IP Library Granted Patent US 11,614,326
Granted Patent B2
US 11,614,326 · App. 17/618,980 · Granted Mar 28, 2023

Sensor system, sensing element and methods

Inventors: Thomas Anthony Drewett (Brisbane, AU); Bryn Anthony Smith (Kensington, AU); Dimitrios Andreou (Thessaly, GR)
Assignee: Senceive Ltd
G01C9/08G01C7/06G01C9/06
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Quick Facts
Patent No.
US 11,614,326
App. No.
17/618,980
Granted
Mar 28, 2023
Kind
B2
Abstract

Techniques are disclosed for disseminating network service-specific mapping information across administrative domains. In one example, a network device receives an indication of a route target and one or more underlay tunnels configured to support a service route. The service route is configured to transport network traffic associated with a first network service of a plurality of network services. The network device defines, based on the indication, a first transport class of a plurality of transport classes. The network device receives a service route for the first network service and stores a correspondence between the service route and the first transport class. The network device receives network traffic associated with the first network service and forwards, based on the correspondence, the network traffic along the underlay tunnels specified by the first transport class.

Claims (65)

1. A sensor system comprising:

a plurality of sensing elements configured when deployed to be connected together to form a chain;

a control element configured when deployed to be connected to the plurality of sensing elements of the chain, and

each of the plurality of sensing elements comprises:

a housing,

first and second interfaces, each of the first and the second interfaces being configured to form an electrical and a physical connection to a corresponding interface of another of the plurality of sensing elements or the control element to form the chain;

electrical circuitry formed within the housing, the electrical circuitry comprising

at least one sensor configured to generate an indication of a relative orientation and tilt of the sensing element,

control circuitry configured to control communication of signals via one or both of the first interface and the second interface to at least one of the other sensing elements and/or the control element,

wherein the signals communicated via one or both of the first interface and the second interface to the at least one of the other sensing elements and/or the control element include an identification signal for identifying the sensing element and the indication representing the orientation and the tilt of each of the plurality of sensing elements in the chain.

2. A sensor system of claim 1 , wherein the control element is configured to analyse the signals received from the first or the second interface of one of the sensing elements of the plurality of sensing elements of the chain to which the control element is connected, to identify an order of the plurality of sensing elements of the chain and/or to compensate for the orientation and tilt of each of the sensing elements of the chain in a deployed position.

3. A sensor system of claim 1 ,

wherein, the control element is configured to transmit wirelessly the signals received from the first or the second interface of the one of the plurality of sensing elements of the chain to which the control element is connected, to a remote analysis processor via the wireless transceiver, and

the remote analysis processor is configured to analyse the signals received from the control element to identify an order of the plurality of sensing elements of the chain and/or to compensate for the orientation and tilt of each of the sensing elements of the chain in a deployed position.

4. A sensor system of claim 1 , wherein the identification signal comprises an identification number of the sensing element.

5. A sensor system of claim 1 , wherein the control element is configured to identify the order of the plurality of sensing elements based on the control circuitry of each of the plurality of sensing elements communicating a respective identification signal of the respective sensing element to a first or second neighbouring sensing element of the plurality of sensing elements of the chain or to the control element via one of the first or the second interfaces.

6. A sensor system of claim 1 , wherein the electrical circuitry of each of the plurality of sensing elements comprises:

transceiver circuitry configured to communicate the signals via a communications bus formed between the first interface and the second interface, and

addressing circuitry configured to be operable to communicate the identification signal with one of the group consisting of a first neighbouring sensing element or a second neighbouring sensing element of the plurality of sensing elements of the chain to which the sensing element is connected via the first or the second interfaces, respectively, and the addressing circuitry configured to be operable to receive a second identification signal from one of the group consisting of a first neighbouring sensing element or a second neighbouring sensing element of the plurality of sensing elements of the chain to which the sensing element is connected via the first interface or the second interface, respectively.

7. A sensor system of claim 6 , wherein, in response to receiving the different identification signal, the control circuit is configured to control the transceiver circuitry to communicate via the communications bus either the different identification signal or an acknowledgment that a different identification signal was received from one of the group consisting of the first neighbouring sensing element or the second neighbouring sensing element of the plurality of sensing elements of the chain.

8. A sensor system of claim 1 , wherein the electrical circuitry comprises an electrical energy store and wherein the control circuitry is configured to determine a charge state of the electrical energy store, and wherein the control circuitry is configured to determine whether the charge state exceeds a threshold and to prevent activation of transceiver circuitry if the charge state of the electrical energy store does not exceed the threshold.

9. A sensor system of claim 8 , wherein the electrical energy store is a capacitor.

10. A sensor system of claim 1 , wherein the at least one sensor configured to generate an indication of a relative orientation and tilt of the sensing elements comprises an accelerometer and a magnetometer, wherein optionally the accelerometer is a tri-axial accelerometer.

11. A sensor system of claim 1 , wherein the housing of each of the sensing elements includes a hollow section and one or more vents to allow fluid to displace air present in the hollow section when being deployed.

12. A sensor system of claim 1 , wherein each sensing element comprises an arcuate spring, the arcuate spring providing a biasing force with respect to a side of the housing of the sensing element and a surface of a structure in which the sensing element is deployed.

13. A sensor system of claim 1 , wherein the housing has a majority portion formed from one of the group comprising carbon fibre, fibreglass, and poly-para-phenylene terephthalamide.

14. A sensor system of claim 1 , wherein the housing is an elongated tubular housing.

15. A sensing element comprising:

a housing,

first and second interfaces at either of two ends of the housing, each of the first and the second interfaces being configured to form an electrical and a physical connection to a corresponding interface of another of the plurality of sensing elements or a control element;

electrical circuitry formed within the housing comprising:

at least one sensor configured to generate signals representing a relative orientation and tilt of the sensing element,

control circuitry configured to facilitate communications via one or both of the first interface and the second interface to at least one of the other sensing elements and/or the control element to which the sensing element is connected.

16. The sensing element of claim 15 , wherein the electrical circuitry of each of the plurality of sensing elements comprises:

transceiver circuitry configured to communicate the signals via a communications bus formed between the first interface and the second interface, and

addressing circuitry configured to be operable to communicate the identification signal with one of the group consisting of a first neighbouring sensing element or a second neighbouring sensing element of the plurality of sensing elements of the chain to which the sensing element is connected via the first or the second interfaces, respectively, and the addressing circuitry configured to be operable to receive a second identification signal from one of the group consisting of a a first neighbouring sensing element or a second neighbouring sensing element of the plurality of sensing elements of the chain to which the sensing element is connected via the first interface or the second interface, respectively.

17. A sensing element comprising:

housing means including a hollow section, the hollow section comprising one or more vents for allowing air to be displaced from the interior of the hollow rigid body in the presence of water;

first and second interfaces at either of two ends of the housing, each of the first and the second interfaces being configured to form an electrical and a physical connection to a corresponding interface of a different sensing element;

electrical circuitry formed within the housing comprising

at least one sensor configured to generate signals representing a relative orientation and tilt of the sensing element

communication circuitry configured to transmit generated signals from the sensor via the first or second interface.

18. A sensor system of claim 1 , the sensor system comprising:

a plurality of sensing elements, each sensing element comprising means for connecting to two other sensing elements of the plurality of sensing elements, the plurality of sensing elements to be connected together to form a chain when deployed;

a control element comprising means for connecting to the plurality of sensing elements of the chain, the control element connected to the plurality of sensing elements of the chain when deployed;

wherein each of the plurality of sensing elements comprises:

a housing,

means for forming an electrical and a physical connection to another of the plurality of sensing elements or the control element to form the chain;

electrical circuitry formed within the housing, the electrical circuitry comprising

at least one means for sensing an indication of a relative orientation and tilt of the sensing element, and

means for communicating signals to at least one of the other sensing elements and/or the control element;

wherein signals communicated via the means for forming an electrical and a physical connection to the at least one of the other sensing elements and/or the control element include an identification signal for identifying the sensing element and the indication representing the orientation and the tilt of each of the plurality of sensing elements in the chain.

19. A method of installing the sensor system of claim 1 , the method comprising:

providing a plurality of sensing elements configured when deployed to be connected together to form a chain;

providing a control element configured when deployed to be connected to the plurality of sensing elements of the chain;

forming a chain comprising the plurality of sensing elements and the control element;

wherein each of the plurality of sensing elements comprises:

a housing,

first and second interfaces, each of the first and the second interfaces being configured to form an electrical and a physical connection to a corresponding interface of another of the plurality of sensing elements or the control element to form the chain;

electrical circuitry formed within the housing, the electrical circuitry comprising

at least one sensor configured to generate an indication of a relative orientation and tilt of the sensing element, and

control circuitry configured to control communication of signals via one or both of the first interface and the second interface to at least one of the other sensing elements and/or the control element;

communicating signals via one or both of the first interface and the second interface to the at least one of the other sensing elements and/or the control element, wherein the signals include an identification signal for identifying the sensing element and the indication representing the orientation and the tilt of each of the plurality of sensing elements in the chain.

20. The method of claim 19 , comprising

attaching an arcuate spring at a connection between each of the sensing elements.

Assignments (4)
RELEASE OF SECURITY INTEREST Recorded Jun 3, 2026
From: NATIONAL BANK OF CANADA
To: EDDYFI UK LIMITED
Reel/Frame 074843/0473 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 29, 2026
From: SENCEIVE LIMITED
To: EDDYFI UK LIMITED
Reel/Frame 074514/0659 →
SECURITY INTEREST Recorded Jun 5, 2025
From: PREVIAN TECHNOLOGIES INC.; PAVEMETRICS SYSTEMS INC.; EDDYFI CANADA INC.; ZETEC, INC.; EDDYFI ROBOTICS INC.; EDDYFI CORP.; EDDYFI UK LIMITED; SENCEIVE LIMITED
To: NATIONAL BANK OF CANADA
Reel/Frame 071328/0530 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 18, 2022
From: DREWETT, THOMAS ANTHONY; SMITH, BRYN ANTHONY; ANDREOU, DIMITRIOS
To: SENCEIVE LTD
Reel/Frame 059301/0348 →
Priority Claims (1)
GB 1908596 · Jun 14, 2019 · national
Continuity (1)
Related Publication 20220307830A1 · Sep 29, 2022
Cited By (2)
US 12,286,764 US 12,663,264