Device, system and method for configuring a reactor core unit cell layout

The configurable unit cell design for nuclear reactors addresses the limitations of conventional designs by allowing adjustable power output and scalability, ensuring compliance and reliability across various applications.

JP7804670B2Active Publication Date: 2026-01-22WESTINGHOUSE ELECTRIC CORP
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Patent Information

Application Number
JP2023526376
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-29
Filing Date
2021-10-29
Publication Date
2026-01-22
Estimated Expiration
2041-10-29

AI Technical Summary

Technical Problem

Conventional nuclear reactors are limited in versatility due to their fixed design, making it impractical to adapt to various applications while maintaining compliance with safety regulations and manufacturing consistency.

Method used

A configurable unit cell design for a nuclear reactor core, comprising modular unit cells and reactivity control cells, allows for adjustable power output and scalability by incorporating replaceable components and channels, enabling easy modification for different applications without altering the core's fundamental design.

Benefits of technology

The design ensures compliance with safety regulations and manufacturing consistency, facilitating easy adaptation to diverse applications while maintaining reliable performance and thermal management, reducing development risks and costs.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

Disclosed herein is a configurable unit cell for a nuclear reactor core. The configurable unit cell includes a core block material and a plurality of replaceable components configured to affect performance parameters of the nuclear reactor core. The configurable unit cell further includes a plurality of channels defined within the core block material. Each channel of the plurality of channels is configured to engage a replaceable component of the plurality of replaceable components in an operational configuration. Each channel of the plurality of channels is separated from an adjacent channel of the plurality of channels by a predetermined pitch.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Non-Provisional Patent Application No. 17 / 084,403, filed October 29, 2020, and entitled "DEVICES, SYSTEMS, AND METHODS FOR CONFIGURING THE LAYOUT OF UNIT CELL OF A REACTOR CORE," the contents of which are incorporated herein by reference in their entirety.

[0002] government contracts This invention was made with government support under Contract DE-NE0008853 awarded by the U.S. Department of Energy. The government has certain rights in this invention.

[0003] The present disclosure relates generally to nuclear power generation, and more particularly to configurable unit cells of a nuclear reactor core. Summary of the Invention

[0004] 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.

[0005] In various aspects, a configurable unit cell for a nuclear reactor core is disclosed. The configurable unit cell includes a core block material, a plurality of replaceable components configured to affect performance parameters of the nuclear reactor core, and a plurality of channels defined within the core block material. Each channel of the plurality of channels is configured to engage a replaceable component of the plurality of replaceable components in an operational configuration. Each channel of the plurality of channels is separated from an adjacent channel of the plurality of channels by a predetermined pitch.

[0006] In various aspects, a nuclear reactor core is disclosed. The core includes a plurality of replaceable components configured to affect performance parameters of the nuclear reactor core and a plurality of configurable unit cells formed from a core block material. The plurality of configurable unit cells includes a standard unit cell including a plurality of channels defined in the core block material, each channel of the plurality of channels configured to engage a replaceable component of the plurality of replaceable components in an operational configuration. The plurality of configurable unit cells also includes a reactivity control cell including a plurality of channels defined in the core block material, each channel of the plurality of channels configured to engage a replaceable component of the plurality of replaceable components in an operational configuration, at least one channel of the plurality of channels configured to engage a reactivity control rod.

[0007] In various aspects, a method of configuring a unit cell of a nuclear reactor core is disclosed. The unit cell includes a plurality of channels defined in a core block of the nuclear reactor core, each channel of the plurality of channels configured to engage a replaceable component of a plurality of replaceable components. The method includes determining an operating state of the nuclear reactor core, the operating state corresponding to an intended use of the nuclear reactor, determining performance parameters of the unit cell, the performance parameters including aspects of the determined operating state of the nuclear reactor core, selecting a replaceable component from the plurality of replaceable components, the selected replaceable component corresponding to the determined performance parameters of the unit cell, and installing the selected replaceable component in the channel of the plurality of channels.

[0008] 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]

[0009] 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:

[0010] [Figure 1] FIG. 1 illustrates a perspective view of a core design that can be modified to adjust the power output of a nuclear reactor, in accordance with at least one non-limiting embodiment of the present disclosure. [Figure 2] 2 illustrates a top view of the tunable core design of FIG. 1 in accordance with at least one non-limiting embodiment of the present disclosure. [Figure 3] FIG. 3 illustrates a top view of a unit cell of the tunable core design of FIGS. 1 and 2 in accordance with at least one non-limiting embodiment of the present disclosure. [Figure 4A] FIG. 4 illustrates a perspective view of the unit cell of FIG. 3 in accordance with at least one non-limiting embodiment of the present disclosure. [Figure 4B] FIG. 3 illustrates a perspective view of the core reflector configuration of FIGS. 1 and 2 in accordance with at least one non-limiting embodiment of the present disclosure. [Figure 4C] FIG. 4 illustrates a top view of the unit cell of FIG. 3 in accordance with at least one non-limiting embodiment of the present disclosure. [Figure 5] FIG. 5 illustrates a perspective view of the tunable core of FIGS. 1-4 in accordance with at least one non-limiting embodiment of the present disclosure. [Figure 6]FIG. 6 illustrates a cross-sectional perspective view of the core of FIGS. 1-5, according to at least one non-limiting embodiment of the present disclosure. [Figures 7A-7B] 7 illustrates a temperature distribution of at least a portion of the core of FIGS. 1-6, according to at least one non-limiting embodiment of the present disclosure. [Figure 8A-8B] 7 illustrates a comparison of stress distribution in at least a portion of the core of FIGS. 1-6 with stress distribution in a conventional monolithic core, according to at least one non-limiting embodiment of the present disclosure. [Figures 9A-9C] 7 illustrates expected temperature and stress distributions for the maximum expected power level of the core of FIGS. 1-6, in accordance with at least one non-limiting embodiment of the present disclosure. [Figure 10] 1 illustrates a method for regulating the output power of a nuclear reactor core in accordance with at least one non-limiting embodiment of the present disclosure. [Figure 11] 1A and 1B illustrate top views of two unit cells with configurable layouts according to at least one non-limiting embodiment of the present disclosure. [Figure 12] 10A-10C illustrate top views of another unit cell including configurable layouts in various configurations according to at least one non-limiting embodiment of the present disclosure. [Figures 13A-13C] 1 illustrates the temperature and heat flux of a unit cell, according to at least one non-limiting embodiment of the present disclosure. [Figures 14A-14B] 1 illustrates an equivalent stress distribution in a unit cell, according to at least one non-limiting embodiment of the present disclosure. [Figure 15] 1 illustrates a method of constructing a unit cell of a nuclear reactor core according to at least one non-limiting embodiment of the present disclosure.

[0011] Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set forth herein illustrate various aspects of the present invention in one form, and such exemplifications should not be construed as limiting the scope of the present invention in any manner. DETAILED DESCRIPTION OF THE INVENTION

[0012] 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.

[0013] 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.

[0014] 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.

[0015] The present disclosure is directed to devices, systems, and methods for adjusting the power output of a nuclear core. Nuclear reactors are typically manufactured to generate an output power specific to their intended application. Aside from application-specific power requirements, the design and manufacture of a nuclear reactor must also comply with various internal and / or government safety regulations. For example, a nuclear reactor must be designed and manufactured to comply with several different criteria, such as (i) the ability to accommodate several different fuels and / or moderators (e.g., graphite, beryllium oxide, yttrium hydride, zirconium hydride), (ii) the ability to be thermomechanically self-sufficient during outages, (iii) the ability to support available manufacturing capacity, (iv) the ability to integrate with existing core components (e.g., radial reflectors), and (v) the ability to be scalable for use with both transportable and stationary mobile reactors. Conventional nuclear reactors are large and therefore limit some applications. However, both size constraints and limited applications have facilitated manufacturers to focus on a small number of conventional designs that can be commercialized in compliance with applicable requirements and / or regulations.

[0016] As nuclear reactors decrease in size, their versatility increases. New nuclear reactors, including microreactors, can be effectively implemented in an ever-increasing number of emerging and unprecedented applications. However, the reliability of a reactor's design and performance, as well as its compliance with applicable requirements and / or regulations, is more important than ever. For example, as nuclear reactors become more versatile, they become more prevalent. A single reactor design is not well-suited for expanding applications. Creating a new design for each new application is not commercially practical. For example, the endless development of new reactor designs may involve increased costs and risks associated with manufacturing and operation. In other words, "one size" does not fit all. Therefore, there is a need for improved devices, systems, and methods for adjusting the power output of a reactor core design while maintaining compliance with applicable requirements and / or regulations. Such devices, systems, and methods would allow a reactor to be easily modified for each new application while maintaining the stability of its manufacturing and operation.

[0017] Referring now to FIG. 1 , a perspective view of a core 100 that can be modified to regulate the power output of a nuclear reactor is illustrated, according to at least one non-limiting aspect of the present disclosure. According to the non-limiting aspect of FIG. 1 , the core 100 includes a plurality of unit cells 102 that collectively form a hexagonal core plate. Each unit cell 102 can be configured to house heat pipes and fuel in any configuration (e.g., stacks and / or rods) that can collectively generate nuclear power and manage thermal energy throughout the core 100. According to some non-limiting embodiments, one or more unit cells 102 can further include a moderator configuration that can slow down neutrons emitted from the fuel rod configuration. As illustrated in the non-limiting aspect of FIG. 1 , the unit cells 102 can be arranged such that the core 100 includes an overall hexagonal geometry, although in other non-limiting aspects, the unit cells 102 can be arranged such that the core 100 includes any of several different geometric configurations, depending on the intended application and / or user preference.

[0018] With further reference to FIG. 1 , the core 100 may further include a plurality of reactivity control cells 104. Each cell 104 may be configured to house a reactivity control rod arrangement, which collectively operates to control fission occurring within the core 100 and, therefore, may prevent the core 100 from reaching critical temperatures in the event of a reactor and / or power failure or criticality accident. According to various non-limiting embodiments, the amount of fission may be reduced or entirely eliminated within the core 100, the latter of which may shut down the core. Reactivity control rods contemplated by the present disclosure may include neutron-absorbing material and may be configured to be inserted into the reactivity control cells 104 to slow and / or stop a nuclear reaction in the event of an emergency. The reactivity control arrangement of the core 100 of FIG. 1 represents a useful feature of modern microreactors, which are transportable and have broader commercial applications. Thus, the emergence of microreactors may increase the adoption rate of nuclear technology and make safety a higher priority.

[0019] According to a non-limiting embodiment of FIG. 1 , the core 100 may further include a reflector 106 shield. For example, the reflector 106 may include one or more plates constructed of a thick neutron shielding material and configured to substantially surround the core 100. The reflector 106 may further include a plurality of control drums 108 configured to house neutron absorbing material. In the event of a reactor and / or power supply failure, the control drums 108 may rotate inward toward the core 100 so that the absorbing material can mitigate radiation and control the temperature of the core 100. According to some non-limiting embodiments, the reflector 106 may additionally and / or alternatively include a gamma shield configured to further mitigate radiation in the event of a failure. As illustrated in the non-limiting embodiment of FIG. 1 , the reflector 106 may be arranged in a circular configuration surrounding a plurality of unit cells 102 arranged in a hexagon. However, in other non-limiting embodiments, the reflectors 106 may be arranged to form any of several different geometric configurations around the plurality of unit cells 102, depending on the intended application and / or user preference.

[0020] 1 , the reflector 106 can be segmented to ensure a gap exists between the unit cells 102 and the reflector 106 as a means of controlling and promoting a desired amount of heat transfer. For example, the reflector 106 can be formed from multiple modular plates integrated to create the aforementioned gap. However, in other non-limiting embodiments, the reflector 106 can be integrally formed. Additionally, the reflector 106 can be further configured to extend along an axial direction D1 that defines the length L of the core 100. The multiple unit cells 102 can also be configured to span the length L of the core 100. Because the unit cells are configured to house fuel, the magnitude of the length L of the core 100 can correspond to the desired power output of the nuclear reactor. Additionally and / or alternatively, the increased versatility of microreactors means that the core 100 must be configurable for a wide variety of applications, many of which may have size and / or weight constraints. Therefore, the design of the core 100 is such that the length L can be precisely configured to accommodate the power, size, and / or weight requirements of the reactor.

[0021] Referring now to FIG. 2 , a top view of the reactor design of FIG. 1 is illustrated in accordance with at least one non-limiting embodiment of the present disclosure. FIG. 2 illustrates how the plurality of unit cells 102 and the plurality of reactivity control cells 104 may be specifically arranged to establish a hexagonal configuration of the non-limiting embodiment of the core 100. It is also apparent that each unit cell 102 of the plurality of unit cells 102 and each reactivity control cell 104 of the plurality of reactivity control cells 104 may similarly comprise a hexagonal configuration. However, it should be understood that the hexagonal configuration is illustrated for illustrative purposes only. Accordingly, the present disclosure contemplates other non-limiting embodiments in which the unit cells 102 comprise any number of geometric configurations (e.g., square, circular, triangular, rectangular, pentagonal, octagonal), such that the core 100 may comprise any number of geometric configurations.

[0022] With further reference to FIG. 2 , the plurality of unit cells 102 and the plurality of reactivity control cells 104 may be arranged along a radial direction D2, thereby defining a radial dimension R of the core 100. Specifically, the non-limiting embodiment of FIG. 2 illustrates the core 100 having 61 unit cells 102. However, the present disclosure contemplates other non-limiting embodiments in which the core 102 includes any number of unit cells 102. Indeed, the ability to easily add or subtract several unit cells 102 to the core 100 without dramatically changing its design allows the core 100 to be easily scaled depending on the intended application and / or user preferences. In this manner, the output of the core 100 design may also be easily tailored for multiple applications and requirements. For example, a user may change the radial dimension of the core 100 by radially adding or subtracting unit cells 102 from the core 100 design. Because the unit cells are configured to house fuel containing radioisotopes, increasing or decreasing the magnitude of the radial dimension R can change the power output of the core 100. Thus, the radial dimension R of the core 100 can correspond to a desired power output of the reactor depending on the intended application and / or user preferences. Additionally and / or alternatively, the radial dimension R of the core 100 can be specifically configured to meet multiple size and / or weight requirements, which can vary depending on the application.

[0023] As used in this disclosure, the term "radial" describes any direction extending from the center of core 100 when viewed from above. Thus, use of the term "radial" should not be limited to circular or circular-like configurations and should not be interpreted to imply that core 100 of FIGS. 1 and 2 is limited to circular or circular-like configurations. For example, the present disclosure contemplates non-limiting embodiments in which core 100 includes a rectangular configuration. According to such embodiments, core 100 may include one or more radial dimensions of varying lengths.

[0024] 2 , the plurality of unit cells 102 and the plurality of reactivity control cells 104 may be integrally formed from a solid block of material (e.g., graphite). Thus, internal features of each of the unit cells 102, such as heat pipe channels, fuel rod channels, moderator channels, and / or the like, may be extracted from and integrally formed from the solid block of material. However, according to another non-limiting embodiment, each unit cell 102 of the plurality of unit cells 102 and each reactivity control cell 104 of the plurality of reactivity control cells 104 may be modularly formed and integrated into the core block to facilitate tunability of the core design. In any case, the core 100 may be easily manufactured to include any number of unit cells 102 and / or reactivity control cells 104. This may allow the design of the core 100 to be easily scalable. For example, varying the number of unit cells 102 and reactivity control cells 104 may allow a user to change the radial dimension R and length L (FIG. 1) of the core 100, thereby modifying its power output and flexibility for applications with unique power and / or space constraints. However, the design of the core 100 remains essentially the same, allowing for predictability in manufacturing and performance despite differences in power output and size. These features also reduce the amount of non-recurring engineering required to design for new applications and facilitate manufacturing consistency and standardization of parts. The core 100 of FIGS. 1 and 2 may be scalable as a means of adjusting its power output, although scaling should further consider the power rating of the implemented heat pipes and the availability of the appropriate number of reactivity control rods and control drums required for the adjusted power output.

[0025] With further reference to FIG. 2 , each of the cells 102 can be configured to be self-sufficient. As used in this disclosure, “self-sufficient” should be interpreted as the ability of each unit cell 102 to independently dissipate heat generated by fuel directed into the unit cell 102 via the heat rod. However, as a safety measure, the unit cells 102 are closely spaced such that the gap G between any two adjacent unit cells 102 is 2 millimeters or less. In this manner, if one or more heat pipes fail within any given unit cell 102, the adjacent unit cell 102 can be positioned sufficiently close to the unit cell 102 with the failed heat pipe so that it will transfer excess heat away from the core 100. Thus, the unit cells 102 can be configured to ensure that the core 100 can operate at an acceptable temperature even when the unit cell is no longer self-sufficient due to a heat pipe failure.

[0026] Additionally, the unit cells 102 of FIG. 2 can be geometrically configured and oriented relative to one another in a triangular pattern, the triangular pattern including a predetermined pitch calculated to achieve a desired output. For example, the core 100 of FIG. 2 can include a pitch that is greater than or equal to 15 centimeters and less than or equal to 20 centimeters. However, the present disclosure contemplates other non-limiting embodiments, including any number of different pitches based on any number of desired outputs as dictated by the intended application and / or user preferences. Accordingly, the multiple unit cells 102 can include various geometric variables that can be attenuated to further tailor the output of the core 100. In practice, it is the particular geometry and relative locations of the unit cells 102, as well as the configuration and geometry of the reflector 106, that can be carefully selected to tailor the output of the core 100 to meet the demands of a particular application while complying with additional requirements.

[0027] Referring now to FIG. 3 , a top view of a unit cell 102 of the core 100 of FIGS. 1 and 2 is illustrated, in accordance with at least one non-limiting embodiment of the present disclosure. According to the non-limiting embodiment of FIG. 3 , the unit cell 102 may include a plurality of fuel channels 110 configured to accommodate fuel for the core 100 and a plurality of heat pipe channels 112 configured to accommodate heat pipes for the core 100. Specifically, the unit cell 102 of FIG. 3 includes 24 fuel channels 110 and 7 heat pipe channels 112. However, it should be understood that the unit cell 102 may include any number of fuel channels 110 and heat pipe channels 112 to optimize nuclear energy generation and enhance the efficiency with which thermal energy is removed from the core 100. As discussed above, each unit cell 102 is configured to be self-contained. Thus, each heat pipe channel 112 may be surrounded by several fuel channels 110 of the core such that thermal energy generated by fuel inserted in the fuel channels 110 may be effectively transferred away from the core 100. For example, the fuel may include a neutron-emitting material (e.g., a triisotropic particle fuel having a core of uranium oxide, uranium nitride, or uranium carbonate).

[0028] 3 may further include a moderator channel configured to accommodate a moderator (e.g., a hydride-based moderator, BeO, etc.) for the core 100, which may be configured to slow and inhibit the propagation of neutrons emitted by fuel inserted in the plurality of fuel channels 110. Alternatively and / or additionally, the unit cell 102 may include additional features configured to accommodate other components of the core 100.

[0029] 3 , the plurality of fuel rod channels 110 may be configured with a first diameter D1, and the plurality of heat pipe channels 112 may be configured with a second diameter D2. According to some non-limiting embodiments, the first diameter D1 and the second diameter D2 are selected to help the unit cells 102 be self-contained, such that a heat pipe inserted into the heat pipe channel 112 has the ability to transfer heat away from the core 100. Similar to the gap G between the unit cells 102, the first diameter D1 of the fuel channel 110 and the second diameter D2 of the heat pipe channel 112 may be configured such that, when properly inserted into the unit cells 102, a desired gap exists between the fuel and the inner walls of the fuel channel 110, and between the heat pipe and the inner walls of the heat pipe channel 112. Again, such gaps may be geometrically configured to optimize energy generation and heat transfer throughout the unit cells 102 and throughout the core 100 as a whole. 3 includes channels 110, 112 having a circular configuration, it should be understood that the present disclosure contemplates other non-limiting embodiments in which channels 110, 112 have any number of geometric configurations to optimize heat transfer for the intended application and user preference. Accordingly, as used in accordance with the present disclosure, the term "diameter" is intended to include any dimension extending away from the center point of channels 110, 112. As such, it should be understood that the term "diameter" is not intended to limit channels 110, 112 to a circular configuration.

[0030] 3 , the unit cells 102 may also include features configured to accommodate neutron absorbing materials that may slow nuclear reactions occurring in the fuel rod channels 110 of the unit cells 102. Thus, the power distribution and radial power peaking of the unit cells 102, and consequently the core 100 itself, may be further tuned through the influence of the neutron absorbing materials. According to some non-limiting embodiments, the core 100 may be designed for applications that do not impose strict transportation requirements on the core 100. Alternatively and / or additionally, the core 100 may use high-density fuel. According to such embodiments, the axial power peaking factor and axial power distribution of the unit cells 102 and the core 100 may be differently managed by varying the fuel enrichment level in the fuel channels 110 of the unit cells 102.

[0031] Referring now to FIG. 4A , a perspective view of the unit cell of FIG. 3 is illustrated, in accordance with at least one non-limiting embodiment of the present disclosure. According to the non-limiting embodiment of FIG. 4A , a plurality of unit cells 102 are configured to extend along at least a portion of the length L of the core 100. For example, each unit cell 102 of the plurality of unit cells 102 may be modularly formed and integrated within a core block to facilitate tailoring of the core design, which represents one aspect of tailoring offered by the design of the core 100. This may help the core 100 comply with power and / or size requirements associated with an intended application. In other non-limiting embodiments contemplated by the present disclosure, the unit cells 102 are integrally formed along at least a portion of the length of the core 100, but may similarly be configured to achieve a desired power output.

[0032] Similarly, the reflector 106 configuration illustrated in FIG. 4B includes multiple reflectors 106, including a control drum 108, configured to extend along at least a portion of the length L of the core 100, similar to the configuration illustrated and discussed above with reference to FIG. 1. Of course, according to some non-limiting embodiments, the reflectors may also be integrally formed. Again, the reflectors may be specifically configured to create advantageous gaps to facilitate and enhance heat transfer throughout the core 100.

[0033] Additionally and / or alternatively, according to some non-limiting embodiments, it may be advantageous for rows of unit cells 102 to overlap with rows of adjacent unit cells 102. For example, according to a non-limiting embodiment of FIG. 4C , a side view of the unit cell of FIG. 3 is illustrated in accordance with at least one non-limiting embodiment of the present disclosure. As can be seen in FIG. 4C , the unit cells 102 are offset relative to one another. Such overlap may enhance energy production and / or heat transfer throughout the core 100, providing users with another geometric variable to attenuate to optimize the performance of the core 100 without dramatically altering the design of the core 100.

[0034] Referring now to FIG. 5 , a perspective view of the core 100 of FIGS. 1-4 is illustrated in accordance with at least one non-limiting embodiment of the present disclosure. According to the non-limiting embodiment of FIG. 5 , the core 100 may be assembled to include fuel 111, heat pipes 113, and reactivity control rods 115 disposed throughout a plurality of unit cells 102 and reactivity control cells 108. Specifically, the fuel 111 may be disposed throughout the fuel channels 110 ( FIG. 3 ) of one or more unit cells 102, the heat pipes 113 may be disposed throughout the heat pipe channels 112 ( FIG. 3 ) of one or more unit cells 102, and the reactivity control rods 115 may be disposed through the reactivity control channels (not shown) of one or more reactivity control cells 104. According to some non-limiting embodiments, the fuel 111 and the heat pipes 113 are configured to extend a predetermined length L of the core 100. In other non-limiting embodiments, the heat pipes 113 are configured to extend an additional length L' beyond the predetermined length L of the core to facilitate downstream off-core connections and / or equipment (e.g., power systems, condensers, structural support). This design allows the core 100 to be customized to any intended application and / or user preference, allowing the core 100 to be versatile depending on the customer's needs. However, none of these modifications may dramatically affect the nuclear physics and / or manufacturability underlying the core 100 design, maintaining reliability and predictability in the manufacture and operation of the core 100. In other words, the assembled core 100 design of FIG. 5 allows the fuel 111 and heat pipes 113 to be specifically configured to accommodate any particular power requirements and / or structural configuration without having to reinvent the basic core 100 design and assuming the inherent development risks.

[0035] 5, the reflector 106 may further include a plurality of control drums 108 configured to house neutron absorbing and reflective material. In the event of a reactor and / or power failure or reactor shutdown, the control drums 108 may rotate inward toward the core 100 so that the absorbing material may shut down the core 100. According to a non-limiting embodiment of FIG. 5, the reflector 106 may further include a gamma shield 109 configured to substantially surround the neutron shield, the core 100, and its internal components 102, 104, 111, 113, 115 to further mitigate radiation.

[0036] 5 , the core 100 may further include a plurality of reactivity control rods 115 configured to be disposed through one or more of the plurality of reactivity control cells 104. For example, the reactivity control cells 104 may include a reactivity control rod channel similar to the fuel channel 110 and / or the heat pipe channel 112, but specifically configured to accommodate the reactivity control rods 115. As described above, each reactivity control rod 115 may include a neutron-absorbing material configured to slow and / or stop a nuclear reaction within the core 100 in the event of an emergency. The reactivity control rods 115 may operate collectively to prevent the core 100 from reaching a critical temperature in the event of reactor and / or power failure. Thus, the advent of microreactors may increase the adoption rate of nuclear technology and make safety a higher priority.

[0037] Referring now to FIG. 6 , a cross-sectional perspective view of the core 100 of FIGS. 1-5 is illustrated, according to at least one non-limiting embodiment of the present disclosure. According to the non-limiting embodiment of FIG. 6 , the core 100, including the reflector 106, may be configured to be positioned within an outer shroud 117, which may provide additional structural, shielding, and heat transfer characteristics to the core 100 depending on the intended application and / or user preference. In particular, FIG. 6 illustrates how the unit cells 102 and reactivity control cells 104 are arranged relative to one another to form a plurality of fuel channels 110 ( FIG. 3 ), heat pipe channels 112 ( FIG. 3 ), and reactivity control rod channels (not shown) that traverse through the blocks of the core 100. The cross-sectional view illustrates the fuel 111, heat pipes 113, and reactivity control rods 115 disposed within the channels 110, 112, thereby forming the functional core of the core 100. Thus, it should be understood that the number of unit cells 102 and / or reactivity control cells 104 may be varied to adjust the power output and / or geometric configuration of the core 100 without significantly changing its design.

[0038] For at least the reasons discussed above, the core 100 design disclosed herein includes a tunable output with a high level of manufacturability readiness. In other words, existing manufacturing techniques can be used to create single unit cells or clusters of unit cells, reflectors, and / or the entire assembly disclosed herein. Thus, the core 100 can be assembled for in-process control of individual core components (e.g., unit cells, reflector segments), and can include components that are easy to replace and / or modify as needed. These features facilitate the scalability of the core 100, making it particularly useful compared to monolithic core configurations.

[0039] 7A-9C, several stress distributions are illustrated for the core 100 of FIGS. 1-6 according to at least one non-limiting embodiment of the present disclosure. For example, FIGS. 7A-7C illustrate temperature distributions for at least a portion of the core of FIGS. 1-6. As discussed above, the unit cells 102 can be arranged such that there is no gap greater than a predetermined gap G (FIG. 3) between any two adjacent cells 102. The gap G (FIG. 3) allows excess heat to be dissipated by adjacent heat pipes of adjacent unit cells 102 in the event of a heat pipe failure. For example, in FIG. 7A, a typical temperature distribution without heat removal degradation is illustrated. However, in FIG. 7B, a heat pipe has failed, as represented by the temperature concentration at point A. Because the adjacent unit cell 102 is positioned less than the predetermined gap G from the unit cell 102 with the failed heat pipe, excess heat can be dissipated by the adjacent heat pipe. This is evident in the dissipation of thermal gradients illustrated in Figure 7B. In other words, the core 100 can be precisely configured so that adjacent unit cells 102 can help remove heat in the event of a heat pipe failure.

[0040] 8A and 8B illustrate a comparison of stress distribution in at least a portion of the core of FIGS. 1-6 with stress distribution in a conventional monolithic core, in accordance with at least one non-limiting embodiment of the present disclosure. As is apparent from FIGS. 8A and 8B, the equivalent stress in the improved core 100 configuration of FIGS. 1-6 is reduced when compared to stress in a monolithic core. While the stress distribution pattern is similar, the magnitude of stress experienced is significantly less. FIGS. 9A-9C illustrate simulated temperature and stress distributions for the maximum anticipated power level of the core of FIGS. 1-6, in accordance with at least one non-limiting embodiment of the present disclosure. Accordingly, FIGS. 9A-9C illustrate that the overall stress experienced by the core 100 and its components is below conventional limits for nuclear reactor operating conditions. 9A-9C thus illustrate that even though the output power of the core is adjusted, the design of core 100 can facilitate sufficient thermal management capabilities such that the stresses experienced by core 100 remain compliant with other customer requirements and / or internal and government regulations.

[0041] Referring now to FIG. 10 , a method 200 for adjusting the output power of a nuclear reactor core is illustrated, according to at least one non-limiting embodiment of the present disclosure. According to the non-limiting embodiment of FIG. 10 , method 200 may include adjusting the output power of a core including a plurality of unit cells. Each unit cell of the plurality of unit cells is configured to contain a fuel configured to generate energy. Further, each unit cell of the plurality of unit cells is configured to contain a heat pipe configured to transfer thermal energy away from the core. An initial number of unit cells in the plurality of unit cells corresponds to an initial output power of the core. For example, the initial output power may be a standardized output of a core production line that takes into account the average power output desired by a customer of the production line. This may minimize the amount of adjustment required, thus reducing the amount of development and risk required to adjust the output power of the core.

[0042] With further reference to FIG. 10 , the method 200 may include determining a quantity of fuel based on a desired output power of the core 202. For example, the desired output power of the core may correspond to the intended application of the reactor. If the reactor is to power more equipment than standard initial production may provide, then the desired output power will be higher than the initial output power. Alternatively, the application may require less power, but also less space or real estate for the core. Thus, the output power of the core, and therefore its footprint, should be reduced. Next, the method includes determining the number of heat pipes based on predetermined requirements for the core 204. For example, the reactor may have to comply with contractual, internal, or governmental thermal requirements or safety factors. This may affect the number of heat pipes required to maintain the desired output power in compliance with the requirements imposed on the reactor.

[0043] 10 , the method 200 further includes determining a number of unit cells based on the determined amount of fuel and the determined number of heat pipes 206. In other words, the method seeks to optimize power and compliance requirements. This optimization is then integrated into the modular core design. Thereafter, the method includes mechanically modifying the plurality of unit cells such that the initial number of unit cells is the determined number of unit cells 208. Thus, the scalable core is modified to fit the configuration determined based on the desired output power and compliance requirements.

[0044] Referring now to FIG. 11(A), there is shown a top view of a unit cell 1100a including a configurable layout according to at least one non-limiting aspect of the present disclosure. According to a non-limiting aspect of FIG. 11(A), the unit cell 1100a may include a plurality of channels 1104, 1106 defined within a core block material 1102. For example, the unit cell 1100a may include a plurality of fuel channels 1104 and / or a plurality of heat pipe channels 1106. The channels 1104, 1106 of the unit cell 1100a may be configured to accommodate various replaceable components required by a nuclear reactor core and may be arranged in a configurable pattern to achieve criticality and / or a desired output of the nuclear reactor. According to some non-limiting aspects, each channel 1104, 1106 may be configured to accommodate either a replaceable component including a fuel source and / or a heat pipe. Thus, the unit cell 1100a of FIG. 11(A) may be an essential component of a plurality of integrated unit cells 1100a that form a nuclear reactor core that generates electricity and removes the resulting thermal energy, depending on the fuel and heat pipes. According to a non-limiting aspect of FIG. 11(A), the layout of the unit cell 1100a may be configurable as long as the unit cell 1100a ultimately complies with nuclear and / or physical and thermal requirements, i.e., the number and / or location of the channels 1104, 1106 may be rearranged to alter the performance of the core.

[0045] According to a non-limiting embodiment of FIG. 11(A), the core block material 1102 of the unit cell 1100a can be specifically configured to supplement and / or replace moderators typically required by other core designs. For example, the core block material 1102 can be specifically selected to include properties that can slow the velocity of neutrons emitted by a fuel source installed within the fuel channels 1104 of the unit cell 1100a. In this manner, the core block material 1102 itself can control the rate of nuclear fission occurring within the fuel channels 1104 of the unit cell 1100a. Thus, the unit cell 1100a may reduce and / or eliminate the need to incorporate additional moderators, which would otherwise reduce the capacity of the unit cell 1100a to accommodate fuel and / or heat pipes. Without the need for moderator channels, the unit cell 1100a may make more efficient use of its layout, ultimately reducing the size of the core while improving the reactor's power performance. It should also be appreciated that the core block material 1102 may be further configured to include certain desirable physical properties (e.g., modulus of elasticity, thermal conductivity, strength, web thickness, and / or thermal expansion) to withstand the core, structural, and / or thermal stresses of the unit cell 1100a.

[0046] With further reference to FIG. 11(A), the unit cell 1100a may further include a plurality of fuel channels 1104 configured to accommodate various fuel types (e.g., tri-isotropic particle fuel with a uranium dioxide, uranium nitride, or uranium carbonate core). The layout of the unit cell 1100a in FIG. 11(A) may be specifically configured for a specific fuel type, or the layout of the unit cell 1100a may be universally configured to accommodate any number of fuel types in standard configurations. Additionally, the unit cell 1100a may accommodate various fuel configurations based on desired fuel utilization and / or moderator requirements. According to a non-limiting embodiment in which the core block material 1102 of the unit cell 1100a may be specifically configured to replenish and / or replace moderators, the fuel 1104 may also be configured to accommodate various fuel sources and / or secondary moderators to optimize reactor performance variables and ensure compliance with various requirements and / or regulations that vary by application. Thus, the layout of the single unit cell 1100a of FIG. 11(A) can be configured and reconfigured as desired.

[0047] The configurable cell block 1100a layout of FIG. 11(A) offers numerous advantages, including applicability to various reactor designs requiring different moderator configurations. For example, the unit cell 1100a of FIG. 11(A) may include a uranium nitride and / or triisotropic particle fuel source installed within a subset of the fuel channels 1104. According to such an embodiment, the unit cell 1100a may comply with reactor shipping requirements but suffer from a fuel utilization disadvantage. Therefore, users may decide to insert a secondary moderator (e.g., a hydride-based material, beryllium oxide) into a subset of the fuel channels 1104 to attenuate reactor performance and thus improve fuel utilization.

[0048] According to another non-limiting aspect, the unit cell 1100a may include a uranium dioxide and / or uranium nitride fuel source in a subset of the fuel channels 1104 to optimize fuel utilization, but likely require the use of a secondary moderator in other fuel channels 1104 to comply with reactor transportation requirements. None of the above examples are intended to be limiting, but rather are presented solely to illustrate how the layout of the unit cell 1100a of FIG. 11(A) may be configurable to optimize reactor performance for compliance with several different requirements and / or regulations. Thus, a single unit cell layout 1100a may be applicable and precisely configured for a wide range of reactor applications (e.g., mobile, transportable, and stationary). Streamlining the production of the unit cells 1100a, 1100b to include a single configurable layout, such as that illustrated in FIGS. 11(A) and 11(B), may expedite manufacturing readiness and facilitate the use of existing manufacturing techniques.

[0049] Referring now to FIG. 11(B), another unit cell including a configurable layout is illustrated in accordance with at least one non-limiting embodiment of the present disclosure. Unit cell 1100b is configured similarly to unit cell 1100a of FIG. 11(A). However, according to a non-limiting embodiment of FIG. 11(B), unit cell 1100b may further include one or more reactivity control channels 1108 configured to accommodate reactivity control rods that may operate to prevent core 100 from reaching a critical temperature in the event of a reactor and / or power failure. For example, reactivity control channels 1108 of unit cell 1100b of FIG. 11(B) may accommodate reactivity control rods including neutron-absorbing material configured to slow and / or stop nuclear reactions occurring within fuel channels 1104 in the event of an emergency.

[0050] With further reference to FIG. 11(B), the reactivity control channels 1108 may be larger than the fuel channels 1104 and heat pipe channels 1106 of the unit cell 1100b. However, the present disclosure contemplates other non-limiting embodiments in which the reactivity control channels 1108 may include a variety of different sizes and / or geometric configurations relative to the fuel channels 1104 and heat pipe channels 1106 of the unit cell 1100b. Additionally and / or alternatively, the unit cell 1100b of FIG. 11(B) may be configured to couple to the unit cell 1108a of FIG. 11(A), thereby establishing a core having a reactivity control configuration that is more compliant with application-specific requirements and / or regulations. Thus, the unit cells 1100a, 1100b of FIGS. 11(A) and 11(B) may collectively provide additional benefits to modern microreactors. As discussed above, such microreactors are compact, thus increasing the adoption rate of nuclear technology. Therefore, safety remains a high priority when designing a nuclear reactor core. The configurable layout of unit cell 1100b may allow the core design to be customized, thus helping to mitigate the risks inherent in the use of nuclear technology.

[0051] While the unit cells 1100a, 1100b in Figures 11(A) and 11(B) may include a hexagonal configuration, it should be understood that the hexagonal configuration is depicted for illustrative purposes only. Accordingly, the present disclosure contemplates other non-limiting embodiments in which the unit cells 1100a, 1100b may include any number of geometric configurations (e.g., square, circular, triangular, rectangular, pentagonal, octagonal) and may be arranged to form cores of many different geometric configurations. Additionally and / or alternatively, the channels 1104, 1106, 1108 may include any geometric configuration and are not intended to be limited to the circular geometry depicted in Figures 11(A) and 11(B). It should be understood that the modular and reconfigurable features of the unit cells 1100a, 1100b may be equally applicable to channels of various geometric cross-sections (e.g., square, circular, triangular, rectangular, pentagonal, octagonal).

[0052] It should be understood that the layout of the unit cells 1100a, 1100b can be precisely configured based on the intended application and / or user preferences. This allows any core constructed from the unit cells 1100a, 1100b to be flexibly designed to fit the expected versatility of modern microreactors. For example, the arrangement of the channels 1104, 1106, 1108 can include a predetermined pitch P between the channels. The pitch P can be precisely configured based on the specific fuel type intended for the core. For example, the pitch P in FIGS. 11(A) and 11(B) can include a dimension greater than or equal to 20 millimeters and less than or equal to 40 millimeters. However, the present disclosure contemplates other non-limiting embodiments, including pitches of various dimension sizes based on any other nuclear and / or thermal properties of the core, depending on the intended application and / or user preferences.

[0053] Similarly, each channel 1104, 1106, 1108 of the unit cells 1100a, 1100b of FIGS. 11(A) and 11(B) has a predetermined channel diameter D that can be designed to establish a desired clearance to respectfully accommodate fuel, heat pipes, and / or reactivity control rods. C Therefore, the channel diameter D C can be precisely configured for the desired amount of nucleation, heat removal, and / or reactivity control capability depending on the intended application and / or user. C As the pitch P is adjusted to accommodate various fuel sources (e.g., rods, stacks, pellets, and / or compacts), subsequent readjustments to the pitch P may be necessary, particularly for the channel diameter D C It should be understood that may be required if the channel spacing G is increased to accommodate a wider range of fuel sources to achieve higher power ratings. Additionally and / or alternatively, each channel 1104, 1106, 1108 of the unit cells 1100a, 1100b may have a predetermined radial gap G between the channels 1104, 1106, 1108. R The radial gap G RThe heat pipes in adjacent channels can be selected to ensure that a particular proximity between the channels 1104, 1106, 1108 is maintained. Thus, the channels 1104, 1106, 1108 are arranged to collectively achieve the performance expectations of the unit cells 1100a, 1100b. For example, if a first heat pipe fails, the heat pipes in adjacent channels can accommodate the failure by transferring excess heat away from the unit cells 1100a, 1100b and, therefore, the core itself. This ensures that the unit cells 1100a, 1100b can comply with applicable performance requirements and / or safety regulations in the event of a failure.

[0054] In other words, the channels 1104, 1106, 1108 of the unit cells 1100a, 1100b of Figures 11(A) and 11(B) can be easily configured to accommodate any nuclear, thermal, and / or safety design constraints. Typical radial clearances between elements of the design will vary depending on the type of joint, fuel and heat pipe dimensions, required heat release rate, and cover (fill) gas used. However, the above dimensions (e.g., pitch P, channel diameter D) can be adjusted to change the geometric configuration of the unit cells 1100a, 1100b, channels 1104, 1106, 1108. C , radial gap G R , web thickness) will not violate the manufacturing arrangements, standards, or limitations described above.

[0055] 12(A)-12(C), top views of another unit cell 1200 including configurable layouts are illustrated in various configurations according to at least one non-limiting embodiment of the present disclosure. According to the non-limiting embodiment of FIG. 12(A), a baseline unit cell 1200a configuration is illustrated, in which fuel 1206 is positioned within channels surrounding a central heat pipe 1204 in a hexagonal configuration. According to the non-limiting embodiment of FIG. 12(A), the baseline unit cell 1200a configuration does not include a secondary moderator installed within any of the channels. Alternatively, the baseline unit cell 1200a configuration may include a core block material 1202 (e.g., graphite) that functions as a moderator.

[0056] Referring now to FIG. 12(B), a second unit cell 1200b is illustrated in accordance with at least one non-limiting embodiment of the present disclosure. According to the non-limiting embodiment of FIG. 12(B), the unit cell 1200b can include a beryllium-based moderator 1210 (e.g., beryllium carbide or beryllium oxide) interposed between channels containing the fuel 1206, the channels being the same as those illustrated in FIG. 12(A). Referring now to FIG. 12(C), a third unit cell 1200c configuration is illustrated in accordance with at least one non-limiting embodiment of the present disclosure. Similar to the embodiment of FIG. 12(B), the unit cell 1200c configuration of FIG. 12(C) can include a moderator 1212 interposed between channels containing the fuel source 1206. However, according to the non-limiting embodiment of FIG. 12(C), the moderator can include a hydride-based material (e.g., yttrium hydride, zirconium hydride).

[0057] Collectively, Figures 12(A)-(C) illustrate how a single unit cell 1200, or the unit cells 1100a, 1100b of Figures 11(A) and 11(B), can include a configurable layout that can change the power and / or performance of a nuclear reactor core in compliance with a wide variety of application-specific requirements and / or regulations while maintaining a desired level of manufacturing readiness. While the non-limiting unit cell 1200a, 1200b, 1200c configurations illustrate the use of different moderators 1202, 1210, 1212 throughout the reactor core, it should be understood that similar modular principles can be applied to configure unit cells 1200a, 1200b, 1200c to affect any number of core parameters, including the use of different fuel sources and / or reactivity control rods.

[0058] Referring now to FIG. 15 , a method 1500 for configuring unit cells of a nuclear reactor core is illustrated, according to at least one non-limiting embodiment of the present disclosure. According to the non-limiting embodiment of FIG. 15 , method 1500 may include determining (1502) an operating state of the core, where the operating state corresponds to a certain intended use of the nuclear reactor and / or user preferences. This step illustrates the increased versatility offered by modern nuclear reactors. Next, method 1500 determines (1504) performance parameters of the unit cells, including aspects of the operating state. For example, a particular use of the reactor may require a specific output power or moderator capacity of the core. Thus, a user may decompose the operating state into one or more performance parameters, which may affect the design of the core, and more specifically, the design of the unit cells. Next, method 1500 includes selecting (1506) replaceable components corresponding to the performance parameters. Based on the selected performance parameters, a user may select a specific type or composition of fuel source, reactivity control rods, or heat pipes for inclusion in the unit cell layout. Finally, the method includes installing the selected replaceable component in a channel of the plurality of channels 1508. Method 1500 may be repeated until the channels of the unit cell are filled with the required replaceable components such that the core achieves an operational state and may be effective in its intended application.

[0059] Various aspects of the subject matter described herein are set forth in the following numbered clauses: Item 1: A configurable unit cell for a nuclear reactor core, the configurable unit cell including: a core block material; a plurality of replaceable components, each replaceable component of the plurality of replaceable components configured to affect a performance parameter of the nuclear reactor core; and a plurality of channels defined in the core block material, each channel of the plurality of channels configured to engage a replaceable component of the plurality of replaceable components in an operational configuration, each channel of the plurality of channels separated from an adjacent channel of the plurality of channels by a predetermined pitch. Item 2: The configurable unit cell of item 1, wherein the plurality of replaceable components includes at least one of a fuel source, a heat pipe, a reactivity control rod, and a reactivity control rod, or a combination thereof. Item 3: A configurable unit cell as described in items 1 or 2, wherein the core block material includes a moderator and the plurality of channels are precisely positioned such that the core block material can adequately moderate the nuclear energy generated by the configurable unit cell in an operating configuration. Item 4: The tunable core of any one of items 1 to 3, wherein the core block material comprises graphite. Item 5: A configurable unit cell according to any one of items 1 to 4, wherein the plurality of replaceable components includes at least one of a fuel source, a heat pipe, a moderator, a reactivity control rod, and a reactivity control rod, or a combination thereof. Item 6: A configurable unit cell according to any one of items 1 to 5, wherein the configurable unit cell is modular and configured to be coupled to a second configurable unit cell, and when the configurable unit cell is coupled to the second configurable unit cell, forms at least a portion of a core of a nuclear reactor. Clause 7: A configurable unit cell according to any one of clauses 1 to 6, further comprising a joint configured to couple the second unit cell to the configurable unit cell, the joint defining a predetermined gap between the configurable unit cell and the second unit cell, the predetermined gap corresponding to a predetermined heat transfer parameter of the core in the event of a heat pipe failure. Item 8: A configurable unit cell according to any one of items 1 to 7, wherein the predetermined pitch is 20 millimeters or more and 40 millimeters or less. Clause 9: A nuclear reactor core comprising: a plurality of replaceable components, each replaceable component of the plurality of replaceable components configured to affect a performance parameter of the nuclear reactor core; a plurality of configurable unit cells, each configurable unit cell of the plurality of configurable unit cells formed from core block material, the plurality of configurable unit cells comprising: a standard unit cell comprising a plurality of channels defined in the core block material, each channel of the plurality of channels configured to engage with a replaceable component of the plurality of replaceable components in an operational configuration; and a reactivity control cell comprising a plurality of channels defined in the core block material, each channel of the plurality of channels configured to engage with a replaceable component of the plurality of replaceable components in an operational configuration, at least one channel of the plurality of channels configured to engage with a reactivity control rod. Clause 10: The core of clause 9, wherein the plurality of replaceable components includes at least one of a fuel source, a heat pipe, a reactivity control rod, and a reactivity control rod, or a combination thereof. Clause 11: A core as described in clause 9 or clause 10, wherein the core block material includes a moderator, and the plurality of channels of each configurable unit cell in the plurality of configurable unit cells are precisely positioned so that the core block material can adequately moderate nuclear energy generated in an operating configuration. Item 12: The core according to any one of items 9 to 11, wherein the core block material comprises graphite. Item 13: A core described in any of items 9 to 12, wherein the plurality of replaceable components includes at least one of a fuel source, a heat pipe, a moderator, a reactivity control rod, and a reactivity control rod, or a combination thereof. Item 14: A core described in any one of items 9 to 13, wherein the number of unit cells is adjustable by modularly configuring each unit cell of the plurality of unit cells to be coupled to an adjacent unit cell of the plurality of unit cells. Clause 15: A core described in any of clauses 9 to 14, wherein each unit cell of the plurality of unit cells is arranged such that a predetermined gap exists between the configurable unit cell and a second unit cell, the predetermined gap corresponding to a predetermined heat transfer parameter of the core in the event of a heat pipe failure. Item 16: The core according to any one of items 9 to 15, wherein the predetermined pitch is 20 millimeters or more and 40 millimeters or less. Clause 17: A method of configuring a unit cell of a nuclear reactor core, the unit cell including a plurality of channels defined in a core block of the nuclear reactor core, each channel of the plurality of channels configured to engage a replaceable component of a plurality of replaceable components, the method including: determining an operating state of the nuclear reactor core, the operating state corresponding to an intended use of the nuclear reactor; determining performance parameters of the unit cell, the performance parameters including aspects of the determined operating state of the nuclear reactor core; selecting a replaceable component from the plurality of replaceable components, the selected replaceable component corresponding to the determined performance parameters of the unit cell; and installing the selected replaceable component in a channel of the plurality of channels. Clause 18: The method of clause 17, further comprising: determining a second performance parameter of the unit cell, the second performance parameter comprising another aspect of the determined operating state of the nuclear reactor core; selecting a second replaceable component from the plurality of replaceable components, the selected replaceable component corresponding to the determined second performance parameter of the unit cell; and installing the selected second replaceable component in another channel of the plurality of channels. Clause 19: The method of clause 17 or clause 18, wherein the plurality of replaceable components includes at least one of a fuel source, a heat pipe, a moderator, a reactivity control rod, and a reactivity control rod, or a combination thereof. Clause 20: The method of any of clauses 17 to 19, wherein the core block material includes a moderator and the plurality of replaceable components includes at least one of a fuel source, a heat pipe, a reactivity control rod, and a reactivity control rod, or a combination thereof.

[0060] 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.

[0061] 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.

[0062] 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.

[0063] 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."

[0064] 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.

[0065] 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.

[0066] As used herein, the singular forms "a," "an," and "the" include plural references unless the context clearly dictates otherwise.

[0067] 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.

[0068] 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.

[0069] 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.

[0070] 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.

[0071] 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.

[0072] 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. A configurable unit cell for a nuclear reactor core, said configurable unit cell comprising: a core block material; a plurality of replaceable components including a plurality of heat pipes, a plurality of fuel rods, and a plurality of reactivity control rods, each replaceable component of the plurality of replaceable components configured to affect a performance parameter of the core of the nuclear reactor; a plurality of channels defined within the core block material, each channel of the plurality of channels configured to receive one of the plurality of replaceable components in an operational configuration, each channel of the plurality of channels separated from adjacent channels of the plurality of channels by a predetermined pitch, wherein in the operational configuration: a first channel of the plurality of channels receiving a heat pipe of the plurality of heat pipes; a second channel of the plurality of channels receiving a fuel rod of the plurality of fuel rods; a configurable unit cell, wherein a third channel of the plurality of channels receives a reactivity control rod of the plurality of reactivity control rods;

2. 10. The configurable unit cell of claim 1, wherein said core block material comprises a moderator, and said plurality of channels are precisely positioned such that said core block material can adequately moderate nuclear energy generated by said configurable unit cell in said operating configuration.

3. The configurable unit cell of claim 2 , wherein the core block material comprises graphite.

4. 10. The configurable unit cell of claim 1, wherein the configurable unit cell is modular and configured to be coupled to a second configurable unit cell, the configurable unit cell forming at least a portion of the core of the nuclear reactor when coupled to the second configurable unit cell.

5. 5. The configurable unit cell of claim 4, further comprising a joint configured to couple the second unit cell to the configurable unit cell, the joint defining a predetermined gap between the configurable unit cell and the second unit cell, the predetermined gap corresponding to a predetermined heat transfer parameter of the core upon a heat pipe failure.

6. 10. The configurable unit cell of claim 1, wherein the predetermined pitch is greater than or equal to 20 millimeters and less than or equal to 40 millimeters.

7. A nuclear reactor core, a plurality of replaceable components including a plurality of heat pipes, a plurality of fuel rods, and a plurality of reactivity control rods, each replaceable component of the plurality of replaceable components configured to affect a performance parameter of the core of the nuclear reactor; a plurality of configurable unit cells, each configurable unit cell of the plurality of configurable unit cells formed from a core block material, the plurality of configurable unit cells comprising: a standard unit cell including a first plurality of channels defined within the core block material, each channel of the first plurality of channels configured to receive a replaceable component of the plurality of replaceable components in an operational configuration, wherein in the operational configuration a first channel of the first plurality of channels receives a heat pipe of the plurality of heat pipes and a second channel of the first plurality of channels receives a fuel rod of the plurality of fuel rods; a reactivity control cell including a second plurality of channels defined in the core block material, each channel of the second plurality of channels configured to receive a replaceable component of the plurality of replaceable components in the operational configuration, wherein in the operational configuration a first channel of the second plurality of channels receives a heat pipe of the plurality of heat pipes, a second channel of the second plurality of channels receives a fuel rod of the plurality of fuel rods, and a third channel of the second plurality of channels receives a reactivity control rod of the plurality of reactivity control rods.

8. 8. The core of claim 7, wherein the core block material comprises a moderator, and the plurality of channels of each configurable unit cell in the plurality of configurable unit cells are precisely positioned such that the core block material can adequately moderate nuclear energy generated in the operating configuration.

9. The core of claim 8 , wherein the core block material comprises graphite.

10. The core of claim 7 , wherein the plurality of replaceable components includes a plurality of moderators, and in the operating configuration, a third channel of the second plurality of channels receives a moderator of the plurality of moderators.

11. 8. The core of claim 7, wherein each unit cell of the plurality of unit cells is modularly configured to couple to an adjacent unit cell of the plurality of unit cells, thereby allowing for an adjustable number of unit cells.

12. 12. The core of claim 11 , wherein each unit cell of the plurality of unit cells is arranged such that a predetermined gap exists between the configurable unit cell and the second unit cell, the predetermined gap corresponding to a predetermined heat transfer parameter of the core during a heat pipe failure.

13. A core as described in claim 7, wherein each channel of the first plurality of channels is separated from adjacent channels of the first plurality of channels by a predetermined pitch, the predetermined pitch being greater than or equal to 20 millimeters and less than or equal to 40 millimeters.

14. A method of constructing a unit cell of a nuclear reactor core, said unit cell comprising a plurality of channels defined in a core block of said core of said nuclear reactor, each channel of said plurality of channels configured to engage a replaceable component of a plurality of replaceable components, said method comprising: determining an operating state of the core of the nuclear reactor, the operating state corresponding to an intended use of the nuclear reactor; determining performance parameters of the unit cell, the performance parameters including aspects of the determined operating state of the core of the nuclear reactor; selecting a replaceable component from the plurality of replaceable components, the selected replaceable component corresponding to the determined performance parameter of the unit cell; placing the selected replaceable component in a channel of the plurality of channels; determining a second performance parameter of the unit cell, the second performance parameter comprising another aspect of the determined operating state of the core of the nuclear reactor; selecting a second replaceable component from the plurality of replaceable components, the selected replaceable component corresponding to the determined second performance parameter of the unit cell; and and installing the selected second replaceable component in another channel of the plurality of channels.

15. The method of claim 14 , wherein the plurality of replaceable components comprises at least one of a fuel source, a heat pipe, a moderator, a reactivity control rod, or a combination thereof.

16. 15. The method of claim 14, wherein the core block material comprises a moderator and the plurality of replaceable components includes at least one of a fuel source, a heat pipe, and a reactivity control rod, or a combination thereof.

Citation Information

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