Systems And Methods With Auxiliary Control Boards Having Interface Devices
US-2024393848-A1 · Nov 28, 2024 · US
US9588558B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9588558-B2 |
| Application number | US-201313917625-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jun 13, 2013 |
| Priority date | Jun 13, 2013 |
| Publication date | Mar 7, 2017 |
| Grant date | Mar 7, 2017 |
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.
A self-powered processing device comprises both a processing device and a power generator that are physically, electrically, and thermally coupled to one another. The power generator can be a fuel cell that can be manufactured from materials that can also support processing circuitry, such as silicon-based materials. A thermal coupling between the power generator and the processing device can include a thermoelectric either generating electrical power from the temperature differential or consuming electrical power to generate a temperature differential. A computing device with self-powered processing devices also includes energy storage devices to store excess energy produced by the self-powered processing device and provide it back during times of need. The self-powered processing device comprises either a wireless or wired network connection, the latter being connectable to a slot on a backplane that can aggregate multiple self-powered processing devices and provide fuel delivery paths for them.
Opening claim text (preview).
We claim: 1. A self-powered processing device comprising: a power generator configured to generate electrical power in a form and potential that is natively consumable by a processing circuitry; a processing device comprising the processing circuitry; a silicon-based material comprising at least some of the processing circuitry and structures of the power generator; at least one electrical connection between the power generator and the processing device, the at least one electrical connection enabling the processing device to consume the electrical power generated by the power generator; and an external electrical connection, wherein the self-powered processing device provides excess electrical energy via the external electrical connection during periods when processing performed by the processing device decreases more rapidly than a corresponding decrease in power generated by the power generator, and wherein further the self-powered processing device consumes excess electrical energy via the external electrical connection during periods when processing performed by the processing device increases more rapidly than a corresponding increase in power generated by the power generator. 2. The self-powered processing device of claim 1 , wherein the processing device further comprises computer-readable storage media. 3. The self-powered processing device of claim 1 , comprising a second thermal coupling between the processing device and fuel being routed to the power generator, the second thermal coupling enabling the fuel to cool the processing device and further enabling the processing device to heat up the fuel prior to its consumption by the power generator. 4. The self-powered processing device of claim 1 , wherein the processing device executes computer-executable instructions for delaying an increase in processing performed by the processing device to allow time for the power generator to correspondingly increase the electrical power it generates. 5. The self-powered processing device of claim 1 , wherein the processing device executes computer-executable instructions for performing low priority tasks, thereby delaying a decrease in processing performed by the processing device to allow time for the power generator to correspondingly decrease the electrical power it generates. 6. The self-powered processing device of claim 1 , wherein the processing circuitry is etched on a first side of the silicon-based material and the structures of the power generator are etched on a second side of the silicon-based material, wherein the second side is opposite the first side. 7. A computing device comprising: a self-powered processing device comprising a power generator integrated with a processing device and an external electrical connection, wherein the self-powered processing device provides excess electrical energy via the external electrical connection during periods when processing performed by the processing device decreases more rapidly than a corresponding decrease in power generated by the power generator, and wherein further the self-powered processing device consumes excess electrical energy via the external electrical connection during periods when processing performed by the processing device increases more rapidly than a corresponding increase in power generated by the power generator; and an electrical energy storage device; wherein the processing device executes computer-executable instructions that delay an increase in processing performed by the processing device to allow time for the power generator to correspondingly increase electrical power generated by it; and wherein further the processing device executes computer-executable instructions comprising low priority tasks to delay a decrease in processing performed by the processing device to allow time for the power generator to correspondingly decrease the electrical power generated by it. 8. The computing device of claim 7 , further comprising fuel canisters comprising pressurized gas; wherein the power generator is a fuel cell. 9. The computing device of claim 7 , further comprising piping from the fuel canisters to the power generator, the piping forming a thermal coupling with the processing device, the thermal coupling transferring heat from the processing device to the fuel being carried to the power generator by the piping. 10. The computing device of claim 7 , wherein the self-powered processing device further comprises a thermoelectric between the power generator and the processing device, the thermoelectric either generating additional electrical energy based upon a temperature differential between the power generator and the processing device, or consuming some electrical energy generated by the power generator to actively transfer heat from the processing device to the power generator. 11. The computing device of claim 7 , wherein the electrical energy storage device is electrically coupled to the self-powered processing device via the external electrical connection and stores excess electrical energy generated by the self-powered processing device during periods when processing performed by the processing device decreases more rapidly than a corresponding decrease in power generated by the power generator. 12. The computing device of claim 7 , wherein further the electrical energy storage device is electrically coupled to the self-powered processing device via the external electrical connection and provides extra electrical energy to the self-powered processing device during periods when processing performed by the processing device increases more rapidly than a corresponding increase in power generated by the power generator. 13. A system comprising: a first self-powered processing device comprising a first power generator, a first processing device, a first external electrical connection and a first physical coupling between the first power generator and the first processing device causing the first power generator and the first processing device to form a first single unitary structure, wherein the first self-powered processing device provides excess electrical energy via the first external electrical connection during periods when processing performed by the first processing device decreases more rapidly than a corresponding decrease in power generated by the first power generator, and wherein further the first self-powered processing device consumes excess electrical energy via the external electrical connection during periods when processing performed by the first processing device increases more rapidly than a corresponding increase in power generated by the first power generator; a second self-powered processing device comprising a second power generator, a second processing device, a second external electrical connection and a second physical coupling between the second power generator and the second processing device causing the second power generator and the second processing device to form a second single unitary structure; and a communicational connection between the first self-powered processing device, the second self-powered processing device and a network of further computing devices; wherein the first self-powered processing device and the second self-powered processing device are joined either by a inter-device physical coupling or by an inter-device electrical power coupling. 14. The system of claim 13 , wherein the first power generator comprises a first fuel cell comprising a first anode and a first cathode; and wherein further the inter-device physical coupling creates channels for forcing a fuel gas across at least one of the first anode, or
Arrangements for protection of devices (arrangements for thermal protection H10W40/00) · CPC title
comprising thermal management · CPC title
Fuel cells in stationary systems, e.g. emergency power source in plant · CPC title
Fuel cells with solid oxide electrolytes · CPC title
Fuel cells applied on a support, e.g. miniature fuel cells deposited on silica supports · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.