![]() Lock insert of nuclear fuel assembly upper fixture, and separating/coupling system of nuclear fuel a
专利摘要:
A lock insert of a nuclear fuel assembly upper fixture is disclosed. The present invention relates to the lock insert, which is coupled to a guide hole formed at a channel plate of the nuclear fuel assembly upper fixture so as to support the upper fixture, and includes a hollow body and an insertion part provided at the upper part of the body and inserted in the guide hole, wherein the insertion part varies in circumference size so as to be inserted into the guide hole. A separating/coupling system of the nuclear fuel assembly upper fixture, including the lock insert of the nuclear fuel assembly upper fixture, is disclosed. The present invention comprises: the upper fixture; the channel plate provided at the lower part of the upper fixture so as to allow cooling water to flow; the guide hole formed at the channel plate; the hollow lock insert including the insertion part to be inserted into the guide hole; and a separating member for separating the lock insert from the guide hole, wherein the insertion part of the lock insert varies in circumference size so as to be inserted in or separated from the guide hole. Additionally, the present invention simplifies an operation for disassembling and reassembling the nuclear fuel assembly upper fixture and the lock insert so as to make the operation convenient and reduce man-hours, thereby being effective in maintaining and repairing the nuclear fuel assembly. 公开号:EP3709311A1 申请号:EP17931122.0 申请日:2017-11-17 公开日:2020-09-16 发明作者:Su Pil RYU;Seong Soo Kim;Ba Leum KIM;Joo Hong CHUN;Nam Gyu Park;Jong Sung Yoo 申请人:Kepco Nuclear Fuel Co Ltd; IPC主号:G21C3-00
专利说明:
[0001] The present invention relates generally to a lock insert of a nuclear fuel assembly upper fixture, and a separating/coupling system of the nuclear fuel assembly upper fixture, including same and, more particularly, to a fastening structure of a top nozzle and a lock insert for improving a performance of disassembling and reassembling the nuclear fuel assembly top nozzle. Background Art [0002] A nuclear reactor is a device made to be used for various purposes such as generating heat by artificially controlling a fission chain reaction of fissile material, producing radioisotopes and plutonium, or forming a radiation field. [0003] More specifically, in typical light water reactors, enriched uranium that a ratio of uranium-235 is increased to 2-5% is used. In order for nuclear fuel to be used in nuclear reactors, uranium is processed into cylindrical pellets weighing about 5g. Such pellets are charged into a zircaloy cladding tube, then one spring and helium gas are inserted into the cladding tube, and then a fuel rod is manufactured by welding an upper end cap of the cladding tube. The fuel rods finally form a nuclear fuel assembly and are burned by nuclear reactions in the reactor. [0004] FIG. 1 is a view showing a typical nuclear fuel assembly. With reference to FIG. 1, a nuclear fuel assembly 1 includes a skeleton, which is composed of a top nozzle 2, a bottom nozzle 4, spacer grids 6, guide thimbles 8, an instrumentation tube 12, and the like, and fuel rods inserted into and supported by the spacer grids 6. [0005] The spacer grids 6 are arranged in the nuclear fuel assembly 1 in a number of about 10 to 13 from an upper side to a lower side and are welded with the guide thimbles 8 having length of 4 m. Assembling the nuclear fuel assembly 1 is completed by charging the fuel rods into the skeleton and then attaching and fixing the top nozzle 2 and the bottom nozzle 4. In other words, the nuclear fuel assembly 1 is arranged such that the fuel rods are maintained at a constant distance between the top nozzle 2 and the bottom nozzle 4 by the spacer grids 6 and the guide thimbles 8 as shown in FIG. 1. [0006] FIG. 2 is a view illustrating a typical top nozzle 2. With reference to FIG. 2, the top nozzle 2 includes a flow channel plate 24, and the flow channel plate 24 includes a instrumentation fixing hole 26 to which the instrumentation tube is fixed, guide holes 22 to which top nozzle is coupled, and flow channel holes 28 through which coolant flows. [0007] During the operation of the reactor, hydraulic uplift force due to the flow of coolant may be applied to the nuclear fuel assembly 1, thereby causing the assembly to be raised or vibrated. In addition, the nuclear fuel assembly may be subjected to an axial length change due to thermal expansion by an increase in temperature or due to irradiation growth and creep of the nuclear fuel cladding tube by long-term neutron irradiation. At this time, the top nozzle 2 is coupled to the guide thimbles to support a load of an axial direction, thereby functioning to maintain mechanical and structural stability of the nuclear fuel assembly. [0008] On the other hand, the guide thimbles are usually coupled to the flow channel plate 24 together with the top nozzle insert to be firmly coupled to the flow channel plate 24 and are configured to be engaged into the top nozzle insert by a bulging process while coupling the top nozzle insert to the flow channel plate 24. [0009] FIG. 3 is a view showing an above-mentioned fastening structure of the top nozzle and the top nozzle insert generally used. The fastening structure 30 of the top nozzle and the top nozzle insert is configured such that the top nozzle insert 31 is inserted into the guide hole 22 provided in the flow channel plate 24 at a side below the guide hole 22, and in order to prevent the coupling of the top nozzle insert from being released, a lock tube 33 is inserted into an inner circumferential surface of the top nozzle insert at a side above the guide hole 22, thereby being fastened. [0010] However, when the top nozzle and the guide thimbles are separated from each other in a state of the above-described conventional configuration, it is not easy to dismantle and difficult to work remotely, because the top nozzle insert 31 and the lock tube 33 are provided being inserted into the guide hole 22 of the flow channel plate. Disclosure Technical Problem [0011] Accordingly, the present invention has been made to solve the above-described problems, and an object thereof is to provide a fastening structure of a top nozzle and a lock insert for improving a performance of disassembling and reassembling the top nozzle of a nuclear fuel assembly. Technical Solution [0012] In order to accomplish the above objective, there may be provided a lock insert of a nuclear fuel assembly top nozzle, the lock insert being configured to support the nuclear fuel assembly top nozzle by being coupled to a guide hole provided in a flow channel plate of the top nozzle, the lock insert including: a body in a hollow shape, and an insertion part provided on a top portion of the body and configured to be inserted into the guide hole, wherein a circumference of the insertion part may be variable in size, thereby being capable of being inserted into the guide hole. [0013] The insertion part may include: a first latching member fixed by being brought into contact with a top surface of the flow channel plate; and a second latching member fixed by being brought into contact with a bottom surface of the flow channel plate. [0014] In addition, the first latching member may include a latching groove, and a protruding member protrudingly provided on the top surface of the flow channel plate may be inserted into the latching groove. [0015] The insertion part may be provided with at least one predetermined interval along a circumferential direction thereof at a position between the first latching member and the second latching member, and the circumference of the insertion part may be variable in size as much as the predetermined interval. [0016] The insertion part may be provided with at least one insertion member at a predetermined interval along a circumferential direction thereof at a position between the first latching member and the second latching member, and the circumference of the insertion part may be variable in size as much as the predetermined interval. [0017] Meanwhile, there may be provided a separating and coupling system of a nuclear fuel assembly top nozzle, the system including: a top nozzle; a flow channel plate provided at a lower portion of the top nozzle and allowing coolant to pass therethrough; a guide hole provided in the flow channel plate; a lock insert in a hollow shape including an insertion part configured to be inserted into the guide hole; and a separation member configured to separate the lock insert from the guide hole, wherein a circumference of the insertion part of the lock insert may be variable in size, thereby being capable of being inserted into and separated from the guide hole. [0018] In addition, the insertion part may include: a first latching member fixed by being brought into contact with a top surface of the flow channel plate; and a second latching member fixed by being brought into contact with a bottom surface of the flow channel plate. [0019] In addition, the first latching member may include a latching groove; and a protruding member protrudingly provided on the top surface of the flow channel plate may be inserted into the latching groove. [0020] In addition, the insertion part may be provided with at least one predetermined interval along a circumferential direction thereof at a position between the first latching member and the second latching member; and the circumference of the insertion part may be variable in size as much as the predetermined interval. [0021] In addition, the insertion part may be provided with at least one insertion member at a predetermined interval along a circumferential direction thereof at a position between the first latching member and the second latching member; and the circumference of the insertion part may be variable in size as much as the predetermined interval. Advantageous Effects [0022] As described above, according to the present invention, disassembly and reassembly of the top nozzle of the nuclear fuel assembly and the lock insert are simplified, thereby simplifying and reducing the number of processes involved therein. Accordingly, the system is effective for maintenance and repair of the nuclear fuel assembly. [0023] In addition, the number of parts is reduced to increase the handleability, so that it is easy to work remotely for repairing a nuclear fuel assembly. [0024] The effects of the present invention are not limited to those described above, and other effects not mentioned will be clearly recognized by those skilled in the art from the following description. Description of Drawings [0025] FIG. 1 is a view showing an overall configuration of a typical nuclear fuel assembly. FIG. 2 is a view showing a top nozzle of a typical nuclear fuel assembly. FIG. 3 is a view showing a fastening structure of the top nozzle and a top nozzle insert of a typical nuclear fuel assembly. FIG. 4 is a view showing a lock insert of a nuclear fuel assembly top nozzle according to an embodiment of the present invention. FIG. 5 is a view showing a fastening structure of a lock insert of a nuclear fuel assembly top nozzle according to another embodiment of the present invention. FIG. 6 is a view showing an overall configuration of a separating and coupling system of a top nozzle of a nuclear fuel assembly according to still another embodiment of the present invention.Best Mode [0026] Hereinafter, with reference to the drawings will be described the present invention in more detail. It should be noted that the same elements in drawings are denoted by the same numerals wherever possible. In addition, descriptions of well-known functions and configurations that may unnecessarily obfuscate the subject matter of the present invention will be omitted. [0027] In addition, various changes may be made to the embodiments described below. The examples described below are not intended to be limiting the embodiments but should be understood to include all modifications, equivalents, and substitutes therefor. [0028] Herebelow, descriptions will be given logically according to the drawings. [0029] FIG. 2 is a view showing a top nozzle of a typical nuclear fuel assembly, and FIG. 4 is a view showing a lock insert of a nuclear fuel assembly top nozzle according to an embodiment of the present invention. [0030] With reference to FIG. 2, the top nozzle 2 of the typical nuclear fuel assembly includes a guide hole 22, a flow channel plate 24, an instrumentation fixing hole 26, and a flow channel hole 28, and is configured to be a structure in which such holes are provided in the flow channel plate 24. Hereinafter, descriptions overlapping with the above description with respect to each of components will be omitted. [0031] With reference to FIG. 4, the lock insert 40 of the present embodiment includes an insertion part 410 and a body 430, wherein the insertion part 410 includes a first latching member 411, a second latching member 413, and an insertion member 415. [0032] On the other hand, taking a look at each of the components or coupling between the components, the body 430 is provided in a hollow shape for supporting the top nozzle, and the insertion part 410 is provided on a top portion of the body 430 and configured to be inserted into the guide hole 22. [0033] More specifically, the circumference of the insertion part 410 is configured to be variable in size, thereby being inserted into the guide hole 22. Therefore, the insertion part 410 may be made of an elastic material so that the circumference thereof may vary in size or may be configured to have a structure in which at least one predetermined interval is provided, whereby the circumference of the insertion part is variable in size as much as the predetermined interval. Alternatively, the insertion part 410 may be configured to have a structure in which at least one insertion member 415 is provided at a predetermined interval along the circumferential direction, whereby the circumference of the insertion part is varied in size as much as the predetermined intervals between the insertion members 415. [0034] In addition, the first latching member 411 and the second latching member 413 are provided at opposite ends of the insertion part 410, wherein the first latching member 411 is brought into contact with a top surface of a flow channel plate 24, thereby fixing the lock insert 40 to the flow channel plate 24, and the second latching member 413 is brought into contact with a bottom surface of the flow channel plate 24, thereby fixing the lock insert 40 to the flow channel plate 24. [0035] On the other hand, according to the above-described configuration of the present embodiment, the circumference of the insertion part 410 of the lock insert 40 is variable in size, whereby the insertion part is easily inserted into the guide hole 22. After being inserted, the first latching member 411 and the second latching member 413 are each brought into contact with the top and bottom surfaces of the flow channel plate and fixed, thereby firmly fixing the lock insert 40 to the flow channel plate 24. [0036] In addition, disassembly of the lock insert from the flow channel plate 24 may also be performed by varying the size of the circumference of the insert part 410 and then by lifting the body 430 or the top nozzle 2. [0037] FIG. 5 is a view showing a fastening structure of a lock insert of a nuclear fuel assembly top nozzle according to another embodiment of the present invention. [0038] With reference to FIG. 5, the fastening structure 50 of the lock insert of the present embodiment is fixed to the flow channel plate 54. More specifically, the top surface, of the flow channel plate 54, and the first latching member 511 are brought into contact with and fixed to each other, and the bottom surface, of the flow channel plate 54, and the second latching member 513 are brought into contact with and fixed to each other. In addition, the first latching member 511 includes a latching groove, and the flow channel plate 54 includes a protruding member 541. [0039] Taking a look at each of the above-described components or coupling between the components, the first latching member 511 and the second latching member 513 may be provided to have an interval therebetween as much as a thickness of the flow channel plate 54, thereby being brought into contact with and fixed to the top and bottom surfaces, respectively, of the flow channel plate 54. In addition, the first latching member 511 is provided with the latching groove, at a portion with which the top surface of the flow channel plate 54 is brought into contact, and coupled to the protruding member 541 protruded on the top surface of the flow channel plate 54. Accordingly, a coupling of the lock insert and the flow channel plate 54 may be more firmly made. [0040] Meanwhile, according to the above-described configuration of the present embodiment, size or shapes of the protruding member 541 and the latching groove of the first latching member 511 are not necessarily limited to the present embodiment. However, when external force is applied to opposite side surfaces to make the circumference of the insert part 410 to be varied in size, a shape that allows the latching groove and the protruding member 541to be easily broken away from each other is to be included. That is, the size of the latching groove and a degree that the protrudingly provided protruding member 541 is curved may include various shapes each of which does not act as an element restricting a variation of the size of the circumference of the insert part 410. [0041] FIG. 6 is a view showing an overall configuration of a separating and coupling system of a nuclear fuel assembly top nozzle according to still another embodiment of the present invention. [0042] With reference to FIG. 6, the system 60 of the present embodiment includes an insertion part 610 of the lock insert and a separation part 630. More specifically, the insertion part 610 includes a first latching member 611 and a second latching member 613. [0043] Hereinafter, descriptions overlapping with the above-described embodiments will be omitted. Taking a Look at each of the above-described components or coupling between the components, the insertion part 610 is inserted penetrating through a guide hole provided in the flow channel plate 64, thereby being fixed to the flow channel plate 64, wherein the first latching member 611 is brought into contact with the top surface of the flow channel plate 64, and the second latching member 613 is brought into contact with the bottom surface of the flow channel plate 64. [0044] The separation part 630 is configured to provide a space accommodating an outer circumferential surface of the first latching member 611 protrudingly provided on the top surface of the flow channel plate 64. That is, when the structure of the first latching member 611 is changed to an extent that may be embodied by those skilled in the art, the internal space of the separation member 630 may also have a different shape accordingly. [0045] In addition, the inner space of the separation member 630 may have at least one inclination on an inner circumferential surface thereof and the circumference of the inner space may include a shape having the circumference of at least one size according to the inclination. [0046] Meanwhile, according to the above-described configuration of the present embodiment, the separation member 630 applies external force to an outer circumferential surface of the first latching member 611 while accommodating the outer circumferential surface of the first latching member 611. [0047] As the external force is applied to the outer circumferential surface of the first latching member 611, the size of the circumference of the insertion part 610 may be varied to release the coupling between the lock insert and the flow channel plate 64. [0048] The separation member 630 may have the inner circumferences having different sizes due to the inclination, and the user may specify a variable size of the circumference of the insertion part 610 such that the separation member 630 accommodates the outer circumferential surface of the first latching member 611 by the different sizes of the circumference. [0049] On the other hand, the present invention is not limited to the embodiments and the accompanying drawings in the above description, and it will be obvious for those skilled in the art that various substitutions, modifications, and changes are possible within the scope without departing from the spirit of the present invention. <Description of the Reference Numerals in the Drawings> [0050] 1: Nuclear fuel assembly 2: Top nozzle4: Bottom nozzle 6: Spacer grid8: Guide thimble 12: Instrumentation tube22: Guide hole 24, 54, 64: Flow channel plate241: Groove 26: Instrumentation fixing hole28: Flow channel hole 30: Fastening structure31: top nozzle insert 33: Lock tube40: Lock insert 410, 610: insertion part411, 511, 611: First latching member 413, 513, 613: second latching member415: Insertion member 430: Body50: Fastening structure of lock insert 541: Protruding member60: Separating and coupling system of nuclear fuel assembly top nozzle630: Separation member
权利要求:
Claims (10) [0001] A lock insert of a nuclear fuel assembly top nozzle, the lock insert being configured to support the nuclear fuel assembly top nozzle by being coupled to a guide hole provided in a flow channel plate of the top nozzle, the lock insert comprising: a body in a hollow shape, and an insertion part provided on a top portion of the body and configured to be inserted into the guide hole, wherein a circumference of the insertion part is variable in size, thereby being capable of being inserted into the guide hole. [0002] The lock insert of claim 1, wherein the insertion part comprises: a first latching member fixed by being brought into contact with a top surface of the flow channel plate; and a second latching member fixed by being brought into contact with a bottom surface of the flow channel plate. [0003] The lock insert of claim 2, wherein the first latching member comprises a latching groove, anda protruding member protrudingly provided on the top surface of the flow channel plate is inserted into the latching groove. [0004] The lock insert of claim 2, wherein the insertion part is provided with at least one predetermined interval along a circumferential direction thereof at a position between the first latching member and the second latching member, andthe circumference of the insertion part is variable in size as much as the predetermined interval. [0005] The lock insert of claim 2, wherein the insertion part is provided with at least one insertion member at a predetermined interval along a circumferential direction thereof at a position between the first latching member and the second latching member, andthe circumference of the insertion part is variable in size as much as the predetermined interval. [0006] A separating and coupling system of a nuclear fuel assembly top nozzle, the system comprising: a top nozzle; a flow channel plate provided at a lower portion of the top nozzle and allowing coolant to pass therethrough; a guide hole provided in the flow channel plate; a lock insert in a hollow shape including an insertion part configured to be inserted into the guide hole; and a separation member configured to separate the lock insert from the guide hole, wherein a circumference of the insertion part of the lock insert is variable in size, thereby being capable of being inserted into and separated from the guide hole. [0007] The system of claim 6, wherein the insertion part comprises: a first latching member fixed by being brought into contact with a top surface of the flow channel plate; and a second latching member fixed by being brought into contact with a bottom surface of the flow channel plate. [0008] The system of claim 7, wherein the first latching member comprises a latching groove; anda protruding member protrudingly provided on the top surface of the flow channel plate is inserted into the latching groove. [0009] The system of claim 7, wherein the insertion part is provided with at least one predetermined interval along a circumferential direction thereof at a position between the first latching member and the second latching member; andthe circumference of the insertion part is variable in size as much as the predetermined interval. [0010] The system of claim 7, wherein the insertion part is provided with at least one insertion member at a predetermined interval along a circumferential direction thereof at a position between the first latching member and the second latching member; andthe circumference of the insertion part is variable in size as much as the predetermined interval.
类似技术:
公开号 | 公开日 | 专利标题 US4675154A|1987-06-23|Nuclear fuel assembly with large coolant conducting tube KR101336490B1|2013-12-03|Nuclear fuel assembly control rod drive thimble to bottom nozzle connector US3960655A|1976-06-01|Nuclear reactor for breeding U233 US4285769A|1981-08-25|Control cell nuclear reactor core US3481832A|1969-12-02|Nuclear reactor core and control element arrangement US4617171A|1986-10-14|Device for fixing a guide tube in a recess on the end fitting of a nuclear reactor fuel assembly US7085340B2|2006-08-01|Nuclear reactor fuel assemblies US6526116B1|2003-02-25|Nuclear fuel assembly with hydraulically balanced mixing vanes CA2946210C|2019-02-12|A light-water reactor fuel assembly and fuel element thereof US3431170A|1969-03-04|Nuclear reactor fuel bundle US3366546A|1968-01-30|Nuclear reactor US4508679A|1985-04-02|Nuclear fuel assembly spacer US6275556B1|2001-08-14|Method and apparatus for preventing relative rotation of tube members in a control rod drive mechanism EP0425856A1|1991-05-08|Fuel assembly and rod for optimal fuel utilization US3992259A|1976-11-16|Fuel assembly for a nuclear reactor US8483346B2|2013-07-09|Nuclear reactor control rod spider assembly US4655995A|1987-04-07|Reversible BWR fuel assembly and method of using same US3957575A|1976-05-18|Mechanical design of a light water breeder reactor EP0379947B2|1998-09-09|Fuel rod for use in a nuclear fuel assembly US5299246A|1994-03-29|Shape-memory alloys in the construction of nuclear fuel spacer grids US8654917B2|2014-02-18|Nuclear reactor |, fuel assembly of seed-blanket subassemblies for nuclear reactor |, and fuel element for fuel assembly EP2267726B1|2015-05-13|Light water reactor core and fuel assembly EP2228801B1|2016-09-21|A fuel element, a fuel assembly and a method of using a fuel assembly FR2907960A1|2008-05-02|Nuclear fuel assembly for e.g. pressurized water reactor, has insert with inner diameter supported at fixed distance from inner diameter of instrumentation tube in segmented locations of tube, where insert centers instrument in reactor core US5068083A|1991-11-26|Dashpot construction for a nuclear reactor rod guide thimble
同族专利:
公开号 | 公开日 KR20190056454A|2019-05-27| US20200373026A1|2020-11-26| WO2019093563A1|2019-05-16| KR102059464B1|2019-12-27|
引用文献:
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法律状态:
2019-05-18| STAA| Information on the status of an ep patent application or granted ep patent|Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE | 2020-08-14| PUAI| Public reference made under article 153(3) epc to a published international application that has entered the european phase|Free format text: ORIGINAL CODE: 0009012 | 2020-08-14| STAA| Information on the status of an ep patent application or granted ep patent|Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE | 2020-09-16| AK| Designated contracting states|Kind code of ref document: A1 Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR | 2020-09-16| AX| Request for extension of the european patent|Extension state: BA ME | 2020-09-16| 17P| Request for examination filed|Effective date: 20200416 | 2021-01-27| RIN1| Information on inventor provided before grant (corrected)|Inventor name: RYU, SU PIL Inventor name: YOO, JONG SUNG Inventor name: KIM, SEONG SOO Inventor name: CHUN, JOO HONG Inventor name: KIM, BA LEUM Inventor name: PARK, NAM GYU | 2021-02-17| DAV| Request for validation of the european patent (deleted)| 2021-02-17| DAX| Request for extension of the european patent (deleted)| 2021-08-11| A4| Supplementary search report drawn up and despatched|Effective date: 20210713 | 2021-08-11| RIC1| Information provided on ipc code assigned before grant|Ipc: G21C3/33 20060101AFI20210707BHEP |
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