Method for manufacturing coated metal material
By managing the batch chemical conversion process with specific timing and washing steps, the method ensures uniform coating distribution, addressing the issue of poor appearance in batch-processed metal materials.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-08-29
- Publication Date
- 2026-03-12
AI Technical Summary
Batch processing of chemical conversion coatings for small metal materials results in poor appearance due to uneven coating formation caused by prolonged contact of the chemical conversion coating agent with the metal surfaces.
A method involving a chemical conversion coating step followed by a water washing step, with specific time and number of metal pieces processed in batches, and a drying step, adhering to the formula A 6.5 ×log(B)×0.00001<118, to manage the batch process effectively.
The method significantly reduces the likelihood of poor appearance in coated metal materials by ensuring uniform coating distribution and preventing redissolution of the chemical conversion coating.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a method for producing a coated metal material. [Background technology]
[0002] Conventionally, chemical conversion treatments such as phosphate treatment and zirconium chemical conversion treatment have been used as a paint base for automobile bodies, etc., to improve functions such as adhesion to paint films and corrosion resistance after painting. For example, Patent Document 1 discloses a chemical conversion treatment method for a paint base for automobile bodies. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2-277781 Summary of the Invention [Problem to be solved by the invention]
[0004] In recent years, chemical conversion coatings have been applied to purposes other than paint primers, such as providing insulation. Chemical conversion coatings for the purpose of providing insulation are sometimes performed in a batch process, in which a large number of small metal materials are placed in a container and the chemical conversion coating is performed on each container separately. However, batch processing presents new challenges, such as poor appearance of the chemical conversion coating, due to the simultaneous chemical conversion coating of a large number of small metal materials in a single container.
[0005] Therefore, an object of the present disclosure is to provide a method for producing a coated metal material that is less likely to suffer from poor appearance when subjected to chemical conversion treatment by batch processing. [Means for solving the problem]
[0006] As a result of extensive research into solving the above problems, the present inventors have discovered that poor appearance of chemical conversion coatings can be suppressed by appropriately managing the batch chemical conversion coating process.
[0007] That is, the present disclosure: (1) (a) a chemical conversion coating step; and (b) a water washing step, in this order; The (a) film conversion treatment step and the (b) water washing treatment step are carried out by batch treatment, The number of metal materials processed in one batch processing is between 100 and 1,000,000 pieces, a method for producing a coated metal material, which satisfies the following formula (1), when the time between the (a) film chemical conversion treatment step and the (b) water washing treatment step is A [minutes] and the number of metal materials treated in one batch treatment is B [pieces]; A 6.5 ×log(B)×0.00001<118...Equation (1); (2) The method for producing a coated metal material according to (1) above, wherein the chemical conversion treatment in the (a) chemical conversion coating step includes phosphate treatment; (3) (c) a drying step after the (b) water-washing step, The method for producing a coated metal material according to (1) or (2), wherein the time between the (b) water-washing step and the (c) drying step is 30 minutes or less; Includes: [Effects of the Invention]
[0008] According to the present disclosure, it is possible to provide a method for producing a coated metal material that is less likely to suffer from poor appearance during chemical conversion treatment by batch processing. DETAILED DESCRIPTION OF THE INVENTION
[0009] <Metal materials> The metal material used in the method for producing a coated metal material according to this embodiment will be described. The metal material according to this embodiment is not particularly limited as long as it is a metal material capable of forming a chemical conversion coating, but it may be entirely made of metal, or may be combined with other materials as long as at least a portion of the surface is made of metal. Examples of metals include metals containing at least one element selected from the group consisting of Fe, Al, Si, Cr, Zn, Cu, Ni, Sn, Co, Pb, Pt, Ag, Au, Mg, and B. Examples of alloys include iron alloys, zinc alloys, aluminum alloys, and magnesium alloys. Examples of iron alloys include carbon steel, Fe-Si alloys, Fe-Si-Cr alloys, Fe-Al alloys, Fe-Ni alloys, Fe-Co alloys, Fe-Si-Al alloys, and Fe-Si-B-Cr alloys. Examples of aluminum alloys include 1000 series aluminum alloys, 2000 series aluminum alloys, 3000 series aluminum alloys, 4000 series aluminum alloys, 5000 series aluminum alloys, 6000 series aluminum alloys, 7000 series aluminum alloys, 8000 series aluminum alloys, aluminum castings, aluminum alloy castings, and die-cast materials. Examples of magnesium alloys include AZ91, AZ61, and AZ31. The metal may be a plated material. Examples of the plated material include zinc-based plated materials and aluminum-based plated materials. Examples of the zinc-based plated material include electrolytic zinc-plated materials, hot-dip galvanized materials, hot-dip zinc-aluminum-based plated materials, hot-dip zinc-aluminum-magnesium-based plated materials, and alloyed hot-dip galvanized materials. The metal may be in the form of a metal oxide as long as it can form a chemical conversion coating, such as zinc oxide, alumina, zirconia, cordierite, ferrite, barium titanate, lead zirconate titanate, forsterite, zircon, mullite, steatite, etc. The other materials include, but are not limited to, resins, ceramics, etc. Examples of the resin include epoxy resin, polyamide resin, phenol resin, acrylic resin, silicone resin, polyimide resin, and polyamideimide resin. Examples of ceramics include metal nitrides and metal carbides. Examples of metal nitrides include silicon nitride, aluminum nitride, and titanium nitride. Examples of metal carbides include silicon carbide.
[0010] When the metal material is a metal, the chemical conversion coating is presumably formed as a result of an increase in pH near the surface of the metal material due to a metal etching reaction. On the other hand, when the metal material is a metal oxide, the metal oxide on the surface is presumably dissolved by acid, and the dissolved metal ions and the acid form an insoluble salt, forming the coating. For example, in the phosphate treatment of a metal oxide, if the metal oxide is zinc oxide, it is presumed that an insoluble zinc phosphate coating is formed by the following chemical reaction: 3ZnO + 2H3PO4→ Zn3(PO4)2↓ + 3H2O
[0011] The size of the metal material is not particularly limited, but the volume per piece is 1.0 × 10 -8 cm 3 More than 1.0cm 3 Preferably, it is 1.0 x 10 or less. -7 cm 3 Over 1.0 x 10 -1 cm 3 More preferably, it is 1.0×10 or less. -6 cm 3 Over 1.0 x 10 -2 cm 3 It is even more preferable that:
[0012] The shape of the metal material is not particularly limited, and may be, for example, a sphere, a cylinder, or a polygonal prism. It may also have a complex shape. Examples of polygonal prisms include cubes and rectangular parallelepipeds. Rectangular parallelepipeds may be, for example, plate-shaped. Examples of plate-shaped metal materials include cold-rolled steel plates, hot-rolled steel plates, and high-tensile steel plates. Other shapes of metal materials include tool steel, alloy tool steel, spheroidal graphite cast iron, and gray cast iron.
[0013] (Method of manufacturing coated metal material) <(a) Chemical conversion coating process> The method for producing a coated metal material according to this embodiment includes (a) a chemical conversion coating step. The (a) chemical conversion coating step is a step of applying a chemical conversion treatment to a metal material. The chemical conversion treatment is not particularly limited, but for example, phosphate treatment, zirconium chemical conversion treatment, etc. can be performed. Examples of phosphate treatment include zinc phosphate treatment, manganese phosphate treatment, iron phosphate treatment, and zinc calcium phosphate treatment. The chemical conversion treatment includes a step of contacting the metal material with a chemical conversion treatment solution.
[0014] The chemical conversion treatment solution may be, for example, a known phosphate treatment solution or zirconium chemical conversion treatment solution. The phosphoric acid treatment solution is not particularly limited, but may be, for example, a zinc phosphate treatment solution, a manganese phosphate treatment solution, an iron phosphate treatment solution, or a zinc calcium phosphate treatment solution.
[0015] The concentration of phosphate ions in the phosphate treatment solution is not particularly limited, but can be, for example, 10 mmol / L to 850 mmol / L. When the phosphate treatment solution is a zinc phosphate treatment solution, the molar ratio of zinc ions to phosphate ions in the treatment solution (Zn / PO4) can be, for example, 0.01 to 3.0. When the phosphate treatment solution is a manganese phosphate treatment solution, the molar ratio of manganese ions to phosphate ions in the treatment solution (Mn / PO4) can be, for example, 0.02 to 3.0. When the phosphate treatment solution is a calcium zinc phosphate treatment solution, the molar ratio of calcium ions to phosphate ions in the treatment solution (Ca / PO4) can be, for example, 0.02 to 2.0.
[0016] The pH of the phosphate treatment solution is not particularly limited, but can be 1.0 or more and 7.0 or less. Note that the pH in this disclosure is a value at 25°C, and was measured using a pH meter (IM-32P) manufactured by Toa DKK (the pH of the zirconium chemical conversion treatment solution described below was also measured under the same conditions).
[0017] The zirconium concentration in the zirconium chemical conversion treatment solution is not particularly limited, but can be, for example, 0.02 g / L or more and 2.0 g / L or less. The zirconium chemical conversion treatment solution is a treatment solution in which a zirconium compound is dissolved, and examples of the zirconium compound include, but are not limited to, zirconium sulfate, ammonium zirconium sulfate, zirconium nitrate, ammonium zirconium nitrate, zirconium chloride, zirconium acetate, zirconium lactate, ammonium zirconium carbonate, potassium zirconium carbonate, and sodium zirconium carbonate.
[0018] The pH of the zirconium chemical conversion treatment solution is not particularly limited, but can be, for example, 3.0 or more and 7.0 or less.
[0019] The time for which the metal material is brought into contact with the chemical conversion treatment solution is not particularly limited, but can be, for example, from 0.5 minutes to 30 minutes. The temperature of the chemical conversion treatment solution when the metal material is brought into contact is not particularly limited, but can be, for example, from 20°C to 100°C.
[0020] The method for bringing the metal material into contact with the chemical conversion treatment solution is not particularly limited, but examples thereof include immersion treatment, spray treatment, pouring, and combinations of these.
[0021] <(b) Water washing process> In the method for producing a coated metal material according to this embodiment, (a) the chemical conversion coating step is followed by (b) the water-rinsing step. In (b) the water-rinsing step, the metal material subjected to (a) the chemical conversion coating step is brought into contact with water. The water is not particularly limited, and industrial water, city water, deionized water, distilled water, etc. can be used. The method for bringing the metal material into contact with water is not particularly limited, and examples thereof include immersion treatment, spray treatment, pouring, and combinations thereof. The time for which the metal material is brought into contact with water is not particularly limited, and can be, for example, 10 seconds to 300 seconds. Furthermore, the temperature of the water when the metal material is brought into contact is not particularly limited, and can be, for example, 0°C to 40°C.
[0022] The time between (a) the film conversion treatment step and (b) the water washing treatment step is not particularly limited as long as it satisfies the formula (1) described below, but for example, it is preferably within 10 minutes and more preferably within 5 minutes.
[0023] <Batch processing> In the method for producing a coated metal material according to this embodiment, (a) the chemical conversion coating step and (b) the water washing step are carried out in a batch process. The batch process is a treatment method in which a container containing a plurality of metal materials is subjected to treatment. The size of the container is not particularly limited, but is preferably 100 cm 3 More than 50000cm 3The material of the container is not particularly limited, but may be, for example, a stainless steel material, an iron material, an iron alloy material, or a resin material.
[0024] The number of metal materials processed in one batch processing is from 100 to 1,000,000, more preferably from 1,000 to 800,000, and more preferably from 5,000 to 500,000. In the batch processing, the metal materials are stacked in a dense state.
[0025] In the method for producing a coated metal material according to this embodiment, when the time between (a) the chemical conversion coating step and (b) the water rinsing step is A [minutes] and the number of metal materials treated in one batch treatment is B [pieces], the following formula (1) is satisfied. Note that in formula (1), log means common logarithm. A 6.5 ×log(B)×0.00001<118...Equation (1)
[0026] When metal materials are filled into a container as described above and the (a) chemical conversion coating process is performed in a batch process, the gaps between the metal materials are reduced, which presumably makes it easier for the chemical conversion coating agent to remain between the (a) chemical conversion coating process and the (b) water rinsing process. Because the chemical conversion coating agent has a neutral to acidic pH range, if it remains on the metal surface for a long time, the coating formed by the reaction is redissolved, ultimately resulting in uneven coating and poor appearance. This phenomenon is presumably more likely to occur the more metal materials there are. This is presumably because it becomes difficult to drain the chemical conversion coating agent that has adhered to the metal material. When draining is difficult, the large amount of remaining chemical conversion coating agent sequentially supplies high concentrations of acid components to the coating surface, making the coating more likely to redissolve. The uneven redissolution of the coating is presumably causing unevenness and increasing the incidence of poor appearance.
[0027] In the method for producing a coated metal material according to this embodiment, the (b) water-rinsing step may be followed by a (c) drying step. The (c) drying step may be carried out as a batch process. The drying temperature in the (c) drying step is not particularly limited, but may be 40°C or higher and 200°C or lower. The drying time is not particularly limited, but may be 1 minute or higher and 30 minutes or lower.
[0028] The time between the (b) water washing step and the (c) drying step is not particularly limited, but is preferably within 30 minutes, more preferably within 10 minutes.
[0029] In the method for producing a coated metal material according to this embodiment, a cleaning step may be carried out before the (a) chemical conversion coating step. A known method can be used for the cleaning step, such as an acid pickling step, a degreasing step, or an alkali cleaning step. Only one of the above-mentioned steps may be carried out as the cleaning step, or two or more steps may be combined and carried out sequentially. When a cleaning step is carried out, a water rinsing step may be carried out after the cleaning step. When multiple cleaning steps are carried out, a water rinsing step may be carried out after each cleaning step or after some of the cleaning steps. The cleaning step and the accompanying water rinsing step may be carried out as a batch process.
[0030] In the method for producing a coated metal material according to this embodiment, a surface conditioning step may be carried out before the (a) chemical conversion coating step and after the cleaning step. A known method can be used for the surface conditioning step. After the surface conditioning step, it is preferable to carry out the (a) chemical conversion coating step without carrying out a water washing step, a drying step, or the like. The surface conditioning step may be carried out as a batch process. [Example]
[0031] Examples and comparative examples of the present disclosure will be described below, but the present disclosure is not limited to these examples.
[0032] (metallic material) As the metal material, in Examples 1 to 20 and Comparative Examples 1 to 8, cold-rolled steel plate (SPCC) conforming to the JIS G3141:2011 standard was used, with a length and width of 1 mm and a height of 0.3 mm (volume 3 × 10 -4 cm 3 ) and used as test materials. In Example 21, a hot-dip galvanized steel sheet (SGCC) conforming to the JIS G3302:2019 standard was cut into a size of 1 mm in length and 0.8 mm in height (volume: 8 × 10 -4 cm 3 ) and used as test materials.
[0033] Example 1 One hundred metal materials were placed in a 500 mL stainless steel mesh basket and degreased by immersion in a degreasing agent (a 20 g / L solution of FC-E6400 manufactured by Nihon Parkerizing Co., Ltd.) at 60°C for 120 seconds. The materials were then immersed at 25°C for 30 seconds and rinsed with water. Subsequently, in the (a) chemical conversion coating process (referred to as process (a) in Table 1), the materials were immersed in a chemical conversion coating agent (zinc phosphate treatment solution, Nihon Parkerizing Co., Ltd., PB-L3020) at 40°C for 10 minutes to form a chemical conversion coating on the surfaces of the metal materials. The zinc ion concentration in the zinc phosphate treatment solution was 0.02 mol / L, and the phosphate ion concentration was 0.16 mol / L. The molar ratio of zinc ions to phosphate ions (Zn / PO4) in the zinc phosphate treatment solution was 0.13. The surface of the metal material bearing the resulting chemical conversion coating was washed with tap water and then deionized water at 25°C. The time from the end of the (a) chemical conversion coating process to the start of the (b) water washing process (referred to as process (b) in Table 1) was 10 minutes. Thereafter, in the (c) drying process (referred to as process (c) in Table 1), the water was dried in a hot air drying oven at 100°C. The time from the end of the (b) water washing process to the start of the (c) drying process was 5 minutes. The metal material with the coating of Example 1 was manufactured using the above-described series of processes. The values of the left side of the following formula (1) for the manufactured metal material are listed in Table 1. A 6.5 ×log(B)×0.00001<118...Equation (1)
[0034] Example 21 One million metal materials were placed in a 1,300 mL stainless steel mesh basket and degreased by immersion in a degreasing agent (a 20 g / L aqueous solution of FC-E6400, manufactured by Nihon Parkerizing Co., Ltd.) at 60°C for 120 seconds. The materials were then immersed at 25°C for 30 seconds and rinsed with water. Subsequently, in the (a) chemical conversion coating process (referred to as process (a) in Table 1), the materials were immersed in a chemical conversion coating agent (zinc phosphate treatment solution, manufactured by Nihon Parkerizing Co., Ltd., PB-L3020) at 40°C for 10 minutes to form a chemical conversion coating on the surface of the metal materials. The zinc ion concentration in the zinc phosphate treatment solution was 0.02 mol / L, and the phosphate ion concentration was 0.16 mol / L. The molar ratio of zinc ions to phosphate ions (Zn / PO4) in the zinc phosphate treatment solution was 0.13. The surface of the metal material bearing the resulting chemical conversion coating was washed with tap water and then deionized water at 25°C. The time from the end of the (a) chemical conversion coating process to the start of the (b) water rinsing process (referred to as process (b) in Table 1) was 9 minutes. Thereafter, in the (c) drying process (referred to as process (c) in Table 1), the water was dried in a hot air drying oven at 100°C. The time from the end of the (b) water rinsing process to the start of the (c) drying process was 30 minutes. The metal material with a coating of Example 21 was produced by the above series of processes. The value of the left side of the following formula (1) for the produced metal material is shown in Table 1. A 6.5 ×log(B)×0.00001<118...Equation (1)
[0035] (Examples 2 to 21 and Comparative Examples 1 to 8) The coated metal materials of Examples 2 to 21 and Comparative Examples 1 to 8 were produced in the same manner as in Example 1 except for the conditions shown in Table 1.
[0036] (visual defect rate) One hundred metal materials (test pieces) having chemical conversion coatings obtained in each Example and Comparative Example were sampled and their appearances were checked under a microscope. Each test piece was visually inspected for the presence or absence of coating unevenness, and the appearance defect rate (%) was calculated according to the following formula. Appearance defect rate (%) = 100 x (number of metal materials with uneven coating) / 100 A visual defect rate of 10% or more is considered a failure, and a visual defect rate of less than 10% is considered a pass.
[0037] [Table 1] Details of the treatments (solutions) listed in Table 1 are as follows. SPCC: Standard Test Piece Co., Ltd., SPCC-SD SGCC: Standard Test Piece Co., Ltd., untreated SGCC Iron phosphate treatment: PF-1077, manufactured by Nihon Parkerizing Co., Ltd. Zinc calcium phosphate treatment: FT-7, manufactured by Nihon Parkerizing Co., Ltd. Manganese phosphate treatment: PF-M1A, manufactured by Nihon Parkerizing Co., Ltd. Zirconium conversion treatment: Nihon Parkerizing Co., Ltd., PLC-1500
Claims
1. (a) a chemical conversion coating step; and (b) a water washing step, in this order; The (a) film chemical conversion treatment step and the (b) water washing treatment step are carried out by batch treatment, The number of metal materials processed in one batch processing is 100 or more and 1,000,000 or less, A method for producing a coated metal material, wherein the following formula (1) is satisfied when the time between the (a) coating chemical conversion treatment step and the (b) water washing treatment step is A [minutes] and the number of metal materials treated in one batch treatment is B [pieces]. A 6.5 ×log(B)×0.00001<118・・・Equation (1)
2. 2. The method for producing a coated metal material according to claim 1, wherein the chemical conversion treatment in the (a) chemical conversion coating step includes a phosphate treatment.
3. (c) a drying step after the (b) water-washing step, 3. The method for producing a coated metal material according to claim 1, wherein the time between the (b) water-washing step and the (c) drying step is 30 minutes or less.
Citation Information
Patent Citations
Phosphating solution for combined structure and phosphating method
JP1990277781A