Composite electrolyte for preparing corrosion-resistant surface of petroleum pipeline and preparation method of corrosion-resistant layer of petroleum pipeline through ultrasonic-assisted electrodeposition
A technology of composite electrolyte and oil pipeline, which is applied in the field of preparation of composite electrolyte and ultrasonic-assisted electrodeposition of oil pipeline corrosion resistance, can solve the problem that it is difficult to make regular micro-nano structures, the process is difficult to control, and the service life is short and other problems to achieve the effect of promoting nickel deposition, reducing agglomeration and improving corrosion resistance
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Embodiment 1
[0062] The present embodiment makes the stainless steel surface superhydrophobic structure through the following steps:
[0063] (1) Preparation of composite electrolyte: add nickel sulfate, nickel chloride, sodium hydrogen phosphate, sodium sulfate and citric acid to deionized water, stir the solution evenly by magnetic force, mix sodium lauryl sulfate and nano-silicon carbide After mixing, add it to the solution in the magnetic stirring, mix evenly to prepare the electrolyte, the concentration of nickel sulfate in the electrolyte is 150g / L, the concentration of nickel chloride in the electrolyte is 50g / L, sodium hydrogen phosphate in the electrolyte The concentration in the electrolyte is 30g / L, the concentration of sodium lauryl sulfate in the electrolyte is 0.1g / L, the concentration of nano-silicon carbide in the electrolyte is 6g / L, and the concentration of sodium sulfate in the electrolyte is 10g / L, citric acid makes the pH value of the electrolyte solution 4, and the p...
Embodiment 2
[0071] The differences between this embodiment and Embodiment 1 are:
[0072] The concentration of each raw material component in the electrolyte in step (1) is:
[0073] Nickel sulfate 175g / L
[0074] Nickel chloride 65g / L
[0075] Sodium hydrogen phosphate 45g / L
[0076] Sodium Lauryl Sulfate 0.15g / L
[0077] Nano silicon carbide 6g / L
[0078] Sodium sulfate 20g / L
[0079] The consumption of citric acid makes the pH value of composite electrolyte solution be 4,
[0080] In step (3), the concentration of sodium phosphate in the first mixed solution is 50g / L, the concentration of sodium hydroxide in the first mixed solution is 15g / L, and the concentration of sodium carbonate in the first mixed solution is 40g / L L;
[0081] In step (4), the concentration of rhodin in the second mixed solution was 0.75 g / L, and the concentration of hexatropine in the second mixed solution was 0.3 g / L.
[0082] After the modified stainless steel, the static contact angle of deionized wate...
Embodiment 3
[0084] The differences between this embodiment and Embodiment 1 are:
[0085] The concentration of each raw material component in the electrolyte in step (1) is:
[0086] Nickel sulfate 200g / L
[0087] Nickel chloride 80g / L
[0088] Sodium hydrogen phosphate 60g / L
[0089] Sodium Lauryl Sulfate 0.2g / L
[0090] Nano silicon carbide 6g / L
[0091] Sodium sulfate 30g / L
[0092] The consumption of citric acid makes the pH value of composite electrolyte solution be 4,
[0093] In step (3), the concentration of sodium phosphate in the first mixed solution is 70g / L, the concentration of sodium hydroxide in the first mixed solution is 20g / L, and the concentration of sodium carbonate in the first mixed solution is 45g / L L;
[0094] In step (4), the concentration of rhodin in the second mixed solution is 1 g / L, and the concentration of hexatropine in the second mixed solution is 0.5 g / L.
[0095] After the modified stainless steel, the static contact angle of deionized water on t...
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