This invention relates to light emitting diode lighting. More particularly, the present invention relates to a light emitting diode lightbulb with adjustable color temperature tuning.
A light-emitting diode (LED) is a two-lead semiconductor light source. It is a pn-junction diode, which emits light when activated. When a suitable voltage is applied to the leads, electrons are able to recombine with electron holes within the device, releasing energy in the form of photons. This effect is called electroluminescence, and the color of the light (corresponding to the energy of the photon) is determined by the energy band gap of the semiconductor.
Recent developments in LEDs permit them to be used in environmental and task lighting. LEDs have many advantages over incandescent light sources including lower energy consumption, longer lifetime, improved physical robustness, smaller size, and faster switching. Light-emitting diodes are now used in applications as diverse as aviation lighting, automotive headlamps, advertising, general lighting, traffic signals, and camera flashes. However, LEDs powerful enough for room lighting are still relatively expensive, and require more precise current and heat management than compact fluorescent lamp sources of comparable output.
There are a number of LED lighting system that allow for adjustable color temperature tuning. This is typically accomplished by each of LED light fixtures within the LED lighting system having different sets of LEDs that emit different output spectra that include a component of white light. In operation light emitted from two different sets of LED combine to produce a combined output light intensity and combined output light color temperature. By adjusting the relative intensities of light output from the different sets of LEDs within the light fixtures, the light fixtures are capable of being adjusted to produce selected or target combined output light intensities and, therefor, selected or target combined output light color temperatures. Preferably, each of the LED light fixtures include a set of LEDs that emit a component of yellow light as well as a component of white light (warm white light) and a different set of LEDs that emit a component of blue light as well as well as a component of white light (cool white light).
Where the LED color temperature of each of the light fixtures within the system are color tuned at the light engine, such as at a LED lightbulb, there is typically a slide switch that is positioned on a side portion of a lighting housing of the LED lightbulbs. In operation the slide switch is manually adjusted to change the color temperature of the light emitted from the LED lightbulb. Where such color tunable LED lightbulbs are used in track-light fixtures and/or canister-type light fixtures, the LED lightbulbs need to be removed from the fixture to change the color temperature of light emitted, because the color temperature slide switch is not accessible with the LED lightbulb installed into the fixture. After the color temperature of light emitted by a LED lightbulb is changed, the LED lightbulb then needs to be reinstalled into the fixture.
To address the aforementioned shortcoming, the present invention is directed to a LED lightbulb that includes an adjustable color temperature mechanism that is accessible while the LED lightbulb is installed within a track-light fixture and/or a canister-type light fixture. The LED lightbulb includes a metal core printed circuit board (MCPCB) with at least two different types of LED arrays or LED tracks embedded therein. The at least two different types of LED arrays or LED tracks include for example LEDs that emit light color corresponding to approximately 2700 Kelvin and LEDs that emit light color corresponding to approximately 5000 Kelvin. The MCPCB also includes multiple color corrected temperature (CCT) buttons that form a CCT switch. Preferably, the MCPCB has 3 to 5 CCT buttons thereon. Each of the CCT buttons are in electrical communication with an internal LED driver unit and the LED arrays or LED tracks on the MCPCB through the appropriate circuitry and contacts, such that actuation of one of CCT buttons controls the combined intensity outputs of the at least two different LED arrays or LED tracks on the MCPCB to emit a selected total corrected light color temperature light.
The adjustable corrected color temperature mechanism includes, for example, a light diffusion unit formed from a reflector and a lens. The light diffusion unit includes an actuator structure that engages the different CCT buttons on the MCPCB depending on a rotational position of the light diffusion unit. By rotating the light diffusion unit different CCT buttons are actuated and a circuit pathway corresponding to a selected corrected color temperature is closed. With the appropriate circuit pathway closed relative output light intensities of the different LED arrays or LED tracks are adjusted to output the selected corrected color temperature light.
The CCT buttons described above can be buttons that are depressed moved or otherwise engaged by the light diffusing unit to change the corrected color temperature of the light emitted from the LED lightbulb. In a preferred embodiment of the invention the CCT buttons are raised structures with conductive tracks that are separated by a contact gap. The light diffusing unit includes a conducive pad or conductive ball on an inside surface. The conductive pad or conductive ball is made from a conductive material, such as copper. When the light diffusing unit is rotated to a selected position, one of the selected CCT circuits are closed through conductive tracks on the raised structures and the conductive pad or conductive ball that bridges the contact gap between the conductive tracks and, thereby, allowing the LED lightbulb to operate at the corresponding selected corrected color temperature output.
The LED lightbulb of the present invention allows the corrected color temperature output of the LED lightbulb to be adjusted or selected by rotating the light diffusing unit while the LED lightbulb remains installed (plugged into or screwed within a housing structure) of a track-light fixture or a canister-type light fixture.
The present invention is directed to a LED lightbulb. The LED light bulb includes a switch mechanism 100 to change or adjust LED arrays or LED tracks 121/121′ and 123 and 123′ to operate at a selected corrected color temperature outputs. The LED arrays or LED tracks 121/121′ and 123 and 123′ are on a metal core printed circuit board 122 and are in electrical communication with an LED driver 101 through electrical contacts 122 and 122′. The switch mechanism 100 includes a toggle 109 that moves, as indicated by the arrow 111, to different contact locations 103, 103′, and 103″ and cause the LED driver 101 to power the LED arrays or LED tracks 121/121′ and 123 and 123′ at different relative intensity levels to generate the different corrected color temperature outputs.
Referring now to
By rotating the diffusing unit 270 to a position where the conductive contact pad or conductive contact ball 261 engages one of the remaining color corrected temperature (CCT) buttons 291, 293 and 295, such as described above, a correspond circuit is closed and, thereby, changing the selected corrected color temperature output emitted through the lens 201 from the two different LED arrays or LED tracks 223 and 233′
The LED lightbulb of the present invention is preferably used in a track-light fixture 300. The track-light fixture 300 includes a power strip 301 with electrical connections 311 and 311′ for coupling to an external power source. The track-light fixture also includes a number of canister or housing structures 303, 305307 and 309 that can be repositioned within or along the power strip 301. Within each of the canister or housing structures 303, 305307 and 309 there is a corresponding LED lightbulb 303′, 305′, 307′ and 309′ with corrected color temperature tuning, such as the LED lightbulb described above with reference to
The present invention has been described in terms of specific embodiments incorporating details to facilitate the understanding of the principles of construction and operation of the invention. As such, references herein to specific embodiments and details thereof are not intended to limit the scope of the claims appended hereto. It will be apparent to those skilled in the art that modifications can be made in the embodiments chosen for illustration without departing from the spirit and scope of the invention.
Number | Name | Date | Kind |
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11092322 | Zhou | Aug 2021 | B2 |