IP Library Patent Application 12316424
Patent Application
App. No. 12/316,424

Method and system for providing fuel in a nuclear reactor

Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US None
App. No.
12/316,424
Abstract

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.

Claims (36)

1 .- 87 . (canceled)

88 . A method of operating a modular nuclear fission reactor, the method comprising:

providing a nuclear fission reactor core configured to receive a predetermined number of nuclear fission fuel assemblies;

inserting the predetermined number of nuclear fission fuel assemblies into the reactor core; and

neutronically coupling to the nuclear fission fuel assemblies a nuclear fission igniter configured to initiate a nuclear fission deflagration wave.

89 . The method of claim 88 , further comprising initiating a nuclear fission deflagration wave through the nuclear fission fuel assemblies.

90 . The method of claim 89 , further comprising removing from its receptacle a burnt nuclear fission fuel assembly through which the nuclear fission deflagration wave has propagated.

91 . The method of claim 90 , further comprising inserting an unused nuclear fission fuel assembly into the receptacle from which the burnt nuclear fission fuel assembly was removed.

92 . The method of claim 91 , further comprising initiating a nuclear fission deflagration wave in the unused nuclear fission fuel assembly.

93 . The method of claim 88 , wherein the nuclear fission deflagration wave and the nuclear fission fuel assemblies move relative to each other.

94 . The method of claim 93 , wherein:

the nuclear fission fuel assemblies are stationary; and

the nuclear fission deflagration wave propagates through the nuclear fission fuel assemblies.

95 . The method of claim 93 , wherein:

the nuclear fission deflagration wave remains substantially spatially fixed; and

the nuclear fission fuel assemblies move relative to the nuclear fission deflagration wave.

96 . A nuclear fission fuel core comprising:

a first nuclear fission fuel region having a first nuclear fission fuel material characteristic; and

a second nuclear fission fuel region spaced apart from the first nuclear fission fuel region, the second nuclear fission fuel region having a second nuclear fission fuel material characteristic that is different from the first nuclear fission fuel material characteristic.

97 . The nuclear fission fuel core of claim 96 , wherein:

the first nuclear fission fuel material characteristic includes a first percentage of nuclear fission fuel material in the first nuclear fission fuel region; and

the second nuclear fission fuel material characteristic includes a second percentage of nuclear fission fuel material in the second nuclear fission fuel region.

98 . The nuclear fission fuel core of claim 96 , wherein:

the first nuclear fission fuel material characteristic includes a first isotope of nuclear fission fuel material in the first nuclear fission fuel region; and

the second nuclear fission fuel material characteristic includes a second isotope nuclear fission fuel material in the second nuclear fission fuel region.

99 . The nuclear fission fuel core of claim 96 , wherein the nuclear fission fuel material in the first nuclear fission fuel region is a same nuclear fission fuel material that is in the second nuclear fission fuel region.

100 . The nuclear fission fuel core of claim 96 , wherein the nuclear fission fuel material in the first nuclear fission fuel region is a different nuclear fission fuel material from nuclear fission fuel material that is in the second nuclear fission fuel region.

101 . The nuclear fission fuel core of claim 96 , wherein the nuclear fission fuel material includes at least one nuclear fission fuel material chosen from thorium and uranium.

102 . The nuclear fission fuel core of claim 96 , wherein the nuclear fission fuel material includes:

a breedable isotope; and

a fissionable element.

103 . The nuclear fission fuel core of claim 102 , wherein the breedable isotope includes an isotope chosen from Th 232 and U 238 .

104 . The nuclear fission fuel core of claim 102 , wherein the fissionable isotope includes a fissionable isotope of an element chosen from an actinide element and a transuranic element.

105 . The nuclear fission fuel core of claim 104 , wherein the element includes an element chosen from uranium, plutonium, and americium.

106 . The nuclear fission fuel core of claim 96 , wherein the second nuclear fission fuel region is radially spaced apart from the first nuclear fission fuel region.

107 . The nuclear fission fuel core of claim 96 , wherein the second nuclear fission fuel region is axially spaced apart from the first nuclear fission fuel region.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 24, 2014
From: SEARETE LLC
To: TERRAPOWER, LLC
Reel/Frame 032754/0810 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 11, 2009
From: HYDE, RODERICK A.; ISHIKAWA, MURIEL Y.; MYHRVOLD, NATHAN P.; WOOD, LOWELL L., JR.
To: SEARETE LLC
Reel/Frame 022393/0878 →