IP Library Granted Patent US 9,682,337
Granted Patent B2
US 9,682,337 · App. 14/339,596 · Granted Jun 20, 2017

Ceramic honeycomb filter and its production method

Inventors: Shunji Okazaki (Fukuoka, JP); Toshitaka Ishizawa (Fukuoka, JP)
Assignee: HITACHI METALS, LTD.
B01D46/0001B01D46/2418B01D46/2429C04B35/195C04B38/0009C04B38/0054C04B38/0067C04B38/06F01N3/0222B01D2046/2433B01D2046/2496B01D2279/30B01J35/04C04B2111/00793C04B2235/3201C04B2235/3206C04B2235/3208C04B2235/5436C04B2235/6021C04B2235/9607F01N2330/60Y02T10/20
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Quick Facts
Patent No.
US 9,682,337
App. No.
14/339,596
Granted
Jun 20, 2017
Kind
B2
Abstract

A ceramic honeycomb filter including a ceramic honeycomb structure having large numbers of flow paths partitioned by porous cell walls, and plugs disposed in the flow paths alternately on the exhaust gas inlet or outlet side, to remove particulate matter from an exhaust gas passing through the porous cell walls; the porous cell walls having porosity of 45-75%, the median pore diameter A (μm) of the cell walls measured by mercury porosimetry, and the median pore diameter B (μm) of the cell walls measured by a bubble point method meeting the formula of 35<(A−B)/B×100≦70, and the maximum pore diameter of the cell walls measured by a bubble point method being 100 μm or less.

Claims (29)

1. A method for producing a ceramic honeycomb filter comprising the steps of preparing a cordierite-forming material containing talc, silica, an alumina source and kaolin; classifying the cordierite-forming material by passing the cordierite-forming material through a sieve having opening diameters of 250 μm or less to form a classified cordierite-forming material; blending the classified cordierite-forming material and a pore-forming material to prepare a moldable material; extruding said moldable material to form a honeycomb-shaped molding; and plugging the predetermined flow paths of said honeycomb-shaped molding to form said ceramic honeycomb filter;

said silica having a median diameter of 15-58 μm,

said talc having a median diameter of 10-25 μm and a morphology index of 0.77-0.84,

said kaolin having a median diameter of 1.5-7.5 μm and a cleavage index of 0.9-0.95, said cleavage index being a value expressed by I (002) /[I (200) +I (020) +I (002) ], wherein I (200) , I (020) and I (002) are the peak intensities of (200), (020) and (002) planes measured by X-ray diffraction,

said alumina source having a median diameter of 1.5-6 μm, and

said pore-forming material comprising pore-forming material particles having a median diameter of 30-70 μm.

2. A method for producing a ceramic honeycomb filter comprising the steps of preparing a cordierite-forming material containing talc, silica, an alumina source and kaolin; classifying the cordierite-forming material by passing the cordierite-forming material through a sieve having opening diameters of 250 μm or less to form a classified cordierite-forming material; blending the classified cordierite-forming material and a pore-forming material to prepare a moldable material; extruding said moldable material to form a honeycomb-shaped molding; and plugging the predetermined flow paths of said honeycomb-shaped molding to form said ceramic honeycomb filter;

said silica having a median diameter of 15-58 μm,

said talc having a median diameter of 10-25 μm and a morphology index of 0.77-0.84,

said kaolin having a median diameter of 1.5-7.5 μm and a cleavage index of 0.9-0.95, said cleavage index being a value expressed by I (002) /[I (200) +I (020) +I (002) ], wherein I (200) , I (020) and I (002) are the peak intensities of (200), (020) and (002) planes measured by X-ray diffraction,

said alumina source having a median diameter of 1.5-6 μm, and

said pore-forming material comprising pore-forming material particles having a median diameter of 30-70 μm,

wherein in a curve showing the relation between a particle diameter of said pore-forming material particles and a cumulative volume of said pore-forming material particles, a particle diameter d 90 of said pore-forming material particles at a cumulative volume corresponding to 90% of a total volume of the pore-forming material particles is 50-90 μm.

3. The method for producing a ceramic honeycomb filter according to claim 1 , wherein said alumina source has a median diameter of 2-5 μm.

4. The method for producing a ceramic honeycomb filter according to claim 1 , wherein said silica has a median diameter of 35-55 μm.

5. The method for producing a ceramic honeycomb filter according to claim 2 , wherein said alumina source has a median diameter of 2-5 μm.

6. The method for producing a ceramic honeycomb filter according to claim 2 , wherein said silica has a median diameter of 35-55 μm.

7. The method for producing a ceramic honeycomb filter according to claim 3 , wherein said silica has a median diameter of 35-55 μm.

8. The method for producing a ceramic honeycomb filter according to claim 5 , wherein said silica has a median diameter of 35-55 μm.

9. A method for producing a ceramic honeycomb filter comprising the steps of preparing a cordierite-forming material containing talc, silica, an alumina source and kaolin; classifying the cordierite-forming material by passing the cordierite-forming material through a sieve having opening diameters of 250 μm or less to form a classified cordierite-forming material; blending the classified cordierite-forming material and a pore-forming material to prepare a moldable material; extruding said moldable material to form a honeycomb-shaped molding; and plugging the predetermined flow paths of said honeycomb-shaped molding to form said ceramic honeycomb filter;

said silica having a median diameter of 15-58 μm,

said talc having a median diameter of 10-25 μm and a morphology index of 0.77-0.84,

said kaolin having a median diameter of 1.5-7.5 μm and a cleavage index of 0.9-0.95, said cleavage index being a value expressed by I (002) /[I (200) +I (020) +I (002) ], wherein I (200) , I (020) and I (002) are the peak intensities of (200), (020) and (002) planes measured by-X ray diffraction,

said alumina source having a median diameter of 1.5-6 μm, and

said pore-forming material comprising pore-forming material particles having a median diameter of 30-70 μm, wherein

in a curve having the relation between a particle diameter of said pore-forming material particles and a cumulative volume of said pore-forming material particles, a particle diameter d90 of said pore-forming material particles at a cumulative volume corresponding to 90% of a total volume of the pore-forming material particles is 60-80 μm.

10. The method for producing a ceramic honeycomb filter according to claim 9 , wherein said alumina source has a median diameter of 2-5 μm.

11. The method for producing a ceramic honeycomb filter according to claim 9 , wherein said silica has a median diameter of 35-55 μm.

12. The method for producing a ceramic honeycomb filter according to claim 10 , wherein said silica has a median diameter of 35-55 μm.

Assignments (4)
CHANGE OF ADDRESS Recorded Dec 9, 2025
From: HITACHI METALS, LTD.
To: HITACHI METALS, LTD.
Reel/Frame 073917/0124 →
CHANGE OF NAME Recorded Dec 9, 2025
From: HITACHI METALS, LTD.
To: PROTERIAL, LTD.
Reel/Frame 073917/0160 →
CHANGE OF ADDRESS Recorded Nov 20, 2025
From: HITACHI METALS, LTD.
To: HITACHI METALS, LTD.
Reel/Frame 073636/0806 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 30, 2014
From: OKAZAKI, SHUNJI; ISHIZAWA, TOSHITAKA
To: HITACHI METALS, LTD.
Reel/Frame 033423/0533 →
Priority Claims (1)
JP 2010-085179 · Apr 1, 2010 · national
Continuity (2)
Division 13638283
Related Publication 20140333000A1 · Nov 13, 2014