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US20030069015A1 - Method and apparatus for remote initiation of ARINC 615 downloads - Google Patents

Method and apparatus for remote initiation of ARINC 615 downloads Download PDF

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Publication number
US20030069015A1
US20030069015A1 US10/075,032 US7503202A US2003069015A1 US 20030069015 A1 US20030069015 A1 US 20030069015A1 US 7503202 A US7503202 A US 7503202A US 2003069015 A1 US2003069015 A1 US 2003069015A1
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United States
Prior art keywords
data
accordance
aircraft
lru
wirelessly
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US10/075,032
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Roger Brinkley
Timothy Mitchell
Jerry Price
David Lee
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Boeing Co
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Boeing Co
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Priority to US10/075,032 priority Critical patent/US20030069015A1/en
Assigned to BOEING COMPANY, THE reassignment BOEING COMPANY, THE ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: BRINKLEY, ROGER R., MITCHELL, TIMOTHY M., PRICE, JERRY L.
Assigned to BOEING COMPANY, THE reassignment BOEING COMPANY, THE ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: LEE, DAVID R.
Publication of US20030069015A1 publication Critical patent/US20030069015A1/en
Priority to US11/520,093 priority patent/US7970410B2/en
Assigned to THE BOEING COMPANY reassignment THE BOEING COMPANY CORRECTIVE ASSIGNMENT TO CORRECT THE THE ASSIGNED PROPERTY APPLICATION NUMBERS PREVIOUSLY RECORDED ON REEL 018500 FRAME 0443. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT AND EMPLOYMENT AGREEMENT - DAVID R. LEE EXECUTION DATES: AUGUST 10, 2000 - FEBRUARY 11, 2002. Assignors: BRINKLEY, ROGER R., MITCHELL, TIMOTHY M., PRICE, JERRY L., LEE, DAVID R.
Abandoned legal-status Critical Current

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/01Protocols
    • H04L67/06Protocols specially adapted for file transfer, e.g. file transfer protocol [FTP]
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F8/00Arrangements for software engineering
    • G06F8/60Software deployment
    • G06F8/61Installation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/14Relay systems
    • H04B7/15Active relay systems
    • H04B7/185Space-based or airborne stations; Stations for satellite systems
    • H04B7/18502Airborne stations
    • H04B7/18506Communications with or from aircraft, i.e. aeronautical mobile service
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/01Protocols
    • H04L67/04Protocols specially adapted for terminals or networks with limited capabilities; specially adapted for terminal portability
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/01Protocols
    • H04L67/12Protocols specially adapted for proprietary or special-purpose networking environments, e.g. medical networks, sensor networks, networks in vehicles or remote metering networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/34Network arrangements or protocols for supporting network services or applications involving the movement of software or configuration parameters 
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/40Bus networks
    • H04L2012/40267Bus for use in transportation systems
    • H04L2012/4028Bus for use in transportation systems the transportation system being an aircraft
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W84/00Network topologies
    • H04W84/005Moving wireless networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W84/00Network topologies
    • H04W84/02Hierarchically pre-organised networks, e.g. paging networks, cellular networks, WLAN [Wireless Local Area Network] or WLL [Wireless Local Loop]
    • H04W84/04Large scale networks; Deep hierarchical networks
    • H04W84/06Airborne or Satellite Networks

Definitions

  • the present invention relates to communications systems, and more particularly to methods and apparatus to facilitate loading and acquisition of data relating to aircraft loadable computers.
  • Software loadable avionics units i.e., line replaceable units or LRUs
  • LRUs line replaceable units
  • Present maintenance practices call for transferring aircraft data stored on certain LRUs onto floppy disk media utilizing a portable or PC-based ARINC 615-3 data loader.
  • a properly configured 31 ⁇ 4′′ floppy diskette is inserted into the data loader.
  • a permanently mounted airborne data loader may be used to perform this task for an aircraft installation.
  • flight management computers FMCs
  • FMCs flight management computers
  • a central maintenance computer On Boeing 747 aircraft, a central maintenance computer is able to download its fault history database and an aircraft condition monitoring system (ACMS) is capable of downloading its stored serial stream aircraft parameters data, including up to eight selected channels of recorded smart access recorder data and triggered reports for the aircraft communications and reporting system (ACARS).
  • ACMS aircraft condition monitoring system
  • ACARS aircraft communications and reporting system
  • Two-way communication utilizing standard ARINC 615-3 protocol is needed for all LRUs that require periodic software updates.
  • wires used for this communication are routed to a multiple deck rotary switch.
  • the rotary switch is used by an operator to manually switch appropriate outputs from avionics boxes to an airborne data loader or to a connector for a portable data loader.
  • the wiring passes from an electronics equipment (EE) bay to a centralized flight deck location.
  • EE electronics equipment
  • One configuration of the present invention therefore provides a method for remotely downloading data to a selected one of a plurality of avionics line replaceable units (LRUs) on an aircraft.
  • the method includes transmitting a message wirelessly to a receiver on the aircraft identifying an LRU having data to be downloaded; selectively switching a communication path from the identified LRU to an aircraft data services link (ADSL) dependent upon the identified LRU; and wirelessly downloading data to the identified LRU utilizing the selectively switched communication path.
  • ADSL aircraft data services link
  • an apparatus for remotely downloading data to a selected one of a plurality of avionics line replaceable units (LRUs) on an aircraft.
  • the apparatus is configured to receive a message wirelessly transmitted to the aircraft identifying an LRU having data to be downloaded; selectively switch a communication path from the identified LRU to an aircraft data services link (ADSL) dependent upon the identified LRU; and wirelessly download data to the identified LRU utilizing the selectively switched communication path.
  • ADSL aircraft data services link
  • an apparatus for downloading data to a selected one of a plurality of avionics line replaceable units (LRUs) onboard an aircraft.
  • the apparatus includes a wireless radio transceiver; a communication management unit server responsive to the wireless radio transceiver; and a remotely controllable switch responsive to the communication management unit server to configure a data path between the wireless radio transceiver and a selected one of the LRUs for downloading of data.
  • Configurations of the present invention are useful in facilitating the loading and acquisition of data relating to aircraft loadable computers.
  • certain configurations of the present invention also permit remote initialization of ARINC 615-3 communications, because an operator is not required to manually configure a communication path using a rotary switch onboard an aircraft.
  • a central maintenance function for the aircraft can be provided.
  • FIG. 1 is a pictorial block diagram of one configuration of the present invention, showing a representative installation on an aircraft.
  • FIG. 2 is a pictorial block diagram of a prior art avionics system on an aircraft, provided for comparison with the pictorial block diagram of FIG. 1.
  • FIG. 3 is a block diagram of a remotely controllable switch suitable for use in the configuration of FIG. 1.
  • an aircraft 10 includes a plurality of LRUs 12 , including, for example, an aircraft condition monitoring system (ACMS) 14 , a digital flight data acquisition unit (DFDAU) 16 , one or more flight maintenance computers (FMC) 18 , and an aircraft communications and reporting system (ACARS) 20 , one or more of which require two-way communication utilizing ARINC 615-3 protocol.
  • Each LRU 12 communicates utilizing an ARINC 429-compatible link (i.e., communication path) 22 . Because ARINC 429 compatible links cannot be shared, an electronic, remotely controllable switch 24 selectively switches communication paths 22 .
  • switch 24 is an aircraft data services link that also provides outputs that are used by control display units (CDUs) 26 .
  • An airborne data loader 28 provides local data access for downloading data to LRUs 12 .
  • Remote communication is provided via a link to a communication management unit server 30 , which provides output for local radio communication (e.g., 802.11b spread spectrum transceiver 32 ), a satellite communication transceiver 34 , VHF radio systems 36 , and HF radio systems 38 .
  • local radio communication e.g., 802.11b spread spectrum transceiver 32
  • satellite communication transceiver 34 e.g., VHF radio systems 36
  • HF radio systems 38 e.g., HF radio systems
  • an additional radio communication system 40 for example, an 802.11b spread spectrum transceiver, by which remote communication is possible from one or more ground access points 42 .
  • communication management unit server 30 is responsive to wireless transceivers 32 , 34 , 36 , 38 and/or 40 for receiving data and selecting an LRU 12 to which to download data.
  • transceiver is intended to be broadly interpreted as encompassing separate receiving and transmitting units as well as individual units having both transmitting and receiving functions.
  • Remotely controllable switch 24 is responsive to communication management unit server 30 to configure a data path between the wireless radio transceiver 32 , 34 , 36 , 38 or 40 from which the selection of the LRU was obtained, for downloading of data.
  • FIG. 1 The configuration shown in FIG. 1 is compared to the prior art configuration of FIG. 2, which utilizes a rotary switch 44 , which is manually operated to switch communication paths 22 from LRUs 12 .
  • Aircraft 10 requires only minimal rewiring to accommodate the configuration represented in FIG. 1.
  • network server unit (NSU) 46 and server interface unit (SIU) 48 represented in the configuration of FIG. 2 are not required in the configuration represented in FIG. 1.
  • ARINC 429 inputs and outputs 22 are linked via an ARINC 429 transceivers module 50 through software controlled switches 52 .
  • Switches 52 are controlled by processor 54 , which is responsive to communication management unit server 30 for controlling switches 52 .
  • Communication management unit server 30 relays instructions received by any of transceivers 32 , 34 , 36 , 38 and/or 40 . In this manner, communication paths 22 are selected so that ARINC 615 or ARINC 615-3 downloads can take place via transceivers 32 , 34 , 36 , 38 and/or 40 .
  • a message is transmitted wirelessly to a transceiver (e.g., any of transceivers 32 , 34 , 36 , and/or 38 ) identifying an LRU 12 to which a download is to be made.
  • a communication path 22 is switched in response to this identification by remotely controlled switch 24 to provide a communication path, dependent upon the identified LRU 12 , between the identified LRU and an aircraft data services link comprising switch 24 and communication management unit server 30 .
  • Data is then wirelessly downloaded via the transceiver receiving the original message identifying the LRU using the selectively switched communication path.
  • the selectively switched communication path is an ARINC 429 communication path 22 , and one of a plurality of such paths 22 is switched utilizing a software-controlled switch 52 .
  • the original message identifying the LRU and the downloaded data are sent using a spread spectrum communications link, such as one provided by 802.11b transceiver 32 or 40 .
  • switch 24 comprises an aircraft data services link (ADSL).
  • ADSL performs a data acquisition function that utilizes existing storage features of existing aircraft LRUs 12 such as aircraft condition monitoring system (ACMS) 14 , central maintenance computer (CMC) (not shown in the figures) and flight maintenance computer (FMC) 18 , flight control computers (FCCs) 12 , and auxiliary power unit/environmental control unit (APU ECU) 56 (shown in FIG. 1) and requests download data conforming to ARINC 615 data load formats.
  • ACMS aircraft condition monitoring system
  • CMC central maintenance computer
  • FMC flight maintenance computer
  • FCCs flight control computers
  • APU ECU auxiliary power unit/environmental control unit
  • the ADSL server 30 application software provides the following operations that can be performed on the data:
  • OPC operational program configuration
  • the criteria include those that specify when and under what conditions to transfer data [from] to the aircraft [to] from a ground access point 42 via VHF radio 36 , HF radio 38 , SATCOM 34 , or 802.11b transceiver 32 or 40 .
  • An OPC is treated as a software upload. Because avionics LRUs 12 can only be loaded when on the ground, the primary communications medium used to initiate changes to ADSL 24 , 30 (or any other loadable LRU 12 ) OPC is a wireless spread spectrum 802.11b communication link.
  • This link is coupled to the functionality of ADSL components 24 , 30 such as an avionics gateway when avionics LRUs 12 require changes to their OPCs and to other types of loadable software.
  • Loadable OPCs resident in ADSL server 30 support automated transfer of download data to aircraft 10 from ground access point 42 , depending upon a variety of trigger conditions, for example, parking brake set. In one configuration, this automated transfer is handled by a download task management application distributed across the components of ADSL 24 , 30 , including any authorized network clients.
  • An example of another task that is performed by the download task management application is the accumulation of historical records of all automated data download events.
  • Such requests may pertain to, but are not limited to, access to data from avionics LRUs 12 without manual operator intervention on the aircraft, synchronization tasks with associated ground network systems 42 , backup and recovery initiation, and other network requests.
  • the network clients may include one or more authorized users communicating via ADSL 24 , 30 communications links, using cabin or flight deck mounted terminals, portable digital assistants (PDAs), wireless electronic flight bags (EFB) (which are not shown in the figures) or any number of ground terminals 42 .
  • PDAs portable digital assistants
  • EFB wireless electronic flight bags
  • a header file (i.e., an ARINC 615 config.ldr file) intended for a target LRU 12 is configured for a download.
  • This header file contains an appropriate system address label (SAL) for the targeted system.
  • SAL system address label
  • a connection to a specific computer i.e., LRU 12 must occur prior to activating a data download in those cases in which multiple computers having the same SAL are installed.
  • a download task management application informs the operator that a connection to the appropriate LRU 12 has been established.
  • the download task management application is resident on the ground based system or any other authorized network client and the avionics gateway.
  • configurations of the present invention provide direct control and access to store information on an aircraft subsystem while on the ground and within range of an 802.11b compatible access point.
  • access is also provided via one or more other radio communication links, so that access can be provided even while airborne, in appropriate cases.

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  • Computing Systems (AREA)
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Abstract

A method and apparatus for remotely downloading data to a selected one of a plurality of avionics line replaceable units (LRUs) on an aircraft. In one configuration, a method includes transmitting a message wirelessly to a receiver on the aircraft identifying an LRU having data to be downloaded; selectively switching a communication path from the identified LRU to an aircraft data services link (ADSL) dependent upon the identified LRU; and wirelessly downloading data to the identified LRU utilizing the selectively switched communication path.

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • This application claims the benefit of U.S. Provisional Application No. 60/268,085, filed Feb. 13, 2001, which is hereby incorporated by reference in its entirety. This application is also related to a commonly-assigned U.S. patent application of the same inventors entitled “METHODS AND APPARATUS FOR WIRELESS UPLOAD AND DOWNLOAD OF AIRCRAFT DATA”, Attorney Docket No. 7784-000361, filed on even date herewith, which is also incorporated by reference in its entirety.[0001]
  • FIELD OF THE INVENTION
  • The present invention relates to communications systems, and more particularly to methods and apparatus to facilitate loading and acquisition of data relating to aircraft loadable computers. [0002]
  • BACKGROUND OF THE INVENTION
  • Software loadable avionics units (i.e., line replaceable units or LRUs) have the capability of downloading stored information onto a diskette. Present maintenance practices call for transferring aircraft data stored on certain LRUs onto floppy disk media utilizing a portable or PC-based ARINC 615-3 data loader. To transfer the stored aircraft data, a properly configured 3¼″ floppy diskette is inserted into the data loader. In some cases, a permanently mounted airborne data loader may be used to perform this task for an aircraft installation. For example, on Boeing 737 aircraft, flight management computers (FMCs) are capable of downloading their stored faults onto floppy disks as described above. On Boeing 747 aircraft, a central maintenance computer is able to download its fault history database and an aircraft condition monitoring system (ACMS) is capable of downloading its stored serial stream aircraft parameters data, including up to eight selected channels of recorded smart access recorder data and triggered reports for the aircraft communications and reporting system (ACARS). [0003]
  • Two-way communication utilizing standard ARINC 615-3 protocol is needed for all LRUs that require periodic software updates. In at least one aircraft configuration, wires used for this communication are routed to a multiple deck rotary switch. The rotary switch is used by an operator to manually switch appropriate outputs from avionics boxes to an airborne data loader or to a connector for a portable data loader. The wiring passes from an electronics equipment (EE) bay to a centralized flight deck location. This configuration does not permit remote initiation of ARINC 615-3 communication because of the need for an operator to manually configure the communication path using the rotary switch. However, if such initiation were possible, a central maintenance function for the aircraft could be provided. [0004]
  • SUMMARY OF THE INVENTION
  • One configuration of the present invention therefore provides a method for remotely downloading data to a selected one of a plurality of avionics line replaceable units (LRUs) on an aircraft. The method includes transmitting a message wirelessly to a receiver on the aircraft identifying an LRU having data to be downloaded; selectively switching a communication path from the identified LRU to an aircraft data services link (ADSL) dependent upon the identified LRU; and wirelessly downloading data to the identified LRU utilizing the selectively switched communication path. [0005]
  • In another configuration of the present invention, an apparatus is provided for remotely downloading data to a selected one of a plurality of avionics line replaceable units (LRUs) on an aircraft. The apparatus is configured to receive a message wirelessly transmitted to the aircraft identifying an LRU having data to be downloaded; selectively switch a communication path from the identified LRU to an aircraft data services link (ADSL) dependent upon the identified LRU; and wirelessly download data to the identified LRU utilizing the selectively switched communication path. [0006]
  • In yet another configuration of the present invention, an apparatus is provided for downloading data to a selected one of a plurality of avionics line replaceable units (LRUs) onboard an aircraft. The apparatus includes a wireless radio transceiver; a communication management unit server responsive to the wireless radio transceiver; and a remotely controllable switch responsive to the communication management unit server to configure a data path between the wireless radio transceiver and a selected one of the LRUs for downloading of data. [0007]
  • Configurations of the present invention are useful in facilitating the loading and acquisition of data relating to aircraft loadable computers. In addition, certain configurations of the present invention also permit remote initialization of ARINC 615-3 communications, because an operator is not required to manually configure a communication path using a rotary switch onboard an aircraft. Thus, a central maintenance function for the aircraft can be provided. [0008]
  • Further areas of applicability of the present invention will become apparent from the detailed description provided hereinafter. It should be understood that the detailed description and specific examples, while indicating the preferred embodiment of the invention, are intended for purposes of illustration only and are not intended to limit the scope of the invention.[0009]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The present invention will become more fully understood from the detailed description and the accompanying drawings, wherein: [0010]
  • FIG. 1 is a pictorial block diagram of one configuration of the present invention, showing a representative installation on an aircraft. [0011]
  • FIG. 2 is a pictorial block diagram of a prior art avionics system on an aircraft, provided for comparison with the pictorial block diagram of FIG. 1. [0012]
  • FIG. 3 is a block diagram of a remotely controllable switch suitable for use in the configuration of FIG. 1.[0013]
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • The following description of the preferred embodiment(s) is merely exemplary in nature and is in no way intended to limit the invention, its application, or uses. [0014]
  • In one configuration of the present invention and referring to FIG. 1, an [0015] aircraft 10 includes a plurality of LRUs 12, including, for example, an aircraft condition monitoring system (ACMS) 14, a digital flight data acquisition unit (DFDAU) 16, one or more flight maintenance computers (FMC) 18, and an aircraft communications and reporting system (ACARS) 20, one or more of which require two-way communication utilizing ARINC 615-3 protocol. Each LRU 12 communicates utilizing an ARINC 429-compatible link (i.e., communication path) 22. Because ARINC 429 compatible links cannot be shared, an electronic, remotely controllable switch 24 selectively switches communication paths 22. In one configuration, switch 24 is an aircraft data services link that also provides outputs that are used by control display units (CDUs) 26. An airborne data loader 28 provides local data access for downloading data to LRUs 12. Remote communication is provided via a link to a communication management unit server 30, which provides output for local radio communication (e.g., 802.11b spread spectrum transceiver 32), a satellite communication transceiver 34, VHF radio systems 36, and HF radio systems 38. Also provided in one configuration is an additional radio communication system 40, for example, an 802.11b spread spectrum transceiver, by which remote communication is possible from one or more ground access points 42. In one configuration, communication management unit server 30 is responsive to wireless transceivers 32, 34, 36, 38 and/or 40 for receiving data and selecting an LRU 12 to which to download data. (As used herein, the term “transceiver” is intended to be broadly interpreted as encompassing separate receiving and transmitting units as well as individual units having both transmitting and receiving functions.) Remotely controllable switch 24 is responsive to communication management unit server 30 to configure a data path between the wireless radio transceiver 32, 34, 36, 38 or 40 from which the selection of the LRU was obtained, for downloading of data.
  • The configuration shown in FIG. 1 is compared to the prior art configuration of FIG. 2, which utilizes a [0016] rotary switch 44, which is manually operated to switch communication paths 22 from LRUs 12. Aircraft 10 requires only minimal rewiring to accommodate the configuration represented in FIG. 1. In addition, network server unit (NSU) 46 and server interface unit (SIU) 48 represented in the configuration of FIG. 2 are not required in the configuration represented in FIG. 1.
  • One configuration of suitable electronic, remotely [0017] controllable switch 24 is described in U.S. Provisional Application No. 60/268,085, filed Feb. 13, 2001, which is incorporated by reference herein. Referring to the block diagram of FIG. 3, a plurality of ARINC 429 inputs and outputs 22 are linked via an ARINC 429 transceivers module 50 through software controlled switches 52. Switches 52 are controlled by processor 54, which is responsive to communication management unit server 30 for controlling switches 52. Communication management unit server 30 relays instructions received by any of transceivers 32, 34, 36, 38 and/or 40. In this manner, communication paths 22 are selected so that ARINC 615 or ARINC 615-3 downloads can take place via transceivers 32, 34, 36, 38 and/or 40.
  • In one configuration of the present invention, a message is transmitted wirelessly to a transceiver (e.g., any of [0018] transceivers 32, 34, 36, and/or 38) identifying an LRU 12 to which a download is to be made. A communication path 22 is switched in response to this identification by remotely controlled switch 24 to provide a communication path, dependent upon the identified LRU 12, between the identified LRU and an aircraft data services link comprising switch 24 and communication management unit server 30. Data is then wirelessly downloaded via the transceiver receiving the original message identifying the LRU using the selectively switched communication path. In one configuration, the selectively switched communication path is an ARINC 429 communication path 22, and one of a plurality of such paths 22 is switched utilizing a software-controlled switch 52. In one configuration, the original message identifying the LRU and the downloaded data are sent using a spread spectrum communications link, such as one provided by 802.11 b transceiver 32 or 40.
  • In combination with communication [0019] management unit server 30, switch 24 comprises an aircraft data services link (ADSL). ADSL performs a data acquisition function that utilizes existing storage features of existing aircraft LRUs 12 such as aircraft condition monitoring system (ACMS) 14, central maintenance computer (CMC) (not shown in the figures) and flight maintenance computer (FMC) 18, flight control computers (FCCs) 12, and auxiliary power unit/environmental control unit (APU ECU) 56 (shown in FIG. 1) and requests download data conforming to ARINC 615 data load formats. The ADSL server 30 application software provides the following operations that can be performed on the data:
  • 1. On aircraft configuration management and storage. In one configuration, this functionality is synchronized with any configuration management and storage system in use on the ground, such as at [0020] ground access point 42.
  • 2. Automatic routing via an appropriate medium, based on an operational program configuration (OPC) file that contains criteria for automated routing capability. The criteria include those that specify when and under what conditions to transfer data [from] to the aircraft [to] from a [0021] ground access point 42 via VHF radio 36, HF radio 38, SATCOM 34, or 802.11 b transceiver 32 or 40. An OPC is treated as a software upload. Because avionics LRUs 12 can only be loaded when on the ground, the primary communications medium used to initiate changes to ADSL 24, 30 (or any other loadable LRU 12) OPC is a wireless spread spectrum 802.11b communication link. This link is coupled to the functionality of ADSL components 24, 30 such as an avionics gateway when avionics LRUs 12 require changes to their OPCs and to other types of loadable software. Loadable OPCs resident in ADSL server 30 support automated transfer of download data to aircraft 10 from ground access point 42, depending upon a variety of trigger conditions, for example, parking brake set. In one configuration, this automated transfer is handled by a download task management application distributed across the components of ADSL 24, 30, including any authorized network clients. An example of another task that is performed by the download task management application is the accumulation of historical records of all automated data download events.
  • 3. Responses to operator-initiated requests from authenticated clients via any of the communication paths connected to [0022] ADSL 24, 30. Such requests may pertain to, but are not limited to, access to data from avionics LRUs 12 without manual operator intervention on the aircraft, synchronization tasks with associated ground network systems 42, backup and recovery initiation, and other network requests. The network clients may include one or more authorized users communicating via ADSL 24, 30 communications links, using cabin or flight deck mounted terminals, portable digital assistants (PDAs), wireless electronic flight bags (EFB) (which are not shown in the figures) or any number of ground terminals 42. To remotely initiate an ARINC 615 download, a header file (i.e., an ARINC 615 config.ldr file) intended for a target LRU 12 is configured for a download. This header file contains an appropriate system address label (SAL) for the targeted system. A connection to a specific computer i.e., LRU 12 must occur prior to activating a data download in those cases in which multiple computers having the same SAL are installed. A download task management application informs the operator that a connection to the appropriate LRU 12 has been established. The download task management application is resident on the ground based system or any other authorized network client and the avionics gateway.
  • The transfer of download operational software to aircraft data services link [0023] 24, 30 is similar to the uploading of data, except that a config.ldr header file indicates that a download is requested and the bulk of the data flow is to LRU 12 from ADSL server 30 application software.
  • It will thus be observed that configurations of the present invention provide direct control and access to store information on an aircraft subsystem while on the ground and within range of an 802.11b compatible access point. In at least one configuration, access is also provided via one or more other radio communication links, so that access can be provided even while airborne, in appropriate cases. [0024]
  • The description of the invention is merely exemplary in nature and, thus, variations that do not depart from the gist of the invention are intended to be within the scope of the invention. Such variations are not to be regarded as a departure from the spirit and scope of the invention. [0025]

Claims (20)

What is claimed is:
1. A method for remotely downloading data to a selected one of a plurality of avionics line replaceable units (LRUs) on an aircraft, said method comprising:
transmitting a message wirelessly to a receiver on the aircraft identifying an LRU having data to be downloaded;
selectively switching a communication path from the identified LRU to an aircraft data services link (ADSL) dependent upon the identified LRU; and
wirelessly downloading data from the identified LRU utilizing the selectively switched communication path.
2. A method in accordance with claim 1 wherein the selectively switched communication path is an ARINC 429 communication path.
3. A method in accordance with claim 2 wherein said selectively switching a communication path comprises selectively switching one of a plurality of ARINC 429 communication paths utilizing a software-controlled switch.
4. A method in accordance with claim 1 wherein said transmitting a message wirelessly comprises transmitting the message wirelessly utilizing a wireless spread spectrum communication link.
5. A method in accordance with claim 1 wherein said transmitting a message wirelessly further comprises transmitting an operational program configuration (OPC) file that contains criteria for automated routing.
6. A method in accordance with claim 1 further comprising triggering said wirelessly downloading data upon a triggering condition.
7. A method in accordance with claim 6 wherein said triggering condition is setting of a parking brake.
8. A method in accordance with claim 6 further comprising accumulating records of wireless downloads.
9. A method in accordance with claim 1 further comprising configuring a header file for the identified LRU to download.
10. A method in accordance with claim 1 wherein said data wirelessly downloaded comprises operational software.
11. An apparatus for remotely downloading data to a selected one of a plurality of avionics line replaceable units (LRUs) on an aircraft, said apparatus configured to:
receive a message wirelessly transmitted to the aircraft identifying an LRU having data to be downloaded;
selectively switch a communication path to the identified LRU to an aircraft data services link (ADSL) dependent upon the identified LRU; and
wirelessly download data to the identified LRU utilizing the selectively switched communication path.
12. An apparatus in accordance with claim 11 wherein, to selectively switch a communication path to the identified LRU to an aircraft data services link (ADSL) dependent upon the identified LRU, said apparatus is further configured to selectively switch a plurality of ARINC 429 communication paths.
13. An apparatus in accordance with claim 12 further comprising a software-controlled switch configured to selectively switch said ARINC 429 communication paths.
14. An apparatus in accordance with claim 11 wherein said apparatus further comprises a wireless spread spectrum transceiver configured to receive said message wirelessly.
15. An apparatus in accordance with claim 11 further configured to receive an operational program configuration (OPC) file that contains criteria for automated routing.
16. An apparatus in accordance with claim 11 further configured to trigger said wireless download of data upon a triggering condition.
17. An apparatus in accordance with claim 16 configured to trigger said wireless download of data upon setting a of parking brake.
18. An apparatus in accordance with claim 16 further configured to accumulate records of wireless downloads.
19. An apparatus in accordance with claim 11 configured to wirelessly download operational software.
20. An apparatus for downloading data to a selected one of a plurality of avionics line replaceable units (LRUs) onboard an aircraft, said apparatus comprising:
a wireless radio transceiver;
a communication management unit server responsive to said wireless radio transceiver; and
a remotely controllable switch responsive to said communication management unit server to configure a data path between said wireless radio transceiver and a selected one of said LRUs for downloading of data.
US10/075,032 2001-02-13 2002-02-12 Method and apparatus for remote initiation of ARINC 615 downloads Abandoned US20030069015A1 (en)

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US10/075,032 Abandoned US20030069015A1 (en) 2001-02-13 2002-02-12 Method and apparatus for remote initiation of ARINC 615 downloads
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US10/883,029 Abandoned US20050026609A1 (en) 2001-02-13 2004-06-30 Methods and apparatus for wireless upload and download of aircraft data
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