Nuclear Power Generation System

The nuclear power generation system addresses the challenges of costly and risky crane installations by using a vertically aligned containment structure for reduced vertical lifting, enhancing efficiency and safety in maintenance and refueling operations.

JP7799693B2Active Publication Date: 2026-01-15ROLLS-ROYCE SMR LTD
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Patent Information

Application Number
JP2023534022
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-03
Filing Date
2021-11-12
Publication Date
2026-01-15
Estimated Expiration
2041-11-12

AI Technical Summary

Technical Problem

The installation and operation of large, heavy overhead cranes for maintenance and refueling in nuclear power systems are costly and time-consuming, posing safety risks and increasing construction costs due to the need for significant vertical lifting heights and flooded refueling cavities.

Method used

A nuclear power generation system with a containment structure featuring a work floor vertically aligned with the reactor vessel opening, allowing for the use of lifting devices that minimize vertical lifting heights and enable horizontal movement of components, reducing the need for large cranes and flooded cavities.

Benefits of technology

This configuration reduces construction costs, minimizes safety risks, and streamlines maintenance and refueling processes by eliminating the need for significant vertical lifts and flooded cavities, thereby enhancing operational efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

A nuclear power generation system is disclosed that includes a reactor vessel having a body defining a cavity for containing a reactor core, and an integral reactor vessel lid having a closure head for closing an opening to the cavity. The system also includes a containment structure having a working floor surrounding the opening to the cavity and substantially vertically aligned with the opening.
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Description

[Technical Field]

[0001] The present disclosure relates to nuclear power generation systems and to methods for performing maintenance and refueling operations in nuclear power generation systems. [Background technology]

[0002] Nuclear power plants convert thermal energy from the nuclear decay of fissile material in fuel assemblies contained in the reactor core into electrical energy. Water-cooled nuclear power plants, such as pressurized water reactor (PWR) and boiling water reactor (BWR) plants, include a reactor pressure vessel (RPV) containing the reactor core / fuel assemblies and a turbine for generating electricity from steam (generated by the heat from the fuel assemblies).

[0003] A PWR power plant includes a pressurized primary coolant circuit that flows through the RPV and transfers thermal energy to one or more steam generators (heat exchangers) in the secondary circuit. The secondary circuit (at lower pressure) contains a steam turbine that drives a generator to produce electricity. These components of a nuclear power plant are traditionally housed within an airtight containment building, which may be in the form of a concrete structure.

[0004] An RPV generally includes a body defining a cavity for containing the reactor (i.e., containing the fuel assemblies) and a closure head for closing an upper opening to the cavity. The closure head may form part of an integral reactor head (IHP) (or integral head assembly), which further includes a control rod drive mechanism contained within a shroud. The control rod drive mechanism includes drive rods that pass through the closure head and are connected to control rods contained within the reactor core. The control rods are configured to absorb neutron radiation within the reactor core, thus controlling the nuclear reaction within the core. The drive rods within the control rod drive mechanism are powered by a power source for vertical translation, thus raising and lowering the control rods within the reactor core. The reactor core further includes guide columns for the control rods; these guide columns, along with associated electronics, are commonly referred to as the "core top."

[0005] Maintenance and refueling are important parts of the operation of a nuclear power system. Maintenance is required periodically, for example, to replace old and / or damaged parts of the system. Refueling is required periodically (e.g., every 18 to 24 months) to replace spent fuel rods in the fuel assemblies.

[0006] When core maintenance / refueling is performed, the IHP must be removed from the RPV, thereby exposing the core. The IHP is typically removably attached to the main body by a plurality of closure studs (consisting of nuts and bolts). The IHP and main body each include an outwardly projecting circumferential flange with a plurality of circumferentially spaced holes extending around the RPV. When the IHP is attached to the main body, the holes are aligned, the bolts are received in the holes, and the nuts are engaged with the bolts to secure them in the holes. After the core is exposed, the core top is removed from the core, exposing the fuel rods within the fuel assemblies.

[0007] To perform maintenance and refueling operations on nuclear power systems, overhead crane configurations, such as polar gantry cranes with loops, are typically installed within the system's containment structure. Polar cranes are necessarily large and heavy structures, enabling them to lift heavy components of the nuclear power system. As a result, installing polar cranes is costly, and accommodating the polar cranes within the containment structure significantly increases the construction costs of the containment structure.

[0008] During a refueling operation, a polar crane typically lifts the IHP vertically upward from the RPV body, moves it horizontally away from the RPV body, and then lowers it onto a storage stand on a work platform inside the containment building. The polar crane is then used to lift the radioactive upper core, which typically weighs approximately 15 to 50 tons. The polar crane raises the upper core vertically, then moves it horizontally, before lowering it into a water storage pool for immersion. This is done to create gamma shielding around the upper core during the refueling operation.

[0009] The reactor vessel body is typically located a significant distance below the containment working floor and defines a refueling cavity above the exposed reactor core within the reactor vessel body. During removal of the IHP from the reactor vessel body, the drive rods remain connected to the control rods and protrude from the reactor vessel cavity into the refueling cavity. Water is pumped into the refueling cavity to contain radiation emissions from the drive rods.

[0010] The water in the refueling cavity also serves to shield and cool the spent fuel rods in the exposed core. Effective gamma shielding requires a height of 4 meters of water above the fuel rods / assemblies. Therefore, filling the refueling cavity requires a significant amount of water and is therefore time-consuming.

[0011] The protruding drive rod or vertical extent of the refueling cavity travels across the required lift height of the core top by the polar crane, as the core top must travel the vertical height of the drive rod / refueling cavity before being moved horizontally and lowered into the storage pool.

[0012] The required lifting height of the polar crane determines the height of the containment structure (and therefore the cost / time associated with constructing the containment structure). The risks associated with lowering the top of the core from any significant vertical height onto the top of the core are very high.

[0013] Spent fuel rods are typically removed by hoisting them vertically from the reactor vessel body and then translating them horizontally within a flooded refueling cavity using a remotely operated overhead crane. The fuel rods are then rotated from a vertical position to a horizontal position (using a turnover rig) and then loaded onto a rod transfer device and transported out of the containment structure through a flooded tunnel.

[0014] Overhead traveling cranes are necessarily large and heavy and require large concrete structures to support them within the containment structure, which makes the installation of such cranes costly.

[0015] The process of removing the fuel rods requires transferring the spent fuel rods between cranes, turnover rigs, and fuel rod transfer devices, making the process time-consuming and prone to malfunctions. If the fuel rod removal process fails, the spent fuel rods may become trapped and inaccessible within the flooded tunnels. Summary of the Invention [Problem to be solved by the invention]

[0016] There is a need for an improved nuclear power generation system that alleviates at least some of the problems associated with known systems. [Means for solving the problem]

[0017] According to a first aspect, there is provided a nuclear power generation system comprising: a reactor vessel having a body defining a cavity for containing a reactor core and a closure head for closing an opening to the cavity; and a containment structure having a working floor surrounding the opening to the cavity and substantially vertically aligned with the opening.

[0018] By providing a containment work floor substantially vertically aligned with the opening of the cavity in the reactor vessel body, the closure head may be removed from the body by a device (e.g., a lifting device) that can be moved along the work floor relative to the reactor vessel and that only needs to raise the closure head a small vertical height (e.g., less than 0.5 m) before moving it horizontally. The lifting device may thus lift from the work floor and push the closure head upward. Such a device may replace a crane (e.g., a gantry crane or polar crane) mounted above the reactor vessel. This may reduce the overall height of the enclosure (e.g., a containment building) that houses the reactor vessel. In this way, the containment building may be constructed more quickly (and more cost-effectively).

[0019] Considering the scale of a nuclear power generation system, the term "substantially vertically aligned" means that the vertical distance between the working floor and the cavity opening (defined by the upper end of the reactor vessel body) is less than 2 meters, e.g., 1 meter or 0.5 meters. The reactor is opened by vertically removing the closure head. Thus, the opening in the reactor body may be the circumference of the lip of the reactor body, which may be aligned with a horizontal plane. The term "vertically aligned" in this context means that the working floor is positioned sufficiently close to the opening to allow a lifting device to lift the closure head from below, i.e., by pushing the closure head upward from the working floor.

[0020] Optional features of the present disclosure are described below, which may be applied alone or in any combination with any aspect of the present disclosure.

[0021] The closure head may be configured as part of the integral reactor vessel lid. In use, the closure head or integral reactor vessel lid is located vertically above and adjacent to the main body.

[0022] In some embodiments, the system (or, for example, a work platform) includes a pathway extending from a deployment position adjacent the reactor vessel to a storage position (e.g., away from the reactor vessel). The deployment position may be substantially vertically aligned with the cavity opening. The deployment position may be horizontally or vertically (i.e., above) adjacent to the reactor vessel. The pathway may be substantially vertically aligned with the cavity opening of the reactor vessel body. Providing a pathway aligned with the cavity opening of the reactor body may eliminate the need to lift reactor vessel components to any significant height. In some cases, lifting components to a significant height may pose a safety hazard (e.g., the components may be accidentally dropped).

[0023] In some embodiments, the pathway may be a linear pathway extending between the reactor vessel and the containment location. In some embodiments, the pathway may be a substantially horizontal pathway. The working platform (e.g., or the top surface of the working platform) may be substantially planar and horizontal.

[0024] The storage location may be a first storage location, and the path may further extend from the deployed location to a second storage location such that the deployed location is between the first and second storage locations. In other words, the path may extend from the first storage location to the reactor vessel (i.e., the deployed location) and beyond the reactor vessel to the second storage location. In some embodiments, the path may be a first path, and the system may further include a second path that may extend from the deployed location to a third storage location. The second path may be substantially perpendicular to the first path (i.e., when viewed from above).

[0025] In some embodiments, the or each pathway may comprise one or more tracks or rails extending from adjacent reactor vessels to the storage location. The tracks or rails may be substantially vertically aligned with the opening of the cavity in the reactor vessel body. The one or more tracks or rails may be formed in or supported on a work floor. In some cases, the one or more tracks or rails may be supported a short distance (e.g., less than one meter) above the work floor. The use of tracks / rails may facilitate automation of movement of maintenance / refueling devices along at least one pathway, which may reduce the number of personnel required to perform maintenance / refueling (which may reduce safety risks associated with these processes).

[0026] The tracks or rails may be in the form of pairs of tracks or rails extending from the deployed position to the or each stowed position. In the deployed position, the pairs of tracks or rails may be spaced apart on either side of the reactor vessel, i.e., a portion of the reactor vessel may extend between the pairs of tracks or rails. Thus, the distance between the pairs of tracks or rails may be greater than the outer diameter of the reactor vessel or the outer diameter of the cavity in which the reactor vessel is located. The pairs of tracks or rails may be parallel, or the gauge of the pairs of tracks or rails may vary along the length of the tracks or rails.

[0027] For example, in other embodiments where the track / rail gauge is less than the reactor vessel or cavity, the track / rail may include a removable / temporary portion that extends above the reactor vessel body (i.e., extends vertically above the reactor vessel body) to allow various lifting / tensioning / refueling devices to be positioned directly above the reactor vessel body / core.

[0028] The closure head and body of the reactor vessel may each include a mounting portion for mounting the closure head to the body. Each mounting portion may include an outwardly protruding circumferential flange. The diameter of one of the flanges may define the outer diameter of the reactor vessel. Each flange may include a hole for receiving, for example, a closure stud for mounting the flange (and thus the closure head and body). The holes may be circumferentially spaced around the reactor vessel. The closure head may include a pressure seal at a lower end of the closure head for sealing the closure head with an upper end of the body.

[0029] The core may include a control rod assembly and a core top for guiding the control rod assembly. The closure head may be configured as part of an integral reactor vessel head (IHP). The closure head of the IHP may be housed within a shroud, and the IHP may further include a control rod drive mechanism also housed within the shroud. The control rod drive mechanism may include at least one drive rod (and preferably multiple drive rods) extending within the closure head. The or each drive rod may include a coupling element (e.g., a pneumatic coupling element) that is removably coupled to a control rod assembly within the core. The at least one drive rod may be movable to a maintenance / refueling position, where the at least one drive rod is decoupled from the control rod assembly and at least partially (preferably completely) retracted into the IHP (e.g., into the shroud). The IHP may further include at least one locking element for locking the at least one drive rod in the maintenance / refueling position. This IHP allows the drive rod to be removed from the core along with the IHP. In this way, removal of the IHP leaves no radioactive drive rods protruding from the core, eliminating the need for a flooded refueling cavity.Alternatively, the control rod drive mechanism / locking elements may be separate from the closure head.

[0030] The or each path may be substantially vertically aligned with a lower end of the IHP (when secured to the body). The or each path may be substantially vertically aligned with a mounting portion of the reactor vessel. In the deployed position, the lateral (horizontal) spacing between at least one path (e.g., between one or more tracks or rails) and the reactor vessel may be less than 50% of the outer diameter of the reactor vessel. This distance may, for example, be less than 25% of the outer diameter of the reactor vessel.

[0031] The containment structure may include a base structure (e.g., formed of concrete) that defines a reactor vessel cavity in which the reactor vessel is received. A working floor may be supported above the base structure (e.g., by the base structure). The working floor may include an opening to the reactor vessel cavity. A portion of the reactor vessel may extend through (above) the opening.

[0032] The system may include a plurality of steam generators spaced circumferentially around the reactor vessel. The plurality of steam generators may be spaced radially from the reactor vessel. The or each path may extend between a first steam generator and a second steam generator of the plurality of steam generators. The plurality of steam generators may be fluidly connected to the reactor vessel by a plurality of pipes, and the base structure may include openings and / or passages to accommodate the pipes. Each steam generator, or the pipes connected to the steam generator, may protrude through corresponding openings formed in the working floor (i.e., from below the working floor to above the working floor). The steam generators may be laterally supported from the working floor. For example, each steam generator may include one or more support elements extending between the steam generator and the working floor to enable lateral support of the steam generator. Each steam generator may be located (substantially) above the working floor (i.e., substantially part or all of the steam generator may be located above the working floor).

[0033] The system may include one or more fans or a water cooling system for cooling the reactor vessel (e.g., the closure head / body of the reactor vessel). The fan / cooling system may be supported on a work floor or adjacent to the reactor vessel (e.g., adjacent to the IHP of the reactor vessel). The fan may alternatively be mounted on the ceiling above the reactor vessel. Lower ceiling heights (i.e., lower ceiling heights due to the absence of a crane) may allow for ceiling mounting due to closer proximity of the reactor vessel closure head.

[0034] The containment structure may include one or more walls defining an interior space in which the reactor vessel is contained. The remote containment location (i.e., first containment location) may be an accessory structure that may be separated from the containment structure (i.e., located outside the containment structure). The accessory structure may be shielded. The accessory structure may be separated from the containment structure by at least one separation wall. The at least one separation wall may include an opening connecting the containment structure and the accessory structure interior space. The at least one separation wall may include a hatch (i.e., door) movable between an open position (allowing exposure through the opening) and a sealed position (in which the accessory structure is sealed from the containment structure).

[0035] The first pathway may extend from the containment structure to the accessory structure through an opening in the separation wall. If the first pathway comprises a track or rail pair, the gauge of the track or rail pair (the distance between the tracks or rails) may be greater in the deployed position than in the opening. This may help minimize the size of the opening.

[0036] The accessory structure may house a plurality of maintenance devices configured to move along the or each path (e.g., a track or rail). Accordingly, each device may include a wheel for moving along the or each path (e.g., configured to engage the track or rail). The devices may be configured to perform maintenance operations on the reactor vessel. For example, the plurality of devices may include a stud tensioner / detensioner device for tensioning / detensioning studs that attach the closure head to the body of the reactor vessel. The plurality of devices may further include a closure head lifting device for lifting the closure head from the reactor body. The plurality of devices may further include a reactor vessel internal cask for storing internal components of the reactor vessel. The plurality of devices may also include a refueling device for exchanging (and storing) spent fuel.

[0037] Each device may comprise a drive means (e.g., an electric motor) for driving the wheels and a power source (e.g., a battery) for powering the drive means. Each device may comprise a controller for controlling the drive means. Each controller may comprise a memory for storing instructions for moving the device in a predefined manner. Alternatively, or additionally, the drive means may be controlled remotely, for example via a wired or wireless connection to a user interface or controller for automatic control.

[0038] One or more of the devices may be foldable. That is, one or more of the devices may be configured to be movable between a folded configuration and an extended configuration. This may be facilitated, for example, by the structure of the device including telescoping, pivoting, or hinged components. The device may include an actuator for moving the device between its folded and extended configurations. In the folded configuration, the height and / or width of the device may be smaller than in the extended configuration. The device may be movable (e.g., drivable) in the folded configuration. In this way, when the device needs to enter or exit, for example, a storage structure through an opening, the size of the opening (i.e., the size of the opening for accommodating the device) may be minimized. Thus, the device may be transported in the folded configuration and maintenance operations may be performed in the extended configuration.

[0039] When the system includes multiple devices, the first path may include multiple branches in a storage position that enable access to the first path. For example, each branch may be in the form of a track or rail (e.g., a first path track or rail) that extends across and perpendicular to the first path. In the storage position, each of the multiple devices may be located at a respective branch of the first path. If the branch includes a track or rail separate from the first path track or rail, each device may be configured to switch between movement along the branch and the first path. For example, each device may include a first set and a second set of wheels for independently engaging the branch and the first path track or rail. The first set or the second set of wheels may include a variable-height suspension for raising the other set of wheels off the track or rail (or lowering the other set of wheels onto the track or rail).

[0040] Alternatively, the system may include one or more turntables at the intersection of the first path and the branch, which may be rotatable to transfer devices from the branch (e.g., a track or rail of the branch) to the first path (e.g., a track or rail of the first path).

[0041] In another embodiment, instead of the first path comprising a branch, the accessory structure may comprise a crane (e.g., a gantry crane) operable to move the device from a stored position (e.g., on the floor of the accessory structure) to the first path (e.g., the track or rails of the first path).

[0042] The system may be in the form of a fuel storage structure and may include additional structures that may be separate from the accessory structure (if present) and the containment structure. The fuel storage structure may define additional storage locations (e.g., a fourth storage location). The fuel storage structure may be located adjacent to the accessory structure, such that the accessory structure is located between the fuel storage structure and the containment structure. The fuel storage structure may be separated from the accessory structure and / or the containment structure by one or more separation walls, which may include an opening connecting the interior space of the accessory structure and the interior space of the fuel storage structure. The separation wall having the opening formed therein may include a hatch movable between an open position and a sealed position. The first pathway may extend from the containment structure to the fuel storage structure (possibly via the accessory structure).

[0043] The refueling device may be stored in a fuel storage structure. The fuel storage structure may include a fuel pool for storing spent fuel. The system may include cooling / safety systems (e.g., pumps, generators, etc.) for maintaining the water level of the fuel pool. These cooling / safety systems may be located within the fuel storage structure. The refueling device may be operably connected to the cooling / safety systems. Thus, the refueling device may be connected to electrical and / or water piping of the cooling and / or safety systems. The electrical and / or water piping may be provided on a reel or bellows mechanism to allow the refueling device to move from the fuel storage structure to the containment structure while maintaining connection with the cooling / safety system.

[0044] The system may include multiple reactors housed within corresponding additional containment structures. Each reactor may be served by devices (e.g., by additional pathways) in ancillary structures and / or fuel storage structures. In this regard, a single device may be used for multiple reactors. This may reduce the number of devices required in a nuclear power plant having multiple reactors.

[0045] The system may comprise a pressurized water reactor (PWR) system, i.e. the reactor vessel (and steam generators) may form part of the PWR system.

[0046] In a second aspect, there is provided a method for maintaining a nuclear power generation system according to the first aspect, comprising: supporting the maintenance device on a work floor of the containment structure; moving the maintenance device to a deployed position; and operating a maintenance device to perform a maintenance operation on a reactor vessel of the nuclear power system.

[0047] The maintenance device may be a closure head / IHP lifting device (as described above with respect to the first aspect), and the maintenance operation may include lifting a closure head of the reactor vessel above the main body of the reactor vessel. In this regard, the closure head lifting device may be moved along a first path from a remote storage position (e.g., a first storage position) to a deployed position (before performing the lifting operation). The movement of the closure head lifting device may be performed, for example, along a track or rail supported on (e.g., formed in) a work floor. The closure head may be configured as part of an IHP, and thus the closure head lifting device may lift the IHP.

[0048] The method may further include moving the lifting device along the first path to a storage position, e.g., a second storage position, while supporting the closure head to be lifted. When moving the lifting device, the lower end of the closure head / IHP may be maintained at a vertical height of, e.g., less than 0.5 m.

[0049] The method may include releasing tension on a closure stud that attaches the closure head to the body before pulling up the closure head. Releasing the tension on the closure stud may include moving a tensioner / detensioner device on a path (e.g., on a first path) from a storage position (e.g., a first storage position) to a deployed position, where the deployed position may be directly above the body. In this manner, the tension release may be performed by the tensioner / detensioner device. The tensioner / detensioner device may be attached to the closure head and pulled up and moved together with the closure head, or the tensioner / detensioner may then be moved along the first path to the first or second storage position after the tension release is performed.

[0050] The method may further include moving the inner cask from a storage position (e.g., a first storage position) to a deployed position (i.e., after the closure head is away from the body), where the deployed position may be directly above the body of the reactor vessel. The inner cask may then be operated to extract the reactor internals from the body of the reactor vessel. The internal may include a winch for extracting the internal from the body. The inner cask may form a seal against the body of the reactor vessel or a cavity containing the reactor vessel prior to extracting the reactor internals. The method may include moving the inner cask to a storage position, such as a first storage position, along a first path after the reactor internals have been extracted.

[0051] The method may further include moving the refueling device from a storage position (e.g., a fourth storage position within the fuel storage structure) along a first path to a position above (e.g., directly above) the body of the reactor vessel. The refueling device may be operable to withdraw and store one or more spent fuel assemblies from the body of the reactor vessel. The refueling device may be operable to insert one or more replacement fuel assemblies into the reactor body. The method may then include moving the device along the first path to a storage position (e.g., a refueling enclosure). After reaching the storage position, the refueling device may be operable to deposit the spent fuel assemblies withdrawn from the reactor vessel. The withdrawn (i.e., spent) fuel assemblies may be deposited in a fuel pool at the storage position.

[0052] The method may be reversed to reassemble the reactor vessel. Thus, the internal cask may be moved to a deployed position above the body and operated to reinsert the reactor internals into the body. The reactor internals may then be returned to a stored position along one or more tracks or rails. The closure head lifting device may then be moved to a deployed position (disposing the closure head above the body) and the closure head may be lowered onto the body. The closure head lifting device may then be returned to a stored position (such as the first or second stored position) along a first path (e.g., a track or rail of the first path). The stud tensioner / detensioner device may be moved along the first path to the deployed position (this may not be required if the stud tensioner / detensioner device is already attached to the closure head). The method may then include operating the stud tensioner / detensioner device to engage the closure stud with the closure head and the body of the reactor vessel and apply tension to the closure stud to secure the closure head to the body.

[0053] The movement of the device may be performed by driving wheels of the device. The wheels of the device may be driven along tracks or rails of the first and / or second paths. The wheels may be driven remotely or according to predefined commands. The tracks or rails may be as described above with respect to the first embodiment. Thus, for example, the tracks or rails may be paired and substantially horizontal. The tracks or rails may be vertically aligned with the opening of the cavity in the body of the reactor vessel.

[0054] The method may include opening and closing a hatch separating the containment structure, the accessory structure, and the fuel storage structure, such that the hatch may be opened to allow a device to pass from one structure to another, and then closed thereafter to seal between the structures.

[0055] The present invention may comprise, be part of, or be used in conjunction with a nuclear power plant (herein referred to as a nuclear reactor). In particular, the present invention may relate to a pressurized water nuclear reactor. The nuclear power plant may have a power output of between 250 MW and 600 MW, or between 300 MW and 550 MW.

[0056] The nuclear power plant may be a modular reactor. A modular reactor may be considered a reactor made up of several modules manufactured off-site (e.g., in a factory), and then the modules are assembled on-site into a nuclear power plant by connecting them together. Any of the primary, secondary, and / or tertiary circuits may be formed in a modular configuration.

[0057] A nuclear reactor may include a primary circuit including a reactor pressure vessel, one or more steam generators, and one or more pressurizers. The primary circuit circulates a medium (e.g., water) within the reactor pressure vessel to extract heat generated by nuclear fission into the reactor core, which then feeds the steam generators and transfers it to the secondary circuit. The primary circuit may include between one and six steam generators, or between two and four steam generators, or three steam generators, or any range of values ​​therein. The primary circuit may include one, two, or three or more pressurizers. The primary circuit may include a circuit extending from the reactor pressure vessel to each of the steam generators, which may transport a hot medium from the reactor pressure vessel to the steam generators and a cooled medium from the steam generators back to the reactor pressure vessel. The medium may be circulated by one or more pumps. In some embodiments, the primary circuit may include one or more pumps per steam generator within the primary circuit.

[0058] In some embodiments, the medium circulated in the primary circuit may include water. In some embodiments, the medium may include a neutron absorbing material (e.g., boron, gadolinium) added to the medium. In some embodiments, the pressure in the primary circuit may be at least 50, 80, 100, or 150 bar during full-power operation, and the pressure may reach 80, 100, 150, or 180 bar during full-power operation. In some embodiments, water is the medium in the primary circuit, and the inlet temperature of the water exiting the reactor pressure vessel may be between 540 K and 670 K, or between 560 K and 650 K, or between 580 K and 630 K during full-power operation. In some embodiments, water is the medium in the primary circuit, and the outlet temperature of the water returning to the reactor pressure vessel may be between 510 K and 600 K, or between 530 K and 580 K during full-power operation.

[0059] The reactor may include a secondary circuit that includes a water circulation loop that extracts heat from the primary circuit in a steam generator and converts water into steam to drive turbines. In an embodiment, the secondary loop may include one or two high-pressure turbines and one or two low-pressure turbines.

[0060] The secondary circuit may include a heat exchanger that condenses the steam to water as it is returned to the steam generator. The heat exchanger may be connected to a tertiary loop, which may include a large body of water that acts as a heat sink.

[0061] The reactor vessel may comprise a steel pressure vessel, which may be 5 m to 15 m, or 9.5 m to 11.5 m in height, and may be between 2 m and 7 m, or between 3 m and 6 m, or between 4 m and 5 m in diameter. The pressure vessel may comprise a reactor body and a reactor head disposed vertically above the reactor body. The reactor head may be connected to the reactor body by a series of studs passing through flanges on the reactor head and corresponding flanges on the reactor body.

[0062] The reactor head may comprise an integral head assembly in which several elements of the reactor structure may be integrated into a single element, including the pressure vessel head, cooling shroud, control rod drive mechanism, missile shield, lifting rig, hoisting assembly, and cable tray assembly.

[0063] A reactor core may be composed of several fuel assemblies, each containing fuel rods. The fuel rods may be formed from pellets of fissile material. The fuel assemblies may also contain spaces for control rods. For example, a fuel assembly may provide housing for a 17x17 grid of control rods, i.e., a total of 289 spaces. Of these 289 spaces, 24 may be reserved for reactor control rods, each formed by 24 control rodlets connected to a main arm, and one space may be reserved for an instrumentation tube. The control rods are accessible in and out of the reactor core and control the fission process by absorbing neutrons released during fission. A reactor core may contain 100 to 300 fuel assemblies. Fully inserting a control rod may generally result in a subcritical state, which shuts down the reactor. Up to 100% of the fuel assemblies in the core may contain control rods.

[0064] Movement of the control rods may be accomplished by a control rod drive mechanism that may command and power actuators to lower and raise the control rods into and out of the fuel assemblies to maintain the position of the control rods relative to the core. The control rod drive mechanism may be capable of rapidly inserting the control rods to rapidly shut down the reactor (i.e., perform an emergency shutdown).

[0065] The primary circuit may be housed within a containment structure to retain steam from the primary circuit in the event of an accident. The containment structure may be between 15 m and 60 m in diameter, or between 30 m and 50 m in diameter. The containment structure may be formed from steel or concrete, or steel-lined concrete. The containment structure may be contained within or supported externally to a water tank for emergency cooling of the reactor. The containment structure may include equipment and facilities to enable refueling of the reactor, containment of fuel assemblies, and transportation of fuel assemblies into and out of the containment structure.

[0066] A power plant may include one or more civil structures to protect the reactor components from external hazards (e.g., missile attacks) and natural hazards (e.g., tsunamis). The civil structures may be made of steel or concrete, or a combination of both.

[0067] Embodiments will now be described, by way of example only, with reference to the figures in which: [Brief explanation of the drawings]

[0068] [Figure 1A] FIG. 1 is a perspective view of a containment structure for a nuclear power generation system. [Figure 1B] FIG. 1B is a schematic diagram of the power generation system shown in FIG. 1A. DETAILED DESCRIPTION OF THE INVENTION

[0069] Aspects and embodiments of the present disclosure will now be described with reference to the accompanying figures. Further aspects and embodiments will be apparent to those skilled in the art.

[0070] 1A shows the interior of a nuclear power system containment structure 10. Although not apparent from the figure, containment structure 10 is the containment building for the nuclear power system. The walls of containment structure 10 are not shown so that the various components enclosed within containment structure 10 can be seen.

[0071] The system includes a reactor vessel 12 having a body 14 defining a cavity for accommodating a nuclear reactor and an IHP 16 for closing an opening to the cavity. In FIG. 1A , the IHP 16 is shown removed and in a position spaced apart from the body 14. The system further includes a first pathway in the form of a first pair of spaced-apart, parallel tracks 18 extending from a deployment location 20 laterally adjacent the reactor vessel 12 to a first storage location 22 (shown in FIG. 1B ). The deployment location 20 (and thus the reactor vessel 12) is centrally located within the containment structure 10, while the storage location 22 is located external to the containment structure 10. In some embodiments, one or more of the storage locations may be located external to the containment structure.

[0072] The first pair of tracks 18 extend along a substantially horizontal, linear path between a deployed position 20 and a storage position 22. At the deployed position 20, the first pair of tracks 18 are spaced apart on either side of the reactor vessel 12 (i.e., such that the reactor vessel 12 is located between the first pair of tracks 18 at the deployed position 20). The first pair of tracks 18 also extend beyond the reactor vessel 12 along a linear path to a second storage position 24 (i.e., the deployed position 20 is located between the first storage position 22 and the second storage position 24). In FIG. 1A, the IHP 16 of the reactor vessel 12 is located at this second storage position 24. The IHP includes a closure head that cooperates with the reactor body.

[0073] The body 14 of the reactor vessel 12 and the IHP 16 each include mounting portions in the form of outwardly extending circumferential flanges 26. These flanges 26 include circumferentially spaced holes for receiving closure studs to secure the IHP 16 to the body 14.

[0074] The containment structure 10 includes a base structure 28 formed of reinforced concrete that defines a reactor vessel cavity 30 within which the reactor vessel 12 is received. Although not shown in FIG. 1A , it should be appreciated that the IHP 16 protrudes from an upper opening of the cavity 30 when secured to the body 14. The base structure 28 supports a substantially planar and circular working floor 32 (extending across the top of the base structure 28). The opening to the reactor vessel cavity 30 is formed in the working floor 32. The working floor 32 is vertically aligned (i.e., flush) with the cavity opening in the body 12 so as to be generally aligned with the flange 26 of the reactor vessel 12.

[0075] The first pair of tracks 18 are formed of steel and are recessed into the work floor 32. Thus, the tracks 18, like the work floor 32, are vertically aligned with the opening in the body 12 of the reactor vessel 12.

[0076] The containment structure 10 further includes three steam generators 36 spaced circumferentially (and radially) around the reactor vessel 12. The steam generators 36 are fluidly connected to the reactor vessel 12 via a plurality of pipes that extend through openings and passageways formed in the base structure 28. The work floor 32 includes three steam generator openings 38 through which the steam generators 36 protrude such that they are disposed substantially above the work floor. A first pair of tracks 18 extends between the steam generator openings 38 and, therefore, between the steam generators 36.

[0077] A second pair of tracks 40 also extends between the steam generator openings 36 (and between the steam generators 38). The second pair of tracks 40 is also formed on the work floor 32 and extends from a peripheral area of ​​the work floor 32 (i.e., the third storage location 42) to the reactor vessel 12. Specifically, the second pair of tracks 40 extends generally perpendicular to the first pair of tracks 18 (when viewed from above). Like the first pair of tracks 18, the second pair of tracks 40 are parallel to one another and spaced apart on either side of the reactor vessel 12 (i.e., at the deployment location 20). However, unlike the first pair of tracks 18, the second pair of tracks 40 does not extend beyond the reactor vessel 12.

[0078] As seen in FIG. 1B , the system includes an accessory structure 44 adjacent to the containment structure 10. The accessory structure 44 houses multiple maintenance devices used to maintain the reactor vessel 12 (and other components of the system). Specifically, three devices are housed in the accessory structure 44: a stud tensioner / detensioner device 46, an IHP lifting device 48, and a reactor vessel inner cask 50. The stud tensioner / detensioner device 46 is configured to tension / detension the studs securing the IHP 16 to the main body 14 of the reactor vessel 12 (e.g., to allow for removal or fixation of the IHP 16). The IHP lifting device 46 is configured to lift the IHP 16 above the main body 14 and can move the IHP 16 laterally away from the main body 14. The inner cask 50 is configured to remove the reactor internals from the main body of the reactor vessel 12 and store the reactor internals.

[0079] A fuel storage structure 52 (which may define a fourth storage location) is located adjacent to the accessory structure 44, such that the accessory structure 44 is disposed between the fuel storage structure 52 and the containment structure 10. The fuel storage structure 52 includes a fuel storage pool 54 and a refueling device 56 configured to remove and relocate spent fuel from the reactor vessel 12 and deliver the spent fuel to the fuel storage pool 54.

[0080] The accessory structure 44 is separated from the containment structure 10 by a first separation wall 58 and from the fuel storage structure 52 by a second separation wall 60. The first separation wall 58 and the second separation wall 60 each include an opening sealed by a corresponding hatch 62. As described further below, these hatches 62 are openable to allow the structures 10, 44, 52 to interact.

[0081] The first pair of tracks 18 extend from the containment structure 10 through a hatch 62 (i.e., via an accessory structure 44) to the fuel storage structure 52. The accessory structure 44 includes a branch (branching from the first pair of tracks 18) in the form of a pair of cross tracks 64 that extend laterally across the second enclosure 44 so as to be perpendicular to the first pair of tracks 18 (and parallel to the second pair of tracks 40). The stud tensioner / detensioner device 46, the IHP lifting device 48, and the inner cask 50 are each supported on these pairs of cross tracks 64. The cross tracks 64 are operably connected to the first pair of tracks 18 by a turntable 66. The turntable 66 can be rotated to align with the first pair of tracks 18 or the cross tracks 64, thereby allowing devices to be moved from the first pair of tracks onto the turntable 66 and then rotated to allow another pair of tracks to be moved. 1B, this allows devices 46, 48, 50 housed in accessory structure 44 to be moved from accessory structure 44 (via hatch 62) to reactor vessel 12 within containment structure 10. As described below, this allows devices 46, 48, 50 to be used to maintain (e.g., replace refueling) reactor vessel 12.

[0082] As an example, the devices 46, 48, 50 and the refueling device 56 on the accessory structure 44 may be used to replace fuel in the reactor vessel 12. An exemplary method for doing this will now be described. First, the reactor vessel 12 is depressurized and cooled, after which the refueling process begins. The hatch 62 connecting the accessory structure 44 to the containment structure 10 is opened, and the stud tensioner / detensioner device 46 is moved from the accessory structure 44 to the containment structure 10 and adjacent to the reactor vessel 12. The stud tensioner / detensioner device 46 disengages the closure studs that attach the IHP 16 to the main body 14. After disengagement, the stud tensioner / detensioner device 46 is returned to its stowed position on the accessory structure 44. The lifting device 48 is then moved adjacent to the reactor vessel 12. The lifting device 48 lifts the IHP 16 above the body 14 and moves the IHP 16 further along the first pair of tracks 18 toward the second storage position 24 .

[0083] The inner cask 50 is then moved and positioned directly above the main body 14 (i.e., where the closure head 16 was previously located). The inner cask 50 seals around the reactor cavity opening 30, extracting the upper core from the cavity of the main body 14. These internal structures are removed to allow the fuel assemblies to be removed from the main body 14. The inner cask 50 is configured to shield radioactivity from the extracted internal structures. After the internal structures are extracted, the inner cask 50 is returned to the auxiliary structure 44.

[0084] Next, a hatch 62 connecting the attachment structure 44 and the fuel storage structure 52 is opened, and the refueling device 56 is moved from the fuel storage structure 52 to the reactor vessel 12. Specifically, the refueling device 56 is positioned directly above the reactor vessel 12. The refueling device 56 includes a two-axis (i.e., X- and Y-axes) movement mechanism that enables the refueling device 56 to reach a particular fuel assembly within the reactor core. This may enable the refueling device 56 to reposition one or more fuel assemblies within the reactor core. The refueling device 56 may also include a shield lifting device that vertically extracts the fuel assemblies from the main body 14.

[0085] After the fuel assemblies are extracted, a refueling device 56 delivers the extracted fuel assemblies from the reactor vessel 12 to the fuel storage structure 52 and deposits the fuel in the pool 54. The refueling device 56 may then deliver the fuel from the pool 54 to the reactor vessel by removing fuel (e.g., fresh fuel) from the pool 54 and returning it to the reactor vessel 12.

[0086] After the fuel is removed and / or any rearrangement and replacement of fuel is performed, the internals are replaced by the inner cask 50, the IHP 16 is replaced onto the body 14 (by the closure head lifting device 48), and the closure studs are engaged with the reactor vessel 12 and tensioned by the stud tensioner / detensioner device 46. The hatch 62 is then closed and the enclosures 10, 44, 52 are sealed.

[0087] It will be understood that the present disclosure is not limited to the above-described embodiments, and that various modifications and improvements can be made without departing from the concepts described herein. Except where mutually exclusive, any of the features may be used separately or in combination with any other feature, and the present disclosure extends to and includes all combinations and subcombinations of one or more features described herein. [Explanation of symbols]

[0088] 10. Storage Structure 12 Reactor vessel 14 Main Unit 16 HP 18 tracks 20 Deployment position 22 First storage position 24 Second storage position 26 flange 28 Base Structure 30 Reactor vessel cavity 32 Work Platform 36 Steam Generator 38 Steam Generator Opening 40 tracks 42 Third storage position 44 Accessory structure 46 Stud Tensioner / Detensioner Device 48 IHP lifting device 50 Inner Cask 52 Fuel storage structure 54 Fuel Storage Pool 56 Fuel Exchange Device 58 First Separation Wall 60 Second Separation Wall 62 Hatch 64 Cross Track 66 Turntable

Claims

1. 1. A nuclear power generation system, comprising: a reactor vessel having a body defining a cavity for accommodating a reactor core and a closure head for closing an opening of the cavity; a containment structure having a work floor surrounding the opening of the cavity and substantially vertically aligned with the opening; a path extending from a deployed position adjacent the reactor vessel to a first storage position remote from the reactor vessel, the deployed position being substantially vertically aligned with the opening of the cavity; The pathway comprises one or more tracks or rails supported on the work platform.

2. 10. The system of claim 1, wherein the one or more tracks or rails are pairs of parallel, spaced apart tracks or rails on each side of the reactor vessel in the deployed position.

3. The system of claim 1 or 2, wherein the path extends from the deployed position to a second stored position, the deployed position being between the first stored position and the second stored position.

4. The system of claim 3 , comprising an accessory structure separated from the storage structure by at least one separation wall, the accessory structure comprising the first storage location.

5. 5. The system of claim 4, further comprising a hatch in the at least one separation wall, the hatch being movable between a closed position in which the containment structure and the accessory structure are sealed to one another and an open position in which interaction between the containment structure and the accessory structure is permitted, the pathway extending through the hatch.

6. The system of claim 4 or 5, comprising one or more maintenance devices, each maintenance device comprising wheels for movement along the path between the containment structure and the accessory structure.

7. The system of claim 6 , wherein the one or more maintenance devices comprise one or more of a stud tensioner / detensioner device, a closure head lifting device, a reactor internals cask, and a reactor refueling device.

8. The system of claim 7 , wherein at least one of the one or more maintenance devices is movable between a collapsed configuration and an extended configuration.

9. 9. The system of claim 7 or 8, comprising a fuel storage structure separated from the ancillary structure by at least one separation wall, the pathway extending between the ancillary structure and the fuel storage structure, the fuel storage structure comprising a fuel pool for storing spent fuel.

10. 10. The system of claim 1, further comprising a base structure supporting the working floor, the base structure defining a cavity having an upper opening formed in the working floor for receiving the reactor vessel.

11. 11. The system of claim 1, comprising a plurality of steam generators circumferentially spaced about the reactor vessel, wherein a portion of the one or more rails extends from the deployed position to the stowed position and passes between a first steam generator and a second steam generator of the plurality of steam generators.

12. The system of claim 1 , wherein the reactor vessel forms part of a pressurized water nuclear reactor system.

13. 13. A method for maintaining a nuclear power generation system according to any one of claims 1 to 12, comprising: supporting a maintenance device on the work platform of the containment structure; moving the maintenance device to the deployed position; and operating the maintenance device to perform a maintenance operation on the reactor vessel of the nuclear power system.

14. 14. The method of claim 13, wherein the maintenance device is a closure head lifting device, and the maintenance operation includes lifting the closure head of the reactor vessel above the body of the reactor vessel.

15. 15. The method of claim 14, comprising moving the closure head lifting device along the path to a storage position while supporting the closure head.

16. 16. The method of claim 15, comprising: moving an inner cask along the path from a storage position to the deployed position; operating the inner cask to extract reactor internals from the body; and then thereafter moving the inner cask along the path to the storage position.

17. 17. The method of claim 16, comprising: moving a refueling device along the path from a stored position to the deployed position; and using the refueling device to extract and replace fuel assemblies in the body of the reactor vessel.

18. 18. The method of claim 17, comprising: moving the refueling device from the deployed location after the fuel assembly is extracted and replaced; and depositing the extracted fuel assembly in a fuel pool at the deployed location.

Citation Information

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