Rotating Induction Grow Light System
20170009970 ยท 2017-01-12
Inventors
Cpc classification
A01G9/20
HUMAN NECESSITIES
F21V23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V15/015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V7/041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2131/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S8/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P60/14
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F21V21/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A01G7/04
HUMAN NECESSITIES
F21V15/015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rotating induction growth light system and method are disclosed. The rotating induction growth light includes a mounting bracket assembly and a light source assembly rotatably coupled to the mounting bracket assembly. The light source assembly has a first side subassembly and a second side sub assembly opposite the first side subassembly. The light source assembly is configured to rotate between a first position wherein the first side subassembly is facing away from the mounting bracket assembly and at least a second position wherein the second subassembly is facing away from the mounting bracket assembly. A method of providing light to a plant is disclosed, including: directing a vegetative side subassembly of a light source assembly toward a plant; and rotating the light source assembly until a flowering side subassembly is directed toward the plant, the flowering side subassembly positioned on the light source assembly opposite the vegetative side subassembly.
Claims
1. A rotating induction growth light system, comprising: a mounting bracket assembly; a light source assembly rotatably coupled to the mounting bracket assembly, the light source assembly comprising a first side subassembly and a second side sub assembly opposite the first side subassembly, wherein the light source assembly is configured to rotate between a first position wherein the first side subassembly is facing away from the mounting bracket assembly and at least a second position wherein the second subassembly is facing away from the mounting bracket assembly.
2. The rotating induction growth light system of claim 1, wherein: the light source assembly further comprises a ballast mount rotatably coupled to the mounting bracket assembly and positioned between the first side subassembly and the second side subassembly; the second side subassembly comprises a reflector plate coupled to the ballast mount and a plurality of induction light bulbs coupled to the reflector plate; and the first side subassembly comprises a reflector plate coupled to the ballast mount and a plurality of induction light bulbs coupled to the reflector plate.
3. The rotating induction growth light system of claim 2, wherein the first side subassembly further comprises a reflective cone.
4. The rotating induction growth light system of claim 2, wherein the plurality of induction light bulbs of the second side subassembly produce a first combined wattage and the plurality of induction light bulbs of the first side subassembly produce a second combined wattage less than the first combined wattage.
5. The rotating induction growth light system of claim 2, wherein the mounting bracket assembly comprises two arms and a body coupled to and between the two arms, at least one of the two arms comprising a track, and wherein the ballast mount comprises a stop tab slidable within the track such that when the light source assembly is in the first position the stop tab is engaged with a first end of the track and when the light source assembly is in the second position the stop tab is engaged with a second end of the track.
6. The rotating induction growth light system of claim 5, further comprising: an indexing plunger operably coupled to the at least one of the two arms proximate the track; and a plurality of plunger receiving holes on the ballast mount proximate the stop, wherein a first plunger receiving hole of the plurality of plunger receiving holes is positioned to engage with the indexing plunger when the light source assembly is in the first position, a second plunger receiving hole of the plurality of plunger receiving holes is positioned to engage with the indexing plunger when the light source assembly is in the second position, and a third plunger receiving hold of the plurality of plunger receiving holes is positioned to engage with the indexing plunger when the light source assembly is in a third position between the first and the second positions.
7. The rotating induction growth light system of claim 2, further comprising a plurality of ballasts coupled to the ballast mount.
8. The rotating induction growth light system of claim 4, wherein the plurality of induction light bulbs of the second side subassembly comprise two 300 watt bulbs, two 150 watt bulbs, and one 100 watt bulb, and the plurality of induction light bulbs of the first side subassembly comprise two 300 watt bulbs and two 150 watt bulbs.
9. The rotating induction growth light system of claim 4, wherein the plurality of induction light bulbs of both the first and second side subassemblies comprise two 500 watt bulbs.
10. A rotating induction growth light system, comprising: a mounting bracket assembly; a light source assembly rotatably coupled to the mounting bracket assembly, the light source assembly comprising a vegetative side subassembly and a flowering side sub assembly opposite the vegetative side subassembly, wherein the light source assembly is configured to rotate between a first position wherein the vegetative side subassembly is facing away from the mounting bracket assembly and at least a second position wherein the flowering subassembly is facing away from the mounting bracket assembly.
11. The rotating induction growth light system of claim 10, wherein: the light source assembly further comprises a ballast mount rotatably coupled to the mounting bracket assembly and positioned between the vegetative side subassembly and the flowering side subassembly; the flowering side subassembly comprises a reflector plate coupled to the ballast mount and a plurality of induction light bulbs coupled to the reflector plate; and the vegetative side subassembly comprises a reflector plate coupled to the ballast mount and a plurality of induction light bulbs coupled to the reflector plate of the vegetative side subassembly.
12. The rotating induction growth light system of claim 11, wherein the vegetative side subassembly further comprises a reflective cone.
13. The rotating induction growth light system of claim 11, wherein the plurality of induction light bulbs of the flowering side subassembly produce a first combined wattage and the plurality of induction light bulbs of the vegetative side subassembly produce a second combined wattage less than the first combined wattage.
14. The rotating induction growth light system of claim 13, wherein the mounting bracket assembly comprises two arms and a body coupled to and between the two arms, at least one of the two arms comprising a track, and wherein the ballast mount comprises a stop tab slidable within the track such that when the light source assembly is in the first position the stop tab is engaged with a first end of the track and when the light source assembly is in the second position the stop tab is engaged with a second end of the track.
15. The rotating induction growth light system of claim 14, further comprising: an indexing plunger operably coupled to the at least one of the two arms proximate the track; and a plurality of plunger receiving holes on the ballast mount proximate the stop, wherein a first plunger receiving hole of the plurality of plunger receiving holes is positioned to engage with the indexing plunger when the light source assembly is in the first position, a second plunger receiving hole of the plurality of plunger receiving holes is positioned to engage with the indexing plunger when the light source assembly is in the second position, and a third plunger receiving hold of the plurality of plunger receiving holes is positioned to engage with the indexing plunger when the light source assembly is in a third position between the first and the second positions.
16. The rotating induction growth light system of claim 13, wherein the plurality of induction light bulbs of the flowering side subassembly comprise two 300 watt bulbs, two 150 watt bulbs, and one 100 watt bulb, and the plurality of induction light bulbs of the vegetative side subassembly comprise two 300 watt bulbs and two 150 watt bulbs.
17. The rotating induction growth light system of claim 13, wherein the plurality of induction light bulbs of both the first and second side subassemblies comprise two 500 watt bulbs.
18. A method of providing light to a plant, comprising: directing a vegetative side subassembly of a light source assembly toward a plant, the light source assembly rotatably coupled to a mounting bracket assembly; and rotating the light source assembly until a flowering side subassembly is directed toward the plant, the flowering side subassembly positioned on the light source assembly opposite the vegetative side subassembly.
19. The method of claim 18, further comprising: engaging an indexing plunger on an arm of the mounting bracket assembly in a first plunger receiving hole on the light source assembly when the vegetative side subassembly is directed toward the plant; and engaging the indexing plunger in a second plunger receiving hole on the light source assembly when the flowering side subassembly is directed toward the plant.
20. The method of claim 19, further comprising rotating the light source assembly into a storage position and engaging the indexing plunger with a third plunger receiving hole on the light source assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0039] Implementations will hereinafter be described in conjunction with the appended drawings, where like designations denote like elements.
[0040] Skilled artisans will appreciate that elements in the figures are illustrated for simplicity and clarity and have not necessarily been drawn to scale. For example, the dimensions of some of the elements in the figures may be exaggerated relative to other elements to help to improve understanding of implementations.
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DETAILED DESCRIPTION
[0056] This document features a rotating induction grow light system. There are many features of rotating induction grow light system and method implementations disclosed herein, of which one, a plurality, or all features or steps may be used in any particular implementation.
[0057] In the following description, reference is made to the accompanying drawings which form a part hereof, and which show by way of illustration possible implementations. It is to be understood that other implementations may be utilized, and structural, as well as procedural, changes may be made without departing from the scope of this document. As a matter of convenience, various components will be described using exemplary materials, sizes, shapes, dimensions, and the like. However, this document is not limited to the stated examples and other configurations are possible and within the teachings of the present disclosure. As will become apparent, changes may be made in the function and/or arrangement of any of the elements described in the disclosed exemplary implementations without departing from the spirit and scope of this disclosure.
Structure/Components
[0058] There are a variety of implementations of a rotating induction grow light system. Implementations of a rotating induction grow light system may include a dual or two sided hooded or light source assembly, wherein one side of the hood or light source assembly is used to provide light to plants in a vegetative or growing state, and the other side of the hood or light source assembly is used to provide light to plants in a flowering state. A ballast is typically mounted in between induction light bulbs on the bottom side and the top side of the light source assembly, and each side has its own reflectors. The light source assembly typically includes a rotation mechanism that allows the dual hood light source assembly to flip longitudinally 360 degrees, including the ability to lock in place at 0/360 degrees and at 180 degrees.
[0059] For the exemplary purposes of this disclosure,
[0060] As depicted in
[0061] As further depicted in the non-limiting implementation of
[0062] According to some aspects, the mounting bracket assembly 10 is rotatably coupled to the light source assembly 20 at an end cap 34 coupled to the ballast mount 18. For example, in the non-limiting implementation depicted in
[0063] According to some aspects, the mounting bracket assembly 10 further includes one or more stop tabs 4. The stop tab 4 typically extends from the end cap 34 coupled to the ballast mount 18 coupled to an arm 9 of the mounting bracket assembly 10 and is positioned to engage with the track 6 of the arm 9. In some implementations each arm 9 includes one track 6 that engages with a different stop tab 4. In other implementations, only one arm 9 includes one track 6 that engages with a stop tab 4. As depicted in
[0064] As depicted in
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Other Implementations
[0072] Other implementations are possible for a wide variety of applications.
[0073] For the exemplary purposes of this disclosure, a body may define any number of bottom and corresponding top bottle recesses in any arrangement. That is a body of a bottle stacker implementation may define recesses to accommodate two bottles (one on top of one), four bottles (two on top of two), six bottles (three on top of three), eight bottles (four on top of four), and so on.
[0074] Further implementations are within the claims and discussed elsewhere in this document.
Specifications, Materials, Manufacture, System, and Installation
[0075] It will be understood that rotating induction growth light system implementations are not limited to the specific assemblies, devices and components disclosed in this document, as virtually any assemblies, devices and components consistent with the intended operation of a rotating induction growth light system implementation may be utilized. Accordingly, for example, although particular lamps, electrical connectors, coatings, reflectors, frames, power cables, positionable adjustment mechanisms, and other assemblies, devices and components are disclosed, such may include any shape, size, style, type, model, version, class, measurement, concentration, material, weight, quantity, and/or the like consistent with the intended operation of a rotating induction growth light system implementation. Implementations are not limited to uses of any specific assemblies, devices and components; provided that the assemblies, devices and components selected are consistent with the intended operation of a rotating induction growth light system implementation.
[0076] Accordingly, the components defining any rotating induction growth light system implementations may be formed of any of many different types of materials or combinations thereof that can readily be formed into shaped objects provided that the components selected are consistent with the intended operation of a rotating induction growth light system implementation. For example, the components may be formed of: polymers such as thermoplastics (such as ABS, Fluoropolymers, Polyacetal, Polyamide; Polycarbonate, Polyethylene, Polysulfone, and/or the like), thermosets (such as Epoxy, Phenolic Resin, Polyimide, Polyurethane, Silicone, and/or the like), any combination thereof, and/or other like materials; glasses (such as quartz glass), carbon-fiber, aramid-fiber, any combination thereof, and/or other like materials; composites and/or other like materials; metals, such as zinc, magnesium, titanium, copper, lead, iron, steel, carbon steel, alloy steel, tool steel, stainless steel, brass, tin, antimony, pure aluminum, 1100 aluminum, aluminum alloy, any combination thereof, and/or other like materials; alloys, such as aluminum alloy, titanium alloy, magnesium alloy, copper alloy, any combination thereof, and/or other like materials; any other suitable material; and/or any combination of the foregoing thereof.
[0077] For the exemplary purposes of this disclosure, sizing, dimensions, and angles of a rotating induction growth light system implementations may vary according to different implementations. According to some aspects, the reflective cone 30 includes a 90 degree angle at the point of the reflective cone 30, and to 45 degree angles proximate the reflector plate 28. The ends of each reflector plate 28 may be angled at an angle of approximately 150 degrees. The reflector plates 28 and reflective cone 30 may include any reflective material, including but not limited to mylar applied to a reflective surface.
[0078] Various rotating induction growth light system implementations may be manufactured using conventional procedures as added to and improved upon through the procedures described here. Some components defining rotating induction growth light system implementations may be manufactured simultaneously and integrally joined with one another, while other components may be purchased pre-manufactured or manufactured separately and then assembled with the integral components. Various implementations may be manufactured using conventional procedures as added to and improved upon through the procedures described here and illustrated in
[0079] Accordingly, manufacture of these components separately or simultaneously may involve extrusion, pultrusion, vacuum forming, injection molding, blow molding, resin transfer molding, casting, forging, cold rolling, milling, drilling, reaming, turning, grinding, stamping, cutting, bending, welding, soldering, hardening, riveting, punching, plating, and/or the like. If any of the components are manufactured separately, they may then be coupled with one another in any manner, such as with adhesive, a weld, a fastener (e.g. a bolt, a nut, a screw, a nail, a rivet, a pin, and/or the like), wiring, any combination thereof, and/or the like for example, depending on, among other considerations, the particular material forming the components.
[0080] It will be understood that the assembly of rotating induction growth light systems are not limited to the specific order of steps as disclosed in this document and
Use/Operation
[0081] Rotating induction growth light system implementations are energy efficient, long lasting, and low heat generating. For example, rotating induction grow light system implementations may be used in indoor grow room applications for growing medical marijuana. Nevertheless, implementations are not limited to uses relating to the foregoing. Rather, any description relating to the foregoing is for the exemplary purposes of this disclosure, and implementations may also be used with similar results for a variety of other horticultural and agricultural applications, such as Food Agricultural Lighting, Green Houses Lighting, Indoor Organics Lighting, Hydroponic Lighting, Propagation and Seed Lighting, and the like.
[0082] For the exemplary purposes of this disclosure,
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