Die coater for coating active material on secondary battery current collectors

The die coater design with separate slits and a manifold insert supports the center guide, addressing the issue of liquid mixing in existing coaters, enabling simultaneous and high-quality coating of electrode slurry and insulating coating liquid on secondary battery current collectors.

JP7775325B2Active Publication Date: 2025-11-25LG ENERGY SOLUTION LTD
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Patent Information

Application Number
JP2023555804
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-01-11
Filing Date
2023-01-09
Publication Date
2025-11-25
Estimated Expiration
2043-01-09

AI Technical Summary

Technical Problem

Existing die coaters struggle to simultaneously coat two different liquids, such as electrode slurry and insulating coating liquid, onto a current collector for secondary batteries without mixing them, leading to poor quality due to leakage or mixing inside the coater.

Method used

A die coater design with a lower block, upper block, and coater shim that forms separate slits for each liquid, featuring a manifold insert to support the center guide and prevent mixing, using materials like PTFE resin and ethylene propylene rubber to maintain separation and contact with the upper block.

Benefits of technology

Effectively coats two different liquids simultaneously onto a current collector, preventing internal mixing and ensuring high-quality application of electrode slurry and insulating coating liquid.

✦ Generated by Eureka AI based on patent content.

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Abstract

The disclosed invention relates to a die coater that can effectively coat two different types of liquids simultaneously onto a current collector for a secondary battery, and includes a lower block provided with a manifold that contains a first liquid, an upper block that is connected to the lower block and has an inlet for a second liquid, and a coater shim that is interposed between the upper block and the lower block and forms a first slit and a second slit that are open toward the front and separated from each other. In one example, the coater shim has a second liquid flow path on a center guide that extends forward across the manifold, and a manifold insert is provided within the manifold to support the bottom surface of the center guide.
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Description

[Technical Field]

[0001] The present invention relates to a die coater that can effectively coat two different types of liquids simultaneously onto a current collector for a secondary battery.

[0002] This application claims the benefit of priority based on Korean Patent Application No. 10-2022-0004233, filed on January 11, 2022, and all contents disclosed in the documents of said Korean patent application are incorporated herein by reference. [Background technology]

[0003] The demand for secondary batteries is also increasing rapidly due to technological developments and increased demand for mobile devices. Among them, lithium secondary batteries are widely used as an energy source for various electronic products as well as various mobile devices due to their high energy density, operating voltage, and excellent storage and life characteristics.

[0004] Lithium secondary batteries use electrodes in which an active material layer and an insulating layer are formed on the surface of a current collector. Such electrodes are manufactured by using a coating device such as a die coater to apply both an electrode slurry containing an active material and an insulating coating liquid containing an insulating material to the surface of a current collector so that the edges of the electrode mixture layer partially overlap, followed by drying.

[0005] 1 shows a conventional die coater 1 for applying electrode slurry. The die coater 1 includes an upper block 2 and a lower block 3. A die coater shim 4 is interposed between the upper block 2 and the lower block 3, and the upper block 2 and the lower block 3 are fastened together with a plurality of bolt members. The lower block 3 is provided with a manifold 5 that contains a certain volume of electrode slurry, and the manifold 5 communicates with an external electrode slurry supply unit (not shown).

[0006] Here, the die coater shim serves to form a slit of an appropriate height between the upper block and the lower block, while also restricting the flow direction of the electrode slurry so that it is discharged toward the slit and sealing it to prevent the electrode slurry from leaking to areas other than the slit. The die coater shim has guides protruding from both ends in the width direction, and the distance between these guides determines the width of the electrode slurry applied to the current collector.

[0007] The insulating coating liquid is applied to both widthwise edges of the electrode slurry applied to the current collector. Generally, the insulating coating liquid is applied in an additional process using a separate device after the electrode slurry is applied to the current collector. However, applying the electrode slurry and the insulating coating liquid to the current collector in separate processes is not preferable from the viewpoint of production efficiency.

[0008] To overcome these limitations, a technology was introduced in which separate slits were formed in a single die coater shim to eject the electrode slurry and insulating coating liquid, respectively. However, this resulted in problems such as poor quality of the current collector due to the two types of liquid (e.g., electrode slurry and insulating coating liquid) being mixed when one of the liquids leaked inside the die coater, or the two liquids being mixed and ejected at the exit of the slit. [Prior art documents] [Patent documents]

[0009] [Patent Document 1] Japanese Patent Publication No. 2021-010867 Summary of the Invention [Problem to be solved by the invention]

[0010] An object of the present invention is to provide a die coater that can effectively coat two different types of liquids simultaneously onto a current collector for a secondary battery.

[0011] However, the technical problems that the present invention aims to solve are not limited to the above-mentioned problems, and other problems not mentioned will be clearly understood by those skilled in the art from the description of the invention described below. [Means for solving the problem]

[0012] The present invention relates to a die coater that can effectively coat two different types of liquid simultaneously onto a current collector for a secondary battery, and includes a lower block equipped with a manifold that contains a first liquid, an upper block that is connected to the lower block and has an inlet for a second liquid, and a coater shim that is interposed between the upper block and the lower block and that forms a first slit and a second slit that are open toward the front and separated from each other. In one example, the coater shim has a second liquid flow path on a center guide that extends and protrudes forward across the manifold, and a manifold insert is provided within the manifold to support the bottom surface of the center guide.

[0013] In a specific example, the coater shim includes a base extending along the width direction, a first side guide and a second side guide protruding and extending from both ends of the base, and the center guide protruding and extending from the central portion of the base.

[0014] As a result, the space between the first side guide and the center guide and the space between the second side guide and the center guide form the first slit for discharging the first liquid.

[0015] The outlet of the groove-shaped second liquid flow path formed on the center guide forms the second slit.

[0016] According to one embodiment, a pair of second liquid flow paths may be formed on the center guide, and one second liquid flow path may be formed on each of the first and second side guides.

[0017] Meanwhile, in one example, the lower block is provided with a first liquid inlet communicating with the manifold, the first liquid inlet is located below the center guide, and the manifold insert may have a structure in which both sides are open so as not to block the first liquid inlet.

[0018] In a specific example, both sides of the manifold insert may have an arch structure, and the width of the arch structure may be greater than or equal to the diameter of the first liquid inlet.

[0019] According to another example, the manifold insert may include a mating groove that encases the bottom and both side surfaces of the center guide.

[0020] The coupling groove of the manifold insert may have tapered portions in which the thickness of both side walls thereof gradually decreases toward the front.

[0021] The manifold insert may be made of polytetrafluoroethylene (PTFE) resin material.

[0022] The manifold insert may also include a gasket made of ethylene propylene rubber on the surface that contacts the bottom surface of the center guide.

[0023] According to one embodiment of the present invention, the first liquid is an electrode slurry, and the second liquid is an insulating coating liquid. [Effects of the Invention]

[0024] In the die coater of the present invention having the above-described configuration, the top surface of the manifold insert fixed inside the manifold firmly supports the bottom surface of the center guide, so that the center guide of the coater shim does not bend toward the manifold and always maintains close contact with the upper block, preventing mixing of two different types of liquids inside the die coater.

[0025] Furthermore, the technical effects that can be obtained by the present invention are not limited to the effects described above, and other effects not mentioned will be clearly understood by those of ordinary skill in the art from the description of the invention described below.

[0026] The following drawings attached to this specification illustrate preferred embodiments of the present invention and, together with the detailed description of the invention described below, serve to further understand the technical concept of the present invention, and therefore the present invention should not be interpreted as being limited solely to the matters depicted in such drawings. [Brief explanation of the drawings]

[0027] [Figure 1] 1 is a diagram illustrating the configuration of a die coater according to the prior art. [Figure 2] 1 is an exploded perspective view illustrating a die coater according to an embodiment of the present invention. [Figure 3] 1 is a perspective view illustrating a die coater according to an embodiment of the present invention. [Figure 4] FIG. 1 is a front view of a die coater according to an embodiment of the present invention; [Figure 5] FIG. 4 is a cross-sectional view taken along line "AA" in FIG. 3. [Figure 6] 1 is a perspective view illustrating a manifold insert according to one embodiment of the present invention. FIG. [Figure 7] FIG. 10 is a perspective view illustrating a manifold insert according to another embodiment of the present invention. [Figure 8] 8 is a diagram illustrating the configuration of a die coater to which the manifold insert of FIG. 7 is applied. DETAILED DESCRIPTION OF THE INVENTION

[0028] Because the present invention is susceptible to various modifications and can have various embodiments, specific embodiments will be described in detail below.

[0029] However, this is not intended to limit the invention to any particular embodiment, but is to be understood as including all modifications, equivalents, or alternatives falling within the spirit and scope of the invention.

[0030] In the present invention, the terms "comprise" and "have" are intended to specify the presence of features, numbers, steps, operations, components, parts or combinations thereof described in the specification, and are understood as not precluding the presence or possibility of addition of one or more other features, numbers, steps, operations, components, parts or combinations thereof.

[0031] Furthermore, in the present invention, when a layer, film, region, plate, or other portion is described as being "on" another portion, this includes not only the case where it is "directly on" the other portion, but also the case where there is another portion therebetween. Conversely, when a layer, film, region, plate, or other portion is described as being "under" the other portion, this includes not only the case where it is "directly under" the other portion, but also the case where there is another portion therebetween. Furthermore, in this application, being "located on" can include not only the case where it is located at the top, but also the case where it is located at the bottom.

[0032] The present invention relates to a die coater that can effectively coat two different types of liquids simultaneously onto a current collector for a secondary battery.

[0033] In one example, the die coater of the present invention includes a lower block equipped with a manifold for containing a first liquid, an upper block connected to the lower block and equipped with an inlet for a second liquid, and a coater shim interposed between the upper block and the lower block, which is open toward the front and forms a first slit and a second slit separated from each other.

[0034] Here, the coater shim has a second liquid flow path on a center guide that extends and protrudes forward across the manifold, and correspondingly, a manifold insert is provided within the manifold to support the bottom surface of the center guide.

[0035] The die coater of the present invention is configured to simultaneously discharge two different types of liquid (first and second), such as an electrode slurry and an insulating coating liquid, and the support of the manifold insert effectively prevents internal mixing of the first and second liquids due to a gap created when the center guide bends toward the manifold due to the pressure of the second liquid flowing through the second liquid flow path. Therefore, the die coater of the present invention makes it possible to effectively coat two different types of liquids simultaneously onto a current collector for a secondary battery.

[0036] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, specific embodiments of the die coater according to the present invention will be described in detail with reference to the accompanying drawings.

[0037] (First embodiment) FIG. 2 is an exploded perspective view illustrating a die coater 10 according to one embodiment of the present invention, and FIG. 3 is a perspective view illustrating a die coater 10 according to one embodiment of the present invention.

[0038] As described above, the present invention relates to a die coater 10 that can effectively coat two different liquids simultaneously onto a current collector for a secondary battery. The two different liquids can be, for example, an electrode slurry and an insulating coating liquid. The following description can be understood as an embodiment in which the first liquid LQ1 is an electrode slurry and the second liquid LQ2 is an insulating coating liquid.

[0039] The die coater 10 of the present invention includes a lower block 100, an upper block 200, and a coater shim 300 interposed therebetween, and also includes a manifold insert 400 that supports a portion of the coater shim 300.

[0040] The lower block 100 occupies approximately half of the main body of the die coater 10 and is equipped with a manifold that stores a fixed volume of the first liquid LQ1. The upper block 200 occupies the remaining half and is connected to the lower block 100 and is equipped with a second liquid inlet 210. Here, the terms upper and lower are used to distinguish between the top and bottom based on the drawing, and do not limit the actual installation direction of the die coater 10.

[0041] 2, the first liquid inlet 120 communicating with the manifold of the lower block 100 is shown as being formed in the lower block 100, but the first liquid inlet 120 may also be formed in the upper block 200. On the other hand, the second liquid inlet 210 must be formed in the upper block 200 because the direction of communication with the second liquid flow path 350 formed in a groove shape on the coater shim 300 (described later) is limited to the upper block 200 side.

[0042] The coater shim 300 is interposed between the upper block 200 and the lower block 100 and forms a first slit 360 and a second slit 370 that are open toward the front. The first slit 360, which discharges the first liquid LQ1, and the second slit 370, which discharges the second liquid LQ2, are spatially separated from each other. The specific structure of the coater shim 300 will be described in detail later. The coater shim 300 is essentially interposed between the upper block 200 and the lower block 100 and serves to form a slit of an appropriate height for discharging the liquid. Additionally, the coater shim 300 restricts the flow direction of the liquid flowing into or contained in the die coater 10 so that it is discharged toward the slit without backflowing, and also serves to seal the area other than the slit to prevent the liquid from leaking.

[0043] 2, the coater shim 300 has a second liquid flow path 350 on a center guide 340 that extends forward across a concave manifold. Correspondingly, a manifold insert 400 that supports the bottom surface of the center guide 340 is provided within the manifold.

[0044] First, the coater shim 300 includes a base 310 extending in the width direction, a first side guide 320 and a second side guide 330 protruding from both ends of the base 310, and a center guide 340 protruding from the center of the base 310. The overall outer size of the coater shim 300 corresponds to the size of the joining surface between the upper block 200 and the lower block 100.

[0045] Here, the coater shim 300 provided in the present invention includes a center guide 340, because the die coater 10 of the present invention is configured for stripe coating, which divides the electrode slurry into two or more regions on the current collector and applies it in multiple rows.

[0046] 4 is a front view of a die coater 10 according to one embodiment of the present invention. A coater shim 300 interposed between the upper block 200 and the lower block 100 divides the area into two regions: one between the first side guide 320 and the center guide 340, and the other between the second side guide 330 and the center guide 340. These two spaces form a first slit 360 that ejects the first liquid LQ1 contained in the manifold. Because the first slit 360 is divided into two regions by the central center guide 340, the die coater 10 of the illustrated embodiment forms an electrode slurry mixture layer that is divided into two rows.

[0047] The outlet of the groove-shaped second liquid flow path 350 formed on the center guide 340 forms the second slit 370. The second liquid flow path 350 is formed as a shallow groove that does not penetrate the center guide 340. Therefore, the second liquid flow path 350 is spatially separated from the adjacent first slit 360 by both side walls of the center guide 340. The closed end of the second liquid flow path 350 communicates with the second liquid inlet 210 formed in the upper block 200, and therefore the second liquid LQ2 supplied via the second liquid inlet 210 flows through the second liquid flow path 350 and is discharged via the second slit 370.

[0048] 2, a pair of second liquid flow paths 350 are formed on the center guide 340, and one second liquid flow path 350 is also formed on each of the first side guide 320 and the second side guide 330. That is, one second slit 370 is disposed on each side of each of a pair of separated first slits 360. Due to this structure of the first slits 360 and second slits 370, an insulating layer is formed on both edges of the two rows of mixture layers formed from the electrode slurry, which is the first liquid LQ1, by applying the insulating coating liquid, which is the second liquid LQ2.

[0049] According to this embodiment, it is possible to apply electrode slurry to two rows and simultaneously apply insulating coating liquid to the edges of the electrode slurry in each row. However, due to the structural limitations of the center guide 340 that crosses the manifold, a problem occurs in that the first liquid LQ1 and the second liquid LQ2 can mix with each other inside the die coater 10.

[0050] That is, the second liquid LQ2 is pressurized through the second liquid inlet 210 and flows through the second liquid flow path 350, and the center guide 340 bends toward the manifold due to the pressure of the second liquid LQ2 acting on the second liquid flow path 350. In other words, the thin center guide 340 that crosses the concave manifold does not have any additional lower support force, and so it is prone to bending toward the manifold.

[0051] As a result, the center guide 340, which is bent toward the manifold side, is not in tight contact with the upper block 200, and a gap is created between them.This gap thus created acts as a gap through which the second liquid LQ2 flowing through the second liquid flow path 350 flows into the manifold and the first slit 360, ultimately leading to the problem that the first liquid LQ1 and the second liquid LQ2 are mixed inside the die coater 10.

[0052] In order to solve this structural weakness of the center guide 340, the present invention provides a manifold insert 400 that supports the bottom surface of the center guide 340, as shown in the cross-sectional view of FIG.

[0053] 5 is a cross-sectional view taken along line "AA" in FIG. 3. Referring to FIG. 5, a manifold insert 400 having a shape corresponding to the cross section of the manifold (cross section along the discharge direction) is inserted and fixed into the manifold. The height of the manifold insert 400 corresponds to the depth of the manifold, and the top surface of the manifold insert 400 fixed in the manifold supports the bottom surface of the center guide 340. This prevents the center guide 340 from bending toward the manifold and maintains tight contact with the upper block 200, thereby preventing leakage of the second liquid.

[0054] In the illustrated embodiment, the lower block 100 is provided with a first liquid inlet 120 that communicates with the manifold, and the first liquid inlet 120 is located below the center guide 340. In this case, the manifold insert 400 has a structure in which both sides are open so as not to block the first liquid inlet 120. In other words, the manifold insert 400 has a shape like a leg that supports the center guide 340.

[0055] In addition, both side surfaces of the manifold insert 400 may have an arch 410 structure, and the width of the arch 410 structure may be formed to be equal to or greater than the diameter of the first liquid inlet 120. The curved surface of the arch 410, which resembles an arc, ellipse, or parabola, does not obstruct the flow of the first liquid LQ1 flowing in through the first liquid inlet 120, and the width of the legs of the arch 410, which is formed to be equal to or greater than the diameter of the first liquid inlet 120, does not reduce the inflow area of ​​the first liquid LQ1.

[0056] In the die coater 10 of the first embodiment described above, the support of the manifold insert 400 effectively prevents the center guide 340 from bending toward the manifold due to pressure acting on the second liquid flow path 350, thereby preventing the first liquid LQ1 and the second liquid LQ2 from mixing inside the die coater 10. Therefore, the die coater 10 of the present invention makes it possible to effectively coat two different liquids simultaneously onto a current collector for a secondary battery.

[0057] (Second embodiment) The second embodiment of the present invention relates to an embodiment that can further improve the tightness or connection between the center guide 340 and the manifold insert 400. By improving the connection of the center guide 340 to the manifold insert 400, the problem of mixing of the first liquid LQ1 and the second liquid LQ2 inside the die coater 10 is more reliably prevented.

[0058] 6 is a perspective view showing a manifold insert 400 according to a second embodiment of the present invention. In the second embodiment shown in FIG. 6, the manifold insert 400 is made of a polytetrafluoroethylene (PTFE) resin material, such as Teflon (registered trademark) resin. PTFE resin is a material with excellent chemical resistance, ensuring excellent durability even when in contact with electrode slurry and insulating coating liquid for a long period of time, and therefore the lower support force of the manifold insert 400 is maintained for a long period of time.

[0059] Furthermore, the manifold insert 400 of the second embodiment may further include a gasket 420 made of ethylene propylene rubber on the contact surface with the bottom surface of the center guide 340. The ethylene propylene rubber gasket 420 allows the entire bottom surface of the center guide 340 to be evenly fitted to the manifold insert 400, so that the lower support force of the manifold insert 400 acts evenly across the entire center guide 340.

[0060] 7 is a perspective view illustrating another second embodiment of the manifold insert 400, which improves the geometrical coupling of the center guide 340. Here, the embodiments of FIGS. 6 and 7 are described separately, but they may be combined with each other to form a single manifold insert 400.

[0061] 7 has a coupling groove 430 that surrounds the bottom and both side surfaces of the center guide 340. The coupling groove 430 of the manifold insert 400 improves the attachment to the center guide 340 and also improves the alignment of the manifold insert 400 with respect to the center guide 340. In other words, the center guide 340 is fitted into the coupling groove 430 of the manifold insert 400. This groove structure not only aligns the center guide 340 and the manifold insert 400 but also increases the contact area, thereby realizing a better support structure.

[0062] However, the coupling groove 430 of the manifold insert 400 has sidewalls 432 that wrap around both sides of the center guide 340, thereby partially encroaching on the first slit 360. The sidewalls 432 of the coupling groove 430 may obstruct the flow of the first liquid LQ1 through the first slit 360. Therefore, as shown in FIG. 8 , the coupling groove 430 of the manifold insert 400 may have tapered portions 434 in which the thickness of the sidewalls 432 gradually decreases toward the front. The width of the manifold insert 400 at the front end of the tapered portion 434 is the same as the width of the center guide 340. Therefore, the first liquid LQ1 flowing from the manifold toward the first slit 360 flows smoothly along the outer contour of the tapered portion 434. As a result, the manifold insert 400 does not encroach on the first slit 360. It goes without saying that the contour of the tapered portion 434 may have various curved shapes in addition to the straight shape shown in the figure.

[0063] The present invention has been described in more detail above with reference to the drawings and embodiments, etc. However, the configurations described in the drawings or embodiments, etc. in this specification are merely one embodiment of the present invention and do not represent all of the technical ideas of the present invention, so it should be understood that there may be various equivalents and modifications that can replace them at the time of filing this application. [Industrial Applicability]

[0064] The die coater of the present invention is useful for effectively coating two different types of liquids simultaneously onto a current collector for a secondary battery. [Explanation of symbols]

[0065] 10: Die coater 100: Lower block 110: Manifold 120: 1st liquid inlet 200: Upper block 210:Second liquid inlet 300: Coater shim 310: Bass 320: First side guide 330: Second side guide 340: Center guide 350:Second liquid flow path 360: First slit 370: Second slit 400: Manifold insert 410: Arch 420: Gasket 430: Binding groove 432: Side wall 434: Tapered section LQ1: First liquid LQ2: Second liquid

Claims

1. a lower block provided with a manifold containing a first liquid; an upper block coupled to the lower block and having an inlet for a second liquid; and a coater shim interposed between the upper block and the lower block, the coater shim opening forward and forming a first slit and a second slit separated from each other; Including, the coater shim has a second liquid flow path on a center guide that extends across the manifold and projects forward; A manifold insert is provided within the manifold to support the bottom surface of the center guide, the lower block is provided with a first liquid inlet communicating with the manifold; the first liquid inlet is located below the center guide, the manifold insert has a structure in which both side surfaces of the manifold insert are open so as not to block the first liquid inlet; A die coater, wherein both side surfaces of the manifold insert form an arch structure, and the width of the arch structure is equal to or greater than the diameter of the first liquid inlet.

2. The coater shim is a base extending along the width direction; a first side guide and a second side guide extending from both ends of the base; The die coater of claim 1 , further comprising: a center guide extending from a central portion of the base.

3. The die coater according to claim 2 , wherein a space between the first side guide and the center guide and a space between the second side guide and the center guide form the first slit for discharging the first liquid.

4. The die coater according to claim 3 , wherein an outlet of a groove-shaped second liquid flow path formed on the center guide forms the second slit.

5. The second liquid flow paths on the center guide are formed in pairs, The die coater according to claim 4 , wherein the second liquid flow path is also formed on each of the first side guide and the second side guide.

6. a lower block provided with a manifold containing a first liquid; an upper block coupled to the lower block and having an inlet for a second liquid; and a coater shim interposed between the upper block and the lower block, the coater shim opening forward and forming a first slit and a second slit separated from each other; Including, the coater shim has a second liquid flow path on a center guide that extends across the manifold and projects forward; A manifold insert is provided within the manifold to support the bottom surface of the center guide, The manifold insert has a coupling groove that encloses the bottom surface and both side surfaces of the center guide.

7. The die coater according to claim 6 , wherein the coupling groove of the manifold insert has a tapered portion in which the thickness of both side walls of the coupling groove gradually decreases toward the front.

8. a lower block provided with a manifold containing a first liquid; an upper block coupled to the lower block and having an inlet for a second liquid; and a coater shim interposed between the upper block and the lower block, the coater shim opening forward and forming a first slit and a second slit separated from each other; Including, the coater shim has a second liquid flow path on a center guide that extends across the manifold and projects forward; A manifold insert is provided within the manifold to support the bottom surface of the center guide, The manifold insert is made of a polytetrafluoroethylene resin material.

9. The die coater according to claim 8 , wherein the manifold insert has a gasket made of ethylene propylene rubber on a surface that contacts the bottom surface of the center guide.

10. the first liquid is an electrode slurry, The die coater according to claim 1 , wherein the second liquid is an insulating coating liquid.

Citation Information

Patent Citations

  • Adhesive-dispensing ceramic coating device and method for preventing material mixture

    CN108816565A

  • Coating apparatus

    CN205253457U

  • Die coating device

    JP2019188332A

  • Coating apparatus and manufacturing method of electrode for battery

    JP2021010867A

  • Die coating device

    JP2021120148A