Patent classifications
G21C15/06
3D PRINTED FEATURES ON NUCLEAR FUEL CLADDING FOR OPTIMIZED HEAT TRANSFER
A nuclear fuel cladding with improved thermomechanical properties is provided. The nuclear fuel cladding includes a double-walled construction having inner and outer hexagonal sidewalls. The inner sidewall and the outer sidewall are spaced apart from each other to form a cooling channel therebetween, and the inner sidewall surrounds a nuclear fuel and is spaced apart from the nuclear fuel by a small gap. Helical fins extend into the cooling channel to interconnect the inner sidewall and the outer sidewall. Resilient fingers extend toward the nuclear fuel through the small gap to comply with variations in the size of the nuclear fuel due to fabrication tolerances as well as thermal expansion and swelling of the nuclear fuel, for example UO.sub.2, when undergoing fission. The nuclear fuel cladding is formed according to an additive manufacturing process, for example laser powder bed fusion printing.
3D PRINTED FEATURES ON NUCLEAR FUEL CLADDING FOR OPTIMIZED HEAT TRANSFER
A nuclear fuel cladding with improved thermomechanical properties is provided. The nuclear fuel cladding includes a double-walled construction having inner and outer hexagonal sidewalls. The inner sidewall and the outer sidewall are spaced apart from each other to form a cooling channel therebetween, and the inner sidewall surrounds a nuclear fuel and is spaced apart from the nuclear fuel by a small gap. Helical fins extend into the cooling channel to interconnect the inner sidewall and the outer sidewall. Resilient fingers extend toward the nuclear fuel through the small gap to comply with variations in the size of the nuclear fuel due to fabrication tolerances as well as thermal expansion and swelling of the nuclear fuel, for example UO.sub.2, when undergoing fission. The nuclear fuel cladding is formed according to an additive manufacturing process, for example laser powder bed fusion printing.
Direct reactor auxiliary cooling system for a molten salt nuclear reactor
This disclosure describes various configurations and components of a molten fuel fast or thermal nuclear reactor for managing the operating temperature in the reactor core. The disclosure includes various configurations of direct reactor auxiliary cooling system (DRACS) heat exchangers and primary heat exchangers as well as descriptions of improved flow paths for nuclear fuel, primary coolant and DRACS coolant through the reactor components.
Direct reactor auxiliary cooling system for a molten salt nuclear reactor
This disclosure describes various configurations and components of a molten fuel fast or thermal nuclear reactor for managing the operating temperature in the reactor core. The disclosure includes various configurations of direct reactor auxiliary cooling system (DRACS) heat exchangers and primary heat exchangers as well as descriptions of improved flow paths for nuclear fuel, primary coolant and DRACS coolant through the reactor components.
Standing wave nuclear fission reactor and methods
- Charles E. Ahlfeld ,
- Thomas M. Burke ,
- Tyler S. Ellis ,
- John Rogers Gilleland ,
- Jonatan Hejzlar ,
- Pavel Hejzlar ,
- Roderick A. Hyde ,
- David G. McAlees ,
- Jon D. McWhirter ,
- Ashok Odedra ,
- Robert C. Petroski ,
- Nicholas W. Touran ,
- Joshua C. Walter ,
- Kevan D. Weaver ,
- Thomas Allan Weaver ,
- Charles Whitmer ,
- Lowell L. Wood, Jr. ,
- George B. Zimmerman
Disclosed embodiments include nuclear fission reactor cores, nuclear fission reactors, methods of operating a nuclear fission reactor, and methods of managing excess reactivity in a nuclear fission reactor.
Standing wave nuclear fission reactor and methods
- Charles E. Ahlfeld ,
- Thomas M. Burke ,
- Tyler S. Ellis ,
- John Rogers Gilleland ,
- Jonatan Hejzlar ,
- Pavel Hejzlar ,
- Roderick A. Hyde ,
- David G. McAlees ,
- Jon D. McWhirter ,
- Ashok Odedra ,
- Robert C. Petroski ,
- Nicholas W. Touran ,
- Joshua C. Walter ,
- Kevan D. Weaver ,
- Thomas Allan Weaver ,
- Charles Whitmer ,
- Lowell L. Wood, Jr. ,
- George B. Zimmerman
Disclosed embodiments include nuclear fission reactor cores, nuclear fission reactors, methods of operating a nuclear fission reactor, and methods of managing excess reactivity in a nuclear fission reactor.
ADJUSTING WAIT TIME BETWEEN BURN CYCLES OR MERGING BURN CYCLES
Passive reactivity control technologies that enable reactivity control of a nuclear thermal propulsion (NTP) system with little to no active mechanical movement of circumferential control drums. By minimizing or eliminating the need for mechanical movement of the circumferential control drums during an NTP burn, the reactivity control technologies simplify controlling an NTP reactor and increase the overall performance of the NTP system. The reactivity control technologies mitigate and counteract the effects of xenon, the dominant fission product contributing to reactivity transients. Examples of reactivity control technologies include, employing burnable neutron poisons, tuning hydrogen pressure, adjusting wait time between burn cycles or merging burn cycles, and enhancement of temperature feedback mechanisms. The reactivity control technologies are applicable to low-enriched uranium NTP systems, including graphite composite fueled and tungsten ceramic and metal matrix (CERMET), or any moderated NTP system, such as highly-enriched uranium graphite composite NTP systems.
STANDING WAVE NUCLEAR FISSION REACTOR AND METHODS
- Charles E. Ahlfeld ,
- Thomas M. Burke ,
- Tyler S. Ellis ,
- John R. Gilleland ,
- Jonatan Hejzlar ,
- Pavel Hejzlar ,
- Roderick A. Hyde ,
- David G. McAlees ,
- Jon D. McWhirter ,
- Ashok Odedra ,
- Robert C. Petroski ,
- Nicholas W. Touran ,
- Joshua C. Walter ,
- Kevan D. Weaver ,
- Thomas A. Weaver ,
- Charles Whitmer ,
- Lowell L. Wood, Jr. ,
- George B. Zimmerman
Disclosed embodiments include nuclear fission reactor cores, nuclear fission reactors, methods of operating a nuclear fission reactor, and methods of managing excess reactivity in a nuclear fission reactor.
STANDING WAVE NUCLEAR FISSION REACTOR AND METHODS
- Charles E. Ahlfeld ,
- Thomas M. Burke ,
- Tyler S. Ellis ,
- John R. Gilleland ,
- Jonatan Hejzlar ,
- Pavel Hejzlar ,
- Roderick A. Hyde ,
- David G. McAlees ,
- Jon D. McWhirter ,
- Ashok Odedra ,
- Robert C. Petroski ,
- Nicholas W. Touran ,
- Joshua C. Walter ,
- Kevan D. Weaver ,
- Thomas A. Weaver ,
- Charles Whitmer ,
- Lowell L. Wood, Jr. ,
- George B. Zimmerman
Disclosed embodiments include nuclear fission reactor cores, nuclear fission reactors, methods of operating a nuclear fission reactor, and methods of managing excess reactivity in a nuclear fission reactor.
Heat pipe fission fuel element
Illustrative embodiments provide nuclear fission fuel elements, and systems, applications, apparatuses, and methods related thereto. Illustrative embodiments and aspects include, without limitation, nuclear fission fuel elements, heat pipe assemblies, heat pipes, methods of fabricating a nuclear fission fuel element, methods of fabricating a heat pipe assembly, and the like.