Claims
- 1. A catalyst for selective reduction of nitrous oxide with ammonia, comprising the following components:
- (A) titanium oxide;
- (B.sub.1) at least one oxide of tungsten, silicon, boron, aluminum, phosphorus, zirconium, barium, yttrium, lanthanum, and cerium, and
- (B.sub.2) at least one oxide of vanadium, niobium, molybdenum, iron, and copper, with an atomic ration between the elements of components (A) and (B.sub.1 and B.sub.2) ranging from about 1:0.001 to 1:1, produced by a process comprising:
- intensively pre-kneading together component (A), in the form of a reactive, high-surface titanium oxide, with a BET surface of about 40-500 m.sup.2 /g, which consists essentially of the anatase modification, together with at least one precursor of component (B.sub.1), and after pre-kneading, adding at least one precursor of component (B.sub.2) and kneading, thereby forming a homogeneous kneaded mass,
- extruding said kneaded mass to form a molded body;
- drying said molded body while slowly raising the temperature up to a maximum of about 60.degree. C., and
- calcining said body by gradually raising the temperature, in ambient air, to a final temperature in the range of about 300.degree.-800.degree. C.
- 2. The catalyst according to claim 1, wherein precursors of components (B.sub.1) and (B.sub.2) are introduced in the form of a hydroxide, an oxide, a heteropoly acid or their salts.
- 3. The catalyst according to claim 1, wherein the atomic ratio between components (A) and (B.sub.1 and B.sub.2) is in the range of about 1:0.002 to 1:0.4.
- 4. The catalyst according to claim 1, wherein component (A) and precursors of components (B.sub.1) and (B.sub.2) are precalcined at a temperature in the range of 400.degree.-700.degree. C., before kneading into the homogeneous kneaded mass.
- 5. The catalyst according to claim 1, wherein the pre-kneading step includes mixing component (A) and at least one precursor of component (B.sub.1) at a pH of about 7-11, and pre-kneading the mixture of component (A) and at least one precursor of component (B.sub.1) dry to a residual moisture of 3-12%, before adding at least one precursor of component (B.sub.2).
- 6. The catalyst according to claim 5, wherein the dry pre-kneaded mixture of component (A) and at least one precursor of component (B.sub.1) is precalcined at a temperature in the range of about 400.degree.-700.degree. C. before adding at least one precursor of component (B.sub.2).
- 7. The catalyst according to claim 1, wherein precursors of components (B.sub.1) and (B.sub.2) are introduced in the form of a heteropoly acid or one of its salts, whereby the metals, contained in the heteropoly acid, from groups (B.sub.1) and (B.sub.2), are present in an atomic ratio ranging from about 12:1 up to 1:12.
- 8. The catalyst according to claim 1, wherein an initial material for the at least one precursor of component (B.sub.2) remains withdrawn from the pre-kneading process and then at least one precursor of component (B.sub.2) is introduced in the form of a salt or heteropoly acid or one of its salts, in an aqueous solution, through impregnation, to a preliminary catalyst stage comprising components (A) and (B.sub.1).
- 9. A catalyst for selective reduction of nitrous oxide with ammonia, comprising the following components:
- (A) titanium oxide;
- (B.sub.1) tungsten oxide; and
- (B.sub.2) vanadium oxide, wherein an atomic ratio between the elements of components (A) and (B.sub.1 and B.sub.2) is in the range of from about 1:0.001 to 1:1, produced by a process comprising
- intensively pre-kneading together component (A), in the form of a reactive, high-surface titanium oxide, with a BET surface of about 40-500 m.sup.2 /g, which consists essentially of the anatase modification, together with at least one precursor of component (B.sub.1), and after pre-kneading, adding at least one precursor of component (B.sub.2) and kneading, thereby forming a homogeneous kneaded mass,
- extruding said kneaded mass to form a molded body,
- drying said molded body while slowly raising the temperature up to a maximum of about 60 .degree. C., and
- calcining said body by gradually raising the temperature, in ambient air, to a final temperature in the range of about 300.degree.-800.degree. C.
- 10. The catalyst according to claim 9, wherein precursors of components (B.sub.1) and (B.sub.2) are introduced in the form of a hydroxide, an oxide, a heteropoly acid or their salts.
- 11. The catalyst according to claim 9, wherein the atomic ratio between components (A) and (B.sub.1 and B.sub.2) is in the range of about 1:0.002 to 1:0.4.
- 12. The catalyst according to claim 9, wherein component (A) and precursors of components (B.sub.1) and (B.sub.2) are precalcined at a temperature in the range of 400.degree.-700.degree. C., before kneading into the homogeneous kneaded mass.
- 13. The catalyst according to claim 9, wherein the pre-kneading step includes mixing component (A) and at least one precursor of component (B.sub.1) at a pH of about 7-11, and pre-kneading the mixture of component (A) and at least one precursor of component (B.sub.1) dry to a residual moisture of 3-12%, before adding at least one precursor of component (B.sub.2).
- 14. The catalyst according to claim 13, wherein the dry pre-kneaded mixture of component (A) and at least one precursor of component (B.sub.1) is precalcined at a temperature in the range of about 400.degree.-700.degree. C. before adding at least one precursor of component (B.sub.2).
- 15. The catalyst according to claim 9, wherein precursors of components (B.sub.1) and (B.sub.2) are introduced in the form of a heteropoly acid or one of its salts, whereby the metals, contained in the heteropoly acid, from groups (B.sub.1) and (B.sub.2), are present in an atomic ratio ranging from about 12:1 up to 1:12.
- 16. The catalyst according to claim 9, wherein an initial material for the at least one precursor of component (B.sub.2) remains withdrawn from the pre-kneading process and then at least one precursor of component (B.sub.2) is introduced in the form of a salt or heteropoly acid or one of its salts, in an aqueous solution, through impregnation, to a preliminary catalyst stage comprising components (A and (B.sub.1).
Priority Claims (1)
Number |
Date |
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3906136 |
Feb 1989 |
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Parent Case Info
This application is a continuation of U.S. patent application Ser. No. 07/787,746 filed Nov. 5, 1991 (now U.S. Pat. No. 5,198,403), which application is a continuation of U.S. patent application Ser. No. 07/484,405 filed Feb. 5, 1990 (now abandoned). These applications are entirely incorporated herein by reference.
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Continuations (2)
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787746 |
Nov 1991 |
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Parent |
484405 |
Feb 1990 |
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