IP Library Granted Patent US 12,336,065
Granted Patent B2
US 12,336,065 · App. 18/602,653 · Granted Jun 17, 2025

Horticulture grow lights

Inventor: Anthony Vilgiate (Woodland Park, CO)
Assignee: CABATECH, LLC
H05B45/00A01G7/045A01G9/20H05B45/20H05B47/19F21W2131/109F21Y2115/10H05B47/16Y02P60/14
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Quick Facts
Patent No.
US 12,336,065
App. No.
18/602,653
Granted
Jun 17, 2025
Kind
B2
Abstract

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.

Claims (27)

1. A horticulture grow light comprising:

a first plurality of white light emitting diodes (LEDs) having a first color temperature;

a second plurality of white LEDs having a second color temperature, the second color temperature being different from the first color temperature;

a plurality of supplemental radiation emitters; and

a driver configured to drive the first plurality of white LEDs, the second plurality of white LEDs, and the supplemental radiation emitters 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, the second plurality of white LEDs, and the supplemental radiation emitters has a peak wavelength in a range from 430 nm to 460 nm and a peak wavelength in a range from 560 nm to 780 nm, and

wherein, when a highest one from among the 430 nm to 460 nm peak wavelength and the 560 nm to 780 nm peak wavelength has a relative spectral value of 1, an entire wavelength range between the highest one of the peak wavelengths and the other one of the peak wavelengths has a relative spectral value of at least 0.2.

2. The horticulture grow light of claim 1 , wherein the supplemental radiation emitters are configured to emit light having a wavelength in a range of 640 nm to 680 nm.

3. The horticulture grow light of claim 2 , wherein the overall spectral composition of radiant energy collectively emitted at the same time by the first plurality of white LEDs, the second plurality of white LEDs, and the supplemental radiation emitters has a peak wavelength in a range of 640 nm to 680 nm in addition to the 430 nm to 460 nm peak wavelength and the 560 nm to 780 nm peak wavelength.

4. The horticulture grow light of claim 3 , wherein an entire wavelength range between the 430 nm to 460 nm peak wavelength and the 640 nm to 680 nm peak wavelength has a relative spectral value of at least 0.2.

5. The horticulture grow light of claim 1 , further comprising a second plurality of supplemental radiation emitters configured to emit light having a wavelength in a range of 700 nm to 1 mm.

6. The horticulture grow light of claim 1 , further comprising a circuit board,

wherein the supplemental radiation emitters are arranged between adjacent groups of ones of the first plurality of white LEDs and the second plurality of white LEDs on the circuit board.

7. The horticulture grow light of claim 6 , further comprising a housing and a power cord,

wherein the housing accommodates the driver and the circuit board, and

wherein the power cord extends from inside the housing to outside the housing.

8. The horticulture grow light of claim 7 , wherein the driver is removably electrically connected to the circuit board.

9. The horticulture grow light of claim 8 , further comprising a plurality of the circuit boards, each of the circuit board comprising a power connector configured to be removably electrically connected to the driver.

10. The horticulture grow light of claim 1 , wherein, in a first mode, the first plurality of white LEDs, the second plurality of white LEDs, and the supplemental radiation emitters receive power, and

wherein, in a second mode, the first plurality of white LEDs and the second plurality of white LEDs receive power and the supplemental radiation emitters do not receive power.

11. The horticulture grow light of claim 1 , wherein the driver comprises a plurality of drivers configured to respectively power the first plurality of white LEDs, the second plurality of white LEDs, and the supplemental radiation emitters.

12. The horticulture grow light of claim 1 , wherein the driver is configured to vary power supplied to the first plurality of white LEDs and the second plurality of white LEDs.

13. The horticulture grow light of claim 1 , wherein the driver is configured to vary power supplied to the first plurality of white LEDs, the second plurality of white LEDs, and the supplemental radiation emitters.

14. A method of growing a plant by using a horticulture grow light, the horticulture grow light comprising: a first plurality of white light emitting diodes (LEDs) having a first color temperature; a second plurality of white LEDs having a second color temperature, the second color temperature being different from the first color temperature; a plurality of supplemental radiation emitters; and a driver configured to drive the first plurality of white LEDs, the second plurality of white LEDs, and the supplemental radiation emitters 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, the second plurality of white LEDs, and the supplemental radiation emitters has a peak wavelength in a range from 430 nm to 460 nm and a peak wavelength in a range from 560 nm to 780 nm, and wherein, when a highest one from among the 430 nm to 460 nm peak wavelength and the 560 nm to 780 nm peak wavelength has a relative spectral value of 1, an entire wavelength range between the highest one of the peak wavelengths and the other one of the peak wavelengths has a relative spectral value of at least 0.2, the method comprising:

irradiating the overall spectral composition of radiant energy from the horticulture grow light toward the plant.

15. The method of claim 14 , further comprising, at a first time period, irradiating light from only the first plurality of white LEDs and the second plurality of white LEDs toward the plant.

16. The method of claim 14 , further comprising reducing an intensity of the radiant energy emitted from the horticulture grow light.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 26, 2024
From: VILGIATE, ANTHONY
To: CABATECH, LLC
Reel/Frame 066909/0132 →
Continuity (8)
Continuation 18171120 · Feb 17, 2023
Continuation 17506609 · Oct 20, 2021
Continuation 16995408 · Aug 17, 2020
Continuation 16230943 · Dec 21, 2018
Continuation 15785379 · Oct 16, 2017
Continuation 15280996 · Sep 29, 2016
Provisional Application 62234480 · Sep 29, 2015
Related Publication 20240224389A1 · Jul 4, 2024
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