LED lighting device for colored lighting
10488017 ยท 2019-11-26
Assignee
Inventors
Cpc classification
F21V9/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21V9/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A light emitting diode (LED) device is provided including an LED, a transparent cover configured for retaining a color filter, and a first color filter configured to be retained by the transparent cover. The color filter, when retained by the transparent cover, is functionally disposed in front of the LED such that light leaving the lighting assembly passes through the color filter.
Claims
1. A light emitting diode (LED) lighting device comprising: an LED light source; a transparent cover configured for retaining a first color filter; and the first color filter configured to be retained by the transparent cover; and a second color filter opposite the transparent cover from the first color filter, wherein the first color filter, when retained by the transparent cover, is functionally disposed in front of the LED light source, and between the LED light source and the second color filter, such that light leaving the lighting assembly passes through the first color filter and the second color filter, and wherein the first color filter is selected to modify the light emitted by the LED light source to a color in conjunction with the second color filter when the LED light source is active, and wherein the second color filter determines a first color for a front surface of the lighting device when the LED light source is inactive, and wherein the first color filter in conjunction with the second color filter determines a second color for the front surface of the lighting device when the LED light source is active.
2. The device of claim 1 further comprising a housing, and wherein the LED light source is fixed in the housing and the transparent cover is fixed to the housing.
3. The device of claim 2, wherein the transparent cover and the housing combine to fully enclose the LED light source.
4. The device of claim 2 wherein the transparent cover is removably fixed to the housing.
5. The device of claim 1 wherein the first color filter is applied to a surface of the transparent cover facing the LED light source and the second color filter is applied to an opposite surface of the transparent cover.
6. The device of claim 1 wherein the transparent cover contains a pocket for retaining the first color filter.
7. The device of claim 1 wherein the second color filter is external to a housing of the device.
8. The device of claim 1 wherein the first color filter is selected to modify the color temperature of the LED light source to a specified color temperature.
9. A light emitting diode (LED) lighting assembly comprising: an LED light source; a transparent cover configured for retaining a first color filter; the first color filter configured to be retained by the transparent cover; a housing having a front surface; and a second color filter opposite the transparent cover from the first color filter, wherein the first color filter, when retained by the transparent cover, is functionally disposed in front of the LED light source such that any light leaving the lighting assembly passes through the first color filter, the front surface, and the second color filter, wherein the first color filter affects a first color for light emitted from the LED lighting assembly when the LED lighting assembly provides light and the front surface and the second color filter provides a second color when the LED lighting assembly does not provide light.
10. The lighting assembly of claim 9 wherein the second color filter is incorporated into the front surface.
11. The lighting assembly of claim 10 wherein the second color filter is selected to provide a specific color when no light is emitted from the lighting assembly, and the first color filter is selected to combine with the second color filter to provide a specific color when light is emitted from the lighting assembly.
12. The lighting assembly of claim 9 wherein the first color and the second color are the same color.
13. The lighting assembly of claim 12 wherein the first color and the second color are the same color as the second color filter and the first color filter is selected such that any light emitted from the lighting assembly appears to be the same color as the first color.
14. The lighting assembly of claim 9 wherein the first color and the second color are different colors.
15. The lighting assembly of claim 14 wherein the first color is white.
16. The lighting assembly of claim 15 wherein the first color filter is selected such that light passing through the first color filter is of a specific color temperature.
17. A method of assembling a lighting assembly, the lighting assembly comprising: an LED light source; a transparent cover configured for retaining a first color filter; the first color filter; a housing having a front surface; and a second color filter opposite the transparent cover from the first color filter, and the method comprising: selecting a color for the second color filter such that the second color filter is a first color of the lighting assembly when the lighting assembly does not emit light; applying the second color filter at the front surface of the housing; selecting a color for the first color filter such that when light from the LED light source passes through the first color filter and the second color filter, the front surface of the housing is a second color; applying the first color filter to the transparent cover; placing the transparent cover between the LED light source and the front surface such that any light emitted from the LED light source passes through the first color filter; and placing the transparent cover and LED light source within the housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(7) The description of illustrative embodiments according to principles of certain embodiments is intended to be read in connection with the accompanying drawings, which are to be considered part of the entire written description. In the description of certain embodiments disclosed herein, any reference to direction or orientation is merely intended for convenience of description and is not intended in any way to limit the scope of the present invention. Relative terms such as lower, upper, horizontal, vertical, above, below, up, down, top and bottom as well as derivative thereof (e.g., horizontally, downwardly, upwardly, etc.) should be construed to refer to the orientation as then described or as shown in the drawing under discussion. These relative terms are for convenience of description only and do not require that the apparatus be constructed or operated in a particular orientation unless explicitly indicated as such. Terms such as attached, affixed, connected, coupled, interconnected, and similar refer to a relationship wherein structures are secured or attached to one another either directly or indirectly through intervening structures, as well as both movable or rigid attachments or relationships, unless expressly described otherwise. Moreover, the features and benefits of certain embodiments are illustrated by reference to the exemplified embodiments. Accordingly, every embodiment expressly should not be limited to such exemplary embodiments illustrating some possible non-limiting combination of features that may exist alone or in other combinations of features.
(8) This disclosure describes the best mode or modes of practicing certain embodiments as presently contemplated. This description is not intended to be understood in a limiting sense, but provides examples solely for illustrative purposes by reference to the accompanying drawings to advise one of ordinary skill in the art of the advantages and construction of certain embodiments. In the various views of the drawings, like reference characters designate like or similar parts.
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(10) The LED lighting device 1000 comprises an LED light source 1010 disposed on a printed circuit board (PCB) 1020 within a housing 1030, which components combine to form a base module 1080. The housing 1030 may contain any wire leads necessary for powering the LED lighting device 1000. The LED light source 1010 is enclosed within the housing using a transparent cover 1040 configured for retaining a color filter 1050. The color filter 1050 is retained by the transparent cover 1040 such that any light leaving the housing 1030 from the LED light source 1010 passes through the color filter.
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(12) The housing 1030 may be metal or plastic, or any other material, so long as the material is sufficiently opaque such that substantial light emitted from the LED light source 1010 does not pass through the housing and affect the color of the light passing through the color filter 1050.
(13) The base module 1080 comprising the LED light source 1010, the PCB 1020, and the housing 1030, may be a mass produced LED modular array containing many LED light sources mounted on one or more PCB within a larger housing, or a mass produced single LED module. The base module 1080 may be configured as an elongated LED bar to generate a line of lighting, for example. The base module 1080 may be configured with a quick connect feature for providing consistent mounting and power to the LED lighting device 1000, and it may contain additional elements for consistently spacing the LED light sources or the modules containing the LED light sources themselves. The connection features of the modules may be configured for providing flexible mounting of the LED lighting device 1000, and the device may therefore provide for combining multiple devices to form a bar of a desired length, in specified curves, or other shapes, for fitting within custom signage (such as channel letters).
(14) Typically, the LED lighting device would operate with constant voltage inputs, either low voltage (typically 12V or 24V), or high voltage in AC (90 VAC-277 VAC). However, other configurations are possible.
(15) The transparent cover 1040 is typically configured to fit the base unit 1080, and is placed in the direction of light emission from the base unit. The transparent cover 1040 may be of different plastics, including polycarbonate, acrylic, ABS, PVC, or other transparent materials, such as glass (including tempered glass for operation in high temperature environments), or some combination of materials. The formulation of the transparent cover 1040 may contain additives, such as UV inhibition additives for resisting yellowing.
(16) The transparent cover 1040 for the LED lighting device 1000 is configured with a flat surface, or flat surfaces 1060, 1070 for retaining a color filter 1050. The color filter 1050 may be a substrate having an adhesive surface for application to a flat surface of the transparent cover 1040, or it may be an opaque sheet placed within a slot on the transparent cover. The color filter 1050 may then be placed in front of the LED light source 1010 for modifying the illumination color or wavelength characteristics in the light source, or LED modular arrays.
(17) The transparent cover 1040 is mounted onto the base module 1080 in close proximity to the LED light source 1010 so that it filters all, or substantially all, light emitted from the LED light source. It may be permanently applied to the base module 1080, or it may be removable so that it may be replaced with a transparent cover with a different color filter 1050 applied. This allows for the changing of the color of the LED lighting device 1000 for different custom applications, or seasonally, for example.
(18) The color filter 1050 is a translucent sheet that is applied on top of or in front of the LED to filter and transform a white (or other colored) light source to a light source specific to an application. The color filter may be a plastic film or card, or a vinyl with colored pigmentation for filtering unwanted wavelengths from the spectrum of light emitted. The color filter 1050 preferably has a high transmission rating or it may, alternatively, be translucent (diffused) with color pigmentation and have a diminished light transmission.
(19) The color filter 1050 is typically selected for a long operating life (at least 3 years under UV rays) and is applied as a final step during construction of the LED lighting device 1000 or as a secondary process after the manufacturing of the LED lighting device. In this way, the LED lighting device 1000 may be mass produced, and the color filter may be created and applied at a relatively low cost during a custom installation for a specified application of the device.
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(22) The assembly in any of the above embodiments may be provided to a user with the base unit 1080 fully assembled, and with the transparent covers 1040, 2040, 3040 either permanently applied or detachable, so long as the application of the color filter 1050, 2050, 3050 may be performed by an installer or user or at the end of the manufacturing process.
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(24) A secondary color filter 4030 may be applied to the front surface 4020 to provide the viewable surface with a desired colorsuch as a specified corporate color. Traditionally the secondary color filter 4030 for such LED lighting assemblies is selected to provide the desired color for daytime viewing. LED lighting modules placed within the housing 4010 then apply white light (or light in the natural color of the LED used) to the back side 4040 of the front surface, and the color provided at night with the LED lighting assembly 4000 illuminated appears washed out. In some embodiments, the secondary color filter 4030 is integrated into the front surface 4020, such that the front surface is impregnated with a color pigment acting as a secondary color filter 4030.
(25) When the LED lighting assembly 4000 is used in conjunction with the LED lighting device 1000 above, the light applied to the back side 4040 of the front surface 4020 is then tinted to a color associated with the desired color. In this way, the application of colored light to the back side 4040 of the front surface 4020 enhances the saturation of the color on the face of the front surface 4020 selected for the secondary filter 4030, thereby avoiding the washout of color typically experienced in these applications.
(26) The amount of washout associated with such an LED lighting assembly 4000 varies with the natural color of the LED light source 1010 used inside the large housing 4010. Further, manufacturing an LED light source 1010 to provide a specified color and color temperature may be prohibitively expensive. The base module 1080 of the LED lighting device 1000 may then be mass produced for a variety of applications, and the transparent cover may be applied with color filters 1050 empirically selected for the specified application. In other words, a transparent cover 1040 may be manufactured with the LED lighting device, and placed within the LED lighting assembly 4000. The degree of washout may then be evaluated, and a variety of color filters 1050, which may be manufactured and applied inexpensively, may then be tested to determine which color filter 1050 when applied to the specific LED lighting device 1000 within the specific LED lighting assembly 4000 provides the best nighttime color.
(27) Similarly, color LEDs are typically mass produced in only a few colors. However, a company may have a trademarked color used in corporate signage that they would like to present during both day and night. The appropriate LED coloration may not be available precisely because the color is proprietary to the specified business (therefore less demand for that color across the industry) or it may be a unique color selected to differentiate a company from others within the industry. In such a case, this same empirical process may be applied. The closest LED color available in mass production may be selected for use in the LED lighting assembly, and color filters 1050 may be empirically selected for matching daytime and nighttime colors used in the signage. This is particularly critical for light colors used in signage, such as pinks, where washout is likely without accounting for the backlighting color. In traditional LED lighting assemblies with typical LED lighting devices, colors are presented as washed out or fabricators go through substantial research and development iterations to produce colors that are satisfactory to the customer. In the manner described, a single batch of LED lighting devices 1000 may be produced and then modified during installation to provide the desired color.
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(29) The front surface 5020 has a secondary color filter 5050 incorporated into the panel that allows certain wavelengths of light to pass through unfiltered, allowing the signage to show white 5040 when appropriate LED lighting devices are used. When this specialized application is used, the secondary color filter 5050 for such LED lighting assemblies is selected to provide the desired color for daytime viewing. LED lighting modules placed within the large housing 5010 then apply white light (or light in the natural color of the LED used) to the back side 5060 of the front surface, and the color provided at night with the LED lighting assembly 5000 illuminated appears as white. However, these assemblies only appear as white when the LED lighting devices used provide a precise shade of white, and the precision required leads to a very expensive manufacturing and installation.
(30) When the LED lighting assembly 5000 is used in conjunction with the LED lighting devices 1000 above, the light applied to the back side 5060 of the front surface 5020 is then tinted to a color temperature required by the application.
(31) The base module 1080 of the LED lighting device 1000 may then be mass produced for a variety of applications, and the transparent cover may be applied with color filters 1050 empirically selected for the specified application. In other words, a transparent cover 1040 may be manufactured with the LED lighting device, and placed within the LED lighting assembly 5000. Different color filters 1050 may then be applied to the LED lighting device 1000 until the appropriate color temperature is achieved (by applying either yellow or orange-red filters, for example). This technique applied with the described LED lighting device may then allow a basic LED light source manufactured with relatively low tolerances to be used for multiple applications, even where tremendous color temperature precision is typically required, bringing down the cost of custom installations dramatically.
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(33) Additional applications for the LED lighting device 1000 as well. For example, often hotels or restaurants require lighting to match a specific ambiance. This may require a very low color temperature, on the order of 1900 Kelvin. However, LEDs are difficult and expensive to manufacture at such low color temperatures, making it difficult to replace easily dimmed incandescent lights with cheaper and more durable LED lighting. Using a yellow or orange-red color filter 1050, the color temperature of a traditional low Kelvin LED color, such as 3000 K or 2700 K can easily bring the color temperature down to a lower desired temperature.
(34) While certain embodiments have been described at some length and with some particularity, it is not intended that it should be limited to any such particulars or embodiments or any particular embodiment, but it is to be construed with references to the appended claims so as to provide the broadest possible interpretation of such claims in view of the prior art and, therefore, to effectively encompass the intended scope.