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US20050146428A1 - Method for remote monitoring equipment for an agricultural machine - Google Patents

Method for remote monitoring equipment for an agricultural machine Download PDF

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Publication number
US20050146428A1
US20050146428A1 US11/069,641 US6964105A US2005146428A1 US 20050146428 A1 US20050146428 A1 US 20050146428A1 US 6964105 A US6964105 A US 6964105A US 2005146428 A1 US2005146428 A1 US 2005146428A1
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Prior art keywords
fleet
machine
data
machines
data server
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Abandoned
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US11/069,641
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Brian Mahoney
Steven Colvin
Manish Sharma
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Deere and Co
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Deere and Co
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Publication date
Application filed by Deere and Co filed Critical Deere and Co
Priority to US11/069,641 priority Critical patent/US20050146428A1/en
Publication of US20050146428A1 publication Critical patent/US20050146428A1/en
Priority to US11/481,282 priority patent/US7397392B2/en
Abandoned legal-status Critical Current

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06QINFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES; SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES, NOT OTHERWISE PROVIDED FOR
    • G06Q10/00Administration; Management
    • G06Q10/08Logistics, e.g. warehousing, loading or distribution; Inventory or stock management
    • GPHYSICS
    • G08SIGNALLING
    • G08GTRAFFIC CONTROL SYSTEMS
    • G08G1/00Traffic control systems for road vehicles
    • G08G1/20Monitoring the location of vehicles belonging to a group, e.g. fleet of vehicles, countable or determined number of vehicles

Definitions

  • the invention relates to providing information to enhance managers of fleet equipment to manage their fleets by receiving data from a local server on one or more of the pieces of equipment in order that they may react to immediate problems and to plan for future utilization based upon the fleet's pasts performance and utilization.
  • the information is received in the form of either snapshot reports on current conditions, or summary reports based on data gathered over a period of time.
  • the collected information may be a collection of current conditions and past conditions which are cumbersome to assimulate by the receiver of the information.
  • the principal object of this invention is to provide a method of collecting data from a plurality of machines in a fleet of machines, wherein snapshot reports of current conditions, or summary reports on the historical state of a machine, can be generated and can be forwarded to the fleet manager at a remote monitoring system.
  • a further object of this invention is to provide a method for remote monitoring equipment for an agricultural machine which will permit the capture of additional information about the machine and its use without ever visiting the machine.
  • FIG. 1 is a flow sheet showing internationalization of machine data
  • FIG. 2 is a flow sheet showing configuring the controllers for different machine types
  • FIG. 3 is a flow sheet showing machine settings and call-in schedule
  • FIG. 4 is a flow sheet showing monitor machine information
  • FIG. 5 is a flow sheet showing polling machine status
  • FIG. 6 is a flow sheet showing stop engine alert notification.
  • the method of this invention offers a complete management system composed of the remote monitoring equipment for an agricultural machine (which is part of a fleet of agricultural machines).
  • the monitoring equipment comprises a communications controller/computer provided on the agricultural machine, one or more connections to the machine's data buses (CAN, CCD, RS232), and other controllers on the machine.
  • the controllers are connected to a machine data bus and to sensors which pass alert information derived from these sensors to the communications controller/computer which automatically generates and sends snapshot and summary reports to a central information server.
  • a central information server comprising a communications server handles the over-the-air communications protocol to the remote agricultural machines communications controller/computer and the network communications to a data server.
  • the data server accepts the snapshots and summary reports from the agricultural machine and when requested, generates fleet level snapshot reports, machine level snapshot reports, fleet level summary reports and machine level summary reports, which are sent to a customer service application.
  • the customer service application takes requests from a fleet manager via network for a fleet level snapshot report, a machine level snapshot report, or a fleet level summary report on a machine level summary report, and passes the report requests to a data service and then displays the report to the fleet manager.
  • the invention proposes monitoring equipment that monitors information about the historical state of the machine primarily when it is working, transporting, idling or when it is not operating at all.
  • the information about the historical state of the machine also known as the summary report, can determine the productivity of the machine or a fleet of machines over a period of time.
  • This report is capable of generating configurable utilization information about which can include the area covered, engine hours, ground speed, engine speed, fuel used, fuel used/hour, load Factor and rear PTO speed. Advice given in the summary report is automatically sent to the equipment manager for an immediate response.
  • a second feature of the invention is its ability to provide machine management snapshot reports to the user. This feature functions in a similar way as the previous component with the main difference being the users ability to request snapshot reports about the current machine state.
  • a snapshot report is automatically sent transmitted.
  • a red alert is operational data predetermined to be an emergency condition, such as fire, or an overturned machine, for example.
  • the snapshot capability provides a map with the current location of the machine that enables the service personnel to locate the machine once a problem occurs.
  • the fleet level snapshot report includes a map which is also capable of providing current locations of all machines in the fleet, which could possibly be used by a fuel truck operator to fuel the fleet.
  • the snapshot report is capable of providing the current status of the machine or machines indicating whether the machine is currently working, idling, transporting in an “off” mode.
  • the primary difference between the snapshot and the summary reports is the time frame in which the data is collected in the reports.
  • the snapshot report contains instantaneous data.
  • the summary report contains data that was collected over a period of time.
  • the data is obtained from the machines of the fleet through an informational retrievable system.
  • the system is composed of a remote monitoring equipment for an agricultural machine (which is part of a fleet of agricultural machines) comprising a communications controller/computer provided on the agricultural machine; one or more connections to the machine's data buses (CAN, CCD, RS232); and other controllers on the machine which are connected to a machine data bus and to sensors which pass alert information derived from these sensors to the communications controller/computer.
  • the latter component automatically generates and sends red alert and alert log reports to a central information server.
  • the system further includes a central information Server comprising a communications server which handles the over-the-air communications protocol to the remote agricultural machines communications controller/computer and the network communications to the data server.
  • the data server accepts the red alert and alert log reports from the agricultural machine and automatically sends red alert emails to a list of email addresses.
  • the customer service application takes requests from a fleet manager via a network for an alert log report and passes the report request to the data service and then displays the report that comes from data service to the fleet manager.
  • the primary feature of this system is the way in which the raw data is transferred throughout the system.
  • Data such as the configuration file
  • Data is transferred throughout this system using a method comprised of two different protocols: A low-level communication protocol that allows the communication controller (CC) to use a mobile asset management device to communicate to communication services (CS) and a high level connection based communication protocol, that transfers configuration data from the CS to the CC.
  • a low-level communication protocol that allows the communication controller (CC) to use a mobile asset management device to communicate to communication services (CS)
  • CS communication services
  • the advantage of this latter protocol is the ability for both sides to actively communicate with each other as long as a connection is maintained.
  • a user requests a customer service application configuration selection for a specific machine
  • the machine is then triggered causing information to be passed to data services (Database) to create the configuration file.
  • Database data services
  • CS Communications services
  • CS calls the CC on the specific machine and transfers the configurations file to the communications controller (CC) via an over-the-air protocol.
  • An over-the-air protocol allows for direct configuration of the asset management device by CS.
  • Snapshot/machine status report When communication occurs between the CC and the CS a Snapshot/machine status report and an alert log if necessary, are then generated and sent to the user.
  • This Snapshot/machine status report is sent each time to make sure that the data coming from the CC will be associated with the right configuration ID in the CC.
  • the date, time and position of the data become known.
  • the configuration ID is essential at this point because, it is unique to each CC; it is used by the CS to track the configuration of the CC; and it is updated with each new configuration download to the CC.
  • the primary structure of the configuration file consists of different types of configuration records. These configuration records are essential because they help the CC to monitor information on the (CAN & CCD data) buses.
  • the configuration records that are sequentially transmitted includes, broadcast parameters, query parameters, attributes, utilization, snapshot, performance alert, machine state, call-in schedule and system configuration. These records are used to define to the CC how to acquire a parameter (data items which are available on the bus such as GPS speed, hitch position, time, etc.) that are being broadcast on the bus.
  • the two types of parameters (broadcast, query) are used to define the items that are monitored on the CC, commonly known as “attributes”. Attributes are monitored for collecting performance data, for generating current machine status (snapshot report/values) and for monitoring performance alerts. The machine status consists of the machine position, machine state (off, idle, working, transporting). Once attributes are generated, they are then used to collect utilization reports, which transmits all complete reporting period data for duration of 1 hour.
  • the distinct features of this invention exist for both the individual machine and the entire fleet of machines.
  • the ability to produce a summary and snapshot report through remote monitoring enables the user to get information about the historical and current state of the machine (working, transporting, idling or off), the current settings or utilization breakdowns as described in 2 A, a means to know how the machine or all machines within the fleet have been operated over a period of time, a means to know how productive the machine or fleet of machines have been over a period of time and a real-time fleet schedule for refueling a machine.
  • Generating summary and snapshot reports about configurable aspects of the machine greatly increases the users ability to track the productivity of the machine in 1 hour increments, track the productivity of the operator of the machine and track the current location of each machine enabling the user to dispatch service personnel immediately is a red alert code is given.
  • These report capabilities also enables the user to potentially increase output of the machine and operator as well as immediately preserving resources by knowing exactly where the machine is located and how it is being utilized on an hourly, daily, weekly, monthly and yearly basis.
  • This invention is clearly a benefit because it provides fleet managers and other users automatically collected information which tells them if they are over or under equipped and by ensuring them that their needs are being met at all times with the equipment they have, it reduces the possible down-time of a machine within the fleet and it keeps the user from expending unnecessary resources to resolve the problem.

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Abstract

A method of providing information from a plurality of fleet machines located at a plurality of locations for purposes of permitting a manager of fleet equipment to make management decisions pertaining to a fleet comprised of such equipment, monitoring functional operational data from individual machines in a fleet of machines, conveying the monitored data to a remote server, converting the monitored data into a first group pertaining to current existing operational data, and into a second group comprised of past historical data, and transmitting by wirelss means to a person having responsibility for the fleet information at least one of the groups of data.

Description

    FIELD OF THE INVENTION
  • The invention relates to providing information to enhance managers of fleet equipment to manage their fleets by receiving data from a local server on one or more of the pieces of equipment in order that they may react to immediate problems and to plan for future utilization based upon the fleet's pasts performance and utilization. The information is received in the form of either snapshot reports on current conditions, or summary reports based on data gathered over a period of time.
  • BACKGROUND OF THE INVENTION
  • Current Fleet Management systems have proven to be ineffective for Fleet Managers to manage their fleets. Fleet Managers manage their fleets with outdated and hand collected data that makes it hard for them to react to immediate problems and plan for future fleet utilization based on their fleet's past performance and utilization.
  • Further, the collected information may be a collection of current conditions and past conditions which are cumbersome to assimulate by the receiver of the information.
  • Therefore, the principal object of this invention is to provide a method of collecting data from a plurality of machines in a fleet of machines, wherein snapshot reports of current conditions, or summary reports on the historical state of a machine, can be generated and can be forwarded to the fleet manager at a remote monitoring system.
  • A further object of this invention is to provide a method for remote monitoring equipment for an agricultural machine which will permit the capture of additional information about the machine and its use without ever visiting the machine.
  • These and other objects will be apparent to those skilled in the art.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a flow sheet showing internationalization of machine data;
  • FIG. 2 is a flow sheet showing configuring the controllers for different machine types;
  • FIG. 3 is a flow sheet showing machine settings and call-in schedule;
  • FIG. 4 is a flow sheet showing monitor machine information;
  • FIG. 5 is a flow sheet showing polling machine status; and
  • FIG. 6 is a flow sheet showing stop engine alert notification.
  • SUMMARY OF THE INVENTION
  • The method of this invention offers a complete management system composed of the remote monitoring equipment for an agricultural machine (which is part of a fleet of agricultural machines). The monitoring equipment comprises a communications controller/computer provided on the agricultural machine, one or more connections to the machine's data buses (CAN, CCD, RS232), and other controllers on the machine. The controllers are connected to a machine data bus and to sensors which pass alert information derived from these sensors to the communications controller/computer which automatically generates and sends snapshot and summary reports to a central information server. A central information server comprising a communications server handles the over-the-air communications protocol to the remote agricultural machines communications controller/computer and the network communications to a data server. The data server accepts the snapshots and summary reports from the agricultural machine and when requested, generates fleet level snapshot reports, machine level snapshot reports, fleet level summary reports and machine level summary reports, which are sent to a customer service application. The customer service application takes requests from a fleet manager via network for a fleet level snapshot report, a machine level snapshot report, or a fleet level summary report on a machine level summary report, and passes the report requests to a data service and then displays the report to the fleet manager.
  • DESCRIPTION OF THE PREFERRED EMBODIMENT
  • The invention proposes monitoring equipment that monitors information about the historical state of the machine primarily when it is working, transporting, idling or when it is not operating at all. The information about the historical state of the machine, also known as the summary report, can determine the productivity of the machine or a fleet of machines over a period of time. This report is capable of generating configurable utilization information about which can include the area covered, engine hours, ground speed, engine speed, fuel used, fuel used/hour, load Factor and rear PTO speed. Advice given in the summary report is automatically sent to the equipment manager for an immediate response.
  • A second feature of the invention is its ability to provide machine management snapshot reports to the user. This feature functions in a similar way as the previous component with the main difference being the users ability to request snapshot reports about the current machine state. When an emergency or red alert call occurs, a snapshot report is automatically sent transmitted. A red alert is operational data predetermined to be an emergency condition, such as fire, or an overturned machine, for example. The snapshot capability provides a map with the current location of the machine that enables the service personnel to locate the machine once a problem occurs. The fleet level snapshot report includes a map which is also capable of providing current locations of all machines in the fleet, which could possibly be used by a fuel truck operator to fuel the fleet. Another unique feature about this report is its ability to poll the machine or the entire fleet of machines for configurable current settings such as fuel tank level, ground speed, engine speed, hydraulic oil temperature, engine coolant temperature wheel slips and gears. The snapshot report is capable of providing the current status of the machine or machines indicating whether the machine is currently working, idling, transporting in an “off” mode. The primary difference between the snapshot and the summary reports is the time frame in which the data is collected in the reports. The snapshot report contains instantaneous data. The summary report contains data that was collected over a period of time.
  • The data is obtained from the machines of the fleet through an informational retrievable system.
  • The system is composed of a remote monitoring equipment for an agricultural machine (which is part of a fleet of agricultural machines) comprising a communications controller/computer provided on the agricultural machine; one or more connections to the machine's data buses (CAN, CCD, RS232); and other controllers on the machine which are connected to a machine data bus and to sensors which pass alert information derived from these sensors to the communications controller/computer. The latter component automatically generates and sends red alert and alert log reports to a central information server. The system further includes a central information Server comprising a communications server which handles the over-the-air communications protocol to the remote agricultural machines communications controller/computer and the network communications to the data server. The data server accepts the red alert and alert log reports from the agricultural machine and automatically sends red alert emails to a list of email addresses. When requested, it generates alert log reports and sends the reports to the customer service application. The customer service application takes requests from a fleet manager via a network for an alert log report and passes the report request to the data service and then displays the report that comes from data service to the fleet manager.
  • The primary feature of this system is the way in which the raw data is transferred throughout the system. Data, such as the configuration file, is transferred throughout this system using a method comprised of two different protocols: A low-level communication protocol that allows the communication controller (CC) to use a mobile asset management device to communicate to communication services (CS) and a high level connection based communication protocol, that transfers configuration data from the CS to the CC. The advantage of this latter protocol is the ability for both sides to actively communicate with each other as long as a connection is maintained.
  • Once a user requests a customer service application configuration selection for a specific machine, the machine is then triggered causing information to be passed to data services (Database) to create the configuration file. After the file is created, it is then passed via a message to communications services. Communications services (CS) then calls the CC on the specific machine and transfers the configurations file to the communications controller (CC) via an over-the-air protocol. An over-the-air protocol allows for direct configuration of the asset management device by CS.
  • When communication occurs between the CC and the CS a Snapshot/machine status report and an alert log if necessary, are then generated and sent to the user. This Snapshot/machine status report is sent each time to make sure that the data coming from the CC will be associated with the right configuration ID in the CC. When this report is sent, the date, time and position of the data become known. The configuration ID is essential at this point because, it is unique to each CC; it is used by the CS to track the configuration of the CC; and it is updated with each new configuration download to the CC.
  • The primary structure of the configuration file consists of different types of configuration records. These configuration records are essential because they help the CC to monitor information on the (CAN & CCD data) buses.
  • The configuration records that are sequentially transmitted includes, broadcast parameters, query parameters, attributes, utilization, snapshot, performance alert, machine state, call-in schedule and system configuration. These records are used to define to the CC how to acquire a parameter (data items which are available on the bus such as GPS speed, hitch position, time, etc.) that are being broadcast on the bus. The two types of parameters (broadcast, query) are used to define the items that are monitored on the CC, commonly known as “attributes”. Attributes are monitored for collecting performance data, for generating current machine status (snapshot report/values) and for monitoring performance alerts. The machine status consists of the machine position, machine state (off, idle, working, transporting). Once attributes are generated, they are then used to collect utilization reports, which transmits all complete reporting period data for duration of 1 hour.
  • The distinct features of this invention exist for both the individual machine and the entire fleet of machines. The ability to produce a summary and snapshot report through remote monitoring enables the user to get information about the historical and current state of the machine (working, transporting, idling or off), the current settings or utilization breakdowns as described in 2A, a means to know how the machine or all machines within the fleet have been operated over a period of time, a means to know how productive the machine or fleet of machines have been over a period of time and a real-time fleet schedule for refueling a machine. Generating summary and snapshot reports about configurable aspects of the machine greatly increases the users ability to track the productivity of the machine in 1 hour increments, track the productivity of the operator of the machine and track the current location of each machine enabling the user to dispatch service personnel immediately is a red alert code is given. These report capabilities also enables the user to potentially increase output of the machine and operator as well as immediately preserving resources by knowing exactly where the machine is located and how it is being utilized on an hourly, daily, weekly, monthly and yearly basis. This invention is clearly a benefit because it provides fleet managers and other users automatically collected information which tells them if they are over or under equipped and by ensuring them that their needs are being met at all times with the equipment they have, it reduces the possible down-time of a machine within the fleet and it keeps the user from expending unnecessary resources to resolve the problem.
  • It is therefore seen that this invention will achieve at least all of its stated objectives.

Claims (6)

1-15. (canceled)
16. A method of providing information from a plurality of fleet machines located at a plurality of locations for purposes of permitting a manager of fleet equipment to make management decisions pertaining to a fleet comprising the steps of:
providing an information retrievable system including a customer service application and a data server;
requesting a configuration selection from the customer service application; and
triggering the machine to cause information to be passed to the data server based on the configuration selection to create a configuration file.
17. The method of claim 16 wherein the configuration file is comprised of data regarding at least one of machine location, area covered by the machine, engine hours, ground speed, engine speed, fuel used, fuel used/hour, load functions, current machine locations, engine coolant temperature, and rear PTO speed.
18. The method of claim 16 wherein the informational system further comprises a central information and communications server which handles over-the-air information transmission to the data server.
19. The method of claim 16 wherein the data server accepts operational data predetermined to be emergency conditions and reports the same to a plurality of predetermined destinations via e-mail.
20. A method of alerting an individual of an emergency within a fleet of agricultural machines comprising the steps of:
monitoring functional operation data from individual machines in a fleet of machines;
conveying the monitored data to a remote data server;
accepting a red alert report from an agricultural machine in the fleet with the data server; and
sending a red alert e-mail from the data server to an e-mail address automatically upon receipt of the red alert report.
US11/069,641 2002-07-31 2005-02-28 Method for remote monitoring equipment for an agricultural machine Abandoned US20050146428A1 (en)

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US11/481,282 US7397392B2 (en) 2002-07-31 2006-07-05 Method for remote monitoring equipment for an agricultural machine

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BR0302491A (en) 2004-08-24
US7397392B2 (en) 2008-07-08
US20060250281A1 (en) 2006-11-09
CA2433610A1 (en) 2004-01-31

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