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Patent · US10446281B2 · B2 · US

Detection apparatus and method of detecting the neutron absorption capability of a control element of a nuclear installation

(11) Publication number
US10446281B2
(21) Application number
15/677,098
(22) Filing date
2017-08-15
(30) Priority date
2017-08-15
(43) Publication date
2019-10-15
(45) Date of grant
2019-10-15
(51) IPC
B25J 9/16; G21C 17/10; G21C 17/104; G21C 19/20; G21C 7/08
(52) CPC
  • G21C Nuclear reactors: 17/104, 17/10, 19/207, 7/08
  • B25J Manipulators; chambers provided with manipulation devices: 9/1684
  • Y02E Reduction of greenhouse gas [ghg] emissions, related to energy generation, transmission or distribution: 30/30
  • Y10S Technical subjects covered by former uspc cross-reference art collections [xracs] and digests: 901/44
(73) Assignee
Westinghouse Electric Co LLC
(72) Inventors
David L. Stucker
(54) Title
Detection apparatus and method of detecting the neutron absorption capability of a control element of a nuclear installation
(57) Abstract

A detection apparatus is usable to detect the neutron absorption capability of a control element of a nuclear installation and includes a neutron radiograph apparatus and a robot apparatus. The neutron radiograph apparatus includes a neutron emission source of variable strength, a detector array, a mask apparatus and a positioning robot all under the control of a central processor and data acquisition unit. The neutron emission source is advantageously switchable between an ON state and OFF state with variable source strength in the ON state, which avoids any need for shielding beyond placing the neutron emission source in an inspection pool at the nuclear plant site including but not limited to the spent fuel or shipping cask laydown pools. The neutron emission source is situated at one side of a wing of the control element and generates a neutron stream, the detector array is situated on an opposite side of a wing, and the neutron emission source and detector array are robotically advanced along the wing. The detector array is monitored in real time, and various masks of the mask apparatus can be positioned between the neutron emission source and the detector array to more specifically identify the position on the blade where the neutrons are passing through.

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Claims (20)

  1. A detection apparatus usable to detect a neutron absorption capability of a control element of a nuclear installation, the detection apparatus comprising: a processor apparatus comprising a processor and a storage; a robot apparatus in communication with the processor apparatus and comprising a number of manipulators; a neutron radiograph apparatus comprising an neutron emission source, a detector array, and a mask apparatus, the neutron radiograph apparatus being structured to receive the control element generally between the neutron emission source and the detector array; the neutron emission source being switchable between an ON state and an OFF state, the neutron emission source in the ON state being in an electrically energized condition structured to generate a neutron stream, the neutron emission source in the OFF state being in an electrically de-energized condition structured to output no meaningful neutron stream; the detector array being structured to detect an unabsorbed portion the neutron stream that passes without being absorbed through the control element, the detector array being further structured to generate an output signal that is representative of the unabsorbed portion the neutron stream; and the mask apparatus being movable by at least a first manipulator of the number of manipulators among a number of positions, a position of the number of positions being that in which the mask apparatus is disposed at least partially between the neutron emission source and the detector array, another position of the number of positions being that in which the mask apparatus is removed from between the neutron emission source and the detector array.
  2. The detection apparatus of claim 1 wherein the mask apparatus comprises a mask system having an orifice formed therein, the mask system being structured to generally resist the passage therethrough of the neutron stream but permitting passage of at least a part of the neutron stream through the orifice.
  3. The detection apparatus of claim 2 wherein the orifice has a number of physical dimensions in a number of directions transverse to the part of the neutron stream, and wherein the robot apparatus is operable to change at least one physical dimension of the number of physical dimensions between a first size and a second size different than the first size.
  4. The detection apparatus of claim 3 wherein the mask system comprises a first mask having a first opening formed therein and a second mask having a second opening formed therein, the robot apparatus being operable to manipulate at least one of the first mask and the second mask to overlie at least a portion of at least one of the first opening and the second opening with at least a portion of the other of the first opening and the second opening to form the orifice from the overlying at least portions of the first and second openings.
  5. The detection apparatus of claim 4 wherein whereby movement of one of the first mask and the second mask with respect to the other of the first mask and the second mask changes the at least one physical dimension between the first size and the second size.
  6. The detection apparatus of claim 4 wherein the robot apparatus is operable to at least partially receive at least one of the first mask and the second mask between the neutron emission source and the detector array separately from the other of the first mask and the second mask.
  7. The detection apparatus of claim 4 wherein at least one of the first opening and the second opening has a length and a width that are controlled by the robot apparatus at the direction of the processor apparatus.
  8. The detection apparatus of claim 4 wherein at least one of the first mask and the second mask is of a generally plate-like configuration.
  9. The detection apparatus of claim 1 wherein the neutron emission source comprises an accelerator of variable strength which, in the ON state of the neutron emission source, is structured to accelerate light atomic ions, typically, but not limited to hydrogen isotopes, with variable beam current and acceleration velocity so as to induce nuclear fusion reactions in a target on which the beam is focused and thereby emit neutrons into the source assembly.
  10. The detection apparatus of claim 1 wherein the mask apparatus in the position disposed at least partially between the neutron emission source and the detector array is structured to at least one of block and absorb at least a portion of the neutron stream.
  11. A method of operating the detection apparatus of claim 1 to detect a neutron absorption capability of a control element of a nuclear installation wherein the nuclear installation has a pool of water, the method comprising: receiving into the pool of water the neutron emission source in the OFF state; submerging the neutron emission source in the OFF state in the pool of water to a predetermined water depth; and switching the neutron emission source from the OFF state to the ON state when the depth of the neutron emission source in the pool of water meets or exceeds the predetermined water depth to enable safe operation of the neutron emission source.
  12. The method of claim 11, further comprising: receiving the detector array and the mask apparatus into the pool of water; receiving at least a portion of the control element generally between the neutron emission source and the detector array; and monitoring the detector array for the possible outputting therefrom of an output signal that would be representative of an unabsorbed portion the neutron stream passing without being absorbed through the at least portion of the control element.
  13. The method of claim 12, further comprising moving at least one of the neutron radiograph apparatus and the control element with respect to the other of the neutron radiograph apparatus and the control element while performing the monitoring.
  14. The method of claim 12, further comprising: receiving from the detector array an output signal that is representative of an unabsorbed portion the neutron stream passing without being absorbed through the at least portion of the control element; and responsive to the receiving, processing and reporting the condition of the control element.
  15. The method of claim 14 wherein the mask apparatus comprises a mask system having an orifice formed therein, the mask system being structured to strongly resist the passage therethrough of the neutron stream but permitting passage of at least a part of the neutron stream through the orifice, and further comprising: receiving the output signal when the mask apparatus is in the another position removed from between the neutron emission source and the detector array; responsive to the receiving, moving the mask apparatus from the another positions to the position in which the mask apparatus is disposed at least partially between the neutron emission source and the detector array; and monitoring the detector array for the possible outputting therefrom of another output signal that would be representative of at least a part of the unabsorbed portion of the neutron stream passing through the orifice.
  16. The method of claim 15, further comprising: moving at least one of the control element and the orifice among a plurality of positions of the orifice with respect to the control element; detecting a number of instances of the another output signal in a number of positions from among the plurality of positions; and recording the control element wing inspection elevation, neutron source strength, mask configuration, measured detector array response and expected detector array response.
  17. The method of claim 16 wherein the orifice has a number of physical dimensions in a number of directions transverse to the part of the neutron stream, and further comprising: detecting the number of instances of the another output signal when a physical dimension of the number of physical dimensions is of a first size; changing the physical dimension from the first size to a second size smaller than the first size; moving at least one of the control element and the orifice in the second size among a plurality of further positions within the number of positions; detecting a number of further instances of the another output signal in a number of further positions from among the plurality of further positions; and recording the number of further positions.
  18. The method of claim 17, further comprising: positioning the neutron emission source in the ON state at least a predetermined distance from the detector array; and employing the water in the pool to slow the neutron stream sufficiently that the unabsorbed portion is detectable by the detector array.
  19. The method of claim 17 wherein the mask system comprises a first mask having a first opening formed therein and a second mask having a second opening formed therein, at least one of the first opening and the second opening having a length and a width that are controlled by the mask robot and control system, further comprising: manipulating at least one of the first mask and the second mask to overlie at least a portion of at least one of the first opening and the second opening with at least a portion of the other of the first opening and, the second opening to form the orifice from the overlying at least portions of the first and second openings; moving one of the first mask and the second mask with respect to the other of the first mask and the second mask to at least one of: change the at least one physical dimension between the first size and the second size; and move the position of the orifice with respect to the control element among the plurality of positions.
  20. The method of claim 19, further comprising operating the robot apparatus to at least partially receive at least one of the first mask and the second mask between the neutron emission source and the detector array separately from the other of the first mask and the second mask.

Description

The disclosed and claimed concept relates generally to nuclear power generation equipment and, more particularly, to a detection apparatus and a method of use that are intended to evaluate the neutron absorption capability of control elements of BWR and PWR nuclear reactors.

Various types of nuclear power generation systems are known to exist and are particularly known to include boiling water reactors (BWRs) and pressurized water reactors (PWRs). A BWR includes, among other components, a number of blades that are used as control elements that absorb neutrons and control the nuclear reaction within a reactor of a nuclear installation. As employed herein, the expression “a number of” and variations thereof shall refer broadly to any non-zero quantity, including a quantity of one. One such blade is depicted in an exemplary fashion in FIG. 1 at the numeral 6.

Such blades and are configured to be of an elongated cruciform shape having a hub and four wings that protrude from the hub. The wings are structured to each be received between adjacent pairs of fuel assemblies to absorb neutrons in the water within which the fuel assemblies are situated. During normal operation of the BWR, the a substantial fraction of the blades typically are at least partially withdrawn from being situated between the fuel assemblies and can be, as needed, advanced further into a position situated between the adjacent pairs of fuel assemblies.

Citations (2)

  • US4451428A
  • DE102008030416A1
Record as JSON
{
  "publication_number": "US10446281B2",
  "country": "US",
  "kind": "B2",
  "title": "Detection apparatus and method of detecting the neutron absorption capability of a control element of a nuclear installation",
  "abstract": "A detection apparatus is usable to detect the neutron absorption capability of a control element of a nuclear installation and includes a neutron radiograph apparatus and a robot apparatus. The neutron radiograph apparatus includes a neutron emission source of variable strength, a detector array, a mask apparatus and a positioning robot all under the control of a central processor and data acquisition unit. The neutron emission source is advantageously switchable between an ON state and OFF state with variable source strength in the ON state, which avoids any need for shielding beyond placing the neutron emission source in an inspection pool at the nuclear plant site including but not limited to the spent fuel or shipping cask laydown pools. The neutron emission source is situated at one side of a wing of the control element and generates a neutron stream, the detector array is situated on an opposite side of a wing, and the neutron emission source and detector array are robotically advanced along the wing. The detector array is monitored in real time, and various masks of the mask apparatus can be positioned between the neutron emission source and the detector array to more specifically identify the position on the blade where the neutrons are passing through.",
  "claims": [
    "1. A detection apparatus usable to detect a neutron absorption capability of a control element of a nuclear installation, the detection apparatus comprising: a processor apparatus comprising a processor and a storage; a robot apparatus in communication with the processor apparatus and comprising a number of manipulators; a neutron radiograph apparatus comprising an neutron emission source, a detector array, and a mask apparatus, the neutron radiograph apparatus being structured to receive the control element generally between the neutron emission source and the detector array; the neutron emission source being switchable between an ON state and an OFF state, the neutron emission source in the ON state being in an electrically energized condition structured to generate a neutron stream, the neutron emission source in the OFF state being in an electrically de-energized condition structured to output no meaningful neutron stream; the detector array being structured to detect an unabsorbed portion the neutron stream that passes without being absorbed through the control element, the detector array being further structured to generate an output signal that is representative of the unabsorbed portion the neutron stream; and the mask apparatus being movable by at least a first manipulator of the number of manipulators among a number of positions, a position of the number of positions being that in which the mask apparatus is disposed at least partially between the neutron emission source and the detector array, another position of the number of positions being that in which the mask apparatus is removed from between the neutron emission source and the detector array.",
    "2. The detection apparatus of claim 1 wherein the mask apparatus comprises a mask system having an orifice formed therein, the mask system being structured to generally resist the passage therethrough of the neutron stream but permitting passage of at least a part of the neutron stream through the orifice.",
    "3. The detection apparatus of claim 2 wherein the orifice has a number of physical dimensions in a number of directions transverse to the part of the neutron stream, and wherein the robot apparatus is operable to change at least one physical dimension of the number of physical dimensions between a first size and a second size different than the first size.",
    "4. The detection apparatus of claim 3 wherein the mask system comprises a first mask having a first opening formed therein and a second mask having a second opening formed therein, the robot apparatus being operable to manipulate at least one of the first mask and the second mask to overlie at least a portion of at least one of the first opening and the second opening with at least a portion of the other of the first opening and the second opening to form the orifice from the overlying at least portions of the first and second openings.",
    "5. The detection apparatus of claim 4 wherein whereby movement of one of the first mask and the second mask with respect to the other of the first mask and the second mask changes the at least one physical dimension between the first size and the second size.",
    "6. The detection apparatus of claim 4 wherein the robot apparatus is operable to at least partially receive at least one of the first mask and the second mask between the neutron emission source and the detector array separately from the other of the first mask and the second mask.",
    "7. The detection apparatus of claim 4 wherein at least one of the first opening and the second opening has a length and a width that are controlled by the robot apparatus at the direction of the processor apparatus.",
    "8. The detection apparatus of claim 4 wherein at least one of the first mask and the second mask is of a generally plate-like configuration.",
    "9. The detection apparatus of claim 1 wherein the neutron emission source comprises an accelerator of variable strength which, in the ON state of the neutron emission source, is structured to accelerate light atomic ions, typically, but not limited to hydrogen isotopes, with variable beam current and acceleration velocity so as to induce nuclear fusion reactions in a target on which the beam is focused and thereby emit neutrons into the source assembly.",
    "10. The detection apparatus of claim 1 wherein the mask apparatus in the position disposed at least partially between the neutron emission source and the detector array is structured to at least one of block and absorb at least a portion of the neutron stream.",
    "11. A method of operating the detection apparatus of claim 1 to detect a neutron absorption capability of a control element of a nuclear installation wherein the nuclear installation has a pool of water, the method comprising: receiving into the pool of water the neutron emission source in the OFF state; submerging the neutron emission source in the OFF state in the pool of water to a predetermined water depth; and switching the neutron emission source from the OFF state to the ON state when the depth of the neutron emission source in the pool of water meets or exceeds the predetermined water depth to enable safe operation of the neutron emission source.",
    "12. The method of claim 11, further comprising: receiving the detector array and the mask apparatus into the pool of water; receiving at least a portion of the control element generally between the neutron emission source and the detector array; and monitoring the detector array for the possible outputting therefrom of an output signal that would be representative of an unabsorbed portion the neutron stream passing without being absorbed through the at least portion of the control element.",
    "13. The method of claim 12, further comprising moving at least one of the neutron radiograph apparatus and the control element with respect to the other of the neutron radiograph apparatus and the control element while performing the monitoring.",
    "14. The method of claim 12, further comprising: receiving from the detector array an output signal that is representative of an unabsorbed portion the neutron stream passing without being absorbed through the at least portion of the control element; and responsive to the receiving, processing and reporting the condition of the control element.",
    "15. The method of claim 14 wherein the mask apparatus comprises a mask system having an orifice formed therein, the mask system being structured to strongly resist the passage therethrough of the neutron stream but permitting passage of at least a part of the neutron stream through the orifice, and further comprising: receiving the output signal when the mask apparatus is in the another position removed from between the neutron emission source and the detector array; responsive to the receiving, moving the mask apparatus from the another positions to the position in which the mask apparatus is disposed at least partially between the neutron emission source and the detector array; and monitoring the detector array for the possible outputting therefrom of another output signal that would be representative of at least a part of the unabsorbed portion of the neutron stream passing through the orifice.",
    "16. The method of claim 15, further comprising: moving at least one of the control element and the orifice among a plurality of positions of the orifice with respect to the control element; detecting a number of instances of the another output signal in a number of positions from among the plurality of positions; and recording the control element wing inspection elevation, neutron source strength, mask configuration, measured detector array response and expected detector array response.",
    "17. The method of claim 16 wherein the orifice has a number of physical dimensions in a number of directions transverse to the part of the neutron stream, and further comprising: detecting the number of instances of the another output signal when a physical dimension of the number of physical dimensions is of a first size; changing the physical dimension from the first size to a second size smaller than the first size; moving at least one of the control element and the orifice in the second size among a plurality of further positions within the number of positions; detecting a number of further instances of the another output signal in a number of further positions from among the plurality of further positions; and recording the number of further positions.",
    "18. The method of claim 17, further comprising: positioning the neutron emission source in the ON state at least a predetermined distance from the detector array; and employing the water in the pool to slow the neutron stream sufficiently that the unabsorbed portion is detectable by the detector array.",
    "19. The method of claim 17 wherein the mask system comprises a first mask having a first opening formed therein and a second mask having a second opening formed therein, at least one of the first opening and the second opening having a length and a width that are controlled by the mask robot and control system, further comprising: manipulating at least one of the first mask and the second mask to overlie at least a portion of at least one of the first opening and the second opening with at least a portion of the other of the first opening and, the second opening to form the orifice from the overlying at least portions of the first and second openings; moving one of the first mask and the second mask with respect to the other of the first mask and the second mask to at least one of: change the at least one physical dimension between the first size and the second size; and move the position of the orifice with respect to the control element among the plurality of positions.",
    "20. The method of claim 19, further comprising operating the robot apparatus to at least partially receive at least one of the first mask and the second mask between the neutron emission source and the detector array separately from the other of the first mask and the second mask."
  ],
  "description_excerpt": "The disclosed and claimed concept relates generally to nuclear power generation equipment and, more particularly, to a detection apparatus and a method of use that are intended to evaluate the neutron absorption capability of control elements of BWR and PWR nuclear reactors.\n\nVarious types of nuclear power generation systems are known to exist and are particularly known to include boiling water reactors (BWRs) and pressurized water reactors (PWRs). A BWR includes, among other components, a number of blades that are used as control elements that absorb neutrons and control the nuclear reaction within a reactor of a nuclear installation. As employed herein, the expression “a number of” and variations thereof shall refer broadly to any non-zero quantity, including a quantity of one. One such blade is depicted in an exemplary fashion in FIG. 1 at the numeral 6.\n\nSuch blades and are configured to be of an elongated cruciform shape having a hub and four wings that protrude from the hub. The wings are structured to each be received between adjacent pairs of fuel assemblies to absorb neutrons in the water within which the fuel assemblies are situated. During normal operation of the BWR, the a substantial fraction of the blades typically are at least partially withdrawn from being situated between the fuel assemblies and can be, as needed, advanced further into a position situated between the adjacent pairs of fuel assemblies.",
  "cpc": [
    "G21C 17/104",
    "B25J 9/1684",
    "G21C 17/10",
    "G21C 19/207",
    "G21C 7/08",
    "Y02E 30/30",
    "Y10S 901/44"
  ],
  "ipc": [
    "B25J 9/16",
    "G21C 17/10",
    "G21C 17/104",
    "G21C 19/20",
    "G21C 7/08"
  ],
  "assignees": [
    "Westinghouse Electric Co LLC"
  ],
  "inventors": [
    "David L. Stucker"
  ],
  "filing_date": "2017-08-15",
  "publication_date": "2019-10-15",
  "grant_date": "2019-10-15",
  "priority_date": "2017-08-15",
  "application_number": "US-201715677098-A",
  "family_id": "65360686",
  "cited_by_count": 0,
  "citations": [
    "US4451428A",
    "DE102008030416A1"
  ]
}

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