MACHINE CONTROL SYSTEM AND METHOD WITH ROLL-UP REPORTING
20230146942 · 2023-05-11
Inventors
Cpc classification
G06Q10/063114
PHYSICS
G06Q10/0639
PHYSICS
G01C19/00
PHYSICS
G06Q10/06
PHYSICS
International classification
A01B69/00
HUMAN NECESSITIES
G07C5/08
PHYSICS
G06Q10/06
PHYSICS
Abstract
A machine control system for an agricultural operation includes sensors mounted on the machine and providing output signals corresponding to machine operations. A roll-up reporting function produces reports of machine operation, and status. The system can be programmed for providing such reports a predetermined intervals, e.g., at the start of each work day. A portion control method embodying the present invention includes the steps of: providing sensors on an agricultural machine; outputting from the sensors signals corresponding to machine operations; roll-up reporting of the machine operations; and comparing the operational report to a work order for the machine.
Claims
1. A system for controlling a machine used in an agricultural operation, which system includes: a sensor configured for outputting a signal corresponding to operational data for the machine; a telecommunications device configured for receiving said operational data signal; said telecommunications device configured for transmitting said operational data; and a controller device configured for receiving said operational data and generating a report of an agricultural operation.
2. The system according to claim 1 wherein said operational data includes machine operations at specified locations.
3. The system according to claim 2, wherein said machine controller device includes an application programming interface (API) configured for providing raw sensor data to a database.
4. The system according to claim 3, which provides machine roll-up reports at predetermined intervals.
5. The system according to claim 4, wherein said roll-up reports include quantities of applied inputs including one or more of fertilizer, pesticide and herbicide.
6. The system according to claim 5, which is configured for updating reports with applied input totals, averages and times for said machine.
7. The system according to claim 6, wherein said machine comprises: a terrestrial tow vehicle and an implement connected to said tow vehicle; or a crop duster aircraft (A/C).
8. The system according to claim 7, wherein said machine control device generates path geometry for inclusion in a machine operation report.
9. The system according to claim 8 wherein said controller device is configured for receiving work orders and said reports include completion status of work order tasks.
10. The system according to claim 6, which is configured for controlling and reporting for a fleet of multiple agricultural equipment assets, each asset comprising a respective terrestrial or aerial machine.
11. The system according to claim 10 wherein said reports include summations for operations of multiple said agricultural equipment assets.
12. A method for controlling and reporting the operation of a machine configured for agricultural operations, which method comprises the steps of: providing a machine configured for an agricultural operation; providing said machine with a programmable controller device; providing said machine with multiple sensors configured for outputting raw sensor data to said controller device; providing said machine with a telecommunications device configured for transmitting and receiving signals corresponding to agricultural operations of said machine; connecting said controller device to said telecommunications device; programming said controller device to generate periodic reports of said machine agricultural operations; and transmitting said periodic reports with said telecommunications device.
13. The method according to claim 12, which includes the additional steps of: transmitting work orders including agricultural operation tasks to said controller device; and reporting with said controller device status of said work order tasks.
14. The method according to claim 13, which includes the additional step of configuring said controller device with a low energy communication interface for use by an operator on multiple machines.
15. The method according to claim 14, which includes the additional steps of interfacing with a rate control and calibration device configured for installation on said machine and receiving data from said machine sensors.
16. The method according to claim 15 wherein said rate control and calibration device is configured for tracking operator activity, input application by field area and alerting remote asset managers to errors in work order tasks.
17. The method according to claim 12, which includes the additional step of generating billing records based on work order task completions.
18. The method according to claim 12, which includes the additional step of customizing report frequency and content based on customer-specific reporting requirements.
19. The method according to claim 12, which includes the additional step of mapping an agricultural field as a polygon and generating a guide path for said machine for coverage of said field.
20. A method for controlling and reporting the operation of a machine configured for agricultural operations, which method comprises the steps of: providing a machine configured for an agricultural operation; providing said machine with a programmable controller device; providing said machine with multiple sensors configured for outputting raw sensor data to said controller device; providing said machine with a telecommunications device configured for transmitting and receiving signals corresponding to agricultural operations of said machine; connecting said controller device to said telecommunications device; programming said controller device to generate periodic reports of said machine agricultural operations; transmitting said periodic reports with said telecommunications device; transmitting work orders including agricultural operation tasks to said controller device; reporting with said controller device status of said work order tasks; configuring said controller device with a low energy communication interface for use by an operator on multiple machines; interfacing with a rate control and calibration device configured for installation on said machine and receiving data from said machine sensors; configuring said rate control and calibration device is configured for tracking operator activity, input application by field area and alerting remote asset managers to errors in work order tasks; generating billing records based on work order task completions; customizing report frequency and content based on customer-specific reporting requirements; mapping an agricultural field as a polygon and generating a guide path for said machine for coverage of said field; receiving with said controller device queries for agricultural tasks, validating query parameters and reporting field geometry manifest plans; enriching field -related geometry with sensor positional data derived from said machine sensors; customizing work orders and reports using customer-specified units of measurement (UOM); and encoding a variety of geographic data structures using object notation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The drawings constitute a part of this specification and include exemplary embodiments of the present invention illustrating various objects and features thereof.
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
I. Introduction and Environment
[0015] As required, detailed aspects of the present invention are disclosed herein, however, it is to be understood that the disclosed aspects are merely exemplary of the invention, which may be embodied in various forms. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a basis for the claims and as a representative basis for teaching one skilled in the art how to variously employ the present invention in virtually any appropriately detailed structure.
[0016] Certain terminology will be used in the following description for convenience in reference only and will not be limiting. For example, up, down, front, back, right, and left refer to the invention as orientated in the view being referred to. The words “inwardly” and “outwardly” refer to directions toward and away from, respectively, the geometric center of the aspect being described and designated parts thereof. Additionally, anatomical terms are given their usual meanings. For example, proximal means closer to the trunk of the body, and distal means further from the trunk of the body. Said terminology will include the words specifically mentioned, derivatives thereof, and words of similar meaning.
II. Machine Control System in Tractor-Implement Equipment 10
[0017]
[0018] In agricultural operations, such equipment pieces are considered assets. The present invention optimizes their efficient usage and can contribute to the bottom-line profitability. Agricultural operation expenses include labor and the cost of input materials, such as seed, fertilizer, nutrients, pesticides, herbicides, and fuel.
[0019] Another objective of the control system of the present invention is efficient guidance and precise application of inputs. Guidance and positioning can utilize global navigation satellite system (GNSS) components. GNSS systems utilize satellite constellations for determining vehicle positions with triangulation. Radio frequency (RF) signals from at least four satellites are necessary, with distance-ranging signals from three satellites and timing signals from a fourth satellite providing timing signals. Current GNSS technology enables sub-centimeter positioning with commercially available components.
[0020] The global positioning system (GPS), which is currently operated and maintained by the United States Air Force, was the first GNSS system. Other GNSS systems are operated by other countries.
[0021] As shown in
[0022] Another important function of the tractor-implement control system is reporting operations, e.g., to a centralized asset management operation or to the cloud for Internet accessibility. Personal telecommunications devices, such as iPad® mobile devices, can be used by an operator for interconnectivity with the on-board computer and the cloud. An equipment operator can use his or her iPad® device on the equipment for interfacing with the various on-board sensors, GNSS receivers, and accessing the Internet via the cloud. Work orders can be transmitted to the operators for assigning operational tasks. Task completion status reports can automatically be generated and reported to management. For example, daily reports can be transmitted before the beginning of each workday, and used to provide updated work orders.
[0023] Asset management can also be expeditiously handled by reporting operational status, repair and maintenance requirements and matching inputs to jobs. Accounting functions include reporting expenditures for equipment maintenance and repair, labor costs and other inputs. The system can provide the necessary data for invoicing customers for agricultural services. Profit and loss reports can be generated using such information, as well as commodity crop pricing information.
III. A/C Control System Alternative Embodiment 20
[0024] A first modified or alternative embodiment of the present invention is shown in
[0025] As used herein, A/C assets include fixed-wing aircraft, helicopters and drones. Effective guidance and positioning in A/C applications utilize 3-axis control. Data inputs include altitude, wind speed and direction, and other aviation-specific data.
IV. System-Function Summary
[0026] In practicing the machine control with roll-up reporting method of the present invention, as a non-limiting example, the operational sequence can proceed as follows: [0027] 1. Work orders are sent to machines in the field from other remote, mobile devices, or from a remote office. [0028] 2. iPad® and other smart devices can provide a system interface between an AgOtter® system in the field and an AgHippo® system online. [0029] 3. A Bluetooth® Low Energy (BLE) communication interface makes connection of an iPad® device and AgOtter® systems easy and wireless. [0030] 4. Machine’s sensor and calculation data can be posted to an AgHippo® system online. [0031] 5. Summary data and analysis is rolled up in varying time chunks: e.g., hourly, daily, weekly, monthly, yearly. [0032] 6. Optimally-sized roll up reporting. [0033] 7. Rolled up results are instantly available and assembled for a query of any timespan. [0034] 8. Results are presented as visual reports on an AgHippo® system. [0035] 9. Results are transmitted to other software via an application programming interface (API). [0036] 10. Adaptable for aerial and terrestrial agricultural applications. [0037] 11. Avoids requiring modems in the equipment sensor controllers.
[0038] The following functional description is a non-limiting example of the present machine control invention, which can be embodied with other functional features, method steps and data characteristics. [0039] 1. Raw measurement data is stored in its smallest, whole, individual elements. [0040] 2. Raw data includes a time property of the measurement collection time. [0041] 3. Summary and statistical analysis is calculated for a selected group of the data. [0042] 4. Final calculations are presented to the user in the form of a report. [0043] 5. Final calculations are presented to other software in the form of an application programming interface (API). [0044] 6. Instead of bundling the selected group of data and making final calculations on demand at the time of the user query, this is performed on a regular interval, e.g., at 15-minute intervals. [0045] 7. Reports are run for buckets of data for hourly, daily, weekly, monthly and annual reports. [0046] 8. Reports are quickly, intelligently assembled for any timespan query. [0047] 9. Reports are presented on the website. [0048] 10. Reports are accessible via an API.
[0049] Advantages and Objectives [0050] 1. Maximizing speed of report generation. [0051] 2. Maximizing efficiency. [0052] 3. Instantaneous (real-time) Work Order progress-status reporting. [0053] 4. Detailed sensor data for each second of field work. [0054] 5. Errors and mistakes in the field are sent as alerts to the remote manager. [0055] 6. Faster billing cycle turnaround for optimizing cash flow. [0056] 7. Comprehensive documentation with prepackaged reports. [0057] 8. Adaptability for customer-specific reporting requirements. [0058] 9. Connectivity accommodating various equipment. [0059] 10. Tracking for all assets, equipment, and personnel.
[0060]
V. CONCLUSION
[0061] It is to be understood that while certain embodiments and/or aspects of the invention have been shown and described, the invention is not limited thereto and encompasses various other embodiments and aspects.