IP Library › Granted Patent US 10,412,907
Granted Patent B2
US 10,412,907 · App. 15/065,835 · Granted Sep 17, 2019

Deficit-irrigation control system, based on dynamic organization of multi-agents systems and wireless or wired network

Inventors: Mohamad Javad Motahari Sharif (Tehran, IR); Mohamad Bagher Menhaj (Tehran, IR); Mansoure Kafash (Tehran, IR)
A01G25/165
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Quick Facts
Patent No.
US 10,412,907
App. No.
15/065,835
Granted
Sep 17, 2019
Kind
B2
Abstract

A deficit irrigation method is disclosed. The method includes steps of receiving, at a controller, a plurality of inputs including a growth stage of a plant, a development stage of the plant, a water level at a reservoir, and a full irrigation data; computing, at the controller, a stress intensity factor for irrigation of a plant; computing, at the controller, a correction factor based on the calculated stress intensity factor; computing, at the controller, a deficit irrigation factor based on the correction factor and the full irrigation data; and controlling an irrigation valve in a wired or a wireless communication with the controller to enable a deficit irrigation of the plant in accordance with the deficit irrigation factor, wherein the deficit irrigation factor controls when and how much to irrigate via the irrigation valve.

Claims (47)

1. A deficit irrigation method comprising:

receiving, at a controller, a plurality of inputs including a growth stage of a plant, a development stage of the plant, a water level at a reservoir, and a full irrigation data;

computing, at the controller, a stress intensity factor for irrigation of a plant, wherein:

the stress intensity factor represents a strength of the plant to a deficit irrigation,

the stress intensity factor is represented by K having a value between 0 and 1 with a larger value of K reflecting a higher strength to the deficit irrigation and a lower value of K reflecting a lower strength to the deficit irrigation, and

the stress intensity factor is computed based on the age of the plant, the development stage of the plant and the water level in the reservoir;

computing, at the controller, a correction factor based on the calculated stress intensity factor;

computing, at the controller, a deficit irrigation factor based on the correction factor and the full irrigation data; and

controlling an irrigation valve in a wired or a wireless communication with the controller to enable a deficit irrigation of the plant in accordance with the deficit irrigation factor, wherein the deficit irrigation factor controls when and how much to irrigate via the irrigation valve.

2. The method of claim 1 , wherein the growth stage of the plant and the development stage of the plant are received from a user.

3. The method of claim 1 , wherein the development stage of the plant includes a germination phase, a vegetative phase, a reproductive phase or a ripening phase of the plant.

4. The method of claim 1 , wherein the growth stage of the plant is calculated based on an age of the plant.

5. The method of claim 1 , further comprising:

sending a request, from the controller, to a water level sensor located in a water reservoir, for water level data; and

responsive to the request, receiving, at the controller and from the water level sensor, the water level data.

6. The method of claim 1 , wherein the water level indicates a volume of the available water for irrigation in the water reservoir.

7. The method of claim 1 , wherein the full water irrigation is the water needed by the plant to maximize the harvest.

8. The method of claim 1 , wherein the stress intensity factor, K, is computed based on fuzzy theory.

9. The method of claim 1 , wherein the correction factor is computed based on subtracting the stress intensity factor from one.

10. The method of claim 1 , wherein the deficit irrigation factor is computed by multiplying the correction factor by the full irrigation.

11. The method of claim 1 , further comprising receiving at the controller and from a valve sensor the deficit irrigation data in accordance with the deficit irrigation factor.

12. The method of claim 1 , wherein controlling the irrigation valve includes sending over a wired communication network and from the controller a control signal to the irrigation valve to control the irrigation valve in accordance with the deficit water irrigation factor.

13. The method of claim 1 , further comprising;

sending a request from the controller to a server for evapotranspiration data;

receiving at the controller from the server the evapotranspiration data; and

calculating the full water irrigation data based on the evapotranspiration data.

14. A deficit irrigation system comprising:

a water storage unit configured to store water for watering a plant;

a pump in communication with the water storage unit;

a plurality of irrigation valves in communication with the pump;

a controller in communication with the water storage unit, pump and the irrigation valves, wherein the controller is configured to:

receive a plurality of inputs including a growth stage of a plant, a development stage of the plant, a water level at the water storage, and a full irrigation data;

compute a stress intensity factor for irrigation of a plant, wherein:

the stress intensity factor represents a strength of the plant to a deficit irrigation,

the stress intensity factor is represented by K having a value between 0 and 1 with a larger value of K reflecting a higher strength to the deficit irrigation and a lower value of K reflecting a lower strength to the deficient irrigation, and

the stress intensity factor is computed based on the growth stage of the plant, the development stage of the plant and the water level in the reservoir;

compute a correction factor based on the calculated stress intensity factor;

compute a deficit water irrigation factor based on the correction factor and the full irrigation data; and

control the irrigation valves in a wired or a wireless communication with the controller to enable a deficit irrigation of the plant in accordance with the deficit irrigation factor, wherein the deficit irrigation factor controls when and how much to irrigate via the irrigation valve.

15. The system of claim 14 , further comprising a relaying device configured to receive the deficit irrigation data from the controller and transmit the deficit irrigation data to the irrigation valves.

16. The system of claim 14 , wherein the controller is configured to send the deficit irrigation data to the irrigation valves via a wireless connection.

17. The system of claim 14 wherein the controller is configured to send the deficit irrigation data to the irrigation valves via a wired connection.

18. The system of claim 14 , wherein the controller is further configured to:

send a request to a server for meteorological data and evapotranspiration data, and

receive from the server the meteorological data and evapotranspiration.

19. The system of claim 18 , wherein the server is a weather station.

20. The system of claim 18 , wherein the server is an online weather forecasting website.

Priority Claims (1)
IR 139350140003013743 · Mar 10, 2015 · national
Continuity (1)
Related Publication 20160183483A1 · Jun 30, 2016
Cited By (1)
US 12,402,580