Engineered actuators usable in MEMs active cooling devices

US11510341B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11510341-B2
Application numberUS-202017023215-A
CountryUS
Kind codeB2
Filing dateSep 16, 2020
Priority dateDec 6, 2019
Publication dateNov 22, 2022
Grant dateNov 22, 2022

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

An actuator usable in a cooling system is described. The actuator includes an anchored region and a cantilevered arm. The cantilevered arm extends outward from the anchored region. The cantilevered arm includes a step region, an extension region and an outer region. The step region extends outward from the anchored region and has a step thickness. The extension region extends outward from the step region and has an extension thickness less than the step thickness. The outer region extends outward from the extension region and has an outer thickness greater than the extension thickness.

First claim

Opening claim text (preview).

What is claimed is: 1. An actuator, comprising: an anchored region; and a cantilevered arm extending outward from the anchored region wherein the cantilevered arm includes a step region extending outward from the anchored region having a step thickness; an extension region extending outward from the step region having an extension thickness less than the step thickness; and an outer region extending outward from the extension region having an outer thickness greater than the extension thickness; wherein the actuator resides in a system including a chamber, an orifice plate including at least one orifice therein, and a support structure, the actuator residing in the chamber and being supported by the support structure at the anchored region, a portion of the extension region being aligned with at least a portion of the at least one orifice, the actuator separating the chamber into a top chamber and a bottom chamber in fluid communication with the top chamber, the orifice plate forming a wall of the bottom chamber, the actuator being configured to undergo vibrational motion of the cantilevered arm when actuated to draw a fluid into the top chamber, direct the fluid through the top chamber and into the bottom chamber, and drive the fluid out of the bottom chamber through the at least one orifice. 2. The actuator of claim 1 , wherein the extension region further includes: an additional step region between the step region and the outer region, the additional step region having an additional step thickness less than the step thickness and greater than the extension thickness. 3. The actuator of claim 1 , wherein the outer thickness is at least fifty micrometers and not more than two hundred micrometers thicker than the extension thickness, wherein the outer region has a width of at least one hundred micrometers and not more than three hundred micrometers, and wherein the extension region has a length extending outward from the step region of at least 0.5 millimeter and not more than 1.5 millimeters. 4. The actuator of claim 1 , wherein at least one of the step region, the extension region and the outer region includes at least one recess therein. 5. The actuator of claim 4 , wherein the at least one recess includes a taper such that a width of the at least one recess increases with distance from the anchored region. 6. The actuator of claim 5 , wherein the taper is selected from a linear taper, a quadratic taper, and a cubic taper. 7. The actuator of claim 4 , further comprising: a cover configured such that the at least one recess is internal to the actuator. 8. The actuator of claim 1 , further comprising: an additional cantilevered arm extending outward from the anchored region opposite to the cantilevered arm, and wherein the additional cantilevered arm includes an other step region extending outward from the anchored region having an other step thickness; an additional extension region extending outward from the other step region and having an additional extension thickness less than the other step thickness; and an additional outer region extending outward from the additional extension region and having an additional outer thickness greater than the additional extension thickness. 9. The actuator of claim 1 , wherein the at least one orifice includes a plurality of orifices and wherein the portion of the extension region is aligned with all of the plurality of orifices. 10. The actuator of claim 1 wherein the vibrational motion of the cantilevered arm is configured to drive the fluid out of the bottom chamber at a speed of at least thirty meters per second. 11. The actuator of claim 1 wherein the system has a thickness of not more than two millimeters. 12. A cooling system, comprising: a chamber; an orifice plate including at least one orifice therein; an anchor in the chamber; and a cooling element including an anchored region and a cantilevered arm, the anchored region being fixed by the anchor, the cantilevered arm extending outward from the anchored region wherein the cantilevered arm includes a step region extending outward from the anchored region having a step thickness; an extension region extending outward from the step region having an extension thickness less than the step thickness, a portion of the extension region being aligned with at least a portion of the at least one orifice; and an outer region extending outward from the extension region having an outer thickness greater than the extension thickness; wherein the cooling element resides in the chamber and separates the chamber into a top chamber and a bottom chamber in fluid communication with the top chamber, the orifice plate forming a wall of the bottom chamber, the cooling element being configured to undergo vibrational motion of the cantilevered arm when actuated to draw a fluid into the top chamber, direct the fluid through the top chamber and into the bottom chamber, and drive the fluid out of the bottom chamber through the at least one orifice. 13. The cooling system of claim 12 , wherein the extension region further includes: an additional step region between the step region and the outer region, the additional step region having an additional step thickness less than the step thickness and greater than the extension thickness. 14. The cooling system of claim 12 , wherein at least one of the step region, the extension region and the outer region includes at least one recess therein. 15. The cooling system of claim 14 , wherein the cooling element further includes: a cover configured such that the at least one recess is internal to the cooling element. 16. The cooling system of claim 12 , wherein the cooling element further includes: an additional cantilevered arm extending outward from the anchored region opposite to the cantilevered arm, and wherein the additional cantilevered arm includes an other additional step region extending outward from the anchored region and having an other step thickness; an additional extension region extending outward from the other step region and having an additional extension thickness less than the other step thickness; and an additional outer region extending outward from the additional extension region and having an additional outer thickness greater than the additional extension thickness. 17. The cooling system of claim 16 , wherein the orifice plate is disposed between the cooling element and a heat-generating structure; and wherein the vibrational motion of the cantilevered arm drives fluid through the at least one orifice toward the heat-generating structure. 18. The cooling system of claim 17 , further comprising: a plurality of cell walls, configured such that the top chamber is formed between a portion of the plurality of cell walls and the cooling element and the bottom chamber is formed between the plurality of cell walls, the orifice plate, and the cooling element. 19. A method of cooling a heat-generating structure, comprising: driving a cooling element to induce a vibrational motion at a frequency, the cooling element including an anchored region and a cantilevered arm, the cantilevered arm extending outward from the anchored region; wherein the cantilevered arm includes a step region, an extension region and an outer region, the step region extending outward from the anchored region having a step thickness, the extension region extending outward from the step region having an extension thickness less than the step thickness, the outer region extending outward from

Assignees

Inventors

Classifications

  • by flowing gases, e.g. forced air cooling · CPC title

  • Accessories for moving fluid, for expanding fluid, for connecting fluid conduits, for distributing fluid, for removing gas or for preventing leakage, e.g. pumps, tanks or manifolds · CPC title

  • Fan mounting or fan specifications · CPC title

  • Multiple-component heat spreaders; Multi-component heat-conducting support plates; Multi-component non-closed heat-conducting structures · CPC title

  • Cold plates transferring heat from heat source to coolant · CPC title

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What does patent US11510341B2 cover?
An actuator usable in a cooling system is described. The actuator includes an anchored region and a cantilevered arm. The cantilevered arm extends outward from the anchored region. The cantilevered arm includes a step region, an extension region and an outer region. The step region extends outward from the anchored region and has a step thickness. The extension region extends outward from the s…
Who is the assignee on this patent?
Frore Systems Inc
What technology area does this patent fall under?
Primary CPC classification H05K7/20172. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Nov 22 2022 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 12 related publications on this page (citations in our corpus or others sharing the same primary CPC).