CONTROL SYSTEM FOR CONTROLLING HUMIDITY IN AN INDOOR GROWING ENVIRONMENT
20230014943 · 2023-01-19
Inventors
Cpc classification
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 control system for controlling humidity in an indoor growing environment is provided, which includes software to control the removal of moisture by using current Vapor Pressure Deficit (VPD) as measured in the indoor air space of a grow room in comparison to a target Vapor Pressure Deficit. The temperature and relative humidity in various areas of the grow room are monitored and used by the software to calculate the current VPD and determine a preferred profile for the target VPD. The control system is configured to maintain consistent VPD with moisture removal by a dehumidifier in response to temperature variations throughout a night/day cycle and through successive growth stages to ensure optimal plant growth and transpiration rates.
Claims
1. A control system for an indoor grow operation having a grow room in a defined location for growing plants, said control system comprising: a controller; a dehumidifier; one or more sensors placed in one or more locations of the grow room wherein said locations comprise a crop canopy over the growing plants, a surrounding area of said grow room, a dehumidifier intake, a dehumidifier output and an external area, said sensors operatively connected to said controller and configured to detect both temperature and humidity in said locations in which said sensors are placed; said one or more sensors directly measuring Temperature and Relative Humidity and communicating sensor data to said controller indicating the measured Temperature and Relative Humidity; said controller comprising a server and a processor configured to receive said sensor data and calculate a calculated average of the sensor data to provide an average per sensor profile of Temperature and Humidity values, said calculated average of the sensor data being processed by said server to calculate a current Saturation Vapor Pressure (SVP), wherein said current Saturation Vapor Pressure (SVP) and current Relative Humidity (RH) are calculated from said sensor data and then are used to calculate a current Vapor Pressure Deficit (VPD) defined as a difference between an amount of moisture in room air and an amount of moisture the air can hold when it is saturated; said server further being configured to determine a profile for a target VPD for the room air wherein said controller controls said dehumidifier to raise and lower room humidity wherein if said current VPD exceeds said target VPD, dehumidification by said dehumidifier is terminated, and if said current VPD is lower than said target VPD, dehumidification by said dehumidifier is executed, whereby said current VPD is controlled continuously during crop growth to improve crop yields.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
[0013]
[0014]
[0015]
[0016] Certain terminology will be used in the following description for convenience and reference only, and will not be limiting. For example, the words “upwardly”, “downwardly”, “rightwardly” and “leftwardly” will refer to directions in the drawings to which reference is made. The words “inwardly” and “outwardly” will refer to directions toward and away from, respectively, the geometric center of the arrangement and designated parts thereof. Said terminology will include the words specifically mentioned, derivatives thereof, and words of similar import.
DETAILED DESCRIPTION
[0017] Generally, when growing certain plants such as cannabis plants in an indoor growing environment such as a greenhouse or other indoor facilities, it is desirable to control humidity. With respect to the present invention of
[0018] Vapor-pressure deficit, or VPD, is the difference (deficit) between the amount of moisture in the air and how much moisture the air can hold when it is saturated. Once air becomes saturated, water will condense out to form clouds, dew or films of water over leaves. Dew and leaf films are of a concern when growing particular plants, such as cannabis and other related plants in this family. As such, VPD is used in the control system of the present invention to control VPD during the grow cycle, such as the day/night cycle, or more broadly, during an extended grow cycle such as the various growth stages for a particular plant.
[0019] It is this instance that makes VPD important for optimized greenhouse regulation. If a film of water forms on a plant leaf, it becomes far more susceptible to rot. For this reason, the ideal range for VPD in a greenhouse is from 0.45 kPa to 1.25 kPa, ideally sitting at around 0.85 kPa.
[0020] Additionally, as temperature fluctuates, so does the available amount of moisture the air can hold. According to the present invention, maintaining consistent VPD in the growth environment with moisture removal in response to temperature and changes thereof is key to optimal plant growth (transpiration rates) and currently cannot be performed consistently with market offerings today.
[0021] With respect to the inventive control system 10 as diagrammatically shown in
[0022] Referring to
[0023] The server 22 is configured to include or communicate with a processor that receives and stores the sensor data and calculates an average of the sensor data to provide an average per sensor profile of Temperature and Humidity values. The calculated average Temperature and Relative Humidity data are used to calculate Saturation Vapor Pressure (SVP) pursuant to the following formula in step 41. In this manner, the invention not only monitors one particular location such as the canopy C or the room area 17 away from the canopy C, but monitors several locations, which can have variations in humidity and temperature. The preferred formulas are as follows:
SVP kPa=610.78*2.71828{circumflex over ( )}([T]/([T]+238.3)*17.2694)/1000
[0024] Current saturation Vapor Pressure (SVP) and current Relative Humidity (RH) are calculated from the sensor data and then are used to calculate the current Vapor Pressure Deficit (VPD) in step 42. The vapor-pressure deficit, or VPD, is the difference (deficit) between the amount of moisture in the air and how much moisture the air can hold when it is saturated and is preferably calculated with the formula below. As noted, the SVP and VPD preferably use an average of the sensor profiles for Temperature and Humidity in one or more monitored locations as determined by the sensor data through the server 22 and the processor thereof.
VPD kPa=([SVP]*(1−[RH]/100))
[0025] T, RH, SVP and VPD are previous values that are also stored by the server or sensors to identify trending within the environment. The sensor values can be stored for the sensors individually and/or as an average thereof.
Technical Description Dehumidification Function
[0026] The current VPD is checked against a profile for target VPD such as determined through the data table of
[0027] Dehumidification is controlled by 110 to low voltage relays to trigger on cycles of the humidifier 19, which can dehumidify the room. Commands for on or off are issued and received over the internet and supplied by a remote server 22 although the server 22 may also be locally located.
[0028] By providing a controller for each one or a plurality of daisy chained dehumidifiers 19, a priority and run time is assigned. As run time is exceeded by primary dehumidification, secondary, tertiary, etc. dehumidification controllers are triggered on with a run time value to each assigned.
Technical Description Profile
[0029] The profile for the target VPD is stored on the server 22 and may contain various types of data, which are used to calculate the target VPD for any particular temperature and humidity combination and may also take into account other crop characteristics. Various combinations of such characteristics can be derived from the table of
[0030] Referring to
[0031] As noted above,
[0032] Although a particular preferred embodiment of the invention has been disclosed in detail for illustrative purposes, it will be recognized that variations or modifications of the disclosed apparatus, including the rearrangement of parts, lie within the scope of the present invention.