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    • 1. 发明专利
    • PRODUCTION OF AQUEOUS FINE PARTICLE DISPERSING BODY
    • JPH09299774A
    • 1997-11-25
    • JP15593696
    • 1996-05-13
    • JIINASU KK
    • HASEGAWA KAZUTOSHITODA TOKU
    • B01F3/12B01F5/06B01J13/00C01G9/02C01G23/04
    • PROBLEM TO BE SOLVED: To provide a method of producing an aqueous fine particle dispersing body in which particle diameters of zinc oxide and/or titanium oxide are fine and uniform. SOLUTION: At least three blocks in which through-holes 10a, 10b, 11a, 12a, 12b through which an aqueous suspension of zinc oxide and/or titanium oxide is passed are made are arranged substantially in close contact with each other so that the through hole directions may be along the flow direction of the suspension, and also at least two through holes, one through hole, and at least two holes are made in a block 10 on the suspension introducing side, in an intermediate block 11, and in a block 12 on the suspension discharge side, respectively, and on one surface of the opposite surfaces of the block 10 on the introducing side and the intermediate block 11, and on one surface of the opposite surfaces of the intermediate block 11 and the block 12 on the discharge side, grooved paths 10c, 12c are provided in the direction orthogonal to the flow direction of the suspension to make the through-holes in the adjacent blocks communicate with each other. By using a atomizing device thus constituted, a highly dispersing body of zinc oxide and/or titanium oxide is obtained.
    • 2. 发明专利
    • PRODUCTION OF AQUEOUS FINE-PARTICLE DISPERSION
    • JPH1057789A
    • 1998-03-03
    • JP25526696
    • 1996-08-20
    • JIINASU KK
    • HASEGAWA KAZUTOSHITODA TOKU
    • B01F3/08B01F5/06
    • PROBLEM TO BE SOLVED: To provide a method for producing an aq. fine-particle dispersion with the diameter of the wet-process superfine-particle silica being small and uniform. SOLUTION: At least three blocks in which through-holes 10a, 10b, 11, 12a and 12b capable of passing the aq. suspension of wet-process superfine-particle silica are formed are provided substantially close to one another so that the suspension flows in the piercing direction. At least two through-holes are formed in the block 10 on the suspension inlet side, at least one in the intermediate block 11 and at least two in the block 12 on the suspension outlet side. Further, groove-shaped passages 10c and 12c orthogonal to the suspension flow are formed on either of the opposed faces of the blocks 10 and 11 and on either of the opposed faces of the blocks 11 and 12 to communicate the through-holes of the adjacent blocks through the groove-shaped passage in this atomizer, and a dispersion of the wet-process superfine-particle silica is obtained by using the atomizer.
    • 3. 发明专利
    • HIGH VELOCITY COLLISION REACTION METHOD
    • JPH10323556A
    • 1998-12-08
    • JP35780397
    • 1997-12-25
    • JIINASU KKHAKUSUI CHEM IND
    • MITAKE KAZUTOSHIMIYAKE FUMINORIYASUDA FUMIOYAZAKI TATSUOTODA TOKU
    • B01J10/00B01J19/26
    • PROBLEM TO BE SOLVED: To enable a reaction method to bring two or more kinds of fluidity materials into contact with each other instantenously to make reaction uniform and further effective by feeding two or more kinds of liquid and/or gaseous materials having reactivity to each other from different flow passages from each other to make them collide at a high speed and react. SOLUTION: Two sheets of rectangular blocks 1a, 1b are joined to integrate them by bolts 2, 2,... and to the upper side block 1a, two raw material feeding parts 3a, 3b and a reactant discharging part 4 are fitted. Then, raw material feeding parts 5a, 5b formed by passing through the raw material feeding parts 3a, 3b are passed through the upper side block 1a and are made to communicate with communicative grooves 6a, 6b provided on the upper surface side of the lower side block 1b. These communicative grooves 6a, 6b are formed in the facing direction each other and after raw material fluids flowing in both the communicative grooves 6a, 6b are made to substantially a head-on collision with a head junction part 7 thereof, the obtained reaction product C is taken out to the outside of the device through a discharge path provided by passing through the reactant discharging part 4.