show examples in which the lens plate 70 is rotated on the light-shielding layer 51 or the opening 53, and the stereoscopic image Im-1 can be shown in a manner in which the lens plate 70 is rotated by 3 to 6 degrees (Figure 26A), 8 to 12 degrees (Figure 26B), 18 to 22 degrees (Figure 26C), 35 to 45 degrees (Figure 26D), or 45 to 55 degrees (Figure 26E). Such rotation angles of the lens plate 70 are provided in the range of 1 to 180 degrees. In this case, the clarity of the stereoscopic image decreases according to the rotation angle and can be shown in a manner of mutual interference. That is, the rotation angle of the lens plate 70 has the effect of providing a variety of stereoscopic images or stereoscopic illumination.
[0020] The inclination of the lens plate 70 in the second direction X can be defined by the tilt of the image. Since the convex portion 71 is positioned with a long length in the second direction X, the stereoscopic image or stereoscopic illumination can be tilted. As shown in Figures 27(A) to (D), the stereoscopic image Im-2 can be changed to a tilted form depending on the inclination angle of the lens plate 70 in the second direction X. Figure 27(A) is a front image, and as the inclination angle gradually increases from (B) to (D), the stereoscopic image can be shown in a form that is tilted at a gradually increasing angle. Figure 27(A) is when the tilt angle is 0 degrees, (B) is when the tilt angle is 13 to 18 degrees, (C) is when the tilt angle is 18 to 22 degrees, and (D) is when the tilt angle is 30 to 40 degrees. The tilt angle may be 15 degrees or more, for example, in the range of 15 to 40 degrees, and if it is greater or smaller than the range, the degree of tilt of the image will be excessive or insufficient. The invention can provide a variety of stereoscopic images or stereoscopic illumination depending on the tilt angle of the lens plate 70. Furthermore, the region with the highest luminosity in each stereoscopic image Im-2, or the center region, may be the region corresponding to the aperture 53. In other words, the tilt angle of the lens plate 70 has the effect of providing a variety of stereoscopic images or stereoscopic illumination. Here, an example of tilting and rotating the lens plate 70 will be shown in Figure 28. Referring to Figures 3 and 28, the stereoscopic image Im-3 can be shown in a variety of tilted and rotated stereoscopic forms, as shown in (A), (B), and (C), by tilting and rotating. An example of a stereoscopic image depending on the distance G1 between the light-shielding layers 51 will be shown in Figure 29. As shown in Figures 29(A) to (D) and Figure 3, the stereoscopic image Im-4 is obtained when the spacing G1 is 5 mm or less (Figure 29A), 8 to 12 mm (Figure 29B), 13 mm to 15 mm (Figure 29C), and 18 mm to 21 mm (Figure 29D). It can be seen that when the spacing is 12 mm or less, a stereoscopic image effect can be obtained without a decrease in clarity.The direction in which the pattern such as the protrusions 71 is arranged and the three-dimensional image are arranged in mutually orthogonal directions, i.e., offset by an angle of 90 degrees, and as the pattern such as the protrusions 71 rotates, the three-dimensional image can rotate while maintaining the angle (i.e., 90 degrees). The illumination device 101 according to an embodiment of the invention can display a variety of three-dimensional images or three-dimensional illumination depending on the distance between the lens plate 70 and the light-shielding layer 51, and the rotation and / or tilt angle of the lens plate 70. Such three-dimensional illumination is provided as an image that is long in a direction perpendicular to the length direction of the protrusions 71 with respect to the opening 53, with the highest luminosity above the opening 53 and the luminosity decreasing as it moves away from the highest luminosity region. That is, it is provided in a form in which the luminosity of the three-dimensional image gradually decreases with respect to the upper region of the opening 53, or as an image having different depths.
[0021] Figure 6 is a first modified example of Figure 2. As shown in Figure 6, the light-shielding layer 51 may be placed on the upper surface of the resin layer 31. The light-shielding layer 51 can be attached to the upper surface of the resin layer 31. Such a lighting device can reduce the thickness of the lighting device by removing the first light-transmitting layer 41 and placing the light-shielding layer 51 on top of the resin layer 31. The opening 53 of the light-shielding layer 51 may be an air area for the linearity of light or may be filled with resin material.
[0022] Figure 7 shows a second modification of Figure 2. As shown in Figure 7, a first light-transmitting layer 41 and a second light-transmitting layer 45 may be included between the light-shielding layer 51 and the resin layer 31. The first light-transmitting layer 41 is placed on top of the resin layer 31, and the second light-transmitting layer 45 is placed between the first light-transmitting layer 41 and the light-shielding layer 51. In another example, the first light-transmitting layer 41 having a diffusing agent may be placed on top of the resin layer 31, and the second light-transmitting layer 45 having or not having impurities may be placed on top of the first light-transmitting layer 41. At least one of the first and second light-transmitting layers 41 and 45 may have phosphors and / or ink particles added to it. A second air layer 55A may be placed between the first light-transmitting layer 41 and the second light-transmitting layer 45. The second air layer 55A may be a region with an empty space between the two layers or a region filled with air, and a bracket supporting the lighting module 100 may be coupled to its outer edge. By placing such a second air layer 55A on top of the resin layer 31, the number of light hotspots can be reduced, and the three-dimensional effect can be realized through the difference in light depth due to the angle or path of refraction.
[0023] As shown in Figures 8 and 9, the protrusions 71A of the lens plate 70 may be positioned on the surface from which light is emitted from the lens plate 70, i.e., the other surface or the upper surface. The protrusions 71A may be formed in a hemispherical, semi-elliptical, or polygonal shape. The protrusions 71A may be integrally formed with the transmissive portion 72A or attached with a separate lens material. The lower surface of the lens plate 70 may be a flat surface, and the distance G1 between it and the light-shielding layer 51 may have the range disclosed above. The light emitted through the protrusions 71A can be dispersed left and right with respect to the central axis by the refracted emission angle at the surface of the protrusions 71A to form a three-dimensional image.
[0024] As shown in Figure 10, the multiple protrusions 71, 71A of the lens plate 70 have hemispherical curved surfaces 74 (74A, 74B, 74C), and the angle R0 between the direction Z perpendicular to the arrangement direction of the protrusions 71, 71A and the tangent to the curved surfaces 74A, 74B, 74C is provided to be 5 degrees or more, for example in the range of 5 to 85 degrees. The angle R0 can adjust the reflection and refraction angles of incident or emitted light. The width R2 of the multiple protrusions 71, 71A can be 5 μm or more, for example in the range of 5 to 100 μm or 10 to 80 μm. The connecting portion 76 between the protrusions 71, 71A is a portion that connects the two protrusions 71, 71A, and its distance or spacing R3 can be 1 μm or more, for example in the range of 1 to 100 μm or 1 to 10 μm. Such multiple protrusions 71, 71A may be positioned below or above the transparent portions 72, 72A.
[0025] As shown in FIG. 11, the convex portion 71B of the lens plate 70 has a polygonal angular surface 75 (having 75A, 75B, 75C), and the inclination angles R01, R02 between the direction Z orthogonal to the arrangement direction of the convex portion 71B and the angular inclined surface S71 are provided in the range of 5 degrees or more, for example, 5 to 85 degrees. The angles R01, R02 are provided at an angle that becomes wider as it moves away from the central axis Z (R01 < R02), and the reflection and refraction angles of the incident light or the emitted light can be adjusted. Here, the width R4 of each center region S72 of each convex portion 71B is arranged to be 10 μm or less, and it is possible to prevent a decrease in the light incident efficiency. The outer inclined surface S71 of the center region S72 may be arranged with the same width or a larger width as the width of the center region S72. The inner angle between the center region S72 and the inclined surface S71 may be less than 180 degrees, for example, an obtuse angle. It is possible to prevent a decrease in the efficiency of the light incident or emitted by the center region S72 and the inclined surface S71. The width R2 of the plurality of convex portions 71B can have a range of 5 μm or more, for example, 5 to 100 μm or 10 to 80 μm. The connecting portion 76 between the convex portions 71B is a portion connecting both convex portions 71B, and the distance or interval R3 can have a range of 1 μm or more, for example, 1 to 100 μm or 1 to 10 μm. Such a plurality of convex portions 71B may be arranged below or above the transmission portion 72B.
[0026] Referring to FIG. 12, the lens plate 70 is arranged on the illumination module 100. The lens plate 70 can include a transmission portion 72C and a convex portion 71C. The convex portion 71C is arranged in a prism pattern shape, that is, a triangular shape, and the inclination angle R03 between the direction Z orthogonal to the arrangement direction of the convex portion 71C and the inclined surface 77 is provided in the range of 5 degrees or more, for example, 5 to 85 degrees. The reflection and refraction angles of the incident light or the emitted light can be adjusted by the angle R03. The interval R5 between the vertices of the convex portion 71C can have a range of 5 μm or more, for example, 5 to 100 μm or 10 to 80 μm. Such a plurality of convex portions 71C may be arranged below or above the transmission portion 72C.
[0027] Figure 23 is a modified example of Figure 6. The lighting module may have a reflective portion 15A positioned between the resin layer 31 and the substrate 11. Unlike the reflective portion 15 in the first embodiment, the reflective portion 15A in the modified example may be positioned in a region that overlaps perpendicularly with the opening 53 of the light-shielding layer 51, which is a part of the substrate 11. The reflective portion 15A is formed on the emission surface S1 of the light-emitting element 21 with a predetermined width D11, and may be formed in a range of, for example, 2 mm × 2 mm to 15 mm × 15 mm in width and height. As a result, light emitted from the light-emitting element 21 either travels directly through the opening 53 or is reflected by the reflective portion 15A and emitted through the opening 53. Such a structure allows some of the light reflected by the reflective portion 15A to be emitted through the opening 53, eliminating direct hot spots caused by the light source 21 above the opening 53, improving the light efficiency for the stereoscopic image, and preventing a decrease in luminous intensity.
[0028] Figure 24 is a modified example of Figure 23. Multiple reflective portions 15A are arranged on the substrate 11, and multiple openings 53 are arranged at predetermined intervals G4 in the light-shielding layer 51. The reflective portions 15A and the openings 53 may be arranged in the same direction, for example, in the direction in which light is emitted. The predetermined interval G4 may be wider than the width (lateral width) of each protrusion 71A. Since the upper surface area of each reflective portion 15A may be larger than the area of each opening 53, the reflective portions 15A can improve the incidence efficiency of light through the openings 53.
[0029] <Second Example> Figure 13 is an example of a side cross-sectional view of a lighting device according to a second embodiment of the invention. The description of the second embodiment will refer to the configuration disclosed above, and may include the same configuration. Referring to Figure 13, the lighting device comprises a lighting module 100A and a lens plate 70 disposed on the lighting module 100A. The lighting module 100A may include a plurality of light sources 25 disposed on a substrate 11. Each of the plurality of light sources 25 may be embodied in a top-view type package or LED chip having an LED chip. For example, it may be embodied in a flip chip, horizontal chip or vertical chip. The package includes a body or reflective body disposed around the LED chip, which can adjust the beam angle of the LED chip and protect the LED chip. Light sources 25 in such package form can emit light upward or to the side. The LED chip may include at least one or all of blue LED chips, red LED chips, and green LED chips. Each of the packages may have one LED chip or different LED chips, and the multiple light sources 25 may emit at least one or more of the colors blue, green, red, and white. The resin layer 31 may cover or seal the multiple light sources 25. A reflective layer 15 is placed between the resin layer 31 and the substrate 11, and the light sources 25 are mounted on the substrate 11, penetrating the reflective layer 15. Here, when the flip chip is placed on the substrate 11, the flip chip emits light through its top surface and four sides S3, which can be reflected by the reflective layer 15. The resin layer 31 may include a first light-transmitting layer 41 and a second light-transmitting layer 45 placed on the first light-transmitting layer 41, or only one of the first light-transmitting layer 41 or the second light-transmitting layer 45 may be present. At least one of the first and second light-transmitting layers 41, 45 may contain a phosphor and / or a diffusing agent, ink particles. A light-shielding layer 51 is placed on the second light-transmitting layer 45, and a point light source of uniform intensity is emitted to the lens plate 70 through the opening 53 of the light-shielding layer 51. The description of the light-shielding layer 51 will be described with reference to the first embodiment disclosed above.At least one of the openings 53 of the light-shielding layer 51 can overlap the light source 25 in a perpendicular direction. The lens plate 70 has a plurality of protrusions 71 on one or the other surface of the transmissive portion 72 and is positioned apart from the light-shielding layer 51 so that a point light source of uniform intensity incident through the opening 53 of the light-shielding layer 51 can be illuminated with stereoscopic illumination or a stereoscopic image.
[0030] Figures 14 and 15 show first and second modifications of the lens plate of the first and second embodiments. As shown in Figure 14, the lens plate 80 includes a transmissive portion 82 and a convex portion 81 on one or the other surface of the transmissive portion 82, and when the convex portion 81 is positioned on the upper part of the transmissive portion 82, light is emitted through the curved surface 83 of the convex portion 81. The lens plate 80 may include inclined portions 82A and 82B that are inclined from the center portion 82C toward the center of the lighting module 100A in a first direction Y. The inclined portions 82A and 82B are positioned at an acute angle R5 with respect to a straight line horizontal to the center portion 82C. Such a lens plate 80 has regions in which the distance G2 between the inclined portions 82A and 82B and the light-shielding layer 51 differs with respect to the first direction Y, and since it is positioned on the lighting module 100A, a variety of three-dimensional effects can be realized by changing the distance G2. Here, in order to prevent the problem of stereoscopic illumination interfering with each other in the central region C1 of the lens plate 80, the spacing between the openings 53 of the light-shielding layer 51 can be maximized, or the spacing G2 with the lens plate 80 can be minimized to reduce interference between stereoscopic images. Alternatively, the spacing between the protrusions 81 of the lens plate 80 can be further increased to reduce interference between stereoscopic images.
[0031] As shown in Figure 15, the lens plate 80 includes a transmissive portion 82 and a convex portion 81 on one or the other surface of the transmissive portion 82. When the convex portion 81 is positioned on the upper part of the transmissive portion 82, light is emitted through the curved surface 83 of the convex portion 81. The lens plate 80 may include a center portion 85A that is inclined, a first extension 85B extending horizontally from one end of the center portion 85A, and a second extension 85C extending horizontally from the other end. The length of the center portion 85A may be greater than the lengths of the first and second extensions 85B and 85C. The inclination angle R6 of the center portion 85A may be acute, and the first extension 85B may be positioned higher than the second extension 85C. The first and second extensions 85B and 85C are spaced apart in a first direction, and the convex portion 81 of the lens plate 80 is arranged in the first direction Y and provided with a longer length in the second direction X. Such a lens plate has regions with different spacing G3 between it and the light-shielding layer 51 along the first direction Y, and is placed on the illumination module 100A, so that a variety of three-dimensional effects can be realized by changing the spacing G3. Here, in order to reduce interference between three-dimensional images on the center portion 85A and the second extension portion 85C of the lens plate 80, the spacing of the openings 53 of the light-shielding layer 51 can be maximized, or the spacing G3 between it and the lens plate 80 can be reduced. Alternatively, the spacing between the protrusions 81 of the lens plate 80 can be further increased to reduce interference between three-dimensional images.
[0032] Figures 16 and 17 show first and second modifications of the lighting module in the lighting device of the invention, and parts identical to those disclosed above are omitted and can be applied selectively. As shown in Figure 16, the lighting module 100B may include a substrate 11, a resin layer 31, a light source 25, and a first light-transmitting layer 61. The light source 25 may be provided in the form of an LED chip or package, and may be arranged, for example, in a flip-chip configuration. The resin layer 31 may cover or seal the light source 25. A reflective layer 15 is disposed on the resin layer 31 and the substrate 11. The resin layer 31 may be formed of a transparent resin material and can adhere closely to the substrate 11 and the reflective layer 15. The first light-transmitting layer 61 may be disposed on the top and side surfaces of the resin layer 31. The first light-transmitting layer 61 may be provided in a configuration that surrounds the resin layer 31. The side portion 61A of the first light-transmitting layer 61 extends outside the resin layer 31 and can contact the reflective layer 15 and / or the substrate 11. A diffusing agent may be added to the resin layer 31, and the first light-transmitting layer 61 may contain at least one or both of a phosphor and / or ink particles. The phosphor and / or ink particles are described in the above-disclosed description. The light-shielding layer 51 has an opening 53 and is positioned on the first light-transmitting layer 61. The first light-transmitting layer 61 may be formed of a resin material such as silicone or epoxy. The lens plate 70 may be selectively adapted from the above-disclosed embodiments or modifications, and the convex portion 71 may be positioned on one or the other side of the transmissive portion 72. As shown in Figure 17, a number of light-transmitting layers 61, 63 may be positioned on the resin layer 31 of the lighting module. The light-transmitting layers 61 and 63 may include a first light-transmitting layer 61 disposed on the surface of the resin layer 31, and a second light-transmitting layer 63 disposed on the surface of the first light-transmitting layer 61. The first light-transmitting layer 61 may be disposed on the upper and side surfaces of the resin layer 31. For example, the side portion 61A of the first light-transmitting layer 61 may extend to the lower end of the side surface of the resin layer 31. The side portion 63A of the second light-transmitting layer 63 may be disposed outside the side portion 61A of the first light-transmitting layer 61. The side portion 61A of the first light-transmitting layer 61 and the side portion 63A of the second light-transmitting layer 63 may be bonded to the substrate 11.The first light-transmitting layer 61 may be a layer containing a phosphor. The second light-transmitting layer 63 may be a layer containing ink particles. The resin layer 31 may be provided with a diffusing agent added or as a layer free of impurities. The first light-transmitting layer 61 and the second light-transmitting layer 63 may be formed from a resin material such as silicone or epoxy. By laminating multiple layers of resin material on the outside of such a resin layer 31, the light source 25 can be protected from moisture.
[0033] <Third Example> Figure 18 is an example of a plan view of a lighting device according to a third embodiment of the invention, and Figure 19 is an example of a side cross-sectional view of the lighting device of Figure 18. Parts of the description that are the same as those disclosed above are omitted and can be applied selectively. Referring to Figures 18 and 19, the lighting device 201 may include a lighting module 100C and a lens plate 70 on the lighting module 100C. The lighting module 100C may include a light-shielding layer 51, or the light-shielding layer 51 may be located between the lighting module 100C and the lens plate 70. The lighting module 100C may include a light source 21 and a first light-transmitting layer 33C disposed on a substrate 11, and a resin layer 33A covering the light source 21. The light source 21 may be a package that emits light in one direction or in the direction of the first light-transmitting layer 33C, for example, a side-view type package. As another example, the light source 21 may include an LED chip. The resin layer 33A may cover the light source 21 and be separated from the first light-transmitting layer 33C. As shown in Figure 18, the spacing D4 between the light sources 21 may be greater than the distance D2 between the straight line connecting the light sources 21 and the incident surface of the first light-transmitting layer (33C in Figure 19). The resin layer 33A can cover the top, front (e.g., exit surface), and rear surfaces of the light sources 21 and may be positioned higher than the top surface of the light sources 21. The resin layer 33A may be made of a resin material such as silicone or epoxy. The resin layer 33A and the first light-transmitting layer 33C can overlap the light sources 21 in the first direction Y. The first light-transmitting layer 33C is positioned on the substrate 11 and guides the light incident through the resin layer 33A, which then exits in the direction of the light-shielding layer 51. The first light-transmitting layer 33C can provide surface illumination through its top surface. The reflective layer 15 is positioned between the first light-transmitting layer 33C and the substrate 11 and can reflect the incident light. The reflective layer 15 can be separated from or in contact with the resin layer 33A. The upper surface of the first light-transmitting layer 33C may be positioned lower than the upper surface of the resin layer 33A. The adhesive layer 33B is positioned between the resin layer 33A and the first light-transmitting layer 33C to reduce light loss at the interface between the resin layer 33A and the first light-transmitting layer 33C.The adhesive layer 33B contains a resin material such as silicone or epoxy and can bond the resin layer 33A and the first light-transmitting layer 33C. The light-shielding layer 51 is placed on top of the resin layer 33A and the first light-transmitting layer 33C. The light-shielding layer 51 may be bonded to a separate second light-transmitting layer or embodied in a member having a thicker thickness. A point light source of uniform intensity passing through the opening 53 is incident on the lens plate 70, and the point light source can be illuminated in three dimensions or as a three-dimensional image through the protrusion 71.
[0034] <Fourth Example> Figure 20 is an example of a plan view of a lighting device according to a fourth embodiment of the invention, and Figure 21 is an example of a side cross-sectional view of the lighting device in Figure 20. Parts of the description that are the same as those disclosed above are omitted and can be applied selectively. Referring to Figures 20 and 21, the lighting device may include a lighting module 100D and a lens plate 70 on the output side of the lighting module 100D. The lighting module 100D may include a light-shielding layer 51 between the resin layer 31 and the lens plate 70. The light-shielding layer 51 may be a part of the lighting module 100D or a separate component. The thickness of the lighting module 100D may be 5 mm or less, for example in the range of 2 mm to 5 mm. The lighting module 100D emits light with a thin line width from its output surface Sc2. The maximum length Y1 of the lighting module 100D or the maximum length of the resin layer 31 may be 10 mm or more, for example in the range of 10 mm to 30 mm. The lighting module 100D may include a substrate 11, a light source 21, a resin layer 31, and first and second reflective layers 15 and 19. The lighting module 100D may include a light-shielding layer 51 on the emission surface Sc2 of the resin layer 31. The first reflective layer 15 may be the reflective layer shown in Figure 2 and is located on the upper surface of the substrate 11, and the second reflective layer 19 is located on the upper surface of the resin layer 31. The light source 21 may be sealed within the resin layer 31. The resin layer 31 covers the light source 21 and can emit light through its front surface or emission surface Sc2. The rear surface of the resin layer 31 is the opposite side of the front surface and can be separated from the light source 21. The light source 21 may be embodied in a package having a body 21B and an LED chip 21C inside the body 21B. The body 21B is a body made of a reflective resin material, and the LED chip 21C is connected to the substrate 11 through a lead frame. The light source 21 may include a first surface S1 facing the emission surface Sc2 or the light shielding layer 51. The light emitted from the light source 21 may be blue, green, red, or white. As shown in Figure 21, the light sources 21 may be arranged on the same straight line, or the straight line connecting the centers of the light sources 21 may gradually move further apart from one end of the lens plate 70 towards the other end.The first and second reflective layers 15 and 19 reflect light generated from the light source 21, and the reflected light or light emitted from the light source 21 propagates along the resin layer 31 as linear illumination to the output surface. The first reflective layer 15 may include an open region 15B on which the light source 21 is located. The first and second reflective layers 15 and 19 may be formed in a single-layer or multi-layer structure. The second reflective layer 19 may include a light-reflecting material, such as a metal or a non-metallic material. If the second reflective layer 19 is a metal, it may include a metal layer such as stainless steel, aluminum (Al), or silver (Ag), and if it is a non-metallic material, it may include a white resin material or a plastic material. At least one of the first and second reflective layers 15 and 19 may include a white resin material or a polyester (PET) material. At least one of the first and second reflective layers 15 and 19 may include at least one of a low-reflection film, a high-reflection film, a diffuse reflection film, or a specular reflection film. The light-shielding layer 51 has an opening 53 through which linear illumination can be emitted in the shape of a point light source with uniform intensity. The light-shielding layer 51 can be in contact with or separated from the emission surface of the resin layer 31. The light-shielding layer 51 can be in contact with or separated from the first and second reflective layers 15 and 19. The vertical length of the light-shielding layer 51 may be the same as or greater than the straight-line length from the lower surface of the substrate 11 to the upper surface of the second reflective layer 19. The light-shielding layer 51 can cover the emission surface of the resin layer 31 and expose the opening 53. The sides of the resin layer 31 and the substrate 11 may be arranged on the same vertical plane. The sides of the resin layer 31 and the second reflective layer 19 may be arranged on the same vertical plane. In the light-shielding layer 51, the sum of the areas of the opening 53 may be 50% or less of the area of the emission surface Sc2 of the resin layer 31, for example, in the range of 1% to 50% or 1% to 25%. If the sum of the areas of the openings 53 is greater than the range, the three-dimensional effect of the openings 53 decreases. At least one of the openings 53 may be positioned in a region that does not overlap with the light source 21 in the horizontal direction or in the direction from which light is emitted.The lens plate 70 may include a transmissive portion 72 and a protrusion 71 on one or the other surface of the transmissive portion 72. The protrusion 71 may be arranged, for example, on one surface of the lens plate 70 or on the surface corresponding to the light-shielding portion.
[0035] The lens plate 70 can illuminate a point light source having a line width with three-dimensional illumination. The line width may be the same as or less than the thickness of the resin layer 31. That is, the height of the opening 53 may be the same as or less than the thickness of the resin layer 31.
[0036] <Example 5> Figure 22 is an example of a side cross-sectional view of a lighting device according to a fifth embodiment of the invention, in which parts identical to those disclosed above are omitted and selective application is possible. Referring to Figure 22, the lighting module may include a light-shielding portion 52 disposed between the resin layer 31 and the light-shielding layer 51. The light-shielding portion 52 may be formed of a material with a reflectance of 30% or more and / or a transmittance of 80% or less. The light-shielding layer 51 is bonded to the upper surface of the resin layer 31 by an adhesive layer 52A, the adhesive layer 52A is disposed around the periphery of the light-shielding portion 52, and the light-shielding portion 52 may be disposed in a region overlapping with the opening 53 of the light-shielding layer 51. The light-shielding portion 52 will cover the entire area of the opening 53 with an area larger than the area of the opening 53. The light-shielding portion 52 is disposed on the rear surface of the light-emitting element 21 in a region covering the front surface (emitting surface) and can suppress hot spots. The light-shielding portion 52 is disposed between the opening 53 and the resin layer 31, or between the opening 53 and the light-emitting element 21. As a result, the light-shielding portion 52 suppresses hot spots, and the light emitted through the light-shielding portion 52 is emitted through the aperture 53 as a point light source with more uniform intensity, and the point light source can travel to multiple protrusions 71A of the lens plate 70. As a result, the point light source emitted from the aperture 53 is emitted as a three-dimensional image through two or more protrusions 71A.
[0037] The output image of the lighting device according to the change in the shape and size of the opening 53 disclosed in Figure 25(A) is different from the output image of the lighting device according to the change in the distance G1 between the light-shielding layer 51 and the lens plate 70. Here, one region of the opening 53 of the light-shielding layer 51 may be positioned at the shortest distance from the upper end of the light-emitting element 21. The shortest distance may be less than or equal to the thickness of the resin layer 31. The position of the opening 53 of the light-shielding layer 51 is formed within a range of up to 15 mm or a distance of up to 12 mm from the center of the light-emitting element 21 in the emission direction of the light-emitting element 21 (Y direction, forward direction, or lateral direction), and may be ±7.5 mm or less or 6 mm or less from the center of the light-emitting element 21 in a direction perpendicular to the emission direction (X direction, lateral direction, or vertical direction). The horizontal or vertical size of the opening 53 is arranged in the range of n1×m1 to n2×m2, where n1 and m1 are 2 mm or more, and n2 and m2 may be 15 mm or less. The opening 53 is arranged in a one-to-one or many-to-one ratio with each light-emitting element 21, and the three-dimensional image may be in a 1:n ratio (where n is 2 or more). This allows for the realization of multiple three-dimensional images with a minimum number of light-emitting elements 21 by utilizing the shape of the opening 53 and the number of protrusions 71A when the opening 53 is arranged in a one-to-one ratio, and to realize a three-dimensional image using a minimum number of light-emitting elements 21 when the opening 53 is arranged in a many-to-one ratio with each light-emitting element 21. The number and luminosity of the output images can be adjusted by adjusting the size of the opening 53. In the embodiments disclosed above, if only the horizontal size of the opening 53 is changed within the range of 2mm × 2mm to 10mm × 2mm, the output images also increase horizontally. Furthermore, if only the vertical size of the opening 53 is changed within the range of 2mm × 2mm to 2mm × 10mm when the horizontal size of the opening 53 is changed within the range of 2mm × 2mm to 2mm × 10mm, the output images also increase vertically and increase in thickness. In other words, it can be seen that when the size of the aperture 53 increases in the same direction as the arrangement direction of the three-dimensional images (horizontal direction), the thickness of the image increases, and when the aperture 53 increases in the opposite direction to the arrangement direction (vertical direction), the central part of the image appears in a linear form. This makes it possible to realize the number of three-dimensional images without using a separate diffuser plate or diffusion film between the light-shielding layer 51 and the lens plate 70.Furthermore, the number of stereoscopic images can be adjusted by increasing the number of openings. The gap G1 between the light-shielding layer 51 and the lens plate 70 is the height of the first air layer 55, which diffuses and provides the light emitted through the opening 53. Depending on the gap G1, the area on the lens plate 70 that is incident on light increases, and a stereoscopic image is output through two or more protrusions 71A. Here, the gap G1 can be provided in the range of 1 mm to 20 mm, and it can be seen that the output image becomes larger with a gap G1 from 0 mm to 14 mm. For example, the output image is output in the range of 2 to 5 times or 3 to 5 times the gap G1. The output image at this time may be in a region with luminosity above the average value. The length of the stereoscopic image can be adjusted by adjusting the gap G1 in this way.
[0038] Figure 30 is a plan view of a vehicle to which a vehicle lamp to which a lighting module according to an embodiment is applied is applied, and Figure 31 is a drawing showing a vehicle lamp having a lighting module or lighting device disclosed in the embodiment. Referring to Figures 30 and 31, in vehicle 900, the taillight 800 may include a first lamp unit 812, a second lamp unit 814, a third lamp unit 816, and a housing 810. Here, the first lamp unit 812 may be a light source for the role of a turn signal, the second lamp unit 814 may be a light source for the role of a side marker light, and the third lamp unit 816 may be a light source for the role of a brake light, but is not limited to these. At least one or all of the first to third lamp units 812, 814, and 816 may include a lighting device or module disclosed in the embodiment. The housing 810 houses the first to third lamp units 812, 814, and 816 and may be made of a translucent material. In this case, the housing 810 may have a curve according to the design of the vehicle body, and the first to third lamp units 812, 814, and 816 may embody a surface light source having a curved surface according to the shape of the housing 810. Such vehicle lamps can be applied to vehicle turn signal lamps when the lamp units are applied to the vehicle's taillights, brake lights, or turn signal lamps.
[0039] The features, structures, and effects described in the above embodiments are included in at least one embodiment of the present invention, and are not necessarily limited to one embodiment. Furthermore, the features, structures, and effects exemplified in each embodiment can be combined or modified and implemented in other embodiments by a person with ordinary skill in the art to which the embodiment belongs. Therefore, such combinations and modifications should be interpreted as being within the scope of the present invention. In addition, although the above has focused on embodiments, these are merely examples and do not limit the present invention. A person with ordinary skill in the art to which the present invention belongs can make various modifications and applications not exemplified above, as long as they do not deviate from the essential characteristics of these embodiments. For example, each component specifically presented in the embodiments can be modified and implemented. And the differences related to such modifications and applications should be interpreted as being within the scope of the present invention as defined in the appended claims.
Claims
1. circuit board and Multiple light sources arranged on the substrate, A resin layer covering the light source on the substrate, A lens plate disposed on the resin layer, It includes a light-shielding layer disposed between the resin layer and the lens plate, The light-shielding layer has a plurality of openings, The lens plate includes a plurality of protrusions arranged in a first direction, The distance between the light-shielding layer and the upper surface of the resin layer is smaller than the first distance between the light-shielding layer and the lower surface of the lens plate. Light emitted from the light source is irradiated in multiple images through the resin layer, the multiple apertures, and the lens plate. Each of the aforementioned plurality of images has the highest luminosity on the plurality of apertures, The image is illuminated as a three-dimensional image by the light passing through the lens plate. The plurality of protrusions include lenticular lenses, The first gap between the lens plate and the light-shielding layer is provided as a first air layer. At least one of the aforementioned openings has a length in the range of 3 mm to 10 mm. The first interval is in the range of 5 mm to 50 mm, in the lighting device.
2. A substrate and Multiple light sources arranged on the substrate, A resin layer covering the light source on the substrate, A lens plate disposed on the resin layer, It includes a light-shielding layer disposed between the resin layer and the lens plate, The light-shielding layer has a plurality of openings, The lens plate includes a plurality of protrusions arranged in a first direction, The distance between the light-shielding layer and the upper surface of the resin layer is smaller than the first distance between the light-shielding layer and the lower surface of the lens plate. Light emitted from the light source is irradiated in multiple images through the resin layer, the multiple apertures, and the lens plate. Each of the aforementioned plurality of images has the highest luminosity on the plurality of apertures, The image is illuminated as a three-dimensional image by the light passing through the lens plate. The plurality of protrusions include lenticular lenses, The plurality of light sources includes at least one of a plurality of first light sources arranged adjacent to a first side surface of the resin layer, and a plurality of second light sources arranged adjacent to a second side surface opposite to the first side surface. A lighting device in which the multiple openings are arranged in a region that does not overlap with the multiple light sources in the vertical direction.
3. The lighting device according to claim 1 or 2, wherein each of the plurality of protrusions has a length that is longer in a second direction perpendicular to the first direction.
4. The lighting device according to claim 3, wherein the plurality of protrusions face the light-shielding layer.
5. The illumination device according to claim 3, wherein the plurality of protrusions are arranged on the lower or upper surface of the lens plate.
6. The lighting device according to any one of claims 3 to 5, wherein each of the plurality of light sources has an emitting surface that emits light in the first direction.
7. The lighting device according to any one of claims 3 to 5, wherein the plurality of light sources are arranged in the second direction within the resin layer.
8. The lighting device according to any one of claims 3 to 5, wherein at least one of the plurality of openings has a length in the first direction that is longer than the width in the second direction.
9. The lighting device according to any one of claims 1 to 5, wherein the light-shielding layer is in contact with the upper surface of the resin layer.
10. It includes a reflective layer disposed between the substrate and the resin layer, The lighting device according to any one of claims 1 to 5, wherein the lower parts of the plurality of light sources are arranged in each of the open regions of the reflective layer.
11. The lighting device according to claim 10, further comprising at least one light-transmitting layer disposed between the resin layer and the light-shielding layer.
12. The lighting device according to any one of claims 1 to 5, wherein the lens plate includes a region that is inclined or bulges with respect to the upper surface of the light-shielding layer.
13. The lighting device according to any one of claims 1 to 5, wherein the sum of the areas of the openings is 50% or less of the upper surface area of the resin layer.
14. The lighting device according to any one of claims 1 to 4, wherein the lens plate rotates with respect to an axis perpendicular to the center of the resin layer in a first direction.
15. The first gap between the lens plate and the light-shielding layer is provided as a first air layer. At least one of the aforementioned openings has a length in the range of 3 mm to 10 mm. The lighting device according to claim 2, wherein the first interval is in the range of 5 mm to 50 mm.
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