GRAPHICAL YIELD MONITOR STATIC (PREVIOUS) DATA DISPLAY ON IN-CAB DISPLAY
20170112061 ยท 2017-04-27
Assignee
Inventors
Cpc classification
G06F2203/04804
PHYSICS
G06F3/048
PHYSICS
A01D41/127
HUMAN NECESSITIES
International classification
Abstract
A yield monitoring system is provided for an agricultural harvester. The yield monitoring system has an in-cab display and at least one configurable user defined window operable to display at least two previously collected parameters simultaneously and comparatively in graphical format. The at least two previously collected parameters include previously collected data from at least one yield monitoring sensor or vehicle sensor. The in-cab display may have a menu allowing the choice of paired data sources to be viewed simultaneously and comparatively. Data sources may include quantity of crop yielded, moisture content of crop yielded, rate of flow of crop through the agricultural harvester, protein content of crop yielded, ground speed, speed of operation of the grain elevator, and height of the header above the ground.
Claims
1. A yield monitoring system for an agricultural harvester, comprising: an in-cab display; and at least one configurable user defined window operable to display at least two previously collected parameters simultaneously and comparatively in graphical format, said at least two previously collected parameters including previously collected data from at least one yield monitoring sensor or vehicle sensor.
2. The yield monitoring system of claim 1, wherein: said previously collected data includes at least one of: quantity of crop yielded; moisture content of crop yielded; rate of flow of crop through the agricultural harvester; protein content of crop yielded; ground speed; speed of operation of a grain elevator; and height of a header above the ground.
3. The yield monitoring system of claim 1, wherein: said at least two previously collected parameters being further correlated by at least one source indicia, said at least one source indicia being displayed by said at least one configurable user defined window.
4. The yield monitoring system of claim 3, wherein: said at least one source indicia includes at least one of: a field from which said previously collected data was collected; an area within said field from which said previously collected data was collected; a time and date said previously collected data was collected; a global positioning system location where said previously collected data was collected; and a variety of crop harvested when said previously collected data was collected.
5. The yield monitoring system of claim 1, wherein: said at least one configurable user defined window being operable to be placed or overlaid over at least one of a map display area, a configurable screen area, and a graphical operator interface area of said in-cab display.
6. The yield monitoring system of claim 5, wherein: said map display area, configurable screen area, and graphical operator interface area of said in-cab display remaining visible in ghost outline where overlaid by said user defined window.
7. The yield monitoring system of claim 1, wherein: said at least one configurable user defined window further having a menu, said menu allowing the choice of paired previously collected data sources to be viewed simultaneously and comparatively in graphical format and in real time, including at least one of: crop moisture content by percentage and crop yield in bushels per acre; crop moisture content by percentage and crop rate of flow; header height and crop yield in bushels per acre; header height and crop rate of flow; vehicle speed and crop yield in bushels per acre; vehicle speed and crop rate of flow; grain elevator speed and crop yield in bushels per acre; and grain elevator speed and crop rate of flow.
8. The yield monitoring system of claim 1, further comprising: an external connected module wirelessly connected with said yield monitoring system, said external connected module being operable to store or compile said previously collected data from said at least one yield monitoring sensor or vehicle sensor, and to provide said previously collected data to said in-cab display for use in said display of said at least two previously collected parameters simultaneously and comparatively in graphical format.
9. The yield monitoring system of claim 1, wherein: said yield monitoring system further allowing the use of a widget as said configurable user defined window.
10. An in-cab display of a yield monitoring system for an agricultural harvester, comprising: at least one configurable user defined window operable to display at least two previously collected parameters simultaneously and comparatively in graphical format, said at least two previously collected parameters including previously collected data from at least one yield monitoring sensor or vehicle sensor.
11. The in-cab display of claim 10, wherein: said previously collected data includes at least one of: quantity of crop yielded; moisture content of crop yielded; rate of flow of crop through the agricultural harvester; protein content of crop yielded; ground speed; speed of operation of a grain elevator; and height of a header above the ground.
12. The in-cab display of claim 10, wherein: said at least two previously collected parameters being further correlated by at least one source indicia, said at least one source indicia being displayed by said at least one configurable user defined window.
13. The in-cab display of claim 12, wherein: said at least one source indicia includes at least one of: a field from which said previously collected data was collected; an area within said field from which said previously collected data was collected; a time and date said previously collected data was collected; a global positioning system location where said previously collected data was collected; and a variety of crop harvested when said previously collected data was collected.
14. The in-cab display of claim 10, wherein: said at least one configurable user defined window being operable to be placed or overlaid over at least one of a map display area, a configurable screen area, and a graphical operator interface area of said in-cab display.
15. The in-cab display of claim 10, wherein: said at least one configurable user defined window further having a menu, said menu allowing the choice of paired previously collected data sources to be viewed simultaneously and comparatively in graphical format and in real time, including at least one of: crop moisture content by percentage and crop yield in bushels per acre; crop moisture content by percentage and crop rate of flow; header height and crop yield in bushels per acre; header height and crop rate of flow; vehicle speed and crop yield in bushels per acre; vehicle speed and crop rate of flow; grain elevator speed and crop yield in bushels per acre; and grain elevator speed and crop rate of flow.
16. The in-cab display of claim 10, wherein: said yield monitoring system further allowing the use of a widget as said configurable user defined window.
17. A method of monitoring yield of an agricultural harvester, comprising the steps of: providing an in-cab display; and viewing at least two previously collected parameters simultaneously and comparatively in graphical format using at least one configurable user defined window, said at least two previously collected parameters including previously collected data from at least one yield monitoring sensor or vehicle sensor.
18. The method of claim 17, further comprising the additional steps of: correlating said at least two previously collected parameters using at least one source indicia; and displaying said at least one source indicia within said at least one configurable user defined window.
19. The method of claim 17, further comprising the additional steps of: providing a menu within said at least one configurable user defined window; allowing the choice of paired previously collected data sources to be viewed simultaneously and comparatively in graphical format using said menu, said previously collected paired data sources including at least one of: crop moisture content by percentage and crop yield in bushels per acre; crop moisture content by percentage and crop rate of flow; header height and crop yield in bushels per acre; header height and crop rate of flow; vehicle speed and crop yield in bushels per acre; vehicle speed and crop rate of flow; grain elevator speed and crop yield in bushels per acre; and grain elevator speed and crop rate of flow.
20. The method of claim 17, further comprising the additional step of: allowing the use of a widget as said configurable user defined window.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The above-mentioned and other features and advantages of this invention, and the manner of attaining them, will become more apparent and the invention will be better understood by reference to the following description of an embodiment of the invention taken in conjunction with the accompanying drawings, wherein:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025] Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set out herein illustrate embodiments of the invention, and such exemplifications are not to be construed as limiting the scope of the invention in any manner.
DETAILED DESCRIPTION OF THE INVENTION
[0026] Referring now to the drawings, and more particularly to
[0027] Front wheels 14 are larger flotation type wheels, and rear wheels 16 are smaller steerable wheels. Motive force is selectively applied to front wheels 14 through a power plant in the form of a diesel engine 32 and a transmission (not shown). Although combine 10 is shown as including wheels, is also to be understood that combine 10 may include tracks, such as full tracks or halftracks. Header 18 is mounted to the front of combine 10 and includes a cutter bar 34 for severing crops from a field during forward motion of combine 10. A rotatable reel 36 feeds the crop into header 18, and an auger 38 feeds the severed crop laterally inwardly from each side toward feeder housing 20. Feeder housing 20 conveys the cut crop to threshing and separating system 24.
[0028] Threshing and separating system 24 may include a rotor 40 and a perforated concave 42. The cut crops are threshed and separated by the rotation of rotor 40 within concave 42, and larger elements, such as stalks, leaves and the like are discharged from the rear of combine 10. Smaller elements of crop material including grain and non-grain crop material, including particles lighter than grain, such as chaff, dust and straw, are discharged through perforations of concave 42. Grain which has been separated by the rotor 40 and perforated concaves 42 falls onto a main grain pan 44 and is conveyed toward grain cleaning system 26. Grain cleaning system 26 may include an optional pre-cleaning sieve 46, an upper sieve 48 (also known as a chaffer sieve), a lower sieve 50 (also known as a shoe sieve), and a cleaning fan 52. Grain on sieves 46, 48 and 50 is subjected to a cleaning action by fan 52 which provides an airflow through the sieves to remove chaff and other impurities from the grain by making this material airborne for discharge from straw hood 54 of combine 10. Main grain pan 44 and pre-cleaning sieve 46 oscillate or reciprocate to transport the grain and finer non-grain crop material to the upper surface of upper sieve 48. Upper sieve 48 and lower sieve 50 are vertically arranged relative to each other, and likewise oscillate in a fore-to-aft manner to spread the grain across sieves 48, 50, while permitting the passage of cleaned grain by gravity through the openings of sieves 48, 50.
[0029] Clean grain falls to a clean grain auger 56 positioned crosswise below and in front of lower sieve 50. Clean grain auger 56 receives clean grain from each sieve 48, 50 and from bottom pan 58 of grain cleaning system 26. Clean grain auger 56 conveys the clean grain laterally to a generally vertically arranged grain elevator 60 for transport to grain tank 28. Tailings from grain cleaning system 26 fall to a tailings auger on 62. The tailings are transported via tailings auger 64 and return auger 66 to the upstream end of grain cleaning system 26 for repeated cleaning action. A pair of grain tank augers 68 at the bottom of grain tank 28 convey the clean grain laterally within grain tank 28 to unloading auger 30 for discharge from combine 10. The non-grain crop material proceeds through a residue handling system 70. Residue handling system 70 may include a chopper, counter knives, a windrow door and a residue spreader.
[0030] The yield monitoring system 78 shown in
[0031]
[0032]
[0033] Furthermore, the UDW's 110 allow the user to configure a graphical representation 112 of multiple parameters from data previously collected by the yield monitoring system 78 and/or from the agricultural harvester 10 in relationship to each other. Parameters from data previously collected by the yield monitoring system 78 and/or from the agricultural harvester 10 that may be shown in relationship to each other may include, but are not limited to: [0034] Crop moisture content by percentage and crop yield in bushels per acre. This shows the effect of moisture on yield. [0035] Crop moisture content by percentage and crop rate of flow. This shows the effect of moisture on crop flow. [0036] Header height and crop yield in bushels per acre. This shows the effect of header height on yield. [0037] Header height and crop rate of flow. This shows the effect of header height on crop flow. [0038] Vehicle speed and crop yield in bushels per acre. This shows the effect of the speed of the agricultural harvester on yield. [0039] Vehicle speed and crop rate of flow. This shows the effect of the speed of the agricultural harvester on crop flow. [0040] Grain elevator speed and crop yield in bushels per acre. This shows the effect of the speed of the grain elevator on yield. [0041] Grain elevator speed and crop rate of flow. This shows the effect of the speed of the grain elevator on crop flow.
[0042] The previously collected data may further be identified by source indicia 117 such as the field from which it was collected 117A, the area 117B within the field from which it was collected, the time and date 117C it was collected, the global positioning system location 117D where it was collected, and the variety of crop 117E being collected, as non-limiting examples.
[0043] In the example shown in
[0044] The choice of parameters and source is made available to a user by way of a previously collected data selection menu 114, which may be in the form of a drop-down type menu (not shown) or other expandable selection feature. Similarly, the choice of format of the parameters is also made available to the user by way of the previously collected data selection menu 114, including the type of graph used such as a line chart, column chart, bar chart, area chart, pie chart, scatter chart, or combination chart, as well as line format, color, fill, use of markers, use and format of axis, markers, and legends. Further, the graphical representation 112 of multiple previously collected parameters is shown plotted against time, although the multiple previously collected parameters may also be plotted against area harvested.
[0045] The graphical representation 112 may provide the ability to select specific points along the chart for specific comparison of the two parameters at that point, using a cursor or cross hairs manipulatable by the user. Additionally, the graphical representation 112 may provide the user with the ability to zoom in or out in order to see specific sections of data. In this way, a proportionate relationship between the previously collected parameters may readily be visualized, and past and present performance of the agricultural harvester 10 analyzed and compared while still in the operator cab 22 of the agricultural harvester 10.
[0046] Turning now to
[0047] Turning now to
[0048] Turning now to
[0049] Each of the arrangements of the embodiment of a yield monitoring system in-cab display 80 shown in
[0050] As noted previously, data gathered by the yield monitoring system 78 may be stored and compiled entirely within the yield monitoring system 78, or may be stored and/or compiled partly or jointly by the yield monitoring system 78 and the externally connected module 116. Furthermore, this data may be recalled to the yield monitoring system in-cab display 80 of the yield monitoring system 78 at any time, either from the memory of the yield monitoring system 78 itself, or from the memory of the externally connected module 116. The operator may recall data from among multiple parameters of previously collected data from the yield monitoring system 78 and from the agricultural vehicle 10 at any time, to be rendered graphically and displayed simultaneously and comparatively on the same graph or in the same window, so that the past performance of the agricultural vehicle 10 may be used as a reference against current performance. This may be done in order to identify ongoing trends over time, and in order to optimize vehicle settings. Further, graphs and reports can be saved to the internal memory of the yield monitoring system 78, the yield monitoring system in-cab display 80, and/or the externally connected module 116, for later usage or for export to further external devices or to a back office machine.
[0051] While this invention has been described with respect to at least one embodiment, the present invention can be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains and which fall within the limits of the appended claims.