Zinc phosphate coating conversion agent for pretreatment of cathodic electrodeposition coating

By adjusting calcium and nickel ion concentrations in the zinc phosphate conversion agent, the P ratio is enhanced, addressing the lower ratios in spray coating treatments, resulting in coatings with equivalent corrosion resistance and adhesion to immersion coatings.

JP7729641B2Active Publication Date: 2025-08-26CHEMICOAT
View PDF 7 Cites 0 Cited by

Patent Information

Application Number
JP2024014786
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-02-02
Publication Date
2025-08-26
Estimated Expiration
2044-02-02

AI Technical Summary

Technical Problem

Conventional spray coating chemical conversion treatments for cationic electrodeposition coating produce zinc phosphate coatings with lower P ratios compared to immersion coating treatments, limiting the corrosion resistance and adhesion of the resulting coatings.

Method used

A zinc phosphate conversion agent is formulated with specific concentrations of calcium and nickel ions within a predetermined range, along with other metal and acid ions, to achieve a high P ratio comparable to immersion coating treatments, ensuring a suitable base for cationic electrodeposition coating.

Benefits of technology

The formulated zinc phosphate coating achieves high corrosion resistance and adhesion equivalent to immersion coating treatments without requiring equipment conversion, providing a suitable substrate for cationic electrodeposition coating.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007729641000002
    Figure 0007729641000002
  • Figure 0007729641000003
    Figure 0007729641000003
  • Figure 0007729641000004
    Figure 0007729641000004
Patent Text Reader

Abstract

To provide a zinc phosphate coating chemical conversion agent that is used for spray coating chemical conversion treatment that is pretreatment of cationic electrodeposition coating.SOLUTION: A zinc phosphate coating chemical conversion agent includes a calcium ion, a nickel ion, a zinc ion, a phosphate ion, and a nitrate ion, where the concentration of the calcium ion is within the range of 1000 mg / L to 2000 mg / L and the concentration of the nickel ion is within the range of 1000 mg / L to 2000 mg / L.SELECTED DRAWING: Figure 1
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to a zinc phosphate conversion agent used in spray conversion coating, which is a pretreatment for cationic electrodeposition coating. [Background technology]

[0002] Metal products are generally painted to prevent rust or to enhance their appearance. Before painting, the metal products are degreased and washed and treated with zinc phosphate as pretreatment to remove grease, dirt, and rust from the metal product, thereby strengthening the adhesion between the paint film and the substrate and increasing the corrosion resistance of the paint film.

[0003] Coating methods include spray gun coating, immersion coating, etc. Currently, when corrosion resistance is required, electrodeposition coating, especially cationic electrodeposition coating, is widely used because it provides high corrosion resistance, good coating film performance with good adhesion, and is highly productive and suitable for mass production.

[0004] When carrying out cathodic electrodeposition coating, zinc phosphate treatment as a pretreatment is essential to fully demonstrate the coating performance. There are generally two known components of the zinc phosphate coating formed on the surface of steel products: hopeite, represented by the following formula (1), and phosphophyllite, represented by formula (2). Hopeite and phosphophyllite have different characteristics, with phosphophyllite having better alkali resistance than hopeite. Zn3(PO4)2·4H2O (1) Zn2M(PO4)2·4H2O (2) (M = metal such as Fe, Ni, Mn)

[0005] When cathodic electrodeposition coating is performed after zinc phosphate conversion coating, the quality of the zinc phosphate coating has a large effect on the corrosion resistance of the coating, and if there is little iron, manganese, or nickel other than zinc in the zinc phosphate coating expressed by formula (2), the corrosion resistance of the coating tends to decrease. Also, if the weight of the zinc phosphate coating is too large, the corrosion resistance and adhesion of the coating will decrease.

[0006] In cationic electrodeposition coating, the pH at the interface rises during electrodeposition coating, becoming approximately 12 (alkaline). Therefore, if there is a lot of hopeite as shown in formula (1), the zinc phosphate film will dissolve, and this dissolution will reduce the adhesion between the coating and the zinc phosphate film, which will in turn reduce the corrosion resistance of the coating.

[0007] Phosphophyllite, as expressed by formula (2), is alkali-resistant and does not easily dissolve when the pH at the interface rises during electrodeposition coating. Phosphophyllite itself also has corrosion resistance. Therefore, during electrodeposition coating, the greater the proportion of phosphophyllite in the zinc phosphate coating, the less the zinc phosphate coating dissolves, improving the corrosion resistance of the coating.

[0008] The ratio of hopeite to phosphophyllite in a zinc phosphate coating is called the P ratio, and if P is the amount of phosphophyllite present and H is the amount of hopeite present, then the P ratio = {P ÷ (P + H)} × 100.

[0009] Zinc phosphate conversion coating methods can be broadly divided into spray coating conversion treatment, in which chemicals are sprayed onto metal products, and immersion coating conversion treatment, in which metal products are immersed in chemicals. In spray coating conversion treatment, chemicals are showered onto the metal product, and a zinc phosphate coating is produced by a chemical reaction between the chemicals and the surface of the metal product. In immersion coating conversion treatment, a zinc phosphate coating is also produced by a chemical reaction between the chemicals and the surface of the metal product. [Prior art documents] [Patent documents]

[0010] [Patent Document 1] JP Patent Publication No. Hei 10-168580 [Patent Document 2] JP Patent Publication No. Hei 6-57443 [Patent Document 3] JP Patent Publication No. Hei 4-6281 Summary of the Invention [Problem to be solved by the invention]

[0011] When comparing the P ratio of zinc phosphate coatings produced by spray coating chemical conversion treatment with that of zinc phosphate coatings produced by immersion coating chemical conversion treatment, the P ratio of zinc phosphate coatings produced by spray coating chemical conversion treatment tends to be lower, generally due to differences in contact time and contact speed with the chemicals. Generally, the P ratio of zinc phosphate coatings produced by spray coating chemical conversion treatment is 60-70%, while the P ratio of coatings produced by immersion coating chemical conversion treatment is 80-95%.

[0012] In conventional technology, when zinc phosphate treatment is carried out by spray coating chemical conversion treatment as a pretreatment for cationic electrodeposition coating, it has been difficult to produce a zinc phosphate coating with a sufficiently high P ratio.

[0013] Therefore, the present invention has been made in consideration of the above-mentioned problems, and an object of the present invention is to provide a zinc phosphate conversion agent that can produce, by spray conversion coating, a zinc phosphate coating having a high P ratio equivalent to that of a zinc phosphate coating produced by immersion conversion coating. [Means for solving the problem]

[0014] The present inventors have conducted extensive research to achieve the above-mentioned object, and have discovered that by adjusting the concentrations of calcium ions and nickel ions contained in a zinc phosphate coating chemical agent to fall within a predetermined range, the P ratio of a zinc phosphate coating formed by spray coating chemical conversion treatment can be made comparable to the P ratio of a zinc phosphate coating formed by immersion coating chemical conversion treatment.

[0015] The present invention was made based on this finding and has the following configuration.

[0016] (Configuration 1) A zinc phosphate coating conversion agent used in spray coating conversion treatment, which is a pretreatment for cationic electrodeposition coating, zinc ions, calcium ions, nickel ions, zinc ions, phosphate ions, and nitrate ions; The calcium ion concentration ranges from 1000 mg / L to 2000 mg / L. A zinc phosphate coating conversion agent with a nickel ion concentration ranging from 1000 mg / L to 2000 mg / L.

[0017] (Configuration 2) 2. The zinc phosphate coating conversion agent according to claim 1, wherein the calcium ion source is at least one selected from the group consisting of tricalcium phosphate, calcium glycerophosphate, calcium hydroxide, and calcium chloride.

[0018] (Configuration 3) 3. The zinc phosphate coating conversion agent according to claim 1, wherein the source of nickel ions is at least one selected from the group consisting of nickel nitrate and nickel carbonate.

[0019] (Configuration 4) 4. The zinc phosphate coating conversion agent according to any one of claims 1 to 3, wherein the zinc ion concentration is in the range of 1500 mg / L to 2500 mg / L.

[0020] (Configuration 5) 5. The zinc phosphate coating conversion agent according to any one of claims 1 to 4, wherein the concentration of phosphate ions is in the range of 15,000 mg / L to 18,000 mg / L.

[0021] (Configuration 6) 6. The zinc phosphate coating conversion agent according to any one of claims 1 to 5, wherein the concentration of nitrate ions is in the range of 5,000 mg / L to 12,000 mg / L.

[0022] (Configuration 7) 7. The zinc phosphate coating conversion agent of any one of claims 1 to 6, further comprising manganese ions at a concentration ranging from 200 mg / L to 500 mg / L.

[0023] (Configuration 8) 8. The zinc phosphate coating conversion agent according to any one of claims 1 to 7, further comprising sodium ions at a concentration of 5000 mg / L or less. [Effects of the Invention]

[0024] As described above, the zinc phosphate conversion agent of the present invention contains zinc ions, calcium ions, nickel ions, zinc ions, phosphate ions, and nitrate ions, with the calcium ion concentration ranging from 1000 mg / L to 2000 mg / L and the nickel ion concentration ranging from 1000 mg / L to 2000 mg / L. Therefore, a zinc phosphate coating with a high P ratio equivalent to that of a zinc phosphate coating produced by a dip conversion coating can be produced by spray conversion coating. Therefore, spray conversion coating of a metal product with the zinc phosphate conversion agent of the present invention can provide a base suitable for cationic electrodeposition coating, and a highly corrosion-resistant coating film with corrosion resistance equivalent to that produced by a dip conversion coating can be obtained. [Brief explanation of the drawings]

[0025] [Figure 1] 1 shows an electron microscope photograph of the surface of a test plate that was spray-coated with the zinc phosphate conversion solution of Example 1-5. [Figure 2] 1 shows an electron microscope photograph of the surface of a test plate subjected to spray chemical conversion treatment with the zinc phosphate chemical conversion solution of Comparative Example 1-7. [Figure 3] 1 shows an electron microscope photograph of the surface of a test plate subjected to immersion chemical conversion treatment using the zinc phosphate chemical conversion solution of Reference Example. DETAILED DESCRIPTION OF THE INVENTION

[0026] Hereinafter, embodiments of the present invention will be described in detail. Note that the following embodiments are merely examples of how the present invention can be realized, and are not intended to limit the scope of the present invention.

[0027] A. Zinc phosphate coating agent The zinc phosphate conversion agent of this embodiment is an aqueous solution containing metal ions and an acid component.

[0028] 1. Metal ions The metal ions include zinc ions, calcium ions, and nickel ions, and may include other metal ions such as manganese ions and sodium ions.

[0029] Experience has shown that the zinc ion concentration in the zinc phosphate conversion agent is preferably in the range of 1500 mg / L to 2500 mg / L. This is because if the zinc ion concentration is less than 1500 mg / L, the conversion reaction does not proceed, and if the zinc ion concentration is more than 2500 mg / L, the corrosion resistance of the coating formed by cathodic electrodeposition coating decreases.

[0030] In the zinc phosphate coating conversion agent, the concentration of calcium ions is in the range of 1000 mg / L to 2000 mg / L, preferably in the range of 1200 mg / L to 1500 mg / L. In the zinc phosphate coating conversion agent, the concentration of nickel ions is in the range of 1000 mg / L to 2000 mg / L, preferably in the range of 1200 mg / L to 1500 mg / L. Calcium ions and nickel ions function to inhibit the chemical reaction. When the concentrations of both calcium ions and nickel ions are in the range of 1000 mg / L to 2000 mg / L, it is believed that the chemical reaction is moderately inhibited and good film crystals are obtained. When the concentration of at least one of calcium ions and nickel ions is less than 1000 mg / L, it is believed that the chemical reaction is not adequately inhibited and good film crystals are not obtained. When the concentration of at least one of calcium ions and nickel ions exceeds 2000 mg / L, it is believed that the chemical reaction is excessively inhibited and good film crystals are not obtained.

[0031] When manganese ions are contained in the zinc phosphate coating conversion agent, empirically, the concentration of manganese ions is preferably in the range of 200 mg / L to 500 mg / L. This is because if the manganese ion concentration is less than 200 mg / L, the corrosion resistance of the coating film formed by cathodic electrodeposition coating decreases, and if the manganese ion concentration is more than 500 mg / L, the conversion reaction may be inhibited.

[0032] When sodium ions are contained in the zinc phosphate coating conversion agent, the concentration of sodium ions is preferably 5000 mg / L or less, because if the concentration of sodium ions exceeds 5000 mg / L, it may not be possible to maintain a stable zinc ion concentration.

[0033] Examples of sources of zinc ions include zinc oxide and zinc carbonate. Examples of calcium ion sources include tricalcium phosphate, calcium glycerophosphate, calcium hydroxide, calcium chloride, and calcium oxide. Examples of sources of nickel ions include nickel nitrate and nickel carbonate.

[0034] Examples of sources of manganese ions include manganese phosphate, manganese nitrate, and manganese carbonate. An example of a source of sodium ions is sodium hydroxide.

[0035] 2. Acid component The acid component contains phosphate ions and nitrate ions, and may contain other acid components such as ions containing fluorine atoms and nitrite ions.

[0036] The concentration of phosphate ions in the zinc phosphate coating conversion agent is preferably in the range of 15,000 mg / L to 18,000 mg / L, because this range allows normal conversion properties to be maintained and each component to be stabilized.

[0037] The concentration of nitrate ions in the zinc phosphate conversion agent is preferably in the range of 5000 mg / L to 12000 mg / L, because this range allows normal conversion properties to be maintained and each component to be stabilized.

[0038] When the zinc phosphate coating conversion agent contains ions containing fluorine atoms, the concentration of the ions containing fluorine atoms is preferably in the range of 500 mg / L to 1200 mg / L, because this range of concentration allows normal conversion properties to be maintained and each component to be stabilized.

[0039] When nitrite ions are contained in the zinc phosphate coating conversion agent, the nitrite ion concentration is preferably in the range of 400 mg / L to 700 mg / L. This is because normal conversion can be maintained when the nitrite ion concentration is in this range. If the nitrite ion concentration is less than 400 mg / L, the conversion reaction does not proceed, and rust tends to form, resulting in poor conversion. If the nitrite ion concentration is more than 700 mg / L, temper color may appear on the surface of the metal product, preventing normal conversion.

[0040] Phosphate ion sources include phosphoric acid (orthophosphoric acid). An example of a source of nitrate ions is nitric acid.

[0041] Examples of sources of ions containing fluorine atoms include hydrofluoric acid, fluoroboric acid, and hydrofluosilicic acid. Sources of nitrite ions include sodium nitrite.

[0042] B. Effects The zinc phosphate conversion agent of this embodiment contains zinc ions, calcium ions, nickel ions, zinc ions, phosphate ions, and nitrate ions, with the calcium ion concentration ranging from 1000 mg / L to 2000 mg / L and the nickel ion concentration ranging from 1000 mg / L to 2000 mg / L. Therefore, a zinc phosphate coating with a high P ratio equivalent to that of a zinc phosphate coating produced by a dip-coating chemical conversion treatment can be produced by spray-coating chemical conversion treatment. Therefore, by spray-coating a metal product with the zinc phosphate conversion agent of this embodiment, a substrate suitable for cathodic electrodeposition coating can be obtained, resulting in a highly corrosion-resistant coating with corrosion resistance equivalent to that of a metal product produced by a dip-coating chemical conversion treatment. Furthermore, because a zinc phosphate coating with a P ratio equivalent to that of a zinc phosphate coating produced by a dip-coating chemical conversion treatment can be produced by spray-coating chemical conversion treatment, there is no need to convert the equipment used for spray-coating chemical conversion treatment to that used for dip-coating chemical conversion treatment. [Example]

[0043] The present invention will be described in more detail below with reference to examples and comparative examples. Note that the following examples are merely examples of the present invention and are not intended to limit the present invention.

[0044] The materials used in the examples and comparative examples are as follows. (a) Metal ions Tribasic calcium phosphate (manufactured by Yoneyama Chemical Industry Co., Ltd.) was used as a calcium ion source. Nickel nitrate (manufactured by Junsei Chemical Co., Ltd.) was used as a source of nickel ions. Zinc oxide (manufactured by Wako Pure Chemical Industries, Ltd.) was used as a zinc ion source. Manganese carbonate (manufactured by Wako Pure Chemical Industries, Ltd.) was used as a source of manganese ions. Sodium hydroxide (manufactured by Kanto Chemical Co., Ltd.) was used as a source of sodium ions.

[0045] (b) Acid component Phosphoric acid (manufactured by Kanto Chemical Co., Ltd.) was used as a source of phosphate ions. Nitric acid (manufactured by UBE) was used as a source of nitrate ions. Fluoroboric acid (manufactured by Stella Chemifa Co., Ltd.) was used as a source of ions containing fluorine atoms. Sodium nitrite (manufactured by Kanto Chemical Co., Ltd.) was used as a source of nitrite ions.

[0046] The properties of the zinc phosphate coating conversion agents of the Examples, Comparative Examples, and Reference Examples are shown in Table 1. In the explanations of the Examples, Comparative Examples, and Reference Examples, the concentration of each ion is a value based on the entire zinc phosphate coating conversion agent.

[0047] TIFF0007729641000001.tif80156

[0048] Example 1 The zinc phosphate conversion solution of Example 1 was produced as follows. Phosphoric acid and nitric acid were added to water. Zinc oxide, manganese carbonate, tricalcium phosphate, nickel nitrate, and fluoroboric acid were added to the resulting aqueous solution. Furthermore, the free acidity was adjusted to 0.3 points with sodium hydroxide to optimize the conversion properties, and sodium nitrite was added to properly promote the conversion reaction, resulting in the desired zinc phosphate conversion solution.

[0049] The resulting zinc phosphate coating solution had a phosphate ion concentration of 16,500 mg / L (calculated based on the amount of each material used (hereinafter simply referred to as "calculated value")), a nitrate ion concentration of 12,000 mg / L (calculated value), a zinc ion concentration of 1,500 mg / L (calculated value), a manganese ion concentration of 400 mg / L (calculated value), a calcium ion concentration of 1,200 mg / L (calculated value), a nickel ion concentration of 1,200 mg / L (calculated value), a tetrafluoroborate ion concentration of 700 mg / L (calculated value), a sodium ion concentration of 4,500 mg / L (calculated value), and a nitrite ion concentration of 600 mg / L (calculated value). In the descriptions of the Examples, Comparative Examples, and Reference Examples, the concentrations of each ion are calculated based on the amount of each material used.

[0050] Example 2. In the same manner as in Example 1, a zinc phosphate conversion solution was prepared. In the obtained zinc phosphate coating chemical solution, the phosphate ion concentration was 16,500 mg / L, the nitrate ion concentration was 10,000 mg / L, the zinc ion concentration was 1,500 mg / L, the manganese ion concentration was 400 mg / L, the calcium ion concentration was 1,200 mg / L, the nickel ion concentration was 1,500 mg / L, the tetrafluoroborate ion concentration was 700 mg / L, the sodium ion concentration was 4,500 mg / L, and the nitrite ion concentration was 600 mg / L.

[0051] Example 3. In the same manner as in Example 1, a zinc phosphate conversion solution was prepared. In the obtained zinc phosphate coating chemical solution, the phosphate ion concentration was 16,500 mg / L, the nitrate ion concentration was 10,000 mg / L, the zinc ion concentration was 1,500 mg / L, the manganese ion concentration was 400 mg / L, the calcium ion concentration was 1,200 mg / L, the nickel ion concentration was 1,900 mg / L, the tetrafluoroborate ion concentration was 700 mg / L, the sodium ion concentration was 4,500 mg / L, and the nitrite ion concentration was 600 mg / L.

[0052] Example 4. In the same manner as in Example 1, a zinc phosphate conversion solution was prepared. In the obtained zinc phosphate coating chemical solution, the phosphate ion concentration was 16,500 mg / L, the nitrate ion concentration was 10,000 mg / L, the zinc ion concentration was 1,500 mg / L, the manganese ion concentration was 400 mg / L, the calcium ion concentration was 1,900 mg / L, the nickel ion concentration was 1,200 mg / L, the tetrafluoroborate ion concentration was 700 mg / L, the sodium ion concentration was 4,500 mg / L, and the nitrite ion concentration was 600 mg / L.

[0053] Example 5. In the same manner as in Example 1, a zinc phosphate conversion solution was prepared. In the obtained zinc phosphate coating chemical solution, the phosphate ion concentration was 16,500 mg / L, the nitrate ion concentration was 10,000 mg / L, the zinc ion concentration was 1,500 mg / L, the manganese ion concentration was 400 mg / L, the calcium ion concentration was 1,900 mg / L, the nickel ion concentration was 1,900 mg / L, the tetrafluoroborate ion concentration was 700 mg / L, the sodium ion concentration was 4,000 mg / L, and the nitrite ion concentration was 600 mg / L.

[0054] Comparative Example 1 In Comparative Example 1, no tricalcium phosphate was used, and the zinc phosphate coating conversion solution was produced in the same manner as in Example 1 except for the above. In the obtained zinc phosphate coating chemical solution, the phosphate ion concentration was 16,000 mg / L, the nitrate ion concentration was 10,000 mg / L, the zinc ion concentration was 1,500 mg / L, the manganese ion concentration was 400 mg / L, the calcium ion concentration was 0 mg / L, the nickel ion concentration was 400 mg / L, the tetrafluoroborate ion concentration was 700 mg / L, the sodium ion concentration was 5,500 mg / L, and the nitrite ion concentration was 600 mg / L.

[0055] Comparative Example 2 In the same manner as in Example 1, a zinc phosphate conversion solution was prepared. In the obtained zinc phosphate coating chemical solution, the phosphate ion concentration was 16,500 mg / L, the nitrate ion concentration was 10,000 mg / L, the zinc ion concentration was 1,500 mg / L, the manganese ion concentration was 400 mg / L, the calcium ion concentration was 1,200 mg / L, the nickel ion concentration was 500 mg / L, the tetrafluoroborate ion concentration was 700 mg / L, the sodium ion concentration was 4,500 mg / L, and the nitrite ion concentration was 600 mg / L.

[0056] Comparative Example 3. In the same manner as in Example 1, a zinc phosphate conversion solution was prepared. In the obtained zinc phosphate coating chemical solution, the phosphate ion concentration was 16,500 mg / L, the nitrate ion concentration was 10,000 mg / L, the zinc ion concentration was 1,500 mg / L, the manganese ion concentration was 400 mg / L, the calcium ion concentration was 1,200 mg / L, the nickel ion concentration was 3,000 mg / L, the tetrafluoroborate ion concentration was 700 mg / L, the sodium ion concentration was 4,000 mg / L, and the nitrite ion concentration was 600 mg / L.

[0057] Comparative Example 4. In the same manner as in Example 1, a zinc phosphate conversion solution was prepared. In the obtained zinc phosphate coating chemical solution, the phosphate ion concentration was 16,500 mg / L, the nitrate ion concentration was 10,000 mg / L, the zinc ion concentration was 1,500 mg / L, the manganese ion concentration was 400 mg / L, the calcium ion concentration was 500 mg / L, the nickel ion concentration was 1,200 mg / L, the tetrafluoroborate ion concentration was 700 mg / L, the sodium ion concentration was 4,500 mg / L, and the nitrite ion concentration was 600 mg / L.

[0058] Comparative Example 5. In the same manner as in Example 1, a zinc phosphate conversion solution was prepared. In the obtained zinc phosphate coating chemical solution, the phosphate ion concentration was 16,500 mg / L, the nitrate ion concentration was 10,000 mg / L, the zinc ion concentration was 1,500 mg / L, the manganese ion concentration was 400 mg / L, the calcium ion concentration was 3,000 mg / L, the nickel ion concentration was 1,200 mg / L, the tetrafluoroborate ion concentration was 700 mg / L, the sodium ion concentration was 4,000 mg / L, and the nitrite ion concentration was 600 mg / L.

[0059] Comparative Example 6. In the same manner as in Example 1, a zinc phosphate conversion solution was prepared. In the obtained zinc phosphate coating chemical solution, the phosphate ion concentration was 16,500 mg / L, the nitrate ion concentration was 10,000 mg / L, the zinc ion concentration was 1,500 mg / L, the manganese ion concentration was 400 mg / L, the calcium ion concentration was 500 mg / L, the nickel ion concentration was 500 mg / L, the tetrafluoroborate ion concentration was 700 mg / L, the sodium ion concentration was 4,500 mg / L, and the nitrite ion concentration was 600 mg / L.

[0060] Comparative Example 7. In the same manner as in Example 1, a zinc phosphate conversion solution was prepared. In the obtained zinc phosphate coating chemical solution, the phosphate ion concentration was 16,500 mg / L, the nitrate ion concentration was 10,000 mg / L, the zinc ion concentration was 1,500 mg / L, the manganese ion concentration was 400 mg / L, the calcium ion concentration was 3,000 mg / L, the nickel ion concentration was 3,000 mg / L, the tetrafluoroborate ion concentration was 700 mg / L, the sodium ion concentration was 3,500 mg / L, and the nitrite ion concentration was 600 mg / L.

[0061] Reference example A reference example is Chemicoat No. 5700M (manufactured by Chemicoat Co.), a commercially available zinc phosphate coating conversion solution for immersion.

[0062] In the zinc phosphate coating solution of the reference example, the concentration of phosphate ions is 15,000 mg / L, the concentration of nitrate ions is 8,000 mg / L, the concentration of zinc ions is 1,500 mg / L, the concentration of manganese ions is 400 mg / L, the concentration of calcium ions is 0 mg / L, the concentration of nickel ions is 400 mg / L, the concentration of tetrafluoroborate ions is 700 mg / L, the concentration of sodium ions is 5,000 mg / L, and the concentration of nitrite ions is 600 mg / L.

[0063] <Spray film conversion treatment> Test plates (cold-rolled steel plates (SPCC-SD) manufactured by Nippon Test Panel Co., Ltd.) were spray-coated with the zinc phosphate conversion coating solutions of Examples 1-5 and Comparative Examples 1-7.

[0064] The spray coating conversion treatment was carried out in the following manner. The degreased and water-washed test plates were immersed in 0.2% Chemicoat No. S-2 (manufactured by Chemicoat Co., Ltd.) for 30 seconds to condition the surface. The zinc phosphate coating conversion solutions of Examples 1-5 and Comparative Examples 1-7 were sprayed onto the surface-conditioned test plates at 40°C for 2 minutes. After spraying, the test plates were washed with water and then dried at 100°C for 5 minutes. When spraying zinc phosphate conversion solution, it is stored in a liquid tank and sent out using a pump, etc. A nozzle is attached to the destination, allowing the zinc phosphate conversion solution to efficiently come into contact with the test plate. After contact, the solution returns to the liquid tank and is circulated for reuse.

[0065] <Immersion chemical conversion coating> A test plate (a cold-rolled steel plate (SPCC-SD) manufactured by Nippon Test Panel Co., Ltd.) was subjected to an immersion chemical conversion treatment using the zinc phosphate chemical conversion solution of the reference example.

[0066] The dip coating chemical conversion treatment was carried out in the following manner. The degreased and water-washed test plate was immersed in 0.2% Chemicoat No. S-2 for 30 seconds to condition the surface. The surface-conditioned test plate was then immersed in the zinc phosphate coating solution of the Reference Example at 40°C for 2 minutes. After immersion, the test plate was rinsed with water and dried at 100°C for 5 minutes.

[0067] <Electron microscope photography> The chemically treated test plate was photographed using an electron microscope (TM-3030Plus, manufactured by Hitachi High-Technologies Corporation) at a magnification of 1000x.

[0068] FIG. 1 shows an electron microscope photograph of the surface of a test plate spray-coated with the zinc phosphate conversion solution of Example 1-5, FIG. 2 shows an electron microscope photograph of the surface of a test plate spray-coated with the zinc phosphate conversion solution of Comparative Example 1-7, and FIG. 3 shows an electron microscope photograph of the surface of a test plate immersion-coated with the zinc phosphate conversion solution of Reference Example.

[0069] From the electron microscope photograph in FIG. 1, it can be seen that the zinc phosphate coating formed using the zinc phosphate coating conversion solution of Example 1-5 is composed of uniform and dense crystals. From the electron microscope photograph of FIG. 2, it can be seen that the zinc phosphate coating formed using the zinc phosphate coating conversion solution of Comparative Example 1-7 is composed of needle-like crystals, with gaps existing between the crystals. From the electron micrograph of Fig. 3, it is recognized that the zinc phosphate coating film formed using the zinc phosphate coating film-forming solution of the reference example is composed of uniform and dense crystals.

[0070] <Measurement of P ratio> The P ratios of the zinc phosphate coating films formed using the zinc phosphate coating film-forming solutions of Examples 1-5, Comparative Examples 1-7, and the zinc phosphate coating film-forming solution of the reference example were measured.

[0071] The P ratio was measured as follows. The phosphatized test plate was placed in an X-ray diffractometer (manufactured by Rigaku Corporation, RINT2500HLB), and the zinc phosphate coating film was irradiated with X-rays. From the X-ray diffraction results, the X-ray intensity (H) of hopeite and the X-ray intensity (P) of phosphophyllite were measured, and the P ratio = {P ÷ (P + H)} × 100 was calculated. As shown in Table 1, the P ratios of the zinc phosphate coating films formed using the zinc phosphate coating film-forming solutions of Examples 1-5 were higher than those of the zinc phosphate coating films formed using the zinc phosphate coating film-forming solutions of Comparative Examples 1-7 and were comparable to those of the zinc phosphate coating films formed using the zinc phosphate coating film-forming solution of the reference example.

[0072] <Electrodeposition coating> Cationic electrodeposition coating was performed on the phosphatized test plate. The cationic electrodeposition coating was performed as follows.

[0073] The phosphatized test plate was immersed in a paint (manufactured by Kansai Paint Co., Ltd., product name KG530), and a voltage of 250 V was applied between the electrodes for 4 minutes to form a coating film on the surface of the phosphatized test plate. After forming the coating film, the coating film was baked at 220 °C for 20 minutes.

[0074] <Primary adhesion test> A primary adhesion test based on JIS K5600-5-6 was performed on the electrodeposition-coated test plate.

[0075] The primary adhesion test was performed as follows. One hundred 1mm squares were formed on an electrodeposition coated test panel, and cellophane tape was pressed against the 100 squares. The cellophane tape was quickly peeled off and the state of peeling of the coating was observed. The number of squares where the coating had not peeled off was counted. The more squares where the coating had not peeled off, the better the adhesion performance was evaluated.

[0076] As shown in Table 1, when the test plate was pretreated with any of the zinc phosphate coating solutions of Examples 1-5, Comparative Examples 1-7, and Reference Examples, the primary adhesion test result was 100 / 100 (i.e., no peeling of the coating occurred from any of the 100 squares), indicating good adhesion of the coating.

[0077] <Hot salt water immersion test> The electrodeposition coated test plates were subjected to a hot salt water immersion test.

[0078] The hot salt water immersion test was carried out as follows. A cross-cut was made in the painted test panel, reaching down to the paint and the base material. The test panel with the cross-cut was immersed in a 5% sodium chloride aqueous solution heated to 50°C for 240 hours. After rinsing with water, cellophane tape was pressed along the cross-cut. The cellophane tape was quickly peeled off and the state of peeling of the paint film was observed. The narrower the width of the peeled paint film, the better the corrosion resistance was evaluated. In Table 1, peeling width of the coating film is given an A rating if it is within 1 mm, a B rating if it is more than 1 mm but less than 3 mm, and a C rating if it is 3 mm or more.

[0079] As shown in Table 1, when the test plate was pretreated (spray coating chemical conversion treatment) with the zinc phosphate coating solution of Example 1-5, the result of the saltwater hot water immersion resistance test was rated A. When the test plate was pretreated (spray coating chemical conversion treatment) with the zinc phosphate coating solution of Comparative Example 1-7, the result of the saltwater hot water immersion resistance test was rated B or C. When the test plate was pretreated (immersion coating chemical conversion treatment) with the zinc phosphate coating solution of Reference Example, the result of the saltwater hot water immersion resistance test was rated A. When the test plate was pretreated (spray coating chemical conversion treatment) with the zinc phosphate coating solution of Example 1-5, a coating film with saltwater hot water immersion resistance comparable to that of the test plate pretreated (immersion coating chemical conversion treatment) with the zinc phosphate coating solution of Reference Example was formed.

[0080] <Salt spray resistance test> The electrodeposition coated test panels were subjected to a salt spray resistance test based on the neutral salt spray test method described in JIS Z2371.

[0081] The salt spray resistance test was carried out as follows. A cross-cut was made in the painted test panel, reaching both the paint and the substrate. The test panel with the cross-cut was subjected to a 1000-hour salt spray resistance test based on the neutral salt spray test method described in JIS Z2371. After rinsing with water, cellophane tape was pressed along the cross-cut. The cellophane tape was then quickly peeled off and the state of peeling of the paint film was observed. The narrower the width of the peeled paint film, the better the corrosion resistance was evaluated. In Table 1, peeling width of the coating film is given an A rating if it is within 1 mm, a B rating if it is more than 1 mm but less than 3 mm, and a C rating if it is 3 mm or more.

[0082] As shown in Table 1, when the test plate was pretreated (spray coating chemical treatment) with the zinc phosphate coating solution of Example 1-5, the salt spray resistance test result was rated A. When the test plate was pretreated (spray coating chemical treatment) with the zinc phosphate coating solution of Comparative Example 1-7, the salt spray resistance test result was rated B or C. When the test plate was pretreated (immersion coating chemical treatment) with the zinc phosphate coating solution of Reference Example, the salt spray resistance test result was rated A. When the test plate was pretreated (spray coating chemical treatment) with the zinc phosphate coating solution of Example 1-5, a coating film with salt spray resistance comparable to that of the test plate pretreated (immersion coating chemical treatment) with the zinc phosphate coating solution of Reference Example was formed.

[0083] In the zinc phosphate coating solutions of Examples 1-5, the calcium ion concentration ranged from 1000 mg / L to 2000 mg / L, and the nickel ion concentration ranged from 1000 mg / L to 2000 mg / L. The P ratio of the zinc phosphate coatings produced by spray-coating with the zinc phosphate coating solution of Examples 1-5 was comparable to the P ratio of the zinc phosphate coatings produced by immersion-coating with the zinc phosphate coating solution of Reference Example. Therefore, when the test panels were pretreated (spray-coating) with the zinc phosphate coating solution of Examples 1-5, a highly corrosion-resistant coating was obtained with the same corrosion resistance as when the test panels were pretreated (immersion-coating) with the zinc phosphate coating solution of Reference Example. Furthermore, the coatings produced when the test panels were pretreated (spray-coating) with the zinc phosphate coating solution of Examples 1-5 had high adhesion.

[0084] Although the present invention has been described in detail based on the embodiments and examples, the present invention is not limited thereto. It is obvious that modifications and improvements within the technical spirit of the present invention are possible for those skilled in the art.

Claims

1. A zinc phosphate coating conversion agent used in spray coating conversion treatment, which is a pretreatment for cationic electrodeposition coating, containing calcium ions, nickel ions, zinc ions, phosphate ions, and nitrate ions; The concentration of calcium ions ranges from 1000 mg / L to 2000 mg / L; A zinc phosphate coating conversion agent having a nickel ion concentration ranging from 1000 mg / L to 2000 mg / L.

2. 2. The zinc phosphate coating conversion agent according to claim 1, wherein the calcium ion source is at least one selected from the group consisting of tricalcium phosphate, calcium glycerophosphate, calcium hydroxide, and calcium chloride.

3. 2. The zinc phosphate coating conversion agent according to claim 1, wherein the source of nickel ions is at least one selected from the group consisting of nickel nitrate and nickel carbonate.

4. 2. The zinc phosphate coating conversion agent of claim 1, wherein the concentration of zinc ions ranges from 1500 mg / L to 2500 mg / L.

5. 2. The zinc phosphate coating conversion agent of claim 1, wherein the concentration of phosphate ions is in the range of 15,000 mg / L to 18,000 mg / L.

6. 2. The zinc phosphate coating conversion agent according to claim 1, wherein the concentration of nitrate ions is in the range of 5000 mg / L to 12000 mg / L.

7. A zinc phosphate conversion agent for use in spray conversion coating, which is a pretreatment for cationic electrodeposition coating, comprising: containing calcium ions, nickel ions, zinc ions, phosphate ions, and nitrate ions; The concentration of calcium ions ranges from 1000 mg / L to 2000 mg / L; The concentration of nickel ions ranges from 1000 mg / L to 2000 mg / L; A zinc phosphate coating conversion agent further comprising manganese ions at a concentration ranging from 200 mg / L to 500 mg / L.

8. A zinc phosphate conversion agent for use in spray conversion coating, which is a pretreatment for cationic electrodeposition coating, comprising: containing calcium ions, nickel ions, zinc ions, phosphate ions, and nitrate ions; The concentration of calcium ions ranges from 1000 mg / L to 2000 mg / L; The concentration of nickel ions ranges from 1000 mg / L to 2000 mg / L; A zinc phosphate coating conversion agent further comprising sodium ions at a concentration of 5000 mg / L or less.

9. A zinc phosphate coating chemical agent according to any one of claims 1 to 8, wherein, when the amount of phosphophyllite present in the zinc phosphate coating formed by spray coating chemical treatment with the zinc phosphate coating chemical agent is P and the amount of hopite present is H, the proportion (%) of phosphophyllite present, calculated by {P ÷ (P + H)} × 100, is 90% or more.

Citation Information

Patent Citations

  • Phosphate treatment of metal surface

    JP1985208479A

  • Phosphate chemical conversion film and phosphate chemical conversion treating liquid for galvanized steel sheet

    JP1991068781A

  • Coated product, production thereof, concentrated phosphating agent and concentrated treating agent for replenishment

    JP1991075379A

  • Zinc phosphate film treatment of metallic surface

    JP1992006281A

  • Composition of zinc phosphate film chemical conversion agent

    JP1994057443A