Reactor Control Device
The reactor control system addresses the limitations of conventional control rods by using hollow tubes with neutron-absorbing material and fluid control to manage reactivity, enhancing safety and operational efficiency while reducing mechanical complexity.
Patent Information
- Application Number
- JP2022558244
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-27
- Filing Date
- 2021-03-26
- Publication Date
- 2025-05-08
- Estimated Expiration
- 2041-03-26
AI Technical Summary
Conventional control rod systems in nuclear reactors face issues such as stuck rods, high maintenance costs, complex mechanisms, and limited flexibility in reactor design, which can lead to safety concerns and operational inefficiencies.
A reactor control system comprising hollow tubes filled with neutron-absorbing material, where the amount of deceleration fluid within the tubes is controlled by a pump to maintain desired reactivity levels, allowing for flexible reactivity control and reduced mechanical complexity.
The system enhances reactor safety and operational efficiency by reducing maintenance needs, simplifying mechanisms, and providing greater design flexibility, while preventing critical accidents and eliminating the risk of rod protrusion and mechanical failures.
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Abstract
Description
[Technical field]
[0001] This disclosure relates to nuclear reactors. [Background technology]
[0002] Nuclear power plants convert thermal energy from the fission of fissile material contained in fuel assemblies in a nuclear reactor into electrical energy. Nuclear reactors require fissile fuel and a moderator to regulate the released neutrons to increase the rate of fission. They also require a control mechanism to reduce the neutron flux to control the rate of fission when required.
[0003] Nuclear reactors may have a moderator to slow down the neutrons to increase their collision cross section with the selected fuel. Water-moderated nuclear reactors use light water or heavy water as a moderator. Light water reactors (LWRs) are nuclear reactors that use regular water as both a coolant and a neutron moderator. Known types of light water reactors include boiling water reactors (BWRs) and pressurized water reactors (PWRs). Heavy water reactors (HWRs) use water with increased deuterium content, as deuterium has a lower absorption cross section, allowing the use of fuels with lower fissile content.
[0004] A pressurized water reactor (PWR) nuclear power plant typically has the following pressurized components: a reactor pressure vessel (RPV) containing the fuel assemblies, one or more steam generators, and a primary coolant circuit that connects to the pressurizer. Coolant pumps in the primary circuit circulate pressurized water through piping between these components. The RPV contains the reactor core, which heats the water in the primary circuit. The steam generator acts as a heat exchanger between the primary circuit and the secondary system, where steam is produced to power the turbines. The pressurizer maintains a pressure of around 155 bar in the primary circuit.
[0005] Boiling water reactor (BWR) nuclear power plants differ from pressurized water reactors primarily in that steam is generated within the reactor vessel from the same water circuit used as both coolant and moderator, and this steam is used directly to drive a turbine. Thus, boiling water reactors do not require steam generators, but otherwise share many characteristics with pressurized water reactors. In BWRs, steam dryers may be required inside the reactor pressure vessel above the reactor core. To allow the water to boil at useful operating temperatures, the pressure in BWRs is lower than in PWRs, typically 70 to 75 bar.
[0006] To allow the reactor to be started, shut down, and adjust its power output over a wide range of power outputs, most designs have some form of movable absorber. This is typically a movable control rod assembly, an assembly containing a strong neutron absorber that is moved into it to shut down the core. In a PWR, this is typically achieved by including several control rod drive mechanisms (CRDMs) on the removable head of the reactor pressure vessel. In a BWR, the control rods enter the reactor core from below to create space in the RPV for the necessary steam dryers. The CRDMs are therefore typically connected to the bottom head of the reactor by, for example, a welded stub tube and flange assembly.
[0007] Control rods are used to control the starting and shutting down of the reactor and its power output during normal operation, but they are also required to perform emergency shutdowns known as SCRAM. Mechanisms that provide this function include, for example, electromagnets that suspend the control rods, spring-loaded mechanisms, or pressurized fluid reservoirs to provide actuators that pick up the control rods in a BWR reactor if power is lost.
[0008] Some of the known problems with conventional control rods are listed here.
[0009] Safety Issues Control rods may get stuck or experience excessive friction when they are reinserted into the reactor. If an insufficient number of control rods are reinserted, the reactor may not shut down. To mitigate this, the control rods and their associated systems have extremely high reliability requirements and associated costs, and additional control rods must be added to offset the failure to reinsert a single rod. In many designs, a secondary shutdown system is required when the control rods cannot be trusted to function.
[0010] The control rods may be ejected from the reactor and structural failure above the control rod drive may cause steam / water to leak from the reactor. The pressure difference between the leak point in the reactor and the control assembly may therefore very rapidly lift the rods out of the reactor. Such a failure is mitigated by rapidly shutting down the reactor, which requires complex and expensive instrumentation to trigger this function.
[0011] The control rods can be erroneously commanded to lift. In certain cold or cryogenic conditions, doing so could potentially result in the reactor going into super-criticality, and such an occurrence could potentially destroy the core, reactor vessel, and many of the cooling systems. Expensive high-integrity control systems and procedures must be used to prevent this from happening.
[0012] Because each control rod housing has multiple welds, the control rod assemblies create a significant increase in the surface area of the primary pressure boundary, which also greatly increases the number of potential failure points. Because the control rod housings are typically only a few mm thick, they must be protected from missiles and other internally or externally generated hazards.
[0013] Cost and Complexity In a typical control rod scheme, a control assembly occupies one fuel assembly and is controlled by one control rod drive mechanism (CRDM). A typical reactor has 30-100% of the fuel assemblies in the control assembly. As can be seen in Figure 1, such CRDMs and their associated housings amount to a significant volume of equipment mounted in the upper head of the reactor vessel.
[0014] CRDMs are safety critical and therefore represent a significant cost in and of themselves. They also tend to be individually wired to the high voltage power electronics located outside the containment. CRDMs are therefore a significant cost relative to the total cost of the primary circuit.
[0015] CRDM housings such as those described above are very numerous and relatively fragile when on the pressure boundary. As a result, they require expensive alignment and in-service inspection and maintenance.
[0016] Reactivity control Control rods are relatively space inefficient during reactor core shutdown because they are a highly concentrated absorbent material concentrated in a limited portion of the core. As a result, if the reactor were to be operated as a plant with no available boron, the number of control rods required would be significant, with potentially 80-100% of the fuel assemblies requiring control assemblies. As previously discussed, CRDMs are expensive, large and cumbersome, and providing CRDMs at all locations would be costly and complicated.
[0017] Layout The control rod system places significant constraints on the reactor layout. The control assembly requires a space at least as large as the core within the pressure boundary in which it can retreat. The control assembly also has long drive rods that are required to transmit motion between the CRDM and the control assembly within the core.
[0018] CRDMs are traditionally installed outside the pressure boundary. This allows them to have electrical connections and electromagnets or hydraulic pistons and controls in relatively conventional materials. If the CRDMs were installed inside the pressure boundary, high temperature insulation would be required for the electromagnets, along with high temperature and pressure resistant encapsulation of the electrical connections, and costs would likely increase due to the larger size in addition to additional technical and operational risks.
[0019] The need to have such long rows of equipment means that the reactor head on a typical PWR plant weighs hundreds of tons. If more flexible systems were adopted, this space might also be used to place other parts of the plant such as fluid connections, pressurizers or heat exchangers or water separators.
[0020] In a BWR, the steam separators must be located above the core, and therefore the control rods are located below the core, which means that the space to retract the control assemblies is located below the core, raising their position in the vessel. The CRDMs therefore need to penetrate the bottom of the vessel, meaning that their design needs to have a high level of integrity, since any leak could eject the RPV. In addition, gravity cannot be used to insert the rods, they are generally inserted using energy stored in hydraulic accumulators or with system pressure.
[0021] The entire control rod mechanism is complex and requires regular attention. The control rod drive mechanism in conventional PWR reactors is usually combined with the pressure vessel head and requires careful handling whenever the head is removed. Maintenance of the CRDM in BWR reactors is said to be one of the most highly irradiated, physically damaging and complex maintenance activities routinely performed by BWR facilities.
[0022] In "Nuclear Naval Propulsion", Magdi Raheb 2011, the S7G experimental reactor is discussed: "The S7G core was controlled by fixed gadolinium-clad tubes that were partially filled with water. Water was pumped from a section of the tube inside the core to a reservoir above the core, or allowed to flow back down into the tubes. A higher water level in the tubes within the core would slow down neutrons and allow them to be captured by the gadolinium tube cladding rather than the uranium fuel, leading to a reduced power level. This design constituted a unique fail-safe control system. The pumps had to run continuously to keep the level of water being pumped in check. If power to the pumps was lost due to an accident, all the water would flow back into the tubes, shutting down the reactor." The S7G prototype design was a land-based reactor that did not use solid control rods. It was tested in the late 1970s and early 1980s. Details of its implementation have not been disclosed other than the basic working principles. Summary of the Invention [Problem to be solved by the invention]
[0023] Thus, a need exists for improved control mechanisms for all types of nuclear reactors. Increased reliability, reduced maintenance requirements, and simplified mechanisms are all desirable attributes of a nuclear reactor control design. [Means for solving the problem]
[0024] According to a first aspect, there is provided a reactor control system for a nuclear reactor comprising: one or more hollow tubes comprising a neutron absorbing material, each hollow tube having a first end and a second end; and a pump connected to the first end of each hollow tube and operable to control a quantity of a first fluid within the hollow tube, the first fluid comprising a neutron moderator, the pump being controlled based on a level of reactivity within the nuclear reactor; and the second ends of the hollow tubes being in fluid communication with a second fluid, the second fluid having a neutron moderating capacity less than 10% of the capacity of the first fluid.
[0025] Optionally, the first fluid is water and the second fluid is steam. Other fluids may be used to provide a first fluid that provides a strong deceleration effect, with the second fluid having a lower capacity for deceleration, for example less than 10% of the capacity of the first fluid, or less than 5% of the capacity of the first fluid, or less than 1% of the capacity of the first fluid.
[0026] The reactor control system may provide a means for rapidly filling the tubes with a third fluid, which may include the first fluid and an additional neutron absorbing material, or the third fluid may include another neutron absorbing fluid that can be injected into the tubes to suppress the reactivity of the reactor core.
[0027] The reactor control system may further comprise a control orifice between the hollow tube and the pump, the control orifice being in fluid communication with a reservoir of the first fluid. As described below, the control orifice allows a portion of the first fluid to be drawn into the tube by the pump to create a calibrated pressure drop across the orifice. This allows the pump speed to be controlled to maintain a required pressure drop in the tube while still maintaining a flow rate of the fluid. This allows the pressure drop to be controlled based on the flow rate, and therefore the height of the fluid in the tube to be controlled based on the flow rate at the pump.
[0028] The second end of the hollow tube may be in fluid communication with a steam space, which in turn is in fluid communication with the reactor pressure vessel of the reactor. For example, in a BWR, the second end of the tube may be above the steam dryers in the pressure vessel. When the steam space is at a pressure equal to the pressurized water in the reactor vessel, the pump simply needs to provide sufficient head to regulate the water level in the tube without having to overcome the pressure in the reactor.
[0029] The pump may be fitted with a mechanism for stopping the pump from controlling the amount of the first fluid in response to a signal rapidly, for example by the pump stopping turning, including, for example, one or more of a brake on the motor shaft, a magnetic coupling between the impeller and the shaft, a brake resistor in the pump power controller, an additional valve or a fluid device operable to allow more fluid to enter the absorber tube.
[0030] The reactor control system may include an interlock system to prevent the pump from reducing the amount of the first fluid in the hollow tube until the reactor moderator temperature reaches a predetermined threshold temperature. In nuclear reactors, such as light water reactors, the water temperature provides a reactivity control mechanism, and it may be undesirable to reduce the absorber control action until the water reaches normal operating temperature. Thus, the interlock system prevents withdrawal of the control mechanism from potentially causing a control runaway before an equilibrium operating temperature is achieved.
[0031] The reactor control system includes one or more sensors operable to provide measurements indicative of the depth of the fluid in the pipes, and the pump is controllable to maintain the required depth of the fluid at a predetermined level. The sensor may be a fluid height sensor, such as a radar sensor or an optical sensor. The sensor may be a pressure sensor that measures the water pressure in the pipes.
[0032] One or more tubes may include absorbent material along a portion of their length such that when the tubes are fitted into a reactor core, the reactivity of a first portion of the core may be controlled independently relative to a second portion of the core. Different tubes may include absorbent material in different locations, or one or more tubes within a fuel assembly may include absorbent material in different locations relative to other tubes within the same fuel assembly.
[0033] The tube may have a rectangular or closed cross-section.
[0034] When more than one hollow tube is present, the reactor control system may include a many-to-one connecting manifold operable to provide a fluid connection between two or more of the hollow tubes and an outlet pipe within the reactor. The manifold may form a structural component of the reactor core support to provide structural support to both the core itself and assemblies within the core.
[0035] The manifold may further function to position the fuel rods in the fuel assemblies.
[0036] In another aspect of the invention, a fuel assembly for a nuclear reactor is provided, the fuel assembly including one or more fuel rods of fissile material and one or more hollow absorber tubes including a neutron absorbing material, such as gadolinium.
[0037] There may be more than one hollow tube, and the fuel assembly may include a many-to-one assembly manifold that is operable to provide a fluid connection between two or more of the hollow tubes and an outlet pipe of the fuel assembly.
[0038] Another aspect of the invention is a method of controlling a nuclear reactor, the method including providing a hollow absorber tube containing neutron absorbing material in a core of the nuclear reactor and controlling the amount of moderating fluid within the hollow tube to maintain a desired level of reactivity in the core.
[0039] The present invention may comprise or be included as part of a nuclear reactor power plant (herein referred to as a nuclear reactor). In particular, the present invention relates to a light water reactor (LWR), such as a pressurized water reactor (PWR) or a boiling water reactor (BWR). The nuclear reactor power plant may have a power output of 250 to 600 MW or 295 to 550 MW.
[0040] The nuclear reactor power plant may be a modular reactor, which may be considered as a reactor made up of several modules that are manufactured off-site (e.g. in a factory) and then the modules are assembled on-site into a nuclear reactor power plant by connecting the modules together.
[0041] The reactor of the present disclosure may be a pressurized water reactor and includes 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) through the reactor pressure vessel to extract heat generated by nuclear fission in the core, which is then delivered to the steam generators and transferred to the secondary circuit. The primary circuit may include one to six steam generators, or may include two to four steam generators, or may include three steam generators, or may have any range of values as described above. The primary circuit may include one, two, or more than two pressurizers. The primary circuit may include a circuit extending from the reactor pressure vessel to each of the steam generators, which may carry a hot medium from the reactor pressure vessel to the steam generators and may carry 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 two pumps for each steam generator in the primary circuit.
[0042] In some embodiments, the medium circulating 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, if water is the medium of the primary circuit, the heated water temperature of the water leaving the reactor pressure vessel may be between 540 and 670 K, or between 560 and 650 K, or between 580 and 630 K during full power operation. In some embodiments, if water is the medium of the primary circuit, the cooled water temperature of the water returning to the reactor pressure vessel may be between 510 and 600 K, or between 530 and 580 K during full power operation.
[0043] The nuclear reactor of the present disclosure may include a turbine circuit that includes a water circulation loop that extracts heat from a primary circuit or from the reactor core in a steam generator in a reactor pressure vessel and converts the water into steam to drive a turbine. In an embodiment, the turbine circuit may include one or two high pressure turbines and one or two low pressure turbines. In some embodiments, the nuclear reactor may be a BWR and a steam turbine may be driven by steam generated in the reactor pressure vessel that itself forms part of the turbine circuit.
[0044] The turbine circuit may include a heat exchanger to condense the steam into water when it is returned to the steam generator or to the reactor pressure vessel. The heat exchanger may be connected to a tertiary loop that may have a large body of water to act as a heat sink.
[0045] The reactor vessel may comprise a steel pressure vessel, which may be 5 to 15 m tall, or 9.5 to 11.5 m tall, and between 2 to 7 m, or between 3 to 6 m, or between 4 to 5 m in diameter. The pressure vessel may comprise a reactor body and a reactor head positioned vertically above the reactor body. The reactor head may be connected to the reactor body by a series of studs that pass through a flange on the reactor head and a corresponding flange on the reactor body.
[0046] The reactor pressure vessel and associated plant may be housed in a containment structure to hold the steam from the water circuit in the event of an accident. The containment may be 15 to 60 m in diameter or 30 to 50 m in diameter. The containment structure may be made of steel or concrete, or may be made of concrete lined with steel.
[0047] The containment may house one or more lifting devices (e.g., polar cranes). The lifting devices may be housed at the top of the containment above the reactor pressure vessel. The containment may be housed within a water tank for emergency cooling of the reactor or may be supported outside of a water tank. The containment may house equipment and facilities to allow for refueling of the reactor, storage of fuel assemblies, and transportation of fuel assemblies in and out of the containment.
[0048] A power plant may house one or more civil structures to protect the reactor components from external hazards (e.g., missile attacks) and natural disasters (e.g., tsunamis). The civil structures may be made of steel or concrete or a combination thereof.
[0049] Embodiments of the invention will now be described, by way of example, with reference to the accompanying drawings, in which: [Brief description of the drawings]
[0050] [Figure 1] FIG. 1 is a schematic diagram of a prior art PWR. [Diagram 2] FIG. 1 illustrates an example of the present invention. [Diagram 3] FIG. 2 shows an absorber tube when full and when empty. [Figure 4] FIG. 1 illustrates the connections between the manifold and the fluid pipes. [Diagram 5] FIG. 2 is a diagram showing the layout of a fuel assembly. [Figure 6] 1 shows an example layout of a fuel assembly 600 formed in this example of a 17×17 grid of rod guides. [Figure 7] FIG. 1 shows three alternative fuel assemblies and absorber tube layouts. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0051] FIG. 1 shows a prior art pressurized reactor vessel 100 for use in a nuclear power generation system, in the illustrated example of a pressurized water reactor (PWR) type. The reactor vessel 100 has a removable closure head assembly 120 that is an integral head package (IHP) having a closure head 130 for closing a top opening in the reactor vessel body 140, thereby sealing the fuel assemblies / reactor core (150) within a cavity in the reactor vessel body 140. The IHP further comprises a number of control rod drive mechanisms (CRDMs) 110 within an enclosure (not shown). Control rod drive shafts 115 connect the control rods to the CRDMs. Also shown are an inlet nozzle 160, an outlet nozzle 165, a core barrel 170, and a core support 175. As can be seen, the CRDMs are mounted to the integral head package and must be handled with care whenever the head is removed.
[0052] FIG. 2 shows a schematic of a light water nuclear reactor according to an embodiment of the present invention. The light water nuclear reactor 200 has fuel assemblies 210 containing fuel pins of fissile material. In the core there are hollow absorber tubes 220 made of gadolinium or any other neutron absorbing material with a significantly higher neutron capture cross section for thermal neutrons than for fast neutrons. These tubes may be arranged so that their open top ends 230 are located in a space 240 in the primary circuit containing steam. The bottoms of the tubes may be connected to a pipe network 250, which is connected to a pump 260. The absorber tubes may be connected to pins of fissile material in the fuel assemblies so that each fuel assembly can be removed from the core as a unit with the fuel pins and the absorber tubes. Variations of the layout are contemplated providing that one end of the tubes is connected to a first fluid that strongly moderates neutrons and a second end of the tubes is connected to a second fluid with a lower neutron moderating capacity. For example, the second fluid may have a significantly lower density than the first fluid, such as steam, or the second fluid may have a significantly lower neutron moderation cross section, such as nitrogen, or both.
[0053] Tubes in this specification refer to absorption tubes unless the context makes clear that a different use is intended.
[0054] In one control situation, the absorber tubes are filled with moderating fluid, e.g., water. In the example of Figure 2, in another situation, the pumps are operating in the core such that moderating fluid is withdrawn from the tubes and replaced with less moderated fluid, e.g., steam withdrawn from the steam space.
[0055] Alternatively, the upper end of the tube may be connected to a controlled source of pressurized fluid with a low decelerating cross section, such as high pressure gas, e.g. steam, and the level of decelerating fluid can be adjusted by pumping decelerating fluid from the tube or by increasing or decreasing the pressure of the pressurized fluid.
[0056] Figure 3 shows cross sections A and B of an absorber tube 230. When an energetic neutron n is released by a fission event, it initially has a low probability of absorption if it hits the absorber tube. When the tube is filled with steam (example A), the energetic neutron has a low chance of interacting with the gadolinium on the tube wall, both when entering and when leaving the space inside the tube. As it travels through the tube, it is unlikely to be slowed down by hydrogen atoms in the steam, since the steam is in a region that is 1000 times less dense than water.
[0057] If the tube is filled with water or with another moderator (example B), there is a high probability that the neutrons will interact with one or more nuclei of hydrogen or deuterium atoms in the moderating material, e.g. water, and will be moderated or slowed down by this. The typical distance that a neutron travels in the reactor coolant is between 3 mm and 45 mm depending on the energy. The tube may be 10-25 mm in diameter. This ensures that fast neutrons have a high probability of being moderated by collisions with the water while contained inside the tube, becoming thermal neutrons, and therefore have a high probability of being absorbed by an absorber before leaving the tube.
[0058] Each time a neutral interacts with a hydrogen nucleus, it loses speed in an elastic collision with a proton in the hydrogen nucleus (which has a similar mass to the neutron). The more energy a neutron loses, the higher its chances of being absorbed as it passes out of the tube. The absorbing material in the tube has a higher absorption cross section for neutrons at lower neutron energies, for example thermal neutrons with a speed of around 1200 m / s.
[0059] FIG. 4 is a graph of neutron absorption cross section in barns (y-axis) plotted against neutron energy in MeV (x-axis) for a preferred neutron absorber. The graph shows that there is a logarithmic relationship between neutron energy (x-axis) and the chance that they will be absorbed (y-axis). For lower energy neutrons, for example thermal neutrons, this effect can be seen to be stronger, especially for gadolinium (Gd). Cadmium (Cd), hafnium (Hf) or boron (B) are other strong neutron absorbers that can be used. Those skilled in the art will understand that any neutron absorbing material that can be incorporated into the tube and has a higher absorption cross section for thermal neutrons than fast neutrons can be used. The neutron absorbing material may be used to form the tube or may be formed into an alloy or composite that is used to form the tube. Alternatively, the neutron absorbing material can be incorporated into a space formed in the wall of the tube.
[0060] Thermal neutrons are those with energies around 0.025 eV, or the average energy of the neutron after being slowed down to thermal equilibrium with the moderator. Fast neutrons are those with energies around 1 MeV produced by nuclear fission. The neutron absorber has a neutron absorption cross section that is an order of magnitude higher than the fission cross section of the fuel for thermal neutrons, and an order of magnitude lower than the fuel for fast neutrons. Those skilled in the art will know how to calculate the mass and cross section of the neutron absorber required to fit a particular reactor core design.
[0061] Returning to FIG. 2, a control orifice (270) may be inserted between the core and the pump (260). The control orifice may be inserted in the piping to prevent the pump from sucking steam or other low velocity fluid all the way up to the pump impeller, which would otherwise cause undesirable flow reversal. The pump suction prevents water passing through the control orifice from flowing back up the pipe and into the absorber tube. When the pump is switched off, water can flow back through the control orifice and via reverse flow through the stationary pump to the absorber tube. By matching the pressure drop across the control orifice under operating flow conditions to the pump pressure curve, the fluid height in the tube when the pump is operating can be set.
[0062] Instead of or in addition to the control orifice, the pump pressure and therefore the amount of moderator fluid in the pipe may be controlled by variable control of the pump, for example by a variable speed drive (VSD). Sensors may be provided to measure the pressure in the pipe or the depth of the fluid in the pipe, and the pump may be controlled to achieve the required depth of fluid. In this variant, it is possible to use a liquid moderator different from the moderator in the reactor core.
[0063] It may be advantageous to quickly slow down the pump when necessary to allow water to flow back quickly, for example during an emergency reactor shutdown or SCRAM.
[0064] Features that allow the pump to be rapidly slowed include, but are not limited to, magnetically decoupling the pump motor from the pump impeller when motor current is lost, a brake on the motor shaft that is held open by an electromagnet and thereby closes when current is cut. A power controller such as a variable speed drive (VSD) may be used to drive the pump, and a brake resistor in the power controller may be used to absorb induced currents in the pump electrical circuit when the pump is switched off and dissipate the energy as heat to rapidly stop the pump.
[0065] The system may be designed with additional valves or fluidic devices that allow additional flow into the absorber tubes, and these may be connected to the pump circuit to allow them to function when pump power is lost. For example, a solenoid valve that opens when the power supply to the pump is switched off will allow water to enter the pump circuit immediately, reducing the suction in the absorber tubes and allowing them to refill with water more quickly.
[0066] In the case of an emergency fast shutdown, another method involves spraying cold water into the steam space to collapse the steam bubbles, or injecting water directly into the absorber tubes from an external tank or elsewhere in the primary circuit.
[0067] In a PWR embodiment, the steam space to which the top end of the pipe may be connected may be the steam space of the pressurizer of the entire PWR plant, which is advantageous for packaging the entire plant in a minimum number of vessels / areas.
[0068] In a BWR, the steam space may be the steam space in the RPV.
[0069] The steam space for the top end of the pipe may also be a small dedicated space with its own electric heater, allowing the pressure control of the plant to be independent from the reactivity control.
[0070] The preferred design uses steam to drain the absorber rods. In practice, other materials may be used, provided they are in gas form between room temperature and 350 degrees, they do not dissolve easily in the liquid moderator, they do not produce dangerous isotopes under irradiation, and they are not strong neutron moderators themselves. Nitrogen, helium or other low neutron absorber or moderating cross-section gases may be used instead of steam. Instead of pumping water from the tubes, gas may instead be sprayed at the top of the tubes to push the water or other liquid moderator out. In one variation, a low-velocity liquid that is immiscible with the moderating fluid may be used to fill the top of the tubes.
[0071] The absorber tubes may have variable heights and lengths to selectively vary absorption at different heights in the core. For example, some tubes may have absorbing material only at the top or bottom of the core, so that the reactivity of that portion can be independently controlled. Such control may be in response to measurements of fission activity, for example by neutron flux sensors.
[0072] Pump Control The system may be designed to prevent the pump from emptying the tubes when the reactor is cold, i.e., when reactivity may be higher than at normal operating temperatures. Several methods are envisioned.
[0073] First, the pump may have an interlock system such that it cannot operate below a certain threshold temperature, for example a typical reactor operating temperature of about 300° C. This may be achieved by means such as:
[0074] 1. Using thermal expansion as the driving device to disconnect or brake the pump. Bimetallic action may be used to disconnect the pump or brake the rotor. Shape memory alloys, which can be designed to change shape at specific temperatures, are used to ensure that such transition occurs rapidly at a given temperature.
[0075] 2. Using the Curie point transition in a paramagnetic material to isolate or brake the pump: In this solution, a change in temperature causes the paramagnetic material to no longer be attracted to the magnet, and the material may be designed to trigger at a specific temperature.
[0076] 3. Disconnect the power connection to the pump motor by similar means.
[0077] 4. Due to flow area limitations, the system may be designed such that the flow areas limit the ability of the pumps to draw water through them when the plant is cold, and the thermal expansion of the core materials, Curie point behavior, and water concentration may be used to provide these effects.
[0078] A similar method may be used to prevent the vapor space from operating, thereby preventing the pump from drawing vapor into the tube. Alternatively, the means employed in the previous section, such as a valve, may be used to open the flow space into the tube, meaning that when the pump is activated it will draw water through the flow space until the threshold temperature is achieved.
[0079] Piping installation for assembly In a typical nuclear reactor core that contains absorbent material, current practice is to assemble the core from fuel assemblies. The use of fuel assemblies allows the fuel to be manufactured and delivered for handling in parts, which reduces the risk of criticality accidents. These assemblies may also be rearranged to improve the utilization of fissile material when it is depleted.
[0080] All of the following statements when made with respect to a fuel assembly are equally applicable to a core that is fabricated as a single unit (which is actually a single large fuel assembly).
[0081] It is envisioned that there is a many-to-one relationship between the absorber in a given fuel assembly and the connections between that fuel assembly and the piping connecting the absorber to the vapor space and pump 260 .
[0082] For systems where the absorber tubes (220) are installed within the fuel assembly, it is expected that at the top and bottom of the assembly beyond the fueled portion, the absorber tubes will join into a many-to-one manifold. This could be a pipe manifold, or it could be a hollow structure made from casing or 3-D printed elements that also serves to position the fuel pins.
[0083] In such a situation, it is expected that the many-to-one manifold will descend into a single inlet or outlet pipe for each fuel assembly. Figure 4 shows a schematic depiction of such a system, where there are multiple absorber tubes 230 per assembly 510 connecting to one outlet 520. The outlet in this case is assumed to be cylindrical when used as an X / Y plant location feature, but may be of other shapes that allow it to function as a rotational constraint as well as an X / Y location feature.
[0084] An outlet pipe from the absorber tube, or absorber tube manifold, is configured to be received by the receiving tube when the fuel assembly containing the absorber tube is inserted into the RPV.
[0085] The containment tube is expected to have introduction features (530) to reduce the severity with which the fuel assemblies must be handled. This design also shows a flow restricting ring (540) that restricts water from flowing into the assembly from the surrounding fluid outside the tube. As water is removed from the tube by the suction pressure of a continuously running pump, the system does not need to be tightly sealed, but the inflow of water can be controlled.
[0086] Alternative means of sealing, such as interference or interference fits, differential thermal expansion, compression seals such as C-seals actuated by the mass of the components, may also be used alone or in combination.
[0087] It is envisioned that the structure housing the piping manifolds may also serve as a core mass support and fuel assembly restraint structure. The structure is connected back to a pump, which may be similar in geometry to a BWR circulation pump, located at the top of the reactor vessel instead of the bottom.
[0088] The connections at the top of the fuel assembly would be similar to those described at the bottom, except that instead of being rigidly installed in the core, it could be moved away from it to allow for refueling. The top manifold has a many-to-one relationship and has pipes connecting it to the upper steam space or to a source of pressurized gas. This top assembly is held in place by spring clips or other suitable methods that can accommodate thermal expansion.
[0089] An alternative method is to give each absorber tube its own connection, similar to the method of connection shown in FIG. 5. In this arrangement, the many-to-one manifold is located directly underneath the fuel assembly, rather than being part of the assembly. The manifold needs to be flexible enough to accommodate assembly tolerances and thermal expansion within the core. One advantage of this arrangement is that different core locations may have different arrangements of pump connections, allowing the absorber to be plugged in specific locations allowing the absorber tube, i.e., the gadolinium tube, to function as a burnable poison rather than a stop rod.
[0090] It is anticipated that when the absorber material is depleted during operation, if the absorber material is depleted at a faster rate than the fissile material in the fuel assemblies, it may be desirable to replace these absorber tubes during resupply.
[0091] As listed above, the complete system may optionally include one or many manifolds in a variety of advantageous arrangements.
[0092] An assembly manifold in one or more fuel assemblies connects absorber tubes in the assembly to a connecting manifold that connects the assembly manifolds of multiple fuel assemblies together. The assembly manifold may be part of the fuel assembly and move therewith into and out of the reactor. There may be assembly manifolds at both the top and bottom of each assembly. There may be connecting manifolds located at both the top and bottom of the reactor core.
[0093] The assembly manifold connected to the fuel assembly may be disconnected therefrom, for example in a fuel pool, and may be capable of being fitted with a new fuel assembly, allowing the assembly manifold to be reused.
[0094] A connection manifold at the bottom of the core may be located in the core support, which may be individually attachable to each tube set or may be attachable to an assembly manifold in each assembly. The connection manifold in the core support may form a structural part of the core support and provide both structural support to help support the core itself and the assemblies within the core, and fluid connections to provide control of the moderating fluid level in the absorber tubes. The connection manifold may therefore also function as a support manifold to support the mass of the assemblies within the core (which may also be achieved by the core support structure having internal passages that may be used as part of the fluid system).
[0095] The fuel assemblies may be positioned such that the connections to the connection manifolds for the individual absorber tubes provide a location means for the fuel assemblies so that they are accurately positioned within the core.
[0096] It may be desirable to have two or more independent absorber systems in the core. One system with a large volume of absorber tubes is used to shut down the core. A more limited system may be used as an equivalent to the gray rod system used to add or subtract reactivity when fuel and burnable poisons are depleted. Individual tubes positioned at different heights and different horizontal positions in the core may be independently controlled to allow different parts of the core to have different levels of reactivity. Alternatively, the tubes may be the entire height of the core but only have absorber material at different heights along the length of the tube. This may allow the burnup rates in different parts of the core to be controlled in order to balance the burnup evenly throughout the core and extend the operating life of the fuel rods.
[0097] The independent absorber systems may be plumbed such that the inlet and outlet of each independent absorber system are located coaxially. This will reduce the effect of tolerance stack-up between elements of the core when positioning the assemblies and simplify positioning the assemblies during refueling. Alternatively, the inlets and outlets may also be used as anti-rotation features if they are not located coaxially but adjacent to each other.
[0098] It is also contemplated that for any suitable placement of the absorber tube, the upflow connection to the pump (260) may be located within the fuel assembly such that both the inlet and outlet connections from the absorber tube are located at the top of the fuel assembly. The flow control orifice (270) may be located at either the top or bottom of the assembly such that the upflow connection is either wet or dry.
[0099] One alternative may be envisaged where the water / steam pipes can project upward from the bottom of the reactor core. In this arrangement, the pipes have downcomer and riser pipes in the same tube, and a connection is then provided from the tube to the steam space, e.g., a steam pipe that runs to the side of the core. This arrangement means that the reactor does not require any structure above the fuel assemblies (other than to restrain the fuel assemblies if necessary), which greatly simplifies the refuelling process.
[0100] Alternative plumbing The solutions in the previous section are applicable when the absorber forms part of the fuel assembly. This is not a requirement and solutions may be established when the absorber and the fuel assembly are separate.
[0101] As previously described, the inlet and outlet of the absorber rods may be located at the top of the core. In this case, the core is placed in the reactor vessel with a space in which the absorber rods can be placed. In this embodiment, the absorber is then lowered into the core as part of a single assembly or multiple assemblies. It is also conceivable that the absorber assembly could be integrated with the plate that holds the fuel assembly down, the pump and steam space assembly, and even the reactor head.
[0102] In all the solutions mentioned above, the neutron absorber is held in the wall of the tube, where steam or water is used to modify the absorption of the assembly. It is also possible to have a system in which the two functions are separate and a sealed tube to contain the steam and water is placed inside a sleeve containing the absorber.
[0103] This has the advantage that if the absorber becomes depleted, the sleeve can be replaced without disassembly of the fluid-holding portion of the system. It is also possible to design a system in which the absorber tube is not in fluid communication with the reactor's primary coolant, but is contained in a separate loop with its own motor-driven pump and steam space.
[0104] Pump location The piping of the system will, in most cases, be attached to the RPV in such a way that it will not be routinely moved during bunkering operations. The basic method of pump location and installation is as follows:
[0105] The pump is mounted on the reactor head, which allows the system to be easily removed, replaced or maintained. However, tolerance stack-up and sealing between the pump and the upright leg of the system can be an issue. The power cable to the pump also sometimes needs to be disconnected during refueling.
[0106] The pump connection may pass through the RPV wall, which means that it is not disconnected when the plant is refuelled. Manufacturing complexity may be slightly greater, but operational complexity will be lower.
[0107] Absorber Geometry Fluid-filled tube absorber assemblies may offer significantly greater freedom of absorber geometry available over conventional control assemblies that require insertion in order to operate, examples of which include the following:
[0108] 1. The absorbers may be arranged in geometries other than cylinders; plates, crosses and other geometries are possible.
[0109] 2. The absorber does not have to be arranged in a linear fashion, for example spirals and zigzags are also possible. This may allow the fuel pins to be arranged in geometries with higher thermal conductivity.
[0110] 3. The absorber does not need to be uniform in cross-section along the vertical length of the fuel assembly. More absorber cross-section may be used in the middle of the assembly than at the top or bottom.
[0111] 4. The absorber need not be radially symmetric about the fuel pin centerline. The assemblies may be purposely designed to be asymmetric to allow for adaptation of the absorption to a particular portion of the core. During resupply, the assemblies may be rotated to rearrange to further optimize absorption during operation or shutdown.
[0112] 5. Absorbers for different purposes may be interleaved within a single fuel assembly, e.g. a single fuel assembly may be connected to more than one pumping circuit. Thus a single assembly may have one circuit connected to multiple absorbers used to shut down the reactor and a second circuit with an even more limited set of absorbers used to modify the reactivity as the core ages. During an outage, absorber tubes may be plugged or opened to adjust the reactivity. Subsets of absorbers may be located at different heights within the reactor core.
[0113] 6. The absorbers do not have to be located within the fuel assemblies themselves; they may be located in racks between the assemblies, or they may be located around the edge of the core.
[0114] 7. The absorbent material may also have a tri-foil and / or spiral structure.
[0115] The absorber tubes may be arranged in the fuel assemblies having a grid pattern, with the absorber tubes occupying positions within the grid and the fuel pins occupying other positions within the grid. The grid may be arranged in square packings or hexagonal packings. A plurality of fuel assemblies may be arranged to form a nuclear reactor core. The number of absorber tubes within each fuel assembly may vary among different fuel assemblies within the nuclear reactor core.
[0116] Alternatively, the absorber tube may have a rectangular or closed cross section and may be placed beside a row of fuel pins in the fuel assembly. The absorber tube may thus form a hollow absorber plate. Both ends of the plate may have transition sections connectable to pipes or manifolds to allow making a fluid connection to the absorber plate. The absorber tube may have a pair of rectangular or hexagonal box sections offset from each other to provide a hollow polyhedral flow space between the sections. Such a hollow polyhedral flow space between the absorber plates may then surround the entire fuel assembly.
[0117] FIG. 6 shows an example layout of a fuel assembly 600 formed with this example of a 17×17 grid of rod guides. The grid is held together by metal bands (not shown). The grid of rod guides may house, for example, fuel rods 601, absorber tubes 602, refueling and / or storage rods 603, and instrumentation rods 604. Furthermore, not all rod guides in the fuel assembly need to be filled. For example, the rod guides for one or more positions may not house any rods. The instrumentation rods 604 typically house one or more sensors, such as temperature sensors, radiation flux sensors, etc. The system disclosed herein allows absorber tubes and fuel rods to be fixed together in the fuel assembly so that they can be installed or removed together, eliminating the risk that a control rod will become disconnected during a refueling operation.
[0118] FIG. 7 shows three example arrangements of hollow absorber plates 701. In each example, the fuel assembly comprises a number of fuel rods arranged in a lattice. The layout is similar to that shown in FIG. 6. In 7A, the absorber plate 701 has a rectangular cross section that is hollow to allow the flow of moderator fluid inside the rectangular tubes. The absorber plate may be attached to the fuel assembly so that the fuel rods and absorber tubes can be inserted into or removed from the reactor as a single unit. In 7B, the absorber tube is formed from a pair of rectangular tubes with a hollow space between them to allow the flow of moderator fluid. In 7C, the absorber plate 701 is formed in a hollow cruciform shape that may be placed in the space between adjacent fuel assemblies. The fuel assembly may accommodate instrumentation rods or additional absorber tubes.
[0119] Absorbers placed around the core between the core and the neutron reflectors can be used to block neutrons from the reflectors placed on the outside. In reactor designs where criticality is maintained by neutron reflectors, this has the ultimate control authority to shut down the plant.
[0120] How to Passively Shut Down a Plant In conventional control rods (prior art), power can be extracted from the CRDMs to enable them to be lowered under gravity. This is controlled by Electronic Control and Instrumentation (EC&I) triggered reactions to sensor readings, failures in the EC&I system or operator actions.
[0121] Any of the following methods may be used alone or in combination to cut the pump's output and allow the water to flow into the pipes. Other methods may also be used to make the system passively react to an accident.
[0122] High Temperature: The methods disclosed above, for example utilizing thermal expansion of the pump shaft to prevent the pump from operating when the reactor is at an insufficient temperature, may be adapted with different material choices and geometries to cause the pump to stop operating at a high temperature threshold and allow water to flow into the absorbent channel.
[0123] Cryogenics: A previously discussed method for preventing prompt criticality from occurring.
[0124] Steam leakage from the pressurizer: The water level in the pressurizer rises as the water begins to boil all over the primary circuit, increasing its volume, causing the water to overflow the steam inlet to the system and forcing the water to flow into the absorber tubes. The height of the steam inlet above the water level needs to be selected to achieve this effect.
[0125] Reducing System Pressure: A passive pressure reducing valve opens to release plant pressure, allowing water to be pumped into the plant under gravity by the safety system. The pressure reducing valve is positioned within the pressurizer to increase the pressure differential between the control orifice (270) and the top of the absorber tube (220) over the water inlet, causing water to be sucked through the control orifice into the absorber against the pump pressure.
[0126] Increased system pressure: This is usually associated with increased system temperature in which case the pump may be shut down by the method proposed for excessive temperature cases.
[0127] In both cases a passive pressure sensing circuit breaker may be used to cut power to the pump.
[0128] Reduced system water level: A small leak in the plant can allow it to lose steam / water while remaining at operating pressure. In this case, the water level in the pressurizer will drop as the volume of water in the system decreases. A passive float valve may be installed at the required water level to sense this situation and open the valve at a lower position to allow water to flow into the absorber.
[0129] When the steam bubbles in the pressurizer collapse due to an increase in pressure, water flows into the absorber tube, rapidly reducing reactivity.
[0130] Another device for stopping the pump at low water levels can be a dynamically heated Curie point valve. This valve is connected to the same circuit as the pump when it is dynamic current flow. A paramagnetic material is dynamically heated by (or is) an element connected to this circuit, and when the valve is submerged in the plant water, its temperature is maintained well below the Curie point. When the water level drops, the element is only cooled by the steam, so that its temperature rises above the Curie point and the paramagnetic material is no longer attracted to the magnet. This allows a spring to open the valve, and it is foreseen that the actuator of the valve (in the steam) is placed some distance above the body of the valve to allow water to enter the pipe.
[0131] A tank containing moderating fluid may be positioned above the level of the tube with a valved fluid connection to the absorber tube so that moderating fluid can be injected from the tank into the absorber tube. An additional pump may be installed along the fluid path between the tank and the tube to force the moderating fluid into the tube. A source of additional absorbent material, such as boron, may be provided within or fluidly connected to the tank to help rapidly reduce reactivity in emergency situations. For example, boric acid may be added to the water in the tank. Alternatively, pellets of boron may be dripped into the tube in an emergency.
[0132] The system described herein has the advantage that the location and geometry of the neutron absorbers may be adapted to achieve specific effects. The system is less mechanically complex than existing control rod systems and is inherently safer as it is not possible to create a criticality accident by ejecting a rod or raising a false rod. The use of liquid-filled tubes means that control of reactivity is achieved using inlet and outlet pipes, which allows for much greater design layout freedom than current systems based on moving solid rods.
[0133] The reactivity control system is designed so that it is not capable of causing a reactivity insertion accident, it does not suffer a rod ejection accident (rod not present) and passive mechanical means (thermal expansion actuated brakes, clutches and valves) prevent false commands from taking the reactor to criticality when the reactor is cold.
[0134] The system is not subject to failure cases such as stuck rods or any other problems due to mechanical friction, but it is inherently fail-safe as any malfunction will allow water to return to the system into the absorber tube.
[0135] Elimination of the ability of the control system to add undesirable reactivity means that safety graded neutron detectors and high integrity control systems are not required.
[0136] · The system will be much simpler than current CRDM systems since it is controlled by a limited number of pumps due to the many-to-one relationship between absorbers and pumps.
[0137] The system takes up less space than conventional control rods, which require space to retract and a longer rod to transmit the movement.
[0138] The system allows absorbers to be placed where they are most effective and removed from areas where they are not needed. For example, absorbers can only be placed in the center of the core. This is not possible with control rods, which need to be able to be inserted and retracted.
[0139] · Absorber tubes can be incorporated into the fuel assemblies of the fuel rods. Conventional control rods are positioned in tubes within the fuel assemblies and can fall out while handling the fuel assemblies. If the absorber tubes are part of the fuel assemblies, the system can make fuel handling simpler since each assembly effectively has a control rod inserted into it. When the fuel assemblies are placed underwater, the absorber tubes are in place to prevent unplanned criticality, which could be a risk with conventional fuel assemblies if the control rods were placed in the wrong place during refurbishment.
[0140] · The preferred design uses steam to drain the absorber rod. In practice, other materials may be used, provided they are in gas form between room temperature and 350 degrees, they do not dissolve excessively in water, it does not produce dangerous isotopes under irradiation, and they are not strong neutron moderators or absorbers. Nitrogen or helium are preferred. The fluid used to drain the moderating fluid in the tube may have a significantly lower moderating effect, for example by having a lower density, such as steam compared to water, or by having a neutron scattering cross section below 10% of the cross section of the first fluid.
[0141] · Variable height and length tubes may be used to selectively vary absorption at different heights in the core. This allows the reactivity in different parts of the core to be controlled independently to control the burnup rate of the fuel rods. For example, in a BWR, the burnup rate at the top of the core may be different from the bottom due to differences in the volume of steam voids present during operation.
[0142] Although the present invention has been described in conjunction with the exemplary embodiment set forth above, many equivalent modifications and variations will be apparent to those skilled in the art given this disclosure. Accordingly, the exemplary embodiment of the invention described above is considered to be illustrative rather than limiting. Various modifications to the described embodiment may be made without departing from the spirit and scope of the invention. [Explanation of symbols]
[0143] 100 Pressurized reactor vessel 110 Control Rod Drive Mechanism 120 Closure head assembly 130 Closure Head 140 Reactor vessel body 150 Core 160 Inlet nozzle 165 Exit nozzle 170 Core Barrel 175 Core Support 200 Light Water Reactor 210 Fuel assembly 220 Absorption tube 230 Open top end, absorption tube 240 Space in the primary circuit 250 Pipe Network 260 Pump 270 Control Orifice 510 Fuel assembly 520 Exit 530 Introduction mechanism 540 Flow Restriction Ring 600 fuel assembly 601 Fuel Rod 602 Absorption tube 603 Supply and / or storage rods 504 Instrumented Rod 701 Absorbing Plate A, B Cross section of the absorber tube n High energy neutrons
Claims
1. 1. A reactor control system for a nuclear reactor, comprising: one or more hollow tubes including a neutron absorbing material, each of the one or more hollow tubes having a first end and a second end; a pump operable to control a volume of a first fluid within the hollow tube, the first fluid comprising a neutron moderator; and A nuclear reactor control system comprising: the pump is configured to be controlled based on a level of reactivity within the reactor; the second end of the hollow tube is in fluid communication with a second fluid, the neutron moderating power of the second fluid being less than 10% of the neutron moderating power of the first fluid; the first fluid is water and the second fluid is steam; the pump is configured to draw the first fluid from the first ends of each of the hollow tubes by driving the first fluid through the pump.
2. 2. The nuclear reactor control system of claim 1, wherein the pump is a pump impeller.
3. 3. A reactor control system as claimed in claim 1 or 2, wherein said reactor control system includes means for rapidly filling said hollow tube with a third fluid.
4. 4. The nuclear reactor control system of claim 3, wherein the third fluid comprises the first fluid and an additional neutron absorbing material.
5. 5. The reactor control system of claim 1, further comprising a control orifice between the first end of the hollow tube and the pump, the control orifice being in fluid communication with a reservoir of the first fluid.
6. 6. The nuclear reactor control system of claim 1, wherein the second end of the hollow tube is in fluid communication with a steam space, the steam space being in fluid communication with a reactor pressure vessel of the nuclear reactor.
7. 7. A reactor control system as claimed in any one of claims 1 to 6, wherein the pump is fitted with a mechanism for rapidly stopping the pump by controlling the amount of the first fluid in response to a signal, the mechanism including one or more of a brake on the motor shaft, a magnetic coupling between an impeller and the motor shaft, a brake resistor in a pump power controller, a further valve or a fluid device operable to add further fluid to the hollow tube.
8. 8. The reactor control system of claim 1, further comprising an interlock system for preventing the pump from reducing the amount of the first fluid inside the hollow tube until the temperature of the reactor reaches a predetermined threshold temperature.
9. 9. A reactor control system as claimed in any one of claims 1 to 8, wherein the reactor control system comprises a sensor operable to provide a measurement indicative of the depth of the first fluid inside the hollow tube, and the pump is controllable to maintain the required depth of the first fluid at a predetermined level.
10. 10. A reactor control system as claimed in any one of claims 1 to 9, wherein at least one tube comprises an absorbent material on a portion of the length of the tube, whereby when the tube is fitted to a core of the nuclear reactor, the reactivity of a first portion of the core is controlled independently from a second portion of the core.
11. A reactor control system according to any one of claims 1 to 10, wherein the hollow tube has a rectangular or closed cross section.
12. 12. The reactor control system of claim 1, wherein when there is more than one hollow tube, the reactor control system includes a many-to-one connection manifold configured to fluidly connect two or more of the hollow tubes with an outlet pipe of the reactor.
13. A nuclear reactor comprising a reactor control system according to any one of claims 1 to 12.
14. 14. The nuclear reactor of claim 13 when dependent on claim 12, wherein the connecting manifold forms a structural component of a core support for the reactor to provide structural support to both the core itself and the fuel assemblies within the core.
15. The fuel assemblies of a nuclear reactor one or more fuel rods containing fissile material; one or more hollow tubes; A connection manifold; It is equipped with 15. The nuclear reactor of claim 13 or claim 14 when dependent on claim 12, wherein the connection manifold comprises structure configured to position the fuel rods of the fuel assemblies.
16. 1. A method for controlling a nuclear reactor, comprising: providing an absorptive hollow tube containing neutron absorbing material within a core of the nuclear reactor; providing a pump connected to the hollow tube; driving a moderating fluid through the pump to control an amount of moderating fluid inside each of the hollow tubes by drawing the moderating fluid from each of the hollow tubes to maintain a desired level of reactivity of the reactor core, the moderating fluid being water; A method for providing the same.
Citation Information
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