Resin-coated metal sheet, metal container, and method for manufacturing resin-coated metal sheet

A three-layer resin-coated metal sheet with controlled polyolefin dispersion in the outermost layer addresses resin coating layer breakage and ink adhesion issues, enhancing slip resistance and ink adhesion for durable metal containers.

JP7732160B1Active Publication Date: 2025-09-02JFE STEEL CORP
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Patent Information

Application Number
JP2025534821
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2024-03-01
Filing Date
2025-02-12
Publication Date
2025-09-02
Estimated Expiration
2045-02-12

AI Technical Summary

Technical Problem

Existing resin-coated metal sheets face issues with resin coating layer breakage or scraping during can body production and inadequate ink adhesion due to the use of lubricating components that inhibit affinity with printing ink.

Method used

A resin-coated metal sheet with a three-layer structure resin coating layer, where the outermost layer contains polyolefin particles dispersed at a specific number density and distribution, and controlled production conditions ensure excellent slip properties, abrasion resistance, and ink adhesion.

Benefits of technology

The solution provides a resin-coated metal sheet with improved slip resistance, abrasion resistance, and ink adhesion, preventing resin coating layer breakage and ensuring durable, aesthetically appealing metal containers.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a resin-coated metal sheet having excellent lubricity, abrasion resistance, and ink adhesion in the resin coating layer. The resin-coated metal sheet of the present invention is a resin-coated metal sheet having a resin coating layer containing a polyester resin and satisfying predetermined requirements on at least one surface of a metal sheet, the outermost layer of the resin coating layer containing a polyolefin satisfying the predetermined requirements, and the number density of polyolefin particles on the surface of the outermost layer of the resin coating layer is 50 particles / cm. 2 or more, and m defined by the following formula (1) is 0.20 or more. TIFF0007732160000008.tif17157Here, let the total number of polyolefin particles on the surface of the outermost layer be N, A i1 : The number of polyolefin particles whose center of gravity is located within 50 μm of the i-th particle A i2 : The number of polyolefin particles whose center of gravity is located within 50 μm to 100 μm of the i-th particle where i is an integer ranging from 1 to N.
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Description

[Technical Field]

[0001] The present invention relates to a resin-coated metal sheet, a metal container, and a method for producing a resin-coated metal sheet. [Background technology]

[0002] Laminated metal sheets have been developed, in which the surface of metal sheets such as tin-free steel (TFS) and aluminum, which are used as materials for metal containers, is coated with a thermoplastic resin film. Laminated metal sheets are widely used in the fields of beverage cans and food cans, which require strict forming processes.

[0003] In recent years, from the viewpoint of resource conservation and material cost reduction, the materials used for metal containers, particularly the metal plates and resin coating layers, have been made thinner by tightening processing conditions. As a result, the degree of processing during can body production increases, and there is a possibility that the resin coating layer located on the outer surface of the metal container may break or be scraped, especially after forming. In light of this, there is a need for material design that suppresses breakage or scraping of the resin coating layer during can body production. As a technology for suppressing breakage or scraping of the resin coating layer, Patent Document 1 proposes a method of adding a lubricating component to the resin coating layer to improve the slip properties and scraping resistance of the resin coating layer.

[0004] Furthermore, the resin coating layer located on the outer surface of the container after molding is subjected to a printing process to improve design. If the affinity between the printing ink applied by the printing process and the resin coating layer is low, sufficient ink adhesion cannot be ensured, and the printing ink may peel off during can processing, potentially damaging the design and aesthetic appeal of the can's appearance. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] International Publication No. 2019 / 116706 Summary of the Invention [Problem to be solved by the invention]

[0006] Although the lubricating component added to the resin coating layer prevents the resin coating layer from breaking or being scraped, it may inhibit the affinity between the printing ink applied in the printing process and the surface of the resin coating layer, which may cause the ink to peel off during processing. Therefore, there is a demand for a resin-coated metal sheet that has excellent ink adhesion in addition to the slipperiness and scrape resistance of the resin coating layer.

[0007] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a resin-coated metal sheet having a resin coating layer that is excellent in slipperiness, abrasion resistance, and ink adhesion, and a method for producing the same. [Means for solving the problem]

[0008] The present inventors conducted extensive research to solve the above-mentioned problems and discovered the following. Conventionally, even if only the amount and particle size of the lubricating component contained in the resin coating layer were specified, if the distribution position of the lubricating component were biased, excellent properties could not be ensured. Therefore, by controlling the number density and dispersion state of the lubricating component present on the outermost surface of the resin coating layer, a resin coating layer with excellent slip properties, abrasion resistance, and ink adhesion can be obtained. Furthermore, by setting the stretching conditions of the sheet-shaped molded body when producing a laminate film to be thermocompressed to a metal plate to specified conditions and by setting the temperatures of the metal plate and laminating rolls within appropriate ranges when thermocompressing the laminate film to the metal plate, the dispersion state of the lubricating component can be controlled.

[0009] That is, the gist and configuration of the present invention are as follows.

[0010] [1] A resin-coated metal plate having a resin coating layer containing a polyester resin on at least one side of a metal plate, the resin coating layer has at least a three-layer structure including an outermost layer, an intermediate layer, and a lowermost layer, The melting point of the resin coating layer is 230°C or higher and 260°C or lower, the outermost layer contains a polyolefin which is at least one of an acid-modified polyolefin and an oxidized polyolefin, The melting point of the polyolefin is 70°C or higher and 145°C or lower, the polyolefin is dispersed in the form of particles in the outermost layer, The dispersion state of the polyolefin particles is such that the number density of the polyolefin particles is 50 particles / cm on the surface of the outermost layer. 2 The resin-coated metal sheet satisfies the above, and m defined by the following formula (1) is 0.20 or more.

number

[0011] [2] The resin-coated metal sheet according to [1] above, wherein the weight-average molecular weight of the polyolefin is 2,000 or more and 50,000 or less.

[0012] [3] The resin-coated metal sheet according to [1] or [2] above, wherein the acid value of the polyolefin is 1.0 mgKOH / g or more and 90 mgKOH / g or less.

[0013] [4] The resin-coated metal sheet according to any one of the above [1] to [3], wherein the outermost layer and the lowermost layer each contain 1.0 mass % to 10.0 mass % of lubricating inorganic particles.

[0014] [5] The resin-coated metal sheet according to any one of the above [1] to [4], wherein the intermediate layer contains 10% by mass or more and 35% by mass or less of inorganic particles.

[0015] [6] The resin-coated metal sheet according to any one of [1] to [5] above, wherein the thickness of the outermost layer and the bottom layer is 1.0 μm or more and 5.0 μm or less, and the thickness of the intermediate layer is 6.0 μm or more and 30 μm or less.

[0016] [7] A metal container made using the resin-coated metal plate according to any one of [1] to [6] above, The resin coating layer is located on the outside of the metal container.

[0017] [8] A step of co-extruding a first composition containing a polyester resin and a polyolefin which is at least one of an acid-modified polyolefin and an oxidized polyolefin and has a melting point of 70°C or more and 145°C or less, a second composition containing the polyester resin, and a third composition containing the polyester resin, using a kneading extruder, and discharging the resultant through a T-die to obtain a sheet-like molded product in which the first composition, the second composition, and the third composition constitute a first layer, a second layer, and a third layer, respectively; a step of cooling and solidifying the molded body to obtain a laminated film; Next, a step of stretching the laminated film at least once under conditions of a stretching temperature of 85°C or higher and 100°C or lower and a stretching ratio of 3.5 times or higher and 5.0 times or lower to obtain a resin film including the first layer, the second layer, and the third layer; Next, using a laminating roll controlled to a temperature of 110°C or higher and 120°C or lower, the resin film is thermocompressed onto at least one surface of a metal plate controlled to a temperature of 260°C or higher and 290°C or lower, to obtain a resin-coated metal plate having at least a three-layer structure with the first layer, the second layer, and the third layer as the outermost layer, the middle layer, and the bottom layer, respectively, on at least one surface of the metal plate, and provided with a resin coating layer having a melting point of 230°C or higher and 260°C or lower; A method for producing a resin-coated metal sheet having the above structure.

[0018] [9] The method for producing a resin-coated metal sheet according to [8] above, wherein the weight-average molecular weight of the polyolefin is 2,000 or more and 50,000 or less.

[0019]

[10] The method for producing a resin-coated metal sheet according to the above [8] or [9], wherein the acid value of the polyolefin is 1.0 mgKOH / g or more and 90 mgKOH / g or less.

[0020]

[11] The method for producing a resin-coated metal sheet according to any one of [8] to

[10] above, wherein the first composition and the third composition each contain 1.0 mass % or more and 10.0 mass % or less of lubricating inorganic particles.

[0021]

[12] The method for producing a resin-coated metal sheet according to any one of the above [8] to

[11] , wherein the second composition contains 10% by mass or more and 35% by mass or less of inorganic particles.

[0022]

[13] The method for producing a resin-coated metal sheet according to any one of [8] to

[12] above, wherein the thickness of the outermost layer and the bottom layer is 1.0 μm or more and 5.0 μm or less, respectively, and the thickness of the intermediate layer is 6.0 μm or more and 30 μm or less. [Effects of the Invention]

[0023] According to the present invention, it is possible to provide a resin-coated metal sheet having a resin coating layer excellent in slip resistance, abrasion resistance, and ink adhesion, a method for producing the same, and a metal container made using the resin-coated metal sheet. [Brief explanation of the drawings]

[0024] [Figure 1] FIG. 2 is a diagram showing an outline of a cross section of a resin-coated metal plate. DETAILED DESCRIPTION OF THE INVENTION

[0025] Hereinafter, embodiments of the resin-coated metal sheet, the metal container, and the method for manufacturing the resin-coated metal sheet according to the present invention will be described. Note that the embodiment described below is an example of the present invention, and the configuration of the present invention is not limited to this specific example.

[0026] (Resin-coated metal plate) FIG. 1 is a cross-sectional view showing the configuration of a resin-coated metal sheet according to one embodiment of the present invention. As shown in FIG. 1, the resin-coated metal sheet 1 includes a metal sheet 2, a resin coating layer 3 formed on the front surface of the metal sheet 2, and a resin coating layer 4 formed on the back surface of the metal sheet 2. The resin coating layer 3 has at least a three-layer structure, and in FIG. 1, it has a three-layer structure consisting of an outermost layer 3a, an intermediate layer 3b, and a bottom layer 3c. The resin coating layer 4 may also have a similar three-layer structure. The resin coating layer 4 is optional, and only the resin coating layer 3 may be provided on one side of the metal sheet 2.

[0027] [Metal plate] The metal plate is preferably a steel plate, and is preferably tinplate or tin-free steel (TFS). For tinplate, the plating amount per side is 0.5 g / m 2 More than 15g / m 2 It is preferable to use tinplate with a thickness of 50 mg / m² on each side of the TFS. 2 More than 200g / m 2 The following metal chromium layer is applied on top of that with a metal chromium equivalent of 3 mg / m per side 2 More than 30g / m 2 It is preferable that the metal plate has the following chromium oxide layer: The type of metal plate is not particularly limited as long as it can be formed into the desired shape, but metal plates having the following components and manufacturing method are preferred. (1) A metal plate obtained by recrystallization annealing low-carbon steel with a C (carbon) content of 0.010% by mass or more and 0.10% by mass or less using continuous annealing. (2) A metal sheet obtained by subjecting low-carbon steel containing 0.010% by mass or more and 0.10% by mass or less to recrystallization annealing and overaging treatment by continuous annealing. (3) A metal sheet obtained by recrystallization annealing low-carbon steel with a C content of 0.010% by mass or more and 0.10% by mass or less using box annealing. (4) A metal sheet obtained by subjecting low-carbon steel having a C content of 0.010% by mass or more and 0.10% by mass or less to recrystallization annealing by continuous annealing or box annealing, followed by secondary cold rolling (double reduced rolling). (5) A metal sheet obtained by recrystallization annealing IF (Interstitial Free) steel, which is made by adding elements that fix the dissolved C, such as Nb and Ti, to ultra-low carbon steel with a C content of 0.003 mass% or less using continuous annealing.

[0028] The mechanical properties of the metal sheet are not particularly limited as long as they can be formed into the desired shape. To obtain favorable workability and maintain favorable can body strength, the yield point (YP) of the metal sheet is preferably 220 MPa or more and 580 MPa or less. Furthermore, the metal sheet preferably has a Lankford value (r-value), which is an index of plastic anisotropy, of 0.8 or more. Furthermore, the absolute value of the in-plane anisotropy Δr of the r-value is preferably 0.7 or less.

[0029] The components of the metal sheet that satisfy the above mechanical properties are not particularly limited, but may contain, for example, components such as Si, Mn, P, S, Al, and N. The Si content is preferably 0.001% by mass or more and preferably 0.1% by mass or less. The Mn content is preferably 0.01% by mass or more and preferably 0.6% by mass or less. The P content is preferably 0.002% by mass or more and preferably 0.05% by mass or less. The S content is preferably 0.002% by mass or more and preferably 0.05% by mass or less. The Al content is preferably 0.005% by mass or more and preferably 0.100% by mass or less. The N content is preferably 0.0005% by mass or more and preferably 0.020% by mass or less. The metal sheet may also contain other components such as Ti, Nb, B, Cu, Ni, Cr, Mo, and V. However, from the viewpoint of ensuring corrosion resistance, the total content of these component elements is preferably 0.02% by mass or less.

[0030] The thickness of the metal plate is not particularly limited, but is preferably 0.20 mm or more and 0.25 mm or less.

[0031] [Resin coating layer] The resin coating layer contains a polyester resin, which is a polymer composed of dicarboxylic acid units and glycol units.

[0032] Examples of the dicarboxylic acid unit that can be used include units derived from aromatic dicarboxylic acids such as terephthalic acid, isophthalic acid, naphthalenedicarboxylic acid, diphenyldicarboxylic acid, diphenylsulfonedicarboxylic acid, diphenoxyethanedicarboxylic acid, 5-sodiumsulfoisophthalic acid, and phthalic acid; aliphatic dicarboxylic acids such as oxalic acid, succinic acid, adipic acid, sebacic acid, dimer acid, maleic acid, and fumaric acid; alicyclic dicarboxylic acids such as cyclohexanedicarboxylic acid; and oxycarboxylic acids such as p-oxybenzoic acid.

[0033] As the glycol unit, units derived from aliphatic glycols such as ethylene glycol, propanediol, butanediol, pentanediol, hexanediol, and neopentyl glycol; alicyclic glycols such as cyclohexanedimethanol; aromatic glycols such as bisphenol A and bisphenol S; and diethylene glycol can be used.

[0034] The above-mentioned dicarboxylic acids and glycols may be used in combination in such a manner that the heat resistance and processability are not impaired.

[0035] If the melting point of the resin coating layer is 230°C or higher, the resin can be prevented from softening during molding, preventing breakage or abrasion. Therefore, the melting point of the resin coating layer is set to 230°C or higher, preferably 235°C or higher, and more preferably 240°C or higher. On the other hand, if the melting point of the resin coating layer is 260°C or lower, the crystallinity of the polyester resin contained therein is within a suitable range, preventing breakage or abrasion of the resin coating layer during molding. Therefore, the melting point of the resin coating layer is set to 260°C or lower, preferably 258°C or lower, and more preferably 255°C or lower.

[0036] The melting point of the resin coating layer can be measured by the following method. First, the resin-coated metal sheet is immersed in a 1:1 mixed solution of concentrated hydrochloric acid (30 wt%) and distilled water at room temperature, dissolving the metal sheet and peeling off the resin coating layer. The resin coating layer is also peeled off in the same manner in the following measurement methods. Heat flow measurements are performed on the obtained resin coating layer using a TA Instruments DSCQ100 differential scanning calorimeter under the following conditions: N2 atmospheric gas, flow rate 50 ml / min, temperature range from room temperature to 290°C, and heating rate 10°C / min. The peak top temperature of the endothermic peak in the range of 200°C to 280°C in the obtained heat flow is taken as the melting point of the resin coating layer.

[0037] The resin coating layer has a three-layer structure consisting of a top layer, an intermediate layer, and a bottom layer. Each layer will be described below.

[0038] [Outermost layer of resin coating] The outermost layer of the resin coating layer contains a polyolefin as a lubricating component, which ensures excellent slip properties and abrasion resistance, and can prevent the resin coating layer from breaking or being abraded even during can body forming under severe processing conditions.

[0039] The polyolefin is at least one of an acid-modified polyolefin and an oxidized polyolefin. The acid-modified polyolefin or the oxidized polyolefin has a polar group and a high acid value, which improves the ink adhesion of the resin coating layer. The polyolefin may be an acid-modified polyolefin such as an acid-modified polyethylene or an ethylene-maleic anhydride copolymer, an oxidized polyolefin such as an oxidized polyethylene, or a mixture of an acid-modified polyolefin and an oxidized polyolefin.

[0040] When the polyolefin content of the outermost layer is 0.010% by mass or more, the slipperiness and abrasion resistance during molding can be suitably ensured, and the resin coating layer can be suitably prevented from breaking or being abraded. Therefore, the polyolefin content of the outermost layer is preferably 0.010% by mass or more, more preferably 0.050% by mass or more, and even more preferably 0.100% by mass or more, calculated as solid content. On the other hand, when the polyolefin content of the outermost layer is 1.0% by mass or less, abrasion of the resin coating layer originating from dispersed coarse polyolefin particles during molding can be suitably prevented. Therefore, the polyolefin content of the outermost layer is preferably 1.0% by mass or less, more preferably 0.80% by mass or less, and even more preferably 0.60% by mass or less, calculated as solid content. The polyolefin content of the outermost layer can be adjusted by the amount added to the resin before extrusion during production. The bottom layer may also contain polyolefin.

[0041] If the melting point of the polyolefin in the outermost layer is lower than 70°C, the polyolefin tends to thicken on the surface of the resin coating layer due to the heat treatment performed during the process of coating the metal plate with the resin coating layer and during the molding process of the resin-coated metal plate. The thickened polyolefin on the surface may impair the adhesion of printing ink, potentially causing the printing ink to peel off during molding. Therefore, the melting point of the polyolefin should be 70°C or higher, preferably 85°C or higher, and more preferably 95°C or higher. On the other hand, if the melting point of the polyolefin exceeds 145°C, sufficient slip properties and abrasion resistance cannot be ensured, and the resin coating layer may break or chip during molding. Therefore, the melting point of the polyolefin should be 145°C or lower, preferably 135°C or lower, and more preferably 125°C or lower.

[0042] The melting point of polyolefin can be measured by the following method. First, the resin coating layer is peeled off using the method described above. The peeled resin coating layer is dissolved in hexafluoro-2-propanol (HFIP) as a solvent. The dissolved resin coating layer is centrifuged and then pressure-filtered through 1 μm and 0.1 μm pore size filters, successively, to extract the polyolefin contained in the outermost and innermost layers of the resin coating layer. Furthermore, Soxhlet extraction is performed on the above filter using xylene as a solvent, resulting in concentration, reprecipitation, and centrifugation, after which additional polyolefin is extracted. Note that in the various measurements described below, polyolefin extraction refers to the above procedure. Heat flow measurements are performed on the extracted polyolefin using a TA Instruments DSCQ100 differential scanning calorimeter under the following conditions: N2 atmosphere gas, flow rate 50 ml / min, temperature range from room temperature to 290 °C, and heating rate 10 °C / min. The peak top temperature of the endothermic peak in the range of 60°C to 150°C in the obtained heat flow is taken as the melting point of the polyolefin.

[0043] The polyolefin is dispersed in the form of particles in the outermost layer. Dispersion in the form of particles is a prerequisite for specifying the polyolefin particles in defining the dispersion state described below.

[0044] The present inventors investigated the influence of the distribution of polyolefin in the outermost layer on the slip properties, abrasion resistance, and ink adhesion of the resin coating layer.

[0045] The inventors conducted an analysis focusing on the number density and distribution state of the polyolefin particles observed on the surface of the outermost layer. As a result, the number density of the polyolefin particles was found to be 50 particles / cm. 2It has been found that the properties of the resin coating layer are improved when m, defined by the following formula (1), is 0.20 or greater. When the number density and m are within the above ranges, the polyolefin concentration range in the outermost layer is suitable, and the polyolefin is distributed without agglomeration. As a result, the resin coating layer can achieve a higher level of both slip resistance, abrasion resistance, and ink adhesion.

number

[0046] The number density of polyolefin particles on the surface of the outermost layer is 50 particles / cm 2 If the number density of the polyolefin particles is less than 50 particles / cm, the concentration of the added polyolefin is low or the added polyolefin is in a state of agglomeration. In either state, excellent properties cannot be ensured. Therefore, the number density of the polyolefin particles should be 50 particles / cm. 2 More than 100 pieces / cm 2 More than 300 particles / cm is preferable. 2 On the other hand, from the viewpoint of ink adhesion, the number density of polyolefin particles is preferably 1500 particles / cm. 2 The following is preferred:

[0047] When m defined by the above formula (1) is less than 0.20, it means that the number of polyolefin particles in the vicinity of a certain polyolefin particle in the outermost layer is greater than the number of polyolefin particles present at a position at a certain distance or more. In other words, it indicates that there are localized high-density areas where the added polyolefin is excessively dense, and in this case, excellent ink adhesion cannot be obtained. Therefore, m is set to 0.20 or more, preferably 0.30 or more, and more preferably 0.50 or more. On the other hand, from the viewpoint of abrasion resistance, m is set to 0.95 particles / cm. 2 The following is preferred:

[0048] The number density of polyolefin particles and m defined in the above formula (1) can be determined by the following method. The Raman spectrum is measured on the outermost surface of a resin-coated metal plate by Raman spectroscopy using a microscopic laser Raman spectrometer LabRAM HR VIS-NIR manufactured by Horiba, Ltd. The measurement conditions are a confocal laser, laser power 50%, aperture 25 μm, exposure time 0.05 sec, number of exposures 1, grating 300 lines / mm, objective lens 100x, and wavenumber range 310 to 3400 cm. -1 The measurement range is 200 μm (lamination direction of the resin-coated metal plate) × 200 μm (direction perpendicular to the lamination direction within the plate surface of the resin-coated metal plate). The measurement pitch is 0.5 μm in both directions. Based on the obtained Raman spectroscopy data, the CH stretching vibration peak (2850 cm) derived from polyethylene was detected. -1 ) and the CH stretching vibration peak (2960 cm ) derived from polyester, the main component of the resin coating layer. -1) is calculated and mapping is performed. The center of gravity of the polyolefin is identified from the obtained mapping. Measurements are performed on three randomly selected visual fields for each sample, and all dispersed polyolefin particles within the measurement visual field are targeted. The center of gravity of the polyolefin can be identified by the naked eye or using image processing software. The number density is calculated by dividing the total number of polyolefin particles in each visual field by the visual field area, and m is then calculated from the above formula (1). The average values ​​of number density and m are calculated from the results of the three visual fields, and these are used as the number density and m of the polyolefin particles on the surface of the outermost layer of the resin-coated metal sheet.

[0049] If the weight-average molecular weight of the polyolefin is 2000 or more, the polyolefin can be prevented from thickening on the surface of the resin coating layer, and ink adhesion can be improved. Therefore, the weight-average molecular weight of the polyolefin is preferably 2000 or more, more preferably 3000 or more, and even more preferably 3500 or more. On the other hand, if the weight-average molecular weight of the polyolefin is 50,000 or less, suitable abrasion resistance during molding can be ensured. Therefore, the weight-average molecular weight of the polyolefin is preferably 50,000 or less, more preferably 45,000 or less, and even more preferably 40,000 or less.

[0050] The weight-average molecular weight of polyolefin can be measured by the following method. First, the polyolefin in the resin coating layer is extracted using the method described above. The extracted polyolefin is measured using an Agilent PL-GPC220 gel permeation chromatograph analyzer, with two Agilent PLgel Olexis columns + Guard and an o-dichlorobenzene eluent. A calibration curve is also created from the molecular weight and elution time of the standard polystyrene. Using the created calibration curve, the weight-average molecular weight of the polyolefin is calculated based on the elution time of the polyolefin.

[0051] If the acid value of the polyolefin is 1.0 mgKOH / g or more, the affinity between the resin coating layer and the printing ink can be suitably ensured, and ink adhesion can be suitably improved. Therefore, the acid value of the polyolefin is preferably 1.0 mgKOH / g or more, more preferably 2.0 mgKOH / g or more, and even more preferably 3.0 mgKOH / g or more. On the other hand, if the acid value of the polyolefin is 90 mgKOH / g or less, the polyolefin is not compatible with the resin coating layer, and therefore suitable abrasion resistance during molding can be ensured. Therefore, the acid value of the polyolefin is preferably 90 mgKOH / g or less, more preferably 80 mgKOH / g or less, and even more preferably 70 mgKOH / g or less.

[0052] The acid value of a polyolefin can be measured by the following method. First, the polyolefin in the resin coating layer is extracted using the method described above. According to JIS K5902, a predetermined amount of polyolefin corresponding to the estimated acid value is weighed into a flask and dissolved in 100 ml of a neutral solvent. Next, using phenolphthalein as an indicator, the neutralization endpoint is determined when the indicator changes color for 30 seconds. The acid value is calculated from the titration results using the following formula (2): (Acid value)=5.611×A×F / B (2) where: A: Amount (ml) of 0.1 mol / L potassium hydroxide standard solution used B: Sample collection amount (g) F: Factor of 0.1 mol / L potassium hydroxide standard solution is.

[0053] The outermost layer and the bottom layer preferably contain lubricating inorganic particles. If the outermost layer and the bottom layer each contain 1.0% by mass or more of the lubricating inorganic particles, the roll transportability and winding property during film formation of the resin coating layer are improved, and blocking between the resin coating layers is suppressed, improving roll payout property. Therefore, the lubricating inorganic particles contained in the outermost layer and the bottom layer are preferably 1.0% by mass or more, more preferably 2.5% by mass or more, and even more preferably 4.0% by mass or more, calculated as solid content. On the other hand, if the outermost layer and the bottom layer each contain 10.0% by mass or less of the lubricating inorganic particles, the number of dispersed lubricating inorganic particles present on the surface of the outermost layer and the bottom layer falls within a suitable range, improving adhesion between the resin coating layer and the metal sheet and achieving suitable abrasion resistance. Therefore, the lubricating inorganic particles contained in the outermost layer and the bottom layer are preferably 10.0% by mass or less, more preferably 9.0% by mass or less, and even more preferably 8.0% by mass or less, calculated as solid content. The content of the lubricating inorganic particles in the outermost layer and the innermost layer may be the same or different, and can be adjusted by the amount added to the resin before extrusion during production.

[0054] The lubricating inorganic particles contained in the outermost and lowermost layers are not particularly limited, but silica, lithium fluoride, kaolin, clay, calcium carbonate, aluminum oxide, calcium phosphate, etc. can be used.

[0055] [Intermediate layer of resin coating] The resin coating layer may be required to be white in order to improve the design and beauty of the appearance of the can body after printing. In this case, it is preferable that the intermediate layer of the resin coating layer contains inorganic particles.

[0056] The inorganic particles contained in the intermediate layer are not particularly limited, but the inorganic particles are preferably titanium oxide. By containing titanium oxide in the intermediate layer, the resin coating layer can be made white. The titanium oxide used as the inorganic particles is more preferably rutile titanium oxide with a purity of 90% or more. When the intermediate layer contains rutile titanium oxide with a purity of 90% or more, the titanium oxide exhibits good dispersibility when mixed with the polyester resin, resulting in a uniform whiteness and improved design and aesthetic appeal of the appearance.

[0057] If the intermediate layer contains inorganic particles at 10% by mass or more, sufficient whiteness can be ensured. Therefore, the inorganic particles contained in the intermediate layer are preferably 10% by mass or more, more preferably 12% by mass or more, and even more preferably 15% by mass or more, calculated as solid content. On the other hand, if the intermediate layer contains inorganic particles at 35% by mass or less, fracture or abrasion of the resin coating layer can be suitably prevented even under more severe processing conditions. Therefore, the inorganic particles contained in the intermediate layer are preferably 35% by mass or less, more preferably 30% by mass or less, and even more preferably 25% by mass or less, calculated as solid content. The content of inorganic particles in the intermediate layer can be adjusted by the amount added to the resin before extrusion during production.

[0058] When the thickness of the outermost layer and the bottom layer is 1.0 μm or more and 5.0 μm or less, suitable abrasion resistance can be ensured during molding, and breakage or abrasion of the resin coating layer during molding can be suitably prevented. Therefore, the thickness of the outermost layer and the bottom layer is preferably 1.0 μm or more, more preferably 1.2 μm or more, and even more preferably 1.5 μm or more. Similarly, the thickness of the outermost layer and the bottom layer is preferably 5.0 μm or less, more preferably 4.0 μm or less, and even more preferably 3.0 μm or less. The thicknesses of the outermost layer and the bottom layer may be equal to or different from each other.

[0059] When the thickness of the intermediate layer is 6.0 μm or more and 30 μm or less, there is no need to vary the thickness of the outermost layer and the bottom layer, and the absolute amount of polyolefin is prevented from increasing or decreasing. This keeps the dispersion state within an appropriate range, making it possible to suitably prevent breakage or scraping of the resin coating layer during molding. In addition, it is possible to suitably improve the ink adhesion of the resin coating layer. Therefore, the thickness of the intermediate layer is preferably 6.0 μm or more, more preferably 8.0 μm or more, and even more preferably 10 μm or more. Similarly, the thickness of the intermediate layer is preferably 30 μm or less, more preferably 25 μm or less, and even more preferably 20 μm or less.

[0060] The thicknesses of the outermost layer, middle layer, and bottom layer can be measured by the following method. First, the resin coating layer is peeled off using the method described above. A platinum coating is applied to the outermost surface of the resulting resin coating layer, which is then embedded in resin. A cross-section is then prepared using an EM TIC 3X ion milling device manufactured by Leica Microsystems. Backscattered electron images of the prepared cross-section are observed using a Regulus 8220 scanning electron microscope (SEM) manufactured by Hitachi High-Technologies Corporation at two magnifications: 3500x and 8000x. The thicknesses of the outermost layer, middle layer, and bottom layer of the resin coating layer can be determined from the observation results.

[0061] (metal container) By using the resin-coated metal plate described above, it is possible to manufacture a metal container having a resin coating layer with excellent slip properties, abrasion resistance, and ink adhesion. The metal container can be manufactured by a conventional method. In the metal container, it is preferable that the resin coating layer is located on the outer surface of the metal container.

[0062] (Method of manufacturing resin-coated metal sheet) Next, a method for producing a resin-coated metal sheet according to one embodiment of the present invention will be described. In the following embodiment, a production method in which the resin coating layer has a three-layer structure will be described, but the resin coating layer may have a four-layer or more structure.

[0063] In the production of the resin-coated metal sheet of the present invention, a resin film that will become the resin coating layer is first produced. First, a first composition, a second composition, and a third composition containing predetermined resins are co-extruded using a kneading extruder and extruded through a T-die to obtain a sheet-like molded body having the first composition, the second composition, and the third composition as the first layer, the second layer, and the third layer, respectively. The molded body is preferably extruded onto a cooling body such as a casting drum.

[0064] The first composition, second composition, and third composition form the outermost, middle, and bottom layers of the resin coating layer, respectively, and are added so that each layer contains the polyolefin, lubricating inorganic particles, and inorganic particles. The addition method is not particularly limited, but a preferred method involves preparing a masterbatch in which various additives are dispersed at high concentrations in a resin, mixing the masterbatch with additive-free resin pellets at a predetermined ratio, and introducing the mixture into a kneading extruder. The additive content of each layer is as described above in the description of the resin coating layer. Specifically, the first composition contains a polyester resin and at least one of an acid-modified polyolefin and an oxidized polyolefin, having a melting point of 70°C or higher and 145°C or lower. The second composition contains a polyester resin, and the third composition also contains a polyester resin.

[0065] The extrusion temperature is preferably 250°C or higher, which is about 20°C higher than the melting point of the polyester resin, while the extrusion temperature is preferably 290°C or lower.

[0066] The formed body is then cooled and solidified on a cooling body such as a casting drum to obtain an unstretched laminate film. Conventional cooling conditions can be used.

[0067] After producing an unstretched laminated film, the laminated film is stretched one or more times to form a resin film. When the stretching temperature is 85°C or higher and 100°C or lower, welding or breakage of the resin film during film formation is suppressed, and further, aggregation and coarsening of the polyolefin and a decrease in the number of particles can be prevented, thereby keeping the dispersion state, such as number density and m, within an appropriate range. Therefore, the stretching temperature is 85°C or higher, preferably 88°C or higher, and more preferably 92°C or higher. Similarly, the stretching temperature is 100°C or lower, preferably 98°C or lower, and more preferably 96°C or lower.

[0068] Furthermore, when the stretching ratio during stretching is 3.5 times or more and 5.0 times or less, breakage during film formation can be suppressed, and thickness unevenness can be suppressed while keeping the resin film thickness within an appropriate range. In addition, since coarse aggregation and a decrease in the number of polyolefin particles can be prevented, the dispersion state, such as number density and m, can be kept within an appropriate range. Therefore, the stretching ratio is 3.5 times or more, preferably 3.8 times or more, and more preferably 4.0 times or more. Similarly, the stretching ratio is 5.0 times or less, preferably 4.8 times or less, and more preferably 4.6 times or less.

[0069] Next, the formed resin film is heated to a temperature equal to or higher than the melting initiation temperature and thermocompression bonded to a metal plate using a lamination roll (thermocompression film lamination method). The thermocompression film lamination method is preferable in that it reduces production costs and enables energy-saving production.

[0070] When the temperature of the metal plate during thermocompression bonding is 260°C or higher and 290°C or lower, i.e., when the temperature of the metal plate is approximately 30 to 60°C higher than the melting point of the resin coating layer, the adhesion between the laminate film and the metal plate is improved and welding of the film to the laminating roll can be suppressed. In addition, the polyolefin in the resin coating layer does not aggregate or coarsen, and the dispersion state is improved, allowing the number density and m to be kept within appropriate ranges. Therefore, the temperature of the metal plate is set to 260°C or higher, preferably 265°C or higher, and more preferably 270°C or higher. Similarly, the temperature of the metal plate is set to 290°C or lower, preferably 288°C or lower, and more preferably 285°C or lower.

[0071] When the laminating roll temperature during thermocompression bonding is 110°C or higher and 120°C or lower, i.e., 30 to 40°C higher than the glass transition temperature of the laminated film (approximately 80°C), welding of the film to the laminating roll is suppressed, and the polyolefin in the resin coating layer does not aggregate or coarsen, improving the dispersion state, allowing the number density and m to be kept within appropriate ranges. Therefore, the laminating roll temperature is 110°C or higher, preferably 111°C or higher, and more preferably 113°C or higher. Similarly, the laminating roll temperature is 120°C or lower, preferably 119°C or lower, and more preferably 118°C or lower.

[0072] For steps and conditions not described in the present invention, conventional methods can be used. [Example]

[0073] Plate thickness is 0.22 mm, metal chromium layer is 120 mg / m per side 2 , chromium oxide layer is 10mg / m per side in terms of metallic chromium 2 The metal plate used was tin-free steel (TFS) with a temper of T3CA. The mechanical properties of this metal plate were YP of 400 MPa, r-value of 1.0, and Δr of 0.5.

[0074] In each example, masterbatches were prepared for the first, second, and third compositions, each containing a polyester resin and various additives dispersed at high concentrations. In this example, the first and third compositions were the same masterbatches. In each example, the polyester resins in each composition had the same resin composition, and the resin compositions are shown in Tables 1 and 2. The masterbatches for the first and third compositions contained lubricating components and lubricating inorganic particles, while the masterbatch for the second composition contained inorganic particles. The type, weight-average molecular weight, and acid value of the lubricating components added to the first and third compositions in each example are shown in Tables 1 and 2. Silica was used as the lubricating inorganic particles, and rutile-type titanium dioxide was used as the inorganic particles.

[0075] In each example, the prepared master batch and resin pellets made of polyester resin having the aforementioned resin composition were mixed so that the content in each layer after molding would be the values ​​shown in Tables 1 and 2, and then introduced into a kneading extruder to produce a laminated film. The extrusion temperature was 278°C. The laminated film was then stretched uniaxially to form a resin film. The metal plate was then heated, and the resin film was thermocompression-bonded to both the front and back surfaces of the metal plate using a thermocompression film lamination method. The stretching conditions (stretching temperature and stretch ratio) and thermocompression-bonding conditions (metal plate temperature and laminating roll temperature) for each example are shown in Tables 1 and 2. The pressure of the laminating roll during thermocompression bonding was 400 kgf, and the film was water-cooled in a 50°C water-cooled tank 0.7 seconds after thermocompression bonding.

[0076] The resin-coated metal sheets thus obtained were analyzed using the methods described above for the melting point of the resin coating layer, the thickness of each layer, the melting point of the polyolefin, the weight-average molecular weight of the polyolefin, the acid value of the polyolefin, and the number density and m of the polyolefin particles present on the surface of the resin coating layer. The measurement results are shown in Tables 1 and 2.

[0077] [Table 1]

[0078] [Table 2]

[0079] In each example, the slipperiness, abrasion resistance, and ink adhesion of the resin coating layer were evaluated by the following methods. The evaluation results are shown in Table 3.

[0080] [Evaluation of sliding properties and abrasion resistance] The resin-coated metal plates of each example were punched into a 68 mm diameter circle and subjected to a sliding test using a rotary abrasion tester manufactured by Takachiho Seiki Co., Ltd. The test conditions were a load of 44 N, a sample temperature of 145±3°C, a rotation speed of 370 rpm, a rotation radius of 20 mm, and a carbide ball indenter (Φ10 mm). The test surface was the resin coating layer located on the outer surface of the container after molding. Four samples were prepared for each example and tested. From the results obtained, the coefficient of friction at the time of maximum static friction force was defined as the friction coefficient, and the sliding properties were evaluated according to the following criteria. In addition, the abrasion resistance was visually evaluated according to the following criteria based on the degree of abrasion of the resin coating layer after the test.

[0081] Evaluation criteria for slipperiness Rating: ◎: Friction coefficient is 0.110 or less. Rating: "Good": Friction coefficient is greater than 0.110 and less than 0.135. Evaluation "△": Friction coefficient is greater than 0.135 and less than 0.160. Rating "x": Friction coefficient is 0.160 or more.

[0082] Evaluation criteria for abrasion resistance Evaluation "Good": No scraping was visually observed in all four tests. Evaluation "Δ": Scraping was visually observed in one of four tests. Evaluation "x": Scraping was visually observed in two or more tests out of four tests.

[0083] [Evaluation of ink adhesion] Each resin-coated metal plate was placed in a hot-air drying oven and heat-treated to 240°C for 2 minutes, then cooled to room temperature. After cooling, a melamine-based printing ink was printed on the resin coating layer on the outer surface of each cooled sample after molding using a universal printing tester manufactured by Kumagai Riki Kogyo Co., Ltd. Immediately after printing, each sample was placed in a hot-air drying oven and heat-treated to 230°C for 1 minute, then cooled to room temperature. A scratch test was performed on the ink-printed surface of each sample along the length of the sample using a variable-load friction and wear tester, HHS2000, manufactured by Shinto Scientific Co., Ltd. The test conditions were a continuous load of 10 to 1000 gf from the edge of the print, a travel speed of 0.5 mm / sec, and a travel distance of 30 mm, using a sapphire indenter (Φ0.6 mm). Three samples were prepared, and the test was performed five times on each sample, each at different locations. The ink peel load was calculated from the ink peel length in each test, and the average value of the peel loads for 15 tests was calculated to evaluate the ink adhesion according to the following criteria.

[0084] Ink adhesion evaluation criteria Evaluation: Excellent: The average peel load was 400 g or more. Evaluation: "Good": The average peel load was 300g or more and less than 400g. Evaluation "△": The average peel load was 200 g or more and less than 300 g. Evaluation "x": The average peel load was less than 200 g.

[0085] [Table 3] TIFF0007732160000006.tif125170

[0086] From Table 3, it is clear that in the examples of the present invention that satisfy the conditions specified in the present invention, a suitable number density and dispersion state of the lubricating component can be obtained, and a resin-coated metal sheet having excellent slip properties, abrasion resistance, and ink adhesion of the resin coating layer can be obtained. On the other hand, in the comparative examples that do not satisfy the conditions specified in the present invention, one or more of the slip properties, abrasion resistance, and ink adhesion of the resin coating layer were evaluated as "X". In particular, in comparative examples 7 and 8, depending on the combination of the stretching temperature, stretching ratio, metal sheet temperature, and laminating roll temperature relative to the amount of lubricating component added, the lubricating component aggregated and coarsened, and the number of lubricating components decreased, and a suitable dispersion state could not be obtained. [Industrial Applicability]

[0087] According to the present invention, it is possible to provide a resin-coated metal sheet having a resin coating layer excellent in slip resistance, abrasion resistance, and ink adhesion, a method for producing the same, and a metal container made using the resin-coated metal sheet. [Explanation of symbols]

[0088] 1 Resin-coated metal plate 2 metal plate 3 Resin coating layer 3a Top layer 3b Middle layer 3c bottom layer 4 Resin coating layer

Claims

1. A resin-coated metal plate having a resin coating layer containing a polyester resin on at least one surface of a metal plate, the resin coating layer has at least a three-layer structure including an outermost layer, an intermediate layer, and a bottom layer, The melting point of the resin coating layer is 230°C or higher and 260°C or lower, the outermost layer contains a polyolefin which is at least one of an acid-modified polyolefin and an oxidized polyolefin, The melting point of the polyolefin is 70°C or higher and 145°C or lower, the polyolefin is dispersed in the form of particles in the outermost layer, The dispersion state of the polyolefin particles is such that the number density of the polyolefin particles is 50 particles / cm on the surface of the outermost layer. 2 The resin-coated metal sheet satisfies the above, and m defined by the following formula (1) is 0.20 or more. [Equation 1] Here, the total number of polyolefin particles on the surface of the outermost layer is defined as N, A i1 : the number of the polyolefin particles whose center of gravity is located within 50 μm around the i-th particle among the N polyolefin particles A i2 : The number of the polyolefin particles whose center of gravity is located within 50 μm to 100 μm around the i-th particle among the N polyolefin particles where i is an integer ranging from 1 to N.

2. The resin-coated metal sheet according to claim 1, wherein the polyolefin has a weight average molecular weight of 2,000 or more and 50,000 or less.

3. The resin-coated metal sheet according to claim 1, wherein the acid value of the polyolefin is 1.0 mgKOH / g or more and 90 mgKOH / g or less.

4. The resin-coated metal sheet according to claim 1 , wherein the outermost layer and the lowermost layer each contain 1.0% by mass or more and 10.0% by mass or less of lubricating inorganic particles.

5. The resin-coated metal sheet according to claim 1 , wherein the intermediate layer contains 10% by mass or more and 35% by mass or less of inorganic particles.

6. 2. The resin-coated metal sheet according to claim 1, wherein the outermost layer and the lowermost layer each have a thickness of 1.0 μm or more and 5.0 μm or less, and the intermediate layer has a thickness of 6.0 μm or more and 30 μm or less.

7. A metal container made using the resin-coated metal sheet according to any one of claims 1 to 6, The resin coating layer is located on the outside of the metal container.

8. a step of co-extruding a first composition containing a polyester resin and a polyolefin which is at least one of an acid-modified polyolefin and an oxidized polyolefin and has a melting point of 70°C or more and 145°C or less, a second composition containing the polyester resin, and a third composition containing the polyester resin, using a kneading extruder, and discharging the resultant through a T-die to obtain a sheet-like molded product in which the first composition, the second composition, and the third composition constitute a first layer, a second layer, and a third layer, respectively; a step of cooling and solidifying the molded body to obtain a laminated film; Next, a step of stretching the laminated film at least once under conditions of a stretching temperature of 85°C or higher and 100°C or lower and a stretching ratio of 3.5 times or higher and 5.0 times or lower to obtain a resin film including the first layer, the second layer, and the third layer; Next, using a laminating roll controlled to a temperature of 110°C or higher and 120°C or lower, the resin film is thermocompression-bonded to at least one surface of a metal plate controlled to a temperature of 260°C or higher and 290°C or lower, to obtain a resin-coated metal plate having at least a three-layer structure in which the first layer, the second layer, and the third layer are the outermost layer, the middle layer, and the bottom layer, respectively, on at least one surface of the metal plate, and provided with a resin coating layer having a melting point of 230°C or higher and 260°C or lower; A method for producing a resin-coated metal sheet having the above structure.

9. The method for producing a resin-coated metal sheet according to claim 8, wherein the polyolefin has a weight average molecular weight of 2,000 or more and 50,000 or less.

10. The method for producing a resin-coated metal sheet according to claim 8, wherein the polyolefin has an acid value of 1.0 mgKOH / g or more and 90 mgKOH / g or less.

11. The method for producing a resin-coated metal sheet according to claim 8, wherein the first composition and the third composition each contain 1.0 mass % or more and 10.0 mass % or less of lubricating inorganic particles.

12. The method for producing a resin-coated metal sheet according to claim 8 , wherein the second composition contains 10% by mass or more and 35% by mass or less of inorganic particles.

13. The method for producing a resin-coated metal sheet according to claim 8, wherein the outermost layer and the lowermost layer each have a thickness of 1.0 μm or more and 5.0 μm or less, and the intermediate layer has a thickness of 6.0 μm or more and 30 μm or less.

Citation Information

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