Patent classifications
A01G2031/006
SYSTEMS AND METHODS FOR RECLAIMING WATER IN AN ASSEMBLY LINE GROW POD
An assembly line grow pod includes a track extending between a growing region and a sanitizing region, a cart movably engaged with the track, a sanitizer system that applies a sanitizer solution to the cart at the sanitizing region, the sanitizer system including a gray solution tank for storing sanitizer solution runoff collected from the sanitizing region, a cycled solution tank fluidly coupled to the gray solution tank, and a sanitizer reservoir fluidly coupled to the cycled solution tank, and a watering system that provides water to plant matter on the cart at the growing region, the watering system including an untreated water tank for storing water collected from the growing region.
SYSTEMS AND METHODS FOR MEASURING WATER USAGE IN AN ASSEMBLY LINE GROW POD
An assembly line grow pod includes a track extending between a growing region and a sanitizing region, a cart movably engaged with the track, a sanitizer system that applies a sanitizer solution to the cart at the sanitizing region, the sanitizer system including a gray solution tank for storing sanitizer solution runoff collected from the sanitizing region, a watering system that provides water to plant matter on the cart at the growing region, the watering system including an untreated water tank for storing water runoff collected from the growing region, and a flowmeter fluidly coupled to at least one of the sanitizer system and the watering system.
MODULAR PLANT GROWING SYSTEM
The present invention relates to a modular plant growing system. The system includes growing modules for growing plants. Each growing module includes fastening means to facilitate releasable fastening with an adjacent growing module. Advantageously, the fastened modules can be fastened together, and later released for cleaning and maintenance using the fastening means, without the need for tools.
BIOREACTOR
A bioreactor includes a bioreactor container, and a root stand. The container has a base and one or more sidewalls connected to the base, the base and sidewalls together defining an interior bioreactor volume. The root stand is supported by the container within the bioreactor volume, and includes a first support comb and a second support comb, each support comb having a plurality of spaced apart teeth. The teeth of the first support comb extend in length in a first direction and the teeth of the second support comb extend in length in a second direction different from the first direction. The first support comb overlaying the second support comb when the root stand is supported in the container, and the first support comb being separable from the second support comb when the root stand is removed from the container. A gravity well and atmosphere control container are also disclosed.
Bio Cell System
In various example embodiments, a bio cell system is described comprising one or more bio cell units, each comprising a primary tank and one or more secondary tanks, which tanks each comprise side walls, a floor connected to the side walls, and a removable cover. The cover of the tank comprises a lighting system comprising variable output lights and a controller connected to the lighting system comprising code for varying a time period of light output of the lights of the secondary tanks to be out of phase with a time period of light output of the lights of the primary tank.
AEROPONIC IRRIGATION SYSTEM
A microponic irrigation system is formed using a plurality a grow tubes, a pressure manifold, and a drainage manifold. Each of the plurality of grow tubes defines a grow chamber within the interior of the grow tube and is provided with at least one cradle assembly to support of a plant disposed with its roots suspended in air within the grow chamber. The pressure manifold fluidly couples a reservoir to each of the plurality of grow tubes and delivers nutrient solution housed in the reservoir to the plurality of grow tubes under pressure. The pressurized nutrient solution delivered to the grow tubes is misted into each grow chamber to be absorbed into the roots of each rooted clone supported in the grow tube. The drainage manifold collects unabsorbed nutrient solution from each of the plurality of grow tubes and circulates the unabsorbed nutrient solution back to the reservoir.
Automated Aquaponics Apparatus
Disclosed is an automated aquaponics apparatus. The aquaponics apparatus may include at least one fish holding tank configured to contain water. Further, the aquaponics apparatus may include at least one hydroponic unit. Further, the aquaponics apparatus may include a bio-digester. Further, the aquaponics apparatus may include an atmospheric water generator and a desalination reverse osmosis system. Further, the aquaponics apparatus may include an energy production system configured to generate energy. Further, the aquaponics apparatus may include at least one sensor configured to sense at least one variable. Further, the aquaponics apparatus may include a control unit configured to control an operational state of one or more of the at least one fish holding tank, the at least one hydroponic unit, the bio-digester, the desalination reverse osmosis system and the energy production system.
AEROPONIC FARMING SYSTEMS AND METHODS
Variable-scale, modular, easily manufacturable, energy efficient, reliable, and computer operated aeroponic farming superstructure systems (AFSS) may be used to produce plants for human consumption with minimal water and environmental impact. An AFSS system may comprise modules including liquid distribution and plant growing. An AFSS may be configured to be constructed out of a plurality of containerized modules.
AEROPONIC FARMING SYSTEMS AND METHODS
Variable-scale, modular, easily manufacturable, energy efficient, reliable, and computer operated aeroponic farming superstructure systems (AFSS) may be used to produce plants for human consumption with minimal water and environmental impact. An AFSS system may comprise modules including liquid distribution and plant growing. An AFSS may be configured to be constructed out of a plurality of containerized modules.
AEROPONIC FARMING SYSTEMS AND METHODS
Variable-scale, modular, easily manufacturable, energy efficient, reliable, and computer operated aeroponic farming superstructure systems (AFSS) may be used to produce plants for human consumption with minimal water and environmental impact. An AFSS system may comprise modules including liquid distribution and plant growing. An AFSS may be configured to be constructed out of a plurality of containerized modules.