IP Library Granted Patent US 11,119,545
Granted Patent B2
US 11,119,545 · App. 16/342,494 · Granted Sep 14, 2021

Filter mesh with incorporated strain gauge

Inventors: Cameron Key (Fort Collins, CO); Peter Andrew Seiler (Fort Collins, CO); Thomas Aaron Bondurant (Fort Collins, CO); Paul Howard Mazurkiewicz (Fort Collins, CO); Raphael Gay (Fort Collins, CO)
Assignee: Hewlett-Packard Development Company, L.P.
G06F1/206B01D46/0086B01D46/42G06F1/20B01D2279/45G05B2219/37371
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Quick Facts
Patent No.
US 11,119,545
App. No.
16/342,494
Granted
Sep 14, 2021
Kind
B2
Abstract

In example implementations, a computing system is provided. The computing system includes at least one electronic component, a fan and a filter. The electronic component generates heat that is cooled by an air flow within the computing system that is generated by the fan. The filter is located in a path of the air flow. The filter includes a filter mesh with a strain gauge that is encapsulated and incorporated into the filter mesh to measure an amount that the filter mesh is clogged.

Claims (28)

1. A computing system, comprising:

at least one electronic component that generates heat;

a fan to generate an air flow within the computing system to cool the at least one electronic component; and

a filter located in a path of the air flow generated by the fan, wherein the filter comprises a filter mesh with a strain gauge that is encapsulated, wherein the strain gauge comprises a conductive wire that is intertwined with the filter mesh to measure an amount that the filter mesh is clogged.

2. The computing system of claim 1 , wherein the filter is located downstream of the fan.

3. The computing system of claim 1 , wherein the filter is located upstream of the fan.

4. The computing system of claim 1 , wherein the strain gauge is encapsulated and incorporated into the filter mesh by being integrally formed inside of the filter mesh.

5. The computing system of claim 1 , wherein the strain gauge incorporated into the filter mesh by being printed onto the filter mesh.

6. The computing system of claim 5 , wherein the strain gauge is encapsulated with a non-conductive coating.

7. The computing system of claim 1 , wherein the strain gauge is weaved through or stitched into the filter mesh.

8. A filter, comprising: a filter mesh; a plurality of strain gauges comprising a conductive wire that is intertwined and encapsulated within the filter mesh as part of the filter mesh, wherein each one of the plurality of strain gauges measures an amount of deflection from an air flow generated by a fan in a computing system; a known voltage source coupled to a first pair of the plurality of strain gauges; and a voltage sensor coupled to a second pair of the plurality of strain gauges to measure an output voltage generated by the second pair of the plurality of strain gauges as a resistance value of the first pair of the plurality of strain gauges changes.

9. The filter of claim 8 , wherein the plurality of strain gauges is encapsulated with a non-conductive coating.

10. The filter of claim 8 , wherein the plurality of strain gauges is weaved through or stitched into the filter mesh.

11. A method, comprising:

providing a filter in a computing system comprising a filter mesh with a strain gauge, wherein the strain gauge is encapsulated, wherein the strain gauge comprises a conductive wire that is intertwined with the filter mesh;

turning on a fan of the computing system to run at an idle speed;

measuring an effective strain via the strain gauge of the filter in a path of an air flow generated by the fan;

increasing the fan to run at a higher speed;

measuring the effective strain on the strain gauge of the filter in the path of the air flow generated by the fan at the higher speed; and

repeating the increasing and the measuring at the higher speed for each level of speed until a top speed of the fan is reached to obtain a respective baseline effective strain for each level of speed of the fan.

12. The method of claim 11 , comprising:

measuring the effective strain at a subsequent time during standard operation of the computing system;

determining a speed level of the fan at the subsequent time;

calculating a percentage of clogging of the filter based on the strain measurement at the subsequent time for the speed level of the fan to the respective baseline effective strain at the speed level of the fan; and

generating an alarm when the percentage of clogging is above a threshold.

13. The method of claim 11 , comprising:

detecting a new filter has been installed, a cleaned filter has been installed or a new configuration of the computing system; and

calculating the respective baseline strain measurement for each level of speed of the fan with the new filter, the cleaned filter or in the new configuration.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 8, 2019
From: KEY, CAMERON; SEILER, PETER ANDREW; MAZURKIEWICZ, PAUL HOWARD; GAY, RAPHAEL; BONDURANT, THOMAS AARON
To: HEWLETT-PACKARD DEVELOPMENT COMPANY, L.P.
Reel/Frame 050006/0603 →
Continuity (1)
Related Publication 20190243432A1 · Aug 8, 2019