LED luminaire light fixture for a lamppost
09765956 · 2017-09-19
Assignee
Inventors
- Daniel Kovalchick (Sinking Spring, PA, US)
- Bryan Rash (Pottstown, PA, US)
- Michael Greck (Spring City, PA, US)
- Alan Brink (Radnor, PA, US)
Cpc classification
F21S8/088
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2105/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/76
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A mount for a light assembly in a luminaire has a base section and mounting arms upstanding from the base section. Each mounting arm has an upward length and a width and has a lower portion and an upper portion. Mounting pads for light sources are unitary with or attached to the mounting arm upper portions and have an upward length and a width. The width of the mounting pads extends in a direction oblique to the width of the mounting arm lower portions. Preferably, the length of the mounting pads extends in a direction oblique to the length of the mounting arm lower portions. Light sources mounted on the mounting pads may emit beams of light directed obliquely away from each other and obliquely towards the base.
Claims
1. A mount for a light assembly in a luminaire, comprising: a base section; a pair of mounting arms extending from the base section; the mounting arms having proximal portions that have length directions towards and away from the base and width direction transverse to the length directions; the mounting arms having distal portions; and respective mounting pads for light sources unitary with or attached to the mounting arm distal portions, wherein the mounting pads have length directions towards and away from the base and width directions transverse to the length directions; wherein the width directions of the mounting pads are oblique to one another, so that mounting surfaces of the mounting pads face obliquely away from each other; and wherein middle portions of the mounting arms between the proximal portions and the mounting pads are oblique relative to one another in the same directions as the width directions of the mounting pads and meet at one side edge of the middle portions.
2. The mount of claim 1, wherein the length directions of the mounting pads are oblique to the length directions of the mounting arm proximal portions, so that the mounting pads face obliquely towards the base section.
3. The mount of claim 1, wherein the mounting pads are arranged generally symmetrically relative to the width directions of the mounting arm proximal portions, and generally symmetrically relative to one another.
4. The mount according to claim 1, wherein the first and second mounting arms are substantially mirror-symmetrical about a plane extending from the base section between the first and second mounting arms.
5. The mount according to claim 1, wherein the mounting arm proximal portions are generally straight in their width directions that and are generally parallel and spaced apart.
6. The mount according to claim 1, wherein the first and second mounting arms are formed as a monolithic cast component.
7. The mount according to claim 1, wherein the first and second mounting arms and the base section are formed as a monolithic cast component.
8. The mount according to claim 1, wherein at least one exterior surface of the base section facing towards the mounting pads is curved to reflect light from a source of light on one of the mounting pads in a desired direction.
9. The mount according to claim 1, further comprising sources of light on the mounting pads, operative to direct light away from the mounting surfaces of the mounting pads.
10. The mount according to claim 1, in combination with a lamp housing, wherein the mount is inside the housing.
11. The mount in combination with lamp housing according to claim 10, wherein the housing is adapted for mounting on top of a lamppost, with the base of the mount attached to the lamppost and the mounting arms extending upwards from the base.
12. A luminaire comprising: a housing that is at least partially transparent and is open at a bottom end; a mount, comprising: a base section positioned within the open bottom end of the housing, and adapted to be attached to a lamppost; a pair of mounting arms extending upwards from the base section within the housing; the mounting arms having lower portions that have length directions towards and away from the base, thickness directions transverse to the length directions, generally parallel width directions transverse to the length and thickness directions, and wherein the lower portions are substantially greater in the width directions than in the thickness directions; the mounting arms having upper portions that have length directions towards and away from the base and width directions transverse to the length directions; wherein the width directions of the mounting arm upper portions are oblique to one another and the length directions of the mounting arm upper portions are oblique to the mounting arm lower portions; and light sources mounted on the mounting arm upper portions, facing outward toward a part of the housing that is transparent, obliquely away from each other and obliquely downwards towards the bottom end; wherein middle portions of the mounting arms between the lower portions and the upper portions are oblique relative to one another in opposite directions relative to the width directions of the mounting arm lower portions and meet at one side edge of the middle portions.
13. The luminaire according to claim 12, wherein the first and second mounting arms are substantially mirror-symmetrical about a plane extending from the base section between the first and second mounting arms.
14. The luminaire according to claim 12, wherein the mounting arm lower portions are spaced apart to permit convection flow of air between them.
15. The luminaire according to claim 12, wherein the first and second mounting arms are formed as a monolithic cast component.
16. The luminaire according to claim 15, wherein the monolithic cast component further includes the base member.
17. The luminaire according to claim 12, wherein an exterior surface of the base member facing towards the mounting light sources is curved to reflect light from the light sources in a desired direction.
18. A luminaire comprising: a housing that is at least partially transparent and is open at a bottom end; a unitary cast mount positioned within the housing, the mount comprising: a base section adapted to be attached to a lamppost; and a pair of mounting arms that are formed integral with the base section and extend upward from the base section, at least a lower portion of mounting arms are parallel to one another, the mounting arms each having an upper portion that includes a mounting pad with a planar surface, the planar surfaces of the mounting pads being on planes that are oblique to one another and angled downward, and wherein the upper portions of the mounting arms connect to one another along one edge immediately below the mounting pads; and light sources mounted on the mounting pads so as to face downward and outward toward a part of the housing that is transparent, each light source comprising an array of light emitting diodes, the mounting and orientation of the light sources configured to produce an asymmetrical illumination pattern when the light sources are activated.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other aspects, features, and advantages of the present invention may be more apparent from the following more particular description of embodiments thereof, presented in conjunction with the following drawings. In the drawings:
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DETAILED DESCRIPTION OF THE DRAWINGS
(11) A better understanding of various features and advantages of the present methods and devices may be obtained by reference to the following detailed description of illustrative embodiments of the invention and accompanying drawings. Although these drawings depict embodiments of the contemplated methods and devices, they should not be construed as foreclosing alternative or equivalent embodiments apparent to those of ordinary skill in the subject art.
(12) Referring to the accompanying drawings, and initially to
(13) A central LED mount 16 is located within the globe 12. In the illustrated embodiment, the LED mount is configured to sit upon or mount to the upper surface of the base 14 within the diameter of the open bottom of the globe 12. The LED mount 16 includes at least one, and more preferably two, mounting pads 18 which are configured to provide a mounting surface and support for and to transmit heat from LED light assemblies 20. As shown, the mounting pads 18 are preferably flat surfaces, although other shapes are possible. The mounting pads 18 are each configured to orient an LED light assembly 20 in a prescribed direction with respect to a central axis 22. In the illustrated embodiment, the central axis is perpendicular to a bottom of the LED mount 16, so that when the base 14 is horizontal, the central axis 22 is vertical.
(14) The orientation of the LED light assemblies 20 is selected such that, when powered, the LED light assemblies emit light in a desired direction. In the illustrated embodiment, the pads are configured such that each LED light assembly lies along a plane that is at an angle α with respect to the central axis 22 of the mount 16. In an embodiment, angle α is between about 20 and about 40 degrees. In one preferred embodiment, the angle α is about 25 degrees. In the illustrated embodiment, there are two light assemblies 20 with each oriented at the same angle α but on different sides of the central axis.
(15) The LED light assemblies 20 are also preferably oriented so as to direct light at an angle away from one another. This is best described with reference to
(16) The angles of the pads 18 are designed so as to direct most of the emitted light from the LED light assemblies 20 into a downward and forward direction. This is particularly beneficial in a luminaire that contains a globe 12 with a transparent or translucent upper portion. By directing the light away from the upper portion, more light is concentrated on the area to be illuminated and less light is lost to the ambient surroundings above the lamp.
(17) As is well understood, LED light assemblies generate a substantial amount of heat during use. It is therefore often desirable to dissipate the heat that is generated. The present embodiment achieves this by using the mount 16 as a heat sink. More particularly, the pads 18 are configured to be in direct contact with the LED light assemblies 20 so as to facilitate conduction of heat to the pads. Each pad 18 is attached to, or more preferably, formed integral with, a transition section 26 of the mount 16. As shown in
(18) The transition sections 26 are attached to, or more preferably, formed integral with a common base section 28 of the mount 16. The base section 28 is preferably hollow so as to permit convection of the heat into the air flowing through the central opening in the pole, as well as permit passage of the wiring necessary for powering and/or controlling the LED light assemblies. It is also contemplated that the electrical and electronic circuitry to convert the power delivered by the electrical wiring may be located within the base section 28, or may instead be located within the pole or some other suitable location. The current through each LED may be predetermined, or the brightness may be variable by regulating the current, the number of LEDs powered, or duty cycle modulation. The circuitry may include a time clock, ambient light sensor, or other controls for when and/or how brightly the LED light assemblies are to be illuminated. The circuitry is preferably conventional, and in the interests of conciseness, is not described herein. In the illustrated embodiment shown in cross-section in
(19) In one embodiment, the entire mount 16 is made from a single-piece casting of aluminum alloy 356F. The use of a single-piece casting permits uninterrupted conduction of heat from the pads 18. This helps to maximize the efficiency of the mount at dispersing heat from the LEDs. Of course, it is also contemplated that the pads 18, transition sections 26 and/or base section 28 could be formed from separate components that are attached to one another, such as through welding, brazing, adhesive or fasteners, although any form of joint will usually reduce the efficiency of the heat sink.
(20) Each LED light assembly 20 preferably includes a printed circuit board 30 with a plurality of LEDs light sources 32 affixed thereto or formed thereon with suitable refractors. The wiring for powering the LEDs preferably passes through a hole in the base section and between the transition sections 26 up to the pads 18. The wires will preferably pass through a strain-relief that will allow the optical chamber to meet an IP66 rating.
(21) In order to further facilitate the dispersion of heat from the LED light assembles 22, the present embodiment contemplates that fin-type surfaces may be formed on or into the pads 18, transition sections 26, and/or the base section 28. More specifically, as shown in
(22) The transition section 26 also preferably includes triangular fins 36 on the front and rear. These are shown in
(23) In one embodiment, the luminaire 10 shown in the drawings may be about 42″ (1067 mm) high by 16½″ (420 mm) in diameter, including the globe 12. The overall dimensions of the LED mount are 17¼″ (440 mm) tall with an 8⅞″ (225 mm) bottom diameter. The body of the LED mount must fit within an 8½″ (215 mm) diameter opening in the globe 12. The LED boards are preferably mounted on a 5½″ (135 mm) wide by 4″ (100 mm) tall pad 18 with a wall thickness of ½″ (12.5 mm) minimum and up to ⅞″ (22 mm) at the peak of a rib. These dimensions preferably continue down through the contour of the part. The round base preferably has about a 3/16″ (4.5 mm) wall thickness and is sized so that it can house the LED driver.
(24) In another embodiment, the overall dimensions of the LED mount are 13 5/16″ (19 mm) tall with an 7⅜″ (187 mm) bottom diameter. The remaining dimensions may be generally in proportion, dimensioned to fit within a 7″ (178 mm) opening in the globe. The round base preferably still has about a 3/16″ (4.5 mm) wall thickness.
(25) One form of suitable LED chips for a street lamp would be CREE XTE or CREE XPL LEDs, with a color temperature of 2200 to 4500 K. The number of LEDs will depend on the power of each LED and on the desired light output. Where the LED light assemblies 20 are flat, and all the LEDs in each light assembly 20 are the same and their lenses are the same, decreasing the number of LEDs, either by switching or by omitting LEDs in manufacture, reduces the overall light output, with minimal effect on the beam shape. For economy of manufacture of a range of products, it is possible to use a single size of circuit board 30 and a common array of LEDs 32. In one embodiment, the CREE LEDs, at 350 mA, provide a total wattage consumed of approximately 120 watts. In the current configuration, 155 watts is the maximum wattage available, and the wattage may be selected to be from about 40 watts to about 155 watts depending on the number of LED's placed. At 120 watts, the unit maintains a solder point temperature of 68 degrees, which means that the heat-sink will effectively manage the watts produced. At 68 degrees, the luminaire will be producing about 90% of its initial lumen output at 41,000 hours.
(26) While the foregoing written description of the invention enables one of ordinary skill to make and use what is considered presently to be the best mode thereof, those of ordinary skill will understand and appreciate the existence of variations, combinations, and equivalents of the specific embodiment, method, and examples herein.
(27) For example, in the interests of simplicity, terms of orientation such as “vertical,” “horizontal,” and “front” have been used in describing the embodiment, based on the assumption that the central axis 22 shown in
(28) The described embodiment is mirror-symmetrical about the plane containing axes 22 and 24, but the luminaire may instead be asymmetrical, depending on a desired light distribution.
(29) Although an embodiment with two LED light assemblies 20 on the two mounting pads 18 has been described, additional LED light assemblies may be provided. For example, a third LED light assembly may be provided at the rear, if more light is desired directly behind the luminaire than is provided by the overlap of the pools of light from the two LED light assemblies 20.
(30) As shown in the drawings, the lower part of the base section 28 has a flared form to conform to a particular globe 12 and base 14, but other shapes, for example, a step with an O-ring to seal against the globe, may be used.
(31) Although the light assemblies 20 have been described as arrays of light emitting diodes, other light sources may be used, including light sources to be developed in the future.
(32) The LEDs or other light sources may be provided with lenses, mirrors, or other provision to shape the beams of light from the light sources. Such lenses, mirrors, or other provision may be conventional, and in the interests of conciseness is not further described herein.
(33) The invention should therefore not be limited by the above described embodiment, method, and examples, but by all embodiments and methods within the scope and spirit of the invention.