WO2012099303A1 - Ustensile comprenant une couche de revêtement à motifs ultraminces réalisée en trois dimensions par des nano-matériaux magnétiques, et son procédé de préparation - Google Patents

Ustensile comprenant une couche de revêtement à motifs ultraminces réalisée en trois dimensions par des nano-matériaux magnétiques, et son procédé de préparation Download PDF

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Publication number
WO2012099303A1
WO2012099303A1 PCT/KR2011/004427 KR2011004427W WO2012099303A1 WO 2012099303 A1 WO2012099303 A1 WO 2012099303A1 KR 2011004427 W KR2011004427 W KR 2011004427W WO 2012099303 A1 WO2012099303 A1 WO 2012099303A1
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WO
WIPO (PCT)
Prior art keywords
coating layer
ultra
thin
pattern
dimensionalized
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PCT/KR2011/004427
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English (en)
Korean (ko)
Inventor
이원철
Original Assignee
주식회사 이룸쿡
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Application filed by 주식회사 이룸쿡 filed Critical 주식회사 이룸쿡
Publication of WO2012099303A1 publication Critical patent/WO2012099303A1/fr

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    • AHUMAN NECESSITIES
    • A47FURNITURE; DOMESTIC ARTICLES OR APPLIANCES; COFFEE MILLS; SPICE MILLS; SUCTION CLEANERS IN GENERAL
    • A47JKITCHEN EQUIPMENT; COFFEE MILLS; SPICE MILLS; APPARATUS FOR MAKING BEVERAGES
    • A47J36/00Parts, details or accessories of cooking-vessels
    • A47J36/02Selection of specific materials, e.g. heavy bottoms with copper inlay or with insulating inlay
    • AHUMAN NECESSITIES
    • A47FURNITURE; DOMESTIC ARTICLES OR APPLIANCES; COFFEE MILLS; SPICE MILLS; SUCTION CLEANERS IN GENERAL
    • A47JKITCHEN EQUIPMENT; COFFEE MILLS; SPICE MILLS; APPARATUS FOR MAKING BEVERAGES
    • A47J37/00Baking; Roasting; Grilling; Frying
    • A47J37/10Frying pans, e.g. frying pans with integrated lids or basting devices
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B15/00Layered products comprising a layer of metal
    • B32B15/04Layered products comprising a layer of metal comprising metal as the main or only constituent of a layer, which is next to another layer of the same or of a different material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B82NANOTECHNOLOGY
    • B82BNANOSTRUCTURES FORMED BY MANIPULATION OF INDIVIDUAL ATOMS, MOLECULES, OR LIMITED COLLECTIONS OF ATOMS OR MOLECULES AS DISCRETE UNITS; MANUFACTURE OR TREATMENT THEREOF
    • B82B3/00Manufacture or treatment of nanostructures by manipulation of individual atoms or molecules, or limited collections of atoms or molecules as discrete units

Definitions

  • the present invention relates to a device having a three-dimensionalized ultra-thin pattern coating layer, and more particularly, to a device provided with a three-dimensional ultra-thin pattern coating layer made of a nanomagnetic material.
  • a flat pattern is formed on the surface of an appliance such as an exterior panel or a cooking vessel of a product through a screen method, a pad method, a spray injection method, or the like.
  • the pattern formed in this way has a relatively large difference in thickness, and even if a coating layer is formed on the upper surface, the curvature has to be formed corresponding to the three-dimensional pattern on the surface, and the flat and smooth surface has a three-dimensional pattern. In order to form, the thickness of the coating layer had to be thickened.
  • the volume of the product is increased due to unnecessary thickness increase, and the formed pattern is only a rough form of general intaglio and embossing, and there is a problem in that it cannot present an advanced aesthetic of the product.
  • the increase in the thickness generated in the process of forming a three-dimensional pattern in the device to be heated amount such as cooking vessels there was a problem that the heat transfer rate is lowered to impair the function of the product.
  • the present invention has been made to solve the above problems to provide a mechanism having a clear ultra-thin pattern coating layer while being three-dimensionally formed by a nano-magnetic material in a thin and compact structure.
  • the present invention has a pattern region formed as a thickness through which the magnetic force is transmitted, the object made of a nonmagnetic material; And a three-dimensional ultra-thin pattern coating layer formed on the upper surface of the object by coating the first resin in which the nano magnetic particles are mixed and formed as the nano magnetic particles are rearranged in a pattern set by the magnetic force of the magnetic generating means.
  • the magnetic force generating means is provided to have a polarization line, and the nanomagnetic particles have a high rearranged distribution density at a point corresponding to the polarization line, and the distribution density decreases as the distance from the polarization line decreases.
  • a mechanism provided with an ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material characterized in that the pattern coating layer is formed.
  • the present invention comprises a first step of forming and drying a primer coating layer as a second resin on the surface of the object of the non-magnetic material; Applying a first resin mixed with nano-magnetic material particles having a different color from the first resin on the upper surface of the primer coating layer, by placing a magnetic force generating means having a polarization line to provide a magnetic force of the pattern set in the lower portion of the object.
  • the nanomagnetic particles are rearranged according to the set pattern by magnetic force, but the rearranged distribution density is high at the point where the nanomagnetic particles correspond to the polarization line, and the distribution density is lowered as the distance from the polarization line decreases.
  • the method provides a method of manufacturing a device having an ultra-thin patterned coating layer stereoscopically formed by a nanomagnetic material.
  • the present invention provides the following effects through the above solution.
  • the total thickness of the coating layer is limited to within several tens of micrometers, it shows a three-dimensional shape as the shade of the light is changed depending on the viewing angle, the nanomagnetic particles to the observer in the polarization region where a plurality of magnets abut As rearranged by the amplified magnetic force, a visually distinct and vivid three-dimensional appearance is provided in a concentrated area, thereby providing a new high-quality appearance.
  • the appliance to be heated amount such as cooking vessel can be made high-quality products without affecting the heat transfer function at all.
  • the processing time and expense for the formation of the pattern is not increased, and the overall thickness of the coating layer can be maintained within several tens of ⁇ m, thereby preventing unnecessary waste of materials.
  • FIG. 1 is a cross-sectional view showing a mechanism having an ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material according to an embodiment of the present invention.
  • Figure 2 is a flow chart showing a method of manufacturing a device having an ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material according to an embodiment of the present invention.
  • 3A and 3B are schematic views showing an apparatus for manufacturing a device having an ultra-thin pattern coating layer stereoscopically formed by a nanomagnetic material according to an embodiment of the present invention.
  • Figure 4 is a cross-sectional view showing a mechanism provided with a multi-layer ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material according to an embodiment of the present invention.
  • Figure 5 is a schematic diagram showing an apparatus for manufacturing a device having an ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material according to another embodiment of the present invention.
  • Figure 6a and 6b is a photograph showing the appearance of the apparatus provided with an ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material according to an embodiment of the present invention.
  • FIG. 1 is a cross-sectional view showing a mechanism having an ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material according to an embodiment of the present invention.
  • the apparatus having the ultra-thin pattern coating layer stereoscopically formed by the nanomagnetic material according to the present invention includes the object 10 and the stereoscopic ultra-thin pattern coating layer 30.
  • the apparatus provided with the ultra-thin pattern coating layer three-dimensionally by the nano-magnetic material may be made of a cooking vessel, such as a frying pan, or exterior panels of various devices, and the object 10 is a non-magnetic panel forming such an exterior panel or a cooking vessel. It may be made of an adult metal plate.
  • the object 10 has a pattern region formed as a thickness through which magnetic force is transmitted, and is preferably made of a nonmagnetic material such as aluminum.
  • the upper surface of the object 10 is provided with an ultra-thin pattern coating layer 30 is three-dimensional to a very thin thickness.
  • the three-dimensionalized ultra-thin pattern coating layer 30 is formed by coating the first resin mixed with the nano-magnetic material particles 35, is formed as the nano-magnetic material particles are rearranged in a pattern set by the magnetic force in the viewing direction Therefore, a three-dimensional effect is provided.
  • the first resin is made of a synthetic resin material
  • the object when the object is a cooking vessel is preferably made of a transparent material made of a fluorine resin, ceramic, or heat-resistant paint harmless to the human body.
  • the first resin is preheated and melted to have a value equal to or lower than a set viscosity, and the surface of the object is mixed so that the nanomagnetic particles having an average particle diameter of several tens of nanometers (nm) are uniformly distributed. Is applied to. Thereafter, the nano-magnetic material particles 35 mixed in the first resin by magnetic force generated by magnetic force generating means, such as permanent magnets or electromagnets, in which polarization lines or the like are arranged in a pattern shape set from the lower part of the object 10. It is moved in the direction of forming the set pattern.
  • magnetic force generating means such as permanent magnets or electromagnets
  • the nano-magnetic material particles 35 are moved to form a pattern set together with the first resin to form a three-dimensional pattern.
  • the first resin and the nanomagnetic particles 35 mixed with the first resin may have different colors from those of the surface of the object disposed on the bottom surface of the object or a primer coating layer described below. It is desirable to have.
  • Figure 2 is a flow chart showing a method of manufacturing a device having an ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material according to an embodiment of the present invention
  • Figures 3a and 3b is a nano-magnetic material according to an embodiment of the present invention It is a schematic diagram which shows the manufacturing apparatus of the apparatus provided with the three-dimensional ultra-thin pattern coating layer.
  • the magnetic force generating means 100 provides a magnetic force of a pattern set by the polarization line 101 formed at a point where the plurality of magnets 100a abut. At this time, the magnetic force is amplified in the polarization line 101 formed at the point where the plurality of magnets abut.
  • the polarization line 101 is formed at the point where the N pole and the S pole of the independent magnets 100a come in contact with each other. . As described above, in the polarization line 101 formed at the point where the plurality of individual magnets 100a abut, the magnetic forces of the two magnets are combined and amplified, and in the polarization line 101, the magnetic force is significantly stronger than the magnetic force of a single magnet. To provide.
  • the nano-magnetic particles contained in the pattern coating layer 30 is pulled by the magnetic attraction at the point corresponding to the polarization line 101 is moved by the magnetic attraction, the distribution density after rearrangement is high, the magnetic attraction is further away from it The weaker the density, the lower the distribution density.
  • the magnetic force is amplified to draw the nano-magnetic material particles by a strong magnetic force can form a three-dimensional pattern of clearer shape.
  • the continuous difference in the distribution density of the nanomagnetic particles 35 may provide a visually stereoscopic appearance that can be commercialized by providing an embossed to engraved effect in appearance.
  • the configuration disposed on the lower surface of the first resin may be the surface of the object, but a primer coated as a second resin made of a fluorine resin or the like between the surface of the object 10 and the ultra-thin pattern coating layer 30. It is preferable that the coating layer 20 is further provided.
  • the object surface of the metal material increases the surface roughness by sandblasting.
  • the primer coating layer 20 may be firmly attached to the sand blasted surface and, after being dried, its upper surface may function as a base layer to which the ultra-thin pattern coating layer 30 is firmly attached.
  • the movement for rearrangement of the nanomagnetic particles and the first resin by magnetic force in the state where the first resin is preheated and molten can be made smoothly along the smooth and flat upper surface of the primer coating layer 20 disposed on the lower surface thereof.
  • the primer coating layer 20 is made of a fluorine resin, ceramic, or a heat resistant paint, such as ceramic powder is contained in a dark color such as black.
  • the three-dimensionalized ultra-thin pattern coating layer 30 to the color of the nano-magnetic material particles 35 mixed thereto is preferably formed to have a different color from the color of the primer coating layer.
  • the three-dimensionalized ultra-thin pattern coating layer 30 is formed in a color contrasted with the color of the primer coating layer, preferably the nano-magnetic material particles 35 are treated to be formed in a light metal color to increase the stereoscopic effect. Do.
  • the top coating layer 40 of a transparent third resin material is preferably formed on the top surface of the three-dimensionalized ultra-thin pattern coating layer 30.
  • the top coating layer 40 functions as a layer for protecting the nanomagnetic particles 35 of the iron oxide component contained in the three-dimensionalized ultra-thin pattern coating layer 30 from being peeled off. Through this, even if the present invention is applied to a cooking vessel or the like, it is possible to improve the hygiene safety performance by preventing the nanomagnetic particles from peeling off the surface.
  • the three-dimensionalized ultra-thin pattern coating layer 30 may provide an appearance given a three-dimensional appearance in which three-dimensional intaglio and embossment are clearly observed.
  • the overall thickness of the coating layer is formed to be limited to within several tens of micrometers, it shows a three-dimensional shape as if the shade of light to be transmitted is changed according to the viewing angle. Therefore, a visually distinct three-dimensional appearance may be given to the observer in a region where the nanomagnetic particles 35 are concentrated by rearrangement, thereby providing a new high-quality appearance.
  • the method of manufacturing a device provided with an ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material according to an embodiment of the present invention.
  • a primer coating layer as a second resin on the surface of the non-magnetic material (10) Form 20) of Figure 1 is preferably dried (S100).
  • the primer coating layer is firmly attached to the surface of the sand blasted object, and after being dried, the upper surface thereof may function as a base layer to which the ultra-thin pattern coating layer 30 is firmly attached. Moreover, the movement for rearrangement of the nanomagnetic particles and the first resin by magnetic force in the state where the first resin is preheated and molten can be smoothly made along the smooth and flat upper surface of the primer coating layer disposed on the lower surface thereof.
  • the first resin is mixed with the nano-magnetic material particles having a different color from the first resin on the upper surface of the primer coating layer (S200).
  • a magnetic force generating means such as permanent magnets or electromagnets to provide a magnetic force of the pattern set in the lower portion of the object
  • the nano-magnetic material particles 35 are rearranged in accordance with the set pattern by the magnetic force is a three-dimensional ultra-thin pattern coating layer 30 is formed (S300).
  • the nanomagnetic particles 35 have a rearranged distribution density at a point corresponding to the polarization line 101 of the magnetic force generating means 100, and the farther therefrom, the lower the distribution density.
  • a continuous difference in the distribution density of the nanomagnetic particles 35 may provide an embossed to engraved effect in appearance, thereby providing a visually three-dimensional appearance.
  • a clear three-dimensional pattern can be formed by the magnetic force amplified by the polarization lines formed at the points where the N poles and the S poles of the plurality of magnets abut each other.
  • the region where the nanomagnetic particles 35 are concentrated is rearranged by magnetic force, and the distribution density thereof is continuous, the reflectivity of the light projected onto the nanomagnetic particles 35 is continuously changed at an angle of view. Thus, a more realistic and natural change in three-dimensional appearance can be observed visually.
  • the rearrangement temperature means a temperature state in which the nanomagnetic particles 35 are moved and rearranged by the magnetic force as the first resin is molten.
  • the order of heating to preheating may be appropriately changed to melt the first resin and lower the viscosity so that the nanomagnetic particles are easily rearranged.
  • the ultra-thin patterned coating layer 30 is dried (S400), and the top coating layer (40 in FIG. 1) is preferably formed on the upper surface of the dried ultra-thin patterned coating layer 30.
  • the primer coating layer, three-dimensionalized ultra-thin pattern coating layer, the top coating layer is made of a synthetic resin material, such as fluorine resin, ceramics, or heat-resistant paint, the overall thickness is limited to within several tens of ⁇ m to prevent unnecessary material cost increase.
  • the resin forming the three-dimensionalized ultra-thin patterned coating layer and the top coating layer is preferably made of a transparent material so that the three-dimensionalized pattern is displayed on the outside.
  • Figure 4 is a cross-sectional view showing a mechanism having a multi-layered ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material according to an embodiment of the present invention.
  • the first glyph coating layer 30a and the second glyph coating layer 30b are formed on the upper side of the primer coating layer. Are formed sequentially.
  • the top coating layer 60 is preferably formed on the upper surface of the second glyph coating layer 30b.
  • the first glyph coating layer 30a and the second glyph coating layer 30b are applied in multiple layers, and the glyph coating layers each include the first nanomagnetic particles 35a and the second nanomagnetic particles 35b.
  • the second nano-magnetic particles contained in the second pattern coating layer After the first nano-magnetic particles contained in the first pattern coating layer to form a three-dimensional pattern corresponding to the polarization line of the magnetic force generating means 100, the second nano-magnetic particles contained in the second pattern coating layer The three-dimensional pattern can be formed in multiple layers corresponding to the polarization lines of other magnetic force generating means.
  • first nanoparticle particles 35a and the second nanomagnetic particles 35b that are patterned on the first glyph coating layer 30a and the second glyph coating layer 30b to form a three-dimensional pattern, respectively can be formed differently to form an innovative and refined multi-dimensional three-dimensional ultra-thin pattern coating layer.
  • the nanomagnetic particles may be formed to have a color distinct from the color of each coating layer.
  • the magnetic force generating means 100 is to be provided in combination of a plurality of independent magnets (100a) to have a polarization line 101 of a set pattern.
  • the nanomagnetic particles 35a and 35b have a high rearranged distribution density at a point corresponding to the polarization line and a low distribution density at a portion away from the polarization line, so that the three-dimensional appearance is clear and the difference in distribution density is clear.
  • the pattern coating layer may be formed.
  • Figure 5 is a schematic diagram showing an apparatus for manufacturing a device having an ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material according to another embodiment of the present invention.
  • the magnetic force generating means is a planar magnet 110 that provides a magnetic force, and is disposed on the upper surface of the magnet 110 to transfer the magnetic force, but the pattern plate 120 having a groove or a hole of a predetermined pattern is formed It may be made, including.
  • the magnetic force is transmitted in a shape corresponding thereto by the pattern plate 120 of the magnetic metal material having the pattern set on the upper surface of the magnet.
  • the nano-magnetic material particles 35 contained in the first resin applied to the object 10 are rearranged so as to be concentrated in a pattern corresponding to the magnetic attraction according to the set pattern, the three-dimensional ultra-thin pattern coating layer 30 ) Can be achieved.
  • Figure 6a and Figure 6b is a photograph showing the appearance of the apparatus provided with a ultra-thin pattern coating layer three-dimensionalized by a nano-magnetic material according to an embodiment of the present invention.
  • FIG. 6A is an angle viewed from the front while FIG. 6B is a sample photograph at an angle viewed from a direction inclined to one side.
  • the mechanism in which the three-dimensionalized ultra-thin pattern coating layer 30 is formed provides a clear three-dimensional feeling in which the intaglio and the embossment are distinguished.
  • the silver gray portion 36 is a region where the nanomagnetic particles are distributed by the rearrangement, and the portion 37 that looks so deep as if it is recessed as the inner dark or black color partitioned therein is the above. It is an area where nanomagnetic particles are sparsely arranged so that their lower structure (primer coating layer to object surface) is projected.
  • FIG. 6B shows an area in which the nanomagnetic particles are concentrated by rearrangement.
  • the shadows of the shadows are changed in three dimensions and visually sensed as protruding by a few cm.
  • a region in which the silver-gray portion 36 is concentrated in the nanomagnetic particles by rearrangement is formed at a point corresponding to the polarization line of the magnetic force generating means, and the polarization line 101 is lattice-shaped.
  • the ultra-thin pattern coating layer three-dimensionally formed into a lattice shape as shown in FIGS. 6A and 6B is formed of nanomagnetic particles.
  • the present invention can be applied to the industry by providing a cooking utensil or an outer panel provided with a clear ultra-thin pattern coating layer while being three-dimensionally formed by a nanomagnetic material in a thin and compact structure.

Abstract

L'invention porte sur un ustensile, qui comprend une couche de revêtement à motifs ultraminces, mince, compacte et transparente, réalisée en trois dimensions par des nano-matériaux magnétiques. La présente invention porte sur un ustensile comprenant une couche de revêtement à motifs ultraminces réalisée en trois dimensions par des nano-matériaux magnétiques, lequel ustensile comprend : un objet réalisé en un matériau non magnétique, et ayant une région de motifs présentant une épaisseur à travers laquelle peut passer une force magnétique ; et une couche de revêtement à motifs ultraminces en trois dimensions formée par le revêtement d'une première résine mélangée avec des nanoparticules magnétiques sur la surface supérieure de l'objet, dans laquelle les nanoparticules magnétiques sont réorientées sous un motif défini par la force magnétique d'un moyen de génération de magnétisme, le moyen de génération de magnétisme comprenant une ligne polarisée, la densité de distribution réorientée des nanoparticules magnétiques étant élevée au point correspondant à la ligne polarisée, et la densité de distribution devenant faible lorsqu'elle devient plus distante vis-à-vis de la ligne polarisée, de façon à former ainsi la couche de revêtement à motifs ultraminces en trois dimensions.
PCT/KR2011/004427 2011-01-20 2011-06-16 Ustensile comprenant une couche de revêtement à motifs ultraminces réalisée en trois dimensions par des nano-matériaux magnétiques, et son procédé de préparation WO2012099303A1 (fr)

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KR10-2011-0005739 2011-01-20
KR1020110005739A KR101038416B1 (ko) 2011-01-20 2011-01-20 나노자성체에 의해 입체화된 초박형 문양코팅층이 구비된 기구 및 그의 제조방법

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Cited By (1)

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CN102911537A (zh) * 2012-11-12 2013-02-06 上海宜瓷龙新材料科技有限公司 一种具有3d效果的陶瓷涂料及其涂覆方法

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KR101113133B1 (ko) * 2011-06-14 2012-02-15 (주)드림셰프 주방용기 코팅 방법
KR101113033B1 (ko) 2011-10-26 2012-02-27 백재현 자석을 이용한 주방용기 내외부 표면의 무늬 형성방법
KR101139310B1 (ko) 2011-10-27 2012-04-26 (주)드림셰프 주방용기 코팅방법
KR101161818B1 (ko) 2011-11-15 2012-07-03 (주)드림셰프 주방용기 코팅방법

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US6114028A (en) * 1997-09-08 2000-09-05 E. I. Du Pont De Nemours And Company Cooking vessel with patterned release finish having improved heat transfer
JP2005088967A (ja) * 2003-09-19 2005-04-07 Toyo Seikan Kaisha Ltd 模様塗膜付き容器およびその製造方法
WO2010123294A2 (fr) * 2009-04-24 2010-10-28 Ha Sang-Hun Procédé de traitement de récipient de cuisson et récipient de cuisson associé

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KR101010051B1 (ko) 2010-08-26 2011-01-21 주식회사 세신산업 주방용기 코팅방법

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Publication number Priority date Publication date Assignee Title
US6114028A (en) * 1997-09-08 2000-09-05 E. I. Du Pont De Nemours And Company Cooking vessel with patterned release finish having improved heat transfer
JP2005088967A (ja) * 2003-09-19 2005-04-07 Toyo Seikan Kaisha Ltd 模様塗膜付き容器およびその製造方法
WO2010123294A2 (fr) * 2009-04-24 2010-10-28 Ha Sang-Hun Procédé de traitement de récipient de cuisson et récipient de cuisson associé

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102911537A (zh) * 2012-11-12 2013-02-06 上海宜瓷龙新材料科技有限公司 一种具有3d效果的陶瓷涂料及其涂覆方法
WO2014071701A1 (fr) * 2012-11-12 2014-05-15 上海宜瓷龙新材料科技有限公司 Matériau de revêtement céramique avec effet 3d, et procédé de revêtement correspondant

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