Claims
- 1. A process for making an aqueous hydrocarbon fuel composition, comprising:(A) mixing a normally liquid hydrocarbon fuel and at least one chemical additive to form a hydrocarbon fuel-additive mixture, wherein said chemical additive comprises an emulsifier composition which comprises: (i) a combination of (i)(a) a first hydrocarbon fuel-soluble product made by reacting a first carboxylic acid acylating agent with an alkanol amine, said first carboxylic acid acylating agent having a hydrocarbyl substituent containing about 50 to about 500 carbon atoms, and (i)(b) a second hydrocarbon fuel-soluble product made by reacting a second carboxylic acid acylating agent with at least one ethylene polyamine, said second carboxylic acid acylating agent having a hydrocarbyl substituent containing about 50 to about 500 carbon atoms; (ii) optionally an ionic or a nonionic compound having a hydrophilic lipophilic balance of about 1 to about 10; and (iii) an emulsion stabilizing and combustion improving amount of a water-soluble salt represented by the formula k[G(NR3)y]y+nXp−wherein G is hydrogen or an organic group of 1 to about 8 carbon atoms having a valence of y; each R independently is hydrogen or a hydrocarbyl group of 1 to about 10 carbon atoms; Xp− is an anion having a valence of p; and k, y, n and p are independently integers of at least 1; and(B) mixing said hydrocarbon fuel-additive mixture with water under high shear mixing conditions in a high shear mixer to form said aqueous hydrocarbon fuel composition, said aqueous hydrocarbon fuel composition including a discontinuous aqueous phase, said discontinuous aqueous phase being comprised of aqueous droplets having a mean diameter of 1.0 micron or less.
- 2. The process of claim 1 wherein an antifreeze agent is added to said water, and then said hydrocarbon fuel-additive mixture is mixed with said water and said antifreeze agent during step (B) to form said aqueous hydrocarbon fuel composition.
- 3. The process of claim 1 wherein said high-shear mixer is a rotor-stator mixer having a first rotor-stator and a second rotor-stator arranged in series, said hydrocarbon fuel-additive mixture and said water being mixed in said first rotor-stator and then said second rotor-stator to form said aqueous hydrocarbon fuel composition.
- 4. The process of claim 3 wherein said high-shear mixer further comprises a third rotor-stator arranged in series with said first rotor-stator and said second rotor-stator, said hydrocarbon fuel-additive mixture and said water advancing through said first rotor-stator, then through said second rotor-stator, and then through said third rotor-stator to form said aqueous hydrocarbon fuel composition.
- 5. The process of claim 1 wherein said high-shear mixer is an ultrasonic mixer.
- 6. The process of claim 1 wherein said high-shear mixer is a high-pressure homogenizer.
- 7. The process of claim 1 wherein said hydrocarbon fuel-additive mixture and said water are advanced through said high shear mixer one time to form said aqueous hydrocarbon fuel composition, and then said aqueous hydrocarbon fuel composition is recycled through said high-shear mixer 1 to about 35 additional times.
- 8. The process of claim 1 wherein during step (A) said hydrocarbon fuel and said chemical additive flow in separate streams to a blend tank where they are mixed to form said hydrocarbon fuel-additive mixture, and during step (B) said hydrocarbon fuel-additive mixture and said water flow in separate streams (i) to said high shear mixer where they are mixed under high shear mixing conditions or (ii) to a conduit at the entrance to said high shear mixer where they are initially mixed for up to about 15 seconds and then to said high shear mixer where they are mixed under high shear mixing conditions to form said aqueous hydrocarbon fuel mixture; the flow of said hydrocarbon fuel, said chemical additive, said hydrocarbon fuel-additive mixture and said water being controlled by a programmable logic controller, and the mixing of said hydrocarbon fuel and said chemical additive during step (A) and the mixing of said hydrocarbon fuel-additive mixture and said water during step (B) being controlled by said programmable logic controller.
- 9. The process of claim 8 wherein said programmable logic controller is programmed by a programming computer communicating with said programmable logic controller.
- 10. The process of claim 9 wherein said process is conducted at a fuel dispensing location and said programming computer is located at said fuel-dispensing location.
- 11. The process of claim 9 wherein said process is conducted at a fuel-dispensing location and said computer is located at a location that is remote from said fuel-dispensing location.
- 12. The process of claim 8 wherein said process is conducted at one fuel-dispensing location and it is also conducted at another fuel-dispensing location located remote from said one fuel-dispensing location, said process being conducted at said one fuel-dispensing location being controlled by one programmable logic controller, and said process being conducted at said another fuel-dispensing location being controlled by another programmable logic controller, a programming computer being located at a location remote from said one fuel-dispensing location and from said another fuel-dispensing location, said programming computer being adapted for programming said one programmable logic controller and said another programmable logic controller.
- 13. The process of claim 8 wherein said process is monitored by a monitoring computer communicating with said programmable logic controller.
- 14. The process of claim 13 wherein said process is conducted at a fuel-dispensing location and said monitoring computer is located at said fuel-dispensing location.
- 15. The process of claim 13 wherein said process is conducted at a fuel-dispensing location and said monitoring computer is located at a location that is remote from said fuel-dispensing location.
- 16. The process of claim 8 wherein said process is conducted at one fuel-dispensing location and it is also conducted at another fuel dispensing location located remote from said one fuel-dispensing location, said process being conducted at said one fuel-dispensing location being controlled by one programmable logic controller, and said process being conducted at said another fuel-dispensing location being controlled by another programmable logic controller, a monitoring computer being located at a location remote from said one fuel-dispensing location and from said another fuel-dispensing location, said monitoring computer communicating with said one programmable logic controller and said another programmable logic controller and being adapted for monitoring said process.
- 17. The process of claim 1 wherein said normally liquid hydrocarbon fuel is a diesel fuel or gasoline.
- 18. The process of claim 1 wherein said normally liquid hydrocarbon fuel is a diesel fuel.
- 19. The process of claim 1 wherein said chemical additive comprises a mixture of (i), (ii) and (iii).
- 20. The process of claim 1, wherein said alkanol amine is selected from the group consisting of a dimethylethanolamine or a diethylethanolamine.
- 21. The process of claim 1, wherein the component (i)(a) is made from a polyisobutylene having a number average molecular weight range of from about 1500 to about 3000 and which is maleinated or succinated in the range of from 1.3 to 2.5.
- 22. The process of claim 1, wherein said ethylene polyamine is selected from the group consisting of TEPA, PEHA, or TETA.
- 23. The process of claim 1, wherein said ethylene polyamine is selected from the group consisting of polyamine bottoms or at least one heavy polyamine.
- 24. The process of claim 1, wherein component (i)(b) is a hydrocarbon fuel-soluble product made by reacting an acylating agent with at least one ethylene polyamine in an equivalent ratio of CO:N of from 1:1.5 to 1:0.5.
- 25. The process of claim 1, wherein component (i)(b) is a hydrocarbon fuel-soluble product made by reacting an acylating agent with at least one ethylene polyamine in an equivalent ratio of CO:N of from 1:1.3 to 1:0.70.
- 26. The process of claim 1, wherein component (i)(b) is a hydrocarbon fuel-soluble product made by reacting an acylating agent with at least one ethylene polyamine in an equivalent ratio of CO:N of from 1:1 to 1:0.70.
- 27. The process of claim 1, wherein said component (i)(b) is made from a polyisobutylene having a number average molecular weight range of from about 700 to about 1300 and which is succinated in the range from 1.0 up to 1.3.
- 28. The process of claim 1, wherein component (i)(b) is combined with component (i)(a) in an amount from about 0.05% to about 0.95% based upon the total weight of component (i).
- 29. The process of claim 1 wherein said chemical additive further comprises a cetane improver.
- 30. The process of claim 1 wherein said hydrocarbon fuel-additive mixture includes an organic solvent.
- 31. The process of claim 2 wherein said antifreeze agent is methanol, ethanol or ethylene glycol.
- 32. The process of claim 1 wherein said aqueous hydrocarbon fuel composition comprises from about 50 to about 95% by weight of said hydrocarbon fuel; about 5 to about 40% by weight of said water; and about 0.05 to about 30% by weight of said chemical additive.
- 33. The process of claim 2 wherein said aqueous hydrocarbon fuel composition comprises from about 50 to about 95% by weight of said hydrocarbon fuel, from about 5 to about 40% by weight of said water, from about 0.05 to about 30% by weight of said chemical additive, and from about 0.1 to about 10% by weight of said antifreeze agent.
- 34. The process of claim 1 wherein said droplets have a mean diameter of about 0.01 to about 0.7 micron.
- 35. A process for making an aqueous diesel fuel composition, comprising(A) mixing a diesel fuel and a chemical additive to form a diesel fuel-additive mixture, said chemical additive comprising an emulsifier composition which comprises: (i) a combination of (i)(a) a first diesel fuel-soluble product made by reacting a first hydrocarbyl substituted carboxylic acid acylating agent with an alkanol amine, the hydrocarbyl substituent of said first acylating agent having about 50 to about 500 carbon atoms, and (i)(b) a second diesel fuel-soluble product made by reacting a second hydrocarbyl substituted carboxylic acid acylating agent with at least one ethylene polyamine, the hydrocarbyl substituent of said second acylating agent having about 50 to about 500 carbon atoms; (ii) optionally an ionic or a nonionic compound having a hydrophilic lipophilic balance of about 1 to about 10; and (iii) an emulsion stabilizing and combustion improving amount of a water-soluble salt represented by the formula k[G(NR3)y]y+nXp−wherein G is hydrogen or an organic group of 1 to about 8 carbon atoms having a valence of y; each R independently is hydrogen or a hydrocarbyl group of 1 to about 10 carbon atoms; Xp− is an anion having a valence of p; and k, y, n and p are independently integers of at least 1; and(B) mixing said diesel fuel-additive mixture and water under high shear mixing conditions in a high shear mixer to form said aqueous diesel fuel composition, said high shear mixer being a rotor-stator mixer comprising a first rotor-stator, a second rotor-stator and a third rotor-stator arranged in series, said diesel fuel-additive mixture and said water being mixed in said first rotor-stator, then said second rotor-stator and then said third rotor stator to form said aqueous diesel fuel composition, said aqueous diesel fuel composition including a discontinuous aqueous phase, said discontinuous aqueous phase being comprised of aqueous droplets having a mean diameter of 1.0 micron or less.
- 36. The process of claim 35, wherein said alkanol amine is selected from the group consisting of a dimethylethanolamine or a diethylethanolamine.
- 37. The process of claim 35 wherein the component (i)(a) is made from a polyisobutylene having a number average molecular weight range of from about 1500 to about 3000 and which is maleinated or succinated in the range of from 1.3 to 2.5.
- 38. The process of claim 35, wherein said ethylene polyamine selected from the group consisting of TEPA, PEHA, or TETA.
- 39. The process of claim 35, wherein said ethylene polyamine is selected from the group consisting of polyamine bottoms or at least one heavy polyamine.
- 40. The process of claim 35, wherein component (i)(b) is a hydrocarbon fuel-soluble product made by reacting an acylating agent with at least one ethylene polyamine in an equivalent ratio of CO:N of from 1:1.5 to 1:0.5.
- 41. The process of claim 35, wherein component (i)(b) is a hydrocarbon fuel-soluble product made by reacting an acylating agent with at least one ethylene polyamine in an equivalent ratio of CO:N of from 1:1.3 to 1:0.70.
- 42. The process of claim 35, wherein component (i)(b) is a hydrocarbon fuel-soluble product made by reacting an acylating agent with at least one ethylene polyamine in an equivalent ratio of CO:N of from 1:1 to 1:0.70.
- 43. The process of claim 35, wherein said component (i)(b) is made from a polyisobutylene having a number average molecular weight range of from about 700 to about 1300 and which is succinated in the range from 1.0 up to 1.3.
- 44. The process of claim 35, wherein component (i)(b) is combined with component (i)(a) in an amount from about 0.05% to about 0;95% based upon the total weight of component (i).
- 45. An aqueous hydrocarbon fuel composition, comprising: a continuous phase of a normally liquid hydrocarbon fuel; a discontinuous aqueous phase, said discontinuous aqueous phase being comprised of aqueous droplets having a mean diameter of 1.0 micron or less; and an emulsifying amount of an emulsifier composition comprising (i) a combination of (i)(a) a first hydrocarbon fuel-soluble product made by reacting a first hydrocarbyl substituted carboxylic acid acylating agent with an alkanol amine, the hydrocarbyl substituent of said first acylating agent having about 50 to about 500 carbon atoms, and (i)(b) a second hydrocarbon fuel-soluble product made by reacting a second hydrocarbyl substituted carboxylic acid acylating agent with at least one ethylene polyamine, the hydrocarbyl substituent of said second acylating agent having about 50 to about 500 carbon atoms; (ii) optionally an ionic or a nonionic compound having a hydrophilic lipophilic balance of about 1 to about 10; in combination with (iii) an emulsion stabilizing and combustion improving amount of a water-soluble salt represented by the formulak[G(NR3)y]y+nXp−wherein G is hydrogen or an organic group of 1 to about 8 carbon atoms having a valence of y; each R independently is hydrogen or a hydrocarbyl group of 1 to about 10 carbon atoms; Xp− is an anion having a valence of p; and k, y, n and p are independently integers of at least 1.
- 46. The aqueous hydrocarbon fuel composition of claim 45 wherein said emulsifier composition comprises a mixture of (i), (ii) and (iii).
- 47. The aqueous hydrocarbon fuel composition of claim 45, wherein said alkanol amine is selected from the group consisting of a dimethylethanolamine or a diethylethanolamine.
- 48. The aqueous hydrocarbon fuel composition of claim 45, wherein said component (i)(a) is made from a polyisobutylene having a number average molecular weight range of from about 1500 to about 3000 and which is maleinated or succinated in the range of from 1.3 to 2.5.
- 49. The aqueous hydrocarbon fuel composition of claim 45, wherein said ethylene polyamine selected from the group consisting of TEPA, PEHA, or TETA.
- 50. The aqueous hydrocarbon fuel composition of claim 45, wherein said ethylene polyamine is selected from the group consisting of polyamine bottoms or at least one heavy polyamine.
- 51. The aqueous hydrocarbon fuel composition of claim 45, wherein component (i)(b) is a hydrocarbon fuel-soluble product made by reacting an acylating agent with at least one ethylene polyamine in an equivalent ratio of CO:N of from 1:1.5 to 1:0.5.
- 52. The aqueous hydrocarbon fuel composition of claim 45, wherein component (i)(b) is a hydrocarbon fuel-soluble product made by reacting an acylating agent with at least one ethylene polyamine in an equivalent ratio of CO:N of from 1:1.3 to 1:0.70.
- 53. The aqueous hydrocarbon fuel composition of claim 45, wherein component (i)(b) is a hydrocarbon fuel-soluble product made by reacting an acylating agent with at least one ethylene polyamine in an equivalent ratio of CO:N of from 1:1 to 1:0.70.
- 54. The aqueous hydrocarbon fuel composition of claim 45, wherein said component (i)(b) is made from a polyisobutylene having a number average molecular weight range of from about 700 to about 1300 and which is succinated in the range from 1.0 up to 1.3.
- 55. The aqueous hydrocarbon fuel composition of claim 45, wherein component (i)(b) is combined with component (i)(a) in an amount from about 0.05% to about 0.95% based upon the total weight of component (i).
- 56. The aqueous hydrocarbon fuel composition of claim 45 wherein said hydrocarbon fuel is gasoline or diesel fuel.
- 57. The aqueous hydrocarbon fuel composition of claim 45 wherein said hydrocarbon fuel is diesel fuel.
- 58. The aqueous hydrocarbon fuel composition of claim 45 wherein said fuel composition further comprises an antifreeze agent.
- 59. The aqueous hydrocarbon fuel composition of claim 45 wherein said fuel composition further comprises a cetane improver.
- 60. The aqueous hydrocarbon fuel composition of claim 45 wherein said fuel or composition further comprises an organic solvent.
- 61. The aqueous hydrocarbon fuel composition of claim 58 wherein said antifreeze agent is methanol, ethanol or ethylene glycol.
- 62. The aqueous hydrocarbon fuel composition process of claim 45 wherein said fuel composition comprises from about 50 to about 95% by weight of said hydrocarbon fuel; about 5 to about 40% by weight of said water; and about 0.05 to about 20% by weight of said emulsifier composition.
- 63. The aqueous hydrocarbon fuel composition of claim 45 wherein said aqueous hydrocarbon fuel composition comprises from about 50 to about 95% by weight of said hydrocarbon fuel, from about 5 to about 40% by weight of water, from about 0.05 to about 20% by weight of said emulsifier composition, and from about 0.1 to 10% by weight of said antifreeze agent.
- 64. The aqueous hydrocarbon fuel composition of claim 45 wherein said droplets have a mean diameter of about 0.01 to about 0.7 micron.
- 65. A process for fueling an internal combustion engine comprising fueling said engine with the fuel composition of claim 45.
- 66. A process for fueling an internal combustion engine comprising fueling said engine with the fuel composition of claim 46.
Parent Case Info
This application is a continuation-in-part of U.S. application Ser. No. 09/390,925, filed on Sep. 7, 1999 now pending, that is a continuation-in-part of U.S. application Ser. No. 09/349,268, filed Jul. 7, 1999 now pending. Each of the disclosures of both prior applications is incorporated herein by reference in its entirety.
US Referenced Citations (74)
Foreign Referenced Citations (6)
Number |
Date |
Country |
711348 |
Mar 1997 |
AU |
WO 9734969 |
Mar 1997 |
WO |
WO9913028 |
Mar 1999 |
WO |
WO 9913029 |
Mar 1999 |
WO |
WO 9913030 |
Mar 1999 |
WO |
WO 9913031 |
Mar 1999 |
WO |
Non-Patent Literature Citations (8)
Entry |
Written Opinion mailed Apr. 12, 2001 for International Application No. PCT/US00/17767. |
KADY International; Continuous Flow Dispersion Mills; 2/98; 5 pages (brochure). |
IKA, Inc.; Batch Mixers, A Closer Look (www.silverson.com/btchmxr2.htm); Mar. 18, 1999 (printed from internet); 4 pages. |
Sonic Corp.; Tri-Homo Colloid Mills, catalog TH980; 4 pages (no date). |
Sonic Corp.; Ultrasonic Mixing (brochure); 6 pages (no date). |
IKA; Maschinenbau Dispersing (brochure); 40 pages. |
Becher; Emulsions, Theory and Practice, 2nd Edition, pp. 267-325, 1965. |
Coughanowr et al.; “Process Systems Analysis and Control”; McGraw-Hill Book Company; pp ix-x; 1965. |
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
09/390925 |
Sep 1999 |
US |
Child |
09/483481 |
|
US |
Parent |
09/349268 |
Jul 1999 |
US |
Child |
09/390925 |
|
US |