Agricultural Method
20200113126 ยท 2020-04-16
Inventors
Cpc classification
A01B47/00
HUMAN NECESSITIES
International classification
A01C7/20
HUMAN NECESSITIES
A01C5/06
HUMAN NECESSITIES
Abstract
Depth of penetration of a soil coulter is obtained using a sensor being mounted on the side of the disk adjacent the edge such that the sensor as the disk rotates is located above the surface of the soil during a first part of its rotation and is located below the surface during a second part of its rotation. This sensor is also used to detect characteristics of material outside the coulter as it rotates and temperature. This data is used in a growth model to generate predicted growth data to allow control of growth remediation materials to the crop.
Claims
1. A method for managing growth of crops in a soil bed comprising: providing a computer processor having an input and output for data; using the computer processor to operate a crop growth model which includes inputs from the data input and provides data output; during a seeding operation for application of seeds to the soil bed operating a soil coulter for soil penetration by rolling the soil coulter along the soil bed, the soil coulter comprising: a disk having a peripheral edge and two spaced side walls extending from the peripheral edge toward a center of the disk; a hub mounting the disk for rotation about an axis of the disk so that the peripheral edge rotates in the soil and the coulter penetrates the soil to a depth below a surface of the soil; a detector responsive to electromagnetic radiation from material adjacent the coulter disk for emitting a detector signal related to the radiation, the sensor being mounted at one side wall of the disk for rotation therewith; the detector being mounted on the disk at a position thereon adjacent the edge such that the sensor as the disk rotates is located above the surface of the soil during a first part of its rotation and is located below the surface during a second part of its rotation; obtaining from said detector signal soil constituent data related to constituents of the soil bed during said seeding operation and inputting said soil constituent data into the data input of the computer processor; obtaining from said detector signal data related to a temperature of the soil bed during said seeding operation and inputting said temperature data into the data input of the computer processor; during a growing season inputting into the data input of the computer processor data related to weather conditions existing during the growing season at the soil bed; using the crop growth model to generate from the soil constituent data, the temperature data and the data related to weather conditions to generate output data indicative of a state of growth of the crop during the growing season; and using the output data to apply at least one crop growth remediation product to the crop and/or the soil bed during the growth season.
2. The method according to claim 1 wherein the weather conditions are obtained from weather station data.
3. The method according to claim 1 wherein the weather conditions are obtained from local weather detectors.
4. The method according to claim 1 wherein further input data relates to historical crop yield data.
5. The method according to claim 1 wherein further input data relates visual images of a crop taken for example by satellite or drone.
6. The method according to claim 1 wherein the coulter carries a temperature sensor arranged to engage the soil as the coulter rotates in the soil bed.
7. The method according to claim 1 wherein other inputs include one or more of: Historical weather data; Site specific historical yield data.
8. The method according to claim 1 wherein there is provided a control system responsive to the signal to calculate the depth of penetration of the coulter in the soil and an assembly for changing a depth of application of the seeds to the soil bed depending on the measured depth.
9. The method according to claim 8 wherein a downward pressure on the disk is changed so as change a depth of penetration of the coulter disk and hence a depth of the application of the seeds.
10. The method according to claim 1 wherein said remediation product comprises any one of: Water; Fertilizer; Chemical, such as fungicide, herbicide, insecticide.
11. The method according to claim 1 wherein said soil constituents comprise one or more of N, P, K, soil moisture, organic matter, pH, Electrical Conductivity (EC), sand and clay.
12. The method according to claim 1 wherein the sensor is arranged to provide data relating to the characteristics of the soil when the sensor is below the soil surface and the controller calculates the maximum depth of penetration of the coulter at the sensor so as to determine by the sensor characteristics of the soil at calculated depths.
13. The method according to claim 12 wherein the sensor feeds the data to an analysis system to obtain an analysis of the characteristics of the soil from the surface to the maximum depth as the depth of the sensor varies as the sensor rotates with the coulter.
14. The method according to claim 1 wherein the sensor detects a reflected beam.
15. The method according to claim 1 wherein the controller is adapted to calculate from the signal a first time when the sensor enters below the soil surface and a second time when the sensor departs the soil surface and to calculate from the first and second times the depth of penetration of the coulter in the soil.
16. The method according to claim 1 wherein the detector system is responsive to both reflected electromagnetic radiation from a source inside the coulter disk and to transmitted electromagnetic radiation from a source outside the coulter disk.
17. The method according to claim 16 wherein the coulter disk carries a first detector responsive to electromagnetic radiation from a source inside the coulter disk and a second detector responsive to transmitted electromagnetic radiation from a source outside the coulter disk.
18. The method according to claim 16 wherein the first detector is mounted at a first transparent window and the second detector is mounted at a second transparent window.
19. The method according to claim 1 wherein the detector includes a component mounted within the coulter disk and a transparent window at the side wall so as to receive electromagnetic radiation passing through the transparent window in the side wall of the coulter disk.
20. The method according to claim 1 there is provided an apparatus for applying a slurry to soil comprising: a vehicle for movement across the soil; a discharge duct carried on the vehicle for movement with the coulter disk arranged to apply the slurry onto the coulter disk for incorporation into the soil; the detector system being arranged such that the detector receives electromagnetic radiation from the slurry at a part of the rotation of the coulter disk.
21. The method according to claim 1 there is provided a source of electromagnetic radiation mounted outside the coulter disk for transmitting the electromagnetic radiation inwardly to said detector.
22. The method according to claim 1 wherein the coulter disk and the detector are arranged such that the detector as it rotates with the coulter disk receives electromagnetic radiation from air above a top of the standing crop, from within the standing crop and from below the growing medium and generates signals responsive thereto and there is provided a control system for receiving and analyzing the signals.
23. The method according to claim 1 there is provided an apparatus for collecting and mixing silage comprising: a vehicle for movement between a stack of silage and an animal feed location; the vehicle having a cutting head for cutting into the stack so as to extract a portion of the stack for transportation, the cutting head being mounted on the vehicle for movement relative to the stack in a cutting action; a conveyor for conveying the cut and extracted portion; a coulter disk carried on the cutting head for movement therewith in the cutting action; the coulter disk being mounted so as engage into the silage prior to or with the cutting action so that the coulter disk cuts into a surface of the silage to be cut; the coulter disk having two side surfaces and an axle frame or hub mounting the coulter disk for rotation such that the coulter disk rotates as it moves along the silage with the cutting head; a source of electromagnetic radiation mounted within the coulter disk; a detector responsive to electromagnetic radiation from material adjacent the coulter disk for emitting a signal related thereto, the detector being mounted at one side wall of the disk for rotation therewith; the detector being mounted on the disk at a position thereon adjacent the edge; and a control system for measuring constituents in the silage from electromagnetic radiation reflected from the silage.
24. The method according to claim 1 there is provided an apparatus for separating products comprising: a separation system for separating a first product from one or more others; a conveyor for conveying the first product in a layer on the conveyor; a coulter disk at the conveyor for rolling on the conveyor; the coulter disk being mounted so as engage into the layer on the conveyor so that the coulter disk cuts into a surface of the layer; the coulter disk having two side surfaces and an axle frame mounting the coulter disk for rotation such that the coulter disk rolls on the conveyor; a source of electromagnetic radiation mounted within the coulter disk; a detector responsive to electromagnetic radiation from material adjacent the coulter disk for emitting a signal related thereto, the detector being mounted at one side wall of the disk for rotation therewith; the detector being mounted on the disk at a position thereon adjacent the edge; and a control system for measuring constituents in the layer from electromagnetic radiation reflected from the material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0143] One embodiment of the invention will now be described in conjunction with the accompanying drawings in which:
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[0153] In the drawings like characters of reference indicate corresponding parts in the different figures.
DETAILED DESCRIPTION
[0154] Turning firstly to the embodiment shown in
[0155] The arrangement herein uses basically the construction and arrangement as shown and described in the above prior patent, the disclosure of which is incorporated by reference or can be considered for additional disclosure of relevant matter.
[0156] The apparatus thus includes a source 19 mounted in a window 20 in one side wall 14 of the disk so that the source 19 is mounted on the disk for rotation therewith.
[0157] The sensor can comprise a detector 21 responsive to a reflected light beam from a source 19 or it can comprise a receptor such as an optical fiber which receives the light and transmits it to a remote detector.
[0158] The sensor is mounted on the disk at a position thereon adjacent the edge such that the sensor as the disk rotates is located above the surface of the soil during a first part of its rotation and is located below the surface during a second part of its rotation. The placement of the window as close as structurally possible to the edge or rim 12 is desirable to obtain maximum time of the detector within the soil
[0159] The sensor is adapted to issue a signal which changes in response to whether the sensor is above or below the soil surface. That is the reflected beam is significantly different in character depending on whether it is reflected from the soil or whether there is no external material to reflect when the window is above the surface.
[0160] A controller 25 is provided which is responsive to the signal and is adapted to calculate from the changes in the signal due to its position relative to the surface using a program 27 a first time stamp when the sensor enters below the soil surface and a second time stamp when the sensor departs the soil surface. Regardless of the rate of rotation of the disk, the proportion of time below the surface relative to the proportion above the surface allows the calculation by simple geometry from the first and second time stamps the depth of penetration of the coulter in the soil.
[0161] In
[0162] The system also includes an assembly 28 shown in
[0163] As explained above, the controller can calculate the maximum depth of penetration 171 of the coulter at the peripheral edge 12 so as to calculate a depth of a furrow formed by the peripheral edge. This can be used with a seeding component 31 including a seed supply 32 and a supply tube 33 for supplying seeds into the furrow formed by the peripheral edge of the disk. In this case the depth control pressure system 28 acts for changing a downward pressure on the disk so as change the depth of the furrow and hence the depth of the seeding action.
[0164] In
[0165] In one mode of calculation, the controller 25 is adapted to calculate from the signal a first time when the sensor enters below the soil surface and a second time when the sensor departs the soil surface and to calculate from the first and second times the depth of penetration of the coulter in the soil.
[0166] In the operation shown in
[0167] However in arrangements not shown the operation can be related to other operations such as harvesting of underground crops such as root crops or other ground operation such as tillage equipment or excavation equipment.
[0168] In addition to the analysis of the constituents of the soil, there is also provided a temperature sensor 40 mounted on the coulter disk at a suitable location adjacent the edge so that it detects the soil temperature on an ongoing basis as the coulter moves across the ground.
[0169] As shown in
[0170] providing a computer processor 50 having an input 51 and output 52 for data which uses a crop growth model 53 which includes inputs from the data input and provides data output.
[0171] During a seeding operation of the seeder in
[0172] The soil coulter is of the construction described above and includes the disk having a peripheral edge and two spaced side walls extending from the peripheral edge toward a center of the disk, a hub mounting the disk for rotation about an axis of the disk so that the peripheral edge rotates in the soil and the coulter penetrates the soil to a depth below a surface of the soil, a detector responsive to electromagnetic radiation from material adjacent the coulter disk for emitting a detector signal related to the radiation, the sensor being mounted at one side wall of the disk for rotation therewith. The detector is mounted on the disk at a position thereon adjacent the edge such that the sensor as the disk rotates is located above the surface of the soil during a first part of its rotation and is located below the surface during a second part of its rotation.
[0173] The system operates to obtain from the detector signal soil constituent data related to constituents of the soil bed during said seeding operation and operates for inputting the soil constituent data into the data input of the computer processor. The detector system includes the temperature sensor 40 which obtains signal data related to a temperature of the soil bed during said seeding operation and inputs the temperature data into the data input of the computer processor.
[0174] The seeder system also is arranged to enter into the input 51 data related to the following:
[0175] a the GPS location of the data obtained concerning the soil parameters obtained;
[0176] b the date and time of the seeding operation;
[0177] c the depth of the seeding operation;
[0178] d various information relating toe the seeding operation including seed types, seed parameters, rate of seeding etc.
[0179] A manual input is provided to allow the farmer to enter other information and data related to the seeding operation, the conditions of the ground and other mattes where such information is required for the model concerned.
[0180] The input also is arranged to enter during the growing season into the data input of the computer processor data related to weather conditions existing during the growing season at the soil bed, either obtained by commercially available weather data or by local sensors at the specific fields or areas where the seeding occurs.
[0181] The system operates using the crop growth model to generate from the soil constituent data, the temperature data and the data related to weather conditions output data indicative of a state of growth of the crop during the growing season. The model also provides an output indicative of data to apply at least one crop growth remediation product to the crop and/or the soil bed during the growth season.
[0182] Turning mow to
[0183] In this case as shown in
[0184] The vehicle is arranged to be driven by a drive system 421 at a variable ground speed operated by the control system 25. The slurry pump 45 is arranged to be driven by the control system 25 at a rate at least partly dependent on an analysis of the slurry obtained by the detector system. In this way the rate of application of nutrients measured by the sensing system to the ground can be detected and modified by measuring the constituents in the slurry in real time and controlling the ground speed and/or the pump speed to apply only a permitted maximum or desired rate of nutrient application per unit area of land. The analysis and rate control can be related to any measured characteristic but preferably is related to NPK content and/or total solids content.
[0185] Turning now to
[0186] Typically a single disk is provided even when the machine includes separate cutting headers, but in some cases each header may include its own disk.
[0187] As set out above, the coulter disk 10 has two side surfaces 13, 14 and an axle frame or hub 15 mounting the coulter disk for rotation such that the coulter disk rotates as it passes along the growing medium and cuts into the ground in front of the header. At least one detector system is provided comprising an electromagnetic radiation detector, a source of electromagnetic radiation as described before mounted at one side surface of the coulter disk and rotates with the coulter disk where the detector receives electromagnetic radiation after interaction with the material outside the window 20. As shown in
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[0189] In one example the product is a source of manure and the apparatus operates for manufacturing manure cake from the source by extracting liquid.
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[0191] The coulter disk 10 is carried on the cutting head 74 for movement therewith in the cutting action and as shown in
[0192] The vehicle can be arranged for mixing the conveyed and cut silage material on the conveyor 78 or at the hopper 79 with an additional material from a supply 80 wherein an amount of the additional material is controlled by a feed system 81 in response to the measured constituents or characteristics.
[0193] Since various modifications can be made in my invention as herein above described, and many apparently widely different embodiments of same made within the spirit and scope of the claims without department from such spirit and scope, it is intended that all matter contained in the accompanying specification shall be interpreted as illustrative only and not in a limiting sense.