SYSTEM FOR MEASURING MULTIPLE SOIL PROPERTIES USING NARROW PROFILE SENSOR CONFIGURATION
20170067869 ยท 2017-03-09
Inventors
- Eric Lund (Salina, KS, US)
- Chase Maxton (Salina, KS, US)
- Paul Drummond (Minneapolis, KS, US)
- Kyle Jensen (Salina, KS, US)
Cpc classification
A01B49/04
HUMAN NECESSITIES
International classification
A01B49/04
HUMAN NECESSITIES
Abstract
A system for measuring soil properties on-the-go using a narrow profile sensor unit is provided on an implement for traversing a field. The sensor unit includes a front disk/coulter arranged to open a slot in the soil, a runner assembly arranged to follow behind the front disk/coulter for sliding contact with the soil in the slot, and a rotating disk/spoked wheel arranged to follow behind the runner assembly to close the slot. The front disk or coulter serves as a first electrode of an electrode array, the runner assembly has second and third electrodes attached thereto, and the rotating disk/spoked wheel serves as a fourth electrode. The electrode array can be used to measure soil electrical conductivity at multiple depths and to measure soil moisture. An optical window and pH sensor can also be incorporated into the runner assembly to measure soil reflectance and soil pH.
Claims
1. A system for measuring at least one property of soil in a field, comprising: a first soil engaging component arranged to open a slot in the soil, said first soil engaging component comprising a first electrode of an electrode array for measuring soil electrical conductivity; a second soil engaging component comprising a second electrode of said electrode array arranged to follow behind said first soil engaging component to contact soil in said slot; a third soil engaging component comprising a third electrode of said electrode array arranged to follow behind said second soil engaging component to contact soil in said slot; and a fourth soil engaging component arranged to follow behind said third soil engaging component to contact soil in or adjacent to said slot, said fourth soil engaging component comprising a fourth electrode of said electrode array.
2. The system according to claim 1, wherein said first soil engaging component is a rotating disk or coulter.
3. The system according to claim 1, wherein said second and third electrodes are attached to a runner assembly and arranged for sliding contact with the soil in said slot.
4. The system according to claim 1, wherein said fourth soil engaging component is a rotating disk or a spoked wheel arranged to follow behind said third soil engaging component to close said slot.
5. The system according to claim 1, wherein said electrode array is a Wenner or Schlumberger array with said first and fourth electrodes connected to a source of electrical current and said second and third electrodes connected to a voltage measuring circuit.
6. The system according to claim 1, further comprising an optical window located inline with said soil engaging components, and a sensor for measuring optical reflectance of the soil through said window.
7. The system according to claim 1, further comprising a first signal processing circuit for using said electrode array as a Wenner or Schlumberger array for measuring soil electrical conductivity at a relatively deep depth, and a second signal processing circuit for using said electrode array as a dipole array for measuring soil electrical conductivity at a relatively shallow depth.
8. The system according to claim 7, further comprising a phase lock loop or switching circuit associated with said first and second signal processing circuits to allow said signal processing circuits to simultaneously measure soil electrical conductivity at said deep and shallow depths using said electrode array.
9. The system according to claim 8, further comprising a micro controller, computer or data logger for converting, processing and storing sensor data received from said signal processing circuits.
10. The system according to claim 1, further comprising a third signal processing circuit connected to said electrode array for using at least one of said electrodes to measure soil moisture.
11. The system according to claim 10, wherein said third signal processing circuit comprises a capacitance circuit for generating a soil moisture signal.
12. The system according to claim 10, further comprising a first signal processing circuit for using said electrical array for measuring soil electrical conductivity, and a phase lock loop or switching circuit associated with said first and third signal processing circuits to allow said signal processing circuits to measure both soil electrical conductivity and soil moisture using said electrode array.
13. The system according to claim 12, further comprising a micro controller, computer or data logger for converting, processing and storing sensor data received from said signal processing circuits.
14. The system according to claim 1, further comprising a pH sensor attached to said runner, said pH sensor comprising at least one electrode arranged to be lowered into contact with the soil in the slot to measure soil pH.
15. A system for measuring pH of soil in a field, comprising: a narrow profile runner arranged to open a slot in the soil; and a pH sensor attached to said runner, said pH sensor comprising at least one ion-selective electrode and an actuator arranged to lower said electrode into contact with the soil in the slot to measure pH of the soil.
16. The system according to claim 15, wherein said actuator comprises a linear actuator arranged to lower said electrode into contact with a bottom surface of the slot to measure pH of the soil in situ.
17. The system according to claim 15, further comprising an optical window in a bottom surface of said runner for measuring optical reflectance of the soil through said window.
18. The system according to claim 17, further comprising at least one electrode arranged on a bottom side of said runner for sliding contact with the soil in said slot for measuring soil electrical conductivity or moisture.
19. The system according to claim 15, further comprising at least one electrode arranged on a bottom side of said runner for sliding contact with the soil in said slot for measuring soil electrical conductivity or moisture.
20. A row crop implement, comprising: a plurality of row units for tilling, fertilizing or planting a plurality of parallel rows in soil, said plurality of row units comprising two adjacent row units; and a narrow profile sensor unit arranged between said two adjacent row units, said sensor unit comprising a front disk or coulter arranged to open a slot in the soil, a runner assembly arranged to follow behind said front disk or coulter for sliding contact with the soil in said slot, and a rotating disk or a spoked wheel arranged to follow behind said runner to close said slot.
21. The row crop implement according to claim 20, wherein said plurality of row units and said sensor unit are mounted to a tool bar.
22. The row crop implement according to claim 20, wherein said front disk or coulter comprises a first electrode of an electrode array for measuring soil electrical conductivity, said runner assembly comprises second and third electrodes of said electrode array, and said rotating disk or spoked wheel comprises a fourth electrode of said electrode array.
23. The row crop implement according to claim 22, wherein said electrode array is a Wenner or Schlumberger array with said first and fourth electrodes connected to a source of electrical current and said second and third electrodes connected to a voltage measuring circuit.
24. The row crop implement according to claim 22, further comprising an optical window located in a runner of said runner assembly inline with said electrode array in a direction of travel, and a sensor for measuring optical reflectance of the soil through said optical window.
25. The row crop implement according to claim 22, further comprising a first signal processing circuit for using said electrode array as a Wenner or Schlumberger array for measuring soil electrical conductivity at a relatively deep depth, and a second signal processing circuit for using said electrode array as a dipole array for measuring soil electrical conductivity at a relatively shallow depth.
26. The row crop implement according to claim 25, further comprising a phase lock loop or switching circuit associated with said first and second signal processing circuits to allow said signal processing circuits to measure soil electrical conductivity at said deep and shallow depths using said electrode array.
27. The row crop implement according to claim 22, further comprising a third signal processing circuit connected to said electrode array for using at least one of said electrodes to measure soil moisture.
28. The row crop implement according to claim 27, wherein said third signal processing circuit comprises a capacitance circuit for generating a soil moisture signal.
29. The row crop implement according to claim 27, further comprising a first signal processing circuit for using said electrode array to measure soil electrical conductivity, and a phase lock loop or switching circuit associated with said first and third signal processing circuits to allow said signal processing circuits to measure both soil electrical conductivity and soil moisture using said electrode array.
30. The row crop implement according to claim 20, further comprising an optical window located in a bottom surface of a runner of said runner assembly, and a sensor for measuring optical reflectance of the soil through said optical window.
31. The row crop implement according to claim 30, further comprising a pair of protective fins positioned on right and left sides of said optical window and protruding from said runner below a lower surface of said optical window for protecting the window during use.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The present invention will become more clearly appreciated as the disclosure of the present invention is made with reference to the accompanying drawings. In the drawings:
[0023]
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[0035]
DETAILED DESCRIPTION OF THE INVENTION
[0036] A method and system for measuring multiple soil properties according to the present invention will now be described in detail with reference to
[0037]
[0038] The planter row units 12, 13 each have a row clearing assembly 14 for moving crop residue and debris to the sides of the row, a furrow opener assembly 15 with gauge wheels 16 for opening a furrow in the soil, a seed hopper 17, a seed metering mechanism 18 for dropping seeds through a seed tube into the furrow, and a furrow closing assembly 19. The row units 12, 13 are attached to a planter tool bar 20 by parallel linkage assemblies 21. Springs 22 are attached to the parallel linkage assemblies 21 to transfer additional down pressure from the toolbar 20 to the row units 12, 13.
[0039] The narrow profile sensor unit 11 is attached to the same tool bar 20 as the conventional row units 12, 13 using a similar parallel linkage assembly 23 and springs 24 for transferring additional down pressure from the toolbar 20 to the sensor unit 11. This allows the implement 10 to be used for its original purpose of planting, tilling or fertilizing, as well as for measuring various properties of the soil in the field. The soil property measurements using the narrow profile sensor unit 11 can thus be made in conjunction with a farming pass already being made in the field.
[0040] Alternatively, the narrow profile sensor unit 11 can be installed on a light-duty frame for pulling with an ATV-type vehicle in a separate pass over the field. Conventional systems for measuring soil conductivity typically have each electrode of a four electrode array cutting its own path in the soil. The in-line design of the narrow profile sensor unit 11 of the present invention results in a lower draft requirement as compared to such conventional systems.
[0041] The narrow profile sensor unit 11 includes a first soil engaging component 25, a second soil engaging component 26, a third soil engaging component 27, and a fourth soil engaging component 28. The first, second, third and fourth soil engaging components 25, 26, 27, 28 are arranged substantially in-line with each other so that the second, third and fourth soil engaging components 26, 27, 28 follow directly behind the first soil engaging component 25 during forward movement of the implement through the field. By using soil engaging components 25-28 that are substantially aligned with each other in a direction of travel, the draft requirement for the sensor unit 11 is reduced and the sensor unit 11 can be made more compact.
[0042] The first soil engaging component 25 is a rotating disk or coulter arranged to open a slot in the soil. The second and third soil engaging components 26, 27 are attached to the bottom of a runner 29 arranged to follow behind the first soil engaging component 25 for sliding contact with the soil in the slot created by the first soil engaging component 25. The fourth soil engaging component 28 is a rotating disk or spoked wheel arranged to follow behind the runner 26 to close the slot.
[0043] In the embodiment shown in
[0044] The electrode array can be a Wenner or Schlumberger array with the first and fourth electrodes 25, 28 connected to a source of electrical current to inject electrical current into the soil, and the second and third electrodes 26, 27 connected to a voltage measuring circuit to measure the voltage drop in the injected electrical current from the first and fourth electrodes 25, 28.
[0045] The narrow profile sensor unit 11 can be equipped with other sensors for measuring soil properties. As shown in
[0046] As shown in
[0047] A phase lock loop or a switching circuit 38 is provided between the electrodes 25-28 and the first, second and third signal processing circuits 35-37 to allow the signal processing circuits 35-37 to measure soil electrical conductivity at both the deep and shallow depths, as well as soil moisture, using the same electrode array 25-28. For example, the phase lock loop can be used to differentiate the four electrode array signal from the dipole signal, or the switching circuit can be used to rapidly switch between the signal processing circuits 35-37. The signal processing circuits 35-37 are connected to a micro controller, computer or data logger 39 to convert, process and store the sensor data received from the signal processing circuits 35-37.
[0048]
[0049] A pH sensor 46 having at least one ion selective electrode 47 is attached to a rear portion of the runner 40 behind the conductivity sensor module 44. The pH sensor 46 in the illustrated embodiment includes a pair of ion-selective electrodes 47, an electrode holder 48, and a linear actuator 49 for lowering the electrodes 47 into contact with the soil in the bottom of the slot opened by the front portion 41 of the runner 40.
[0050] In use, the pH sensor 46 can be lowered into contact with the soil in the bottom of the slot when the implement is stopped. The pH sensor 46 collects a pH measurement of the soil in situ. The runner 40 can also be used to collect soil reflectance data using the optical sensor module 43, and to collect soil electrical conductivity data or soil moisture data using the conductivity sensor module 44. The soil reflectance measurements and soil electrical conductivity measurements are collected on-the-go while the implement is traversing the field, while the pH measurements are collected when the implement is stopped at predetermined locations in the field.
[0051]
[0052] The first soil engaging component 51 shown in
[0053] The fourth soil engaging component 54 in the illustrated embodiment is a pair of spoked wheels 59 arranged to follow behind the runner 57 to close the slot.
[0054] In the embodiment shown in
[0055] The narrow profile sensor unit 50 is also equipped with other sensors for measuring soil properties. The runner 57 includes an optical window 64 in the lower soil engaging surface. A sensor for measuring optical reflectance of the soil through the optical window 64 is contained within the runner 57. A pair of protective fins 65 are positioned on right and left sides of the optical window 64 and protrude from the runner 57 below a lower surface of the optical window 64 for protecting the window 64 during use.
[0056]
[0057] While the invention has been described in connection with specific embodiments thereof, it is to be understood that this is by way of illustration and not of limitation, and the scope of the appended claims should be construed as broadly as the prior art will permit.