Claims
- 1. A method of inhibiting fouling deposit formation in a liquid hydrocarbonaceous medium, undergoing processing wherein in the absence of such fouling inhibition, fouling deposits would normally be formed within said medium, said method comprising adding to said medium an effective amount of an antifoulant composition comprising:
- Component (1) an alkyl phosphonate phenate sulfide antifoulant compound formed from the reaction of an alkyl (C.sub.1 -C.sub.24) phenol sulfide and phosphoric acid; and at least one additional compound selected from the group consisting of:
- Component (2) an effective antioxidant compound or compounds to inhibit oxygen based polymerization of said hydrocarbon medium selected from the group consisting of: phenylenediamine compounds, substituted phenolic compounds, quinone and its derivatives; or phenothiazine and its derivatives;
- Component (3) a corrosion inhibiting compound or compounds to reduce corrosion of metal surfaces in contact with said hydrocarbon medium during processing thereof, selected from the group consisting of: tetrahydropyrimidines; imidazolines; reaction products of alkylene polyamines and aliphatic carboxylic acids and optionally further reacted with paraformaldehyde to give heterocyclic compounds; magnesium, calcium or amine sulfonates; reaction products of ethylene or propylene oxide with alkyl phenol to yield aromatic ethers or reaction products of a tallowpolyamine and an alkylacrylate; and
- Component (4) a metal deactivator compound or compounds adapted to complex with metallic impurities in said hydrocarbon medium selected from the group consisting of: N,N'-disalicylidene-1,2-cyclohexanediamine; 2,5-dimercapto-1,3,4-thiadiazole and its derivatives; or reaction products of alkyl phenol, aldehyde and polyamines to yield Mannich products; and mixtures thereof.
- 2. A method as recited in claim 1 comprising feeding from about 0.5 to about 10,000 parts of said antifoulant composition to said medium per one million parts of said medium.
- 3. A method as recited in claim 1 comprising feeding from about 1 to about 500 parts of said antifouling composition to said medium per one million parts of said medium.
- 4. A method as recited in claim 2 wherein said alkyl phosphonate phenate sulfide, component (1), is an overbased alkaline earth metal alkyl phosphonate phenate sulfide.
- 5. A method as recited in claim 2 wherein said medium is heated to a temperature of about 100.degree. to about 1000.degree. F.
- 6. A method as recited in claim 5 wherein said medium is heated to a temperature of about 600.degree. F. to about 1000.degree. F.
- 7. A method as recited in claim 4 wherein said alkaline earth metal alkyl phosphonate phenate sulfide is calcium alkyl phosphonate phenate sulfide.
- 8. A method as recited in claim 4 wherein said alkaline earth metal alkyl phosphonate phenate sulfide is magnesium alkyl phosphonate phenate sulfide.
- 9. A method as recited in claim 2 wherein said alkyl phosphonate phenate sulfide is an amine neutralized alkyl phosphonate phenate sulfide, wherein the neutralizing amine or amines is/are selected from the group consisting of ammonia, alkylamines, arylamines, cycloalkylamines, alkanolamines, fatty amines, oxyalkylene amines, hydroxylated polyamines, and mixtures thereof.
- 10. A method as recited in claim 9 wherein said amine neutralized alkyl phosphonate phenate sulfide comprises an alkanolamine neutralized alkyl phosphonate phenate sulfide.
- 11. A method as recited in claim 2 wherein said antioxidant, component (2), is present and comprises a phenylenediamine compound.
- 12. A method as recited in claim 11 wherein said phenylenediamine compound is selected from the group consisting of N-phenyl-N'(1,3-dimethylbutyl)-p-phenylenediamine, N-phenyl-N'(1,4-dimethylpentyl)-p-phenylenediamine, and N-phenyl-N'(1,3-dimethylpropyl)-p-phenylenediamine, and mixtures thereof.
- 13. A method as recited in claim 2 wherein said corrosion inhibitor, component (3), is present and comprises tetrahydropyrimidene.
- 14. A method as recited in claim 2 wherein said corrosion inhibitor, component (3), is present and comprises a corrosion inhibiting reaction product obtained by: (a) reacting at least one alkylene polyamine with a sufficient quantity of at least one aliphatic carboxylic acid to produce a salt of said amine and said acid, said salt being of such nature that the amine reactant is decharacterized to the extent that the likelihood of an amine-aldehyde condensation polymerization is substantially eliminated.
- 15. A method as recited in claim 14 further comprising reacting said salt with a lower aldehyde.
- 16. A method as recited in claim 14 wherein said corrosion inhibitor is a reaction product of CH.sub.3 (CH.sub.2).sub.17 --NH--(CH.sub.2).sub.3 --NH.sub.2 and a tall oil head.
- 17. A method as recited in claim 15 wherein said corrosion inhibitor is a reaction product of CH.sub.3 (CH.sub.2).sub.17 --NH--(CH.sub.2).sub.3 --NH.sub.2, a tall oil head and paraformaldehyde.
- 18. A method as recited in claim 2 wherein said corrosion inhibitor, component (3), is present and comprises a reaction product of a tallowpolyamine and an alkylacrylate.
- 19. A method as recited in claim 2 wherein said corrosion inhibitor, component (3), is present and comprises a reaction product of tall oil fatty acids and a polyamine.
- 20. A method as recited in claim 2 wherein said metal deactivator, component (4), is present and comprises a reaction product of a substituted phenol selected from the group consisting of alkylphenol, dialkylphenol, alkoxyphenol, and mixtures thereof; an aldehyde, and a polyamine.
- 21. A method as recited in claim 20 wherein said metal deactivator, component (4) comprises the reaction product of nonylphenol, formaldehyde and ethylenediamine.
- 22. A method as recited in claim 2 wherein said metal deactivator, component (4), is present and comprises N,N'-disalicylidene-1,2-cyclohexanediamine.
- 23. A method of inhibiting fouling in a liquid hydrocarbon medium undergoing processing at a temperature of from about 100.degree. to about 1000.degree. F. wherein in the absence of such fouling inhibition, fouling deposits would normally be formed within said medium, said method comprising adding from about 0.5 to about 10,000 parts of an antifoulant composition to said hydrocarbon medium per one million parts of said medium, said antifoulant composition comprising an effective amount of:
- Component (1) a compound selected from the group consisting of slightly overbased alkaline earth alkyl phosphonate phenate sulfides, alkyl phosphonate phenate sulfides, amine neutralized alkyl phosphonate phenate sulfides and mixtures thereof; and at least one additional compound selected from the group consisting of:
- Component (2) an effective antioxidant compound or compounds to inhibit oxygen based polymerization of said hydrocarbon medium selected from the group consisting of: phenylenediamine compounds, substituted phenolic compounds, quinone and its derivatives; or phenothiazine and its derivatives;
- Component (3) a corrosion inhibiting compound or compounds to reduce corrosion of metal surfaces in contact with said hydrocarbon medium during processing thereof, selected from the group consisting of: tetrahydropyrimidines; imidazolines; reaction products of alkylene polyamines and aliphatic carboxylic acids and optionally further reacted with paraformaldehyde to give heterocyclic compounds; magensium, calcium or amine sulfonates; reaction products of ethylene or propylene oxide with alkyl phenol to yield aromatic ethers; or reaction products of a tallowpolyamine and an alkylacrylate; and
- Component (4) a metal deactivator compound or compounds adapted to complex with metallic impurities in said hydrocarbon medium selected from the group consisting of: N,N'-disalicylidene-1,2-cyclohexanediamine; 2,5-dimercapto-1,3,4-thiadizole and its derivatives; or reaction products of alkyl phenol, aldehyde and polyamines to yield Mannich products; and mixtures thereof.
- 24. A method as recited in claim 23 wherein said hydrocarbon medium is heated to a temperature of about 600.degree. to about 1000.degree. F.
- 25. A method as recited in claim 23 comprising adding from about 1 to about 500 parts of the combination of component (1) and additional antifouling components, to said medium, based upon one million parts of said hydrocarbonaceous medium.
- 26. A method as recited in claim 23 wherein said antifouling compound, component (1), is a calcium alkyl phosphonate phenate sulfide.
- 27. A method as recited in claim 23 wherein said antifouling compound, component (1), is an alkanolamine neutralized alkyl phosphonate phenate sulfide.
- 28. A method as recited in claim 27 wherein said antifouling compound, component (1), is triethanolamine neutralized alkyl phosphonate phenate sulfide.
- 29. A method as recited in claim 23 wherein said antioxidant, component (2), is present and comprises a phenylenediamine compound.
- 30. A method as recited in claim 29 wherein said phenylenediamine compound is selected from the group consisting of N-phenyl-N'(1,3-dimethylbutyl)-p-phenylenediamine, N-phenyl-N'(1,4-dimethylpentyl)-p-phenylenediamine, N-phenyl-N'(1,3-dimethylpropyl)-p-phenylenediamine, and mixtures thereof.
- 31. A method as recited in claim 23 wherein said corrosion inhibitor, component (3), is present and comprises tetrahydropyrimidene.
- 32. A method as recited in claim 23 wherein said corrosion inhibitor, component (3), is present and comprises a corrosion inhibiting reaction product obtained by: reacting at least one alkylene polyamine with a sufficient quantity of at least one aliphatic carboxylic acid to produce a salt of said amine and said acid, said salt being of such nature that the amine reactant is decharacterized to the extent that the likelihood of an aminealdehyde condensation polymerization is substantially eliminated.
- 33. A method as recited in claim 32 wherein said corrosion inhibitor, component (3), is a reaction product of CH.sub.3 (CH.sub.2).sub.17 --NH--(CH.sub.2).sub.3 --NH.sub.2 and a tall oil head.
- 34. A method as recited in claim 32 further comprising reacting said salt with a lower aldehyde.
- 35. A method as recited in claim 34 wherein said corrosion inhibitor is a reaction product of CH.sub.3 (CH.sub.2).sub.17 --NH--(CH.sub.2).sub.3 --NH.sub.2, a tall oil head and paraformaldehyde.
- 36. A method recited in claim 23 wherein said corrosion inhibitor, component (3) is present and comprises a reaction product of a tallowpolyamine and an alkylacrylate.
- 37. A method as recited in claim 23 wherein said corrosion inhibitor, component (3), is present and comprises a reaction product of tall oil fatty acids and a polyamine.
- 38. A method as recited in claim 23 wherein said metal deactivator, component (4), is present and comprises a reaction product of a substituted phenol selected from the group consisting of alkylphenol, dialkylphenol, and alkoxyphenol; an aldehyde, and a polyamine.
- 39. A method as recited in claim 38 wherein said metal deactivator, component (4), comprises the reaction product of nonylphenol, formaldehyde, and ethylenediamine.
- 40. A method as recited in claim 23 wherein said metal deactivator, component (4), is present and comprises N,N'-disalicylidene-1,2-cyclohexanediamine.
- 41. A method as recited in claim 23 wherein said antifoulant composition comprises an effective amount of: component (1), a calcium alkyl phosphonate phenate sulfide; component (2), an effective antioxidant compound adapted to inhibit oxygen based polymerization of said medium; and component (3), a corrosion inhibiting compound or compounds.
- 42. A method as recited in claim 41 wherein said antifoulant composition further comprises component (4), a metal deactivator compound or compounds adapted to complex with metallic impurities in said medium.
- 43. A method as recited in claim 23 wherein said antifoulant composition comprises: component (1) and at least two additional compounds selected from the group consisting of component (2), component (3), component (4), and mixtures thereof.
- 44. A method of inhibiting fouling deposit formation in a liquid hydrocarbonaceous medium undergoing processing at about 100.degree. to about 1000.degree. F., wherein in the absence of such fouling inhibition, fouling deposits would normally be formed within said medium, said method comprising adding to said medium from about 0.5 to about 10,000 ppm of an antifoulant comprising said antifoulant composition comprising:
- Component (1) an alkyl phosphonate phenate sulfide antifoulant compound formed from reaction of an alkyl (C.sub.1 -C.sub.24) phenol sulfide and phosphoric acid; and at least one additional compound selected from the group consisting of:
- Component (2) an effective antioxidant compound or compounds adapted to inhibit oxygen based polymerization of said hydrocarbon medium selected from the group consisting of: phenylenediamine compounds, substituted phenolic compounds, quinone and its derivatives; or phenothiazine and its derivatives;
- Component (3) a corrosion inhibiting compound or compounds to reduce the corrosion of metal surfaces in contact with said hydrocarbon medium during processing thereof, selected from the group consisting of: tetrahydropyrimidines; imidazolines; reaction products of alkylene polyamines and aliphatic carboxylic acids and optionally further reacted with paraformaldehyde to give heterocyclic compounds; magnesium, calcium or amine sulfonates; reaction products of ethylene or propylene oxide with alkyl phenol to yield aromatic ethers; or reaction products of a tallowpolyamine and an alkylacrylate; and
- Component (4) a metal deactivator compound or compounds adapted to complex with metallic impurities in said hydrocarbon medium selected from the group consisting of: N,N'-disalicylidene-1,2-cyclohexanediamine; 2,5-dimercapto-1,3,4-thiadiazole and its derivatives; or reaction products of alkyl phenol, aldehyde and polyamines to yield Mannich products; and mixtures thereof.
- 45. A method as recited in claim 44 wherein said hydrocarbon medium is undergoing processing at about 600.degree. to about 1000.degree. F.
- 46. A method as recited in claim 44 comprising feeding from about 1 to about 500 parts of said antifouling composition to said medium per one million parts of said medium.
- 47. A method as recited in claim 44 wherein said alkyl phosphonate phenate sulfide, component (1), is an overbased alkaline earth metal alkyl phosphonate phenate sulfide.
- 48. A method as recited in claim 47 wherein said alkaline earth metal alkyl phosphonate phenate sulfide is calcium alkyl phosphonate phenate sulfide.
- 49. A method as recited in claim 47 wherein said alkaline earth metal alkyl phosphonate phenate sulfide is magnesium alkyl phosphonate phenate sulfide.
- 50. A method as recited in claim 44 wherein said alkyl phosphonate phenate sulfide is an amine neutralized alkyl phosphonate phenate sulfide, wherein the neutralizing amine or amines is/are selected from the group consisting of ammonia, alkylamines, arylamines, cycloalkylamines, alkanolamines, fatty amines, oxyalkylene amines, hydroxylated polyamines, and mixtures thereof.
- 51. A method as recited in claim 50 wherein said amine neutralized alkyl phosphonate phenate sulfide comprises an alkanolamine neutralized alkyl phosphonate phenate sulfide.
- 52. A method as recited in claim 44 wherein said antioxidant, component (2), is present and comprises a phenylenediamine compound.
- 53. A method as recited in claim 52 wherein said phenylenediamine compound is selected from the group consisting of N-phenyl-N'(1,3-dimethylbutyl)-p-phenylenediamine, N-phenyl-N'(1,4-dimethylpentyl)phenylenediamine, and N-phenyl-N'(1,3-dimethylpropyl)-p-phenylenediamine, and mixtures thereof.
- 54. A method as recited in claim 44 wherein said corrosion inhibitor, component (3), is present and comprises tetrahydropyrimidene.
- 55. A method as recited in claim 44 wherein said corrosion inhibitor, component (3), is present and comprises a corrison inhibiting reaction product obtained by: (a) reacting at least one alkylene polyamine with a sufficient quantity of at least one aliphatic carboxylic acid to produce a salt of said amine and said acid, said salt being of such nature that the amine reactant is decharacterized to the extent that the likelihood of an amine-aldehyde condensation polymerization is substantially eliminated.
- 56. A method as recited in claim 55 wherein said corrosion inhibitor is a reaction product of CH.sub.3 (CH.sub.2).sub.17 --NH--(CH.sub.2).sub.3 --NH.sub.2 and a tall oil head.
- 57. A method as recited in claim 55 further comprising reacting said salt with a lower aldehyde.
- 58. A method as recited in claim 57 wherein said corrosion inhibitor is a reaction product of CH.sub.3 (CH.sub.2).sub.17 --NH--(CH.sub.2).sub.3 --NH.sub.2, a tall oil head and paraformaldehyde.
- 59. A method as recited in claim 44 wherein said corrosion inhibitor, component (3), is present and comprises a reaction product of a tallowpolyamine and alkylacrylate.
- 60. A method as recited in claim 44 wherein said corrosion inhibitor, component (3), is present and comprises a reaction product of tall oil fatty acids and a polyamine.
- 61. A method as recited in claim 44 wherein said metal deactivator, component (4), is present and comprises a reaction product of a substituted phenol selected from the group consisting of alkyl phenol, dialkylphenol, alkoxyphenol, and mixtures thereof; an aldehyde, and a polyamine.
- 62. A method as recited in claim 61 wherein said metal deactivator, component (4) comprises the reaction product of nonyl phenyl, formaldehyde and ethylenediamine.
- 63. A method as recited in claim 44 wherein said metal deactivator, component (4), is present and comprises N,N'-disalicylidene-1,2-cyclohexanediamine.
- 64. A method of inhibiting fouling in a liquid hydrocarbon medium undergoing processing at a temperature of from about 600.degree. to 1000.degree. F. wherein in the absence of such fouling inhibition, fouling deposits would normally be formed within said medium, said method comprising adding from about 0.5 to about 10,000 parts of an antifoulant composition to said hydrocarbon medium per one million parts of said medium, said antifoulant composition comprising an effective amount of:
- Component (1) a compound selected from the group consisting of slightly overbased alkaline earth alkyl phosphonate phenate sulfides, alkyl phosphonate phenate sulfides, amine neutralized alkyl phosphonate phenate sulfides and mixtures thereof; and at least one additional compound selected from the group consisting of:
- Component (2) an effective antioxidant compound or compounds adapted to inhibit oxygen based polymerization of said hydrocarbon medium selected from the group consisting of: phenylenediamine compounds, substituted phenolic compounds, quinone and its derivatives; or phenothiazine and its derivatives;
- Component (3) a corrosion inhibiting compound or compounds to reduce corrosion of metal surfaces in contact with said hydrocarbon medium during processing thereof, selected from the group consisting of: tetrahydropyrimidines; imidazolines; reaction products of alkylene polyamines and aliphatic carboxylic acids and optionally further reacted with paraformaldehyde to give heterocyclic compounds; magnesium, calcium or amine sulfonates; reaction products of ethylene or propylene oxide with alkyl phenol to yield aromatic ethers; or reaction products of a tallowpolyamine and an alkylacrylate; and
- Component (4) a metal deactivator compound or compounds adapted to complex with metallic impurities in said hydrocarbon medium selected from the group consisting of N,N'-disalicylidene-1,2-cyclohexanediamine; 2,5-dimercapto-1,3,4-thiadiazole and its derivatives; or reaction products of alkyl phenol, aldehyde and polyamines to yield Mannich products; and mixtures thereof.
- 65. A method as recited in claim 64 comprising adding from about 1 to 500 parts of the combination of components (1) and additional antifouling components, to said medium, based upon one million parts of said hydrocarbonaceous medium.
- 66. A method as recited in claim 64 wherein said antifouling compound, component (1), is a calcium alkyl phosphonate phenate sulfide.
- 67. A method as recited in claim 64 wherein said antifouling compound, component (1), is an alkanolamine neutralized alkyl phosphonate phenate sulfide.
- 68. A method as recited in claim 67 wherein said antifouling compound, component (1), is triethanolamine neutralized alkyl phosphonate phenate sulfide.
- 69. A method as recited in claim 64 wherein said antioxidant, component (2), is present and comprises a phenylenediamine compound.
- 70. A method as recited in claim 69 wherein said phenylenediamine compound is selected from the group consisting of N-phenyl-N'(1,3-dimethylbutyl)-p-phenylenediamine, N-phenyl-N'(1,4-dimethylpentyl)-p-phenylenediamine, N-phenyl-N'(1,3-dimethylpropyl)-p-phenylenediamine, and mixtures thereof.
- 71. A method as recited in claim 64 wherein said corrosion inhibitor, component (3), is present and comprises tetrahydropyrimidene.
- 72. A method as recited in claim 64 wherein said corrosion inhibitor, component (3), is present and comprises a corrosion inhibiting reaction product obtained by: reacting at least one alkylene polyamine with a sufficient quantity of at least one aliphatic carboxylic acid to produce a salt of said amine and said acid, said salt being of such nature that the amine reactant is decharacterized to the extent that the likelihood of an amine aldehyde condensation polymerization is substantially eliminated.
- 73. A method as recited in claim 72 wherein said corrosion inhibitor, component (3), is a reaction product of CH.sub.3 (CH.sub.12).sub.17 --NH--(CH.sub.2).sub.3 --NH.sub.2 and a tall oil head.
- 74. A method as recited in claim 72 further comprising reacting said salt with a lower aldehyde.
- 75. A method as recited in claim 74 wherein said corrosion inhibitor is a reaction product of CH.sub.3 (CH.sub.2).sub.17 --NH--(CH.sub.2).sub.3 --NH.sub.2, a tall oil head and paraformaldehyde.
- 76. A method as recited in claim 64 wherein said corrosion inhibitor, component (3), is present and comprises a reaction product of tallowpolyamine and an alkylacrylate.
- 77. A method as recited in claim 64 wherein said corrosion inhibitor, component (3), is present and comprises a reaction product of tall oil fatty acids and a polyamine.
- 78. A method as recited in claim 64 wherein said metal deactivator, component (4), is present and comprises a reaction product of a substituted phenol selected from the group consisting of alkyl phenol, dialkylphenol, and alkoxyphenol; and aldehyde, and a polyamine.
- 79. A method as recited in claim 78 wherein said metal deactivator, component (4), comprises the reaction product of nonyl phenyl, formaldehyde, and ethylenediamine.
- 80. A method as recited in claim 64 wherein said metal deactivator, component (4), is present and comprises N,N'-disalicylidene-1,2-cyclohexanediamine.
- 81. A method as recited in claim 64 wherein said antifoulant composition comprises an effective amount of: component (1), a calcium alkyl phosphonate phenate sulfide; component (2), an effective antioxidant compound adapted to inhibit oxygen based polymerization of said medium; and component (3), a corrosion inhibiting compound or compounds.
- 82. A method as recited in claim 81 wherein said antifoulant composition further comprises component (4), a metal deactivator compound or compounds adapted to complex with metallic impurities in said medium.
- 83. A method as recited in claim 64 wherein said antifoulant composition comprises: component (1) and at least two additional compounds selected from the group consisting of component (2), component (3), component (4), and mixtures thereof.
Parent Case Info
This application is a continuation-in-part of Ser. No. 177,252 filed Apr. 4, 1988 now U.S. Pat. No. 4,828,674.
US Referenced Citations (22)
Continuation in Parts (1)
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Number |
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177252 |
Apr 1988 |
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