Skin based system cooling using internal system fan
IPC분류정보
국가/구분 |
United States(US) Patent
등록
|
국제특허분류(IPC7판) |
|
출원번호 |
US-0483470
(2014-09-11)
|
등록번호 |
US-9891677
(2018-02-13)
|
발명자
/ 주소 |
- North, Travis C.
- Helberg, Christopher M.
- Shelnutt, Austin M.
|
출원인 / 주소 |
|
대리인 / 주소 |
Terrile, Cannatti, Chambers & Holland, LLP
|
인용정보 |
피인용 횟수 :
0 인용 특허 :
8 |
초록
▼
A system and method for improving the cooling of the skin of an information handling system. More specifically, in certain embodiments, the information handling system comprises an air moving device positioned to generate boundary layer disruption on the external skin of the system. In certain embod
A system and method for improving the cooling of the skin of an information handling system. More specifically, in certain embodiments, the information handling system comprises an air moving device positioned to generate boundary layer disruption on the external skin of the system. In certain embodiments the air moving device is located within the information handling system.
대표청구항
▼
1. A method for cooling a system comprising: positioning an air moving device within the system, the system comprising a mother board, a panel and a battery, the mother board, the panel and the battery being contained within a housing, the battery being positioned between the panel and a side of the
1. A method for cooling a system comprising: positioning an air moving device within the system, the system comprising a mother board, a panel and a battery, the mother board, the panel and the battery being contained within a housing, the battery being positioned between the panel and a side of the housing opposite the panel; and,generating a boundary layer disruption via the air moving device, the boundary layer disruption being generated by moving a jet of airflow along an outer surface of the system, the jet of airflow disrupting a thermal boundary layer affecting an external skin of the system corresponding to the side of the housing opposite the panel; and whereinthe air moving device comprises at least one jet cooling air moving device, the jet cooling air moving device being positioned to generate a high velocity low pressure air flow across the external skin of the system; and wherein,the jet cooling air moving device is positioned in parallel with a mother board of the system; and,the housing comprises a plurality of a synthetic jet and port holes to facilitate development of jet flow along the external skin positioned on the side of the housing corresponding to the battery. 2. The method of claim 1, wherein: the system comprises a micro porous material, the micro porous material allowing the air moving device to generate pressure oscillations which disrupt boundary layers of an external skin boundary layers from an internal air moving device. 3. A system comprising: a processor;a data bus coupled to the processor;a mother board;a battery;a housing, the mother board, the panel and the battery being contained within the housing, the battery being positioned between the panel and a side of the housing opposite the panel;an air moving device, the air moving device being configured to generate a boundary layer disruption via the air moving device, the boundary layer disruption being generated to affect an external skin of the system corresponding to the side of the housing opposite the panel; and whereinthe air moving device comprises at least one jet cooling air moving device, the jet cooling air moving device being positioned to generate a high velocity low pressure air flow across the external skin of the system; and wherein,the jet cooling air moving device is positioned within the housing in parallel with the mother board of the system; and,the housing comprises a plurality of a synthetic jet and port holes to facilitate development of jet flow along the external skin positioned on the side of the housing opposite the panel. 4. The system of claim 3, wherein: the system comprises a micro porous material, the micro porous material allowing the air moving device to generate pressure oscillations which disrupt boundary layers of an external skin boundary layers from an internal air moving device. 5. The method of claim 1, wherein: the air moving device comprises a plurality of jet cooling air moving devices located within the system, the plurality of jet cooling air moving devices being positioned to generate a wall of jet flow, the wall of jet flow providing the high velocity low pressure air flow across the skin of the system. 6. The system of claim 3, wherein: the air moving device comprises a plurality of jet cooling air moving devices located within the system, the plurality of jet cooling air moving devices being positioned to generate a wall of jet flow, the wall of jet flow providing the high velocity low pressure air flow across the skin of the system.
이 특허에 인용된 특허 (8)
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Maestrello Lucio (Newport News VA), Active control of boundary layer transition and turbulence.
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Xu, Tian-Bing; Jiang, Xiaoning; Su, Ji, Advanced high performance horizontal piezoelectric hybrid synthetic jet actuator.
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Wang, Shih-Yuan; Kuekes, Philip J.; Patel, Chandrakant, Electronic components, systems and apparatus with air flow devices.
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Bhagavat, Milind S.; Saeidi, Seyed Mahdi; Yeung, Tak Sang, Flexural plate wave device for chip cooling.
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Hatada Toshio (Tsuchiura JPX) Inouye Hiroshi (Ibaraki JPX) Ohba Takao (Hadano JPX) Iwai Susumu (Hadano JPX), Packaging structure of small-sized computer.
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Glezer, Ari; Mahalingam, Raghavendran; Allen, Mark G., System and method for thermal management by synthetic jet ejector channel cooling techniques.
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Rossi,Thomas M.; Pokharna,Himanshu, System to improve display efficiency based on recycling local heat source.
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Bult, Jeffrey Russell; Arik, Mehmet; Gerstler, William Dwight; Utturkar, Yogen, Systems and methods for synthetic jet enhanced natural cooling.
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