IP Library Granted Patent US 12,379,820
Granted Patent B2
US 12,379,820 · App. 17/837,074 · Granted Aug 5, 2025

Asset management system

Inventors: Benjamin Wilkinson (Scarborough, AU); Brett Birkbeck (South Perth, AU); Ryan Luke Tripodi (Canning Vale, AU); Shaun Martin Gregory (Mount Pleasant, AU)
Assignee: Woodside Energy Technologies Pty Ltd
G06F3/04815G06F3/0484
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Quick Facts
Patent No.
US 12,379,820
App. No.
17/837,074
Granted
Aug 5, 2025
Kind
B2
Abstract

An asset management system that stores visual representation of an asset and its components, operational data of the components, and location of the components relative to the asset in a defined coordinate system. The system includes communication-enabled things disposed at the asset arranged to obtain component operational data and to communicate the operational data to data storage, and a user interface controllable by a user to display a visual representation of a selected portion of an asset, and to display visual representations of adjacent portions of the asset by receiving navigation instructions from the user. The user interface facilitates display of component information adjacent a component as the user navigates through the visual representation of the asset, the component information derived from the communication-enabled things. The stored data includes location of at least one actor disposed at the asset as the actor moves relative to the asset.

Claims (50)

1. An asset management system comprising:

a data storage storing:

visual data indicative of a visual representation of an asset, the visual representation including visual representations of components of the asset;

component data indicative of characteristics of components of the asset including component operational data indicative of operation of the components, the component operational data being time stamped so as to include timing data indicative of a time at which operational data is obtained from a component; and

spatial data including component location data indicative of geospatial location of the components physically disposed within the asset, the component location data including timing data indicative of a time at which a component is disposed at a location, the spatial data being stored in a first coordinate format according to a defined coordinate system;

a plurality of communication-enabled things disposed at the asset, each communication-enabled thing disposed at the asset to obtain component operational data indicative of operation of at least one component of the asset, and communicating the component operational data to the data storage; and

a user interface accessing the stored visual data, the user interface controllable by a user to display a visual representation of a selected portion of an asset, the visual representation of the selected portion including visual representations of components spatially located within the asset, and the user interface enabling the user to virtually navigate spatially through the asset by displaying visual representations of adjacent portions of the asset in response to receipt of navigation instructions from the user;

wherein;

the user interface accesses the stored component operational data and displays the component operational data adjacent a corresponding component of the asset as the user virtually navigates spatially through the visual representations of portions of the asset, the component operational data derived from at least one communication-enabled thing associated with the component;

the user interface comprises a user manipulatable timeline associated with the displayed selected portion of the asset, the timeline usable by a user to select a time; and

in response to the user selecting the time, the user interface uses the time stamps associated with the component operational data and the timing data associated with the component location data to cause a display of component operational data associated with the selected time for all components spatially located on the displayed selected portion of the asset at the selected time.

2. An asset management system as claimed in claim 1 , wherein the user interface automatically displays component information adjacent a component as the user navigates through the visual representation of the asset when the visual representation of the component is displayed by the user interface.

3. An asset management system as claimed in claim 2 , wherein at least some of the component information displayed adjacent a component is based on user defined criteria.

4. An asset management system as claimed in claim 1 , wherein:

the spatial data includes actor location data indicative of location of an actor at the asset, the actor location data including timing data indicative of a time at which an actor is disposed at a location; and

the visual representation of the asset includes a visual representation of the actor at a location corresponding to the location of the actor at the asset.

5. An asset management system as claimed in claim 4 , comprising a plurality of machine-readable markers disposed at distributed locations at the asset, wherein the actor includes a location device that determines the location of the location device relative to the machine-readable markers and thereby the location of the actor relative to the asset.

6. An asset as claimed in claim 4 , wherein a location device of the actor determines the location of the actor relative to the asset using simultaneous localisation and mapping (SLAM) techniques.

7. An asset management system as claimed in claim 1 , wherein the user interface uses a second coordinate format different to the first coordinate format, and the system converts location data between the first and second coordinate formats.

8. An asset management system as claimed in claim 1 , further comprising an edge server disposed between a wide area network and the communication-enabled things, the edge server processing data obtained from the communication-enabled things and communicating processed data to the data storage through the wide area network.

9. An asset management system as claimed in claim 1 , comprising an analysis engine that automatically analyses the component data and carries out an action in response to the analysis.

10. An asset management system as claimed in claim 1 , wherein the system carries out an action in response to location of an actor at the asset.

11. An asset management system as claimed in claim 4 , wherein:

the actor includes a robot; and

the system causes the robot to carry out a defined action in response to defined criteria.

12. A method of managing an asset, the method comprising:

storing visual data indicative of a visual representation of an asset at a data storage, the visual representation including visual representations of components of the asset;

storing component data indicative of characteristics of components of the asset including component operational data indicative of operation of the components at the data storage, the component operational data being time stamped so as to include timing data indicative of a time at which operational data is obtained from a component;

storing spatial data including component location data indicative of geospatial location of the components physically disposed within the asset, the component location data including timing data indicative of a time at which a component is disposed at a location, the spatial data being stored in a first coordinate format according to a defined coordinate system;

disposing a plurality of communication-enabled things at the asset, each communication-enabled thing disposed to obtain component operational data indicative of operation of at least one component of the asset, and communicating with the data storage to transfer the component operational data to the data storage;

facilitating access to the stored visual data using a user interface, the user interface controllable by a user to display a visual representation of a selected portion of the asset, the visual representation of the selected portion including visual representations of components spatially located within the asset, and the user interface enabling the user to virtually navigate spatially through the asset by displaying visual representations of adjacent portions of the asset in response to receipt of navigation instructions from the user;

facilitating access by the user interface to the stored component operational data; and

facilitating display on the user interface of the component operational data adjacent a corresponding component of the asset as the user virtually navigates spatially through the visual representations of portions of the asset, the component operational data derived from at least one communication-enabled thing associated with the component;

wherein:

the user interface comprises a user manipulatable timeline associated with the displayed selected portion of the asset, the timeline usable by a user to select a time; and

in response to the user selecting the time, the user interface uses the time stamps associated with the component operational data to facilitate and the timing data associated with the component location data to cause a display of component operational data associated with the selected time for all components spatially located on the displayed selected portion of the asset at the selected time.

13. A method as claimed in claim 12 , comprising automatically displaying component information adjacent a component as the user navigates through the visual representation of the asset when the visual representation of the component is displayed by the user interface.

14. A method as claimed in claim 13 , wherein at least some of the component information displayed adjacent a component is based on user defined criteria.

15. A method as claimed in claim 12 , wherein:

the spatial data includes actor location data indicative of location of an actor at the asset, the actor location data including timing data indicative of a time at which an actor is disposed at a location; and

the visual representation of the asset includes a visual representation of the actor at a location corresponding to the location of the actor at the asset.

16. A method as claimed in claim 15 , wherein the actor includes a location device and the method comprises providing a plurality of machine-readable markers disposed at distributed locations at the asset, and determining the location of the location device relative to the machine-readable markers and thereby the location of the actor relative to the asset.

17. An asset as claimed in claim 15 , comprising determining the location of the actor relative to the asset using simultaneous localisation and mapping (SLAM) techniques.

18. A method as claimed in claim 12 , wherein the user interface uses a second coordinate format different to the first coordinate format, and the method comprises converting location data between the first and second coordinate formats.

19. A method as claimed in claim 12 , comprising processing data obtained from the communication-enabled things using an edge server disposed between a wide area network and the communication-enabled things, and communicating processed data to the data storage through the wide area network.

20. A method as claimed in claim 12 , comprising automatically analysing the component data using an analysis engine and carrying out an action in response to the analysis.

21. A method as claimed in claim 12 , comprising carrying out an action in response to location of an actor at the asset.

22. A method as claimed in claim 15 , wherein:

the actor includes a robot; and

the method further comprises causing the robot to carry out a defined action in response to defined criteria.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 21, 2023
From: WILKINSON, BENJAMIN; BIRKBECK, BRETT; TRIPODI, RYAN LUKE; GREGORY, SHAUN MARTIN
To: WOODSIDE ENERGY TECHNOLOGIES PTY LTD
Reel/Frame 062756/0291 →
Priority Claims (1)
AU 2019904677 · Dec 10, 2019 · national
Continuity (2)
Continuation PCTAU2020050341 · Apr 3, 2020
Related Publication 20220308734A1 · Sep 29, 2022
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