Resin coated aluminum seamless can, resin coated aluminum plate and drawing-and-squeezing can
A resin-coated aluminum seamless can with a controlled aluminum hydroxide surface treatment layer addresses adhesion and color tone issues, ensuring robust resin adhesion and corrosion resistance.
Patent Information
- Application Number
- JP2025103510
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-07-07
- Filing Date
- 2025-06-19
- Publication Date
- 2025-09-04
AI Technical Summary
Existing resin-coated aluminum seamless cans face issues with resin adhesion loss during severe forming processes like drawing and ironing, leading to poor corrosion resistance and loss of color tone due to aluminum hydroxide coatings.
A resin-coated aluminum seamless can with a surface treatment layer containing aluminum hydroxide, controlled by a specific peak ratio (Pa/Pb) in the infrared absorption spectrum, ensuring adequate resin adhesion and color tone retention.
The solution provides seamless cans with improved resin adhesion and color tone maintenance, even after severe forming processes, while maintaining corrosion resistance.
Smart Images

Figure 2025129172000001_ABST
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a resin-coated aluminum seamless can, a resin-coated aluminum sheet, and a drawn and ironed can. [Background technology]
[0002] Conventionally, aluminum sheets, which are lightweight and easy to form, have been suitably used as metal materials for containers such as food cans and beverage cans. Resin-coated aluminum sheets, which are aluminum sheets coated with a resin, have long been known as can-making materials, and it is also well known that these resin-coated aluminum sheets are subjected to drawing or drawing and ironing processes to form seamless cans for filling beverages, etc. For example, resin-coated aluminum sheets having a thermoplastic resin film as a resin layer made of a crystalline polyester resin primarily composed of ethylene terephthalate units are used as can-making materials for seamless cans.
[0003] Furthermore, the aluminum sheets used in such resin-coated aluminum sheets for seamless can applications are generally surface-treated aluminum sheets that have been subjected to a surface treatment such as a chemical conversion treatment in order to ensure corrosion resistance and adhesion to the resin layer. One example of such surface treatment is chromate phosphate treatment. Surface-treated aluminum sheets that have been subjected to chromate phosphate treatment have been widely used due to their excellent adhesion to the resin layer. However, from the viewpoint of environmental protection, there is an increasing demand for chromium-free surface treatments. For example, Patent Documents 1 to 4 listed below disclose chromium-free surface treatments in which aluminum hydroxide is formed on the surface of an aluminum substrate. They also disclose that containers and the like are formed using aluminum substrates that have been subjected to such treatments. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2003-013253 [Patent Document 2] Japanese Patent Application Laid-Open No. 2004-216801 [Patent Document 3] Japanese Patent Application Laid-Open No. 2007-176072 [Patent Document 4] Japanese Patent Application Publication No. 11-012762 Summary of the Invention [Problem to be solved by the invention]
[0005] The aluminum hydroxide coating that forms on the surface of aluminum substrates is thought to be primarily composed of alumina monohydrate (AlO(OH)) known as boehmite. Boehmite is primarily used for sealing pores in anodized aluminum coatings and is known as a corrosion-resistant substance. It is also known for its acicular structure with uneven surfaces, which is thought to provide an anchoring effect for resin layers such as paint films and films, improving resin adhesion.
[0006] However, when this aluminum hydroxide coating treatment is applied to a resin-coated aluminum sheet for seamless cans that are formed by severe forming processes such as drawing and ironing, the following problems arise. That is, depending on the conditions of the coating formation treatment, when the can body is subjected to a sterilization process such as retort treatment after forming the seamless can and filling it with contents, the resin layer may peel off due to insufficient adhesion between the aluminum hydroxide coating layer and the resin layer (hereinafter also referred to as "resin adhesion"). Furthermore, the inner surface of the seamless can may have insufficient corrosion resistance against the contents due to the above-mentioned insufficient resin adhesion.
[0007] On the other hand, when aluminum sheets are formed into containers such as seamless cans, designs are often applied that take advantage of the excellent color tones of the aluminum substrate, such as the beautiful silvery-white color and metallic luster. However, when a resin-coated aluminum sheet that has been treated with an aluminum hydroxide coating as described above is subjected to severe forming processes such as drawing and ironing, the silvery-white color and metallic luster inherent to the aluminum substrate are lost, mainly in the processed areas, depending on the conditions of the coating formation process, resulting in a dull white appearance and a loss of color tone.
[0008] The above-mentioned patent documents do not fully consider the resin adhesion when the above-mentioned sterilization treatment such as retort treatment is performed, and further, they do not provide any knowledge about the deterioration of the color tone of the aluminum substrate caused by the aluminum hydroxide coating, and therefore do not solve such problems.
[0009] The present disclosure has been made in consideration of solving such problems, and has an object to provide a resin-coated aluminum seamless can that combines resin adhesion and color tone, and a resin-coated aluminum sheet for producing resin-coated aluminum seamless cans that combines resin adhesion and color tone. [Means for solving the problem]
[0010] In order to solve the above-mentioned problems, one embodiment of the present invention provides a resin-coated seamless aluminum can comprising an aluminum substrate, a surface treatment layer formed on at least one surface of the aluminum substrate, and a resin layer formed on the surface treatment layer, wherein the surface treatment layer contains aluminum hydroxide, and the can exhibits a wavelength of 850 to 1000 cm in an infrared absorption spectrum measured by FT-IR. -1 The height of the absorbance peak is defined as Pa, and the wavenumber is 1000 to 1200 cm -1 When the height of the absorbance peak is defined as Pb, the Pa / Pb value is 0.13 to 3.00.
[0011] In order to solve the above-mentioned problems, a resin-coated aluminum sheet according to one embodiment of the present invention comprises an aluminum base material, a surface treatment layer formed on at least one surface of the aluminum base material, and a resin layer formed on the surface treatment layer, wherein the surface treatment layer contains aluminum hydroxide, and in an infrared absorption spectrum measured by FT-IR, the surface treatment layer has a wavelength of 850 to 1000 cm. -1 The height of the absorbance peak is defined as Pa, and the wavenumber is 1000 to 1200 cm -1 When the height of the absorbance peak is defined as Pb, the Pa / Pb value is 0.13 to 3.00. [Effects of the Invention]
[0012] According to the present disclosure, it is possible to provide a resin-coated aluminum seamless can that combines resin adhesion and color tone. [Brief explanation of the drawings]
[0013] [Figure 1] FIG. 1a is a schematic diagram of a resin-coated aluminum seamless can according to one embodiment, and FIG. 1b is a schematic diagram of a resin-coated aluminum seamless can according to another embodiment. [Figure 2] FIG. 2 is a schematic diagram of a resin-coated aluminum seamless can according to another embodiment. [Figure 3] FIG. 3a is a schematic diagram of a resin-coated aluminum plate according to one embodiment, and FIG. 3b is a schematic diagram of a resin-coated aluminum plate according to another embodiment. [Figure 4] FIG. 2 is a diagram showing an example of an infrared absorption spectrum. DETAILED DESCRIPTION OF THE INVENTION
[0014] Hereinafter, an embodiment of a resin-coated aluminum seamless can according to the present disclosure will be described with reference to the drawings. In this disclosure, the term "resin adhesion" basically refers to the adhesion between the surface treatment layer and the resin layer after the retort treatment following the molding process, as described above. Furthermore, the term "color tone" refers to the color difference (ΔE) and brightness (L *value).
[0015] <Resin-coated aluminum seamless can 100> Fig. 1 is a diagram schematically illustrating one embodiment of a resin-coated aluminum seamless can. As shown in Fig. 1, the resin-coated aluminum seamless can 100 has a bottomed, cylindrical shape in which the can body and the can bottom are integrated. However, the shape of the resin-coated aluminum seamless can 100 of this embodiment is not limited to the shape shown in Fig. 1, and it can be any known shape used for beverage cans, food cans, etc.
[0016] More specifically, the resin-coated aluminum seamless can 100 may have a shape such as a tapered container 120, in which the diameters of the bottom and top (opening) of the can are different and the sidewalls are inclined (see FIG. 2). The tapered portion may have a step (not shown). Furthermore, the resin-coated aluminum seamless can 100 may have a roughly rectangular shape with rounded corners and a shallow bottom (for example, the shape of canned seafood such as sardines), or a square shape (not shown).
[0017] The height of the resin-coated aluminum seamless can 100 can be adjusted appropriately depending on the application.
[0018] The resin-coated aluminum seamless can 100 includes an aluminum substrate 10 , a surface treatment layer 20 formed on at least one surface of the aluminum substrate 10 , and a resin layer 30 formed on the surface treatment layer 20 .
[0019] Although the resin-coated aluminum seamless can 100 shown in FIG. 1a has a surface treatment layer 20 and a resin layer 30 on the outer surface of the can, this is not limiting. That is, the resin-coated aluminum seamless can 100 may have a surface treatment layer 20 and a resin layer 30 on the inner surface of the can (not shown). Furthermore, as shown in FIG. 1b, this embodiment may be a resin-coated aluminum seamless can 110 having a surface treatment layer 20 and a resin layer 30 on both the inner and outer surfaces, in that order from the aluminum substrate 10. In this case, the surface treatment layer 20 and the resin layer 30 on the inner and outer surfaces of the can may be the same or different in type and thickness. Furthermore, although the surface treatment layer 20 and the resin layer 30 are not shown in the tapered container 120 in FIG. 2, the surface treatment layer 20 and the resin layer 30 are formed on at least one of the inner and outer surfaces of the container, as in FIG. 1.
[0020] <Aluminum base material 10> In the resin-coated aluminum seamless can 100, a pure aluminum plate or an aluminum alloy plate can be used as the aluminum substrate 10. The thickness of the aluminum substrate 10 is generally preferably 0.10 mm to 1.00 mm, and particularly preferably 0.15 mm to 0.40 mm. The alloy type of the aluminum substrate 10 is selected depending on the application. For example, from the viewpoints of workability, strength, and corrosion resistance, a JIS 3000 series or 5000 series aluminum alloy plate is used.
[0021] <Surface treatment layer 20> The surface treatment layer 20 contains aluminum hydroxide. Aluminum hydroxide includes alumina monohydrate (AlO(OH)), alumina trihydrate (Al(OH)3), etc. By including these substances, corrosion resistance and resin adhesion can be improved. The aluminum hydroxide in the surface treatment layer 20 has a wavelength of 1000 to 1200 cm in the infrared absorption spectrum measured by FT-IR. -1 The peaks appearing in the range of (more specifically, 1070 cm -1 This can be confirmed by the peak in the vicinity of 1000-1200 cm -1It is known that the peak appearing in this range is an absorbance peak of the Al-OH deformation vibration derived from aluminum hydroxide.
[0022] The surface treatment layer 20 may also contain amorphous alumina (Al2O3). The amorphous alumina in the surface treatment layer 20 has a wavelength of 850 to 1000 cm in the infrared absorption spectrum measured by FT-IR. -1 The peaks appearing in the range of (more specifically, 950 cm -1 This can be confirmed by the peak in the vicinity of 850-1000 cm -1 It is known that the peak appearing in this range is an absorbance peak due to the Al-O stretching vibration of amorphous alumina.
[0023] More specifically, the infrared absorption spectrum measured by FT-IR can be measured by a high-sensitivity reflection method (Reflection Absorption Spectroscopy (RAS) method) using a known Fourier transform infrared spectrophotometer (FT-IR).
[0024] The absorbance peak is measured at a wave number of 1200 cm in the infrared absorption spectrum. -1 Absorbance and wavenumber 850cm -1 The absorbance of the amorphous alumina is determined by drawing a straight line and using this as the baseline. The peaks at wavenumbers of 850 to 1000 cm are derived from the Al-O stretching vibration of the amorphous alumina. -1 Within the range (950cm -1 The highest point from the baseline at the wavenumber of 1000 to 1200 cm is the absorbance peak height Pa. -1 Within the range (1070cm -1 The highest point from the baseline at this point (near the baseline) is taken as the absorbance peak height Pb. The peak ratio "Pa / Pb" is calculated from the obtained value.
[0025] As described above, in the resin-coated aluminum seamless can 100 of this embodiment, the infrared absorption spectrum of the surface treatment layer 20 measured by FT-IR has a wave number of 850 to 1000 cm -1 The height of the absorbance peak derived from amorphous alumina is defined as "Pa", and the wavenumber is 1000 to 1200 cm -1 When the height of the absorbance peak derived from aluminum hydroxide is defined as "Pb," the peak ratio "Pa / Pb" is 0.13 to 3.00.
[0026] In infrared absorption spectra measured by FT-IR, the absorbance of the surface treatment layer is thought to be proportional to the amount of infrared-active chemical species present in the surface treatment layer. Therefore, the peak ratio "Pa / Pb" between the height of the absorbance peak due to amorphous alumina "Pa" and the height of the absorbance peak due to aluminum hydroxide "Pb" is a measure of the quantitative ratio of amorphous alumina to aluminum hydroxide. The larger this value, the greater the amorphous alumina / aluminum hydroxide ratio. Conversely, the smaller this value, the smaller the amorphous alumina / aluminum hydroxide ratio.
[0027] The reason why the inventors focused on the peak ratio "Pa / Pb" in the surface treatment layer 20, i.e., the ratio of amorphous alumina to aluminum hydroxide, in order to obtain the desired resin-coated aluminum seamless can is as follows.
[0028] First, let us consider resin adhesion. Aluminum hydroxide coatings such as boehmite contain amorphous alumina (Al2O3) depending on the conditions of the coating formation process. However, unlike aluminum hydroxide, which is hardly soluble, amorphous alumina is known to dissolve in a short time when immersed in hot water.
[0029] Therefore, if the aluminum hydroxide coating present between the aluminum substrate and the resin layer contains a high proportion of water-soluble amorphous alumina, the coating's insoluble or poorly soluble properties cannot be maintained, and the adhesive surface with the resin layer dissolves during hot water treatment such as retort treatment, making it impossible to obtain sufficient resin adhesion. Therefore, the inventors believed that in order to obtain resin adhesion, it was necessary to control the proportion of amorphous alumina in the coating, and after extensive research, they discovered that by setting the peak ratio "Pa / Pb" to 3.00 or less, the coating's insolubility or poorly soluble properties in hot water could be maintained and sufficient resin adhesion could be obtained.
[0030] Next, we will explain the color tone. When an aluminum hydroxide coating is formed on an aluminum substrate using the method described below, as the growth of acicular structures such as boehmite progresses, the unevenness of the coating tends to scatter light. If the acicular structures grow excessively, the resulting light scattering is thought to result in a whiter color. Furthermore, when a resin-coated aluminum sheet is formed into a seamless can by drawing and ironing, excessive growth of the acicular structures is thought to make the coating more susceptible to cohesive failure during processing. This creates gaps (voids) in the coating, which then scatter light, resulting in an increased whiteness, a loss of metallic luster, and a deterioration in color tone. Therefore, the present inventors have intensively investigated the need to control the growth of the acicular structures to prevent color tone changes from the perspectives of light scattering and cohesive failure of the coating during processing. As a result, they have found that by setting the peak ratio "Pa / Pb" to 0.13 or more, the acicular structures can be grown appropriately, resulting in a good color tone even after processing.
[0031] For these reasons, in this embodiment, it is important that the peak ratio "Pa / Pb" of the surface treatment layer (aluminum hydroxide coating) is within the range of 0.13 to 3.00, which makes it possible to obtain a resin-coated aluminum seamless can that has both the required resin adhesion and color tone.
[0032] In the surface treatment layer of this embodiment, the value of the peak ratio "Pa / Pb" is preferably in the range of 0.13 to 3.00, preferably 0.14 to 2.50, more preferably 0.20 to 2.00, and particularly preferably 0.30 to 1.50. If the value of the peak ratio "Pa / Pb" is greater than the above range, the resin adhesion will be poor. If it is smaller, the color tone will be poor.
[0033] Furthermore, in the surface treatment layer formed on the outer surface of the can, the value of the peak ratio "Pa / Pb" is preferably in the range of 0.13 to 3.00, preferably 0.14 to 2.50, more preferably 0.20 to 2.00, and particularly preferably 0.30 to 1.50. If the value of the peak ratio "Pa / Pb" is greater than the above range, the resin adhesion will be poor. If it is smaller, the color tone will be poor.
[0034] On the other hand, from the standpoint of resin adhesion and corrosion resistance, it is desirable for the surface treatment layer formed on the inner surface of the can to have the aforementioned peak ratio (Pa / Pb) value in the range of 0.30 to 3.00, preferably 0.35 to 2.00. If the peak ratio (Pa / Pb) value is greater than this range, resin adhesion will be poor, resulting in poor corrosion resistance to the contents. On the other hand, if the peak ratio (Pa / Pb) value is less than this range, the acicular structure will have grown excessively, which is presumably what makes the coating more susceptible to cohesive failure during processing when the resin-coated aluminum sheet is formed into a seamless can by drawing and ironing. This creates gaps (voids) in the coating, which can allow the contents to penetrate, leading to corrosion beneath the resin layer, known as under-film corrosion (UFC), and thus poor corrosion resistance.
[0035] In this embodiment, the thickness (film thickness) of the surface treatment layer 20 is preferably 2 nm or more in the case of a seamless can from the viewpoint of resin adhesion of the resin-coated aluminum seamless can 100. On the other hand, the upper limit of the thickness of the surface treatment layer 20 is preferably less than 100 nm from the viewpoints of color tone and corrosion resistance. The optimal thickness of the surface treatment layer 20 depends on the target can shape, etc., but is more preferably 5 nm or more but less than 100 nm, even more preferably 8 to 90 nm, particularly preferably 10 to 80 nm, and most preferably 12 to 45 nm. If the film thickness is greater than the above range, color tone and corrosion resistance may be deteriorated, and if it is smaller, resin adhesion may be deteriorated.
[0036] In the case of a drawn and ironed seamless can, as described below, the can is formed from a resin-coated aluminum sheet by drawing and ironing, and the thickness of the surface treatment layer located in the can body is thinned by the process, similar to that of the aluminum base material, and the thickness of the surface treatment layer in the center of the can body (the thinnest part near the center in the height direction) is preferably 20 to 85%, more preferably 20 to 75%, more preferably 20 to 60%, even more preferably 20 to 50%, particularly preferably 30 to 45%, and most preferably 30% to less than 40% of the thickness of the surface treatment layer in the center of the can bottom. The thickness of the surface treatment layer in the center of the can bottom is more preferably 5 nm to less than 100 nm, even more preferably 8 to 90 nm, particularly preferably 10 to 80 nm, and most preferably 12 to 45 nm.
[0037] In this embodiment, a known method can be applied to measure the thickness of the surface treatment layer 20. Examples of methods that can be applied to measure the thickness of the surface treatment layer 20 include X-ray photoelectron spectroscopy (XPS) and time-of-flight secondary ion mass spectrometry (TOF-SIMS), with TOF-SIMS being particularly preferred.
[0038] TOF-SIMS is a method of mass analysis in which a primary ion beam from a primary ion gun is irradiated onto the surface of a solid sample to be analyzed, and secondary ions sputtered and emitted from the sample surface are mass-separated using the difference in their flight times (flight time is proportional to the square root of weight). Here, by detecting the secondary ion intensity while sputtering is progressing, the concentration distribution of the detected element in the depth direction on the sample surface can be determined by converting the transition time into depth data for the ion intensity of the secondary ions, i.e., the ions of the detected element or molecular ions bonded to the detected element.
[0039] In the present disclosure, etching was performed using TOF-SIMS from the surface side of the surface treatment layer 20 (the surface side opposite to the aluminum substrate) until the aluminum substrate was reached, and the depth at which the secondary ion intensity of the metallic aluminum derived from the aluminum substrate became half of the maximum intensity (the secondary ion intensity of the metallic aluminum when it reached the aluminum substrate) was defined as the film thickness of the surface treatment layer. Note that this depth is the depth in terms of Al2O3.
[0040] As described above, the surface treatment layer 20 of this embodiment contains alumina monohydrate or alumina trihydrate as aluminum hydroxide. It may also contain aluminum oxide (Al2O3) as another compound. The surface treatment layer 20 of this embodiment may also contain trace amounts of compounds present in the treatment solution, such as silicon dioxide (SiO2), magnesium oxide (MgO), manganese oxide (MnO), iron oxide (FeO), calcium oxide (CaO), and phosphoric acid, to the extent that performance is not impaired.
[0041] <Resin layer 30> The resin layer 30 is formed directly or indirectly on the surface treatment layer 20 on the side opposite to the aluminum substrate 10. In this embodiment, a known adhesive layer (adhesive primer layer) or the like may be present between the surface treatment layer 20 and the resin layer 30.
[0042] In this embodiment, the resin layer 30 may be made of a known thermoplastic or thermosetting resin that is typically used to coat a metal substrate. Examples of suitable thermoplastic resins include one or more of polyolefin resin, polyester resin, polycarbonate resin, acrylic resin, polystyrene resin, ABS resin, polyamide resin, fluororesin, and polyvinyl chloride resin. Examples of suitable thermosetting resins include one or more of acrylic resin, unsaturated polyester resin, phenol resin, urea resin, polyurethane resin, silicone resin, polyimide resin, melamine resin, and epoxy resin. A thermoplastic resin is more preferred as the material for the resin layer 30.
[0043] Among the thermoplastic resins, polyolefin resins or polyester resins, and mixtures thereof are more preferably applicable.
[0044] Examples of polyolefin resins that can be preferably used include unsaturated carboxylic acid-modified polyolefin resins such as polyethylene resin, polypropylene resin, ethylene-propylene copolymer resin, ethylene-acrylic acid ester copolymer resin, ethylene-methacrylic acid ester copolymer resin, and ethylene-methacrylic acid copolymer resin, and ionomer resins, and one or more resins such as these can be preferably used.
[0045] As an example of a polyester resin, a polyester resin mainly composed of ethylene terephthalate units is preferred. Specifically, it may be a polyethylene terephthalate resin, but it may also be a copolymerized polyester or a blend thereof containing an acid component other than terephthalic acid in an amount of 35 mol% or less based on the acid component and an alcohol component other than ethylene glycol in an amount of 35 mol% or less based on the alcohol component. Examples of acid components other than terephthalic acid include isophthalic acid, naphthalenedicarboxylic acid, cyclohexanedicarboxylic acid, p-β-oxyethoxybenzoic acid, diphenoxyethane-4,4'-dicarboxylic acid, 5-sodium sulfoisophthalic acid, hexahydroterephthalic acid, succinic acid, adipic acid, sebacic acid, dodecanedioic acid, dimer acid, trimellitic acid, and pyromellitic acid. Examples of alcohol components other than ethylene glycol include glycol components such as propylene glycol, 1,4-butanediol, neopentyl glycol, 1,6-hexylene glycol, diethylene glycol, triethylene glycol, cyclohexanedimethanol, an ethylene oxide adduct of bisphenol A, trimethylolpropane, and pentaerythritol. Examples of polyester resins other than those mainly composed of ethylene terephthalate units include polyester resins mainly composed of butylene terephthalate units and polyester resins mainly composed of ethylene naphthalate units, and blends of these polyester resins may also be used.
[0046] Polyester resin is more preferably used for the resin layer 30, and one or more crystalline polyester resins selected from the group consisting of polyethylene terephthalate resin, polybutylene terephthalate resin, polyethylene terephthalate resin copolymerized with isophthalic acid, and polybutylene terephthalate resin copolymerized with isophthalic acid are particularly preferably used, with polyethylene terephthalate resin copolymerized with isophthalic acid being the most preferred. More specifically, the resin layer 30 is desirably a crystalline polyester resin primarily composed of ethylene terephthalate units containing 2 mol % to 25 mol % of isophthalic acid.
[0047] The resin layer 30 may be a multilayer resin layer, such as a multilayer polyester resin layer having two or more layers copolymerized with isophthalic acid at different ratios. More specifically, the resin layer 30 may include a lower layer having a relatively high isophthalic acid copolymerization ratio and a surface layer having a relatively low isophthalic acid copolymerization ratio. More specifically, the lower layer may be a polyester resin primarily composed of ethylene terephthalate units containing 1 mol % to 20 mol % isophthalic acid, and the surface layer may be a polyethylene terephthalate resin or a polyester resin primarily composed of ethylene terephthalate units containing 15 mol % or less of isophthalic acid, preferably 1 mol % to 10 mol % isophthalic acid. In this case, the lower layer is the layer closest to the aluminum substrate 10, and the surface layer is the layer farthest from the aluminum substrate 10 compared to the lower layer. In this case, the thickness ratio (layer ratio) of the surface layer to the lower layer is preferably in the range of surface layer:lower layer=20:1 to 1:20, more preferably in the range of surface layer:lower layer=10:1 to 1:10.
[0048] Furthermore, the resin layer 30 may be a resin layer in which a plurality of different resins are blended, such as a resin layer in which polyethylene terephthalate resin is blended with an ionomer resin, an ethylene-propylene copolymer resin, or an unsaturated carboxylic acid-modified polyolefin resin, or a resin layer in which polyethylene terephthalate resin or polyethylene terephthalate resin copolymerized with isophthalic acid is blended with polybutylene terephthalate resin, etc. In the case of a resin in which polyethylene terephthalate resin or polyethylene terephthalate resin copolymerized with isophthalic acid is blended with polybutylene terephthalate resin, it is preferable that the polybutylene terephthalate resin is blended in the range of 10 to 50% with the polyethylene terephthalate resin or polyethylene terephthalate resin copolymerized with isophthalic acid.
[0049] The thermoplastic resin such as the crystalline polyester resin may be formed into a film and then laminated onto an aluminum substrate, or may be formed by direct lamination in which a heated and melted thermoplastic resin is extruded into a film shape through a narrow slit of an extrusion molding machine and then laminated directly onto an aluminum substrate. When the film is formed and then laminated, the film is not particularly limited and may be, for example, an unstretched film, a uniaxially stretched film, or a biaxially stretched film.
[0050] The resin layer 30 can be compounded with known resin compounding agents, for example, antiblocking agents such as amorphous silica, inorganic fillers such as calcium carbonate, magnesium carbonate, talc, and glass, various fibers such as glass fiber, carbon fiber, and aramid fiber, antistatic agents, antioxidants such as tocopherol, and ultraviolet absorbers, according to known methods.
[0051] The thermoplastic resin layer 30 may be formed on the surface treatment layer 20 via a conventional adhesive primer layer, such as an epoxy phenolic or polyester phenolic adhesive primer. The adhesive primer layer exhibits excellent adhesion to both the surface treatment layer and the resin layer. By providing the adhesive primer layer on the inner surface of the seamless can, even if the can body is dented by an external impact, such as being dropped, and defects (cracks) develop in the resin layer, metal exposure is suppressed, providing excellent impact resistance (dent resistance). This prevents corrosion in the dented area, even when the contents are highly corrosive, such as acidic beverages. From the standpoint of adhesion and dent resistance, epoxy phenolic adhesive primers are preferably formed from paints containing epoxy resin and phenolic resin in a weight ratio of 50:50 to 99:1, particularly 60:40 to 95:5. From the viewpoint of adhesion and dent resistance, polyester phenol-based adhesive primers are preferably formed from paints containing polyester resin and phenol resin in a weight ratio of 50:50 to 99:1, and more preferably 60:40 to 95:5. The adhesive primer layer is generally preferably formed to a thickness of 0.1 to 10 μm.
[0052] When the resin layer 30 is a crystalline resin such as polyethylene terephthalate, it is preferable that the resin layer 30 has oriented crystals therein, but it is not necessary that the resin layer 30 does not have oriented crystals therein. That is, when the resin-coated aluminum seamless can 100 is a drawn and ironed can, the resin layer 30 in the can body is given a process orientation in the drawing and ironing process, and oriented crystals are formed inside the resin layer 30. On the other hand, the resin layer 30 in the can bottom is given a lower degree of process orientation in the drawing and ironing process, and therefore the amount of oriented crystals therein is relatively smaller than that in the can body.
[0053] When the resin-coated seamless aluminum can 100 is a drawn and ironed can, it is preferable that the amount of oriented crystals contained in the resin layer 30 is greater in the can body than in the can bottom. The presence or absence of oriented crystals inside the resin layer 30 and their amount can be confirmed by a known method, such as by peak intensity using X-ray diffraction. When a resin layer made of a crystalline resin such as polyethylene terephthalate is formed on the inner surface of the resin-coated seamless can of this embodiment, the X-ray diffraction intensity I due to the (100) plane parallel to the surface of the resin layer 30 on the inner surface is 1. (100) and the X-ray diffraction intensity I from the parallel (1-10) plane (1-10) X-ray diffraction intensity ratio (R) = I (100) / I (1-10) is preferably 1.8 or more in the can body and less than 1.8 in the can bottom. That is, to explain this point, the X-ray diffraction intensity ratio (R) of the resin layer on the inner surface of the can body characterizes the orientation structure of the crystals to the film surface, and the greater the X-ray diffraction intensity of the (100) plane relative to the X-ray diffraction intensity of the (1-10) plane, the more the plane orientation to the film surface is indicated.
[0054] When the resin-coated seamless can of this embodiment is a drawn and ironed can, it is desirable that the X-ray diffraction intensity ratio (R) of the resin layer of a crystalline resin such as polyethylene terephthalate on the inner surface of the can body be 1.8 or more, more preferably 2.2 or more, even more preferably 2.4 or more, and particularly preferably 2.6 or more, with the (100) plane preferentially oriented. This allows oriented crystals to form within the resin layer to a certain extent in the can height direction through drawing / thinning and / or ironing processes, thereby suppressing corrosion beneath the resin layer, known as under-film corrosion (UFC), when acidic contents are filled into the seamless can, and improving the impact resistance (dent resistance) of the resin layer. Furthermore, this prevents flavor components of the contents from adsorbing to the resin layer during storage as a canned product, thereby suppressing changes in the flavor of the contents. On the other hand, if the X-ray diffraction intensity ratio (R) of the can body is less than 1.8, UFC is more likely to occur, resulting in poor corrosion resistance. Furthermore, the impact resistance (dent resistance) also decreases, which is undesirable.
[0055] When the resin-coated seamless can of this embodiment is a drawn and ironed can, the X-ray diffraction intensity ratio (R) of the resin layer in the can bottom is preferably less than 1.8. That is, the orientation state of the resin layer in the can bottom is the same as that of the resin layer before processing. Therefore, in order to withstand the severe processing of the can body, it is desirable that the orientation state of the resin layer in the can bottom is substantially close to unoriented. Since the can bottom is not severely processed and is substantially preserved in the form of the resin-coated aluminum sheet before processing, corrosion resistance and impact resistance can be satisfied even in a nearly unoriented state.
[0056] On the other hand, when the resin-coated aluminum seamless can 100 is a drawn can, there is not much difference between the can body and the can bottom in the degree of processing orientation imparted to the resin layer 30. Therefore, the amount of oriented crystals contained in the resin layer 30 is roughly the same in the can body and the can bottom.
[0057] The thickness of the resin layer 30 is not particularly limited and can be the same as that of known seamless cans. More specifically, the thickness of the resin layer 30 is preferably in the range of 0.5 to 200 μm, more preferably in the range of 1 to 40 μm, even more preferably in the range of 2 to 30 μm, and particularly preferably in the range of 5 to 20 μm. When the seamless can is a drawn and ironed can, the thickness of the resin layer at the center of the can body (the thinnest part near the center in the can height direction) is 20 to 85%, preferably 20 to 75%, more preferably 20 to 60%, even more preferably 20 to 50%, particularly preferably 30 to 45%, and most preferably 30% or more but less than 40% of the thickness of the resin layer at the center of the can bottom. The thickness of the resin layer 30 at the center of the can bottom is preferably in the range of 0.5 to 200 μm, more preferably in the range of 1 to 40 μm, even more preferably in the range of 2 to 30 μm, and particularly preferably in the range of 5 to 20 μm.
[0058] On the other hand, when the resin-coated aluminum seamless can 100 is a drawn and ironed can, the thickness of the resin layer 30 in the can body is relatively thinner than the thickness of the resin layer 30 in the can bottom. This is because the can side wall is thinned overall in the drawing and ironing process.
[0059] On the other hand, when the resin-coated aluminum seamless can 100 is a drawn can, the resin layer 30 in the can body is compressed in the thickness direction by a mold during the drawing process. Therefore, when the resin-coated aluminum seamless can 100 is a drawn can, the thickness of the resin layer 30 in the can body is relatively thicker than that in the can bottom.
[0060] In this embodiment, the resin-coated aluminum seamless can 100 preferably has a lightness L* value of 85 or more on the can outer surface. In this embodiment, the lightness L* value can be measured using a spectrophotometer in accordance with JIS Z 8781-4:2013. When measuring the lightness L* value, the can body of the resin-coated aluminum seamless can 100 is cut out and flattened, and the lightness L* value can be measured and evaluated at a portion with a can height of 60 mm and a rolling angle of 0°. In this embodiment, if the resin layer on the outer surface of the seamless can is printed or if the resin layer itself is colored or has low transparency, it is desirable to remove the resin layer 30 by a known method and measure the lightness L* value of the can outer surface, leaving only the aluminum substrate and the surface treatment layer.
[0061] The brightness L* value of the outer surface of the can is preferably 85 or more, more preferably 86 or more, and even more preferably in the range of 87-92. Furthermore, when the resin layer 30 is removed by a known method and only the aluminum substrate and the surface treatment layer are measured, the lightness L* value of the outer surface of the can is preferably 86 or more, more preferably 87 or more, and even more preferably in the range of 88 to 93.
[0062] The chromaticity a* and b* values of the outer surface of the resin-coated aluminum seamless can 100 are not particularly limited, but are preferably in the range of -5 or more and 5 or less, more preferably -3 or more and 3 or less.
[0063] In this embodiment, the resin-coated aluminum seamless can 100 has a color difference (ΔE) on the outer surface relative to a reference can not having the surface treatment layer 20 of preferably less than 5, more preferably less than 4, and even more preferably less than 3.
[0064] Color difference (ΔE) is an index shown using the L*a*b* color system specified in JIS Z8730:2009, and is calculated using the following formula based on the difference in CIE lightness L* and the difference in chromaticity a* and b* between two object colors. Lightness, chromaticity, and color difference can be measured using a colorimeter, etc.
[0065] An example of a specific method for calculating the color difference (ΔE) in this embodiment is as follows: The can body of the resin-coated aluminum seamless can 100 is cut out and flattened, and the lightness (L * value) and chromaticity (a * value and b * In addition, the lightness (L value) of a can (reference product) manufactured in the same manner except that it does not have the surface treatment layer 20 is also measured. * value) and chromaticity (a * value and b * Then, the color difference (ΔE) between the resin-coated aluminum seamless can 100 and a reference product is calculated using the following formula (1). ΔE=((ΔL*) 2 +(Δa*) 2 +(Δb*) 2 ) 1 / 2 ···(1) ΔL*=L*1-L*0, Δa*=a*1-a*0, Δb*=b*1-b*0 ΔL*: change in L* value, L*0: L* value of the reference product, L*1: L* value of this embodiment Δa*: change in a* value, a*0: a* value of the reference product, a*1: a* value of this embodiment Δb*: change in b* value, b*0: b* value of the reference product, b*1: b* value of this embodiment
[0066] <Manufacturing method for resin-coated aluminum seamless cans> The following describes a method for manufacturing the resin-coated aluminum seamless can 100. Note that the manufacturing method described in this embodiment is merely an example, and the present invention is not limited to this method.
[0067] The method for producing the resin-coated aluminum seamless can 100 includes at least (I) a step of producing a resin-coated aluminum plate, and (II) a can-making step of forming the obtained resin-coated aluminum plate into a seamless can.
[0068] (II) The can-making process for forming seamless cans will be described in detail below. (I) The manufacturing process for resin-coated aluminum sheets will be described later. Known forming methods can be used in the can-making process. For example, the resin-coated aluminum sheet is punched into a predetermined shape and size, and then formed into various containers using a press die. Conventionally known forming methods such as drawing, drawing and redrawing, drawing and ironing, deep drawing, and drawing, bending, stretching, and ironing can be used as the forming method. However, drawing and ironing is particularly preferred in this embodiment. The resin-coated aluminum sheet used in this embodiment has excellent adhesion between the resin layer and the surface treatment layer, and therefore can be formed into seamless cans by severe processes such as drawing, drawing and deep drawing, drawing and ironing, and drawing, bending, stretching, and ironing without causing breakage or peeling of the resin layer in the flange-forming portion. In this embodiment, the resin-coated aluminum plate is used, on the surface of which a resin layer 30 is formed in advance, thereby reducing the coefficient of friction of the surface against the processing tool and enabling processing under dry conditions without the use of coolant (coolant / lubricant). This also reduces the amount of cleaning water used in the container manufacturing process and omits the painting and baking processes that are performed after container formation, thereby enabling container manufacturing with a low environmental impact.
[0069] In the can-making process for forming the seamless can of this embodiment, the can body of the seamless can is preferably thinned by bending and stretching by drawing and redrawing the resin-coated aluminum sheet, or by drawing and ironing, so that the thickness of the central part of the can body is 20 to 85%, preferably 20 to 75%, more preferably 20 to 60%, even more preferably 20 to 50%, even more preferably 25 to 45%, and most preferably 30 to 40% of the thickness of the can bottom. If the thickness is greater than the above range, the can body is not sufficiently thinned and is not fully satisfactory from the economic standpoint. On the other hand, if the thickness is less than the above range, the resin layer cannot follow the processing, and there is a risk of metal exposure.
[0070] In the can-making process for forming seamless cans according to this embodiment, the resulting seamless cans are preferably subjected to at least one heat treatment to remove residual stresses in the resin layer caused by processing. Removing the residual stresses in the resin layer improves adhesion between the resin layer and the surface-treated layer after processing, and, when the resin layer is a crystalline resin such as polyethylene terephthalate, heat-sets the oriented crystals in the can body. This heat treatment is generally performed at a temperature of Tg + 50°C or higher, based on the glass transition point (Tg) of the resin layer, and preferably within a range of Tg + 100 to the melting point (Tm) - 5°C. Temperatures lower than this range tend to insufficiently relieve the residual stresses in the resin layer, resulting in poor post-processing, such as necking-in. Temperatures higher than this range tend to dissolve the oriented crystals formed during can forming, resulting in poor corrosion resistance and impact resistance (dent resistance) of the can body. In the case of a multi-layered film having two or more resin layers, it is preferable to heat-treat the bottommost resin layer within the above-mentioned temperature range. This heat treatment improves the heat resistance of the resin layer, improves adhesion to the aluminum substrate, and also improves processability in post-processing such as necking and flanging, as well as corrosion resistance, impact resistance (dent resistance), and flavor.
[0071] <Resin-coated aluminum sheet> A resin-coated aluminum plate 300 that can be used to manufacture the resin-coated aluminum seamless can 100 is described below. FIG. 3 is a schematic diagram illustrating the resin-coated aluminum plate 300 according to this embodiment. As shown in FIG. 3, the resin-coated aluminum plate 300 includes an aluminum substrate 10′, a surface treatment layer 20′ formed on at least one surface of the aluminum substrate 10′, and a resin layer 30′ formed on the surface treatment layer 20′. While the resin-coated aluminum plate 300 shown in FIG. 3a has the surface treatment layer 20′ and the resin layer 30′ on one surface thereof, the present disclosure is not limited thereto. As shown in FIG. 3b, a resin-coated aluminum plate 310 may also be used, having the surface treatment layer 20′ and the resin layer 30′ on both surfaces of the aluminum substrate 10′. The aluminum substrate 10′, the surface treatment layer 20′, and the resin layer 30′ correspond to the aluminum substrate 10, the surface treatment layer 20, and the resin layer 30, respectively, included in the resin-coated aluminum seamless can 100 described above. Therefore, only the differences will be described below, and a description of the common configuration will be omitted.
[0072] In this embodiment, the thickness of the surface treatment layer 20' is preferably 2 nm or more from the viewpoint of resin adhesion. On the other hand, the upper limit of the thickness of the surface treatment layer 20' is preferably less than 100 nm from the viewpoint of color tone and corrosion resistance. The optimal thickness of the surface treatment layer 20' depends on the target can shape, etc., but is more preferably 5 nm or more but less than 100 nm, even more preferably 8 to 90 nm, particularly preferably 10 to 80 nm, and most preferably 12 to 45 nm.
[0073] In this embodiment, the thickness of the resin layer 30' is not particularly limited, but is preferably in the range of 0.5 to 200 μm, more preferably in the range of 1 to 40 μm, and even more preferably in the range of 2 to 20 μm. Generally, the thicker the resin layer, the better the corrosion resistance, but the lower the resin adhesion, so there is an optimum thickness range depending on the application.
[0074] The Pa / Pb ratio does not change due to forming processes such as drawing, drawing and ironing, etc. Therefore, the Pa / Pb ratio of the surface treatment layer 20′ in the resin-coated aluminum sheet 300 is characterized by being 0.13 to 3.00, similar to that of the resin-coated aluminum seamless can 100.
[0075] In this embodiment, when the resin layer 30' of the resin-coated aluminum sheet 300 is a crystalline resin such as polyethylene terephthalate, it is preferably unoriented from the viewpoint of processability, because this provides excellent drawing and thinning properties in drawing and / or ironing, allowing the can body to be highly thin-walled, and also facilitating the increase in the height of seamless cans.
[0076] <Method of manufacturing resin-coated aluminum sheet> Next, a method for manufacturing the resin-coated aluminum sheet 300 in this embodiment (the above-mentioned (I) manufacturing process of the resin-coated aluminum sheet) will be described below. Note that the manufacturing method described here in this embodiment is merely an example, and is not limited to this method.
[0077] The method for producing a resin-coated aluminum sheet in this embodiment includes a surface treatment step of forming a surface treatment layer 20' containing aluminum hydroxide on an aluminum substrate 10', and a resin coating step of forming a resin layer 30'. Note that the surface treatment step is performed by measuring the infrared absorption spectrum by FT-IR, and the wavelength range of 850 to 1000 cm, which is mainly derived from the Al-O stretching vibration of amorphous alumina, is observed. -1 The height of the absorbance peak is defined as Pa, and the peak height at wavenumbers of 1000 to 1200 cm is mainly due to the Al-OH deformation vibration of aluminum hydroxide. -1 When the height of the absorbance peak is defined as Pb, the surface treatment layer 20' is formed so that the value of Pa / Pb is 0.13 to 3.00.
[0078] The surface treatment step is not particularly limited as long as it can set the peak ratio Pa / Pb to a value of 0.13 to 3.00. For example, the aluminum substrate 10' can be immersed in a solution (treatment agent) at 20 to 100°C and pH 6 to 13 for 0.1 to 30 seconds, or can be exposed to water vapor (treatment agent) at 100 to 140°C for 0.1 to 120 seconds.
[0079] That is, the treating agent for the surface treatment can be a solution at 20° C. to 100° C. or water vapor at 100° C. to 140° C. The higher the temperature of the treating agent, the shorter the time required to form the surface treatment layer 20′.
[0080] When treating the aluminum substrate 10′ by immersing it in a solution (treatment agent), the pH of the treatment agent can be in the range of pH 6 to 13. Aluminum hydroxide is hardly formed in an acidic solution with a pH of less than 6, but a stable coating can be formed in water with a pH of 7 or higher or an alkaline solution with a pH of 8 to 13.
[0081] The reason for using an alkali in the surface treatment solution is to dissolve in an extremely short time any naturally formed oxide film present on the surface of the aluminum substrate before treatment. Generally, the naturally formed oxide film on an aluminum substrate is a coating mainly composed of aluminum oxide, and can be dissolved in an alkaline solution in an extremely short time. However, the higher the pH of the solution, the higher the proportion of amorphous alumina in the surface treatment layer 20', so a more preferable pH range is pH 8 to 10.
[0082] The surface treatment solution used in the surface treatment step is preferably pure water. Ion-exchanged water with an electrical conductivity of 10 μS / cm or less may also be used. The reason why pure water or ion-exchanged water is preferred is that the proportion of amorphous alumina contained in the surface treatment layer 20′ increases as the phosphorus, calcium, silicon, magnesium, and iron concentrations in the surface treatment solution increase. If any of the phosphorus, calcium, silicon, magnesium, and iron concentrations exceeds 1 ppm, the proportion of amorphous alumina contained in the surface treatment layer 20′ increases sharply. Therefore, it is preferable to control the concentrations of these elements to 1 ppm or less. More preferably, it is 0.1 ppm or less.
[0083] When the surface treatment solution used in the surface treatment step is alkaline (pH 8 to 13), preferred solutions include an aqueous solution of sodium carbonate, an aqueous solution of sodium aluminate, an aqueous solution of sodium hydroxide, an aqueous solution of potassium hydroxide, etc. The water used in the alkaline solution is preferably the above-mentioned pure water or ion-exchanged water.
[0084] Specific examples of gas-based treatment agents include water vapor and superheated steam. In this case, the temperature of the water vapor is preferably 100°C to 140°C. Furthermore, the temperature of the superheated steam is preferably 120°C to 350°C. The higher the temperature, the shorter the processing time required to form a surface treatment layer 20' suited to the application. In the case of superheated steam, the aluminum substrate surface becomes wet with condensation the moment it is placed in a superheated steam furnace, or a process is required in which the aluminum substrate 10', previously wet with water, is placed in a superheated steam furnace and dried. This is because a coating containing aluminum hydroxide is rapidly formed when the moisture on the aluminum substrate surface evaporates.
[0085] The manufacturing method of this embodiment may include a pretreatment step prior to the surface treatment step. The pretreatment step is carried out as a step of removing a natural oxide film present on the surface of the aluminum base material 10'. Specifically, the pretreatment step may be an immersion treatment using an alkaline solution or cathodic electrolysis treatment. Specific conditions for the immersion treatment may include an alkaline solution with a pH of 8 to 13, a solution temperature of 20°C to 90°C, and an immersion time of 0.1 to 10 seconds. Specific conditions for the cathodic electrolysis treatment may include an alkaline solution with a pH of 8 to 13, a solution temperature of 20°C to 90°C, a cathodic electrolysis time of 0.1 to 10 seconds, and a current density of 1 to 10 A / dm 2 The above pretreatment step removes the native oxide film present on the surface of the aluminum base material and suppresses local dissolution of the aluminum base material, thereby forming a more homogeneous surface treatment layer 20' containing aluminum hydroxide. In particular, from the viewpoint of homogenizing the surface treatment layer 20', cathodic electrolysis is preferable to immersion treatment because it can remove the native oxide film more uniformly. Furthermore, if necessary, prior to the pretreatment step, a known degreasing treatment may be carried out as a surface cleaning step to remove rolling oil, rust-preventive oil, etc. The degreasing agent is not particularly limited, and known degreasing agents such as organic solvent-based degreasing agents and acidic or alkaline aqueous degreasing agents can be used.
[0086] Next, the resin coating process may involve forming a resin layer 30' on the surface-treated layer 20' formed as described above. The resin layer 30' can be formed by any method. For example, if the resin layer 30' is a thermoplastic resin, the resin may be directly laminated in a molten state onto the surface-treated aluminum plate, or a film processed on a separate line may be thermocompressed onto a heated surface-treated aluminum plate on a lamination line. Furthermore, as mentioned above, an adhesive primer layer may be formed between the surface-treated layer 20' and the resin layer 30' to enhance dent resistance. The adhesive primer layer may be pre-formed on the surface-treated layer on the surface-treated aluminum plate, or may be pre-formed on a resin layer such as a thermoplastic resin film. If the resin layer 30' is a thermosetting resin, the resin may be applied using a roll coater followed by drying in an oven, or spray-coated and then dried in an oven.
[0087] <Example> The present disclosure will be described in more detail below with reference to examples. First, the measurement methods used in the examples will be described.
[0088] [Calculation of absorbance peak ratio (Pa / Pb)] The absorbance in the infrared absorption spectrum of the surface treatment layer 20 of the resin-coated aluminum seamless can 100 was calculated from the surface-treated aluminum plate using a Fourier transform infrared spectrophotometer (FT-IR) by a high-sensitivity reflection method (Reflection Absorption Spectroscopy (RAS) method) under the following conditions. A gold-deposited mirror was used as the background. A polarizer was used to detect only parallel polarized light.
[0089] Equipment: JASCO Corporation FTIR-6600 type A Measurement conditions Measurement method: RAS method Accessories used: PIKE Advanced Grazing Angle Detector: MCT Wavenumber resolution: 4cm -1 Accumulation count: 64 Measurement temperature: room temperature Measurement atmosphere: air Measurement wavenumber range: 4000~500cm -1
[0090] The absorbance peak was measured on a surface-treated aluminum plate. First, as shown in Figure 4, the infrared absorption spectrum was measured at several 1200 cm -1 Absorbance and wavenumber 850cm -1 The absorbance of the amorphous alumina is determined by drawing a straight line and using this as the baseline. The peaks at wavenumbers of 850 to 1000 cm are derived from the Al-O stretching vibration of the amorphous alumina. -1 The highest point from the baseline within this range was taken as the absorbance peak height Pa. In addition, the peak originating from the Al-OH deformation vibration of aluminum hydroxide was taken as the peak height Pa within the wavenumber range of 1000 to 1200 cm. -1 Within this range, the highest point from the baseline was taken as the absorbance peak height Pb. The absorbance peak ratio (Pa / Pb) was calculated from the measured Pa and Pb. This is shown together with the calculated absorbance peak ratio (Pa / Pb) in Table 1. The absorbance peak ratio value obtained by the above-mentioned measurement method matches the absorbance peak ratio value obtained by measuring the resin-coated aluminum seamless can 100 after removing the resin layer 30 by a known method. An example of measuring the absorbance peak ratio value from the resin-coated aluminum seamless can 100 is shown below.
[0091] A 350 mL drawn and ironed can (resin-coated aluminum seamless can) obtained from the resin-coated aluminum plate of Example 4 produced by the method (ii) described below was heat-treated in an oven at 200°C for 90 seconds. Next, a can wall portion with a height of 60 mm was cut into a 6 cm x 6 cm piece, and the resin layers 30 on the inner and outer surfaces were removed by a known method, leaving only the aluminum substrate 10 and the surface treatment layer 20. The absorbance peak and the absorbance peak ratio were measured by the method described above, and the results were Pa 0.0045, Pb 0.030, and Pa / Pb 0.15.
[0092] [Calculation of the film thickness of the surface treatment layer] The film thickness of the surface treatment layer was calculated from the surface-treated aluminum plate using a time-of-flight secondary ion mass spectrometer (TOF-SIMS) under the following conditions: Starting from the surface side of the surface treatment layer of the surface-treated aluminum plate, soft etching was repeatedly performed at a constant speed using a Cs (cesium) ion gun, while mass analysis of the coating constituents was performed. Etching was continued until the aluminum substrate was reached, and the depth at which the secondary ion intensity of the metallic aluminum derived from the aluminum substrate was half of its maximum intensity (the secondary ion intensity of the metallic aluminum when it reached the aluminum substrate) was taken as the film thickness of the surface treatment layer. Note that the depth is the depth in terms of alumina.
[0093] Equipment: ION TOF, TOF.SIMS5 Measurement conditions Primary ion type: Bi Etching gun type: Cs Measurement area: 50μm × 50μm
[0094] [Retort adhesion evaluation] Resin adhesion in a humid environment was tested and evaluated using the following method using drawn and ironed cans (resin-coated seamless aluminum cans) obtained from resin-coated aluminum sheets prepared by method (i) described below. First, a cutter was used to make a slit in the film (resin layer) on the exterior surface of a 350 mL drawn and ironed can at a height of 90 mm from the bottom of the can. The can was placed in a retort oven while immersed in tap water and subjected to retort treatment at 125°C for 45 minutes. The maximum film peel length below the cutter-made part of the removed can was measured and evaluated as follows. ◎: Film peeling length 10mm or less 〇: Film peel length over 10mm and up to 20mm △: Film peel length over 20mm and up to 30mm ×: Film peeling length over 30 mm
[0095] [Color Evaluation] The can body of a 350 mL drawn and ironed can (resin-coated aluminum seamless can) obtained from a resin-coated aluminum plate produced by method (ii) described below was cut out and flattened. The color tone of the outer surface was measured at a point approximately 60 mm high and at an angle of 0° rolling. The measuring instrument used was a portable integrating sphere spectrophotometer Ci64 manufactured by X-Rite. Specifically, the lightness (L * value) and chromaticity (a * value and b * After measuring the color difference (ΔE) from the reference product (Comparative Example 1), the color difference (ΔE) from the reference product (Comparative Example 1) was calculated using the following formula (1).
[0096] ΔE=((ΔL*) 2 +(Δa*) 2 +(Δb*) 2 ) 1 / 2 ···(1) ΔL*=L*1-L*0, Δa*=a*1-a*0, Δb*=b*1-b*0 ΔL*: change in L* value, L*0: L* value of Comparative Example 1, L*1: L* value of Example Δa*: change in a* value, a*0: a* value of Comparative Example 1, a*1: a* value of Example Δb*: change in b* value, b*0: b* value of Comparative Example 1, b*1: b* value of Example Based on the obtained ΔE, the following judgments were made: ◎: ΔE is less than 3 ○: ΔE is 3 or more and less than 4 △: ΔE is 4 or more and less than 5 ×: ΔE is 5 or more
[0097] In the 350 mL drawn and ironed cans (resin-coated aluminum seamless cans) obtained from the resin-coated aluminum sheets of Examples 3, 4, and 5 produced by the method (ii) described below, the can wall portion near the can height of 60 mm and at the rolling angle of 0° was cut out to a size of 6 cm x 6 cm and flattened. Next, the outer resin layer 30 was removed by a known method, leaving only the aluminum substrate 10 and the surface treatment layer 20. After that, the lightness (L * The results are shown below. L of the squeezed and ironed can of Example 3 *Value: 90.31 L of the squeezed and ironed can of Example 4 * Value: 88.29 L of the squeezed and ironed can of Example 5 * Value: 86.97
[0098] [Corrosion resistance evaluation] First, a 350 mL drawn and ironed can (resin-coated aluminum seamless can) obtained from the resin-coated aluminum sheet prepared by method (ii) below was heat-treated in an oven at 200°C for 90 seconds. Next, a 4 cm x 4 cm specimen was cut from the inner surface of the can body at a height of 60 mm and at a 90° angle to the rolling direction. Two cross-cuts were made in the specimen at a 45° angle to the rolling direction, reaching the substrate. The specimen was then immersed in a corrosion model solution (aqueous solution containing 1.0% and 0.5% sodium chloride and anhydrous citric acid by mass) at 37°C for 2 weeks. The specimen was then removed from the model solution, and the cross-cut area and its surroundings were visually inspected for peeling of the film (resin layer) or discoloration due to the formation of corrosion products. The maximum width of discoloration or film peeling around the cross-cut area was evaluated as follows: ◎: Maximum width is less than 1mm per side ○: Maximum width per side is 1mm or more and less than 2mm △: Maximum width per side is 2mm or more and less than 3mm ×: Maximum width per side is 3mm or more
[0099] [Dent resistance evaluation] The following evaluation method was performed using a resin-coated aluminum sheet prepared by the method (ii) described below and a 350 mL drawn and ironed can (resin-coated aluminum seamless can) obtained from a resin-coated aluminum sheet with an adhesive primer prepared by the method (iii) described below. The surface-treated aluminum sheet used was the surface-treated aluminum sheet of Example 2. First, the open edge of the drawn and ironed can was trimmed, and then it was heat-treated in an oven at 200°C for 90 seconds. Next, the open edge was necked and flanged, and then 350 g of Coca-Cola (trademark) contents were filled, and the lid was tightened in the usual manner. The can was then placed horizontally, and a 1 kg metal weight was dropped vertically from a height of 30 mm onto the lower surface of the side wall (near the bottom) of the can to create a dent. After storing the can with the lid facing up at 37°C for 1.5 months, the corrosion condition of the dent on the inner surface of the can was visually observed, and dent resistance was evaluated. The results are shown below. Drawn and ironed can of Example 2 (without adhesive primer): Corrosion observed Drawn and ironed can of Example 2 (with adhesive primer): No corrosion
[0100] [Calculation of X-ray diffraction intensity ratio (R)] A 350 mL drawn and ironed can (resin-coated seamless aluminum can) obtained from a resin-coated aluminum plate prepared by the method (ii) described below was heat-treated in an oven at 200°C for 90 seconds. A 3 cm x 3 cm piece was then cut out from the center of the can bottom, and the aluminum substrate was dissolved by a known method to leave only the inner resin layer. This was then fixed to a flat aluminum alloy plate with double-sided tape to prepare a measurement sample. A 3 cm x 3 cm piece was also cut out from the can wall with a height of 60 mm. The aluminum substrate was dissolved by a known method to leave only the inner resin layer. This was then fixed to a flat aluminum alloy plate with double-sided tape to prepare a measurement sample. The X-ray diffraction intensities of the (100) and (1-10) planes were measured under the following measurement conditions, and the X-ray diffraction intensity ratio (R) of the can bottom and can wall (R = I) was calculated. (100) / I (1-10) was calculated.
[0101] X-ray diffraction equipment: Rigaku Corporation, RINT-2500 X-ray:CuKαX-ray (wavelength λ=0.1542nm) Tube voltage: 45kV Tube current: 200mA Divergence slit: 1 / 2° Receiving slit: 0.15 mm
[0102] The maximum X-ray diffraction intensity observed in the range of 2θ = 25.0 to 27.0° was used for the (100) plane, and the maximum X-ray diffraction intensity observed in the range of 2θ = 22.0 to 24.0° was used for the (1-10) plane. Background subtraction was performed using the Sonneveld-Visser method.
[0103] The drawn and ironed can of Example 1, which uses a resin-coated aluminum plate produced by the method (ii) above, was subjected to a heat treatment at 200°C for 90 seconds, and the X-ray diffraction intensity ratio (R) of the inner resin layer of the can bottom and can wall was measured. (100) / I (1-10) The X-ray diffraction intensity ratio (R) of the can bottom was 1.7, and the X-ray diffraction intensity ratio (R) of the can wall was 2.9.
[0104] Example 1 An aluminum substrate with alloy type A3104, temper H19, and thickness of 0.27 mm was prepared. After the rolling oil on the aluminum substrate was degreased using a known method, it was immersed in a treatment liquid (ion-exchanged water at 95°C) (surface treatment step). The treatment time was 8 seconds. The water was removed with a roller and the substrate was dried with a dryer to obtain a surface-treated aluminum plate with a surface treatment layer containing aluminum hydroxide formed on both sides in the same manner. The film thickness and absorbance peak ratio (Pa / Pb) of the surface treatment layer of the obtained surface-treated aluminum plate were calculated and are shown in Table 1.
[0105] Next, a resin layer was thermocompression bonded onto the surface treatment layer of the obtained surface-treated aluminum plate to prepare a resin laminated plate (resin-coated aluminum plate). Specifically, the resin laminated plate was prepared by the following three methods (i) to (iii).
[0106] (i) A non-stretched two-layer polyethylene terephthalate film (20 μm thick) was laminated on both sides of a heated surface-treated aluminum plate, and then quenched in water to obtain a resin-laminated plate. The two-layer polyethylene terephthalate film used was a film consisting of a surface layer of polyethylene terephthalate copolymerized with 2 mol% isophthalic acid (IA) and a bottom layer of polyethylene terephthalate copolymerized with 15 mol% isophthalic acid (IA), laminated in a layer ratio of 4:1 for the surface layer:bottom layer.
[0107] (ii) Stretched polyethylene terephthalate films were laminated on both sides of a heated surface-treated aluminum plate, which was then quenched in water to obtain a resin-laminated plate. The surface that would become the inside of the can was a polyethylene terephthalate film (thickness 19 μm) copolymerized with 11 mol% isophthalic acid (IA). The surface that would become the outside of the can was a stretched two-layer polyethylene terephthalate film (thickness 12 μm) consisting of a surface layer of polyethylene terephthalate copolymerized with 7.5 mol% isophthalic acid (IA) and a bottom layer of polyethylene terephthalate copolymerized with 15 mol% isophthalic acid (IA), laminated in a layer ratio of 1:5 for the surface layer:bottom layer. X-ray diffraction confirmed that the films on the inside and outside sides after lamination were unoriented.
[0108] (iii) Stretched polyethylene terephthalate films were laminated on both sides of the heated surface-treated aluminum plate and then quenched in water to obtain a resin-laminated sheet. The surface that would become the inside of the can was a polyethylene terephthalate film (19 μm thick) copolymerized with 11 mol% isophthalic acid (IA), with a polyester phenol-based adhesive primer pre-applied to a thickness of 1 μm on the laminated side. The surface that would become the outside of the can was a stretched two-layer polyethylene terephthalate film (12 μm thick) consisting of a surface layer of polyethylene terephthalate copolymerized with 7.5 mol% isophthalic acid (IA) and a bottom layer of polyethylene terephthalate copolymerized with 15 mol% isophthalic acid (IA), laminated in a layer ratio of 1:5 for the surface layer:bottom layer. X-ray diffraction confirmed that the films on the inside and outside sides after lamination were unoriented.
[0109] 50 mg / m on both sides of the obtained resin laminated board 2 The blank was punched out to a diameter of 142 mm to produce a first cup. This first cup was then processed into a 350 mL drawn and ironed can with a reduction rate of 65% using a can-making machine (BodyMaker). Can diameter: approx. 66 mm Can height: approx. 130 mm Thickness near the center of the can body relative to the original plate thickness (bottom of the can): Approximately 35%
[0110] The drawn and ironed cans were evaluated for retort adhesion on the exterior of the can, color tone on the exterior of the can, and corrosion resistance on the interior of the can. The results of each evaluation are shown in Table 1.
[0111] (Examples 2 to 5) The immersion time in the treatment solution (treatment time) in the surface treatment step was as shown in Table 1. Other than that, the procedure was the same as in Example 1. The results are shown in Table 1.
[0112] (Comparative Example 1) An aluminum substrate having an alloy type of A3104, temper type of H19, and a thickness of 0.27 mm was prepared. After the rolling oil on the aluminum substrate was degreased by a known method, the substrate was evaluated in the same manner as in Example 1 without any surface treatment. The results are shown in Table 1. The coating that formed naturally after degreasing was a coating mainly composed of amorphous alumina, and the absorbance peak ratio (Pa / Pb) was 13.98. The results are shown in Table 1.
[0113] (Comparative Examples 2 to 5) The immersion time in the treatment solution (treatment time) in the surface treatment step was as shown in Table 1. Other than that, the procedure was the same as in Example 1. The results are shown in Table 1.
[0114] (Reference example) The aluminum alloy plate having the phosphate chromate treatment film was used to form drawn and ironed cans and evaluate them in the same manner as in Example 1. The results are shown in Table 1.
[0115] [Table 1]
[0116] From the above examples and comparative examples, it was confirmed that by setting the Pa / Pb value of the surface treatment layer to 0.13 to 3.00, it is possible to obtain a resin-coated aluminum seamless can that has both resin adhesion and a good color tone on the outer surface of the can after retort treatment. It was also confirmed that by setting the Pa / Pb value to 0.30 to 3.00, it is possible to obtain a resin-coated aluminum seamless can that also has excellent corrosion resistance on the inner surface of the can. [Industrial Applicability]
[0117] The resin-coated aluminum seamless can of the present disclosure is suitable for use as a beverage can or a beverage cup. [Explanation of symbols]
[0118] 100 Resin-coated aluminum seamless can 10 Aluminum substrate 20 Surface treatment layer 30 resin layer
Claims
1. an aluminum substrate; a surface treatment layer formed on at least one surface of the aluminum base; a resin layer formed directly or indirectly on the surface treatment layer; Including, The surface treatment layer contains aluminum hydroxide, and in an infrared absorption spectrum measured by FT-IR, the wave number is 850 to 1000 cm -1 The height of the absorbance peak is defined as Pa, and the wave number is 1000 to 1200 cm -1 When the height of the absorbance peak is defined as Pb, the value of Pa / Pb is 0.13 to 3.
00. A resin-coated aluminum seamless can.
2. 2. The resin-coated aluminum seamless can according to claim 1, wherein the thickness of the surface treatment layer is 2 nm or more and less than 100 nm.
3. 3. The resin-coated aluminum seamless can according to claim 1, wherein the L* value of the can body is 85 or more.
4. The resin-coated aluminum seamless can according to claim 1 or 2, wherein the resin layer contains a crystalline polyester resin.
5. 3. The resin-coated aluminum seamless can according to claim 1, which is a drawn and ironed can.
6. 6. The resin-coated aluminum seamless can according to claim 5, wherein the thickness of the central portion of the can body is 20 to 85% of the thickness of the central portion of the can bottom.
7. 3. The resin-coated aluminum seamless can according to claim 1, wherein the amount of oriented crystals contained in the resin layer is greater in the can body than in the can bottom.
8. 3. The resin-coated aluminum seamless can according to claim 1, wherein the resin layer contains a crystalline polyester resin, and the crystalline polyester resin is a polyester resin mainly composed of ethylene terephthalate units and containing 2 mol% to 25 mol% of isophthalic acid.
9. X-ray diffraction intensity I from the (100) plane parallel to the surface of the resin layer (100) and the X-ray diffraction intensity I from the parallel (1-10) plane (1-10) X-ray diffraction intensity ratio (R) = I (100) / I (1-10) 3. The resin-coated aluminum seamless can according to claim 1, wherein the can body has a viscosity of 1.8 or more and the can bottom has a viscosity of less than 1.
8.
10. 3. The resin-coated aluminum seamless can according to claim 1, wherein the resin layer is a multi-layer resin layer, and the thickness ratio of the surface layer to the lower layer is surface layer:lower layer=20:1 to 1:
20.
11. the can has the surface treatment layer and the resin layer on the outer surface side, and the Pa / Pb value of the surface treatment layer is 0.13 to 3.00; The resin-coated aluminum seamless can according to claim 1 or 2.
12. the surface treatment layer and the resin layer are provided on the inner surface side of the can, and the Pa / Pb value of the surface treatment layer is 0.30 to 3.00; The resin-coated aluminum seamless can according to claim 1 or 2.
13. an aluminum substrate; a surface treatment layer formed on at least one surface of the aluminum base; a resin layer formed on the surface treatment layer; and Including, The surface treatment layer contains aluminum hydroxide, and in an infrared absorption spectrum measured by FT-IR, the wave number is 850 to 1000 cm -1 The height of the absorbance peak is defined as Pa, and the wave number is 1000 to 1200 cm -1 When the height of the absorbance peak is defined as Pb, the value of Pa / Pb is 0.13 to 3.
00. A resin-coated aluminum plate characterized by:
14. A resin-coated aluminum seamless can comprising the resin-coated aluminum sheet according to claim 13.
Citation Information
Patent Citations
Surface-treated aluminum material for two-piece can and production of surface-treated aluminum material for two-piece can
JP1999012762A
Aluminum-alloy structural material superior in adhesiveness to coating and method for evaluating adhesiveness to coating of aluminum-alloy structural material
JP2003013253A
Laminate and packaging material using this laminate
JP2004216801A
Resin coated aluminum plate and manufacturing method of the same
JP2007176072A