A method for constructing a thermal insulation system and a thermal insulation system thereof
A system and structural technology, applied to other household appliances, ceramic products, household appliances, etc., can solve the problems of ineffective waste area, no skin formation, etc., and achieve the effect of saving raw materials, good heat insulation effect, and reducing production costs.
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Embodiment 1
[0021] Disperse the modified porous diatomite in the high-temperature-resistant binder. After fully dispersing, apply the dispersion system on the nickel shell mold and heat to dry and solidify the high-temperature-resistant binder to obtain a heat insulation system. . Among them, the particle size of the modified porous diatomite is 100 mesh, and the porosity is 40%. The mass ratio of the modified porous diatomite to the high temperature resistant binder is 1:0.1. When painting, pay attention to using a brush with fine bristles to ensure that the surface of the heat insulation system is smooth and flat. The resulting thermal insulation system has a thickness of 2 mm. The temperature difference between the heat insulation system and the surrounding nickel shell mold remains at 29 degrees Celsius after repeated heating, and the Mohs hardness is greater than 6H, and the wear resistance meets the continuous production of 100 molds without any change in the surface of the heat i...
Embodiment 2
[0023] Disperse the porous bentonite in the high-temperature-resistant binder, and after fully dispersed, apply the dispersion system on the nickel shell mold and heat to dry and solidify the high-temperature-resistant binder to obtain a thermal insulation system. When painting, pay attention to using a brush with fine bristles to ensure that the surface of the heat insulation system is smooth and flat. Among them, the particle size of the modified porous bentonite is 90 mesh, and the porosity is 50%. The mass ratio of porous bentonite to high temperature resistant binder is: 1:0.2. The resulting thermal insulation system has a thickness of 4 mm. The temperature difference between the heat insulation system and the surrounding nickel shell mold remains at 25 degrees Celsius after repeated heating, and the Mohs hardness is greater than 6H, and the wear resistance meets the requirement of continuous production of 100 molds without any change on the surface of the heat insulatio...
Embodiment 3
[0025] Disperse the porous magnesium saponite in the high-temperature-resistant binder. After fully dispersing, the dispersion system is coated on the nickel shell mold, heated, and the high-temperature-resistant binder is dried and solidified to form, and the heat insulation system can be obtained. When painting, pay attention to using a brush with fine bristles to ensure that the surface of the heat insulation system is smooth and flat. Among them, the particle size of the porous magnesium saponite is 80 mesh, and the porosity is 50%. The mass ratio of porous magnesium saponite to high temperature resistant binder is: 1:0.3. The resulting thermal insulation system has a thickness of 3 mm. The temperature difference between the heat insulation system and the surrounding nickel shell mold is maintained at 27 degrees Celsius after repeated heating, and the Mohs hardness is greater than 6H, and the wear resistance meets the continuous production of 100 molds without any change ...
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