Claims
- 1. A process for making an iminodiacetic acid compound from a monoethanolamine substrate, the process comprising:
continuously or intermittently introducing said monoethanolamine substrate into a dehydrogenation reaction zone; contacting said monoethanolamine substrate with a metal-containing catalyst in said dehydrogenation zone to form a dehydrogenation product comprising a glycine intermediate; continuously or intermittently introducing at least a portion of said glycine intermediate from said dehydrogenation product into a cyanomethylation reaction zone; contacting said glycine intermediate with a cyanide source and a formaldehyde source in said cyanomethylation reaction zone to form a cyanomethylation product comprising an N-cyanomethylated glycine intermediate; continuously or intermittently introducing at least a portion of said N-cyanomethylated glycine intermediate from said cyanomethylation product into a hydrolysis reaction zone; and contacting said N-cyanomethylated glycine intermediate with a hydroxide source in said hydrolysis reaction zone to form a hydrolysis product comprising an iminodiacetic acid compound, wherein said monoethanolamine substrate has the formula: 8and R1 is hydrogen, hydrocarbyl, or substituted hydrocarbyl.
- 2. A process as set forth in claim 1 wherein R1 is hydrocarbyl.
- 3. A process as set forth in claim 2, wherein R1 is methyl, ethyl, isopropyl, benzyl, or pentyl.
- 4. A process as set forth in claim 3, wherein R1 is methyl.
- 5. A process as set forth in claim 1 wherein R1 is hydrogen.
- 6. A process as set forth in claim 1, wherein said metal-containing catalyst comprises a metal selected from the group consisting of cadmium, copper, nickel, silver and lead.
- 7. A process as set forth in claim 1, wherein said metal-containing catalyst comprises copper.
- 8. A process as set forth in claim 7, wherein said metal-containing catalyst comprises a copper-containing active phase at the surface thereof and a supporting structure that is resistant to deformation under the conditions of the dehydrogenation reaction.
- 9. A process as set forth in claim 8, wherein said supporting structure comprises titanium oxide, zirconium oxide, or carbon.
- 10. A process as set forth in claim 8, wherein said metal-containing catalyst further comprises platinum, palladium, ruthenium, or gold at the surface of said supporting structure.
- 11. A process as set forth in claim 8 wherein said supporting structure comprises a metal sponge containing at least about 15% by weight non-copper metal and at least about 10% by weight copper.
- 12. A process as set forth in claim 8 wherein the active phase at the surface of said catalyst comprises at least about 50% by weight copper.
- 13. A process as set forth in claim 12 wherein said active phase contains less than about 1% by weight of a metal oxide other than cuprous oxide.
- 14. A process as set forth in claim 12 wherein said active phase contains less than about 1% by weight of cuprous oxide.
- 15. A process as set forth in claim 12 wherein said active phase contains at least about 1% by weight of a supplemental metal selected from the group consisting of chromium, titanium, niobium, tantalum, zirconium, vanadium, molybdenum, manganese, tungsten, cobalt, nickel, bismuth, tin, antimony, lead, and germanium, and mixtures thereof.
- 16. A process as set forth in claim 8 wherein said supporting structure comprises a metal containing at least about 10% by weight non-copper metal.
- 17. A process as set forth in claim 16 wherein said catalyst comprises a metal sponge.
- 18. A process as set forth in claim 16, wherein said metal support comprises at least about 10% by weight of a non-copper metal selected from the group consisting of nickel, zinc, tin, cobalt and iron, or a combination thereof.
- 19. A process as set forth in claim 16 wherein said catalyst comprises a surface stratum comprising said active phase, said surface stratum containing between about 0.005 and about 0.5 grams of copper per gram of said supporting structure.
- 20. A process as set forth in claim 16 wherein said catalyst comprises a metal sponge support having deposited thereon a copper-containing outer stratum.
- 21. A process as set forth in claim 1 wherein:
said formaldehyde source comprises formalin, paraformaldehyde, or glycolonitrile; and said cyanide source comprises hydrogen cyanide or a salt thereof, or glycolonitrile.
- 22. A process as set forth in claim 21 wherein said cyanide source comprises sodium cyanide or potassium cyanide.
- 23. A process as set forth in claim 21 wherein said formaldehyde source and said cyanide source is glycolonitrile.
- 24. A process as set forth in claim 1 wherein said hydroxide source comprises an alkali metal hydroxide.
- 25. A process as set forth in claim 1, wherein said hydroxide source comprises NaOH.
- 26. A process as set forth in claim 1, wherein said monoethanolamine substrate comprises 2-aminoethanol, said glycine intermediate comprises sodium glycinate, said N-cyanomethylated glycine intermediate comprises sodium N-cyanomethylglycinate, and said iminodiacetic acid compound comprises disodium iminodiacetic acid.
- 27. A process as set forth in claim 1, wherein said process is conducted in a continuous reactor system.
- 28. A process as set forth in claim 27 wherein said cyanomethylation reaction zone comprises a stirred-tank reactor.
- 29. A process as set forth in claim 27, wherein said cyanomethylation reaction zone comprises at least two stirred-tank reactors in series.
- 30. A process as set forth in claim 27, wherein said process further comprises separating hydrogen cyanide and/or water from said N-cyanomethylated glycine intermediate prior to introducing said N-cyanomethylated glycine intermediate into said hydrolysis reaction zone.
- 31. A process as set forth in claim 30, wherein said hydrogen cyanide and/or said water are separated from said N-cyanomethylated glycine intermediate in a stripper.
- 32. A process as set forth in claim 27, wherein said dehydrogenation reaction zone comprises a stirred-tank reactor.
- 33. A process as set forth in claim 27, wherein said dehydrogenation reaction zone comprises at least two stirred-tank reactors in series.
- 34. A process as set forth in claim 1, wherein said process further comprises phosphonomethylating said iminodiacetic acid compound to form N-(phosphonomethyl) iminodiacetic acid or a salt thereof.
- 35. A process as set forth in claim 34, wherein said process further comprises oxidizing said N-(phosphonomethyl)iminodiacetic acid to form N-(phosphonomethyl)glycine or a salt thereof.
- 36. A process for making disodium iminodiacetic acid from 2-aminoethanol, the process comprising:
continuously or intermittently introducing said 2-aminoethanol into a dehydrogenation reaction zone; contacting said 2-aminoethanol with a metal-containing catalyst in said dehydrogenation zone to form a dehydrogenation product comprising sodium glycinate; continuously or intermittently introducing at least a portion of said sodium glycinate from said dehydrogenation product into a cyanomethylation reaction zone; contacting said sodium glycinate with a cyanide source and a formaldehyde source in said cyanomethylation reaction zone to form a cyanomethylation product comprising sodium N-cyanomethylglycinate; continuously or intermittently introducing at least a portion of said sodium N-cyanomethylglycinate from said cyanomethylation product into a hydrolysis reaction zone; and contacting said sodium N-cyanomethylglycinate with a hydroxide source in said hydrolysis reaction zone to form a hydrolysis product comprising disodium iminodiacetic acid.
- 37. A process as set forth in claim 36, wherein said metal-containing catalyst comprises a metal selected from the group consisting of cadmium, copper, nickel, silver and lead.
- 38. A process as set forth in claim 36, wherein said metal-containing catalyst comprises copper.
- 39. A process as set forth in claim 38, wherein said metal-containing catalyst comprises a copper-containing active phase at the surface thereof and a supporting structure that is resistant to deformation under the conditions of the dehydrogenation reaction.
- 40. A process as set forth in claim 39 wherein said supporting structure comprises a metal sponge containing at least about 15% by weight non-copper metal and at least about 10% by weight copper.
- 41. A process as set forth in claim 39 wherein the active phase at the surface of said catalyst comprises at least about 50% by weight copper.
- 42. A process as set forth in claim 41 wherein said active phase contains less than about 1% by weight of a metal oxide other than cuprous oxide.
- 43. A process as set forth in claim 41 wherein said active phase contains less than about 1% by weight of cuprous oxide.
- 44. A process as set forth in claim 41 wherein said active phase contains at least about 1% by weight of a supplemental metal selected from the group consisting of chromium, titanium, niobium, tantalum, zirconium, vanadium, molybdenum, manganese, tungsten, cobalt, nickel, bismuth, tin, antimony, lead, and germanium, and mixtures thereof.
- 45. A process as set forth in claim 39 wherein said supporting structure comprises a metal containing at least about 10% by weight non-copper metal.
- 46. A process as set forth in claim 45 wherein said catalyst comprises a metal sponge.
- 47. A process as set forth in claim 45, wherein said metal support comprises at least about 10% by weight of a non-copper metal selected from the group consisting of nickel, zinc, tin, cobalt and iron, or a combination thereof.
- 48. A process as set forth in claim 45 wherein said catalyst comprises a surface stratum comprising said active phase, said surface stratum containing between about 0.005 and about 0.5 grams of copper per gram of said supporting structure.
- 49. A process as set forth in claim 45 wherein said catalyst comprises a metal sponge support having deposited thereon a copper-containing outer stratum.
- 50. A process as set forth in claim 36, wherein:
said formaldehyde source comprises formalin, paraformaldehyde, or glycolonitrile; and said cyanide source comprises hydrogen cyanide or a salt thereof, or glycolonitrile.
- 51. A process as set forth in claim 50 wherein said cyanide source comprises sodium cyanide or potassium cyanide.
- 52. A process as set forth in claim 50 wherein said formaldehyde source and said cyanide source is glycolonitrile.
- 53. A process as set forth in claim 36 wherein said monoethanolamine substrate comprises 2-aminoethanol.
- 54. A process as set forth in claim 36, wherein said monoethanolamine substrate comprises 2-aminoethanol, said N-cyanomethylated monoethanolamine intermediate comprises 2-(N-cyanomethylamino)ethanol, and said iminodiacetic acid compound comprises disodium iminodiacetic acid.
- 55. A process as set forth in claim 36, wherein said process is conducted in a continuous reactor system.
- 56. A process as set forth in claim 55, wherein said cyanomethylation reaction zone comprises a stirred-tank reactor.
- 57. A process as set forth in claim 55, wherein said cyanomethylation reaction zone comprises at least two stirred-tank reactors in series.
- 58. A process as set forth in claim 55, wherein said process further comprises separating hydrogen cyanide and/or water from said sodium N-cyanomethylglycinate prior to introducing said sodium N-cyanomethylglycinate into said hydrolysis reaction zone.
- 59. A process as set forth in claim 58, wherein said hydrogen cyanide and/or said water are separated from said sodium N-cyanomethylglycinate in a stripper.
- 60. A process as set forth in claim 55, wherein said dehydrogenation reaction zone comprises a stirred-tank reactor.
- 61. A process as set forth in claim 55, wherein said dehydrogenation reaction zone comprises at least two stirred-tank reactors in series.
- 62. A process as set forth in claim 36, wherein said process further comprises phosphonomethylating said disodium iminodiacetic acid to form N-(phosphonomethyl) iminodiacetic acid or a salt thereof.
- 63. A process as set forth in claim 62, wherein said process further comprises oxidizing said N-(phosphonomethyl)iminodiacetic acid to form N-(phosphonomethyl)glycine or a salt thereof.
- 64. A process for making an iminodiacetic acid compound, the process comprising:
continuously or intermittently introducing glycine or a salt thereof into a cyanomethylation reaction zone; contacting said glycine or said glycine salt with a cyanide source and a formaldehyde source in said cyanomethylation reaction zone to form a cyanomethylation product comprising an N-cyanomethylated glycine intermediate; continuously or intermittently introducing at least a portion of said N-cyanomethylated glycine intermediate from said cyanomethylation product into a hydrolysis reaction zone; and contacting said N-cyanomethylated glycine intermediate with a hydroxide source in said hydrolysis reaction zone to form a hydrolysis product comprising an iminodiacetic acid compound.
- 65. A process as set forth in claim 64 wherein the process further comprises continuously or intermittently introducing at least a portion of said iminodiacetic acid compound from said hydrolysis product into a phosphonomethylation reaction zone; and
contacting said iminodiacetic acid compound with HCl, phosphorous acid and formaldehyde to form a phosphonomethylation product comprising an N-(phosphonomethyl)iminodiacetic acid compound.
- 66. A process as set forth in claim 65 wherein the process further comprises continuously or intermittently introducing at least a portion of said N-(phosphonomethyl) iminodiacetic acid compound from said phosphonomethylation product into an oxidation reaction zone; and
contacting said N-(phosphonomethyl)iminodiacetic acid compound with an oxidizing agent in the presence of a catalyst to form N-(phosphonomethyl)glycine or a salt thereof.
Priority Claims (2)
Number |
Date |
Country |
Kind |
PCT/JP01/00031 |
Jan 2001 |
WO |
|
2000-028822 |
Feb 2000 |
JP |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a divisional of co-pending U.S. patent application Ser. No. 09/858,117, filed May 15, 2001, which claims priority from U.S. Provisional Application Serial No. 60/204,168, filed May 15, 2000 (now abandoned). The entire texts of U.S. patent application Ser. No. 09/858,117 and U.S. Provisional Application Serial No. 60/204,168 are hereby incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60204168 |
May 2000 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09858117 |
May 2001 |
US |
Child |
10356867 |
Feb 2003 |
US |