Honeycomb-shaped fuel assembly cooled by liquid chloride salt and reactor core using this assembly
20200303082 ยท 2020-09-24
Assignee
Inventors
- Liangzhi Cao (Xi'an, CN)
- Shengcheng Zhou (Xi'an, CN)
- Hongchun Wu (Xi'an, CN)
- Tiejun Zu (Xi'an, CN)
- Chi Lei (Xi'an, CN)
- Yifan Zhang (Xi'an, CN)
Cpc classification
G21C3/08
PHYSICS
Y02E30/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G21C15/28
PHYSICS
International classification
G21C15/28
PHYSICS
Abstract
A honeycomb-shaped fuel assembly cooled by liquid chloride salt adopts a honeycomb-shaped structure. A fuel coolant is a mixture of liquid three-phase chloride salt NaClKClMgCl.sub.2. Fuel is U.sub.3Si.sub.2 with an enrichment of 19.75% or 16.0%. The fuel assembly includes: fuel coolant channel pipelines which vertically penetrate and laterally merge, a fuel coolant contained in the fuel coolant channel pipelines, a fuel zone, upper and lower endcap, a top gas plenum, and upper and lower endcap. A reflector assembly adopts a honeycomb-shaped structure, including: reflector coolant pipes which are vertically penetrating; a reflector coolant contained in the reflector coolant pipes; a titanium reflector; and upper and lower endcaps. A control assembly and a safety assembly adopt a rod bundle structure using B.sub.4C with a natural enrichment of .sup.10B as absorbers.
Claims
1. A honeycomb-shaped fuel assembly cooled by liquid chloride salt, comprising: a fuel assembly box (8); fuel coolant channel pipelines (9) which vertically penetrate the fuel assembly box (8), laterally merge with each other, and arranged in a triangular layout; and a fuel coolant (5) contained in the fuel coolant channel pipelines (9); wherein the fuel coolant channel pipelines (9) have holes for laterally merging with each other with the fuel coolant (5); parts in the fuel assembly box (8) but outside the fuel coolant channel pipelines (9) comprises, from a bottom to a top: a fuel lower endcap (7), a fuel lower reflector (6), a fuel zone (4), a fuel assembly gas plenum (3), a fuel upper reflector (2) and a fuel upper endcap (1); the fuel coolant (5) is a mixture of liquid three-phase chloride salt NaClKClMgCl.sub.2.
2. The honeycomb-shaped fuel assembly, as recited in claim 1, wherein the fuel coolant channel pipelines (9) have 37 pipes.
3. The honeycomb-shaped fuel assembly, as recited in claim 1, wherein the fuel zone (4) uses U.sub.3Si.sub.2 with an enrichment of 19.75% or 16.0% as fuel; the fuel upper reflector (2) and the fuel lower reflector (6) are both made of titanium; the fuel upper endcap (1), the fuel lower endcap (7), the fuel assembly box (8) and the fuel coolant channel pipelines (9) are all made of Hastelloy.
4. A reactor core cooled by liquid chloride salt, comprising: inner fuel assemblies (12), outer fuel assemblies (13), control assemblies (10), safety assemblies (11), reflector assemblies (14), and shielding assemblies (15); wherein the inner fuel assemblies (12) and the outer fuel assemblies (13) are both honeycomb-shaped fuel assemblies cooled by the liquid chloride salt; the inner fuel assemblies (12) use U.sub.3Si.sub.2 with an enrichment of 16.0% as fuel, and the outer fuel assemblies (13) use U.sub.3Si.sub.2 with an enrichment of 19.75% as fuel; radial power distribution of the reactor core is flattened by zoning; assemblies of the reactor core is arranged in a triangular layout, wherein 31 inner zone fuel assemblies (12) are arranged in first to fourth circles of the reactor core; 3 control assemblies (10) and 3 safety assemblies (11) are arranged symmetrically and uniformly in the third circle; 54 outer fuel assemblies (13) are arranged in fifth to seventh circles; 12 control assemblies (10) are arranged symmetrically and uniformly in the fifth circle; 42 reflector assemblies (14) are arranged in seventh to eighth circles; and 48 shielding assemblies (15) are arranged in the eighth to ninth circles; reactor core coolant gaps are reserved between the assemblies in the reactor core, and a reactor core coolant is a mixture of liquid three-phase chloride salt NaClKClMgCl.sub.2.
5. The reactor core, as recited in claim 4, wherein each of the reflector assemblies (14) adopts a honeycomb-shaped structure, comprising: a reflector assembly box (16-1); reflector coolant pipes (19-1) which are vertically penetrating; a reflector coolant (18-1) contained in the reflector coolant pipes (19-1); a titanium reflector (17-1); a reflector upper endcap (20-1); and a reflector lower endcap (21-1); wherein the titanium reflector (17-1) is filled outside the reflector coolant pipes (19-1) in the reflector assembly box (16-1); the reflector upper endcap (20-1) and the reflector lower endcap (21-1) are arranged on a top and a bottom of the titanium reflector (17-1), respectively; each of the shielding assemblies (15) adopts the same structure of the reflector assemblies (14), comprising: a shielding assembly box (16-2); shielding coolant pipes (19-2) which are vertically penetrating; a shielding coolant (18-2) contained in the shielding coolant pipes (19-2); a B.sub.4C shield (17-2) with a natural enrichment of .sup.10B; a shielding upper endcap (20-2); and a shielding lower endcap (21-2).
6. The reactor core, as recited in claim 5, wherein both the reflector coolant pipes (19-1) and the shielding coolant pipes (19-2) have 19 pipes.
7. The reactor core, as recited in claim 4, wherein the control assemblies (10) and the safety assemblies (11) adopt a rod bundle structure using B.sub.4C with a natural enrichment of .sup.10B as absorbers; the control assemblies (10) and the safety assemblies (11) have same structures and same material compositions; each of the control assemblies (10) and the safety assemblies (11) comprises: an assembly box (22); absorber rods (24) and absorber rod cladding (25) evenly distributed in the assemblies box (22); and a coolant (23) filled outside the absorber rod cladding (25) in the assembly box (22); wherein each of the absorber rods (24) comprises, from a bottom to a top: a lower reflector (29), the B.sub.4C absorber rods (24), a gas plenum (28) and an upper reflector (27); wherein upper endcap (26) and lower endcap (30) are provided at tops and bottoms, respectively, of the control assemblies (10) and the safety assemblies (11).
8. The reactor core, as recited in claim 7, wherein each of the control assemblies (10) and the safety assemblies (11) comprises 7 absorber rods (24).
9. The reactor core, as recited in claim 4, wherein the reactor core is operated at an atmospheric pressure; the reactor core coolant has a rated inlet temperature of 496 C. and a rated outlet temperature of 596 C.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
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[0030]
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0032] Referring to drawings and embodiments, the present invention will be further illustrated as follows.
[0033] Referring to
[0034] Referring to
[0035] As the preferred embodiment of the invention, the fuel zone 4 uses U.sub.3Si.sub.2 with an enrichment of 19.75% or 16.0% as fuel.
[0036] As the preferred embodiment of the present invention, the fuel upper reflector 2 and the fuel lower reflector 6 are both made of titanium; the fuel upper endcap 1, the fuel lower endcap 7, the fuel assembly box 8 and the fuel coolant channel pipelines 9 are all made of Hastelloy.
[0037] Referring to
[0038] Referring to
[0039] Referring to
[0040] Referring to
[0041] The present invention provides a honeycomb-shaped fuel assembly cooled by liquid chloride salt and a small reactor core using this assembly, wherein rated thermal power of the reactor core is 40 MW; the reactor core can be operated for 10 effective full power years without refueling, and can be transported by vehicle or ship. The reactor core adopts the honeycomb-shaped fuel assembly cooled by liquid chloride salt, which is divided into two radial zones to arrange two kinds of fuel assemblies. The reactor core can satisfy thermal limit during service life. And the reactor core has a small core volume, light weight, vehicle-transportable, long life and high safety.