Method for producing patterned metal member

A simplified method for manufacturing patterned metal members by casting molten metal onto a patterned sheet in a mold addresses the complexity of existing methods, achieving clearer and more efficient pattern transfer.

JP2026000847APending Publication Date: 2026-01-06TOYOTA JIDOSHA KK
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Patent Information

Application Number
JP2025062859
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-06-18
Filing Date
2025-04-07
Publication Date
2026-01-06

AI Technical Summary

Technical Problem

Existing methods for manufacturing patterned metal members require complex processes involving the formation of an ink-receiving layer and thermal transfer of designs, making them cumbersome.

Method used

A method involving placing a sheet material with a pattern on a mold and casting molten metal into the mold to thermally transfer the design onto the metal surface, using a simplified process that includes specific temperature controls and mold materials to enhance pattern clarity.

Benefits of technology

This method allows for easier and clearer transfer of patterns onto metal surfaces, reducing complexity and improving the quality of the final product.

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Abstract

To more simply manufacture a patterned metal member.SOLUTION: A method for manufacturing a metal member having a pattern according to one aspect of the present disclosure includes a step of disposing a sheet material having a surface on which a pattern is drawn along an inner surface of a mold, and a step of casting a metal member by pouring molten metal into the mold. In the casting step, a pattern is transferred to the surface of the metal member.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present disclosure relates to a method for manufacturing a patterned metal member. [Background technology]

[0002] Patent document 1 discloses a method for producing a metal plate onto which a design is thermally transferred by overlapping a metal plate having an ink-receiving layer formed thereon with transfer paper having a printed design, and heating the resulting sheet while applying pressure. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2006-069410 Summary of the Invention [Problem to be solved by the invention]

[0004] The method disclosed in Patent Document 1 required a process of forming an ink-receiving layer on a metal plate and a process of thermally transferring a design printed on transfer paper by applying heat and pressure, making the manufacturing process complicated.

[0005] The present disclosure has been made in consideration of the above circumstances, and provides a method for manufacturing a patterned metal member that can more easily manufacture a patterned metal member. [Means for solving the problem]

[0006] A method for manufacturing a patterned metal member according to one aspect of the present disclosure includes: placing a sheet material having a pattern drawn on its surface along the inner surface of the mold; and casting a metal part by pouring molten metal into the mold; In the casting process, the design is transferred onto the surface of the metal member.

[0007] In a method for manufacturing a patterned metal component according to one aspect of the present disclosure, a sheet material with a pattern drawn on its surface is placed along the inner surface of a mold, and molten metal is poured into the mold to cast the metal component. During the casting process, the pattern is thermally transferred from the paper to the surface of the metal component after the molten metal has solidified. In other words, the pattern can be thermally transferred from the paper to the surface of the metal component simply by casting, making it easier to manufacture the patterned metal component.

[0008] The sheet material may be paper, and the temperature of the molten metal poured into the mold may be 370° C. or less. Furthermore, the temperature of the molten metal poured into the mold may be 350° C. or less. With a simple configuration, a clear pattern can be transferred onto the surface of a metal member.

[0009] The molten metal may be a metal containing tin as a main component. Furthermore, the molten metal may be pure tin having a purity of 99% by mass or more, and the purity of the pure tin may be 99.9% by mass or more. With this configuration, the pattern transferred to the surface of the metal member can be made clear.

[0010] The paper may be processed paper. With this configuration, the pattern transferred onto the surface of the metal member can be made clear.

[0011] The metal member may be plate-shaped, and in the disposing step, the sheet material may be disposed so as to stand along the inner surface of the mold, and in the casting step, the metal member may be cast so as to stand. Here, in the casting step, the temperature of the molten metal poured into the mold may be lowered as the thickness of the metal member increases.

[0012] The mold may comprise a pair of mating dies that form a pair of main surfaces of the metal member, and a formwork that is sandwiched between the pair of mating dies and forms the outer edge of the metal member, and in the casting process, the sheet material may be sandwiched between one of the pair of mating dies and the formwork, and the molten metal may be poured through an opening provided at the top of the formwork.

[0013] One of the pair of molds on which the sheet material is placed may be made of metal, and the other of the pair of molds may be made of non-metal. By making one of the molds on which the sheet material is placed made of metal, heat removal from the sheet material that comes into contact with the molten metal can be promoted, and deterioration of the sheet material before the pattern is transferred can be suppressed. By making the other mold made of non-metal, heat removal from the molten metal can be suppressed, and the flow of the molten metal in the mold can be promoted.

[0014] The mold may be made of paper. By using a mold made of paper, which is easy to manufacture, it is easy to handle small quantities of a wide variety of products.

[0015] The method may further include a step of cleaning the surface of the metal member onto which the design has been transferred, and a step of applying a clear coat to the cleaned surface of the metal member, which can protect the surface onto which the design has been transferred and make the transferred design clearer.

[0016] Before pouring the molten metal into the mold, a piece of paper may be placed on the molten metal to stir the molten metal, thereby making it possible to clearly transfer the design onto the surface of the metal member.

[0017] The paper placed on the molten metal may be oil-absorbent paper, which allows the pattern to be transferred to the surface of the metal member more clearly. [Effects of the Invention]

[0018] The present disclosure provides a method for manufacturing a patterned metal member that allows for easier manufacturing of a patterned metal member. [Brief explanation of the drawings]

[0019] [Figure 1] 1 is a flowchart showing a method for manufacturing a patterned metal member according to the first embodiment. [Figure 2] 1 is a perspective view showing an example of a casting device used in a method for manufacturing a patterned metal member according to a first embodiment. [Figure 3]1 is a cross-sectional view showing an example of a casting device used in a method for manufacturing a patterned metal member according to a first embodiment. [Figure 4] 1 is a cross-sectional view showing an example of a casting device used in a method for manufacturing a patterned metal member according to a first embodiment. [Figure 5] 1 is a macrophotograph showing an example of a metal member manufactured by a method for manufacturing a patterned metal member according to a first embodiment. [Figure 6] 10 is an optical microscope photograph showing a comparison of the changes in the surface of a black-and-white printed paper before and after casting. [Figure 7] 10 is an optical microscope photograph showing a comparison of the surfaces of a patterned portion and a plain portion of a metal member onto which a black-and-white printed design has been transferred. [Figure 8] 10 is a macrophotograph showing a comparison of color patterns transferred onto the surfaces of metal members having different tin purities. [Figure 9] 1 is a macrophotograph showing a comparison of the raw material and molten surface of tin with a purity of 99.9% by mass and tin with a purity of 99.99% by mass. [Figure 10] 10 is a flowchart showing a method for manufacturing a patterned metal member according to a second embodiment. [Figure 11] 11 is a macrophotograph showing the dissolving process in step ST2a shown in FIG. 10. [Figure 12] This is a macrophotograph comparing the color patterns transferred to the surface of a metal member with and without oil absorbent paper on the surface of the hot water. DETAILED DESCRIPTION OF THE INVENTION

[0020] Hereinafter, specific embodiments of the present disclosure will be described in detail with reference to the drawings. However, the present disclosure is not limited to the following embodiments. In addition, the following description and drawings have been simplified appropriately for clarity of explanation.

[0021] (First embodiment) <Method of manufacturing a patterned metal member> First, a method for manufacturing a patterned metal member according to a first embodiment will be described with reference to Figs. 1 to 4. Fig. 1 is a flowchart showing a method for manufacturing a patterned metal member according to the first embodiment. Fig. 2 is a perspective view showing an example of a casting device used in the method for manufacturing a patterned metal member according to the first embodiment. Figs. 3 and 4 are cross-sectional views showing an example of a casting device used in the method for manufacturing a patterned metal member according to the first embodiment. The left side of Fig. 3 is a cross-sectional view corresponding to the perspective view of Fig. 2.

[0022] Naturally, the right-handed XYZ Cartesian coordinate system shown in Figures 2 to 4 is for the sake of convenience in explaining the positional relationships of the components. In Figures 2 to 4, the positive direction of the Z axis is vertically upward, and the XY plane is the horizontal plane, which is common to all the figures.

[0023] The metal constituting the patterned metal member to which this embodiment is applicable is, for example, a low-melting-point metal having a melting point equal to or lower than the melting point of tin (232°C). The low-melting-point metal is, for example, a metal containing tin as a main component, such as pure tin or solder. In the case of pure tin, the tin purity is, for example, 99% by mass or more. Furthermore, as will be described in detail later, by increasing the tin purity to 99.9% by mass or more, or even 99.99% by mass or more, the pattern transferred to the surface of the metal member made of pure tin can be made clearer.

[0024] The uses of the patterned metal member to which this embodiment can be applied are not limited in any way, and include, for example, decorative items, tableware, daily necessities, automobile-related accessories, automobile parts, etc. Examples of tableware include trays, plates, coasters, etc.

[0025] First, as shown in Fig. 1, paper with a printed design is placed along the inner surface of a mold (step ST1). Step ST1 will now be described in more detail with reference to Figs. 2 and 3. As shown on the right side of Fig. 3, the illustrated casting apparatus includes mating molds 11 and 12 and a formwork 13 as a mold 10.

[0026] In step ST1, as shown in FIGS. 2 and 3, paper 20 printed with a design 21 is arranged so as to stand along the inner wall of one of the molds 11. More specifically, first, as shown on the left side of FIGS. 2 and 3, paper 20 is sandwiched between one of the molds 11 and the formwork 13. Next, as shown on the right side of FIG. 3, the formwork 13 is sandwiched between one of the molds 11 and the other mold 12. As shown in FIG. 2, paper 20 is arranged so as to stand along the inner wall of one of the molds 11 so that the printed surface of the paper 20 (the surface on which the design 21 is printed) faces the formwork 13. Paper 20 is an example of a sheet material, and a sheet material made of, for example, resin may be used instead of paper.

[0027] Here, the design 21 printed on the paper 20 is not limited in any way, but may be, for example, an image captured by a camera, i.e., a photograph, and may include letters, numbers, and other symbols. Naturally, the design 21 shown in Figure 2 is a schematic representation of a mountain and a crescent moon, but is not limited in any way. The color of the design 21 may be black and white or color, provided that it can be printed on the paper 20.

[0028] The paper 20 is not particularly limited, but if the design 21 is a photograph, the design 21 transferred to the surface of the metal member can be made clearer by using processed paper such as glossy paper, coated paper, or matte paper. Of these, glossy paper for photographs is preferable. However, unprocessed paper such as plain paper, recycled paper, or high-quality paper may also be used as the paper 20. The thickness of the paper 20 is, for example, 0.2 mm or less.

[0029] The printer that prints the design 21 on the paper 20 is not particularly limited, and may be, for example, an inkjet printer that uses ink or a laser printer that uses toner. Furthermore, the design 21 does not need to be printed, but may be drawn with a pen, etc. In other words, the design 21 may be drawn on the surface of a sheet material such as paper.

[0030] Next, as shown in Fig. 1, a metal member is cast by pouring molten metal (molten alloy) into the mold 10 (step ST2). More specifically, as shown on the left side of Fig. 4, the molten metal is poured from an opening 13a provided in the upper part of a formwork 13 sandwiched between a pair of mating dies 11 and 12, to cast the metal member shown on the right side of Fig. 4. In step ST2, a design 21 is thermally transferred from paper 20 onto the surface of the metal member where the molten metal has solidified.

[0031] As will be described in detail later, the temperature of the molten metal poured into the mold 10 (pouring temperature) is, for example, 370°C or lower. If the temperature exceeds 370°C, it becomes difficult to thermally transfer the pattern 21 clearly onto the surface of the metal member. It is presumed that by setting the pouring temperature to 370°C or lower, the pattern 21 can be thermally transferred onto the surface of the metal member without deteriorating the paper 20 and the pattern 21, i.e., the ink or toner.

[0032] Next, as shown in Figure 1, the surface of the metal member onto which the design 21 has been transferred is washed (step ST3). First, as shown on the right side of Figure 4, the metal member is removed from the mold 10. If the paper 20 is, for example, glossy photographic paper, the surface of the metal member onto which the design 21 has been transferred will also be transferred with the coating agent of the paper 20 along with the design 21, i.e., ink or toner, and therefore is washed to remove these. More specifically, the surface of the metal member is washed with water using, for example, a melamine sponge.

[0033] Finally, as shown in Fig. 1, the surface of the cleaned metal member, i.e., the surface onto which the design 21 has been transferred, is clear coated (step ST4). The clear coating protects the surface onto which the design 21 has been transferred, and also makes the transferred design 21 clearer. Here, the clear coating includes all coating processes using transparent resins. In the method for manufacturing a patterned metal member according to this embodiment, steps ST3 and ST4 are not essential.

[0034] As explained above, in the method for manufacturing a patterned metal member according to this embodiment, paper 20 with a printed design 21 is placed along the inner surface of mold 10 (step ST1), and molten metal is poured into mold 10 to cast the metal member (step ST2). At this time, design 21 is thermally transferred from paper 20 to the surface of the metal member after the molten metal has solidified. In this way, in the method for manufacturing a patterned metal member according to this embodiment, design 21 can be thermally transferred from paper 20 to the surface of the metal member simply by casting a low-melting point metal, and patterned metal members can be manufactured more easily than the method disclosed in Patent Document 1, for example.

[0035] <Casting equipment configuration> Here, the casting apparatus shown in Figures 2 to 4 will be described. The metal member cast by this casting apparatus is a plate-shaped member. For example, as shown on the right side of Figure 4, a pair of mating dies 11 and 12 respectively form a pair of main surfaces of the metal member to be cast. The pair of mating dies 11 and 12 shown in Figures 2 to 4 are both plate-shaped members. A formwork 13 is sandwiched between the pair of mating dies 11 and 12 and is a frame body that forms the outer edge of the metal member to be cast. As shown in Figure 2, the illustrated formwork 13 is a plate-shaped frame body, and an opening 13a for pouring molten metal is provided at the top of the formwork 13.

[0036] One of the molds 11 is made of a metal such as aluminum, as the paper 20 is placed along the inner wall of the mold 11. This promotes heat removal from the paper 20 that comes into contact with the molten metal, and prevents the paper 20 from deteriorating before the design 21 is transferred. The other mating mold 12 is made of a non-metallic material such as wood or ceramics, and suppresses heat removal from the molten metal, thereby facilitating the flow of the molten metal within the mold 10. In addition, a cloth may be placed on one or both of the inner walls of the mold 11 and the mold 12.

[0037] The mold 13 may be made of metal or non-metal. From the viewpoint of durability, mold 13 made of metal such as aluminum or ceramics may be used. On the other hand, from the viewpoint of handling small-lot, high-mix production, mold 13 made of paper, which is easy to manufacture, may be used.

[0038] In addition, in Figs. 2 to 4, the pair of mating dies 11, 12 and the formwork 13 stand in the vertical direction (Z-axis direction), but they may stand at an angle relative to the vertical direction. 2 to 4 are merely examples, and the casting device is not particularly limited. For example, a simpler casting device may be used in which a form 13 having a greater thickness (height) is placed on one of the horizontally arranged mating molds 11, and molten metal is poured into the form 13.

[0039] <Effects of pouring temperature> Next, we will explain the effect of the pouring temperature on the transfer state of the pattern. Using the casting equipment shown in Figures 2 to 4, we investigated the effect of the pouring temperature of pure tin on the transfer state of the pattern 21. Using pure tin with a purity of 99.99% by mass (melting point 232°C), the pouring temperature was changed from 240°C to 370°C in 10°C increments, and the transfer state of the pattern 21 was investigated for black and white printing on plain paper (unprocessed paper) and color printing on glossy photographic paper (processed paper). The thickness of the metal part to be cast (i.e., the thickness of the formwork 13) was set to two types: 1.0 mm and 1.5 mm.

[0040] Table 1 summarizes the results of the investigation of the transcriptional status under various conditions. As shown in Table 1, for the design 21 printed on unprocessed paper, the transfer state was good for both 1.0 mm and 1.5 mm thick metal components when the pouring temperature was 350°C or less. On the other hand, when the pouring temperature was 360°C or more, the burnt color of the paper 20 was transferred, so the transfer state was judged to be acceptable.

[0041] As shown in Table 1, for the design 21 printed on processed paper, the transfer quality was good for a 1.0 mm thick metal component when the pouring temperature was 330°C or less. On the other hand, when the pouring temperature was 340°C or more, relatively small peeling occurred in the runner, so the transfer quality was judged to be acceptable. Furthermore, for a 1.5 mm thick metal component, the transfer quality was good for a 250°C or less pouring temperature. On the other hand, when the pouring temperature was 260-350°C, relatively small peeling occurred in the runner, so the transfer quality was judged to be acceptable. Furthermore, when the pouring temperature was 360°C or more, relatively large peeling occurred in the runner, so the transfer quality was judged to be unacceptable.

[0042] [Table 1]

[0043] Based on the above investigation results, the pouring temperature was determined to be 370°C or less. More specifically, for designs 21 printed on unprocessed paper, a pouring temperature of 350°C or less is more preferable. For designs 21 printed on processed paper, a pouring temperature of 330°C or less is more preferable, and a pouring temperature of 250°C or less is even more preferable. Furthermore, based on the investigation results shown in Table 1, the thicker the metal part to be cast, the lower the pouring temperature is preferred.

[0044] Here, Fig. 5 is a macrophotograph showing an example of a metal member manufactured by the manufacturing method of a patterned metal member according to the first embodiment. The top row of Fig. 5 is a macrophotograph of paper 20 on which color printing has been performed on processed paper. The middle row of Fig. 5 is a macrophotograph of a metal member on which a pattern 21 has been transferred by casting. The bottom row of Fig. 5 is a macrophotograph of a metal member on which the surface on which the pattern 21 has been transferred has been cleaned and then clear coated.

[0045] As shown in FIG. 5, the method for manufacturing a patterned metal member according to the first embodiment makes it possible to transfer a pattern 21 very clearly onto the metal surface. The example of color printing on processed paper shown in Figure 5 is an example in Table 1 where the casting temperature is 300°C and the thickness is 1.0 mm.

[0046] Figure 6 is an optical microscope photograph showing the surface changes of paper with a black-and-white printed design before and after casting. Figure 7 is an optical microscope photograph showing the surface changes of the patterned and plain areas of a metal part to which a black-and-white printed design has been transferred. The magnification of each photograph is 200x. The example of black-and-white printing on an unprocessed part shown in Figures 6 and 7 is an example of a casting temperature of 300°C and a metal part thickness of 1.0 mm in Table 1.

[0047] As shown in the upper part of Figure 6, many granular black toner particles were found on the surface of the paper before casting. On the other hand, as shown in the lower part of Figure 6, no granular black toner particles were found on the surface of the paper after casting, and only a fibrous paper surface was found. In other words, it is presumed that the granular black toner particles were transferred to the surface of the metal component during casting.

[0048] Furthermore, as shown in the upper part of Figure 7, the surface of the metal part in the plain part where the design 21 has not been transferred is white overall, and the unevenness of the casting surface can be seen. On the other hand, as shown in the lower part of Figure 7, the surface of the metal part in the design part where the design 21 has been transferred has many black areas, and the casting surface has few uneven areas. In other words, it is presumed that black toner was transferred to the surface of the metal part during casting, flattening the surface of that part.

[0049] <The effect of tin purity> Next, the effect of tin purity on the transfer state of the pattern will be described with reference to Fig. 8. Fig. 8 is a set of macrophotographs comparing color patterns transferred to the surfaces of metal members with different tin purities. The macrophotograph shown in the upper row of Fig. 8 shows a tin purity of 99.9% by mass, while the macrophotograph shown in the lower row of Fig. 8 shows a tin purity of 99.99% by mass. In both cases, the casting temperature was 300°C, and the thickness of the metal member was 1.0 mm.

[0050] As shown in the upper part of Figure 8, when the tin purity was 99.9% by mass, transfer defects A and B were observed in parts of the pattern 21. On the other hand, as shown in the lower part of Figure 8, when the tin purity was 99.99% by mass, no defects were observed in the transfer of the pattern 21. In this way, by making the tin purity 99.99% by mass or more, the pattern 21 transferred to the surface of the metal component made of pure tin can be made clearer.

[0051] Here, Fig. 9 is a macrophotograph comparing the raw material and molten surface of tin with a purity of 99.9% by mass and tin with a purity of 99.99% by mass. As shown in the upper left of Fig. 9, the tin raw material with a purity of 99.9% by mass is granular with a particle size of about 3 to 5 mm. Furthermore, as shown in the upper right of Fig. 9, many inclusions were formed on the surface of the molten material after melting this raw material.

[0052] In contrast, the tin raw material with a purity of 99.99% by mass was in the form of a plate about 50 mm long, as shown in the lower left of Figure 9. Furthermore, as shown in the lower right of Figure 9, almost no inclusions were observed on the surface of the molten tin raw material. The defect of pattern 21 in the tin with a purity of 99.9 mass% shown in the upper part of FIG. 8 may be caused by inclusions formed on the molten metal surface shown on the right side of the upper part of FIG.

[0053] (Second embodiment) First, a method for manufacturing a patterned metal member according to the second embodiment will be described with reference to Fig. 10. Fig. 10 is a flowchart showing the method for manufacturing a patterned metal member according to the second embodiment. Steps ST1, ST3, and ST4 shown in Fig. 10 are common to steps ST1, ST3, and ST4 shown in Fig. 1, and therefore will not be described.

[0054] In step ST2a shown in FIG. 10, paper is placed on the molten metal to stir the molten metal (molten metal) before the molten metal is poured into the mold in step ST2 shown in FIG. 1. The paper placed on the molten metal is not particularly limited, but may be, for example, oil-absorbent paper such as kitchen paper (paper towel). For example, paper is cut to a predetermined size, and multiple pieces of the paper are placed on the molten metal. Alternatively, a single piece of paper may be placed on the molten metal.

[0055] Here, with low-melting-point metals that have a melting point below the melting point of tin (232°C), the temperature of the molten metal is also low, so for example, oil that was attached to the raw material may remain on the molten metal, which may have an adverse effect on the transfer of the pattern 21 by casting.

[0056] Therefore, as shown in Figure 10, in the manufacturing method of a patterned metal part according to this embodiment, in step ST2a, paper is placed on the molten metal and the molten metal is stirred. With this configuration, for example, film-like inclusions (also called "slag") consisting of oils, oxides, etc. formed on the surface of the molten metal (melt surface) can be absorbed by the paper and removed. Then, by pouring the molten metal from which the oils, etc. have been removed into the mold 10, the pattern 21 transferred to the surface of the cast metal part can be made clearer. Before removing the film-like inclusions on the surface of the molten metal with paper, most of the inclusions may be removed with a spoon or the like.

[0057] Here, FIG. 11 is a macrophotograph showing the dissolving process in step ST2a shown in FIG. As shown in Fig. 11, the tin raw material with a purity of 99.9% by mass is in the form of granules with a particle size of about 3 to 5 mm. When this raw material is melted, the above-mentioned film-like inclusions are formed on the molten metal surface, as shown in the photograph of molten metal surface 1. The photograph of the raw material and molten metal surface 1 shown in Fig. 11 is the same as the photograph of the tin raw material with a purity of 99.9% by mass and the molten metal surface shown in the upper part of Fig. 9.

[0058] Next, as shown in the photograph of molten metal surface 2, most of the inclusions on the molten metal surface were removed using a spoon, resulting in the molten metal surface shown in the photograph of molten metal surface 3. Furthermore, in order to remove any inclusions that could not be removed with the spoon, several pieces of oil-absorbing paper were placed on the molten metal surface, as shown in the photograph of molten metal surface 4, and the molten metal was heated to 350 to 450°C and stirred. After that, the oil-absorbing paper was removed, resulting in a clean, mirror-like molten metal surface, as shown in the photograph of molten metal surface 5.

[0059] Here, Figure 12 is a macrophotograph showing a comparison of the color patterns transferred to the surface of the metal member with and without oil absorbent paper on the hot water surface. The macrophotograph shown in the upper part of Figure 12 is the same as the macrophotograph shown in the upper part of Figure 8.

[0060] The macrophotograph shown in the top row of Figure 12 shows the state of molten metal surface 3 in Figure 11, i.e., molten metal without oil absorbent paper, poured into mold 10, and the pattern 21 transferred to the surface of the tin. On the other hand, the macrophotograph shown in the bottom row of Figure 12 shows the state of molten metal surface 5 in Figure 11, i.e., molten metal whose surface has been cleaned using oil absorbent paper, poured into mold 10, and the pattern 21 transferred to the surface of the tin.

[0061] As shown in the upper part of Figure 12, when oil-absorbent paper was not used, transfer defects A and B were observed in parts of the pattern 21. On the other hand, as shown in the lower part of Figure 12, when oil-absorbent paper was used to clean the molten water surface, no transfer defects were observed in the pattern 21.

[0062] In this way, even when using a tin raw material with a purity of 99.9% by mass, the pattern 21 transferred to the surface of the metal member made of pure tin can be made clearer by cleaning the molten metal surface with paper. The other configurations are the same as those of the method for manufacturing a patterned metal member according to the first embodiment, and therefore will not be described further.

[0063] The present disclosure is not limited to the above-described embodiments, and can be modified as appropriate within the scope of the present disclosure. This application claims priority based on Japanese Patent Application No. 2024-097931, filed June 18, 2024, the disclosure of which is incorporated herein in its entirety by reference. [Explanation of symbols]

[0064] 10 Mold 11, 12 Combined type 13 Formwork 20 Paper 21 Design

Claims

1. placing paper, on which a design has been drawn using ink or toner, along the inner surface of the mold; a step of casting a metal part by pouring molten metal containing tin as a main component into the mold and transferring the design onto a surface of the metal part; and applying a clear coat to the surface of the metal member to which the pattern has been transferred. A method for manufacturing a metal member with a pattern.

2. The paper is processed paper, Before the clear coating process, Further comprising a step of cleaning the surface of the metal member onto which the pattern has been transferred. A method for manufacturing the patterned metal member according to claim 1.

3. The molten metal is pure tin with a purity of 99% by mass or more. The method for manufacturing the patterned metal member according to claim 1 or 2.

4. The purity of the pure tin is 99.9% by mass or more. The method for manufacturing the patterned metal member according to claim 3.

5. the metal member is plate-shaped, In the placing step, the paper is placed so as to stand along the inner surface of the mold; In the casting step, the metal member is cast so as to stand up. The method for manufacturing the patterned metal member according to claim 1 or 2.

6. In the casting step, the temperature of the molten metal poured into the mold is lowered as the thickness of the metal member increases. The method for manufacturing the patterned metal member according to claim 5.

7. The template is a pair of mating dies for forming a pair of main surfaces of the metal member; a form that is sandwiched between the pair of mating dies and forms an outer edge of the metal member, In the casting process, the paper is sandwiched between one of the pair of mating dies and the mold frame, and the molten metal is poured into the mold frame through an opening provided in the upper part of the mold frame. The method for manufacturing the patterned metal member according to claim 5.

8. one of the pair of mating dies on which the paper is placed is made of metal; The other of the pair of mating dies is made of a non-metallic material. The method for manufacturing the patterned metal member according to claim 7.

9. The formwork is made of paper. The method for manufacturing the patterned metal member according to claim 7.

10. placing paper, on which a design has been drawn using ink or toner, along the inner surface of the mold; A process for casting a metal member by pouring molten metal containing tin as a main component into the mold, and transferring the design onto the surface of the metal member, placing paper over the molten metal and stirring the molten metal before pouring it into the mold; A method for manufacturing a metal member with a pattern.

11. The paper placed on the molten metal is oil-absorbent paper. The method for manufacturing the patterned metal member according to claim 10.

12. placing paper, on which a design has been drawn using ink or toner, along the inner surface of the mold; and casting a metal member by pouring molten metal containing tin as a main component into the mold; In the casting process, the pattern is transferred onto the surface of the metal member, The thickness of the metal member is 1 mm or less, The temperature of the molten metal poured into the mold is 8°C or more higher than the melting point and 370°C or less. A method for manufacturing a metal member with a pattern.

Citation Information

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