Aspherical LED lens and light emitting device including the same
09574737 ยท 2017-02-21
Assignee
Inventors
- Kwang Il Park (Ansan-si, KR)
- Sang Cheol Lee (Ansan-si, KR)
- Jeong A Han (Ansan-si, KR)
- Woong Jun Hwang (Ansan-si, KR)
- Hee Tak Oh (Ansan-si, KR)
Cpc classification
F21V5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L2924/0002
ELECTRICITY
H01L2924/00014
ELECTRICITY
F21V5/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L2924/00
ELECTRICITY
H01L2924/0002
ELECTRICITY
F21Y2101/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2131/103
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L2924/00014
ELECTRICITY
H01L2924/00
ELECTRICITY
G02B3/04
PHYSICS
International classification
Abstract
An aspherical lens includes a light entrance plane configured to receive light emitted from a light source and a light exit plane configured to radiate the light received by the light entrance plane. The light exit plane includes semispherical convex portions disposed on an upper surface of the aspherical lens, a concavely depressed portion comprising an overlapping region where the semispherical convex portions partially overlap each other at a central axis, a side portion connected with the semispherical convex portions, and an upper surface of each of the semispherical convex portions having a first flat portion.
Claims
1. An aspherical lens, comprising: a light entrance plane configured to receive light emitted from a light source; and a light exit plane configured to radiate the light received by the light entrance plane, wherein the light exit plane comprises: semispherical convex portions disposed on an upper surface of the aspherical lens; a concavely depressed portion comprising an overlapping region where the semispherical convex portions partially overlap each other at a central axis, a side portion connected with the semispherical convex portions; and an upper surface of each of the semispherical convex portions comprises a first flat portion.
2. The aspherical lens of claim 1, wherein the side portion comprises a curved surface.
3. The aspherical lens of claim 1, wherein the concavely depressed portion comprises a curved surface.
4. The aspherical lens of claim 1, wherein the first flat portion is disposed between the overlapping region and the side portion.
5. The aspherical lens of claim 1, wherein: the concavely depressed portion and the side portion each comprise curved surfaces; and the first flat portion is disposed between the curved surface of the concavely depressed portion and the curved surface of the side portion.
6. The aspherical lens of claim 1, wherein the first flat portion is perpendicular to the central axis.
7. The aspherical lens of claim 1, wherein at least one surface of the light entrance plane comprises a second flat portion.
8. The aspherical lens of claim 7, wherein an imaginary line parallel to the central axis intersects the first flat portion and the second flat portion.
9. The aspherical lens of claim 7, wherein an imaginary line parallel to the central axis intersects a first part of the second flat portion and the light source, such that the first part overlaps the light source.
10. The aspherical lens of claim 1, wherein the first flat portion surrounds the concavely depressed portion in a circular shape.
11. An aspherical lens, comprising: a light entrance plane configured to receive light emitted from a light source; and a light exit plane configured to radiate the light received by the light entrance plane, wherein the light exit plane comprises: a concavely depressed portion disposed along a central axis; a semispherical convex portion surrounding the concavely depressed portion; and a side portion connected with the semispherical convex portion, wherein: an upper surface of the semispherical convex portion comprises a first flat portion; and the light entrance plane comprises a second flat portion.
12. The aspherical lens of claim 11, wherein an imaginary line parallel to the central axis intersects the first flat portion and the second flat portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention, and together with the description serve to explain the principles of the invention.
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DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS
(21) The invention is described more fully hereinafter with reference to the accompanying drawings, in which exemplary embodiments of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the exemplary embodiments set forth herein. Rather, these exemplary embodiments are provided so that this disclosure is thorough and will fully convey the scope of the invention to those skilled in the art. In the drawings, the sizes and relative sizes of layers and regions may be exaggerated for clarity. Like reference numerals in the drawings denote like elements.
(22) It will be understood that when an element or layer is referred to as being on or connected to another element or layer, it can be directly on or directly connected to the other element or layer, or intervening elements or layers may be present. In contrast, when an element is referred to as being directly on or directly connected to another element or layer, there are no intervening elements or layers present.
(23)
(24) Referring to
(25) The aspherical LED lens 14 may be formed of a light-transmitting material such as silicone, epoxy, glass or plastic and have phosphors dispersed therein. Further, the aspherical LED lens 14 may include a light entrance plane 141 and a light exit plane 142, and has a radially symmetrical structure with respect to a central axis (y) of the LED lens 14.
(26) Here, the light entrance plane 141 refers to a plane, upon which light emitted from the LED chip 12 and passing through the encapsulation material 142 is incident, and is composed of a conical plane having a vertex located on the central axis. An air layer 25 may be present in a space between the light entrance plane 141 and the encapsulation material 22. Further, the light exit plane 142 refers to a plane, through which light passing through the LED lens 14 is emitted to the outside of the LED lens, and has an overlapped region of two convex semispherical shapes partially overlapping each other around the central axis. The overlapped region around the central axis may be a concavely depressed region.
(27) With this configuration of the aspherical lens 14, the amount or intensity of light decreases near a center of the aspherical LED lens 14, that is, near the central axis of the aspherical LED lens 14, and increases near a periphery of the aspherical LED lens 14, thereby providing an orientation angle curve as shown in
(28) Thus, when such an aspherical lens 14 is employed as a light source for a backlight unit of a display device, the display device may have uniform illumination and brightness on the panel of the display device thereby solving the problem of the conventional LED lens wherein bright areas are formed on regions of a panel directly above LED packages and dark areas are formed on regions of the panel between adjacent LED packages.
(29) The aspherical lens 14, which does not include a dispersing agent, may exhibit more severe chromatic aberration than the conventional semispherical lens 4 due to the shape of the lens, as in a chromatic aberration curve of
(30) On the other hand, when the aspherical lens 14 includes the dispersing agent to solve the problem of chromatic aberration, the dispersing agent may undesirably reduce the amount of light emitted from the lens or may have an undesirable effect on the orientation angle. Therefore, the use of only the dispersing agent may be insufficient to achieve a reduction in the chromatic aberration.
(31) Next, an aspherical lens according to one exemplary embodiment will be described with reference to
(32)
(33) Referring to
(34) In the housing 320, the cavity 321 has a predetermined depth and may be configured to surround the LED chip 322. Advantageously, the depth of the cavity 321 may be greater than or equal to the height of the LED chip 322.
(35) The encapsulation material 323 is a light-transmitting material, such as silicone or epoxy, with which the cavity 321 is filled, and encapsulates the LED chip 322 to cover and protect the LED chip 322.
(36) The LED chip 322 is mounted on an upper surface of the housing 320 and emits, for example, blue light in a wavelength band of 430480 nm or UV light in a wavelength band of 350410 nm. Alternatively, the LED chip 322 may be configured to emit other colors. As such, the present invention is not limited to a specific LED chip.
(37) The LED chip 322 is mounted on the upper surface of the housing 320 and may be placed at a location where a central axis of the aspherical LED lens 360 meets the housing 320. Specifically, the LED chip 322 may be disposed at the center of the aspherical LED lens 360, which may be bonded or joined to the upper surface of the housing 320 including the LED chip 322 by an adhesive or other means. Although the aspherical LED lens 360 is illustrated as being disposed over a single LED chip in
(38) Further, a fluorescent material may be directly deposited on the LED chip 322 or contained in the encapsulation material 323 or a resin constituting the aspherical LED lens 360. Here, the fluorescent material may emit light of a certain color using light emitted from the LED chip 322 as an excitation source. For example, if the LED chip 322 is a blue LED chip composed of semiconductors for emitting light in a wavelength band of 430480 nm, phosphors emitting yellow-green or yellow light using some of the light as an excitation source are deposited on the LED chip 322, so that the light emitting device can emit white light by a combination of blue light emitted from the LED chip 322 and yellow-green or yellow light emitted from the phosphors.
(39) Further, the aspherical LED lens 360 includes a light entrance plane 361 and a light exit plane 362, and has a radially symmetrical structure with respect to a central axis (y) of the LED lens 360.
(40) Here, the light entrance plane 361 refers to a plane, upon which light emitted from the LED chip 322 and passing through the encapsulation material 323 is incident, and is composed of a conical plane having a vertex located on the central axis (y). An air layer 324 may be present in a space between the light entrance plane 361 and the encapsulation material 323. Further, the light exit plane 362 refers to a plane, through which light passing through the lens 360 is emitted to the outside of the LED lens 360, and has an overlapped region of two convex semispherical shapes C1, C2 partially overlapping each other around the central axis (y). The overlapped region around the central axis (y) may be a concavely depressed region. Further, the light exit plane 361 includes a plurality of protrusions (roughness) 363 partially formed on a side surface thereof. As shown in
(41) Different from the conventional semispherical lens 4, the aspherical lens 360 exhibits a decrease in amount or intensity of light near the center of the lens (near the central axis) and exhibits an increase in amount or intensity of light near the periphery of the lens, thereby providing an orientation angle curve of light as shown in
(42) Specifically, the orientation angle curve of
(43) Next, referring to
(44) Consequently, when the aspherical lens 360 including the side protrusions 363 is employed as a light source for a backlight unit of a display device, for example, the display device has uniform illumination and brightness on the panel of the display device while eliminating spots such as yellow spots or yellow rings caused by the chromatic aberration. In addition, as the chromatic aberration is reduced by the formation of the side protrusions 363 without using the dispersing agent, the display device does not suffer deterioration in brightness caused by a reduction in the amount of light passing through the lens.
(45) In fabrication of the aspherical LED lens 360 according to the present exemplary embodiment, a light-transmitting material such as silicone, epoxy, glass or plastic may be used. For example, liquid silicone rubber (LSR) has sufficiently low viscosity to provide good flexibility and suffers less decrease in viscosity at high temperature than currently used adhesive silicone resins, thereby providing improved workability. In addition, the LSR permits automatic production by injection molding due to low viscosity thereof and provides excellent productivity. Furthermore, since the LSR does not exhibit release properties with respect to a mold, the LSR may not cause a lens interface phenomenon and permits easy formation of the protrusions (roughness) on the lens when forming the protrusions by sand blasting on the surface of the mold.
(46) According to an exemplary embodiment, the dispersing agent is mixed with a silicone resin used in fabrication of the aspherical LED lens 360 to achieve a further reduction of chromatic aberration. For example, an aspherical LED lens may be produced by injection molding of a mixture prepared by mixing the LSR with a SiO.sub.2 dispersing agent. In this case, since the dispersing agent may reduce the amount of light in proportion to reduction in the degree of chromatic aberration or provide a different orientation angle curve from that shown in
(47) Experiments showed that the aspherical LED lens exhibited desired brightness with less chromatic aberration when the dispersing agent is mixed in an amount of about 0.30.4% with respect to the total amount of the LSR. The present invention is not limited to a specific kind or mixing ratio of dispersing agent.
(48)
(49) Referring to
(50) Further, the aspherical LED lens 400a of
(51) For the respective aspherical lenses of
(52) TABLE-US-00001 TABLE 1 Chromatic aberration Yellow spot (orientation angle 90) on panel Lens 400a x = 0.021/y = 0.069 No occurrence Lens 400b x = 0.016/y = 0.038 No occurrence Lens 400c x = 0.032/y = 0.072 Occurrence
(53) For the degree of chromatic aberration, the X-coordinate variation (X) and the Y-coordinate variation at an orientation angle within 90 degrees are x=0.021/y=0.069 for the lens 400a, x=0.016/y=0.038 for the lens 400b, and x=0.032/y=0.072 for the lens 400c. The lens 400c generates yellows spots on the panel due to the chromatic aberration, unlike the lenses 400a, 400b.
(54) Consequently, for the light exit plane of the aspherical lens 400 including at least two linear sections 420 that meet each other at the central axis, chromatic aberration is pronounced when each of the linear sections is slanted at an angle of about 3540 degrees or more with respect to the horizontal direction.
(55) Accordingly, when producing the aspherical lens including the linear sections according to the present exemplary embodiment, the inclination of the linear sections may be adjusted to about 1040 degrees with respect to the horizontal direction by taking into consideration that severe chromatic aberration may occur depending on the inclination of the linear sections near the depressed portion of the aspherical lens at an angle greater than about 35-40 degrees.
(56) Meanwhile, although roughness or protrusions are not shown on a side surface 440 of each of the aspherical lenses in
(57)
(58) Referring to
(59) In other words, the light exit plane 520 of
(60) TABLE-US-00002 TABLE 2 Chromatic aberration Yellow spot (orientation angle 90) on panel Lens 500a x = 0.04/y = 0.072 No occurrence Lens 500b x = 0.072/y = 0.109 Occurrence
(61) For the degree of chromatic aberration, the X-coordinate variation (X) and the Y-coordinate variation (Y) at an orientation angle within 90 degrees are x=0.04/y=0.072 for the lens 500a having the light exit plane 520 generally composed of the curved sections having large radii of curvature, and are x=0.072/y=0.109 for the lens 500b having the light exit plane 520 generally composed of the curved sections having small radii of curvature. The lens 500b generates yellow spots or yellow rings on the panel due to the chromatic aberration, unlike the lens 500a.
(62) Consequently, in the formation of the aspherical lens 500, chromatic aberration is severe at some regions of the light exit plane having small radii of curvature.
(63) Accordingly, when producing the aspherical lens including the plural curved sections having different radii of curvature, it is desirable to adjust the radii of curvature of the curved sections to about 1.05.0 by taking into consideration that severe chromatic aberration can occur at regions of the light exit plane having a radii of curvature less than about 1.3.
(64) Meanwhile, although roughness or protrusions are not shown on a side surface of the light exit plane in
(65) Next, an aspherical LED lens 2200 according to an exemplary embodiment of the present invention will be described with reference to
(66) Referring to
(67) Specifically, referring to
(68) The supporting section 2230 is not limited to a specific structure. For example, the supporting section 2230 may be integrally formed with the first and second lens sections 2210, 2220. Alternatively, the supporting section 2230 may be separately prepared and attached to the first and second lens sections 2210, 2220. The supporting section 2230 covers the substrate 2240 having an LED chip 2120 (see
(69) Details of the lens part of the aspherical LED lens 2200 according to the present exemplary embodiment will be described in more detail with reference to
(70)
(71) As shown in
(72) Any substrate may be used as the substrate so long as the substrate allows a high density of LED chips 2120 to be mounted thereon. Examples of such a substrate include, but are not limited to, alumina, quartz, calcium zirconate, forsterite, SiC, graphite, fused silica, mullite, cordierite, zirconia, beryllia, aluminum nitride, and low temperature co-fired ceramic (LTCC). The ceramic material may be applied to a multi-layer ceramic package (MLP), which includes a pattern of metallic conductor wires formed thereon and subjected to sintering. The ceramic material used for such a semiconductor package provides excellent air-tightness.
(73) Further, although not shown in the drawings, the substrate 2240 has patterned electrodes, which are formed of a highly conductive metal such as copper or aluminum and may be separately formed corresponding to an anode and a cathode of the LED chip 2120.
(74) The LED chip 2120 may be, for example, a blue LED chip that emits blue light in a wavelength band of 430480 nm or a UV LED that emits UV light in a wavelength band of 350410 nm. Alternatively, the LED chip 2120 may be configured to emit other colors. As such, the present invention is not limited to a specific LED chip.
(75) The LED chip 2120 is mounted on an upper surface of the substrate 2240 and may be placed at a location where the central axis of the aspherical LED lens 2200 meets the substrate 2240. Specifically, the LED chip 2120 may be disposed at the center of the aspherical LED lens 2200, which may be bonded or joined to the upper surface of the substrate 2240 including the LED chip 2120 by an adhesive or other means. Although the aspherical LED lens 2200 is illustrated as including a single LED chip in
(76) Further, although not shown in the drawings, a fluorescent material may be directly deposited on the LED chip 2120 to generate a certain color using light emitted from the LED chip 2120 as an excitation source. For example, if the LED chip 2120 is a blue LED chip composed of semiconductors for emitting light in a wavelength band of 430480 nm, phosphors emitting yellow-green or yellow light using some of the light as an excitation source are deposited on the LED chip 2120, so that the light emitting device can emit white light by a combination of blue light emitted from the LED chip 2120 and yellow-green or yellow light emitted from the phosphors. Further, the fluorescent material may be directly deposited on the LED chip 2120 or may be contained in a resin for forming the aspherical LED lens 2200. Alternatively, the fluorescent material may be provided as a separate phosphor sheet.
(77) The aspherical LED lens 2200 serves to adjust an orientation angle of light by changing a travel direction of light emitted from the LED chip 2120 and may be formed of a light-transmitting material such as silicone, epoxy, glass or plastic.
(78) According to the present exemplary embodiment, the aspherical LED lens 2200 includes a first lens section 2210 and a second lens section 2220 positioned symmetrically about the central axis Y and a supporting section 2230 formed under the first and second lens sections 2210, 2220. In other words, the first and second lens sections 2210, 2220 are in surface contact with each other to form a convexly protruded shape at a central region 2510 of the lens, as shown in
(79) Referring again to
(80) Specifically, the first flat portion 2320 and the second flat portion 2420 are the uppermost flat regions of the first lens section 2210 and the second lens section 2220 (see
(81) When emitted from the LED chip 2120 to the outside, light is refracted away from the central axis Y by a difference in refractive index between air and the resin for forming the aspherical LED lens 2200 and angles of slanted outer surfaces of the first and second lens sections 2210, 2220.
(82) Referring to
(83) The minor axis cross-section of the aspherical LED lens 2200 may include a central lens region 2510, first and second planes 2520, 2530 respectively connected to both ends of the central lens region 2510, and a supporting section 2230. As can be seen from shape with the central lens region 2510 convexly protruded, and is different from the major axis cross-section of the aspherical LED lens 2200 shown in
(84) As in
(85) Next, referring to
(86) Referring to
(87) In other words, the light orientation angle curve on the major axis cross-section of the aspherical LED lens 2200 is different from the light orientation angle curve on the minor axis cross-section of the aspherical LED lens 2200, thereby forming asymmetrical light orientation angle curves.
(88) Particularly, in the orientation angle curve on the major axis cross-section of the LED lens 2200 shown in
(89) Thus, when the light emitting device 2000 employs the aspherical LED lens 2200, light is broadly emitted from right and lefts sides of the light emitting device 2000 with reference to a major axis plane of the aspherical LED lens 2200. Accordingly, when such light emitting devices 2000 are used for a street lamp, for example, it is possible to form an elongated illumination area along a roadside using light emitted from the light emitting devices 2000. Further, since light is focused on the center of the lens with reference to a minor axis plane of the aspherical LED lens 2200, a road area within a certain radius of the street lamp can be illuminated with higher brightness than other areas. In other words, the light emitting device 2000 including the aspherical LED lens 2200 emits light in different patterns along the major axis and the minor axis of the aspherical LED lens, thereby making it possible to achieve efficient illumination of a road according to a road condition when applied to the street lamp.
(90)
(91) As shown in
(92) Unlike the light emitting device 2000 shown in
(93) The LED chip 3120 may be, for example, a blue light emitting diode chip that emits blue light in a wavelength band of 430480 nm or a UV light emitting diode chip that emits UV light in a wavelength band of 350410 nm. Alternatively, the LED chip 3120 may be configured to emit other colors of light. As such, the present invention is not limited to a specific LED chip.
(94) The LED chip 3120 is mounted in the cavity on the substrate 3240 and may be placed at a location where a central axis of the aspherical LED lens 3200 meets the substrate 3240. Specifically, the LED chip 3120 may be disposed at the center of the aspherical LED lens 3200, which may be bonded or joined to the upper surface of the substrate 3240 including the LED chip 3120 by an adhesive or other means. Although the aspherical LED lens 3200 is illustrated as including a single LED chip 3120 in
(95) Further, although not shown in the drawings, a fluorescent material may be directly deposited on the LED chip 3120 to generate a certain color using light emitted from the LED chip 3120 as an excitation source. Here, the fluorescent material may be contained in a resin for forming the aspherical LED lens 3200. Alternatively, the fluorescent material may be provided as a separate phosphor sheet.
(96) The aspherical LED lens 3200 serves to adjust an orientation angle of light by changing a travel direction of light emitted from the LED chip 3120 and may be formed of a light-transmitting material such as silicone, epoxy, glass or plastic.
(97) According to the present exemplary embodiment, the aspherical LED lens 3200 includes a first lens section 3211 and a second lens section 3221 positioned symmetrically about the central axis Y, without the supporting section as described above. The first and second lens sections 3211, 3221 are in surface contact with each other to form a convexly protruded shape at a central region 3511 of the lens, as shown in
(98) Referring again to
(99) Specifically, the first flat portion 3321 and the second flat portion 3421 are the uppermost flat regions of the first lens section 3211 and the second lens section 3221 to form linear structures, respectively. Each of the first slanted portion 3311 and the second slanted portion 3411 is connected to one end of each of the first flat portion 3321 and the second flat portion 3421, and may be a curved surface slanted towards the central axis Y. Thus, the first slanted portion 3311 and the second slanted portion 3411 are coupled to each other at the central axis Y to form a concave cross-section at the center of the aspherical LED lens 3200. Further, each of the first convex portion 3331 and the second convex portion 3431 is connected to the other end of each of the first flat portion 3321 and the second flat portion 3421, and is a curved surface bulging towards an outside of the aspherical LED lens 3200. Here, the first slanted portion 3311 (or the second slanted portion 3411) may have the same or different curvature from the first convex portion 3330 (or the second convex portion 3430).
(100) When emitted from the LED chip 3120 to the outside, light is refracted away from the central axis Y by a difference in refractive index between air and the resin for forming the aspherical LED lens 3200 and angles of slanted outer surfaces of the first and second lens sections 3210, 3220.
(101) Referring now to
(102) Therefore, the orientation angle curve of the aspherical LED lens 3200 has the shape of
(103) Particularly, in the orientation angle curve on the major axis cross-section of the LED lens 3200, peak angles at both sides of the lens are about 5070 degrees and the intensity of light at the center of the lens is about 4050% of the peak value. On the contrary, in the orientation angle curve on the minor axis cross-section of the LED lens 3200, the orientation angle is about 7090 degrees.
(104) Thus, when the light emitting device 3000 employing the aspherical LED lens 3200 is used for a street light, for example, it is possible to form an elongated illumination area along a roadside using light emitted from the light emitting devices 3000. Further, since light is focused on the center of the lens with reference to a minor axis plane of the aspherical LED lens 3200, a road area within a certain radius of the street lamp can be illuminated with higher brightness than other areas.
(105) The aspherical LED lens according to exemplary embodiments of the present invention may be used to provide a double-peak orientation angle curve of light. Accordingly, a display device employing the aspherical LED lens as a light source for a backlight unit can provide uniform illumination to a panel of the display device while significantly reducing chromatic aberration.
(106) In addition, when a light emitting device employing the aspherical LED lens is used for a display device, the display device has uniform illumination or brightness on the panel of the display device and eliminates spots caused by chromatic aberration, thereby improving display quality.
(107) According to other exemplary embodiments of the present invention, the orientation angle curve on the major axis of the aspherical LED lens has peak angles at locations deviated from the center of the LED lens and the orientation angle curve on the minor axis of the aspherical LED lens has a peak angle at the center of the LED lens, so that he aspherical LED lens provides different light orientation angle curves in the directions of the major axis and the minor axis of the LED lens.
(108) Accordingly, when light emitting devices employing such an aspherical LED lens are used for street lights, the light emitting devices may provide an illumination region longitudinally formed along a roadside.
(109) Although the invention has been illustrated with reference to some exemplary embodiments in conjunction with the drawings, it will be apparent to those skilled in the art that various modifications and changes can be made to the invention without departing from the spirit and scope of the invention. Therefore, it should be understood that the embodiments are provided by way of illustration only and are given to provide complete disclosure of the invention and to provide thorough understanding of the invention to those skilled in the art. Thus, it is intended that the invention covers the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents.