Method for manufacturing novel silicon carbide heat exchanger
A technology for a silicon carbide heat exchanger and a manufacturing method is applied in the field of advanced ceramic materials to achieve the effects of improving high temperature resistance, prolonging service life and reducing consumption
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Embodiment 1
[0027] The weight percent of raw materials is 50% of silicon carbide, 30% of monocrystalline silicon, 14.7% of carbon black, 5% of polyvinyl alcohol and 0.3% of lanolin.
[0028] a, batching: prepare the raw material of aforementioned weight ratio;
[0029] b. Pulping: first add silicon carbide to distilled water, stir for 3 hours, then add elemental silicon and stir for 1 hour, then add carbon black and lanolin for stirring, then add polyvinyl alcohol solution dropwise, stir for no less than 7 hour, the slurry is evenly mixed into a paste;
[0030] c. Mold making: According to the size of the radiant tube, the physical shape is machined, and then the inner and outer molds are made;
[0031] d. Forming: grouting by solid grouting method;
[0032] e. Drying: After the molded body is demoulded, dry it in a drying room at 60°C for 72 hours;
[0033] f. Blank trimming: After the formed blank is dried, repair the defects on the surface of the blank;
[0034] g. Sintering: Put t...
Embodiment 2
[0038] The difference between the present embodiment and the first embodiment is that the weight percentage of raw materials is: 55% of silicon carbide, 25% of monocrystalline silicon, 15.7% of carbon black, 4% of polyvinyl alcohol, and 0.3% of lanolin. Other steps are the same as in Embodiment 1.
Embodiment 3
[0040] The difference between this embodiment and the first embodiment is that the weight percentage of each component is: 60% of silicon carbide, 20% of monocrystalline silicon, 16.7% of carbon black, 3% of polyvinyl alcohol with a pH value between 6.5 and 7.3, Lanolin 0.3%. Other steps are the same as in Embodiment 1.
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