A preparation method of high-temperature structure-function integrated boron carbide reinforced aluminum-based neutron absorbing material
A technology for absorbing material and strengthening aluminum base, which is applied in the field of preparation of high-temperature structure-function integrated boron carbide reinforced aluminum-based neutron absorption material, can solve the problems of high temperature resistance, poor plasticity, difficult processing, etc., and achieves good sinterability, The effect of moderate bulk density and increased alumina content
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[0029] The present invention is a method for preparing a boron carbide-reinforced aluminum-based neutron-absorbing material with integrated high-temperature structure and function. The preparation method includes the following steps:
[0030] (1) Pre-oxidize the ultra-fine aluminum powder in a furnace containing an oxygen atmosphere, so that the original alumina on the surface will crack due to the difference in thermal expansion coefficient from the substrate when heated, and a new aluminum oxide film will be formed on the exposed surface of the fresh aluminum powder , increase the alumina content;
[0031] (2) Mix the oxidized ultra-fine aluminum powder and boron carbide particles uniformly by mechanical mixing or ball milling, and the surface of the oxidized aluminum powder after step (1) becomes rough, which can reduce the adhesion and knot between the aluminum powders during the mixing process piece;
[0032] (3) Sinter the uniformly mixed powder by pressing and molding ...
Embodiment 1
[0037] Spherical aluminum powder with an average particle size of 2.5 μm was selected and placed in an air furnace at 400°C for 2 hours for pre-oxidation and then cooled in the furnace. After the pre-oxidation treatment, the original alumina on the surface of the aluminum powder is cracked or even separated from the matrix, and a new alumina film is formed on the exposed surface of the fresh aluminum powder (such as Figure 5 ). The pre-oxidized aluminum powder and 10wt% content of B with an average particle size of 6.5 μm 4C granules were mechanically mixed using a V-type mixer, and the mixing time was 8 hours. The mixed powder is cold-pressed at 200MPa, then put into an air furnace for sintering at 600°C for 1 hour, and the sintered ingot is hot-extruded at 450°C to form a strip, with an extrusion ratio of 16:1. The extruded strip was annealed at 450°C for 8 hours to obtain the final profile.
[0038] After the sintered ingot is thermally processed, the shell-like "skelet...
Embodiment 2
[0053] Spherical aluminum powder with an average particle size of 1.5 μm was selected and placed in an air furnace at 400°C for 2 hours for pre-oxidation and then cooled in the furnace. The pre-oxidized aluminum powder and 10wt% content of B with an average particle size of 6.5 μm 4 C granules were mechanically mixed using a V-type mixer, and the mixing time was 8 hours. The mixed powder was cold-pressed at 200MPa, then put into an air furnace at 530°C for sintering for 2 hours, and the sintered ingot was hot-extruded at 450°C to form a strip plate, with an extrusion ratio of 16:1. The extruded strip was annealed at 450°C for 8 hours to obtain the final profile.
[0054] The high-temperature structure-functional integration B manufactured by this embodiment 4 Mechanical properties of C / Al neutron absorbing material at room temperature: yield strength 224MPa, tensile strength 246MPa, elongation 8%. The yield strength at 375°C is 101MPa, the tensile strength is 130MPa, and th...
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