Aluminium titanium slag refractory performance analysis

By adding modified resin, the medium and low temperature strength of the sample after burning in the charcoal and air can be significantly improved, but the strength of the sample after burning at different temperatures in the buried carbon is higher than the same temperature after the air is burned. of. The addition of the modified resin has a slight negative effect on the oxidation resistance of the material, possibly because the modified resin has a detrimental effect on the molding properties, resulting in a higher porosity. The effect of the new skateboard with modified resin is obviously better than that of the ordinary non-burned skateboard, and the sliding rate is increased from 1.3 times to 2.2 times. Combining with the chemical composition of aluminum-titanium slag in ferroalloy plant, aluminum titanium slag and active lime were compounded according to the ratio of alumina to calcium oxide in the theoretical composition of calcium hexaaluminate.

The basic formula 87.0% of aluminum titanium slag and 13.0% of active lime are placed in a high-speed grinder, grinding 1h. The ground material is added 5% water, low-speed mixing 20min, the use of active lime to form lime milk as a binding agent, Semi-dry molding, molding pressure 50MPa. After molding the samples were heated at 110°C for 2 hours, and then dried at 1400°C, 1450°C and 1500°C for 2 hours. The sample numbers were forefront-No.3. . The microstructure and morphology of the fractures of the samples calcined at different temperatures were observed by Japanese electronic JSM6480LV scanning electron microscope. The Archimedes method was used to measure the bulk density and apparent porosity of the burned specimens.

The phase composition of calcium hexaaluminate material was analyzed by XRD method, and the phase composition of calcium hexaaluminate material synthesized by solid-state reaction was compared and analyzed. The main mineral composition of each formulation sample includes the main crystalline calcium hexaaluminate phase and a small amount of corundum phase. With the increase of calcination temperature, the diffraction peak intensity of the calcium hexaaluminate phase gradually increases.

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