An ash control rod and absorber
A technology of control rods and absorbers, which is applied in the field of reactivity control in nuclear power plants, can solve the problems of limiting the service life of gray control rod components, and achieve the effect of low irradiation creep effect and prolonging service life
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Embodiment 1~3
[0022] The ash control rod of the present invention is a two-layer slender solid tubular structure arranged concentrically; the ash control rod is covered with a cladding tube made of stainless steel or nickel-based alloy.
[0023] The inner tube is made of tantalum metal, and the diameter of the inner tube is 1.8mm;
[0024] The outer tube is made of Ag-In-Cd alloy, the inner diameter of the outer tube is 1.8mm, and the outer diameter is 2.4mm.
[0025] The specific composition of the gray control rod is shown in Table 1 below.
[0026] Table 1
[0027]
[0028] Such as figure 1 As shown, the existing gray control rod design uses Ag-In-Cd alloy as the absorber. The Ag-In-Cd alloy has a relatively large neutron absorption cross-section, especially the neutron absorption cross-section of the product of the naturally occurring isotope transmutation of the three elements of Ag, In and Cd is significantly reduced, so the Ag-In-Cd The reactivity value of the ash control rod ...
Embodiment 4~28
[0031] The absorber material for gray control rods of the present invention includes component A and component B, and the specific composition and proportion of the absorber material are shown in Table 2 below. (The absorber material may also contain impurities such as Mo, Nb, N, Si, etc. not exceeding 2%)
[0032] Table 2
[0033]
[0034]
Embodiment 29~31
[0036] The ash control rod described in the present invention is an elongated solid tubular structure made of tantalum alloy. The gray control rod is clad with a cladding tube made of stainless steel or nickel-based alloy. The specific composition of the gray control rod is shown in Table 3. (The absorber material may also contain Mo, Nb, N, Si and other impurity components that do not exceed 2%.)
[0037] table 3
[0038]
[0039] The invention is not strictly limited to the examples described. The method proposed according to the invention can be applied to any nuclear reactor to provide reactivity control for load following process and reactivity control for full power operation.
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