Anti-corrosion scheme of metal surface

A metal surface and scheme technology, applied in the coating field of environmental protection coatings, can solve problems such as poor stability of the treatment process

CN102964999AInactive Publication Date: 2013-03-13QINGDAO ADVANCED MARINE MATERIAL TECH
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Patent Information

Authority / Receiving Office
CN · China
Current Assignee / Owner
Publication Date
2013-03-13
Estimated Expiration
Not applicable · inactive patent
Patent Text Reader

Abstract

The invention discloses an anti-corrosion scheme of a metal surface, comprising the following steps of: mixing components including siloxane, a solvent, silicon dioxide grains, a rear-earth compound, de-ionized water, a catalyst, carbon fibers and polyimide and carrying out curing treatment; and filtering a cured mixture and spraying, coating or immersing the mixture on the surface of a base material; and depositing to form a coating on the surface of the base material, so as to realize the surface anti-corrosion treatment.
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Description

technical field

[0001] The invention relates to an anti-corrosion paint coating method, in particular to a coating method for an environmentally friendly paint which is suitable for the surface of a metal structure, has excellent gloss and mechanical and physical properties, and does not contain aromatic hydrocarbon solvents. Background technique

[0002] In modern industry and daily life, metal corrosion can be seen everywhere, especially in the form of crevice corrosion, stress corrosion and corrosion fatigue in the storage containers of fuel oil and hazardous chemicals, which cause great safety hazards to people's lives.

[0003] The metal protection methods currently used can be roughly divided into three categories: one is anodic oxidation treatment, that is, an anodic oxidation film with a thickness of tens of microns is formed on the metal surface, but due to the large energy consumption of the anodic oxidation process and the contamination of the electrolyte solution ...

Examples

Embodiment 1

[0027] (1) Prepare the following components (parts by mass):

[0028] a N-phenylaminopropyltriethoxysilane 1;

[0029] b propanol 40;

[0030] c SiO 2 particle 1;

[0031] d cerium oxide 1;

[0032] e deionized water 5;

[0033] f acetic acid 1;

[0034] g carbon fiber 5;

[0035] h polyimide 1;

[0036] (2) Mix the above components and perform aging treatment, then spray, brush or dip on the surface of the substrate, and form a coating on the surface of the substrate after deposition to achieve surface anti-corrosion treatment.

Embodiment 2

[0038] (1) Prepare the following components (parts by mass):

[0039] a N-phenylaminopropyltriethoxysilane 10;

[0040] b propanol 60;

[0041] c SiO 2 particle 5;

[0042] d cerium oxide 5;

[0043] e deionized water 25;

[0044] f Acetic acid 3;

[0045] g carbon fiber 7;

[0046] h polyimide 3;

[0047] (2) Mix the above components and perform aging treatment, then spray, brush or dip on the surface of the substrate, and form a coating on the surface of the substrate after deposition to achieve surface anti-corrosion treatment.

Embodiment 3

[0049] (1) Prepare the following components (parts by mass):

[0050] a N-phenylaminopropyltriethoxysilane 5;

[0051] b propanol 50;

[0052] c SiO 2 Particle 3;

[0053] d cerium oxide3;

[0054] e deionized water 15;

[0055] f acetic acid 2;

[0056] g carbon fiber 6;

[0057] h polyimide 2;

[0058] (2) Mix the above components and perform aging treatment, then spray, brush or dip on the surface of the substrate, and form a coating on the surface of the substrate after deposition to achieve surface anti-corrosion treatment.