IP Library Granted Patent US 11,112,280
Granted Patent B2
US 11,112,280 · App. 16/283,425 · Granted Sep 7, 2021

System and method for sensing flow and user interface for monitoring material flow in a structure

Inventors: Meade Lewis (State College, PA); Danial Victor Sharts, II (State College, PA)
Assignee: mIQrotech, Inc.
G01D7/00G01M3/00
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Quick Facts
Patent No.
US 11,112,280
App. No.
16/283,425
Granted
Sep 7, 2021
Kind
B2
Abstract

A system for sensing flow material in a fluid-holding structure is disclosed. The system has an assembly including a housing, a communication device disposed at least partially in the housing, a controller disposed at least partially in the housing, a sensor array disposed at least partially in the housing, and an external-surface-mounting attachment portion configured to non-intrusively attach the assembly to a surface. The system also has a user interface configured to display a graphical element. The sensor array includes a pressure sensor, a density sensor, a corrosion sensor, and a vibration sensor. The controller controls the communication device to transmit sensed data collected by the sensor array to the user interface. The sensed data includes at least one of a density data sensed by the density sensor and a corrosion data sensed by the corrosion sensor. Display of the graphical element varies based on the sensed data.

Claims (61)

1. A system for sensing flow material in a fluid-holding structure, comprising:

a sensor assembly including:

a housing;

a communication device disposed at least partially in the housing;

a controller disposed at least partially in the housing;

a sensor array disposed at least partially in the housing; and

an external-surface-mounting attachment portion configured to non-intrusively attach the sensor assembly to an exterior surface of the fluid-holding structure;

a flow monitoring module configured to receive data from the sensory array and use it to predict potential failure, leaks, and other abnormal conditions in the fluid-holding structure; and

a user interface configured to display a plurality of graphical elements spaced along a graphical representation of the fluid-holding structure, wherein each graphical element corresponds to a separate sensor assembly which is noninvasively attached to an exterior surface of and spaced along the fluid-holding structure, and is configured to display data associated with the sensor array in the corresponding sensor assembly, said data comprising conditions of a fluid in the fluid-holding structure and structural integrity of the fluid-holding structure at or near the location of the sensor assembly;

wherein the sensor array includes a pressure sensor, a density sensor, a corrosion sensor, and a vibration sensor,

said density sensor is configured to locate air pockets, measure cavitation, and identify debris in the flow material,

said pressure sensor includes a strain gauge attached to the exterior surface of the fluid-holding structure, said strain gauge being configured to measure a strain of a wall portion of the fluid-holding structure,

said corrosion sensor includes a magnetometer configured to detect a magnetic interference in the flow of material;

wherein the controller controls the communication device to transmit sensed data collected by the sensor array to the user interface;

wherein the sensed data includes at least one of a density data sensed by the density sensor and a corrosion data sensed by the corrosion sensor; and

wherein display of the graphical element varies based on the sensed data.

2. The system of claim 1 , wherein the controller controls the communication device to transmit the sensed data collected by the sensor array at a frequency of between about one transmission per second and about fifty transmissions per second.

3. The system of claim 1 , wherein display of the graphical element varies between a plurality of states based on the sensed data.

4. The system of claim 3 , wherein the plurality of states includes an active assembly state and an inactive assembly state.

5. The system of claim 4 , wherein the graphical element displays the active assembly state when the sensor array has transmitted sensed data to the user interface within a predetermined time period, and the graphical element displays the inactive assembly state when the sensor array has not transmitted sensed data to the user interface within the predetermined time period.

6. The system of claim 5 , wherein the predetermined time period is 24 hours.

7. The system of claim 3 , wherein the plurality of states includes a warning state and an alert state.

8. The system of claim 7 , wherein the graphical element displays the warning state when the sensed data indicates a non-urgent condition of the fluid-holding structure, and the graphical element displays the alert state when the sensed data indicates an urgent condition of the fluid-holding structure.

9. The system of claim 1 , wherein the fluid-holding structure is a pipeline.

10. The system of claim 9 , wherein the flow monitoring module uses the received data to predict a longevity of operation of at least a portion of the pipeline.

11. A system for sensing flow material in a fluid-holding structure, comprising:

a plurality of sensor assemblies, each sensor assembly including

a housing;

a sensor array disposed at least partially in the housing; and

an external-surface-mounting attachment portion configured to non-intrusively attach the sensor assembly to an exterior surface of the fluid-holding structure;

a flow monitoring module configured to receive data from the sensory array and use it to predict potential failure, leaks, and other abnormal conditions in the fluid-holding structure; and

a user interface configured to display a plurality of graphical elements spaced along a graphical representation of the fluid-holding structure, wherein each graphical element corresponds to a separate sensor assembly noninvasively attached to an exterior surface of and spaced along the fluid-holding structure, and is configured to display data associated with the sensor array in the corresponding sensor assembly, said data comprising conditions of the flow material in the fluid-holding structure and structural integrity of the fluid-holding structure at or near the location of the sensor assembly;

wherein the sensor array includes a flow material pressure sensor, a flow material density sensor, a flow material corrosion sensor, a member vibration sensor, a temperature sensor, and a location sensor,

said density sensor is configured to locate air pockets, measure cavitation, and identify debris in the flow material,

said pressure sensor includes a strain gauge attached to the exterior surface of the fluid-holding structure, said strain gauge being configured to measure a strain of a wall portion of the fluid-holding structure

said corrosion sensor includes a magnetometer configured to detect a magnetic interference in the flow material;

wherein each of the plurality of assemblies transmits sensed data of the sensor array to the user interface; and

wherein display of the graphical user interface varies based on the sensed data.

12. The system of claim 11 , wherein the graphical user interface displays a plurality of graphical elements based on the sensed data of the plurality of assemblies.

13. The system of claim 12 , wherein the graphical user interface displays the plurality of graphical elements on a map based on location data of the sensed data of the plurality of assemblies.

14. The system of claim 12 , wherein each of the plurality of graphical elements displays a color status based on the sensed data of the plurality of assemblies.

15. The system of claim 11 , wherein each of the plurality of assemblies is configured to be attached to the fluid-holding structure that is an oil pipeline.

16. A method for monitoring a fluid-holding structure, comprising:

non-invasively attaching a first sensor assembly to a first surface of the fluid-holding structure and non-invasively attaching a second sensor assembly to a second surface of the fluid-holding structure;

sensing a first density data and a first corrosion data using the first sensor assembly;

sensing a second density data and a second corrosion data using the second sensor assembly, wherein said first and second density data includes location of any air pockets and cavitation, and whether there is debris in the flow material, and said first and second corrosion data includes magnetic interference data for the flow material;

transmitting the first and second density data and the first and second corrosion data to a user interface;

using the first and second density data and the first and second corrosion data to predict potential failure, leaks, and other abnormal conditions in the fluid-holding structure

displaying a graphical user interface including a first graphical element and a second graphical element on the user interface, wherein the first and second graphical elements are spaced along a graphical representation of the fluid-holding structure, wherein the first and second graphical elements correspond to the first and second sensor assemblies, respectively, which are spaced along the fluid-holding structure, and are each configured to display data associated with the sensor array in its corresponding sensor assembly, said data comprising conditions of the flow material in the fluid-holding structure and structural integrity of the fluid-holding structure at or near the location of the respective sensor assembly;

varying a display of the first graphical element based on the first density data and the first corrosion data; and

varying a display of the second graphical element based on the second density data and the second corrosion data;

wherein the sensing of the first and second density data is non-radioactive sensing.

17. The method of claim 16 , wherein the fluid-holding structure is an oil pipeline.

18. The method of claim 16 , further comprising sensing a first location data of the first sensor assembly and a second location data of the second sensor assembly, and transmitting the first and second location data to the user interface.

19. The method of claim 18 , further comprising:

displaying a map using the graphical user interface;

disposing the first graphical element on the map based on the first location data;

disposing the second graphical element on the map based on the second location data;

displaying a color of the first graphical element based on the first density data and the first corrosion data; and

displaying a color of the second graphical element based on the second density data and the second corrosion data.

20. The method of claim 19 , wherein the color of the first graphical element and the color of the second graphical element are each selected from the group consisting of a first predetermined color corresponding to a sensor-assembly-active status, a second predetermined color corresponding to a sensor-assembly-inactive status, a third predetermined color corresponding to an oil-holding-structure-warning status, and a fourth predetermined color corresponding to an oil-holding-structure-alert status.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 6, 2019
From: LEWIS, MEADE; SHARTS, DANIAL, II
To: MIQROTECH, INC.
Reel/Frame 048523/0343 →
Continuity (3)
Continuation In Part 16143611 · Sep 27, 2018
Continuation In Part 15901717 · Feb 21, 2018
Related Publication 20190257675A1 · Aug 22, 2019
Cited By (1)
US 12,421,839