LED light assembly having three-part optical elements
09659511 ยท 2017-05-23
Assignee
Inventors
- David Siucheong Auyeung (Carrollton, TX, US)
- William Y. Hall (Dallas, TX, US)
- Simon Magarill (Mountain View, CA, US)
Cpc classification
F21V29/763
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/745
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G02B19/0028
PHYSICS
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2105/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S6/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2105/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2131/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2131/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V31/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/503
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V33/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G09F13/02
PHYSICS
G09F15/00
PHYSICS
F21V23/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V19/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2105/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
G09F13/02
PHYSICS
F21V31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/76
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/503
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S6/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G09F15/00
PHYSICS
F21V33/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An LED lighting assembly includes a circuit board, a number of light emitting diodes (LEDs) overlying the circuit board, and optical element is proximate each LED and separate from other optical elements. Each optical element includes a first portion and a second portion that intersects with the first portion in a region between the first and second portions. The first and second portions are shaped so that at least one surface normal of the first portion intersects with at least one surface normal of the second portion, and the first and second portions are configured so that light from the associated LED exits the associated optical element through the first and the second portions. Each optical element also includes a third portion extending beyond the region between the first portion and the second portion in a direction away from the associated LED.
Claims
1. An apparatus comprising a lighting assembly for illumination of an area, the lighting assembly comprising: a circuit board; a plurality of light emitting diodes (LEDs) overlying the circuit board; and a plurality of optical elements, wherein each optical element of the plurality of optical elements is proximate an associated LED of the plurality of LEDs, wherein each optical element of the plurality of optical elements is separate from other optical elements of the plurality of optical elements, and wherein each optical element of the plurality of optical elements comprises a single optical element that includes a first portion, a second portion and a third portion wherein the first portion of the optical element comprises a first curved surface; wherein the second portion of the optical element comprising a second curved surface that intersects with the first portion of the optical element in a region between the first portion of the optical element and the second portion of the optical element, wherein the first portion of the optical element and the second portion of the optical element are shaped so that at least one surface normal of the first portion of the optical element intersects with at least one surface normal of the second portion of the optical element and wherein the first and second portions of the optical element are configured so that light from the associated LED exits the associated optical element through the first and the second portions of the optical element; wherein the third portion of the optical element extends beyond the region between the first portion of the optical element and the second portion of the optical element in a direction away from the associated LED; wherein the LEDs and optical elements are arranged over the circuit board so that, during operation, light from light assembly does not create hot spots or result in dead spots on the area so long as some of the LEDs are functional.
2. The apparatus of claim 1, further comprising a heat sink comprising a plurality of fins thermally coupled to the plurality of LEDs.
3. The apparatus of claim 1, further comprising a billboard comprising the area, wherein the lighting assembly is located adjacent the billboard to illuminate the area.
4. The apparatus of claim 1, further comprising a billboard comprising the area, wherein the lighting assembly is located adjacent the billboard to illuminate the area when a subset of the LEDs is not generating any light.
5. The apparatus of claim 1, wherein the LEDs are arranged in two rows that extend along a longitudinal axis of the circuit board.
6. The apparatus of claim 5, further comprising a heat sink thermally coupled to a lower surface of the circuit board so that the circuit board is between the LEDs and the heat sink, wherein the heat sink comprises a first section substantially parallel to the lower surface of the circuit board and a plurality of fins extending away from the first section and substantially perpendicular thereto, a longitudinal axis of each fin being substantially perpendicular to the longitudinal axis of the circuit board.
7. The apparatus of claim 6, wherein the LEDs are arranged in only the two rows.
8. A lighting assembly for illumination of an area, the lighting assembly comprising: a circuit board; a plurality of light emitting diodes (LEDs) overlying the circuit board; and a plurality of optical elements, wherein each optical element of the plurality of optical elements is proximate an associated LED of the plurality of LEDs, wherein each optical element of the plurality of optical elements is separate from other optical elements of the plurality of optical elements, and wherein each optical element of the plurality of optical elements comprises a single lens that includes a first portion, a second portion and a third portion wherein the first portion of the lens comprises a first curved surface; wherein the second portion of the lens comprising a second curved surface that intersects with the first portion of the lens in a region between the first portion of the lens and the second portion of the lens, wherein the first portion of the lens and the second portion of the lens are shaped so that at least one surface normal of the first portion of the lens intersects with at least one surface normal of the second portion of the lens, and wherein the first and second portions of the lens are configured so that light from the associated LED exits the associated optical element through the first and the second portions of the lens; wherein the third portion of the lens extends beyond the region between the first portion of the lens and the second portion of the lens in a direction away from the associated LED; and wherein each optical element of the plurality of optical elements is associated with only one LED of the plurality of LEDs and is configured to direct light from that one LED toward the area such that the light from each optical element of the plurality of optical elements is directed across all of the area, wherein the light from each optical element of the plurality of optical elements is directed across all of the area so that the area is illuminated without hot spots or dead spots.
9. An apparatus comprising a lighting assembly for illumination of an area, the lighting assembly comprising: a circuit board; a plurality of light emitting diodes (LEDs) overlying the circuit board; and a plurality of optical elements, wherein each optical element of the plurality of optical elements is proximate a respective LED of the plurality of LEDs, wherein each optical element of the plurality of optical elements is separate from other optical elements of the plurality of optical elements, wherein each optical element of the plurality of optical elements comprises a lens that includes: a first outer boundary, a second outer boundary opposite the first outer boundary, a third outer boundary connecting the first outer boundary and the second outer boundary, a fourth outer boundary opposite the third outer boundary, and a central region halfway between the first outer boundary and the second outer boundary; a first lens portion with an outer surface extending from the first outer boundary toward the central region and having a first peak located between the central region and the first outer boundary, the first peak being spaced from the central region, and the first peak being vertically spaced from the circuit board on which the respective LED is arranged by a first distance; a second lens portion with an outer surface extending from the second outer boundary toward the central region and having a second peak located between the central region and the second outer boundary, the second peak being spaced from the central region, and the second peak being vertically spaced from the circuit board on which the respective LED is arranged by the first distance, wherein the first lens portion intersects with the second lens portion at a region between the first lens portion and the second lens portion, and wherein the first lens portion and the second lens portion are shaped so that at least one surface normal of the first lens portion intersects with at least one surface normal of the second lens portion; and a third lens portion disposed between the first outer boundary and the second outer boundary and having a third peak located between the third outer boundary and a region halfway between the third outer boundary and the fourth outer boundary, the third peak spaced from the region halfway between the third outer boundary and the fourth outer boundary, the third peak being vertically spaced from the circuit board on which the respective LED is arranged by a second distance that is greater than the first distance.
10. The apparatus of claim 9, further comprising a billboard comprising the area, wherein the lighting assembly is located adjacent the billboard to illuminate the area.
11. The apparatus of claim 9, further comprising a billboard comprising the area, wherein the lighting assembly is located adjacent the billboard to illuminate the area without hot spots or dead spots when a subset of the LEDs is not generating any light.
12. The apparatus of claim 9, wherein each optical element of the plurality of optical elements is associated with only one LED of the plurality of LEDs and is configured to direct light from that one LED toward the area such that the light from each optical element of the plurality of optical elements is directed across the area, wherein light from each optical element of the plurality of optical elements is directed so that the area is illuminated without hot spots or dead spots.
13. The apparatus of claim 9, wherein the LEDs are arranged in two rows that extend along a longitudinal axis of the circuit board.
14. The apparatus of claim 13, further comprising a heat sink thermally coupled to a lower surface of the circuit board so that the circuit board is between the LEDs and the heat sink, wherein the heat sink comprises a first section substantially parallel to the lower surface of the circuit board and a plurality of fins extending away from the first section and substantially perpendicular thereto, a longitudinal axis of each fin being substantially perpendicular to the longitudinal axis of the circuit board.
15. A lighting assembly comprising: a carrier; a first substrate attached to the carrier; a first plurality of light emitting diodes (LEDs) arranged at a surface of the first substrate; a first plurality of optical elements, wherein each optical element of the first plurality of optical elements is proximate an associated LED of the first plurality of LEDs such that each optical element overlies a single LED and each LED underlies a single optical element; a second substrate attached to the carrier; a second plurality of light emitting diodes (LEDs) arranged at a surface of the second substrate; a second plurality of optical elements, wherein each optical element of the second plurality of optical elements is proximate an associated LED of the second plurality of LEDs such that each optical element overlies a single LED and each LED underlies a single optical element; wherein each optical element of the first plurality and the second plurality of optical elements comprises a lens with a first part, a second part, and a third part, wherein the first part comprises a first curved surface, wherein the second part comprises a second curved surface that intersects with the first curved surface at a region between the first part and the second part, wherein the first part and the second part each have a peak relative to the respective first or second substrate, the peak being spaced from the region between the first part and the second part, and wherein the third part extends beyond the region between the first part and the second part in a direction away from the associated LED; wherein each optical element of the first plurality of optical elements is configured to direct light from the associated LED so that the lighting assembly can illuminate a substantially rectangular region; and wherein each optical element of the second plurality of optical elements is configured to direct light from the associated LED so that the lighting assembly can illuminate the substantially rectangular region.
16. The lighting assembly of claim 15, wherein the LEDs of the first plurality of LEDs are arranged in rows that extend along a longitudinal axis in a plane of the surface of the first substrate, the lighting assembly further comprising a heat sink thermally coupled to a second surface of the first substrate, the second surface opposite the surface, the heat sink comprising a first section substantially parallel to the surface of the first substrate so that each and every LED of the first plurality of LEDs is separated from the heat sink by the first substrate, the heat sink further comprising a plurality of fins extending away from the first section and substantially perpendicular thereto, each fin extending along an axis in the plane of the surface of the first substrate, the axis for each fin being substantially perpendicular to the longitudinal axis of the surface of the first substrate, wherein the fins are substantially flat.
17. The lighting assembly of claim 15, wherein the optical elements of the first plurality and the second plurality of optical elements are configured so that failure of one or more of the LEDs will cause an illumination level of light impinging the substantially rectangular region to decrease while a uniformity of light impinging the substantially rectangular region remains substantially the same.
18. The lighting assembly of claim 15, wherein the lighting assembly is configured to illuminate the substantially rectangular region such that light from each optical element of the first plurality of optical elements is directed across all of the substantially rectangular region.
19. The lighting assembly of claim 15, wherein the lighting assembly is configured so that light emitted from the lighting assembly does not create hot spots or result in dead spots on the substantially rectangular region.
20. The lighting assembly of claim 19, wherein the lighting assembly is configured so that light emitted from the lighting assembly does not create hot spots or result in dead spots on the substantially rectangular region even upon failure of one or more of the LEDs of the first plurality of LEDs.
21. The lighting assembly of claim 20, wherein the lighting assembly is configured so that light emitted from the lighting assembly does not create hot spots or result dead spots on the substantially rectangular region even upon failure of one or more of the LEDs of the first plurality of LEDs and failure of one or more of the LEDs of the second plurality of LEDs.
22. A lighting assembly comprising: a substrate; a plurality of light emitting diodes (LEDs) arranged at a surface of the substrate; and a plurality of optical elements, wherein each optical element of the plurality of optical elements is proximate an associated LED of the plurality of LEDs such that each optical element overlies a single LED and each LED underlies a single optical element, each optical element comprising a lens with a first part, a second part, and a third part, wherein the first part comprises a first curved surface, wherein the second part comprises a second curved surface that intersects with the first curved surface at a region between the first part and the second part, wherein the first part and the second part each have a peak relative to the substrate, the peak being spaced from the region between the first part and the second part, and wherein the third part extends beyond the region between the first part and the second part in a direction away from the associated LED, wherein the optical elements are configured so that failure of one or more of the LEDs will cause an illumination level of light emitted from the lighting assembly to decrease while a uniformity of the light emitted from the lighting assembly remains substantially the same.
23. The lighting assembly of claim 22, wherein the LEDs are arranged in rows that extend along a longitudinal axis in a plane of the surface of the substrate, the lighting assembly further comprising a heat sink thermally coupled to a second surface of the substrate, the second surface opposite the surface, the heat sink comprising a first section substantially parallel to the surface of the substrate so that each and every LED is separated from the heat sink by the substrate, the heat sink further comprising a plurality of fins extending away from the first section and substantially perpendicular thereto, each fin extending along an axis in the plane of the surface of the substrate, the axis for each fin being substantially perpendicular to the longitudinal axis of the surface of the substrate, wherein the fins are substantially flat.
24. The lighting assembly of claim 22, further comprising a second substrate adjacent the substrate, a second plurality of LEDs arranged at a surface of the second substrate, and a second plurality of optical elements, wherein each optical element of the second plurality of optical elements is proximate an associated LED of the second plurality of LEDs, wherein each optical element of the second plurality of optical elements has substantially the same structure as each optical element of the plurality of optical elements.
25. The lighting assembly of claim 22, wherein each optical element of the plurality of optical elements is separate from other optical elements of the plurality of optical elements.
26. The lighting assembly of claim 22, wherein the optical elements of the plurality of optical elements are integrated in a single optical panel that overlies the substrate.
27. The lighting assembly of claim 22, wherein the substrate comprises a single substrate.
28. The lighting assembly of claim 22, wherein the LEDs are arranged over the substrate so that, during operation, the light emitted from the lighting assembly does not create hot spots or result in dead spots on an area being illuminated.
29. The lighting assembly of claim 22, wherein the LEDs and optical elements are configured so that, during operation, the light emitted from the lighting assembly does not create hot spots or result in dead spots on an area being illuminated when one or more of the LEDs is not functioning.
30. The lighting assembly of claim 22, wherein the lighting assembly is configured to illuminate an area such that light from each optical element of the plurality of optical elements is directed across all of the area.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a more complete understanding, reference is now made to the following description taken in conjunction with the accompanying Drawings in which:
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(13)
DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
(14) Billboards, such as those commonly used for advertising in cities and along roads, often have a picture and/or text that must be externally illuminated to be visible in low-light conditions. As technology has advanced and introduced new lighting devices such as the light emitting diode (LED), such advances have been applied to billboards. However, current lighting designs have limitations and improvements are needed. Although billboards are used herein for purposes of example, it is understood that the present disclosure may be applied to lighting for any type of sign that is externally illuminated.
(15) Referring to
(16) One or more lighting assemblies 110 may be coupled to the walkway 108 (e.g., to a safety rail or to the walkway itself) and/or to another structural member of the billboard 100 to illuminate some or all of the surface 102 in low light conditions. The lighting assembly 110 may be mounted at or near a top edge 112 of the billboard 100, a bottom edge 114 of the billboard 100, a right edge 116 of the billboard 100, and/or a bottom edge 118 of the billboard 100. The lighting assembly 110 may be centered (e.g., located in approximately the center of the billboard 100) or off center as illustrated in
(17) With additional reference to
(18) One problem with current lighting technology is that it can be difficult to direct light only onto the surface 102 and even more difficult to do so evenly. This may be due partly to the placement of the lighting assembly 110, as shown in
(19) In addition to the difficulties of evenly illuminating the surface 102, the use of LEDs in an exterior lighting environment involves issues such as heat dissipation and protecting the LEDs against environmental conditions such as moisture. The presence of moving mechanical features such as fans that may be used to provide increased airflow for cooling may create additional reliability problems. Due to the difficulty and expense of replacing and/or repairing the lighting assembly 110 in combination with the desire to provide consistent lighting while minimizing downtime, such issues should be addressed in a manner that enhances reliability and uptime.
(20) Referring to
(21) It is understood that any of the back panel 202, light panel 204, and optics panel 206 may actually be two or more physical substrates rather than a single panel as illustrated in
(22) Referring to
(23) The front surface 302 provides a mounting surface for the light panel 204. In some embodiments, the front surface 302 of the panel 202 may include one or more protrusions 314a and 314b that are substantially parallel to the top edge 306. The protrusions 314a and 314b may be configured to protect the light panel 204 from moisture. Although only two protrusions 314a and 314b are illustrated, it is understood that a single protrusion may be provided or three or more protrusions may be provided. Furthermore, such protrusions may vary in length, shape (e.g., may have angled or curved surfaces), orientation, and/or location on the front surface 302.
(24) Referring specifically to
(25) Referring specifically to
(26) Referring to
(27) The PCB 402 may include one or more strings of LEDs 416, with multiple LEDs 416 in a string. For example, a string may include eight LEDs 416 and each PCB 402 may include two strings for a total of sixteen LEDs 416. In this configuration, a light panel 204 having eight PCBs 402 would include ninety-six LEDs 416. It is understood that although the PCBs 402 are shown as being substantially identical, they may be different in terms of size, shape, and other factors for a single light panel 204.
(28) In the present example, the LEDs 416 are surface mounted, but it is understood that the LEDs 416 may be coupled to the panel 204 using through hole or another coupling process. The surface mounted configuration may ensure that a maximum surface area of each LED 416 is in contact with the PCB 402, which is in turn in contact with the back panel 202 responsible for heat dissipation. Each string of LEDs may receive a constant current with the current divided evenly among the LEDs 416.
(29) Referring to
(30) The lens panel 500 may include a beveled or angled top side 506 and/or bottom side 508 as illustrated in
(31) The lens panel 500 may include multiple optical elements 514. A single optical element 514 may be provided for each LED 416, a single optical element 514 may be provided for multiple LEDs 416, and/or multiple optical elements 514 may be provided for a single LED 416. In some embodiments, the optical elements 514 may be provided by a single multi-layer optical element system provided by the lens panel 500.
(32) In the present example, the optical elements 514 are configured so that the light emitted from each LED 416 is projected onto the entire surface 102 of the billboard 100. In other words, if all other LEDs 416 were switched off except for a single LED 416, the entire surface 102 would be illuminated at the level of illumination provided by the single LED 416. In one embodiment, the rectangular target area of the surface 102 would be evenly illuminated by the LED 416, while areas beyond the edges 112, 114, 116, and 118 would receive no illumination at all or at least a minimal amount of illumination from the LED 416. What is meant by evenly is that the illumination with a uniformity that achieves a 3:1 ratio of the average illumination to the minimum. Thus, by designing the lens in such a manner, when all LEDs are operating, the light form the collective thereof will illuminate the surface at the 3:1 ratio. When one or more LEDs fail, the overall illumination decreases, but the uniformity maintains the same uniformity. Also, as described hereinabove, the surface refers to the surface that is associated with a particular LED panel. It may be that an overall illuminated surface is segmented and multiple panels are provided, each associated with a particular segment.
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(35) In some embodiments, as shown in
(36) Furthermore, in some embodiments as described above, each LED 416 of a single lighting assembly 110 may be configured via the optical elements 514 to illuminate the entire surface 102. In such embodiments, if one or more LEDs 416 or strings of LEDs fails, the remaining LEDs 416 will still illuminate the entire surface 102, although at a lesser intensity than when the failed LEDs 416 are functioning. This provides evenly distributed illumination when all LEDs 416 are functioning correctly, and continues to provide evenly distributed illumination when one or more LEDs are malfunctioning. Accordingly, the billboard 100 may be illuminated even when multiple LEDs 416 have malfunctioned and are providing no illumination at all due to the redundancy provided by configuration of the lighting assemblies 110.
(37) It is understood that some embodiments may direct substantially all illumination from a lighting assembly 110 evenly across the surface 102 while some illumination is not evenly distributed. For example, substantially all LEDs 416 may be directed to each evenly illuminate the surface 102 with the exception of a relatively small number of LEDs 416. In such cases, the illumination provided by the remaining LED or LEDs 416 may be directed to one or more portions of the surface 102. If done properly, this may be accomplished while minimizing any noticeable unevenness in the overall illumination, even if one of the remaining LEDs 416 malfunctions. For example, the lighting assembly 110 may be configured to direct the illumination provided by one LED 416 to only the left half of the surface 102, while directing the illumination from another LED 416 to only the right half of the surface 102. The loss of one of these two LEDs may not noticeably impact the illumination of the surface 102. It is understood that such variations are within the scope of this disclosure.
(38) In embodiments where the illumination is evenly distributed across the surface 102, it is understood that the optics panel 206 may be configured specifically for the light panel 204 and the surface 102. For example, assuming the surface 102 is forty-eight feet wide and sixteen feet high, the lens panel 500 of
(39) Referring to
(40) Although various attachment mechanisms (e.g., threaded screws, bolts, and/or other fasteners) may be used to coupled the lens panels and LED assemblies to the back panel 602, the present embodiment uses multiple threaded fasteners 605 (e.g., screws) that extend through the lens panels and the LED assemblies and engage threaded holes in the back panel 602.
(41) The lighting assembly 600 is also illustrated with a mounting plate 606 that couples to the back panel 602 and to an adjustable mounting bracket 608. The adjustable mounting bracket 608 may be used to couple the lighting assembly 600 to a portion of the billboard 100 (
(42) The location of the power supply may also be beneficial as snow not melted by the heat produced by the LED may be melted by heat produced by the power supply. This may aid in reducing snow buildup on the LEDs.
(43) With additional reference to
(44) A back surface 706 includes multiple fins 708 that form a heat sink to aid in the dissipation of heat from the back panel 602. In the present example, the fins 708 are substantially rectangular in shape. In the present example, the back panel 602 is extruded and the fins 708 run parallel to the top edge with a longitudinal axis of each fin 708 being substantially parallel to a longitudinal axis of the back panel 602. Forming the fins 708 in a vertical manner is possible, but may increase the cost of the back panel 602 due to the extrusion process. As shown, the fins 708 may be substantially perpendicular to the back surface 706, and/or may be angled. In the present example, the fins 708 are angled such that near the top of the back panel 702, the fins 708 are angled towards the top.
(45) Because the fins 708 are parallel to the top edge, heat may be trapped due to its inability to rise vertically. Accordingly, holes 710 may be present in some or all of the fins 708 (marked but not actually visible in the side view of
(46) The back surface 706 may also include a groove 712 that is configured to receive a tongue of the mounting plate 606 in a tongue-in-groove manner.
(47) With additional reference to
(48) Referring specifically to
(49) Referring also to
(50) As shown in
(51) Referring to
(52) Although the preferred embodiment has been described in detail, it should be understood that various changes, substitutions and alterations can be made therein without departing from the spirit and scope of the invention as defined by the appended claims.