Safety Grow Pod
20170354100 · 2017-12-14
Inventors
Cpc classification
Y02P60/21
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
Y02A40/25
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
Abstract
A grow pod comprises a container having a sprinkler system, a water reclamation system, a climate control system, a control system, a security system and a plant drying system; and a method of water reclamation for subsequent use within the grow pod.
Claims
1. A safety grow pod comprising: A container having at least one substantially vertical sidewall, a top wall and a base, the top wall and base intersecting the at least one substantially vertical sidewall, wherein the vertical sidewall, top wall and base define a growing area, the side wall, the top wall and the base are supported by a frame; the container further comprising a door integrated within the container; A climate control system comprising at least one supply and one return defined in the container; a hot and cold distribution unit mounted to the exterior of the container; at least one climate sensor inside the container whereby the sensor signals hot or cold air to enter the container; a dehumidifier processing air within the container; and A sprinkler system comprising one or more sprinkler heads within the container coupled to a supply line; and a sensor mounted within the container communicates with an output devise to activate or deactivate liquid flow to the supply line and sprinkler head.
2. A safety grow pod of claim 1, further comprising a grey water reclamation system comprising at least two reservoirs; one or more pumps; a control system having one or more sensors; a controller; an output device; a user interface; the sensors are disposed within each of the reservoirs communicating measurements of a liquid to the controller; the controller processes communications from the sensor for controlling the output device; the output device activates one or more of the pumps effectuating the transfer of liquid between the reservoirs via the pump; the user interface receives parameters from an operator and displays output from the controller.
3. A safety grow pod of claim 1, wherein the climate control system further comprises a control system having one or more sensors; a controller; an output device; a user interface; the sensor is disposed within the container communicating measurements to the controller for controlling the output device; the output devise operates the hot and cold air distribution unit.
4. A safety grow pod of claim 1, wherein the sidewall, the top wall, and the base comprise a double-walled insulated panels with a flame spread of less than 25.
5. A safety grow pod of claim 1, wherein the frame has a flame spread of less than 25.
6. A safety grow pod of claim 1, wherein the container further comprises a security system comprising a door having electronic hinges mounted to the frame, an electric lock set integrated within the door; an electric key reader communicates with the electric lock set; hinges and an electronic key.
7. A safety grow pod of claim 1, further comprises a power supply coupled with the electronic components of the system.
8. A safety grow pod of claim 1, further comprising a plant drying system having at least one conveyor with a track and plant mount, the conveyor system is mounted substantially perpendicular the sidewalls and parallel to the top wall wherein pants are mounted to the conveyor system for drying; and a humidifier processing air within the container according to parameters entered into the controller.
9. A method of operating a grow pod water reclamation system First, receiving liquid in a feeding reservoir; Second, pumping liquid to one or more plant containers; Third, collecting liquid waste from the plant containers; and Fourth, pumping liquid in the collection reservoir to the feeding reservoir. A method as in claim 9, further comprising collecting liquid waste from a dehumidifier and an HVAC system into a fresh water reservoir; and Pumping liquid from the fresh water reservoir to the feeding reservoir. A method as in claim 9, further comprising imputing PH and parts per million parameters for the feeding reservoir into a user interface; transferring data from the user interface to the controller; receiving data to the controller from sensors in each reservoir regarding PH and parts per million; actuating one or more pumps in each reservoir based on the relationship between the sensor data and the parameters; pumping liquid from the collection reservoir to the feeding reservoir; pumping liquid from the fresh water reservoir to the feeding reservoir; and de-actuating one or more pumps in each reservoir based on the relationship between the sensor data and the parameters.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0020] The invention as illustrated is a self contained module for growing plants, conveniently named a grow pod. The grow pod is comprised of a series of systems that allow for safe and efficient growing of plants in a secondary structure, such as a house, garage, barn or other structure allowing for the housing of the grow pod.
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[0022] As depicted in
[0023] As shown in
[0024] The climate control system though integrated with the control system, which comprises a controller 35, an output device [maybe integrated within a pump 33, or the hot and cold distribution unit 7], a user interface 34 and a sensor 6, is different in that the climate control system, which also contains at least one supply 11 and at least one return 8 defined in the container, a hot and cold distribution unit 7 mounted to the exterior of the container and a dehumidifier 26. As shown in
[0025] At least one climate sensor 6, for example, a HVAC automated control sensor is mounted within the container 10. The sensor 6 is integrated within the control system. The control system comprising a controller 35; an output device [maybe integrated within the hot and cold distribution unit 7]; and a user interface 34. The sensor 6 communicates to a controller 35 (such as a computer processor) via Bluetooth, hardwire, or wifi, the controller 35 in accordance with preset parameters activating or deactivating the hot and cold distribution unit 7. The climate control system is light and efficient and mounted to the container 7 requiring only a power supply.
[0026] As depicted in
[0027] Sensors 6, such as PH meters and PPM meters, and pumps 33 are disposed within each of the reservoirs 31, 28, & 32. The sensors 6 communicate measurements to the controller 35, the controller 35 processes communications from the sensors 6 according to preset parameters for controlling the pumps 33. The pumps effectuate the transfer of liquid between the reservoirs 32, 28, & 31 via the pumps 33; the user interface 34 receives parameters from an operator and displays output from the controller. The whole process could be accessed via Bluetooth or WiFi on a hand held device 57, such as a smart phone or tablet. During the week the PH in the Feeding Reservoir 28 will either rise or fall depending on the plants life cycle and to some extent the plant nutrients used in the Feeding Reservoir 28. Using an automatic PH adjustor located within the Feeding Reservoir 28 in conjunction with the control system, an operator or the controller may request the PH adjuster make adjustments before sending out water to the plants.
[0028] The pumps 33 are plummed between reservoirs 32, 28, & 31, with, e.g., PVC pipe. The water collect into the collection reservoir 31 and fresh water reservoir is gravity collected. However, the water may be pumped if necessary.
[0029] As shown in
[0030] The plant drying system integrates into the grow pod. The grow pod may be modified subsequent to the growing cycle into drying and curing pod. In the alternative, an operator may have two pods one configured for growing and one configured for curing. As shown in
[0031] The plant drying system may further comprise a base 5 having an interior layer of CDX plywood (painted with epoxy paint) base 21; one or more base grates 41; an elevated base 42 that is 2-8 inches off the subbase 12 wherein the base provides extra structural integrity
[0032] The grow or curing pod further comprises a security system comprising a door 9 having electronic hinges 67 mounted to the frame 15, an electric lock set integrated within the door; an electric key reader 64 communicates with the electric lock set 66; and an electronic key 71. The security system may further comprise a security camera 24 (as shown in
A Method of Operating a Grow Pod Water Reclamation System
[0033] A method of operating a grow pod water reclamation system starts with adding water or nutrient solution (“the receiving liquid”) to the feeding reservoir 101. The liquid (water or nutrient mix) is then pumped to one or more plant containers or hydroponic reservoir 102. The runoff grey water from the plant containers or hydroponic reservoir is captured in a collection reservoir 103. The runoff grey water/liquid collected in the collection reservoir is pumped to the feeding reservoir 104 for reuse if specified by the parameters set by the user. The runoff can only be used if the PPM and the PH are within an adjustable range. The method may further comprise of collecting liquid waste from a dehumidifier and an HVAC system into a fresh water reservoir 105. This water may be used to dilute the PPMS or modify the PH in the feeding reservoir. lithe water is needed in the feeding reservoir, it is pumped from the fresh water reservoir into the feeding reservoir in a specified volume 106. The method may further comprise an operator imputing PH and PPM parameters for the feeding reservoir into a user interface 107. The parameter data is transferred to a controller, such as a computer, then processed and store 108. The controller also receives data from sensors in each reservoir regarding PH and PPM 109. All of the data is processed according to the input parameters. The controller, according to the parameters activates one or more pumps, either pumping water from the fresh water reservoir to the feeding reservoir or pumping water from the collection reservoir to the feeding reservoir, or activating both pumps at once 110-112. The controller also deactivates the pumps according to the parameters 113.