Horticulture grow lights
A grow light includes a plurality of cool white LEDs, a plurality of warm white LEDs, and a driver electrically coupled to the cool white LEDs and the warm white LEDs. An intensity level and spectral composition of the radiant energy emitted by the grow light may be tuned or configured by varying a ratio of the quantity of cool white LEDs to the quantity of warm white LEDs, by varying a spatial arrangement among the cool white LEDs and the warm white LEDs, or by varying a level of current provided to some or all of the cool white LEDs and the warm white LEDs.
1. A horticulture grow light comprising:
a first plurality of white light emitting diodes (LEDs) having a first color temperature and configured to output a peak wavelength in a range from 400 nm to 510 nm;
a second plurality of white LEDs having a second color temperature, the second color temperature being different from the first color temperature, and configured to output a peak wavelength in a range from 600 nm to 660 nm; and
a single driver configured to supply a variable current to the first plurality of white LEDs and the second plurality of white LEDs to provide an overall spectral composition,
wherein the overall spectral composition of radiant energy collectively emitted at a same time by the first plurality of white LEDs and the second plurality of white LEDs has a first-highest peak wavelength in a range from 400 nm to 510 nm and a second-highest peak wavelength in a range from 560 nm to 780 nm, and
wherein, when the first-highest peak wavelength has a relative spectral value of 1, an entire wavelength range between the first-highest peak wavelength and the second-highest peak wavelength has a relative spectral value of at least 0.2.
2. The horticulture grow light of claim 1 , wherein the single driver, the first plurality of white LEDs, and the second plurality of white LEDs are electrically connected to each other within a single power circuit.
3. The horticulture grow light of claim 1 , wherein the first plurality of white LEDs and the second plurality of white LEDs are arranged in a plurality of alternating strips of the first plurality of white LEDs and the second plurality of white LEDs.
4. The horticulture grow light of claim 1 , wherein each of the first plurality of white LEDs is adjacent to at least two of the second plurality of white LEDs.
5. The horticulture grow light of claim 1 , wherein a quantity of the first plurality of white LEDs is greater than a quantity of the second plurality of white LEDs.
6. The horticulture grow light of claim 1 , further comprising a plurality of supplemental radiation emitters,
wherein the supplemental radiation emitters are configured to emit at least one of visible light, ultraviolet radiation emitting wavelengths ranging from 300 nm to 400 nm, or infrared radiation emitting wavelengths ranging from 700 nm to 1 mm.
7. The horticulture grow light of claim 6 , wherein the overall spectral composition of the first plurality of white LEDs, the second plurality of white LEDs, and the supplemental radiation emitters have a third-highest wavelength peak in a range from 300 nm to 400 nm.
8. The horticulture grow light of claim 6 , wherein the single driver is configured to drive the first plurality of white LEDs, the second plurality of white LEDs, and the supplemental radiation emitters.
9. The horticulture grow light of claim 8 , wherein the single driver is configured to supply the variable current to the supplemental radiation emitters.
10. The horticulture grow light of claim 8 , wherein the single driver, the first plurality of white LEDs, the second plurality of white LEDs, and the supplemental radiation emitters are electrically connected to each other within a single power circuit.
11. The horticulture grow light of claim 1 , wherein the single driver is a DC driver, and
wherein the DC driver is configured to provide to each of the first plurality of white LEDs and each of the second plurality of white LEDs a current level of at least 30 mA.
12. The horticulture grow light of claim 1 , wherein the first plurality of white LEDs are directly mounted on a first substrate, and the second plurality of white LEDs are directly mounted on a second substrate.
13. The horticulture grow light of claim 1 , wherein the first plurality of white LEDs and the second plurality of white LEDs are directly mounted on a single substrate.
14. A horticulture grow light comprising a plurality of light engines, each of the light engines comprising:
a first plurality of white light emitting diodes (LEDs) having a first color temperature and configured to output a peak wavelength in a range from 400 nm to 510 nm;
a second plurality of white LEDs having a second color temperature, the second color temperature being different from the first color temperature, and configured to output a peak wavelength in a range from 600 nm to 660 nm; and
a single driver configured to concurrently supply a current to the first plurality of white LEDs and the second plurality of white LEDs to provide an overall spectral composition,
wherein the overall spectral composition of radiant energy collectively emitted at a same time by the first plurality of white LEDs and the second plurality of white LEDs has a first-highest peak wavelength in a range from 400 nm to 510 nm and a second-highest peak wavelength in a range from 560 nm to 780 nm.
15. The horticulture grow light of claim 14 , wherein at least one of the light engines comprises only the first plurality of white LEDs and the second plurality of white LEDs as light emitting elements.
16. The horticulture grow light of claim 14 , wherein the first plurality of white LEDs and the second plurality of white LEDs are arranged in a plurality of alternating strips of the first plurality of white LEDs and the second plurality of white LEDs.
17. The horticulture grow light of claim 14 , further comprising a supplemental radiation engine comprising a plurality of supplemental radiation emitters,
wherein the supplemental radiation emitters are configured to emit at least one of visible light, ultraviolet radiation emitting wavelengths ranging from 300 nm to 400 nm, or infrared radiation emitting wavelengths ranging from 700 nm to 1 mm.
18. The horticulture grow light of claim 17 , wherein the overall spectral composition of the first plurality of white LEDs, the second plurality of white LEDs, and the supplemental radiation emitters have a third-highest wavelength peak in a range from 300 nm to 400 nm.
19. A horticulture grow light comprising:
a housing;
a DC power circuit comprising:
a single DC power driver;
a first plurality of white light emitting diodes (LEDs) having a first color temperature; and
a second plurality of white LEDs having a second color temperature, the second color temperature being different from the first color temperature,
wherein the single DC power driver is electrically connected to the first plurality of white LEDs and the second plurality of white LEDs, and
wherein the first plurality of white LEDs and the second plurality of white LEDs are electrically connected to each other.
20. The horticulture grow light of claim 19 , wherein the first plurality of white LEDs and the second plurality of white LEDs are the only light emitting elements in the housing.