EP0813451A1 - Method and apparatus for fabricating a particle-coated substrate, and such substrate - Google Patents
Method and apparatus for fabricating a particle-coated substrate, and such substrateInfo
- Publication number
- EP0813451A1 EP0813451A1 EP96911256A EP96911256A EP0813451A1 EP 0813451 A1 EP0813451 A1 EP 0813451A1 EP 96911256 A EP96911256 A EP 96911256A EP 96911256 A EP96911256 A EP 96911256A EP 0813451 A1 EP0813451 A1 EP 0813451A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- particles
- ejector
- storage container
- container
- gas
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B05—SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
- B05B—SPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
- B05B7/00—Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas
- B05B7/14—Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas designed for spraying particulate materials
- B05B7/1404—Arrangements for supplying particulate material
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B05—SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
- B05D—PROCESSES FOR APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
- B05D1/00—Processes for applying liquids or other fluent materials
- B05D1/02—Processes for applying liquids or other fluent materials performed by spraying
Definitions
- the present invention relates to a particle-coated substrate (in particular, an abrasive material formed by coating a substrate with abrasive particles) in which a substrate is coated uniformly and in a thin layer with cohesive fine particles, a particle ejector for fabricating the coated substrate, a coated substrate fabricating apparatus comprising the ejector, a particle-coated substrate fabricating method (in particular, a method of fabricating an abrasive material in which a substrate is coated with abrasive particles), and an abrasive sheet
- the known conventional particle ejecting pump in a coating device in which particles are fed out along with gas from a coating gun nozzle is, for example, constructed as shown in Fig. 12. More specifically, a porous plate 2 on which particles to be coated are placed is provided at a lower portion of a particle feed tank 7. The porous plate 2 is provided with a straight particle feed tube 8, one end of which is opened to the porous plate 2 and the other end of which is connected to an ejector 9.
- particles 1 are fed to upside of the porous plate 2, and fluidizing air 6 fed to the downside of the particle feed tank 7 passes through the porous plate 2 and agitates the particles 1 on the porous plate 2 Further, the particles 1 are fed to the ejector 9 via the particle feed tube 8 by an internal pressure Pa in the particle feed tank 7.
- Other similar examples are disclosed in Japanese Patent Laid-Open Publications No. 6-286872 and 6-304502.
- Such a conventional particle-coated substrate fabricating apparatus has had the following problems. Even if a proper particle size distribution of the particles 1 is obtained by agitating the particles 1 so that it is brought into a fluidized state on the porous plate 2 (hereinafter, the term "agitation” means an agitation for imparting a fluidized state), the particles 1 would be subject to blocking, agglomeration or bridging again inside the particle feed tube 8 and in the container of the ejector 9 so that the particle size of the particle would be coarsened.
- agitation means an agitation for imparting a fluidized state
- the above “bridging” means that supplying particles are adhered in a certain range of size
- the above “blocking” means that the bridging particles are adhered to each other and agglomerate
- the object of the present invention is, therefore, to remedy the above- described disadvantages and to provide a particle ejector capable of attaining a uniform particle size distribution, a particle-coated substrate fabricating apparatus comprising the ejector, a particle-coated substrate fabricating method, a particle- coated substrate and a coated abrasive sheet having a uniform particle size distribution
- a particle ejector capable of attaining a uniform particle size distribution
- a particle-coated substrate fabricating apparatus comprising the ejector, a particle-coated substrate fabricating method, a particle- coated substrate and a coated abrasive sheet having a uniform particle size distribution
- the present invention advantageously overcomes the problems described above with spraying particles of 5 ⁇ m or less, the present invention is not thereby limited and may of course also be advantageously used with particles larger than 5 ⁇ m
- an ejector for ejecting particles to be coated onto a substrate comprising a storage container made of a porous material, the container including an interior adapted for storing particles in the container and an outer surface, an ejection gas nozzle extending from outside the container to the interior and provided at a bottom portion of the storage container, in a portion thereof where the particles are stored, adapted for feeding to the interior of the storage container an ejection gas to be ejected to outside of the storage container; a discharge tube arranged generally coaxially of the ejection gas nozzle at the bottom portion of the storage container and extending from the interior of the container to outside the container, and adapted for sending the ejection gas and the particles from the interior to outside of the storage container; and an agitation gas inlet in fluid communication with the outer surface of the porous storage container adapted for feeding an agitation gas from the outside of the storage container through the porous container to the interior of the storage container to perform
- the agitation gas passing through the porous material to the inside of the storage container, is fed to at least the bottom portion of the storage container where the ejection gas nozzle and the discharge tube are disposed, whereby the particles are agitated within the storage container
- the storage container acts so that the particles to be stored will not undergo blocking, agglomeration or bridging, and that a uniform particle size of the particles will be obtained.
- an outer container forming a gas-pressure buffer portion defined by a clearance between the outer container and the outer surface of at least the bottom portion of the storage container where the ejection gas nozzle and the discharge tube are disposed, wherein the agitation gas inlet is in fluid communication with the buffer portion
- the gas-pressure buffer portion is formed so as to surround the storage container.
- an apparatus including an ejector as described above for fabricating a particle-coated substrate, the apparatus comprising: an ejector as described above; a particle feeder for providing particles to the interior of the ejector storage container; and a coating device arranged in fluid communication with the discharge tube of the ejector for coating a substrate with the particles sent out from the ejector by means of the ejection gas.
- the agitation gas passes through the inside of the storage container so as to be fed to the particles stored at least at the bottom portion of the storage container where the ejection gas nozzle and the discharge tube are disposed As a result, the particles are agitated in the storage container. Accordingly, the ejector acts so that the particles will not undergo blocking, agglomeration or bridging and that a uniform particle size is obtained.
- a method for fabricating a particle-coated substrate comprising the steps of: (a) feeding particles to a storage container of an ejector, the ejector comprising: a storage container made of a porous material, the container including an interior adapted for storing particles in the container and an outer surface;
- the agitation gas is fed to the particles stored at least at the bottom portion of the storage container where the ejection gas nozzle and the discharge tube are disposed, via the inner wall of the storage container provided to the ejector.
- the particles in the storage container are agitated so as not to undergo blocking, agglomeration or bridging, and a uniform particle size distribution can be obtained.
- a coated substrate fabricated by using the above-described fabricating apparatus or fabricated by the above-described fabricating method.
- the coated substrate is characterized by being coated with 5 ⁇ m or less abrasive particles by a particle spraying process.
- the agitation gas is fed to the particles stored at least at the bottom portion of the storage container where the ejection gas nozzle and the discharge tube are disposed, via the inner wall of the storage container provided to the ejector.
- the particles in the storage container are agitated so as not to undergo blocking, agglomeration, or bridging, and a uniform particle size distribution can be obtained. Accordingly, a uniform particle size distribution can be obtained on the particles ejected from the ejector and coated onto the substrate
- Fig. 1 is a plan view of a first embodiment of an ejector according to the present invention
- Fig. 2 is a sectional view of the ejector of Fig 1 taken along the line 2-2,
- Fig. 3 is a plan view of a second embodiment of an ejector according to the present invention.
- Fig. 4 is a sectional view of the ejector of Fig 3 taken along the line 4-4
- Fig. 5 is a graph showing results determined by experiments upon relationships among particle drawing negative pressure P 3 , ejection gas flow V 3 , and secondary absorbed gas flow V with respect to ejection gas pressure P 2 ;
- Fig. 6 is a view of an arrangement of a coated substrate fabricating apparatus according to the present invention
- Fig. 7 is a graph showing variation in the particle size distribution of particles from when it is fed to the fabricating apparatus shown in Fig. 6 until when it is coated to the substrate;
- Fig. 8 is a graph showing variation in the particle size of particles from when they are fed to a conventional fabricating apparatus until when it is coated to the substrate, in the conventional coated substrate fabricating apparatus;
- Fig. 9 is a view showing a state of the particles in the coated substrate fabricated by the fabricating apparatus shown in Fig 6,
- Fig. 10 is a view showing another state of the particles in the coated substrate fabricated by the fabricating apparatus shown in Fig 6,
- Fig. 11 is a view showing a state of particles in the coated substrate fabricated by a conventional fabricating apparatus.
- Fig. 12 is a sectional view showing a conventional ejector
- a particle-coated substrate, a particle ejector for fabricating the coated substrate, a coated substrate fabricating apparatus comprising the ejector, a particle- coated substrate fabricating method, and an abrasive sheet, which are embodiments of the present invention, are described hereinbelow with reference to the accompanying drawings. It is noted that the coated substrate is fabricated by the fabricating apparatus comprising the aforementioned particle ejector and fabricated by the coated substrate fabricating method
- Figs 1 to 4 are views showing the ejector
- the ejector is intended to eject particles with which a sheet-like substrate, which is one form of a substrate, is coated
- the coated substrate is an abrasive sheet
- An ejector 100 as shown in Figs 1 and 2 comprises a storage container 1 10, an ejection gas nozzle 120, a discharge tube 130, an outer container 140, and a gas-pressure buffer portion 150
- the storage container 110 which has its container interior formed into a conical shape so that particles can be easily fed from a later-described particle feeder and ejected from the container, is to store the panicles in a container interior 11 1 Also, the storage container 110 is made of a porous material so as to be capable of feeding gas from outside the container to inside the container via numerous pores.
- the wall thickness of the storage container 110 is determined by taking into consideration pressure loss due to the wall thickness as well as material strength, it is finally determined experimentally so that gas will be ejected uniformly from an inner wall surface 1 15 of the storage container 1 10.
- the porous material preferably comprises specified-size pores irrespective of its type.
- the porous material may be selected from among, for example, ceramics such as SiC and Al 2 O 3 , plastics such as Teflon (trademark of Du Pont Co.), metallic materials of sintered stainless steel, and rubber materials, depending on the conditions under which it is used.
- ceramics such as SiC and Al 2 O 3
- plastics such as Teflon (trademark of Du Pont Co.)
- metallic materials of sintered stainless steel and rubber materials, depending on the conditions under which it is used.
- As for the size of the pores formed in the porous material too small a size would result in too large resistance in passage of the gas through the pores, making it difficult to control the gas pressure Too large a size, conversely, would make it likely that the particles adhere to the inner wall surface 1 15 of the storage container 110 during or after the use of the ejector 100 and tend to clog the pores.
- the optimum condition of the pore size is determined experimentally in connection with other factors, for example, gas ejection pressure or the shape of the storage container 1 10 and so on In experiments, for example, with the gas ejection pressure of 0.01 MPa, with a particle size of 10 ⁇ m. it has been determined that the pore diameter of the porous material is preferably set to 20 ⁇ m to
- the ejection gas nozzle 120 is a nozzle that acts to feed ejection gas into the storage container and eject the particles stored in the container interior 1 1 1 to outside of the storage container.
- the nozzle 120 is fitted from outside of the storage container 1 10 to a concave portion 1 12 formed at a bottom portion of the conical storage container 1 10.
- the discharge tube 130 which is disposed at the concave portion 1 12 and coaxially with the ejection gas nozzle 120, is a nozzle that discharges both the ejection gas ejected from the ejection gas nozzle 120 and the particles stored in the storage container 1 10 to outside of the storage container 1 10.
- the outer container 140 is a container that surrounds the storage container 1 10 with a proper clearance against an outer side face 1 13 of the storage container 110. The clearance forms a gas-pressure buffer portion 150.
- the gas-pressure buffer portion 150 optionally may be provided between a bottom face 1 14 of the storage container 110 and the outer container 140.
- the ejection gas nozzle 120 and the discharge tube 130 are arranged to penetrate through the outer frame container 140.
- the outer container 140 is preferably made of a metallic material with a view to ensuring the strength of the ejector 100, but may be any suitable strong material such as ceramics or the like.
- the gas-pressure buffer portion 150 forms a space that is closed by an upper lid 141 being screwed to the outer container 140.
- pressure of the gas fed from an agitation gas inlet hole 142 opened at one or more points of the outer container 140 is applied generally uniformly to the entire outer wall of the storage container 1 10 without being applied directly to part of the storage container 1 10, so that a uniform gas ejection at the inner wall surface 1 15 of the storage container 1 10 is obtained.
- gas-pressure buffer portion 150 is formed into chambers communicating with each other in the present embodiment, it optionally may be divided into discrete areas In the case where the gas-pressure buffer portion 150 is divided into discrete areas, agitation gas inlet holes 142 are formed in the outer container 140 corresponding to the areas
- the gas-pressure buffer portion 150 may be omitted as shown in an ejector 170 in Figs. 3 and 4.
- gas is fed directly from the agitation gas inlet holes 142 to the outer side face 1 13 of the storage container 1 10
- the fed gas passing through the pores of the storage container 1 10, is fed to the inside of the storage container.
- the upper lid 141 is provided with an opening 143 so that particles can be fed to the container interior 1 1 1 of the storage container 1 10
- the gas to be fed to the ejection gas nozzle 120 and the agitation gas inlet holes 142 may comprise inert gases such as nitrogen, argon and the like, or air.
- the gas is controlled for humidity and temperature, and is preferably a gas containing a liquid having a surface tension of 40 dyne, for example, vapor of ethanol or perfluorocarbon.
- the storage container 1 10, the outer container 140, and the like are formed into a rectangular shape as shown in the figure in the present embodiment, they may comprise any others desired shape.
- agitation gas is fed to the agitation gas inlet holes 142, a generally uniform gas pressure is applied to the outer side face 1 13 of the storage container 110 via the gas-pressure buffer portion 150
- the agitation gas passing through the pores, is fed to the storage container interior 1 1 1, where it agitates the particles present at least in the concave portion 112 provided at the bottom portion of the storage container 1 10 where the ejection gas nozzle 120 and the discharge tube 130 are disposed. Further, the gas agitates the particles stored in the interior 1 1 1 of the storage container 110.
- the particles agitated by the ejection gas are also ejected through the discharge tube 130 and ejected to outside of the ejector 100 together with the ejection gas.
- a pressure of the ejection gas fed to the ejection gas nozzle 120 is P 2
- a flow of the ejection gas is V
- a particle drawing negative pressure in the container interior 1 1 1 is P 3
- a flow of secondary absorbed gas which is absorbed and discharged together with the particles in the storage container interior 1 1 1 is V
- Fig 5 shows an example of the experimental results of relationships among the particle drawing negative pressure P 3 , the ejection gas flow V 2 , the secondary absorbed gas flow V 3 , with respect to the ejection gas pressure P 2 .
- the unit for the values of the V 3 and V 3 is "Nl/min" which means a gas flow (1) per one minute converted at standard condition (1 atm, 0°C) .
- the dimensions of the ejector used to generate the data presented in Fig. 5 are as follows.
- the storage container 1 10 has a square shape with its each side of approximately 56 mm and a height of approximately 38 mm.
- the container interior 111 has a conical shape with a maximum diameter of approximately 50 mm.
- the concave portion 112 has a diameter of approximately 15 mm and a depth of approximately 13 mm.
- a clearance corresponding to the gas-pressure buffer portion 150 is approximately 3 mm.
- white or open marks denote results from the embodiment ejector, while black or closed marks denote results from the conventional ejector as illustrated in Fig. 12.
- Fig. 5 suggests the following:
- the ejection gas pressure P is related linearly to the spraying pressure of a coating means, for example, a corona charge type spray gun, and therefore should be set optionally depending on the environment under which particles are coated onto the substrate;
- the feed of particles from the particle feeder to the ejector is controlled so as to be carried out under constant conditions, and that the drawing conditions at the orifice of the ejector, particularly the particle drawing negative pressure P 3 and the secondary absorbed gas flow V 3 , are maintained as constant conditions even if the ejection gas pressure P 2 has changed;
- the fabricating apparatus 200 comprises the ejector 100 as described above, a particle feeder 210 provided upstream of the ejector 100 and serving for feeding particles to the storage container 110, and a coating device 230 provided downstream of the ejector 100 and serving for coating a sheet-shaped substrate 250 with the particles.
- the particle feeder 210 has a vibrative air slider 21 1.
- the vibrative air slider 211 has a vibration floor 212 that serves to vibrate a floor surface to which the particles are fed, and to eject gas from the floor surface, so that the particles are dispersed and then fed to the ejector 100.
- the particle feeder 210 fluidizes fine particles measured and fed to the feed side of the vibration floor 212 by vibrating the vibration floor 212 and ejecting the gas.
- the V-20B made by Shinko Electric Co., Ltd is used as the vibration source of the vibrative air slider 21 1
- the vibration floor 212 is made of stainless steel having a 9 ⁇ m mesh.
- the pressure of the gas fed to the vibration floor 212 is 0.01 MPa.
- particle feeders comprise reciprocative type feeders, rotating vertical spindle type feeders, rotating horizontal spindle type feeders, screw type feeders, endless belt type feeders, volumetric type feeders, and fluidized type feeders, or combinations of these feeders.
- the coating device 230 is given by a corona charge type spray gun in the present embodiment.
- a corona charge type spray gun made by Ransburg Industry Co., Ltd., model number MPS 1-F is used
- the material of the storage container 1 10 of the ejector 100 is Teflon (trademark of Du Pont Co ). and the agitation gas pressure is 0.01 MPa. Also, the ejection gas pressure P 2 is 0.3 MPa
- dispersing apparatus may be arranged by mechanically connecting the vibrative air slider 21 1 and the ejector 100 with each other, so that the ejector 100 is also vibrated by the variation of the vibrative air slider 21 1
- a particle transfer tube between the ejector 100 and the coating device 230 is vibrated
- the fabricating apparatus 200 having the above-described arrangement operates in the following manner. Fine particles 260 fed to the vibrative air slider 21 1 are fed to the storage container 1 10 of the ejector 100 while it is controlled so as not to undergo blocking, agglomeration, or the like due to variations of the vibrative air slider 21 1 and ejection of the gas. In the storage container 110 of the ejector 100, the particles are agitated and then ejected from the discharge tube 130 with ejection gas, and thus fed to the coating device 230.
- the coating device 230 applies the fed particles onto the sheet, which is the substrate 250, by an electrostatic coating method.
- the particle size distribution of the particles 260 in the process from when the particles are fed to the vibrative air slider 21 1 until coated to the substrate 250 is explained with reference to Figs 7 and 8, based on a comparison between a case where the ejector 100 of the present invention is used and another case where the conventional ejector as illustrated in Fig 12 is used. It is noted that the particles to be coated to the substrate 250 comprise abrasive particles.
- the abrasive particles to be coated to the substrate 250, after milling, is classified and then has a specified particle size distribution Then, the particles are granulated and temporarily stored The particles may tend to cohere while stored
- the particle size obtained over the process is assumed as "a"'
- the particles 260 are fed to the vibrative air slider 21 1 in a predetermined quantity, where it is fluidized by gas ejection and vibrations derived from the vibration floor 212 of the vibrative air slider 21 1 As a result, the cohered particles are re-divided into a coarse particle size of "b" Then with the particle size distribution of "b". the particles are fed to the storage container 1 10 of the ejector 100
- the panicles are agitated with agitation gas so as to be kept in a fluidized state, with its particle size distribution maintained in the fine -13-
- the particles in the ejector 100 of the present embodiment are subjected to a shear force when entering the high-speed gas stream of the agitation gas at the orifice of the ejector 100, such that it is crushed.
- a shear force when entering the high-speed gas stream of the agitation gas at the orifice of the ejector 100, such that it is crushed.
- the particle size distribution "e"' of the coating particles would be one inferior to the particle size distribution "a" of the primary particles
- the particles remain in a fluidized state within the ejector container Accordingly, blocking, agglomeration or the like is unlikely to occur, making it easy to maintain fine particle size distribution
- drawing of the particles at the orifice of the ejector can be made constant irrespectively of the panicle drawing negative pressure P 3 , allowing uniform coating of the particles to be achieved
- the adhesive comprises the following components.
- the above adhesive is coated onto the substrate 250 at 22°C, 110 g/m2 Particle coating is performed on the adhesive coated to the substrate 250 under the following conditions
- the table type feeder (made by Funken Powtechs, Inc , 25 g/min feed) is used as the feeder to the vibrative air slider 211. With the use of the vibrative air slider 21 1, the ejector 100, and the coating device 230, the particle spray coating is performed on the substrate 250 The particle spray coating method is performed in two ways, one with electric field applied and the other not
- a coated substrate (hereinafter, referred to also as "abrasive paper"), which is one form of the coated substrate fabricated by the fab ⁇ cating method with the use of the above-described fabricating apparatus 200, is described with a comparison to a coated sheet fabricated by the conventional fab ⁇ cating apparatus
- Table 1 shows results of comparison between a case where the ejector of the present invention is used and another case where the conventional ejector is used, with respect to a rate of non-defective products for abrasive papers of various abrasive particle sizes. It is noted that particles are coated onto the sheets by the electrostatic coating method.
- "A” denotes the embodiment of the ejector 170 in which the gas-pressure buffer portion 150 is not provided but a plurality of agitation gas inlet holes 142 are provided
- “B” and “C” denote embodiments of the ejector 100 in which the gas-pressure buffer portion 150 is provided.
- the coating process involves the action of electric field, and in the case of "C", an electric field was not used.
- Table 2 shows results of comparison between an abrasive efficiency of the abrasive paper fabricated by the conventional method (slurry method) in which abrasive particles are previously mixed with an adhesive and coated onto the substrate, and another abrasive efficiency of the abrasive paper fab ⁇ cated bv using the ejector of the present invention
- the abrasive paper fab ⁇ cated b ⁇ using the ejector of the present invention is applied by the electrostatic coating method, and that an ejector with the gas-pressure buffer portion 150 provided is used
- the abrasive efficiency refers to one which shows a change in weight between before and after the abrasion of 4 x 6 inch square samples when the samples are rubbed 1000 times of reciprocation, the abrasive efficiency showing that the larger a value of the abrasive efficiency is, the more successfully abrasion can be achieved
- the abrasive paper as shown in Fig 9 is used in a methods numbered "I" to
- edge portions 252a of the abrasive particles 252 are not generally perpendicular to the substrate but result in a lateral arrangement generally parallel to the substrate.
- the particles in the ejector can be made less cohesive so that only the abrasive particles 252 are coated to the substrate 250.
- abrasive paper in which a second adhesive 253 is coated onto the particles as shown in Fig. 10.
- the edges 252a of the abrasive particles 252 are arranged irregularly with respect to the substrate 250, so that the surface of the abrasive paper is not formed into a flat plane unlike the conventional method This accounts for a significant difference in abrasive efficiency as much as approximately three times that of the conventional method.
- a further reason is that, in the abrasive sheet of the present invention the edges 252a of the abrasive particles 252 are oriented toward an abraded surface of the abraded object, as compared with the conventional examples.
- the abrasive fabric in the case of the present invention has the substrate 250 coated with the particles more finely and more uniformly than in the conventional examples.
- the agitation gas, passing through the storage container is fed to the particles present at least at the bottom portion of the storage container where the ejection gas nozzle and the discharge tube are disposed.
- the particles are agitated in the storage container in order not to cause blocking, agglomeration, or bridging, making it possible to obtain a uniform particle size distribution of the particles ejected from the ejector.
- the agitation gas passing through in the storage container, is fed to the particles present at least at the bottom portion of the storage container where the ejection gas nozzle and the discharge tube are disposed.
- the particles are agitated in the storage container in order not to cause blocking, agglomeration or bridging, making it possible to obtain a uniform particle size distribution of the particles ejected from the ejector
- the agitation gas is fed to the particles present at least at the bottom portion of the storage container where the ejection gas nozzle and the discharge tube are disposed, via the inner wall of the storage container comprised to the ejector.
- the particles in the storage container are agitated in order not to cause blocking, agglomeration or bridging, making it possible to obtain a uniform particle size distribution of the particles ejected from the ejector.
- the coated substrate of the present invention can be made into a particle-coated substrate in which particles are coated onto the substrate with a uniform particle size distribution.
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Abstract
Description
Claims
Applications Claiming Priority (4)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP04960395A JP3675510B2 (en) | 1995-03-09 | 1995-03-09 | Ejector for powder ejection, powder coated substrate manufacturing apparatus, and powder coated substrate manufacturing method |
JP4960395 | 1995-03-09 | ||
JP49603/95 | 1995-03-09 | ||
PCT/US1996/003091 WO1996028256A1 (en) | 1995-03-09 | 1996-03-08 | Method and apparatus for fabricating a particle-coated substrate, and such substrate |
Publications (2)
Publication Number | Publication Date |
---|---|
EP0813451A1 true EP0813451A1 (en) | 1997-12-29 |
EP0813451B1 EP0813451B1 (en) | 1999-08-04 |
Family
ID=12835820
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP96911256A Expired - Lifetime EP0813451B1 (en) | 1995-03-09 | 1996-03-08 | Method and apparatus for fabricating a particle-coated substrate |
Country Status (9)
Country | Link |
---|---|
EP (1) | EP0813451B1 (en) |
JP (1) | JP3675510B2 (en) |
KR (1) | KR19980702583A (en) |
CN (1) | CN1177311A (en) |
AU (1) | AU5419696A (en) |
BR (1) | BR9607360A (en) |
CA (1) | CA2213269A1 (en) |
DE (1) | DE69603583T2 (en) |
WO (1) | WO1996028256A1 (en) |
Families Citing this family (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE69618022T2 (en) * | 1996-05-03 | 2002-07-18 | Minnesota Mining And Manufacturing Company, St. Paul | Process for the production of abrasives |
EP0912294B1 (en) * | 1996-05-03 | 2003-04-16 | Minnesota Mining And Manufacturing Company | Nonwoven abrasive articles |
JP2022049585A (en) | 2020-09-16 | 2022-03-29 | パナソニックIpマネジメント株式会社 | Powder layer composite, coating film, powder coating method, and powder coating apparatus |
Family Cites Families (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE2020055A1 (en) * | 1970-04-24 | 1971-12-02 | Mueller Ernst Kg | Method and device for covering objects with powdery substances |
JPS55149000A (en) * | 1979-05-09 | 1980-11-19 | Kansai Paint Co Ltd | Ejector pump |
GB2103959B (en) * | 1981-08-11 | 1985-07-10 | Coal Ind | Repairing refractory substrates |
JPS58117400A (en) * | 1981-12-28 | 1983-07-12 | Toshiba Corp | Jet pump |
-
1995
- 1995-03-09 JP JP04960395A patent/JP3675510B2/en not_active Expired - Fee Related
-
1996
- 1996-03-08 DE DE69603583T patent/DE69603583T2/en not_active Expired - Fee Related
- 1996-03-08 BR BR9607360A patent/BR9607360A/en not_active Application Discontinuation
- 1996-03-08 CA CA002213269A patent/CA2213269A1/en not_active Abandoned
- 1996-03-08 KR KR1019970705989A patent/KR19980702583A/en not_active Application Discontinuation
- 1996-03-08 WO PCT/US1996/003091 patent/WO1996028256A1/en not_active Application Discontinuation
- 1996-03-08 EP EP96911256A patent/EP0813451B1/en not_active Expired - Lifetime
- 1996-03-08 AU AU54196/96A patent/AU5419696A/en not_active Abandoned
- 1996-03-08 CN CN96192275A patent/CN1177311A/en active Pending
Non-Patent Citations (1)
Title |
---|
See references of WO9628256A1 * |
Also Published As
Publication number | Publication date |
---|---|
JPH08257444A (en) | 1996-10-08 |
DE69603583T2 (en) | 2000-03-02 |
AU5419696A (en) | 1996-10-02 |
DE69603583D1 (en) | 1999-09-09 |
JP3675510B2 (en) | 2005-07-27 |
EP0813451B1 (en) | 1999-08-04 |
CA2213269A1 (en) | 1996-09-19 |
MX9706524A (en) | 1997-11-29 |
CN1177311A (en) | 1998-03-25 |
WO1996028256A1 (en) | 1996-09-19 |
KR19980702583A (en) | 1998-07-15 |
BR9607360A (en) | 1997-12-30 |
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