INFORMATION HANDLING SYSTEM THERMAL MANAGEMENT FOR DENSE STRUCTURES
20230031055 ยท 2023-02-02
Assignee
Inventors
- Pomin Shih (Beitou Dist., TW)
- Travis C. North (Cedar Park, TX, US)
- Geroncio Tan (Austin, TX, US)
- Deeder M. Aurongzeb (Austin, TX)
- Salvador D. Jimenez, III (Leander, TX, US)
Cpc classification
H05K7/20481
ELECTRICITY
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G06F1/1656
PHYSICS
G06F1/1635
PHYSICS
International classification
Abstract
Thermal management within an information handling system housing is provided by applying graphene paint to a support structure disposed within the housing, such as a battery casing that supports battery cells, a keyboard lattice that supports keyboard coupling to the housing and screws that attach components to the housing. The graphene paint may have different concentrations of graphene and/or different thicknesses so that the thermal characteristics of the support structure adapt to thermal generation within the housing, such as to keep an even distribution of temperatures within the housing.
Claims
1. An information handling system comprising: a housing having an interior and exterior; a processor disposed in the housing interior and operable to execute instructions to process information; a memory disposed in the housing interior and interfaced with the processor, the memory operable to store the instructions and information; a support structure separate from and coupled with the housing, the support structure having a surface facing the housing interior; and graphene paint applied to the support structure at least where the support structure surface faces the housing interior.
2. The information handling system of claim 1 wherein the graphene paint varies in graphene content at different portions of the support structure surface based upon thermal conditions associated with the support structure.
3. The information handling system of claim 1 wherein the graphene paint varies in applied thickness at different portions of the support structure surface based upon thermal conditions associated with the support structure.
4. The information handling system of claim 1 further comprising: a battery disposed in the housing interior and interfaced with the processor and memory to provide power to execute the instructions, the battery having plural battery cells coupled within an outer casing; wherein the support structure comprises the battery outer casing and the graphene paint is applied to the battery outer casing.
5. The information handling system of claim 4 wherein the battery outer casing comprises a plastic material at an outer surface exposed to the housing interior.
6. The information handling system of claim 4 wherein graphene in the graphene paint has a varied graphene concentration based upon thermal characteristics of battery charge and discharge to promote a uniform temperature at the battery outer casing.
7. The information handling system of claim 6 wherein the varied graphene concentrations comprise plural different graphene paints applied to plural surface areas of the battery casing, each graphene having a varied concentration of graphene.
8. The information handling system of claim 6 wherein the varied graphene concentrations comprise plural thicknesses of the graphene paint applied to plural surface areas of the battery casing.
9. The information handling system of claim 1 further comprising: a keyboard coupled to an upper surface of the housing, the keyboard having plural keys to accept end user inputs; and a lattice coupled to the keyboard and having the support structure disposed between the keys; and wherein graphene paint is applied to the lattice support structure disposed between the keys.
10. A method for managing thermal energy at an information handling system interior, the method comprising: enclosing a processor, memory and a support structure inside a housing interior; applying graphene paint to the support structure; processing information with the processor and memory; and accepting thermal energy released by the processor at the graphene paint.
11. The method of claim 10 wherein the applying graphene paint further comprises: applying a first graphene paint having a first graphene concentration to a first portion of the support structure; and applying a second graphene paint having a second graphene concentration at a second portion of the support structure, the second concentration different from the first concentration.
12. The method of claim 11 wherein the support structure comprises a battery casing, the method further comprising: applying the first concentration proximate a power interface connector of the battery; and applying the second concentration distal the power interface connector of the battery, the first concentration greater than the second concentration.
13. The method of claim 10 wherein the applying graphene paint further comprises: applying a first graphene paint thickness to a first portion of the support structure; and applying a second graphene paint thickness to a second portion of the support structure, the second thickness different from the first thickness.
14. The method of claim 13 wherein the support structure comprises a battery casing enclosing plural battery cells, the method further comprising: applying the first graphene paint thickness to the battery casing proximate the battery cells; and applying the second graphene paint thickness to the battery casing distal the battery cells, the first thickness greater than the second thickness.
15. The method of claim 10 further comprising: coupling the support structure to the housing with a screw; and applying the graphene paint to the screw before the coupling.
16. The method of claim 15 further comprising: applying the graphene paint to a keyboard lattice; and coupling the keyboard to the housing with the keyboard lattice inserted over the keyboard keys.
17. The method of claim 10 wherein the applying graphene paint further comprises: molding the support structure from plastic; painting the support structure with the graphene paint; and curing the graphene paint to 100 degrees Celsius.
18. A thermal management system comprising: plural battery cells operable to store and release an electric charge; a battery casing enclosing the battery cells; and graphene paint applied over the battery casing to accept thermal energy.
19. The thermal management system of claim 18 wherein plural different graphene paints are applied to the battery casing, each graphene paint having a different concentration of graphene.
20. The thermal management system of claim 18 wherein plural different graphene paint thicknesses are applied to the battery casing at plural portion of the battery casing surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The present invention may be better understood, and its numerous objects, features and advantages made apparent to those skilled in the art by referencing the accompanying drawings. The use of the same reference number throughout the several figures designates a like or similar element.
[0010]
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION
[0015] An information handling system manages thermal energy within a housing interior by applying graphene paint to support structures facing the housing interior, such as a battery casing and a keyboard lattice. For purposes of this disclosure, an information handling system may include any instrumentality or aggregate of instrumentalities operable to compute, classify, process, transmit, receive, retrieve, originate, switch, store, display, manifest, detect, record, reproduce, handle, or utilize any form of information, intelligence, or data for business, scientific, control, or other purposes. For example, an information handling system may be a personal computer, a network storage device, or any other suitable device and may vary in size, shape, performance, functionality, and price. The information handling system may include random access memory (RAM), one or more processing resources such as a central processing unit (CPU) or hardware or software control logic, ROM, and/or other types of nonvolatile memory. Additional components of the information handling system may include one or more disk drives, one or more network ports for communicating with external devices as well as various input and output (I/O) devices, such as a keyboard, a mouse, and a video display. The information handling system may also include one or more buses operable to transmit communications between the various hardware components.
[0016] Referring now to
[0017] In the example embodiment, a housing cover 34 couples over main housing portion 14 to capture the processing components in an interior of housing 12. A keyboard 40 having plural keys inserts through a key lattice 38 having plural keyboard openings 36 to expose the keys at the housing exterior to accept end user key inputs. For example, embedded controller 28 interfaces with keyboard 40 to accept end user inputs. A battery 41 couples to the interior of housing 12 to provide stored battery charge to power the processing components. For instance, embedded controller 28 manages the application of power to run the processing components and process information. The interior of housing 12 in which the processing components run has a minimal height so that cooling of the processing components by air within housing 12 can prove insufficient for maintaining full power operations of the processing components. In such instances, embedded controller 28 slows the clock speeds of the processing components to help maintain thermal constraints.
[0018] In order to reduce the temperature within housing 12, a graphene paint is applied to support structures within housing 12 so that the graphene is available to absorb, spread and dissipate excess thermal energy. For instance, graphene paint is applied to a plastic casing that supports battery 41, key lattice 38 and screws 32, as well as any support structures that are exposed to thermal energy released within housing 12, such as the inner surface of housing cover 34 and the bottom surface of keyboard 40. Advantageously, graphene paint fills complex structural shapes with graphene that can then help to accept excess thermal energy. To achieve application of graphene paint on a support structure, once the support structure is formed, such as with machining or plastic molding, an argon cleaning of the surface is performed, a 5 micrometer thick spray of a 10% Nanoture and 10% graphene flake formulation is applied and then cured to 100 degrees Celsius, providing a polymer matrix of graphene with excellent thermal conductivity. In situations where a support structure has temperature limitations, such as may be the case with a battery, a lower cure temperature of 75 degrees Celsius may be used for a slightly longer time period of curing. Graphene paint is, for instance, a two-dimensional carbon nanometer material composed of carbon atoms with SP.sup.2 hybrid orbital forming a hexagonal shape and honeycomb lattice with a size of between 5 and 50 nanometers. When applied as a paint, the graphene achieves thermal management at difficult to reach locations within the housing interior, such as complex shapes of keyboard ribbing, screw posts and hook structures that conventional graphene sheet heat spreaders cannot reach. Indeed, with complex and stepped structures found in some components, such as a battery casing, a gradient graphene paint thickness extends thermal dissipation into difficult to reach areas, and allows thermal absorption and dissipation at materials that have low thermal conductivity, such as plastic molded parts. Further, a thermal profile within a housing interior may be provided by selectively applying the graphene paint to achieve desired thermal characteristics. For instance, graphene paints of greater graphene concentration may be used for greater thermal conductivity. Similarly, thicker layers of graphene paint may be applied to increase thermal carrying absorption where greater amounts of thermal energy are present or are in need of dissipation.
[0019] Referring now to
[0020] Referring now to
[0021] Referring now to
[0022] Referring now to
[0023] Although the present invention has been described in detail, it should be understood that various changes, substitutions and alterations can be made hereto without departing from the spirit and scope of the invention as defined by the appended claims.