System and method for integrated use of field sensors for dynamic management of irrigation and crop inputs
10999982 · 2021-05-11
Assignee
Inventors
Cpc classification
A01G25/167
HUMAN NECESSITIES
International classification
A01G15/00
HUMAN NECESSITIES
Abstract
The present invention provides a system for combining the use of near real-time and/or real-time data acquired from an array of single purpose or integrated sensors mounted on a mechanized irrigation machine. According to a preferred embodiment, the integrated sensor of the present invention preferably provides for the collection of a variety data. According to a further preferred embodiment, the integrated sensor suite of the present invention may preferably include internally mounted sensors within a common housing which preferably includes a spectrometer, a radiometer and sensors to measure temperature, rainfall, relative humidity and barometric pressure. According to a further preferred embodiment, the number of integrated sensors mounted on a mechanized irrigation machine may preferably be determined based on a detected number of management zones and/or a detected location.
Claims
1. A system for providing sensing and communications within an irrigation system having at least one span and a drive system for moving the span, wherein the system comprises: a plurality of sprinkler heads, wherein the plurality of sprinkler heads are configured to receive applicants under pressure and spray the applicants onto a field to be irrigated; a GPS receiver for receiving positional data; a flow meter for monitoring water flow to the plurality of sprinkler heads; and an integrated sensor suite element, wherein the integrated sensor suite element is comprised of a plurality of sensors within a single sensor housing; further wherein the integrated sensor suite element is further comprised of a plurality of communication elements; further wherein the integrated sensor suite element is comprised of a central power bus; further wherein the plurality of sensors and plurality of communication elements are electrically connected to the central power bus; further wherein the plurality of sensors comprise a precipitation detector and at least three sensors selected from the group of sensors including: an accelerometer, a GPS chip, a radiometer, a RGB sensor, and a spectrometer; further wherein the plurality of communication elements comprise chips which provide communications using at least two protocols selected from the group of protocols comprising: cellular, Wi-Fi, WLAN, Bluetooth, ZigBee, Sigfox, LoRa, LTE-M and 802.11, TCP/IP and Power Line Carrier; wherein the system further comprises a crop sensor separately mounted on the span; wherein the crop sensor is configured to detect and transmit crop data; wherein the integrated sensor suite element further comprises a sensor controller; wherein the sensor controller is configured to receive data from the plurality of sensors; further wherein the sensor controller is further configured to transmit control instructions to the plurality of sensors; wherein the integrated sensor suite element is further configured to control, transmit and received data to and from the plurality of communication elements; wherein the integrated sensor suite element is configured to receive, transmit and process data using processing resources exclusively within the integrated sensor suite element; wherein the integrated sensor suite element is configured to transmit processed data to remote processors; wherein the precipitation detector is configured to detect forms and rates of precipitation; wherein the system includes at least one wireless transceiver separately mounted on the span, the wireless transceiver receiving and transmitting signals between system elements comprising at least the integrated sensor suite and the crop sensor.
2. The system of claim 1, wherein the precipitation detector is configured to determine a droplet size of the detected precipitation.
3. The system of claim 2, wherein the integrated sensor suite element further comprises an accelerometer; wherein the accelerometer is configured to detect the tilt, orientation and acceleration of the sensor suite element.
4. The system of claim 3, wherein the GPS chip is housed within the single sensor housing.
5. The system of claim 4, wherein the radiometer is configured to detect levels of photosynthetically active radiation.
6. The system of claim 5, wherein the spectrometer is comprised of a seven-band spectrometer.
7. The system of claim 6, wherein the integrated sensor suite element further comprises sensors selected from the group of sensors comprising: a soil moisture sensor, a camera, and an infrared sensor.
8. The system of claim 7, wherein the integrated sensor suite element further comprises air sensors; wherein the air sensors are configured to detect air temperature, humidity and air pressure.
9. The system of claim 8, wherein the integrated sensor suite element further comprises optical sensors; wherein the optical sensors are configured to detect data indicating a condition selected from the group of conditions comprising: crop health, crop water use, crop water stress index, and plant production ratio.
10. The system of claim 9, wherein the optical sensors are further configured to detect data to produce Normalized Difference Vegetation Index (NDVI) and Enhanced Vegetation Index (EVI) calculations.
11. The system of claim 10, wherein the radiometer is comprised of a 4-way net radiometer.
12. The system of claim 11, wherein the radiometer and the spectrometer are integrated into an underside of the single sensor housing.
13. The system of claim 12, wherein the integrated sensor suite element is mounted onto the span; wherein the integrated sensor suite element is secured to the span with a connecting arm; further wherein the sensor suite element is connected to the connecting arm using an adjustable knob which is configured to lock and loosen.
14. The system of claim 13, wherein the integrated sensor suite element is configured to: process data, update system water balance, and generate irrigation and crop management recommendations.
15. The system of claim 14, wherein the integrated sensor suite element is configured to automatically generate a prescription for a variable rate prescription; further wherein the integrated sensor suite element is configured to transmit the generated prescription to a grower to accept, decline or modify in real time.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) For the purposes of promoting an understanding of the principles of the present invention, reference will now be made to the embodiments illustrated in the drawings and specific language will be used to describe the same. It will nevertheless be understood that no limitation of the scope of the present invention is hereby intended and such alterations and further modifications in the illustrated devices are contemplated as would normally occur to one skilled in the art.
(7) The terms “program,” “computer program,” “software application,” “module” and the like as used herein, are defined as a sequence of instructions designed for execution on a computer system. A program, computer program, module or software application may include a subroutine, a function, a procedure, an object implementation, an executable application, an applet, a servlet, a source code, an object code, a shared library, a dynamic link library and/or other sequence of instructions designed for execution on a computer system. A data storage means, as defined herein, includes many different types of computer readable media that allow a computer to read data therefrom and that maintain the data stored to allow the computer to be able to read the data again. Such data storage means can include, for example, non-volatile memory, such as ROM, Flash memory, battery backed-up RAM, Disk drive memory, CD-ROM, DVD, and other permanent storage media. However, even volatile storage such a RAM, buffers, cache memory, and network circuits are contemplated to serve as such data storage means according to different embodiments of the present invention. Further, all data processing, storage and algorithms/steps discussed herein may be performed on remote servers or processors such as via the cloud or the like without limitation.
(8) Aspects of the systems and methods described herein may be implemented as functionality programmed into any of a variety of circuitry, including programmable logic devices (PLDs), such as field programmable gate arrays (FPGAs), programmable array logic (PAL) devices, electrically programmable logic and memory devices and standard cell-based devices, as well as application specific integrated circuits (ASICs). Some other possibilities for implementing aspects of the systems and methods include: microcontrollers with memory, embedded microprocessors, firmware, software, etc. Furthermore, aspects of the systems and methods may be embodied in microprocessors having software-based circuit emulation, discrete logic (sequential and combinatorial), custom devices, fuzzy (neutral network) logic, quantum devices, and hybrids of any of the above device types. Of course, the underlying device technologies may be provided in a variety of component types, e.g., metal-oxide semiconductor field-effect transistor (MOSFET) technologies like complementary metal-oxide semiconductor (CMOS), bipolar technologies like emitter-coupled logic (ECL), polymer technologies (e.g., silicon-conjugated polymer and metal-conjugated polymer-metal structure), mixed analog and digital, and the like.
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(10) As shown in
(11) As further shown in
(12) The main section assembly 104 generally includes a number of interconnected spans 108, 110 supported by a tower structure 112 and an end tower structure 114. The extension section assembly 106 also includes a number of interconnected spans 116, 118. As shown, these may be connected with a latching mechanism 200 and supported by a tower structure 120 and an end tower structure 122. It is understood that the main section assembly 104 and the extension section assembly 106 may include any number of spans and tower structures.
(13) As further shown, each tower structure 112, 114, 120, 122 may generally further include wheels 124, 126 to assist traversing (e.g., pivoting) the articulating irrigation system 100 about a specified area. In an implementation, at least one of the wheels 124, 126 may be driven by a suitable drive unit 127 (e.g., drive motor), or the like, to assist in traversing the system 100 about the specified area. In an implementation, each drive unit 127 may be controlled by a stop system so that the drive unit 127 can be slowed or completely shut down in the event of the detection of an adverse circumstance. In another implementation, the irrigation system 100 may also include a stop box that powers off all drive units 127 driving the main section assembly 104. In this implementation, the drive units 127 driving the extension section assembly 106 would drive the extension section assembly 106 at an increased rate as compared to the main section assembly 104.
(14) As shown in
(15) With reference now to
(16) In implementations, exemplary control device 138 preferably may further include an irrigation position-determining module 148 which may include a global positioning system (GPS) receiver or the like to calculate a location of the irrigation system 100. Further, the control device 138 may be coupled to a guidance device or similar system 152 of the irrigation system 100 (e.g., steering assembly or steering mechanism) to control movement of the irrigation system 100. As shown, the control device 138 may further include a positional-terrain compensation module 151 to assist in controlling the movement and locational awareness of the system. Further, the control device 138 may preferably further include multiple inputs and outputs to receive data from sensors 154 and monitoring devices as discussed further below.
(17) With reference now to
(18) Further, the system 300 of the present invention may preferably further include a control/pivot panel 308 as well as elements such as a GPS receiver 320 for receiving positional data and a flow meter 332 for monitoring water flow in the system. Still further, a system of the present invention may further include indirect crop sensors 318 which may preferably include moisture sensors to determine the water content levels in a given area of soil. Additionally, the sensors 318 may further include optics to allow for the detection of crop type, stage of grown, health, presence of disease, rate of growth and the like. Still further, the system may include soil or plant sensors (not shown). Still further, the detection system may further receive data from a connected or remote weather station (not shown) or the like which is able to measure weather features such as temperature, solar radiation, humidity, wind speed, wind direction, pressure, precipitation, temperature and the like. Still further, the system may preferably further include a wireless transceiver/router 324, 325 for receiving and transmitting signals between system elements.
(19) According to alternative preferred embodiments, the system may also use a power line carrier system or separate wired network to transmit signals between system elements. Further, the preferred system of the present invention may alternatively further include additional elements mounted to the span 310 such as additional sensors and the like. According to a further preferred embodiment, a system in accordance with the present invention may preferably further include an integrated sensor suite element 322 which preferably includes a combination of sensors and processing elements within a common housing. According to a further preferred embodiment, an exemplary integrated sensor suite element 322 may preferably be separately powered and internally managed as discussed further below.
(20) With reference now to
(21) As shown in
(22) Still further, the sensor suite element 400 of the present invention may further include radiometers 407 to determine the long wave and short wave incoming solar radiation and photosynthetically active radiation. Additionally, an exemplary sensor suite element 400 of the present invention may further include a spectrometer 408. According to a preferred embodiment, the spectrometer may preferably be a seven-band spectrometer or the like. According to a preferred embodiment, the spectrometer may be placed on the bottom of the sensor suite element 400. Additionally, the exemplary sensor suite element 400 of the present invention may further include internal communications chips 406 to allow the sensor suite element 400 to communicate with a variety remote computers and servers. According to a preferred embodiment, the communication chips 406 may for example include: cellular, Wi-Fi, wireless local area networks (WLANs), Bluetooth, ZigBee, 802.11, and/or any other standards based or proprietary wireless protocols. According to another preferred embodiment, wired communication may also take place via IP protocols, TC/PIP, Power Line Carrier and/or any other standards-based or proprietary protocols and hardware. According to a still further preferred embodiment, the integrated sensor suite 400 may further include a solar panel 402 to separately power the sensor suite 400, or may be powered by other means such as utilizing electrical power provided by the irrigation machine.
(23) With reference now to
(24) As further shown in
(25) According to a further preferred embodiment, the number of integrated sensors mounted on a mechanized irrigation machine may preferably be determined based on a detected or pre-determined number of management zones and/or location(s). According to a further preferred embodiment, integrated sensor(s) of the present invention may preferably provide specific data of current field conditions and send the detected data to a central control to apply the appropriate analytics to determine calculate crop health, crop water use, crop water stress index and the like. In addition, NDVI, EVI and a variety of other indices may preferably be calculated. According to a further preferred embodiment, the analytics applied in accordance with the present invention may preferably process, combine and evaluate the data collected, update the water balance and generate irrigation and crop management recommendations including but not limited to when to apply, what to apply (such as water, fertilizer, crop protection chemicals and the like), how much to apply and specifically where in the field to apply. According to further preferred embodiments, the system of the present invention may preferably be configured to automatically implement a variable rate irrigation or applicant prescription to a given field based on the sensed data during the current pass of the machine or during a subsequent pass of the irrigation machine.
(26) While the above descriptions regarding the present invention contain much specificity, these should not be construed as limitations on the scope, but rather as examples. Many other variations are possible. For example, the processing elements of the present invention by the present invention may operate on a number of different frequencies, voltages, amps and BUS configurations. Further, the communications provided with the present invention may be designed to be duplex or simplex in nature. Further, as needs require, the processes for transmitting data to and from the present invention may be designed to be push or pull in nature. Still, further, each feature of the present invention may be made to be remotely activated and accessed from distant monitoring stations. Accordingly, data may preferably be uploaded to and downloaded from the present invention as needed.
(27) Accordingly, the scope of the present invention should be determined not by the embodiments illustrated, but by the appended claims and their legal equivalents.