Claims
- 1. In a method of hydrogenating a saturated or unsaturated ester in a process including hydration of the ester, comprising:conducting the hydrogenation reactions including a hydration reaction in the presence of a shaped, activated, fixed-bed Raney metal catalyst prepared by a method comprising: (i) preparing a mixture of powders comprising at least one catalyst alloy of (1) at least one catalytically active Raney process metal, a leachable alloy component and optionally a promoter, (2) at least one binder containing at least one pure Raney process metal, and (3) a moistening agent, (i-a) homogenizing said mixture, (i-b) shaping said mixture into a molded catalyst precursor which is not activated, (i-c) calcining said molded catalyst precursor at a temperature below 850° C., thereby obtaining a sintered catalyst precursor, (i-d) activating said sintered catalyst precursor by leaching said leachable alloy component with alkali until the leached, and thereby activated outer layer has a thickness of 0.05 to 1 mm, and (i-e) subsequently washing the final catalyst; and (ii) doping said catalyst with rhenium as a promoter after said activation by introducing said catalyst into a perrhenic acid solution or a solution of a Re salt, for a sufficient period of time to dope the catalyst completely with the rhenium in said perrhenic acid solution.
- 2. In a method of hydrogenating a saturated or unsaturated ester in a process including hydration of the ester, comprising:conducting the hydrogenation reactions including a hydration reaction in the presence of a shaped, activated, fixed-bed Raney metal catalyst prepared by a method comprising: (i) preparing a mixture of powders comprises at least one catalyst alloy of (1) at least one catalytically active Raney process metal, a leachable alloy component and optionally a promoter, (2) at least one binder containing at least one Raney process metal, and (3) a moistening agent, (i-a) homogenizing said mixture, (i-b) shaping said mixture into a molded catalyst precursor which is not activated, (i-c) calcining said molded catalyst precursor at a temperature below 850° C., thereby obtaining a sintered catalyst precursor, and (i-d) activating said sintered catalyst precursor by leaching said leachable alloy component with alkali until the leached, and thereby activated outer layer, has a thickness of 0.05 to 1 mm; and (ii) doping said catalyst with rhenium as a promoter after said activation by introducing said catalyst into a perrhenic acid solution, of an initially adjusted pH, for a sufficient period of time to dope the catalyst completely with the rhenium in said acid solution.
- 3. In a method of partially hydrogenating a saturated or unsaturated ester in a process including hydration of the ester, comprising:conducting the partial hydrogenation reactions including a hydration reaction in the presence of a shaped, activated, fixed-bed Raney metal catalyst prepared by a method comprising: (i) preparing a mixture of powders comprising at least one catalyst alloy of (1) at least one catalytically active Raney process metal, a leachable alloy component and optionally a promoter, (2) at least one binder containing at least one pure Raney process metal, and (3) a moistening agent, (i-a) homogenizing said mixture, (i-b) shaping said mixture into a molded catalyst precursor which is not activated, (i-c) calcining said molded catalyst precursor at a temperature below 850° C., thereby obtaining a sintered catalyst precursor, (i-d) activating said sintered catalyst precursor by leaching said leachable alloy component with alkali until the leached, and thereby activated outer layer has a thickness of 0.05 to 1 mm, and (i-e) subsequently washing the final catalyst; and (ii) doping said catalyst with rhenium as a promoter after said activation by introducing said catalyst into a perrhenic acid solution or a solution of a Re salt, for a sufficient period of time to dope the catalyst completely with the rhenium in said perrhenic acid solution.
- 4. In a method of partially hydrogenating a saturated or unsaturated ester in a process including hydration of the ester, comprising:conducting the partial hydrogenation reactions including a hydration reaction in the presence of a shaped, activated, fixed-bed Raney metal catalyst prepared by a method comprising: (i) preparing a mixture of powders comprises at least one catalyst alloy of (1) at least one catalytically active Raney process metal, a leachable alloy component and optionally a promoter, (2) at least one binder containing at least one Raney process metal, and (3) a moistening agent, (i-a) homogenizing said mixture, (i-b) shaping said mixture into a molded catalyst precursor which is not activated, (i-c) calcining said molded catalyst precursor at a temperature below 850° C., thereby obtaining a sintered catalyst precursor, and (i-d) activating said sintered catalyst precursor by leaching said leachable alloy component with alkali until the leached, and thereby activated outer layer, has a thickness of 0.05 to 1 mm; and (ii) doping said catalyst with rhenium as a promoter after said activation by introducing said catalyst into a perrhenic acid solution, of an initially adjusted pH, for a sufficient period of time to dope the catalyst completely with the rhenium in said perrhenic acid solution.
- 5. In a method of hydrogenating maleic anhydride ultimately to 1,4-butanediol which is in equilibrium with tetrahydrofuran via hydration/dehydration reactions, comprising:conducting the hydration reaction in the presence of a shaped, activated, fixed-bed Raney metal catalyst prepared by a method comprising: (i) preparing a mixture of powders comprising at least one catalyst alloy of (1) at least one catalytically active Raney process metal, a leachable alloy component and optionally a promoter, (2) at least one binder containing at least one pure Raney process metal, and (3) a moistening agent, (i-a) homogenizing said mixture, (i-b) shaping said mixture into a molded catalyst precursor which is not activated, (i-c) calcining said molded catalyst precursor at a temperature below 850° C., thereby obtaining a sintered catalyst precursor, (i-d) activating said sintered catalyst precursor by leaching said leachable alloy component with alkali until the leached, and thereby activated outer layer has a thickness of 0.05 to 1 mm, and (i-e) subsequently washing the final catalyst; and (ii) doping said catalyst with rhenium as a promoter after said activation by introducing said catalyst into a perrhenic acid solution or a solution of a Re salt, for a sufficient period of time to dope the catalyst completely with the rhenium in said perrhenic acid solution.
- 6. In a method of hydrogenating maleic anhydride ultimately to 1,4-butanediol which is in equilibrium with tetrahydrofuran via hydration/dehydration reactions, comprising:conducting the hydration reaction in the presence of a shaped, activated, fixed-bed Raney metal catalyst prepared by a method comprising: (i) preparing a mixture of powders comprises at least one catalyst alloy of (1) at least one catalytically active Raney process metal, a leachable alloy component and optionally a promoter, (2) at least one binder containing at least one Raney process metal, and (3) a moistening agent, (i-a) homogenizing said mixture, (i-b) shaping said mixture into a molded catalyst precursor which is not activated, (i-c) calcining said molded catalyst precursor at a temperature below 850° C., thereby obtaining a sintered catalyst precursor, and (i-d) activating said sintered catalyst precursor by leaching said leachable alloy component with alkali until the leached, and thereby activated outer layer, has a thickness of 0.05 to 1 mm; and (ii) doping said catalyst with rhenium as a promoter after said activation by introducing said catalyst into a perrhenic acid solution, of an initially adjusted pH, for a sufficient period of time to dope the catalyst completely with the rhenium in said perrhenic acid solution.
Priority Claims (1)
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199 36 135 |
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Parent Case Info
This application is a continuation of Ser. No. 09/368,571 filed Aug. 5, 1999 now U.S. Pat. No. 6,284,703.
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Continuations (1)
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Parent |
09/368571 |
Aug 1999 |
US |
Child |
09/905931 |
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US |