Controllable long term operation of a nuclear reactor

US9831004B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9831004-B2
Application numberUS-31644608-A
CountryUS
Kind codeB2
Filing dateDec 12, 2008
Priority dateNov 28, 2006
Publication dateNov 28, 2017
Grant dateNov 28, 2017

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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.

Exemplary embodiments provide automated nuclear fission reactors and methods for their operation. Exemplary embodiments and aspects include, without limitation, re-use of nuclear fission fuel, alternate fuels and fuel geometries, modular fuel cores, fast fluid cooling, variable burn-up, programmable nuclear thermostats, fast flux irradiation, temperature-driven surface area/volume ratio neutron absorption, low coolant temperature cores, refueling, and the like.

First claim

Opening claim text (preview).

What is claimed is: 1. A nuclear fission reactor comprising: a burning wavefront heat generating region of a nuclear fission reactor, the burning wavefront heat generating region including a nuclear fission igniter centrally located within a nuclear fission reactor core and configured to initiate a propagating nuclear fission deflagration wave; a condensed phase density fluid flowable in thermal contact with the burning wavefront heat generating region and with a heat extraction region substantially out of thermal contact with the burning wavefront heat generating region; one or more operating condition detectors positioned to detect an operating condition in the burning wavefront heat generating region of the nuclear fission reactor core and to generate a control signal indicating the detected operating condition; a plurality of neutron modifying structures configured to direct the propagating nuclear fission deflagration wave within the burning wavefront heat generating region of the nuclear fission reactor core according to a selected propagation parameter, the control signal selectively controlling placement of the neutron modifying structures within the burning wavefront heat generating region of the nuclear fission reactor core when the detected operating condition satisfies a predetermined criterion, wherein the selected propagation parameter is a selected propagation rate and the plurality of neutron modifying structures are configured to speed up a propagation rate by being inserted behind a burnfront of the propagating nuclear fission deflagration wave. 2. The nuclear fission reactor of claim 1 , wherein the condensed phase density fluid includes at least one condensed phase density fluid chosen from liquid metals, terphenyls, polyphenyls, fluorocarbons, and FLIBE. 3. The nuclear fission reactor of claim 1 , wherein the condensed phase density fluid includes a nuclear inert material. 4. The nuclear fission reactor of claim 3 , wherein the nuclear inert material includes He4. 5. The nuclear fission reactor of claim 1 , wherein the neutron modifying structures include at least one of neutron absorbing material and neutron moderating material. 6. The nuclear fission reactor of claim 1 , wherein the plurality of neutron modifying structures are further configured to direct the propagating nuclear fission deflagration wave within the burning wavefront heat generating region of the nuclear fission reactor core by selected ones of the neutron modifying structures being inserted into and removed from the burning wavefront heat generating region. 7. The nuclear fission reactor of claim 1 , wherein the detected operating condition includes at least one local temperature in the nuclear fission reactor core, wherein the one or more operating condition detectors include a plurality of temperature detectors positioned to detect local temperature in the nuclear fission reactor core, and wherein the control signal includes a temperature profile of the nuclear fission reactor core. 8. The nuclear fission reactor of claim 1 , wherein the detected operating condition includes at least one local temperature in the nuclear fission reactor core, wherein the one or more operating condition detectors include a plurality of temperature detectors positioned to detect local temperature in the nuclear fission reactor core, wherein the control signal includes a temperature profile of the nuclear fission reactor core, and wherein the plurality of neutron modifying structures are selectively removed from the nuclear fission reactor core when the at least one local temperature is below a predetermined temperature threshold. 9. The nuclear fission reactor of claim 1 , wherein the control signal indicates at least one member of a group comprising: a power level, neutron level, neutron spectrum, neutron absorption, and fuel burnup level. 10. A nuclear fission reactor comprising: a burning wavefront heat generating region of a nuclear fission reactor, the burning wavefront heat generating region including a nuclear fission igniter centrally located within a nuclear fission reactor core and configured to initiate a propagating nuclear fission deflagration wave; a condensed phase density fluid flowable in thermal contact with the burning wavefront heat generating region and with a heat extraction region substantially out of thermal contact with the burning wavefront heat generating region; one or more operating condition detectors positioned to detect an operating condition in the burning wavefront heat generating region of the nuclear fission reactor core and to generate a control signal indicating the detected operating condition; a plurality of neutron modifying structures configured to direct the propagating nuclear fission deflagration wave within the burning wavefront heat generating region of the nuclear fission reactor core according to a selected propagation parameter, the control signal selectively controlling placement of the neutron modifying structures within the burning wavefront heat generating region of the nuclear fission reactor core when the detected operating condition satisfies a predetermined criterion, wherein the selected propagation parameter is a selected propagation rate and the plurality of neutron modifying structures are configured to slow down a propagation rate by being inserted ahead of a burnfront of the propagating nuclear fission deflagration wave. 11. The nuclear fission reactor of claim 10 , wherein the condensed phase density fluid includes at least one condensed phase density fluid chosen from liquid metals, terphenyls, polyphenyls, fluorocarbons, and FLIBE. 12. The nuclear fission reactor of claim 10 , wherein the condensed phase density fluid includes a nuclear inert material. 13. The nuclear fission reactor of claim 12 , wherein the nuclear inert material includes He4. 14. The nuclear fission reactor of claim 10 , wherein the neutron modifying structures include at least one of neutron absorbing material and neutron moderating material. 15. The nuclear fission reactor of claim 10 , wherein the plurality of neutron modifying structures are further configured to direct the propagating nuclear fission deflagration wave within the burning wavefront heat generating region of the nuclear fission reactor core by inserting and removing selected ones of the neutron modifying structures into the burning wavefront heat generating region. 16. The nuclear fission reactor of claim 10 , wherein the detected operating condition includes at least one local temperature in the nuclear fission reactor core, wherein the one or more operating condition detectors include a plurality of temperature detectors positioned to detect local temperature in the nuclear fission reactor core, and wherein the control signal includes a temperature profile of the nuclear fission reactor core. 17. The nuclear fission reactor of claim 10 , wherein the detected operating condition includes at least one local temperature in the nuclear fission reactor core, wherein the one or more operating condition detectors include a plurality of temperature detectors positioned to detect local temperature in the nuclear fission reactor core, wherein the control signal includes a temperature profile of the nuclear fission reactor core, and wherein the plurality of neutron modifying structures are selectively removed from the nuclear fission reactor core when the at least one local temperature is below a predetermined temperature threshold. 18. The nuclear fission reactor of claim 10 , wherein the contro

Assignees

Inventors

Classifications

  • Cross-Sectional Technologies · mapped topic

  • G21D1/00Primary

    Details of nuclear power plant (control G21D3/00) · CPC title

  • Fast fission reactors, i.e. reactors not using a moderator {; Metal cooled reactors; Fast breeders} · CPC title

  • by application of neutron-absorbing material, i.e. material with absorption cross-section very much in excess of reflection cross-section · CPC title

  • Reactors not needing refuelling, i.e. reactors of the type breed-and-burn, e.g. travelling or deflagration wave reactors or seed-blanket reactors · CPC title

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What does patent US9831004B2 cover?
Exemplary embodiments provide automated nuclear fission reactors and methods for their operation. Exemplary embodiments and aspects include, without limitation, re-use of nuclear fission fuel, alternate fuels and fuel geometries, modular fuel cores, fast fluid cooling, variable burn-up, programmable nuclear thermostats, fast flux irradiation, temperature-driven surface area/volume ratio neutron…
Who is the assignee on this patent?
Hyde Roderick A, Ishikawa Muriel Y, Myhrvold Nathan P, and 2 more
What technology area does this patent fall under?
Primary CPC classification G21D1/00. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Nov 28 2017 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 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).