Emergency core cooling system and boiling water reactor plant using the same
US-10991471-B2 · Apr 27, 2021 · US
US11955249B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11955249-B2 |
| Application number | US-202017084440-A |
| Country | US |
| Kind code | B2 |
| Filing date | Oct 29, 2020 |
| Priority date | Oct 29, 2020 |
| Publication date | Apr 9, 2024 |
| Grant date | Apr 9, 2024 |
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A heat pipe configured to remove heat from a nuclear reactor core is disclosed herein. The heat pipe can include an inner housing defining an inner volume configured to accommodate a heat source and an outer housing configured about the inner housing and the heat source. A wick can be positioned between at least a portion of the inner housing and at least a portion of the outer housing, wherein the wick can include a capillary material, and wherein the wick can define an intermediate volume between the inner housing and the outer housing. A working fluid can be positioned within the intermediate volume, wherein the working fluid can evaporate at a first end of the heat pipe and condense at a second end of the heat pipe adjacent to a heat exchanger, and wherein the wick can return condensed working fluid to the first end of the heat pipe.
Opening claim text (preview).
What is claimed is: 1. A unit cell configured to remove heat generated by a nuclear reactor, the unit cell comprising: a core block material; and a plurality of devices disposed throughout the core block material, wherein at least one device of the plurality of devices comprises a heat pipe comprising: a length; an inner housing comprising an outer surface, wherein the inner housing defines an inner volume configured to accommodate a heat source; an outer housing comprising an inner surface, wherein the outer housing is configured about the inner housing and the heat source; a wick positioned between the inner housing and the outer housing and extending along at least a portion of the length of the heat pipe, wherein the wick comprises a capillary material, wherein the wick is configured to contact at least a portion of the outer surface of the inner housing, wherein the wick is configured to contact at least a portion of the inner surface of the outer housing, and wherein the wick defines an intermediate volume between the inner housing and the outer housing; and a working fluid within the intermediate volume, wherein the working fluid is configured to evaporate at a first end of the heat pipe, wherein the working fluid is further configured to condense at a second end of the heat pipe, wherein the wick is configured to return working fluid that has condensed at the second end of the heat pipe to the first end of the heat pipe, and wherein the evaporation and condensation of the working fluid is configured to transfer heat from the first end of the heat pipe to the second end of the heat pipe for dissipation. 2. The unit cell of claim 1 , wherein the core block material comprises graphite. 3. The unit cell of claim 1 , wherein the wick comprises a plurality of ribs, wherein at least a first rib of the plurality of ribs contacts at least a portion of the outer surface of the inner housing, and wherein at least a second rib of the plurality of ribs contacts at least a portion of the inner surface of the outer housing. 4. The unit cell of claim 3 , wherein the heat pipe comprises a tube configuration, wherein the outer housing and the inner housing each comprise a circular configuration, wherein the outer housing is concentrically oriented about the inner housing, and wherein the plurality of ribs are configured to extend radially from a center point of the inner housing. 5. The unit cell of claim 1 , wherein the heat pipe further comprises an end-cap coupled to the second end of the heat pipe, wherein the second end-cap is configured to mechanically contact the outer housing, the inner housing, and the wick, thereby establishing a thermal circuit that traverses through the inner volume and intermediary volume. 6. The unit cell of claim 1 , wherein the heat pipe further comprises a cladding configured about the outer housing, wherein the cladding defines a second intermediary volume about the outer housing, and wherein a nuclear fuel is positioned within the second intermediary volume. 7. The unit cell of claim 1 , wherein the heat pipe is configured to contain an excess amount of working fluid, and wherein the excess amount of working fluid is configured to prevent the heat pipe and its components from drying out. 8. The unit cell of claim 1 , wherein the heat pipe is configured as a vertically oriented thermosiphon configured such that gravity at least partially assists the wick in returning working fluid that has condensed at the second end of the heat pipe to the first end of the heat pipe.
using heat-pipes {(in general F28D, F28F)} · CPC title
characterised by the material or the construction of the capillary structure · CPC title
for nuclear applications · CPC title
Nuclear fission reactors · CPC title
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