High-chroma corrosion-resistant yellow coating and preparation method thereof

By constructing a ternary synergistic system of waterborne epoxy-modified silicone resin, modified bismuth vanadate, and nanocellulose, and using a microwave method to generate flake-like bismuth vanadate for coating, the problems of insufficient color and corrosion resistance of yellow anti-corrosion coatings were solved, and a coating with high color and corrosion resistance was achieved, meeting the long-term protection needs of marine chemical facilities.

CN121610182AActive Publication Date: 2026-03-06CHENGDU ADVANCED METAL MATERIALS IND TECH RES INST CO LTD

Patent Information

Application Number
CN202610139715.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-02-02
Publication Date
2026-03-06
Estimated Expiration
2046-02-02

AI Technical Summary

Technical Problem

Existing yellow anti-corrosion coatings have problems such as insufficient color, poor corrosion resistance, and insufficient environmental protection in marine chemical facilities, making it difficult to meet long-term protection requirements.

Method used

A ternary synergistic system was constructed using waterborne epoxy-modified silicone resin, modified bismuth vanadate, and nanocellulose. Flake-shaped bismuth vanadate was generated by microwave method and then coated with polydopamine and calcium-alginate to form a high-color, corrosion-resistant coating.

Benefits of technology

It achieves high color saturation and excellent corrosion resistance, the coating remains stable in extreme environments, and the electrochemical impedance is improved by three orders of magnitude, meeting the long-term protection requirements of marine chemical facilities.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of coatings, and discloses a high-chroma corrosion-resistant yellow coating and a preparation method thereof. The coating is prepared from the following components in parts by weight: 50 to 60 parts of waterborne epoxy modified organic silicon resin, 25 to 35 parts of modified bismuth vanadate, 1 to 2 parts of nano cellulose, 0.3 to 0.8 part of dispersing agent, 0.2 to 0.5 part of defoaming agent, 0.2 to 0.5 part of flatting agent and 2 to 3 parts of corrosion inhibition pigment. The formula system of the high-chroma corrosion-resistant yellow coating is innovative, a waterborne epoxy modified organic silicon resin-modified bismuth vanadate-nanocellulose ternary synergistic system is constructed, and the high-chroma corrosion-resistant yellow coating has excellent chroma and corrosion resistance. According to the coating, flaky bismuth vanadate generated through microwave method induction is adopted, lattice defects are few, chromaticity is broken through, and high corrosion resistance is achieved.
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Description

Technical Field

[0001] This invention relates to the field of coatings, specifically to a high-color, corrosion-resistant yellow coating and its preparation method. Background Technology

[0002] For marine chemical facilities operating in extremely corrosive environments (such as offshore drilling platforms, coastal petrochemical plants, storage tanks, and pipelines), highly visible yellow anti-corrosion coatings play a crucial role: First, they serve as prominent safety warning signs, ensuring the safety of personnel and equipment operation; second, as the first protective layer for the metal substrate, the anti-corrosion coating needs to withstand the combined erosion of multiple factors, including high humidity, high salinity, chemical atmospheres, and strong ultraviolet radiation, over long periods. This demanding application scenario presents significant challenges to the environmental friendliness, long-term weather resistance, and durable protective capabilities of yellow coatings.

[0003] Currently, yellow anti-corrosion coatings applicable to this field can be mainly divided into the following three categories according to their technical routes: the first-generation traditional system based on heavy metal pigments; the second-generation system based on organic pigments; and the third-generation environmentally friendly inorganic system based on bismuth vanadate pigments.

[0004] However, all three types of coatings have problems that urgently need improvement. The first-generation traditional system is now completely outdated in terms of environmental friendliness. Heavy metal pigments, represented by lead chromate yellow (PbCrO4), were once the mainstay of high-performance yellow anti-corrosion coatings. They possess excellent hiding power, chemical stability, and weather resistance. However, their inherent high toxicity and eco-accumulation fundamentally conflict with increasingly stringent environmental regulations. In today's advocacy of green manufacturing, the development and application of non-toxic and harmless alternatives has become an irreversible industrial trend, and such technologies will inevitably face elimination. The second-generation system based on organic pigments has a natural bottleneck in durability. To avoid the hazards of heavy metals, the industry has turned to organic yellow pigments. While they can provide vibrant hues, their chromophore molecular structure is highly susceptible to photo-oxidative degradation under continuous exposure to strong ultraviolet radiation in marine environments, leading to rapid chalking and fading of the coating. Simultaneously, organic molecules are prone to chemical changes under the influence of acidic and alkaline media in chemical atmospheres, further accelerating performance degradation. Its inherent weakness in durability leads to shorter maintenance cycles and high total life-cycle costs, failing to meet the core requirement of marine chemical facilities for long-term protection (typically requiring more than 15 years). The performance potential of third-generation environmentally friendly inorganic coatings based on bismuth vanadate pigments has not yet been fully realized. However, this type of coating typically faces problems such as insufficient color performance and the need to improve coating protective performance.

[0005] Overall, the existing third-generation environmentally friendly inorganic yellow coatings represent the mainstream development direction for the future, but they still have significant gaps in the two key indicators of color and corrosion resistance compared to the ideal level, indicating considerable room for improvement. Summary of the Invention

[0006] In view of the above-mentioned problems in the existing technology, the main objective of the present invention is to provide a high-color, corrosion-resistant yellow coating and its preparation method.

[0007] According to one aspect of the present invention, a high-color, corrosion-resistant yellow coating is provided, the coating comprising the following components by weight: 50-60 parts by weight of waterborne epoxy-modified silicone resin, 25-35 parts by weight of modified bismuth vanadate, 1-2 parts by weight of nanocellulose, 0.3-0.8 parts by weight of dispersant, 0.2-0.5 parts by weight of defoamer, 0.2-0.5 parts by weight of leveling agent, and 2-3 parts by weight of corrosion-inhibiting pigment.

[0008] According to one embodiment of the present invention, the modified bismuth vanadate is a sheet-like bismuth vanadate generated by microwave induction, and the sheet-like bismuth vanadate is coated with a carbon layer formed of polydopamine and an acid-resistant layer of calcium aluminum phase.

[0009] According to one embodiment of the present invention, the nanocellulose is nanocellulose that has undergone phosphorylation surface treatment, with a diameter of 5~60nm and a length of 50nm~2μm.

[0010] According to another aspect of the present invention, a method for preparing a high-chroma, corrosion-resistant yellow coating is provided, the method being used to prepare the yellow coating as described in any of the above embodiments and comprising the following steps: Modified bismuth vanadate was induced to form using a microwave method; Modified bismuth vanadate, waterborne epoxy-modified silicone resin, deionized water, dispersant, and corrosion-inhibiting pigment are premixed, dispersed, and ground to obtain a pigment slurry. Nanocellulose, defoamer and pigment paste are stirred and mixed, dispersed and ground, leveling agent is added, and the mixture is stirred and mixed to obtain the yellow coating.

[0011] According to one embodiment of the present invention, the preparation process of the modified bismuth vanadate includes the following steps: The bismuth salt is mixed with the first solvent to form the first solution; Vanadium salt, tartaric acid, and a second solvent are mixed to form a second solution, and the pH of the second solution is adjusted to 4.5-5.5. The first solution and the second solution are mixed in a microwave reactor and reacted at a preset temperature to generate a bismuth vanadate precursor. The bismuth vanadate precursor is dispersed in a third solution containing polydopamine, and a polydopamine coating layer is formed outside the bismuth vanadate precursor. Add sodium alginate and calcium chloride solution to the third solution to form a calcium-alginate network structure on the outside of the polydopamine coating layer through ionic crosslinking. The solution after ion crosslinking is subjected to solid-liquid separation, the solid is collected, and the solid is then thermally cured.

[0012] According to one embodiment of the present invention, the bismuth ion concentration in the first solution is 0.3~0.8 mol / L, the vanadium ion concentration in the second solution is 0.3~0.8 mol / L, the molar ratio of the vanadium salt to the tartaric acid is 1:1~1.2, and the volume ratio of the first solution to the second solution used for mixing is 1:0.9~1.

[0013] According to one embodiment of the present invention, the microwave reactor has a frequency of 2.45 GHz and a power of 800 W; the reaction temperature of the first solution and the second solution is 60~90℃ and the reaction time is 10~30 min.

[0014] According to one embodiment of the present invention, the solvent of the third solution is tris(hydroxymethyl)aminomethane hydrochloride buffer, and the concentration of polydopamine in the third solution is 1-2 mg / mL; the mass concentration of the bismuth vanadate precursor dispersed in the third solution is 100-300 g / L; after dispersing the bismuth vanadate precursor in the third solution, it is shaken at 40-60°C for 1-3 h; the mass ratio of sodium alginate to the bismuth vanadate precursor is 1.2-2:100; the concentration of the calcium chloride solution is 0.1-0.25 mol / L, and the volume ratio of the calcium chloride solution to the third solution is 0.25-3.5:100.

[0015] According to one embodiment of the present invention, the solid is thermosetting by: first heating the solid to 250-300°C at 3-7°C / min and holding it at that temperature for 20-50 min, and then heating it to 400-450°C at 7-10°C / min and holding it at that temperature for 5-20 min.

[0016] According to one embodiment of the present invention, the stirring speed of the premixing is 1200~1500 rpm and the stirring time is 10~30 min, and the stirring speed of the mixing is 400~600 rpm and the stirring time is 15~45 min.

[0017] Compared with the prior art, the high-chroma corrosion-resistant yellow coating and its preparation method of the present invention have at least one of the following beneficial effects: (1) Formulation system innovation: A ternary synergistic system of waterborne epoxy modified organosilicon resin-modified bismuth vanadate-nanocellulose was constructed. Each component is organically combined through specific ratios and surface properties to jointly construct a coating base with excellent color and corrosion resistance. (2) Introduce nanocellulose as a multifunctional reinforcing phase, which has a huge specific surface area and abundant surface hydroxyl groups, and realizes the triple effects of strengthening and toughening, barrier anti-corrosion and rheological control through its three-dimensional network structure; (3) The coating uses sheet-like bismuth vanadate induced by the microwave method, which has few lattice defects, breakthrough in chromaticity, L value > 89, -5 < a value < 5, 88 < b value < 92, and realizes high anti-corrosion performance of bismuth vanadate through double protection of Ca-alginate / PDA carbon layer. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0019] Figure 1 The flowchart showing the preparation method of the high-chromaticity corrosion-resistant yellow coating according to the embodiment of the present invention; Figure 2 The flowchart showing the generation of modified bismuth vanadate induced by the microwave method according to the embodiment of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0020] In order to make the purpose, technical solutions and advantages of the present invention clearer and more understandable, the following will further elaborate on the present invention in combination with specific embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.

[0021] In addition, the mention of "embodiment" in this article means that the specific features, structures or characteristics described in combination with the embodiment can be included in at least one embodiment of the present invention. The appearance of this phrase at various positions in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment mutually exclusive with other embodiments. Those skilled in the art will explicitly and implicitly understand that the embodiments described herein can be combined with other embodiments.

[0022] It should be understood that the embodiments of the present invention shown in the exemplary embodiments are only illustrative. Although only a few embodiments of the present invention are described in detail in this invention, those skilled in the art can easily understand that various modifications are feasible without substantially departing from the teachings of the subject matter of the present invention. Accordingly, all such modifications should be included within the scope of the present invention. Without departing from the gist of the present invention, other substitutions, modifications, changes and deletions can be made to the design, operating conditions and parameters, etc. of the following exemplary embodiments.

[0023] According to one aspect of the present invention, a high-chromaticity corrosion-resistant yellow paint is provided. The yellow paint comprises the following components by weight: 50-60 parts by weight of a waterborne epoxy-modified silicone resin, 25-35 parts by weight of modified bismuth vanadate, 1-2 parts by weight of nanocellulose, 0.3-0.8 parts by weight of a dispersant, 0.2-0.5 parts by weight of an antifoaming agent, 0.2-0.5 parts by weight of a leveling agent, and 2-3 parts by weight of a corrosion-inhibiting pigment.

[0024] The core of the design of the paint system of the present invention lies in: through the collaborative design of components and structures, while achieving high chromaticity, a long-lasting and dense physical and chemical composite barrier is formed to cope with the harsh marine corrosion environment.

[0025] Among them, the waterborne epoxy-modified silicone resin is the film-forming substance and the anti-corrosion foundation. This resin is the film-forming matrix of this paint, combining the excellent adhesion of epoxy resin and the excellent heat resistance, weather resistance and hydrophobicity of silicone resin. The formed coating film has good chemical stability and physical and mechanical strength, which is the basic guarantee for the corrosion resistance of the coating. The waterborne epoxy-modified silicone resin can be specifically copolymerized from, for example, epoxy resin, γ-glycidoxypropyltrimethoxysilane, phosphoric acid methacryloyloxyethyl ester, and methyl methacrylate. In some embodiments of the present invention, resins prepared by the cold blending method or the chemical grafting method are preferably selected to ensure the stability of the system. The dosage of the waterborne epoxy-modified silicone resin needs to be controlled within a suitable range. If the dosage is too small, the resin cannot fully coat the pigments and fillers, and there will be pores in the coating, making it easy for corrosive media to penetrate; while if the dosage is too large, the coating will be too soft and not wear-resistant. Therefore, in the paint system of the present invention, the dosage of the waterborne epoxy-modified silicone resin is controlled at 50-60 parts by weight.

[0026] The modified bismuth vanadate is used as the coloring and functional pigment of the paint system, and it has multiple functions: on the one hand, the modified bismuth vanadate is used as the core functional pigment of the paint. The bismuth vanadate induced by the microwave method has a unique flaky structure. This structure can enhance the specular reflection of light, and it has few lattice defects, with a chromaticity breakthrough, L value > 89, -5 < a value < 5, 88 < b value < 92, thereby improving the chromaticity and gloss of the coating and providing a high-saturation yellow for the paint; on the other hand, bismuth vanadate is a chemically inert inorganic substance, which can effectively block the penetration of corrosive media, and through the double protection of the Ca-alginate / PDA carbon layer, the high anti-corrosion performance of bismuth vanadate is achieved. If the proportion of the pigment dosage is too high, the coating will be loose and porous, and the adhesion and flexibility will be significantly reduced, and the coating is easy to powder; while if the proportion of the pigment dosage is too low, the covering power and coloring power of the coating will be insufficient, unable to meet the use requirements. Therefore, in the paint system of the present invention, the dosage of the modified bismuth vanadate is controlled at 25-35 parts by weight. In some embodiments, the modified bismuth vanadate is flaky bismuth vanadate induced by the microwave method.

[0027] Nanocellulose is used as a nano-reinforcing and structural regulator in coating systems. The use of nanocellulose in coatings is one of the key innovative components of this invention. Due to its large specific surface area and abundant surface hydroxyl groups, nanocellulose can exert a triple effect: First, it has a strengthening and toughening effect: nanocellulose can form a three-dimensional network structure in the resin matrix, which significantly improves the hardness, wear resistance and impact resistance of the coating. Secondly, it has a barrier effect: nanocellulose can effectively prolong the diffusion path of corrosive media such as water and chlorine in the coating, thus playing a barrier role; Third, it has rheological control effects: nanocellulose can also prevent solid particles in coatings from settling during storage and construction, thus improving construction performance.

[0028] If the proportion of nanocellulose in a coating system is too low, it cannot form a network, thus limiting its effectiveness; conversely, if the proportion is too high, severe agglomeration can easily occur, increasing costs. Therefore, in the coating system of this invention, the amount of nanocellulose is controlled at 1-2 parts by weight. In some embodiments, the nanocellulose is nanocellulose that has undergone phosphate esterification surface treatment, which significantly improves its compatibility with the resin and further enhances its dispersion stability. In some embodiments, the diameter of the nanocellulose can be 5-60 nm, and the length can be 50 nm-2 μm.

[0029] Dispersants, defoamers, leveling agents, and corrosion-inhibiting pigments are auxiliary functional additives in coatings.

[0030] Dispersants can reduce the surface tension of resins, allowing them to quickly penetrate and wet pigments, while also improving the dispersion of nanocellulose in the resin and ensuring pigment stability. Specific dispersants such as BYK-190 can be selected.

[0031] Defoamers are used to prevent air bubble defects in paints during production and application. A specific defoamer to choose from is BYK-024.

[0032] Leveling agents ensure that the coating flows smoothly before curing, forming a smooth and uniform film. A suitable leveling agent is BYK-331.

[0033] Corrosion-inhibiting pigments, as a supplement, release corrosion-inhibiting ions when the coating is locally damaged, providing active corrosion protection. Specific examples of corrosion-inhibiting pigments include zinc phosphate.

[0034] The coating of the present invention adopts the above innovative formulation system to construct a ternary synergistic system of waterborne epoxy-modified silicone resin-modified bismuth vanadate-nanocellulose. Each component is organically combined through specific ratios and surface characteristics to jointly build a coating foundation with excellent chromaticity and corrosion resistance. Nanocellulose is introduced as a multifunctional reinforcing phase, which has a huge specific surface area and abundant surface hydroxyl groups, and realizes triple effects of enhancing toughness, barrier corrosion prevention, and rheological control through its three-dimensional network structure. The coating uses plate-like bismuth vanadate induced by the microwave method, which has few lattice defects and breakthrough chromaticity, with L value > 89, -5 < a value < 5, 88 < b value < 92. Through double protection of Ca-alginate / PDA carbon layer, high corrosion resistance of bismuth vanadate is achieved. After testing, the bismuth vanadate coating does not change color after being immersed in 10wt% HCl / NaOH solution for 500h, and the electrochemical impedance increases by three orders of magnitude.

[0035] The present invention also provides a preparation method of the high-chromaticity and corrosion-resistant yellow coating described in the above embodiments. As Figure 1 shown, the preparation method of the high-chromaticity and corrosion-resistant yellow coating according to the embodiments of the present invention generally includes the following processes: Step S100: Induce the generation of modified bismuth vanadate by the microwave method; Step S200: Premix modified bismuth vanadate, waterborne epoxy-modified silicone resin, deionized water, dispersant, and corrosion inhibitor pigment, and perform dispersion grinding to obtain a pigment paste; Step S300: Stir and mix nanocellulose, defoamer, and pigment paste, perform dispersion grinding, add a leveling agent, and obtain a yellow coating after stirring and mixing.

[0036] The following is an exemplary and detailed description of each step.

[0037] Although BiVO4 has many advantages, there are several key technical bottlenecks in traditional preparation technologies, which seriously restrict its industrial application in the field of high-performance coatings.

[0038] The contradiction between chromaticity and stability of BiVO4 prepared by traditional processes is particularly prominent. BiVO4 pigments prepared by traditional solid-phase methods generally have insufficient chromaticity, and their yellow saturation (b value) is usually lower than 40, making it difficult to meet the requirements of high-end coatings for bright colors. Although doping with elements such as tungsten (W) or molybdenum (Mo) can improve chromaticity to a certain extent, this doping process often significantly reduces the acid resistance of the material, resulting in a substantial decrease in its stability in acidic environments.

[0039] Currently, the corrosion resistance of BiVO4 pigments remains insufficient. BiVO4 is a semiconductor material, and its semiconductor properties accelerate substrate corrosion at coating defects. Furthermore, its photocatalytic activity degrades surrounding organic resins, weakening the coating barrier. Most BiVO4 pigment modification techniques employ silane coupling agents or organic polymers for surface coating, which improves weather resistance to some extent. However, in extreme acidic or alkaline environments (pH < 2 or pH > 12), these coating materials are prone to interfacial delamination, leading to protective failure. This problem severely limits the application of BiVO4 coatings in harsh corrosive environments such as chemical and marine applications.

[0040] To address the above problems, this invention innovatively employs a microwave method to induce the generation of modified bismuth vanadate. For example... Figure 2 As shown, the microwave-induced generation of modified bismuth vanadate aggregates includes the following steps: Step S110: Mix the bismuth salt with the first solvent to form a first solution; Step S120: Mix vanadium salt, tartaric acid and a second solvent to form a second solution, and adjust the pH of the second solution to 4.5~5.5; Step S130: The first solution and the second solution are mixed in a microwave reactor and reacted at a preset temperature to generate a bismuth vanadate precursor; Step S140: The bismuth vanadate precursor is dispersed in a third solution containing polydopamine to form a polydopamine coating layer on the bismuth vanadate precursor. Step S150: Add sodium alginate and calcium chloride solution to the third solution to form a calcium-alginate network structure on the outside of the polydopamine coating layer through ionic crosslinking; Step S160: Perform solid-liquid separation on the ion-crosslinked solution, collect the solid, and then heat-cure the solid.

[0041] In step S110, the bismuth salt is mixed with a first solvent to form a first solution. The bismuth salt may be selected from at least one of Bi(NO3)3 and BiCl3. The first solvent may be a mixture of ethylene glycol and water (ethylene glycol to water volume ratio of 2:1 to 5:1), and the concentration of bismuth ions in the formed first solution is 0.3 to 0.8 mol / L.

[0042] In step S120, vanadium salt, tartaric acid, and a second solvent are mixed to form a second solution, and the pH of the second solution is adjusted to 4.5-5.5. The vanadium salt can be selected from at least one of sodium metavanadate and ammonium metavanadate. The second solvent can be water. The concentration of vanadium ions (vanadate ions) in the second solution is 0.3-0.8 mol / L. The molar ratio of vanadium salt to tartaric acid is 1:1-1.2. Adjusting the pH to 4.5-5.5 prevents excessive polymerization of vanadate ions and allows vanadate ions to form a stable complex with tartaric acid.

[0043] In step S130, the first solution and the second solution are mixed in a microwave reactor and reacted at a preset temperature to generate a bismuth vanadate precursor. In some embodiments, the volume ratio of the first solution to the second solution is 1:0.9~1. In some embodiments, the microwave reactor has a frequency of 2.45 GHz and a power of 800 W; the reaction temperature of the first solution and the second solution is 60~90℃, and the reaction time is 10~30 min. The microwave method can generate bismuth vanadate precursors with uniform particle size in a short time, suppress lattice defects in the bismuth vanadate precursor, and help obtain high-chroma pigments. Moreover, microwave synthesis has low energy consumption.

[0044] After synthesizing the bismuth vanadate precursor, surface modification was performed to improve its corrosion resistance and suppress the photocatalytic effect of bismuth vanadate pigment on organic resin, which helped the coating maintain mechanical strength and density.

[0045] In step S140, the bismuth vanadate precursor is dispersed in a third solution containing polydopamine, forming a polydopamine (PDA) coating layer on the bismuth vanadate precursor. PDA possesses functional groups such as hydroxyl and amino groups, allowing it to be firmly anchored to the bismuth vanadate precursor. The PDA coating layer acts as a barrier, effectively preventing corrosive ions such as water, oxygen, and chlorine from directly contacting and penetrating into the bismuth vanadate. Simultaneously, the PDA coating layer also serves to connect the outer Ca-alginate layer. After thermosetting, the PDA coating layer forms a conductive network, improving the overall charge transport efficiency of the material, thereby enhancing the photoelectrochemical properties and stability of bismuth vanadate.

[0046] In some embodiments, the solvent of the third solution is tris(hydroxymethyl)aminomethane hydrochloride buffer (pH=8.5), the concentration of polydopamine in the third solution is 1~2 mg / mL, and the mass concentration of the bismuth vanadate precursor dispersed in the third solution is 100~300 g / L. The bismuth vanadate precursor is dispersed in the third solution and shaken at 40~60°C for 1~3 h.

[0047] In step S150, sodium alginate and calcium chloride solution are added to the third solution to form a calcium-alginate network structure on the outside of the polydopamine coating layer through ionic crosslinking. After high-temperature curing, an acid-resistant calcium aluminum phase can be formed, which improves the acid resistance of bismuth vanadate pigment.

[0048] In some embodiments, the mass ratio of sodium alginate to bismuth vanadate precursor is 1.2~2:100; the concentration of calcium chloride solution is 0.1~0.25mol / L; and the volume ratio of calcium chloride solution to the third solution is 0.25~3.5:100.

[0049] In step S160, the ion-crosslinked solution undergoes solid-liquid separation, the solid is collected, and then thermally cured. Thermal curing can be achieved by first heating the solid to 250-300℃ at a rate of 3-7℃ / min and holding for 20-50 min, then further heating to 400-450℃ at a rate of 7-10℃ / min and holding for 5-20 min. Holding at 250-300℃ for 20-50 min carbonizes the PDA to form a conductive network. Holding at 400-450℃ for 5-20 min induces the conversion of Ca-algite into an acid-resistant calcium aluminum phase (Ca2Al(OH)7·3H2O).

[0050] The modified bismuth vanadate pigment prepared by the above scheme has high color intensity, strong corrosion resistance, short preparation process, and low wastewater discharge.

[0051] The remaining steps of the preparation method for high-chroma, corrosion-resistant yellow coating will be introduced.

[0052] In step S200, modified bismuth vanadate, waterborne epoxy-modified silicone resin, deionized water, dispersant, and corrosion-inhibiting pigment are premixed, dispersed, and ground to obtain a pigment slurry. In this step, a high-speed disperser is used to mix the pigment and resin at a stirring speed of 1200-1500 rpm for 10-30 minutes to ensure sufficient deagglomeration and stable dispersion of the pigment particles. The mixture is then subjected to ultrafine grinding in a sand mill until the particle size D90 ≤ 5 μm.

[0053] In step S300, nanocellulose, defoamer, and pigment paste are stirred, mixed, dispersed, and ground. A leveling agent is added, and the mixture is stirred to obtain a yellow paint. In this step, other components are slowly added to the pigment paste under medium-speed stirring at 400-600 rpm to avoid introducing excessive air bubbles.

[0054] The prepared high-chroma, corrosion-resistant yellow coating can be applied using electrostatic spraying and a stepped temperature curing process. Specifically, the prepared coating is adjusted to a suitable application viscosity and applied using electrostatic spraying equipment under a high voltage of 40-60kV. This process allows charged coating particles to be uniformly and densely adsorbed onto the surface of a grounded substrate under the influence of an electric field. Especially for workpieces with complex structures, it achieves seamless coverage, forming a uniformly thick wet film. After spraying, the workpiece is first held at 80-90℃ for 5 minutes to allow the coating to slowly level and initially remove moisture and some solvent. Then, it is held at 130-160℃ for 15-25 minutes for primary curing. During this stage, the resin undergoes a full cross-linking reaction, forming a dense three-dimensional network structure. Precise control of temperature and time ensures optimal mechanical properties and chemical resistance of the coating film, while avoiding color differences or insufficient curing caused by excessively high or low temperatures.

[0055] The method of the present invention will be further described and illustrated below with reference to embodiments. The coating application and performance testing operations in the following embodiments are as follows: Electrostatic spraying equipment is used for application under a high voltage of 40~60kV. The substrate is marine steel plate, and the wet film thickness is 40μm. After spraying, the coating is first held in a preheating zone at 85℃ for 5 minutes, and then held in a main curing zone at 145℃ for 20 minutes. Colorimetric testing is performed according to CIE Lab D65 standard; salt spray resistance testing is performed according to the test combination for C5-M level environments in ISO 9227; and adhesion testing is performed according to the cross-cut test combination in GB / T 9286.

[0056] Example 1 Microwave-induced generation of modified bismuth vanadate: (1) Synthesis of bismuth vanadate precursor: Bismuth nitrate was dissolved in a ethylene glycol-water mixed solvent (ethylene glycol and water volume ratio 3:1) to form a 0.5 mol / L solution A; sodium metavanadate and tartaric acid (molar ratio 1:1.1) were dissolved in water to prepare a vanadate concentration of 0.5 mol / L solution B, and the pH was adjusted to 4.5~5.5 to form a stable vanadate complex; in a microwave reactor (2.45 GHz, 800 W), solutions A and B were mixed (volume ratio 1:1) and reacted at 75 °C for 20 min to obtain a bright yellow precursor; (2) Modification of bismuth vanadate precursor: The precursor was dispersed in a PDA solution (1.5 mg / mL, Tris-HCl buffer, pH=8.5). ), Bismuth vanadate precursor is dispersed in PDA solution with a mass concentration of 200 g / L, shaken at 50℃ for 2 h to form PDA coating layer; sodium alginate and CaCl2 solution (0.2 mol / L) are added, the amount of sodium alginate is 1.6% of the mass of bismuth vanadate precursor, the volume ratio of calcium chloride solution to PDA solution is 1.8:100, and Ca-alginate grid structure is constructed on the outside of PDA layer through ionic crosslinking; (3) Bismuth vanadate thermal curing: the modified powder is placed in a programmable temperature controlled furnace, first raised to 300℃ at 5℃ / min and held for 35 min to carbonize PDA to form a conductive network; then rapidly heated to 450℃ at 8℃ / min for 15 min to induce Ca-alginate to transform into acid-resistant calcium aluminum phase.

[0057] Preparation of high-color, corrosion-resistant yellow coating: 30 parts by weight of modified bismuth vanadate, 55 parts by weight of waterborne epoxy-modified silicone resin, 10 parts by weight of deionized water, 0.5 parts by weight of dispersant, and 2.5 parts by weight of corrosion-inhibiting pigment are premixed and dispersed in a high-speed disperser (1200~1500 rpm) for 20 min, and then ultra-finely ground in a sand mill (particle size D90≤5μm) to obtain a pigment slurry; 1.5 parts by weight of nanocellulose and 0.3 parts by weight of defoamer are slowly added to the pigment slurry under medium-speed stirring (500 rpm), stirred and mixed, dispersed and ground for 30 min, and then 0.4 parts by weight of leveling agent are added and stirred to obtain a yellow coating.

[0058] The prepared yellow coating was electrostatically sprayed onto marine steel plates, and its performance was tested. The test results are shown in Table 1 below: Table 1. Results of coating performance testing in Example 1

[0059] Example 2 Microwave-induced generation of modified bismuth vanadate: (1) Synthesis of bismuth vanadate precursor: Bismuth nitrate was dissolved in a mixed solvent of ethylene glycol and water (volume ratio of ethylene glycol to water 2:1) to form a 0.3 mol / L solution A; sodium metavanadate and tartaric acid (molar ratio 1:1) were dissolved in water to prepare a solution B with a vanadate concentration of 0.3 mol / L, and the pH was adjusted to 4.5~5.5 to form a stable vanadium complex; in a microwave reactor (2.45 GHz, 800 W), solutions A and B were mixed (volume ratio 1:0.9) and reacted at 60 °C for 30 min to obtain a bright yellow precursor; (2) Modification of bismuth vanadate precursor: The precursor was dispersed in a PDA solution (1 mg / mL, Tris-HCl buffer, pH=8.5) Bismuth vanadate precursor is dispersed in PDA solution with a mass concentration of 100 g / L, shaken at 40℃ for 3 h to form PDA coating layer; sodium alginate and CaCl2 solution (0.1 mol / L) are added, the amount of sodium alginate is 1.2% of the mass of bismuth vanadate precursor, the volume ratio of calcium chloride solution to PDA solution is 0.25:100, and Ca-alginate grid structure is constructed on the outside of PDA layer through ionic crosslinking; (3) Bismuth vanadate thermal curing: the modified powder is placed in a programmable temperature controlled furnace, first raised to 300℃ at 3℃ / min and held for 20 min to carbonize PDA to form conductive network; then rapidly raised to 450℃ at 7℃ / min for 5 min to induce Ca-alginate to transform into acid-resistant calcium aluminum phase.

[0060] Preparation of high-color, corrosion-resistant yellow coating: 25 parts by weight of modified bismuth vanadate, 50 parts by weight of waterborne epoxy-modified silicone resin, 8 parts by weight of deionized water, 0.3 parts by weight of dispersant, and 2 parts by weight of corrosion-inhibiting pigment are premixed and dispersed in a high-speed disperser (1200~1500 rpm) for 10 min, and then ultra-finely ground in a sand mill (particle size D90≤5μm) to obtain a pigment slurry; 1 part by weight of nanocellulose and 0.2 parts by weight of defoamer are slowly added to the pigment slurry under medium-speed stirring (400 rpm), stirred and mixed, dispersed and ground for 45 min, and then 0.2 parts by weight of leveling agent are added and stirred to obtain a yellow coating.

[0061] The prepared yellow coating was electrostatically sprayed onto marine steel plates, and its performance was tested. The test results are shown in Table 2 below: Table 2. Results of coating performance testing in Example 2

[0062] Example 3 Microwave-induced generation of modified bismuth vanadate: (1) Synthesis of bismuth vanadate precursor: Bismuth chloride was dissolved in a mixed solvent of ethylene glycol and water (volume ratio of ethylene glycol to water 5:1) to form a 0.8 mol / L solution A; ammonium metavanadate and tartaric acid (molar ratio 1:1.2) were dissolved in water to prepare a solution B with a vanadate concentration of 0.8 mol / L, and the pH was adjusted to 4.5~5.5 to form a stable vanadate complex; in a microwave reactor (2.45 GHz, 800 W), solutions A and B were mixed (volume ratio 1:1) and reacted at 90 °C for 10 min to obtain a bright yellow precursor; (2) Modification of bismuth vanadate precursor: The precursor was dispersed in a PDA solution (2 mg / mL, Tris-HCl buffer, pH=8.5) Bismuth vanadate precursor is dispersed in PDA solution with a mass concentration of 300 g / L, shaken at 60℃ for 1 h to form PDA coating layer; sodium alginate and CaCl2 solution (0.25 mol / L) are added, the amount of sodium alginate is 2% of the mass of bismuth vanadate precursor, the volume ratio of calcium chloride solution to PDA solution is 3.5:100, and Ca-alginate grid structure is constructed on the outside of PDA layer through ionic crosslinking; (3) Bismuth vanadate thermal curing: the modified powder is placed in a programmable temperature controlled furnace, first raised to 250℃ at 7℃ / min and held for 50 min to carbonize PDA to form a conductive network; then rapidly heated to 400℃ at 10℃ / min for 20 min to induce Ca-alginate to transform into acid-resistant calcium aluminum phase.

[0063] Preparation of high-color, corrosion-resistant yellow coating: 35 parts by weight of modified bismuth vanadate, 60 parts by weight of waterborne epoxy-modified silicone resin, 12 parts by weight of deionized water, 0.8 parts by weight of dispersant, and 3 parts by weight of corrosion-inhibiting pigment are premixed and dispersed in a high-speed disperser (1200~1500 rpm) for 30 min, and then ultra-finely ground in a sand mill (particle size D90≤5μm) to obtain a pigment slurry; 2 parts by weight of nanocellulose and 0.5 parts by weight of defoamer are slowly added to the pigment slurry under medium-speed stirring (600 rpm), stirred and mixed, dispersed and ground for 15 min, and then 0.5 parts by weight of leveling agent are added and stirred to obtain a yellow coating.

[0064] The prepared yellow coating was electrostatically sprayed onto marine steel plates, and its performance was tested. The test results are shown in Table 3 below: Table 3. Results of Coating Performance Testing in Example 3

[0065] Those skilled in the art should understand that the discussion of any of the above embodiments is merely exemplary and is not intended to imply that the scope of the disclosed embodiments of the present invention is limited to these examples; within the framework of the embodiments of the present invention, the technical features of the above embodiments or different embodiments can also be combined, and there are many other variations of different aspects of the embodiments of the present invention as described above, which are not provided in detail for the sake of brevity. Therefore, any omissions, modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the embodiments of the present invention should be included within the protection scope of the embodiments of the present invention.

Claims

1. A high chroma, corrosion resistant, yellow paint characterized in that, The yellow paint comprises the following components by weight parts: 50-60 parts by weight of water-based epoxy-modified silicone resin, 25-35 parts by weight of modified bismuth vanadate, 1-2 parts by weight of nanocellulose, 0.3-0.8 parts by weight of dispersant, 0.2-0.5 parts by weight of defoaming agent, 0.2-0.5 parts by weight of leveling agent, and 2-3 parts by weight of corrosion inhibitor pigment.

2. The high chroma, corrosion resistant yellow paint of claim 1, wherein, The modified bismuth vanadate is flaky bismuth vanadate induced by a microwave method, and the flaky bismuth vanadate is coated with a carbon layer formed by polydopamine and an acid-resistant layer of calcium aluminate phase.

3. The high chroma, corrosion resistant yellow paint of claim 1, wherein, The nanocellulose is nanocellulose subjected to phosphate esterification surface treatment, with a diameter of 5-60 nm and a length of 50 nm-2 μm.

4. A process for the preparation of a high chroma, corrosion resistant yellow paint, characterized in that, The method is used for preparing the yellow paint according to any one of claims 1-3 and comprises the following steps: The modified bismuth vanadate is prepared by a microwave method; The modified bismuth vanadate, water-based epoxy-modified silicone resin, deionized water, dispersant, and corrosion inhibitor pigment are premixed and subjected to dispersion grinding to obtain a pigment paste; The nanocellulose, defoaming agent, and the pigment paste are stirred and mixed, and subjected to dispersion grinding, and the leveling agent is added and stirred and mixed to obtain the yellow paint.

5. The method of preparing a high chroma corrosion resistant yellow paint according to claim 4, characterized in that, The preparation process of the modified bismuth vanadate comprises the following steps: The bismuth salt is mixed with a first solvent to form a first solution; A vanadium salt and tartaric acid are mixed with a second solvent to form a second solution, and the pH of the second solution is adjusted to 4.5-5.5; The first solution and the second solution are mixed in a microwave reactor, reacted at a preset temperature, and bismuth vanadate precursor is generated; The bismuth vanadate precursor is dispersed in a third solution containing polydopamine to form a polydopamine coating layer outside the bismuth vanadate precursor; Sodium alginate and calcium chloride solution are added to the third solution to form a calcium-alginate grid structure outside the polydopamine coating layer through ionic crosslinking; The solution after ionic crosslinking is subjected to solid-liquid separation, and the solid is collected and subjected to heat curing.

6. The method of making a high chroma, corrosion resistant yellow paint of claim 5, wherein, The concentration of bismuth ions in the first solution is 0.3-0.8 mol / L, the concentration of vanadium ions in the second solution is 0.3-0.8 mol / L, the molar ratio of the vanadium salt to the tartaric acid is 1:1-1.2, and the volume ratio of the first solution to the second solution used for mixing is 1:0.9-1.

7. The method of making a high chroma, corrosion resistant yellow paint of claim 5, wherein, The frequency of the microwave reactor is 2.45 GHz, and the power is 800 W; the temperature at which the first solution and the second solution are reacted is 60-90℃, and the time is 10-30 min.

8. The method of making a high chroma, corrosion resistant yellow paint of claim 5, wherein, The solvent of the third solution is tris-hydroxymethyl aminomethane hydrochloride buffer, the concentration of polydopamine in the third solution is 1-2 mg / mL; the mass concentration of the bismuth vanadate precursor dispersed in the third solution is 100-300 g / L; the bismuth vanadate precursor dispersed in the third solution is oscillated at 40-60℃ for 1-3 h; the mass ratio of the sodium alginate to the bismuth vanadate precursor is 1.2-2:100; the concentration of the calcium chloride solution is 0.1-0.25 mol / L, and the volume ratio of the calcium chloride solution to the third solution is 0.25-3.5:

100.

9. The method of making a high chroma, corrosion resistant yellow paint of claim 5, wherein, The heat curing of the solid comprises: first increasing the temperature of the solid to 250-300 DEG C at a rate of 3-7 DEG C / min, holding for 20-50 min, and then increasing the temperature to 400-450 DEG C at a rate of 7-10 DEG C / min, holding for 5-20 min.

10. The method of making a high chroma, corrosion resistant yellow paint of claim 4, wherein, The stirring speed of the premixing is 1200-1500 rpm, and the stirring time is 10-30 min; and the stirring speed of the stirring mixing is 400-600 rpm, and the stirring time is 15-45 min.

Citation Information

Patent Citations

  • Color-variable environment-friendly paint and preparation method thereof

    CN104830228A

  • Preparation method and application of Co-Pi / PDA / BiVO4 (cobalt phosphate / polydopamine / bismuth vanadium oxide) ternary composite photoelectrode

    CN110042407A

  • Waterborne epoxy resin anticorrosion coating and preparation method thereof

    CN110724438A

  • GIS equipment gas leakage sensing coating and preparation process thereof

    CN111117491A

  • Preparation method of bismuth vanadate-based environment-friendly anticorrosive coating

    CN111732891A

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