Device, system and method for removing heat from a nuclear reactor core
Annular heat pipes with a concentric wick structure and working fluid efficiently transfer heat from small nuclear reactors, addressing the inefficiencies of conventional systems and enabling compact thermal management.
Patent Information
- Application Number
- JP2025167781
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2020-10-29
- Filing Date
- 2025-10-05
- Publication Date
- 2026-01-21
AI Technical Summary
Conventional heat pipes are ineffective in efficiently removing heat from small nuclear reactors, which hinders the reduction of reactor size and increases the risk of overheating and potential danger.
The use of annular heat pipes with a concentric wick structure and a working fluid that evaporates and condenses within the heat pipe, transferring heat efficiently without the need for mechanical pumps, allowing for a compact thermal management system.
This configuration enhances heat transfer efficiency, reduces reactor size, and improves reliability by eliminating the need for auxiliary cooling components, thus managing thermal energy effectively in small nuclear reactors.
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Figure 2026009997000001_ABST
Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Non-Provisional Patent Application No. 17 / 084,440, filed October 29, 2020, and entitled "DEVICES, SYSTEMS, AND METHODS FOR REMOVING HEAT FROM A NUCLEAR REACTOR CORE," the contents of which are incorporated herein by reference in their entirety.
[0002] The present disclosure relates generally to nuclear power generation and, more particularly, to improved devices, systems, and methods configured to remove thermal energy from a nuclear reactor core. Summary of the Invention
[0003] The following summary is provided to facilitate an understanding of some of the innovative features unique to the embodiments disclosed herein and is not intended to be a complete description, with a full understanding of the various embodiments being gained by taking the specification, claims, and abstract, all of which are taken as a whole.
[0004] In various aspects, a heat pipe configured to remove heat from a nuclear reactor core is disclosed. The heat pipe includes an inner housing having a length and an outer surface, the inner housing defining an interior volume configured to accommodate a heat source. The heat pipe further includes an outer housing having an interior surface configured around the inner housing and the heat source. The heat pipe further includes a wick disposed between the inner and outer housings and extending along at least a portion of the length of the heat pipe, the wick including a capillary material, the wick configured to contact at least a portion of the exterior surface of the inner housing and at least a portion of the interior surface of the outer housing, and the wick defining an intermediate volume between the inner and outer housings. The heat pipe further includes a working fluid within the intermediate volume, the working fluid configured to evaporate at a first end of the heat pipe and condense at a second end of the heat pipe adjacent to the heat exchanger, the wick configured to return the working fluid condensed at the second end of the heat pipe to the first end of the heat pipe, and the evaporation and condensation of the working fluid transfers heat from the first end of the heat pipe to the second end of the heat pipe and is dissipated via the heat exchanger.
[0005] In various aspects, a unit cell configured to remove heat generated by a nuclear reactor is disclosed. The unit cell includes a core block material and a plurality of devices disposed throughout the core block material. At least one device of the plurality of devices includes a heat pipe including an inner housing having a length and an outer surface. The inner housing defines an inner volume configured to accommodate a heat source. The heat pipe further includes an outer housing having an inner surface, the outer housing configured around the inner housing and the heat source. The heat pipe further includes a wick disposed between the inner housing and the outer housing and extending along at least a portion of the length of the heat pipe, the wick including a capillary material, the wick configured to contact at least a portion of the outer surface of the inner housing and at least a portion of the inner surface of the outer housing, and the wick defining an intermediate volume between the inner housing and the outer housing. The heat pipe further includes a working fluid within the intermediate volume, the working fluid configured to evaporate at a first end of the heat pipe and condense at a second end of the heat pipe adjacent to the heat exchanger, the wick configured to return the working fluid condensed at the second end of the heat pipe to the first end of the heat pipe, and the evaporation and condensation of the working fluid transfers heat from the first end of the heat pipe to the second end of the heat pipe and is dissipated via the heat exchanger.
[0006] In various aspects, a heat pipe configured to remove heat from a nuclear reactor core is disclosed. The heat pipe may include an inner housing defining an inner volume configured to accommodate a heat source and an outer housing configured around the inner housing and the heat source. The heat pipe may further include a wick disposed between at least a portion of the inner housing and at least a portion of the outer housing, the wick including a capillary material, the wick defining an intermediate volume between the inner housing and the outer housing. The heat pipe may further include a working fluid within the intermediate volume, the working fluid configured to evaporate at a first end of the heat pipe and condense at a second end of the heat pipe adjacent a heat exchanger, the wick configured to return the working fluid condensed at the second end of the heat pipe to the first end of the heat pipe.
[0007] These and other objects, features, and characteristics of the present invention, together with the method of operation and function of the elements involved and the combination of parts and economy of manufacture, will become more apparent from a consideration of the following description and appended claims, all of which form a part of this specification, when taken in conjunction with the accompanying drawings in which like reference numerals indicate corresponding parts in the various views. It is to be expressly understood, however, that the drawings are for the purpose of illustration and description only and are not intended as a definition of the limits of the invention. [Brief explanation of the drawings]
[0008] The various features of the aspects described herein are set forth with particularity in the appended claims. However, the various aspects, both as to organization and method of operation, together with their advantages may be understood by reference to the following description taken in conjunction with the accompanying drawings, in which:
[0009] [Figure 1] 1 illustrates a cross-sectional view of a device configured to remove heat from a core of a nuclear reactor, according to at least one non-limiting embodiment of the present disclosure. [Figure 2]FIG. 1 illustrates a cross-sectional view of another device configured to remove heat from a nuclear reactor core, in accordance with at least one non-limiting embodiment of the present disclosure. [Figure 3] FIG. 1 illustrates a top view of a unit cell including a plurality of devices configured to remove heat from a core of a nuclear reactor, according to at least one non-limiting embodiment of the present disclosure. [Figure 4] FIG. 1 illustrates a side view of a system configured to remove heat from a nuclear reactor core, in accordance with at least one non-limiting embodiment of the present disclosure. [Figure 5] FIG. 1 illustrates a side view of another system configured to remove heat from a nuclear reactor core, in accordance with at least one non-limiting embodiment of the present disclosure.
[0010] Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set forth herein illustrate various aspects of the invention in one form, and such exemplifications should not be construed as limiting the scope of the invention in any manner. DETAILED DESCRIPTION OF THE INVENTION
[0011] Numerous specific details are set forth to provide a thorough understanding of the overall structure, function, manufacture, and use of the embodiments described in this disclosure and illustrated in the accompanying drawings. Well-known operations, components, and elements have not been described in detail so as not to obscure the embodiments described herein. The reader will understand that the embodiments described and illustrated herein are non-limiting examples, and therefore, it will be understood that specific structural and functional details disclosed herein may be representative and exemplary. Variations and modifications thereto may be made without departing from the scope of the claims. Furthermore, it should be understood that terms such as "forward," "rear," "left," "right," "upward," "downward," etc. are terms of convenience and should not be construed as limiting terms.
[0012] In the following description, like reference numerals designate like or corresponding parts throughout the several views of the drawings. It should also be understood that in the following description, terms such as "front," "rear," "left," "right," "upward," "downward," etc. are used for convenience and should not be construed as limiting terms.
[0013] Before describing various aspects of the articulated manipulator in detail, it should be noted that the examples are not limited in application or use to the details of construction and arrangement of parts illustrated in the accompanying drawings and description. The examples may be implemented or incorporated in other aspects, variations, and modifications, and may be practiced or carried out in various ways. Furthermore, unless otherwise indicated, the terms and phrases used herein have been chosen for the convenience of the reader for the purpose of describing the examples, and not for the purpose of limiting them. It will also be understood that one or more of the following described aspects, aspect expressions, and / or examples may be combined with any one or more of the other following described aspects, aspect expressions, and / or examples.
[0014] The present disclosure is directed to devices, systems, and methods for removing heat from a nuclear reactor core. Managing thermal energy within the core is important to nuclear reactors. For example, if a nuclear reactor's core overheats, the reactor may be taken off-line for subsequent repairs, the core's usable life may be shortened, and the reactor may become potentially dangerous to operate. As nuclear reactors become smaller in size and more modular, removing heat from the reactor's core becomes even more difficult and important.
[0015] Some small reactors function as "nuclear batteries," generating electricity using energy from the fission of nuclear material (e.g., uranium). Therefore, small reactors can optimize reactor output while reducing reactor size. However, as reactor size decreases, removing heat from the system becomes increasingly difficult. Thermal management within small reactors can be achieved through the configuration of heat pipes. For example, each heat pipe in a small reactor can contain a small amount of working fluid (e.g., sodium liquid) configured to transfer heat from the reactor's core to a heat exchanger, which can then be used to generate electricity. Unlike conventional reactors, which require large amounts of coolant to be pumped through the core, heat pipe-based reactors require a relatively small amount of working fluid, most of which is contained within the wick of the heat pipe itself. Therefore, heat pipe-based reactors do not require the mechanical pumps, valves, loop piping, and associated auxiliary systems required to cool conventional reactors, further reducing the overall reactor size.
[0016] Therefore, heat pipe performance and configuration remain important design considerations for small furnaces. Because heat pipes streamline thermal management systems by eliminating the need for auxiliary cooling components, the heat pipe configuration itself presents a constraint to further reducing the size of the furnace. Conventional heat pipes include a single tube defining an inner tube volume that is filled with a working fluid, as well as a heat source and sink located outside the conventional heat pipe. At Newcastle University, theoretical research has been conducted on the use of concentric annular heat pipes with a single wick located on the inner heat pipe wall. Additionally, annular heat pipes are implemented in isothermal furnace liners to create a uniform temperature distribution for temperature calibration rather than transporting large amounts of heat. None of the above-mentioned heat pipes have proven effective in removing heat from small furnaces, let alone efficiently removing heat so that the furnace size can be further reduced. Therefore, there is a need for improved heat pipes that can efficiently remove heat from small furnaces while reducing their size and overall footprint.
[0017] Referring now to FIG. 1 , a cross-sectional view of a device 100 configured to remove heat from a nuclear reactor core is illustrated, in accordance with at least one non-limiting embodiment of the present disclosure. For example, the device 100 may be a heat pipe configured for implementation within a small nuclear reactor. According to the non-limiting embodiment of FIG. 1 , the heat pipe 100 may include an inner housing 104 and an outer housing 108. The inner housing 104 of FIG. 1 may further include an outer surface 106 disposed within the heat pipe 100 such that it faces an inner surface 110 of the outer housing 108. As seen in the non-limiting embodiment of FIG. 1 , the heat pipe 100 may include an annular configuration with a circular outer housing 108 concentrically disposed around the circular inner housing 104. The length of the heat pipe 100 may extend along a centerline along which the inner housing 104 and the outer housing 108 are concentrically disposed, thereby forming a tubular configuration. According to the non-limiting embodiment of FIG. 1 , the inner housing 104 can include an outer diameter D1 that is smaller than the inner diameter D2 of the outer housing 108 to achieve the annular configuration described above. However, it should be understood that the non-limiting circularly configured embodiment of FIG. 1 is presented for illustrative purposes only. As used in accordance with the present disclosure, it should be understood that the term "diameter" is intended to include any dimension extending away from the center point of the device 100. As such, it should be understood that the term "diameter" is not intended to limit the device 100 to a circular configuration.
[0018] While the non-limiting embodiment of FIG. 1 illustrates a heat pipe 100 having circular, concentrically oriented housings 104, 108, it should be understood that any geometric configuration may be implemented for either the inner housing 104 or the outer housing 108. Accordingly, other non-limiting embodiments of the present disclosure include inner housing 104 and outer housing 108 having various configurations (e.g., square, rectangular, triangular, octagonal). In still other non-limiting embodiments, the inner housing 104 may include a first geometric configuration and the outer housing 108 may include a second geometric configuration that is different from the first geometric configuration. For example, the inner housing 104 may include an octagonal configuration and the outer housing 108 may include a circular configuration such that at least a portion of the outer surface 106 of the inner housing 104 is not parallel to a corresponding portion of the inner surface 110 of the outer housing 108.
[0019] 1 , the inner housing 104 may further define a volume 103 configured to accommodate the internal heat source 102 such that the heat pipe 100, when properly inserted within the volume 103, substantially surrounds the heat source 102. For example, the heat source 102 may include any material configured to generate thermal energy, such as a nuclear reactor fuel source (e.g., uranium nitride) or moderator (e.g., a hydride-based moderator). Additionally, when properly inserted within the volume 103, the heat source 102 may be disposed adjacent to an inner surface 107 of the inner housing 104. According to some non-limiting embodiments, the heat source 102 may be in physical contact with the inner surface 107 of the inner housing 104 when properly inserted. According to other non-limiting embodiments, the volume 103 may be filled with an intermediate material configured to enhance heat transfer between the heat sources 102. In either case, the interface between the heat source 102 and the heat pipe 100 may be configured to efficiently transfer heat away from the heat source 102 .
[0020] 1 , the heat pipe 100 may further include a wick 112 disposed within an intermediate volume 111 between the inner housing 104 and the outer housing 108. The wick 112 may be configured to contact at least a portion of the outer surface 106 of the inner housing 104 and at least a portion of the inner surface 110 of the outer housing 108. For example, according to the non-limiting embodiment of FIG. 1 , the wick 112 may include an inner surface 116 disposed in thermal communication with the outer surface 106 of the inner housing 104 and an outer surface 118 disposed in thermal communication with the inner surface 110 of the outer housing 108. In some non-limiting embodiments, the surfaces 116, 118 of the wick 112 may be configured to be in mechanical contact with the surfaces 106, 110 of the housings 104, 108. According to the non-limiting embodiment of FIG. 1 , the wick 112 may further include a plurality of ribs 120 mechanically coupled to at least a portion of the inner surface 116 and the outer surface 118 of the wick 112. The plurality of ribs 120 may comprise either the same or similar wicking material as the wick 112. However, according to other non-limiting embodiments, the ribs 120 may be configured to be in direct contact with the surfaces 106, 110 of the housings 104, 108. While the ribs 120 illustrated in FIG. 1 extend radially outward from the center of the inner and outer housings 104, 108 in a concentrically oriented manner, it should be understood that the present disclosure contemplates other non-limiting embodiments in which the ribs 120 are oriented in any number of different configurations (e.g., zigzag, circular, crisscross).
[0021] According to a non-limiting embodiment of FIG. 1 , a working fluid (e.g., sodium liquid) may be disposed within the intermediate volume 111 of the heat pipe 100, and the wick 112 may be composed of one or more materials (e.g., any porous material) that include capillary properties. The heat pipe 100 may be positioned within a nuclear reactor such that one of its ends is disposed within the reactor's condenser. In this manner, working fluid condensed on the low-temperature side of the heat pipe 100 may be returned to the high-temperature side of the heat pipe 100 for evaporation due to the capillary properties of the wick 112, thereby renewing the heat transfer cycle. In other words, the heat pipe 100 of FIG. 1 may be configured to remove heat from a heat source 102 disposed within the heat pipe 100. It should be understood that the integration of the heat source 102, inner housing 104, outer housing 108, and wick 112, when properly positioned relative to the reactor and relative to the reactor's evaporator and condenser, may facilitate efficient transfer of thermal energy away from the reactor's core. 1 may more efficiently manage the thermal energy generated by a miniature nuclear reactor when compared to known single-tube heat pipe configurations, which may result in improved performance and reliability, and may result in a miniature reactor of reduced size.
[0022] Referring now to FIG. 2 , a cross-sectional view of another device 200 configured to remove heat from a nuclear reactor core is illustrated, in accordance with at least one non-limiting embodiment of the present disclosure. According to the non-limiting embodiment of FIG. 2 , device 200 may be configured similarly to heat pipe 100 of FIG. 1 . For example, device 200 may include a heat pipe configured for implementation within a nuclear reactor having an inner housing 204 and an outer housing 208. Similar to heat pipe 100 of FIG. 1 , inner housing 204 of FIG. 2 may include an outer surface 206 disposed within heat pipe 200, such that outer surface 206 faces an inner surface 210 of outer housing 208. Again, heat pipe 200 may include an annular configuration with a circular outer housing 208 concentrically disposed around circular inner housing 204, with heat pipe 200 again extending in a tubular configuration. However, the annular configuration of FIG. 2 is intended for illustrative purposes only. Thus, in other non-limiting embodiments, the heat pipe 200 may include any number of geometric configurations (e.g., square, rectangular, triangular, octagonal). In any event, the inner housing 204 may define a volume 203 configured to accommodate the internal heat source 202.
[0023] 2 , the heat pipe 200 may further include a coating layer 222 concentrically oriented around the heat source 202, the inner housing 204, and the outer housing 208. The coating layer 222 may include an inner diameter D1 and a coating diameter D3 greater than the outer diameter D1 such that the coating layer 222 substantially surrounds the components of the heat pipe 200 discussed with reference to the heat pipe 100 of FIG. 1 . While the coating 222 of FIG. 2 includes a circular configuration, it may also include any number of different geometric configurations, even if the inner housing 204 and the outer housing 208 are circular. In any case, the coating layer 222 may define a second intermediate volume 217 between an inner surface 226 of the coating layer 222 and an outer surface 224 of the outer housing 208. For example, the coating layer 222 may include a thin-walled tube made of a material configured to contain any nucleating material disposed within the heat pipe 200. Thus, the coating layer 222 can be specifically configured to prevent corrosion and release of harmful and potentially hazardous materials into the operating environment.
[0024] 2 , the heat pipe 200 may further include a wick 212 disposed within an intermediate volume 211 defined between the inner housing 204 and the outer housing 208. The wick 212 may be configured to contact at least a portion of the outer surface 206 of the inner housing 204 and at least a portion of the inner surface 210 of the outer housing 208. For example, according to the non-limiting embodiment of FIG. 2 , the wick 212 may include an inner surface 216 disposed in thermal communication with the outer surface 206 of the inner housing 204 and an outer surface 218 disposed in thermal communication with the inner surface 210 of the outer housing 208. In some non-limiting embodiments, the surfaces 216, 218 of the wick 212 may be configured to be in mechanical contact with the surfaces 206, 210 of the housings 204, 208. 2, the wick 212 may further include a plurality of ribs 220 mechanically coupled to at least a portion of the inner surface 216 and the outer surface 218 of the wick 212. The plurality of ribs 220 may include either the same or a similar wicking material as the wick 212. However, according to other non-limiting embodiments, the ribs 220 may be configured to directly contact the surfaces 206, 210 of the housings 204, 208.
[0025] While the ribs 220 illustrated in FIG. 2 extend radially outward from the center of the inner and outer housings 204, 208 in a concentrically oriented manner, it should be understood that the present disclosure contemplates other non-limiting embodiments in which the ribs 220 are oriented in any number of different configurations (e.g., zigzag, circular, crisscross).
[0026] According to a non-limiting embodiment of FIG. 2 , a working fluid (e.g., sodium liquid, etc.) may be disposed within the intermediate volume 211 of the heat pipe 200, and the wick 212 may be composed of one or more materials having capillary properties (e.g., any porous material). The heat pipe 200 may be disposed within the reactor such that one of its ends is disposed within the reactor's condenser. In this manner, working fluid condensed on the low-temperature side of the heat pipe 200 may be returned to the high-temperature side of the heat pipe 200 for evaporation due to the capillary properties of the wick 212, thereby renewing the heat transfer cycle. In other words, the heat pipe 200 of FIG. 2 may be configured to remove heat away from the heat source 202 disposed within the heat pipe 200. It should be understood that the integration of the heat source 202, inner housing 204, outer housing 208, and wick 212, when properly positioned relative to the reactor and relative to the reactor's evaporator and condenser, may facilitate efficient transfer of thermal energy away from the reactor's core. 2 may more efficiently manage the thermal energy generated by a miniature nuclear reactor when compared to known single-tube heat pipe configurations, which may result in improved performance and reliability, and may result in a miniature reactor of reduced size.
[0027] According to a non-limiting embodiment of Figure 2, the heat pipe 200 of Figure 2 may include a moderator-type 202 heat source (e.g., a hydride-based moderator, etc.) disposed within volume 203, as defined by coating layer 222, and a fuel 228 (e.g., uranium nitride, etc.) disposed within second intermediate volume 217. Thus, the moderator 202 may be surrounded by the wick 212 of the annular heat pipe 200, which may be surrounded by the annular fuel 228. In this manner, the heat pipe 200 of Figure 2 may include multiple heat sources 202, 228 integrated within the heat transfer medium, or core block (e.g., graphite, etc.), of a nuclear reactor. Thus, in the event of a failure of a heat pipe 200, adjacent heat pipes 200 may compensate for the failure by transferring excess heat away from the core.
[0028] 1 and 2 include heat pipes 100, 200 with integrated heat sources 102, 202, the present disclosure contemplates other non-limiting embodiments featuring a wide variety of arrangements of the heat pipes 100, 200 and heat sources 102, 202. For example, according to some non-limiting embodiments, the wick 212 of the heat pipe 200 of FIG. 2 may be surrounded by the heat source 202 depending on whether the intended application and / or user preferences can accommodate less efficient use of space. In yet other non-limiting embodiments, the fuel 228 may be surrounded by the wick 212 of the heat pipe 200 of FIG. 2, and the moderator 202 may be configured to surround the wick 212 of the heat pipe 200. In other words, the positions of the fuel 228 and moderator 202 of FIG. 2 may be reversed depending on whether the intended application and / or user preferences can accommodate less efficient cooling in the event of a heat pipe failure. In both aspects, the user may be motivated to sacrifice reactor size and / or heat transfer efficiency to optimize other variables, providing a degree of customization to the design of heat pipe 200 of Figure 2. Ultimately, optimization of the design of heat pipe 200 depends on the intended application and / or user preferences for the reactor design, both of which have become increasingly important due to the emergence of micro-reactors.
[0029] Referring now to FIG. 3 , a top view of a unit cell 300 including a plurality of devices 302 configured to remove heat from a nuclear reactor core is illustrated, in accordance with at least one non-limiting embodiment of the present disclosure. While the unit cell 300 of FIG. 3 includes 19 devices 302, the present disclosure contemplates other non-limiting embodiments in which the unit cell 300 includes any number of devices 302. Additionally and / or alternatively, the hexagonal configuration of the unit cell 300 of FIG. 3 is presented for illustrative purposes only. Thus, it should be understood that the unit cell 300 of FIG. 3 can include any number of geometric configurations depending on the desired power output and thermal characteristics of the core.
[0030] According to a non-limiting embodiment of FIG. 3 , each device 302 of the plurality of devices 302 can be configured to substantially surround a core integrated heat source 304. The heat source 304 can include either a fuel rod, a moderator, or a combination thereof. As discussed with reference to FIGS. 1 and 2 , each device 302 of the plurality of devices 302 can further include an assembly 306 configured to surround the integrated heat source 304. The assembly 306 can include any of the features discussed with reference to FIGS. 1 and 2 , including the wicks 112, 212 of the heat pipes 100, 200 and / or a plurality of ribs 120, 220 configured to transfer heat away from the integrated heat source 304. According to some non-limiting embodiments, the assembly 306 can further include a cladding 222 defining a second intermediate volume 217 configured to contain fuel 228, as discussed with reference to FIG. 2 . In yet another non-limiting aspect, each device 302 of the plurality of devices 302 may include a different configuration. For example, a first device 302 may include the configuration of device 100 of FIG. 1, and a second device 302 may include the configuration of device 200 of FIG.
[0031] With further reference to FIG. 3 , each device 302 in the unit cell 300 may be positioned adjacent to several other devices 302, among other things. Adjacent devices 302 may be positioned a predetermined distance from one another so that thermal energy generated by the integrated heat source 304 of any given device 302 can be effectively transferred away from the core in the event of a heat pipe failure. Because conventional heat pipes are typically surrounded by the heat source they are intended to cool, adjacent heat pipes are limited in their ability to help mitigate temperature increases in the event of a first heat pipe failure. Thus, the configuration of the unit cell 300 in FIG. 3 offers significant improvements and benefits over known devices. Additionally and / or alternatively, the unit cell 300 may include a core block including a material with favorable thermal properties (e.g., graphite), and one or more temperature sensors configured to monitor the operating temperature of the unit cell 300 may be positioned throughout the core of the nuclear reactor. Thus, in the event of a heat pipe failure, heat from the integrated heat source 304 may be transferred through the material. Temperature sensors detect an increase in temperature and determine if a predetermined threshold is met or exceeded, after which a reactor shutdown protocol may be initiated.
[0032] 4, a side view of a system 400 configured to remove heat from a nuclear reactor core is illustrated, in accordance with at least one non-limiting embodiment of the present disclosure. According to the non-limiting embodiment of FIG. 4, system 400 includes a horizontally oriented device, such as a heat pipe 401, integrated with a condenser 404 of the nuclear reactor. Heat pipe 401 is configured around a heat source 402, such as a fuel or moderator, and its length is such that it is heated to an evaporation temperature T e The heat pipe 401 defines an evaporative section of the heat pipe 401 that operates at an adiabatic temperature T sat The heat pipe 401 defines an adiabatic section of the heat pipe 401 that operates at a condensation temperature T cAccording to a non-limiting embodiment of FIG. 4 , the evaporation temperature T e is the adiabatic temperature T sat higher than the adiabatic temperature T sat is the condensation temperature T c . Collectively, the evaporative section, adiabatic section, and condensing section of the heat pipe 401 may comprise the length L of the heat pipe 401. Thus, the working fluid 416 within the heat pipe 401 may be evaporated with heat generated by the integrated heat source 402 and travel the length of the heat pipe 401 through the adiabatic section to the condenser 404, where it is cooled and condensed. The system 400, and more specifically, the heat pipe 401, may be configured to contain a small amount of excess working fluid 418 proximate the condenser to prevent drying out of the heat pipe 401 and its components.
[0033] In particular, the heat pipe 401 of FIG. 4 may include an external end cap 406, as well as a first external wick 412 and a second internal wick 414. The external end cap 406, the internal end cap 408, or both, may connect the external wick 412 and the internal wick 414. Alternatively and / or additionally, one or more ribs (e.g., ribs 120, 220 of the devices 100, 200 illustrated in FIGS. 1 and 2) may also be configured to connect the external wick 412 and the internal wick 414 of the heat pipe 401. In either case, the external wick 412 and the internal wick 414 may cooperate to connect multiple surfaces of the heat pipe 401, which creates a greater surface area for conduction and convection. Additionally, the connection of the external wick 412 and the internal wick 414 may establish a common volume of the heat pipe 401 while maintaining its separate sections and operating temperatures. This connection may be located on the condenser side of the heat pipe 401 for the horizontally configured system 500 of Figure 5. However, the heat pipe 401 with an integrated heat source and / or moderator, with and without the wicks 412, 414, may provide the benefits described above and may be arranged in any orientation, including an orientation that uses gravity to move the working fluid within the heat pipe (e.g., a thermosiphon), as discussed in more detail with reference to Figure 5.
[0034] Referring now to FIG. 5 , a side view of another system 500 configured to remove heat from a nuclear reactor core is illustrated, in accordance with at least one non-limiting embodiment of the present disclosure. According to the non-limiting embodiment of FIG. 5 , system 500 includes a vertically oriented device, such as a heat pipe 501, integrated with a condenser 504 of the nuclear reactor. System 500 is configured similarly to system 400 of FIG. 4 . However, system 500 of FIG. 5 is configured vertically and, therefore, may operate like a thermosiphon to move working fluid 516. Heat pipe 501 is configured around a heat source 502, such as a fuel or moderator, and its length is such that it is heated to a temperature above an evaporation temperature T e The heat pipe 501 defines an evaporative section of the heat pipe 501 that operates at an adiabatic temperature T sat The heat pipe 501 defines an adiabatic section of the heat pipe 501 that operates at a condensation temperature T c The evaporative section, the adiabatic section, and the condensing section of the heat pipe 501 may terminate in a condenser 504 of the nuclear reactor, which operates at an evaporative temperature T e is the adiabatic temperature T sat higher than the adiabatic temperature T sat is the condensation temperature T c Thus, the working fluid 516 in the heat pipe 501 can be vaporized with heat generated by the integrated heat source 502 and travel the length of the heat pipe 501 through the adiabatic section to the condenser 504 where it is cooled and condensed.
[0035] 5, the heat pipe 501 may include an external end cap 506. However, according to a non-limiting embodiment of FIG. 5, the heat pipe may include wicking features 512 located exclusively within the evaporator section. For example, the wicking features 512 may include any of grooves, partial wicks, etc. For the vertical configuration of FIG. 5, the heat pipe does not need as many wicking features 412, 414 as the horizontally configured system 400 of FIG. 4. This is because gravity may assist in returning the condensed working fluid 516 to the evaporator, although the vertically configured system 500 of FIG. 5 may not be ideal for high-power furnaces.
[0036] Again, the external end cap 506, the internal end cap 508, or both may connect the wicking features 512 of the heat pipe 501 of FIG. 5. Alternatively and / or additionally, one or more ribs (e.g., ribs 120, 220 of the devices 100, 200 illustrated in FIGS. 1 and 2) may be configured to connect the wicking features 512 of the heat pipe 501. In either case, the wicking features 512 may cooperate to connect multiple surfaces of the heat pipe 501, which creates a larger surface area for conduction and convection. Additionally, the connection of the wicking features 512 may establish a common volume of the heat pipe 501 while maintaining its separate sections and operating temperatures. Thus, the heat pipe 501 may provide the benefits described above with reduced wicking features 512, which may function to move the working fluid 516 within the heat pipe 501 (e.g., a thermosiphon) even when oriented vertically.
[0037] Various aspects of the subject matter described herein are set forth in the following numbered clauses: Item 1: A heat pipe configured to remove heat from a nuclear reactor core, the heat pipe comprising: an inner housing including an outer surface and defining an inner volume configured to accommodate a heat source, the heat pipe having a length, the heat pipe including a length, the heat pipe including a length, the inner housing including an outer surface and defining an inner volume configured to accommodate a heat source; an outer housing including an inner surface and configured around the inner housing and the heat source; a wick disposed between the inner housing and the outer housing and extending along at least a portion of the length of the heat pipe, the wick comprising a capillary material and configured to contact at least a portion of the outer surface of the inner housing and at least a portion of the inner surface of the outer housing, the wick defining an intermediate volume between the inner housing and the outer housing; and a working fluid within the intermediate volume, the working fluid configured to evaporate at a first end of the heat pipe and condense at a second end of the heat pipe adjacent a heat exchanger, the wick configured to return the working fluid condensed at the second end of the heat pipe to the first end of the heat pipe, wherein the evaporation and condensation of the working fluid transfer heat from the first end of the heat pipe to the second end of the heat pipe. Item 2: A heat pipe as described in item 1, wherein the wick includes a plurality of ribs, at least a first rib of the plurality of ribs contacting at least a portion of the outer surface of the inner housing, and at least a second rib of the plurality of ribs contacting at least a portion of the inner surface of the outer housing. Item 3: A heat pipe as described in item 1 or 2, wherein the heat pipe comprises a tubular configuration, the outer housing and the inner housing each comprise a circular configuration, the outer housing is oriented concentrically around the inner housing, and the plurality of ribs are configured to extend radially from a center point of the inner housing. Item 4: A heat pipe described in any one of items 1 to 3, further comprising an end cap coupled to a second end of the heat pipe, the second end cap configured to be in mechanical contact with the outer housing, the inner housing, and the wick, thereby establishing a thermal circuit across the inner volume and the intermediate volume. Item 5: A heat pipe according to any one of items 1 to 4, wherein the heat source is a moderator containing a hydride. Item 6: A heat pipe according to any one of items 1 to 5, wherein the heat source is radioactive nuclear fuel. Item 7: A heat pipe described in any one of items 1 to 6, wherein the heat source is a moderator, the heat pipe further includes a cladding configured around the outer housing, the cladding defining a second intermediate volume around the outer housing, and the nuclear fuel being disposed within the second intermediate volume. Item 8: A heat pipe as described in any one of items 1 to 7, further comprising a reservoir disposed at a second end of the heat pipe, the reservoir configured to contain an excess amount of working fluid, the excess amount of working fluid being configured to prevent the heat pipe and its components from drying out. Item 9: A heat pipe as described in any one of items 1 to 8, wherein the heat pipe further comprises a vertically oriented thermosiphon, and the wick is configured so that gravity at least partially assists in returning working fluid condensed at the second end of the heat pipe to the first end of the heat pipe. Item 10: A unit cell configured to remove heat generated by a nuclear reactor, the unit cell including: a core block material; and a plurality of devices disposed throughout the core block material, at least one device of the plurality of devices including a heat pipe, the heat pipe having an inner housing including a length and an outer surface and defining an interior volume configured to house a heat source; an outer housing including an inner surface and configured around the inner housing and the heat source; and a wick disposed between the inner and outer housings and extending along at least a portion of the length of the heat pipe, the wick including a capillary material, the wick extending between the inner housing and the outer housing. and at least a portion of the inner surface of the outer housing, the wick defining an intermediate volume between the inner housing and the outer housing; a wick; and a working fluid within the intermediate volume, wherein the working fluid is configured to evaporate at a first end of the heat pipe and condense at a second end of the heat pipe adjacent to a heat exchanger, the wick is configured to return the working fluid 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 transfer heat from the first end of the heat pipe to the second end of the heat pipe and dissipate it through the heat exchanger. Item 11: The unit cell of item 10, wherein the core block material comprises graphite. Item 12: A unit cell described in item 10 or 11, wherein the wick includes a plurality of ribs, at least a first rib of the plurality of ribs contacting at least a portion of the outer surface of the inner housing, and at least a second rib of the plurality of ribs contacting at least a portion of the inner surface of the outer housing. Item 13: A unit cell described in any one of items 10 to 12, wherein the heat pipe comprises a tubular configuration, the outer housing and the inner housing each comprise a circular configuration, the outer housing is oriented concentrically around the inner housing, and the plurality of ribs are configured to extend radially from a center point of the inner housing. Item 14: A unit cell described in any one of items 10 to 13, wherein the heat pipe further includes an end cap coupled to a second end of the heat pipe, the second end cap configured to be in mechanical contact with the outer housing, the inner housing, and the wick, thereby establishing a thermal circuit across the inner volume and the intermediate volume. Item 15: A unit cell described in any one of items 11 to 14, wherein the heat source is a moderator, the heat pipe further includes a cladding configured around the outer housing, the cladding defining a second intermediate volume around the outer housing, and the nuclear fuel disposed in the second intermediate volume. Item 16: A unit cell described in any one of items 11 to 15, further comprising a reservoir disposed at the second end of the heat pipe, the reservoir configured to contain an excess amount of working fluid, the excess amount of working fluid configured to prevent drying of the heat pipe and its components. Item 17: A unit cell described in any of items 11 to 16, wherein the heat pipe further comprises a vertically oriented thermosiphon, and wherein the wick is configured so that gravity at least partially assists in returning working fluid condensed at the second end of the heat pipe to the first end of the heat pipe. Item 18: A heat pipe configured to remove heat from a nuclear reactor core, the heat pipe comprising: an inner housing defining an inner volume configured to accommodate a heat source; an outer housing configured around the inner housing and the heat source; a wick disposed between at least a portion of the inner housing and at least a portion of the outer housing, the wick comprising a capillary material, the wick defining an intermediate volume between the inner housing and the outer housing; and a working fluid in the intermediate volume, the working fluid configured to evaporate at a first end of the heat pipe and condense at a second end of the heat pipe adjacent a heat exchanger, the wick configured to return the working fluid condensed at the second end of the heat pipe to the first end of the heat pipe. Item 19: A heat pipe as described in item 18, wherein the wick includes a plurality of ribs, at least a first rib of the plurality of ribs contacting at least a portion of the inner housing, and at least a second rib of the plurality of ribs contacting at least a portion of the outer housing. Item 20: The method of item 18 or 19, wherein the heat pipe comprises a tubular configuration, the outer housing and the inner housing each comprise a circular configuration, the outer housing is oriented concentrically around the inner housing, and the plurality of ribs are configured to extend radially from a center point of the inner housing.
[0038] All patents, patent applications, publications, or other disclosure materials mentioned herein are incorporated by reference in their entirety, just as if each individual reference were expressly incorporated by reference. All documents and any material, or portions thereof, mentioned as being incorporated herein by reference are incorporated herein to the extent that the incorporated material does not contradict existing definitions, descriptions, or other disclosure material set forth in this disclosure. Therefore, to the extent necessary, the disclosure set forth herein supersedes any conflicting material incorporated herein by reference, and the disclosure expressly set forth in this application takes precedence.
[0039] The present invention has been described with reference to various exemplary and illustrative embodiments. The embodiments described herein are understood to provide illustrative features of various details of various embodiments of the disclosed invention, and therefore, unless otherwise indicated, it should be understood that, to the extent possible, one or more features, elements, components, ingredients, materials, structures, modules, and / or aspects of the disclosed embodiments can be combined, separated, substituted, and / or rearranged with one or more other features, elements, components, ingredients, materials, structures, modules, and / or aspects of the disclosed embodiments without departing from the scope of the disclosed invention. Accordingly, those skilled in the art will recognize that various substitutions, modifications, or combinations are possible in any of the exemplary embodiments without departing from the scope of the invention. Moreover, those skilled in the art will recognize, or be able to ascertain using no more than routine experimentation, upon review of this specification, many equivalents to the various embodiments of the invention described herein. Accordingly, the present invention is limited not by the description of the various embodiments, but by the scope of the claims.
[0040] Those skilled in the art will recognize that the terms used in this specification, generally, and in the appended claims in particular (e.g., the body of the appended claims), are generally intended as "open" terms (e.g., the term "comprising" should be interpreted as "including, but not limited to," the term "having" should be interpreted as "having at least," the term "including" should be interpreted as "including, but not limited to," etc.). Where a specific number of claims to be introduced is intended, such intention will be expressly recited in the claims; it will further be understood by those skilled in the art that, in the absence of such recitation, no such intention exists. For example, as an aid to understanding, the following appended claims may contain the use of the introductory phrases "at least one" and "one or more" to introduce the recitation of claims. However, the use of such phrases should not be construed as implying that introducing a claim recitation with the indefinite article "a" or "an" limits any particular claim containing such an introduced claim recitation to claims containing only one such recitation, even when that same claim includes the introductory phrase "one or more" or "at least one" and an indefinite article such as "a" or "an" (e.g., "a" and / or "an" should typically be construed to mean "at least one" or "one or more"), nor should the use of a particular article be used to introduce a claim recitation.
[0041] Additionally, even if a specific number of enumerations in an introduced claim are explicitly recited, those skilled in the art will understand that such enumeration should typically be interpreted to mean at least the recited number (e.g., the literal recitation of "two enumerations," without other modifiers, means at least two enumerations, or more than two enumerations). Furthermore, in such cases where a convention similar to "at least one of A, B, and C, etc." is used, such structure is generally intended in the sense that those skilled in the art would understand the convention (e.g., "a system having at least one of A, B, and C" would include, but not be limited to, systems having A alone, B alone, C alone, A and B together, A and C together, B and C together, and / or A, B, and C together, etc.). In those cases where a convention similar to "at least one of A, B, or C, etc." is used, such construction is generally intended in the sense that one of ordinary skill in the art would understand the convention (e.g., "a system having at least one of A, B, or C" would include, but is not limited to, systems having A alone, B alone, C alone, A and B together, A and C together, B and C together, and / or A, B, and C together, etc.). It will be further understood by those of ordinary skill in the art that typical disjunctive words and / or phrases presenting two or more alternative terms, whether in the description, claims, or drawings, should be understood to contemplate the possibility of including one of the terms, either of the terms, or both terms, unless the context dictates otherwise. For example, the phrase "A or B" would typically be understood to include the possibilities of "A" or "B" or "A and B."
[0042] With respect to the appended claims, those skilled in the art will understand that the actions recited therein may generally be performed in any order. Also, while the claim recitations are presented sequentially, it should be understood that various actions may be performed in other orders than those described, or may be performed simultaneously. Examples of such alternative orderings may include overlapping, interleaved, interrupted, reordered, incremental, preliminary, supplemental, simultaneous, reverse, or various other orderings, unless the context dictates otherwise. Furthermore, unless the context dictates otherwise, terms such as "responsive," "related," or other past tense adjectives are generally not intended to exclude such variations.
[0043] It should be noted that any reference to "one embodiment," "one embodiment," "one exemplary embodiment," "one example," etc. means that a particular feature, structure, or characteristic described in connection with an embodiment is included in at least one embodiment. Thus, the appearances of the phrases "in one embodiment," "in one embodiment," "in one exemplary embodiment," and "in one exemplary embodiment" in various places throughout this specification do not necessarily all refer to the same embodiment. Furthermore, particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.
[0044] As used herein, the singular forms "a," "an," and "the" include plural references unless the context clearly dictates otherwise.
[0045] Directional expressions used herein, such as, but not limited to, top, bottom, left, right, below, above, front, back, and variations thereof, relate to the orientation of the elements as shown in the accompanying drawings and do not limit the scope of the claims unless expressly stated otherwise.
[0046] The term "about" or "approximately," as used in this disclosure, unless otherwise specified, refers to an acceptable error for a particular value as determined by one of ordinary skill in the art, which depends in part on how the value is measured or determined. In certain aspects, the term "about" or "approximately" means within 1, 2, 3, or 4 standard deviations. In certain aspects, the term "about" or "approximately" means within 50%, 200%, 105%, 100%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, or 0.05% of a given value or range.
[0047] As used herein, unless otherwise indicated, all numerical parameters should be understood in all instances to be prefaced and modified by the term "about," which takes into account the inherent variability of the underlying measurement techniques used to determine the numerical value of the parameter. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter set forth herein should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques.
[0048] Any numerical range recited herein includes all subranges subsumed within the recited range. For example, a range of "1 to 100" includes all subranges between the recited minimum of 1 and the recited maximum of 100 (inclusive), i.e., all subranges with a minimum of 1 or more and a maximum of 100 or less. Also, all ranges recited herein include the recited endpoints. For example, a range of "1 to 100" includes the endpoints 1 and 100. Any maximum numerical limitation recited herein is intended to include all lower numerical limitations subsumed within the range, and any minimum numerical limitation recited herein is intended to include all higher numerical limitations subsumed within the range. Accordingly, applicants reserve the right to amend this specification, including the claims, to explicitly recite any subranges subsumed within an expressly recited range. All such ranges are inherently set forth herein.
[0049] Any patent application, patent, non-patent publication, or other disclosure material referenced herein and / or listed in any Application Data Sheet is incorporated herein by reference and, to the extent that it does not conflict with the material incorporated herein. Accordingly, the disclosure set forth herein supersedes, to the extent necessary, any conflicting material incorporated herein by reference. All material, or portions thereof, that is referred to as being incorporated herein by reference that conflicts with existing definitions, descriptions, or other disclosure material set forth herein will be incorporated only to the extent that there is no conflict between the incorporated material and the existing disclosure material.
[0050] The terms "comprise" (and any form of comprise, such as "comprises" and "comprising"), "have" (and any form of have, such as "has" and "having"), "include" (and any form of include, such as "includes" and "including"), and "contain" (and any form of contain, such as "contains" and "containing") are open-ended linking verbs. Consequently, a system that "comprises," "has," "includes," or "contains" one or more elements possesses those one or more elements, but is not limited to possessing only those one or more elements. Similarly, a system, device, or device element that "includes," "has," "includes," or "contains" one or more features possesses those one or more features, but is not limited to possessing only those one or more features.
Claims
1. 1. A heat pipe configured to remove heat from a nuclear reactor core, the heat pipe having a length, the heat pipe further comprising: an inner housing including an outer surface and defining an inner volume configured to house a heat source; an outer housing including an inner surface configured around the inner housing and the heat source; a wick disposed between the inner housing and the outer housing and extending along at least a portion of the length of the heat pipe, the wick comprising a capillary material and configured to contact at least a portion of the outer surface of the inner housing and at least a portion of the inner surface of the outer housing, the wick defining an intermediate volume between the inner housing and the outer housing; a working fluid in the intermediate volume; A heat pipe, wherein the working fluid is configured to evaporate at a first end of the heat pipe and condense at a second end of the heat pipe adjacent to a heat exchanger, the wick is configured to return the working fluid condensed at the second end of the heat pipe to the first end of the heat pipe, and the evaporation and condensation of the working fluid transfers heat from the first end of the heat pipe to the second end of the heat pipe and is dissipated through the heat exchanger.
2. The heat pipe of claim 1 , further comprising a jacket configured about the outer housing, the jacket defining a second intermediate volume configured to contain a fuel.
3. 3. The heat pipe of claim 2, wherein the wick includes a plurality of ribs, at least a first rib of the plurality of ribs contacting at least a portion of the outer surface of the inner housing, and at least a second rib of the plurality of ribs contacting at least a portion of the inner surface of the outer housing.
4. 4. The heat pipe of claim 3, wherein the heat pipe has a tubular configuration, the outer housing and the inner housing each have a circular configuration, the outer housing is oriented concentrically around the inner housing, and the plurality of ribs extend radially from a center point of the inner housing.
5. 5. The heat pipe of claim 4, further comprising an end cap coupled to the second end of the heat pipe, the end cap configured to be in mechanical contact with the outer housing, the inner housing, and the wick, thereby establishing a thermal circuit across the inner volume and intermediate volume.
6. The heat pipe of claim 2 , wherein the heat source is a moderator comprising a hydride.
7. The heat pipe of claim 2 wherein the heat source is nuclear fuel.
8. 10. The heat pipe of claim 1, wherein the heat source is a moderator, the heat pipe further comprising a cladding configured around the outer housing, the cladding defining a second intermediate volume around the outer housing, and a nuclear fuel disposed within the second intermediate volume.
9. 2. The heat pipe of claim 1, further comprising a reservoir disposed at the second end of the heat pipe, the reservoir configured to contain an excess amount of working fluid, the excess amount of working fluid preventing the heat pipe and its components from drying out.
10. 1. A unit cell comprising a heat pipe configured to remove heat generated by a nuclear reactor, the heat pipe comprising: an inner housing defining an interior volume configured to house a heat source; an outer housing configured around the inner housing and the heat source; a wick disposed between the inner housing and the outer housing, the wick comprising a capillary material and configured to contact at least a portion of an outer surface of the inner housing and at least a portion of an inner surface of the outer housing, the wick defining an intermediate volume between the inner housing and the outer housing; a working fluid in the intermediate volume; a unit cell configured such that heat is transferred by the working fluid from a first end of the heat pipe to a second end of the heat pipe.
11. The unit cell of claim 10 further comprising a core block material.
12. 11. The unit cell of claim 10, wherein the wick includes a plurality of ribs, at least a first rib of the plurality of ribs contacting at least a portion of the outer surface of the inner housing and at least a second rib of the plurality of ribs contacting at least a portion of the inner surface of the outer housing.
13. 13. The unit cell of claim 12, wherein the heat pipe comprises a tubular configuration, the outer housing and the inner housing each comprise a circular configuration, the outer housing is oriented concentrically around the inner housing, and the plurality of ribs are configured to extend radially from a center point of the inner housing.
14. 11. The unit cell of claim 10, wherein the heat pipe further comprises an end cap coupled to the second end of the heat pipe, the end cap configured to be in mechanical contact with the outer housing, the inner housing, and the wick, thereby establishing a thermal circuit across the interior volume and intermediate volume.
15. 11. The unit cell of claim 10, wherein the heat pipe further comprises a cladding configured around the outer housing, the cladding defining a second intermediate volume around the outer housing, and wherein nuclear fuel is disposed within the second intermediate volume.
16. 11. The unit cell of claim 10, wherein the heat pipe contains an excess amount of working fluid, the excess amount of working fluid configured to prevent the heat pipe and its components from drying out.
17. 11. The unit cell of claim 10, wherein the heat pipe is configured to be a vertically oriented thermosiphon and wherein gravity is configured to at least partially assist the wick in returning working fluid condensed at the second end of the heat pipe to the first end of the heat pipe.
18. 1. A heat pipe configured to remove heat from a nuclear reactor core, the heat pipe having a length, the heat pipe further comprising: an inner housing defining an interior volume configured to house a heat source; an outer housing configured around the inner housing and the heat source; a wick disposed between the inner housing and the outer housing and extending along at least a portion of the length of the heat pipe, the wick comprising a capillary material, the wick defining a first intermediate volume between the inner housing and the outer housing; a working fluid in the first intermediate volume; the working fluid is configured to evaporate at a first end of the heat pipe and condense at a second end of the heat pipe adjacent to a heat exchanger, the wick is configured to return the working fluid condensed at the second end of the heat pipe to the first end of the heat pipe, and the evaporation and condensation of the working fluid transfers heat from the first end of the heat pipe to the second end of the heat pipe and dissipates it via the heat exchanger; The heat pipe further comprises a jacket configured around the outer housing, the jacket defining a second intermediate volume configured to contain a fuel.
19. 20. The heat pipe of claim 18, wherein the inner housing includes an outer surface, and the wick is configured to contact at least a portion of the outer surface of the inner housing.
20. 20. The heat pipe of claim 19, wherein the outer housing includes an inner surface, and the wick is configured to contact at least a portion of the inner surface of the outer housing.