Heat transfer assembly and power electronics device
US-2024397675-A1 · Nov 28, 2024 · US
US2016165753A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016165753-A1 |
| Application number | US-201615043413-A |
| Country | US |
| Kind code | A1 |
| Filing date | Feb 12, 2016 |
| Priority date | Jun 29, 2013 |
| Publication date | Jun 9, 2016 |
| Grant date | — |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
Thermally actuated vents for electronic devices. An embodiment of an apparatus includes a vent having a first position and a second position, wherein the first position is an open position and the second position is a closed position; a muscle wire, a first end of the muscle wire being coupled with a connection to the vent and a second end of the muscle wire being coupled with an anchor point; and a tension element, a first end of the tension element being coupled with the vent at a connection point. The muscle wire is to apply a force to the vent to move the vent to the open position upon the muscle wire entering a contracted state, and the tension element pulling the vent to the closed position upon the muscle wire entering a relaxed state.
Opening claim text (preview).
1 - 20 . (canceled) 21 . An apparatus comprising: a vent having at least a first position and a second position, wherein the vent is further open in the second position than in the first position; a muscle wire, a first end of the muscle wire being coupled with a connection to the vent and a second end of the muscle wire being coupled with an anchor point, wherein the muscle wire follows a non-linear path in the apparatus; and a tension element, a first end of the tension element being coupled with the vent at a connection point; wherein the muscle wire is to apply a force to the vent to move the vent to the second position upon the muscle wire entering a contracted state in response to heat, and the tension element pulling the vent to the first position upon the muscle wire entering a relaxed state in response to cooling. 22 . The apparatus of claim 21 , further comprising one or more pulleys including a first pulley, the non-linear path of the muscle wire including the muscle wire being run around the first pulley at least in part. 23 . The apparatus of claim 22 , wherein a path of the muscle wire is redirected from a first direction to a second direction by the first pulley. 24 . The apparatus of claim 22 , wherein a portion of the muscle wire is wrapped around the first pulley one or more times. 25 . The apparatus of claim 21 , wherein the vent includes a circular vent cover, the non-linear path of the muscle wire including the muscle wire being coupled with the circular vent cover to apply a rotational force in a first direction. 26 . The apparatus of claim 25 , wherein the tension element is a tension element to apply a rotational force on the circular vent in a second, opposite direction. 27 . The apparatus of claim 26 , wherein the tension element is a mainspring for the circular vent cover. 28 . The apparatus of claim 21 , wherein the muscle wire is to enter the contracted state upon reaching a transition temperature for the muscle wire. 29 . The apparatus of claim 21 , wherein the muscle wire is in contact with or in close proximity to a heat source. 30 . The apparatus of claim 21 , wherein the muscle wire includes a nickel titanium alloy. 31 . The apparatus of claim 21 , wherein the tension element is a spring. 32 . A system comprising: a first vent, the first vent being moveable to an first position and a second position wherein the vent is further open in the second position than in the first position; one or more heat generating devices; and a thermally actuated vent mechanism including: a muscle wire, a first end of the muscle wire being coupled with a connection to the first vent and a second end of the muscle wire being coupled with an anchor point, wherein the muscle wire follows a non-linear path in the apparatus, and a tension element, a first end of the tension element being coupled with the first vent at a connection point; wherein the muscle wire is to apply a force to the first vent to move the vent to the second position upon the muscle wire entering a contracted state in response to heat, and the tension element pulling the vent to the first position upon the muscle wire entering a relaxed state in response to cooling. 33 . The system of claim 32 , wherein one or more heat generating devices includes a processor, wherein the thermal energy is produced by the operation of the processor. 34 . The system of claim 32 , further comprising one or more pulleys including a first pulley, the non-linear path of the muscle wire including the muscle wire being run around the first pulley at least in part. 35 . The system of claim 34 , wherein a path of the muscle wire is redirected from a first direction to a second direction by the first pulley. 36 . The system of claim 34 , wherein a portion of the muscle wire is wrapped around the first pulley one or more times. 37 . The system of claim 32 , wherein the vent includes a circular vent cover, the non-linear path of the muscle wire including the muscle wire being coupled with the circular vent cover to apply a rotational force in a first direction. 38 . The system of claim 37 , wherein the tension element is a tension element to apply a rotational force on the circular vent in a second, opposite direction. 39 . The system of claim 38 , wherein the tension element is a mainspring for the circular vent cover. 40 . A method comprising: activating an apparatus, the apparatus including one or more heat sources and a first vent coupled to a muscle wire, the muscle wire being initially in a relaxed state and the first vent being initially in a first position, wherein the muscle wire follows a non-linear path in the apparatus; moving the first vent from the first position to a second position in response to the muscle wire transitioning to a contracted state and applying force to the first vent, the muscle wire transitioning to the contracted state in response to heat, wherein the vent is further open in the second position than in the first position; and moving the first vent from the second position to the first position in response to the muscle wire transitioning to the relaxed state, the muscle wire transitioning to the relaxed state in response to cooling. 41 . The method of claim 40 , wherein moving the first vent from the second position to the first position further includes the first vent being pulled by a tension element.
by affecting the pattern of flow of the heat-exchange media {(F28F13/003 takes precedence; static flow control means in header boxes F28F9/026)} · CPC title
using a gaseous coolant in electronic enclosures (in cabinets of standardized dimensions H05K7/20536; in server cabinets H05K7/20709; in vehicle electronic casings H05K7/20845; in power control electronics H05K7/2089; in displays H05K7/20954) · CPC title
Thermal management, e.g. fan control · CPC title
Filters; Louvers · CPC title
with special features, e.g. for use in industrial environments; grounding or shielding against radio frequency interference [RFI] or electromagnetical interference [EMI] · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.