First-stage selective hydrogenation method for pyrolysis gasoline
A pyrolysis gasoline, selective technology, applied in the direction of selective hydrofining, petroleum industry, treatment of hydrocarbon oil, etc., can solve the problems of poor catalyst stability, nickel aluminate formation, reduced catalyst activity selectivity, etc.
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Embodiment 1
[0022] 1. Preparation of nickel-doped lanthanum ferrite
[0023] Under stirring conditions, dissolve 2.51mol of lanthanum nitrate in 120mL of water, add citric acid and stir to dissolve; then add 4.79mol of ferric nitrate, then add 190g of sodium polyacrylate, then add an aqueous solution containing 42g of nickel nitrate, continue to stir for 30 minutes, after drying Drying, roasting and grinding to obtain nickel-doped lanthanum ferrite.
[0024] 2. Preparation of silica-alumina carrier
[0025] Add citric acid to 4.5g nickel-doped lanthanum ferrite for use. Add 300g pseudo-boehmite powder and 25.0g sesame powder into the kneader, add nitric acid, then 40.2g sodium polyacrylate nitric acid solution, and mix well, then add nickel-doped lanthanum ferrite and mix well to obtain Alumina precursor. 5g of sodium polyacrylate is dissolved in nitric acid, then 38g of silica powder and 50g of pseudo-boehmite powder are added, and stirred evenly to obtain a mixture of silica powder-pseudo-b...
Embodiment 2
[0029] The preparation of nickel-doped lanthanum ferrite is the same as in Example 1, except that 260g of sodium polyacrylate is added. The preparation of the silica-alumina support is the same as in Example 1. The silica-alumina support contains 4.4wt% silica, 5.7wt% % Nickel doped lanthanum ferrite, 1.6wt% potassium, the mesopores of the carrier accounted for 64.2% of the total pores, and the macropores accounted for 25.6% of the total pores. The unit content of sodium polyacrylate in the alumina precursor is 3 times higher than the content of sodium polyacrylate in the silicon source-organic polymer mixture. The preparation method of the catalyst 2 was the same as that of Example 1. The content of nickel oxide of catalyst 2 was 10.3 wt%, the content of molybdenum oxide was 5.28 wt%, and the content of potassium oxide was 2.1 wt%.
Embodiment 3
[0031] The preparation of nickel-doped lanthanum ferrite is the same as in Example 1, except that 220g of polyacrylic acid is added. The preparation of the silica-alumina support is the same as in Example 1. The silica-alumina support contains 8.4wt% silica, 2.6wt% The nickel doped lanthanum ferrite, 0.8wt% potassium, the carrier mesopores accounted for 54.6% of the total pores, and the macropores accounted for 33.5% of the total pores. The unit content of polyacrylic acid in the alumina precursor is 3.3 times higher than the content of polyacrylic acid in the silicon source-organic polymer mixture. The preparation method of the catalyst 3 was the same as that of Example 1. The content of nickel oxide of catalyst 3 was 21.1 wt%, the content of molybdenum oxide was 3.3 wt%, and the content of potassium oxide was 0.30 wt%.
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