Heat-resisting high-strength ceramic product and preparation method thereof
A ceramic product, high-strength technology, applied in the field of ceramics, can solve the problems of unsatisfactory wear resistance, high temperature resistance, poor thermal shock resistance, easy heat exchange cracking, etc., and achieves a small thermal expansion coefficient and strong thermal shock resistance. , the effect of not easy to break
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Embodiment 1
[0014] Example 1: A heat-resistant and high-strength ceramic product prepared from the following raw materials in parts by weight: aluminum oxide: 20 parts, nano-calcium carbonate: 10 parts, andalusite: 5 parts, kaolin: 5 parts, potassium feldspar: 20 parts, wollastonite: 5 parts, feldspar: 10 parts, quartz: 10 parts, chromium oxide: 5 parts, spodumene: 15 parts, nano-cerium oxide: 1 part.
[0015] A method for preparing the above heat-resistant and high-strength ceramic products includes the following steps: (1) crushing the above-mentioned parts by weight of the raw materials, and passing through a 200-mesh sieve to obtain a mixture;
[0016] (2) The mixture obtained in step (1) is further stirred and mixed evenly, and then added to the ball mill
[0017] After the middle grinding, the grinding material is passed through a 600-mesh sieve, and water is added to make the embryo. The embryo is shaped after iron removal, rough scouring, aging, and scouring treatment;
[0018] (3) After ...
Embodiment 2
[0020] Example 2: A heat-resistant and high-strength ceramic product prepared from raw materials in the following parts by weight: aluminum oxide: 25 parts, nano-calcium carbonate: 12 parts, kaolin: 7 parts, potash feldspar: 22 parts, wollastonite: 6 parts, feldspar: 12 parts, quartz: 13 parts, chromium oxide: 6 parts, spodumene: 18 parts, nano-cerium oxide: 1.2 parts.
[0021] A method for preparing the above heat-resistant and high-strength ceramic products, comprising the following steps: (1) crushing the above-mentioned parts by weight of the raw materials, and passing through a 300-mesh sieve to obtain a mixture;
[0022] (2) The mixture obtained in step (1) is further stirred and mixed evenly, and then added to the ball mill
[0023] After medium grinding, the grinding material is passed through a 700-mesh sieve, and water is added to make the embryo. The embryo is shaped into the embryo after iron removal, rough scouring, aging, and scouring.
[0024] (3) After the embryo body ...
Embodiment 3
[0025] Example 3: A heat-resistant high-strength ceramic product prepared from the following raw materials in parts by weight: aluminum oxide: 30 parts, nano-calcium carbonate: 15 parts, andalusite: 10 parts, kaolin: 10 parts, potash feldspar: 25 parts, wollastonite: 8 parts, feldspar: 15 parts, quartz: 15 parts, chromium oxide: 8 parts, spodumene: 20 parts, nano-cerium oxide: 1.5 parts.
[0026] A method for preparing the above heat-resistant and high-strength ceramic products, comprising the following steps: (1) crushing the above-mentioned parts by weight of the raw materials, and passing through a 300-mesh sieve to obtain a mixture;
[0027] (2) The mixture obtained in step (1) is further stirred and mixed evenly, and then added to the ball mill
[0028] After medium grinding, the grinding material is passed through a 700-mesh sieve, and water is added to make the embryo. The embryo is shaped into the embryo after iron removal, rough scouring, aging, and scouring.
[0029] (3) Aft...
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