The present disclosure relates to lighting apparatus.
In recent years, a movement has gained traction to replace incandescent light bulbs with lighting fixtures that employ more efficient lighting technologies. One such technology that shows tremendous promise employs light emitting diodes (LEDs). Compared with incandescent bulbs, LED-based light fixtures are much more efficient at converting electrical energy into light and are longer lasting, and as a result, lighting fixtures that employ LED technologies are expected to replace incandescent bulbs in residential, commercial, and industrial applications.
Unlike incandescent bulbs that operate by subjecting a filament to a desired current, LED-based lighting fixtures require control electronics to drive one or more LEDs. The control electronics includes a power supply and circuitry to provide the pulse streams or other signals that are required to drive the one or more LEDs in a desired fashion. While much more efficient than incandescent bulbs, the control electronics and the LEDs of the lighting fixture will emit a certain amount of heat, which should be efficiently dissipated to avoid damaging or reducing the operating life of the control electronics or the LEDs.
Since the control electronics and the LEDs of an LED-based lighting fixture are often mounted in such a way to allow the LED-based lighting fixture to replace either an incandescent light bulb or a lighting fixture that is compatible with an incandescent bulb, the control electronics and LEDs are often mounted in a location that is not conducive for heat dissipation. As such, there is a need to efficiently and effectively dissipate heat that is generated by the control electronics, the LEDs, or a combination thereof in LED-based lighting fixtures as well as other types of lighting fixtures that are faced with similar heat dissipation needs.
The present disclosure relates to a lighting apparatus that includes a light engine that is coupled to a heat sink. The light engine provides a light source that generates light, and heat that is generated by the light source is dissipated, at least in part, via the heat sink.
In a first embodiment, the heat sink has a forward surface and a central axis that is substantially perpendicular to the forward surface. The heat sink also has a plurality of radial fins that extend radially outward from the central axis. Of these radial fins, a plurality of shorter radial fins are grouped to form different shorter fins sections and a plurality of longer radial fins are grouped to form a plurality of longer fins sections. The shorter and longer fins sections alternate with one another about the central axis of the heat sink. In effect, the shorter radial fins sections provide recessed portions about the outermost periphery of the heat sink that is defined by the longer fins sections. In select embodiments, the heat sink may have a core from which the radial fins extend, and the core may be solid or may have an internal opening.
In another embodiment, a light engine may include a retention ring that is mounted above the forward surface of the heat sink. The retention ring may be by used to hold lenses, diffusers, and the like in place over a mixing chamber, support cup, or the like. The retention ring may include a flange that is substantially parallel to the forward surface of the heat sink and a peripheral sidewall that extends from the flange toward the forward surface of the heat sink. In select embodiments, the peripheral sidewall terminates with an undulating edge. The undulating edge may effectively form alternating teeth and openings, wherein the openings provide greater airflow to the heat sink, and in particular, to those portions of the radial fins that are closer to the center of the heat sink. The added airflow increases performance of the heat sink and the lighting apparatus in general.
Those skilled in the art will appreciate the scope of the disclosure and realize additional aspects thereof after reading the following detailed description in association with the accompanying drawings.
The accompanying drawings incorporated in and forming a part of this specification illustrate several aspects of the disclosure, and together with the description serve to explain the principles of the disclosure.
The embodiments set forth below represent the necessary information to enable those skilled in the art to practice the disclosure and illustrate the best mode of practicing the disclosure. Upon reading the following description in light of the accompanying drawings, those skilled in the art will understand the concepts of the disclosure and will recognize applications of these concepts not particularly addressed herein. It should be understood that these concepts and applications fall within the scope of the disclosure and the accompanying claims.
It will be understood that relative terms such as “front,” “forward,” “rear,” “below,” “above,” “upper,” “lower,” “horizontal,” or “vertical” may be used herein to describe a relationship of one element, layer or region to another element, layer or region as illustrated in the figures. It will be understood that these terms are intended to encompass different orientations of the device in addition to the orientation depicted in the figures.
With reference to
The support cup 22 is a primary framing component for the light engine 12. The support cup 22 has a bottom rim, which forms a rear opening and mounts to the heat sink 14 with bolts, such that at least the array of LEDs of the light source 20 remains exposed though the rear opening. In the illustrated embodiment, the rear opening of the support cup 22 is sized and shaped to correspond to and receive the PCB of the light source 20. The support cup 22 also has a forward opening, which is formed by a forward flange 22F and receives the mixing chamber 24. The mixing chamber 24 may take various forms. In the illustrated embodiment, the mixing chamber 24 has a conical or parabolic body 24B with a rear opening that is sized and shaped such that the array of LEDs of the light source 20 remains exposed. The mixing chamber 24 also has a forward opening formed by a forward flange 24F. The mixing chamber 24 concentrically resides inside the support cup 22 wherein the rear surface of the forward flange 24F of the mixing chamber rests on the forward surface of the support cup's forward flange 22F.
A planar diffuser 26, which generally corresponds in shape and size to the outside periphery of the forward flange 24F of the mixing chamber 24, may be placed on the forward surface of the forward flange 24F of the mixing chamber 24, and thus cover the forward opening of the mixing chamber 24. The degree and type of diffusion provided by the diffuser 26 may vary from one embodiment to another. Further, color, translucency, or opaqueness of the diffuser 26 may vary from one embodiment to another. Diffusers 26 are typically formed from a polymer or glass, but other materials are viable. Similarly, a planar lens 28, which generally corresponds to the shape and size of the diffuser 26 as well as the outside periphery of the forward flange 24F of the mixing chamber 24, may be placed over the diffuser 26. As with the diffuser 26, the material, color, translucency, or opaqueness of the lens 28 may vary from one embodiment to another. Further, both the diffuser 26 and the lens 28 may be formed from one or more materials or one or more layers of the same or different materials. While only one diffuser 26 and one lens 28 are depicted, the lighting fixture 10 may have multiple diffusers 26 or lenses 28; no diffuser 26, no lens 28, no diffuser 26 or lens 28, or an integrated diffuser and lens (not shown) in place of the illustrated diffuser 26 and lens 28.
In the illustrated embodiment, a peripheral rim 22R is provided along the outer periphery of the support cup's forward flange 22F. The peripheral rim 22R effectively receives the mixing chamber's forward flange 24F, the diffuser 26, and the lens 28. The retention ring 30 mounts to the support cup's forward flange 22F and functions to hold the mixing chamber 24, diffuser 26, and lens 28 in place. In operation, light emitted from the array of LEDs of the light source 20 is mixed inside the mixing chamber 24 and directed out through the lens 28 in a forward direction to form a light beam. For LED-based applications, the array of LEDs of the light source 20 may include LEDs that emit different colors of light. For example, the array of LEDs may include both red LEDs that emit red light and blue-shifted green LEDs that emit bluish-green light, wherein the red and bluish-green light is mixed to form “white” light at a desired color temperature. For a uniformly colored light beam, relatively thorough mixing of the light emitted from the array of LEDs is desired. Both the mixing chamber 24 and the diffuser 26 play a role in mixing the light emanated from the array of LEDs of the light source 20.
Certain light rays, which are referred to as non-reflected light rays, emanate from the array of LEDs and exit the mixing chamber 24 through the diffuser 26 and lens 28 without being reflected off of the interior surface of the mixing chamber 24. Other light rays, which are referred to as reflected light rays, emanate from the array of LEDs of the light source 20 and are reflected off of the reflective interior surface of the mixing chamber 24 one or more times before exiting the mixing chamber 24 through the diffuser 26 and lens 28. With these reflections, the reflected light rays are effectively mixed with each other and at least some of the non-reflected light rays within the mixing chamber 24 before exiting the mixing chamber 24 through the diffuser 26 and the lens 28. The diffuser 26 functions to diffuse, and as result mix, the non-reflected and reflected light rays as they exit the mixing chamber 24, wherein the mixing chamber 24 and the diffuser 26 provide sufficient mixing of the light emanated from the array of LEDs of the light source 20 to provide a light beam of a consistent color. In addition to mixing light rays, the diffuser 26 is designed and the mixing chamber 24 shaped in a manner to control the relative concentration and shape of the resulting light beam that is projected from the diffuser 26 and the lens 28. For example, a first lighting fixture 10 may be designed to provide a concentrated beam for a spotlight, wherein another may be designed to provide a widely dispersed beam for a floodlight. Notably, the finishing trim 16 may also be designed to further contribute to light mixing, beam shaping, or both, when attached to the retention ring 30, as illustrated in
In particular, the finishing trim 16 generally provides a conical body 16B extending between a forward flange 16F and a rear edge 16E. When the finishing trim 16 is attached to the retention ring 30, the rear edge 16E of the finishing trim 16 is held against a forward surface of the retention ring 30. An exemplary mechanism for attaching the finishing trim 16 to the retention ring 30 is provide further below; however, numerous techniques are available to those skilled in the art for attaching the finishing trim 16 to the retention ring 30.
In select embodiments, the support bracket assembly 18 is employed to facilitate mounting the lighting fixture 10 in a cavity that is formed in ceiling, wall, cabinet, or the like. The illustrated support bracket assembly 18 comprises a support bracket core 34 and multiple support bracket legs 36, which extend from the support bracket core 34. As illustrated, the support bracket legs 36 are spaced 120° apart from one another and initially extend radially from the support bracket core 34 along a rear surface of the heat sink 14. Once the support bracket legs 36 reach the outside edge of the heat sink 14, the support bracket legs 36 bend approximately 90° and extend along the side of the heat sink 14, the light engine 12, and the finishing trim 16. In select embodiments and as described in further detail below, the side(s) of the heat sink 14 may be formed to have recessed portions 14R that extend from the forward surface of the heat sink 14 to the rear surface of the heat sink 14. The respective support bracket legs 36 may lie in and along the recessed portions 14R of the heat sink 14, such that the overall lateral dimensions of the support bracket assembly 18 does not need to be larger, or if it is larger, only nominally larger, than the overall lateral dimensions of the heat sink 14. For example, if the heat sink 14 is substantially cylindrical and has an overall radius of x, the effective radius of the support bracket assembly 18 is either x, less than x, or within about 10% of x.
Further, support tabs 36T may be provided at or near the ends of the support bracket legs 36. In the illustrated embodiment, the support tabs 36T are substantially V-shaped and designed to rest against the outside surface of the body 16B of the finishing trim 16. Support clips 38 may also be attached to the support bracket legs 36. The support clips 38 may be used to hold the lighting fixture 10 in a cavity in which the lighting fixture 10 is to be mounted. For mounting, the support clips 38 are sprung radially inward, the lighting fixture 10 is placed rear-side first through an opening into the cavity, and once in place, the support clips 38 are allowed to spring radially outward and press against the inside walls or ledges within the cavity. The cavity is formed and the support clips 38 are designed such that the lighting fixture may be held securely in the cavity by the support clips 38. Those skilled in the art will recognize additional or alternative techniques for mounting or maintaining the lighting fixture 10 in a cavity or other desired location. While recessed mounting hardware is illustrated, the lighting fixture 10 may be recess, track, surface, or pole mounted using any available mounting techniques.
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The heat sink 14 includes radial fins 44 that are substantially parallel to the central axis of the substantially cylindrical heat sink 14. In the illustrated embodiment, each of three shorter fin sections 46 has a group of adjacent radial fins 44, which radially extend to a first distance relative to the central axis of the heat sink 14. The three shorter fins sections 46 are separated by a longer fins section 48, such that the shorter and longer fins sections 46, 48 alternate with one another about the outer periphery of the heat sink 14. As illustrated, there are also three longer fins sections 48; however, the number of shorter and longer fins sections 46, 48 may vary from one embodiment to the next. Each of three longer fin sections 48 has a group of adjacent radial fins 44, which radially extend to a second distance relative to the central axis of the heat sink 14, wherein the second distance is greater than the first distance. Relative to the longer fins sections 48, the shorter fins sections 46 effectively form the recessed portions 14R, which are clearly visible in
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The trim ears 56 have a defined length and thickness. The slots 62 are wider than the length of the trim ears 56, and the channels 64 have a thickness approximating that of the trim ears 56. As such, the finishing trim 16 can be aligned and moved along a center axis toward the retention ring 30, such that the trim ears 56 of the finishing trim 16 slide are positioned in the slots 62 of the retention ring 30. Once the trim ears 56 of the finishing trim 16 are in the slots 62 of the retention ring 30, the trim ears 56 will slide into the channel 64 as the finishing trim 16 is rotated in the appropriate direction about the center axis. In the illustrated embodiment, the locking members 60 are configured such that the finishing trim 16 must be rotated counter-clockwise to move the trim ears 56 into the respective channels 64. The channels 64 may be sized to provide a friction fit for the trim ears 56 between the locking members 60 and the lens 28. As such, the locking members 60 may slightly deflect away from the lens 28 as the trim ears 56 enter and move along the respective channels 64, wherein the trim ears 56 are held in place by being pinned between the locking members 60 and the lens 28 (or other surface). The surface of locking members 60 that faces the lens 28 may also have a notch 66 that is complementary to the ear tab 58 of the trim ear 56. The notch 66 is positioned along the channel 64 such that the ear tabs 58 of the trim ears 56 engage the notches 66 when the finishing trim 16 is rotated into place.
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With reference to
The remote electronics 76 for one embodiment may include both an AC-DC (alternating current-direct current) module and a DC-DC (direct current-direct current) module. The DC-DC module and the light source 20 cooperate such that the DC-DC module generates the requisite drive currents to drive corresponding strands of LEDs provided by the light source 20. The DC-DC module is powered and controlled in part by the AC-DC module.
The AC-DC module is configured to receive an AC power supply signal and an input dimming signal and based on these signals, provide a DC power supply signal and an output dimming signal to the DC-DC module. The AC-DC module includes circuitry to step down and rectify the AC power supply signal to a desired DC voltage, which represents the DC power supply signal. The DC power supply signal is used to power the DC-DC module.
The input dimming signal is an analog or digital control signal that represents a desired level of dimming relative to a maximum desirable lumen output of the light source 20. The input dimming signal may be provided from an appropriate remote control module or lighting switch (not shown), as will be appreciated by those skilled in the art. The AC-DC module provides the necessary circuitry to process the input dimming signal and generate a corresponding output dimming signal based on the desired level of dimming. As will be appreciated by one skilled in the art, the output dimming signal is generally a pulse width modulated (PWM) signal wherein the duty cycle of the output dimming signal is effectively a function of the input dimming signal. Since the input dimming signal corresponds to a desired level of dimming, the duty cycle of the output dimming signal is a function of the desired level of dimming.
In an alternative embodiment, the AC power supply signal may be provided with the use of a dimmer for lighting control. The dimmer may be controlled based on the leading or trailing edge of the AC power supply signal. The portion of the AC waveform received in the AC power supply signal corresponds to the desired level of dimming. As such, the AC-DC module is configured to analyze the AC power supply signal and generate the output signal based thereon.
The DC-DC module generally includes a DC-DC converter and multiple current sources that are supplied by the DC-DC converter. The current sources generate the individual drive currents, which are used to respectively drive different strands of LEDs of the LED module. The DC-DC converter of the DC-DC module is configured to drive the current sources to control the drive currents such that the respective strands of LEDs output light at a desired color as well as a desired intensity based on the output dimming signal. In one embodiment, one or more strands may be formed from red LEDs while one or more of the other strands may be formed from blue-shifted yellow LEDs. The different strands are driven by the drive currents such that the light emitted from the strands mixes to form light at a desired color temperature as well as at a desired intensity based on the desired level of dimming.
The DC-DC module may be configured to provide one or more feedback signals to the AC-DC module. The feedback signals may provide temperature, fault, or other information bearing on the operation of the DC-DC module, and the AC-DC module may be configured to respond to the feedback signals and adjust or control the output dimming signal and the DC power supply signal in a desired manner. Similarly, the LED module may be configured to provide one or more feedback signals to the DC-DC module. The feedback signals may provide temperature, fault, or other information bearing on the operation of the LED module, and the DC-DC module may be configured to respond to the feedback signals and adjust or control the drive currents in a desired manner.
While the disclosed embodiments show the heat sink 14 with the light engine 12, the disclosed heat sink 14 may be used with various light engines other than those disclosed herein. Similarly, the disclosed light engine 12 may be used with various heat sinks other than those disclosed herein.
Those skilled in the art will recognize improvements and modifications to the embodiments of the present disclosure. For example, although the above embodiments are directed to a lighting fixture 10 wherein the light engine 12, heat sink 14, finishing trim 16, and support bracket assembly 18 are substantially cylindrical in nature, any one or all of these components may take on other forms, such as rectangular, triangular, elliptical, and the like. All such improvements and modifications are considered within the scope of the concepts disclosed herein and the claims that follow.
This application claims the benefit of U.S. provisional patent application No. 61/407,418, filed Oct. 27, 2010, the disclosure of which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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61407418 | Oct 2010 | US |