WO2010144597A1

Systems and methods for refining alkyl ester compositions

Abstract

The present invention relates to systems and methods for producing and/or refining alkyl ester compositions. In an embodiment the invention includes a method of producing a refined fatty acid alkyl ester composition. The method can include contacting a fatty acid feedstock and an alcohol with a first metal oxide catalyst at a temperature of greater than 200 degrees Celsius and a pressure of greater than 500 psi to form an unrefined fatty acid alkyl ester composition. The method can further include combining the unrefined fatty acid alkyl ester composition with dimethyl carbonate to form a refining mixture. The method can also include contacting the refining mixture with a second metal oxide catalyst at a temperature of greater than 100 degrees Celsius to form a refined fatty acid alkyl ester composition. Other embodiments are also described herein.

WO2010144597A1, drawing sheet 1
Sheet 1 of 23

Term

No projected expiry on record.

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35 claims: 35 independent, 0 dependent

  1. 1
    The Claims Are:1. A method of producing a refined fatty acid alkyl ester composition comprising: contacting a lipid feedstock and an alcohol with a first metal oxide catalyst at a temperature of greater than 200 degrees Celsius and a pressure of greater than 500 psi to form an unrefined fatty acid alkyl ester composition including free fatty acids;combining the unrefined fatty acid alkyl ester composition including free fatty acids with dimethyl carbonate to form a refining mixture;and contacting the refining mixture with a second metal oxide catalyst at a temperature of greater than 100 degrees Celsius to form a refined fatty acid alkyl ester composition.
  2. 2
    The method of any of claims 1 or 3-18, the first metal oxide catalyst selected from the group consisting of zirconia, titania, alumina, and hafnia.
  3. 3
    The method of any of claims 1 -2 or 4- 18, the second metal oxide catalyst selected from the group consisting of zirconia, titania, alumina, and hafnia.
  4. 4
    The method of any of claims 1-3 or 5- 18, the second metal oxide catalyst comprising alumina.
  5. 5
    The method of any of claims 1 -4 or 6- 18, the second metal oxide catalyst comprising titania.
  6. 6
    The method of any of claims 1-5 or 7- 18, wherein the amount of dimethyl carbonate (DMC) is in a molar ratio with the free fatty acid greater than or equal to 1 :1 free fatty acid:DMC.
  7. 7
    The method of any of claims 1 -6 or 8- 18, wherein the amount of dimethyl carbonate (DMC) is in a molar ratio with the free fatty acid greater than or equal to 1 :3 free fatty acid:DMC.
  8. 8
    The method of any of claims 1-7 or 9-18, the alcohol comprising a C1-C6 alcohol.
  9. 9
    The method of any of claims 1-8 or 10-18, the lipid feedstock having an acid number of greater than about 0.5 mg KOH / g oil.
  10. 10
    The method of any of claims 1-9 or 11-18, wherein contacting the lipid feedstock and the alcohol with the first metal oxide catalyst is performed with a residence time of less than about 600 seconds.
  11. 11
    The method of any of claims 1-10 or 12- 18, wherein contacting the refining mixture with the second metal oxide catalyst is performed with a residence time of less than or equal to 120 minutes.
  12. 12
    The method of any of claims 1-11 or 13-18, wherein contacting the refining mixture with the second metal oxide catalyst is performed with a residence time of less than or equal to 60 minutes.
  13. 13
    The method of any of claims 1-12 or 14- 18, wherein contacting the refining mixture with the second metal oxide catalyst is performed at a temperature between about 150 degrees Celsius and 220 degrees Celsius.
  14. 14
    The method of any of claims 1-13 or 15-18, wherein contacting the refining mixture with the second metal oxide catalyst is performed at a temperature between about 170 degrees Celsius and 180 degrees Celsius.
  15. 15
    The method of any of claims 1-14 or 16- 18, wherein contacting the refining mixture with the second metal oxide catalyst is performed at a pressure of greater than or equal to 300 PSI.
  16. 16
    The method of any of claims 1-15 or 17-18, wherein contacting the refining mixture with the second metal oxide catalyst is performed at a pressure of greater than or equal to 500 PSI.
  17. 17
    The method of any of claims 1-16 or 18, the refined fatty acid alkyl ester composition having an acid number of less than about 0.5 mg KOH / g oil.
  18. 18
    The method of any of claims 1-17, wherein the steps of contacting the lipid feedstock and the alcohol with the first metal oxide catalyst, combining the unrefined fatty acid alkyl ester composition with dimethyl carbonate, and contacting the refining mixture with the second metal oxide catalyst are performed as part of a continuous process.
  19. 19
    A method of refining an alkyl ester composition comprising:combining an alkyl ester composition having an acid number of greater than 0.5 mg KOH / g oil with dimethyl carbonate to form a refining mixture;and contacting the refining mixture with a metal oxide catalyst at a temperature of greater than about 100 degrees Celsius to form a refined alkyl ester composition having an acid number less than or equal to 0.5 mg KOH / g oil.
  20. 20
    The method of any of claims 19 or 21-31, the metal oxide catalyst selected from the group consisting of zirconia, titania, alumina, and hafnia.
  21. 21
    The method of any of claims 19-20 or 22-31, the metal oxide catalyst comprising alumina.
  22. 22
    The method of any of claims 19-21 or 23-31, the metal oxide catalyst comprising titania.
  23. 23
    The method of any of claims 19-22 or 24-31, wherein the amount of dimethyl carbonate (DMC) is in a molar ratio with the free fatty acid greater than or equal to 1 :1 free fatty acid:DMC.
  24. 24
    The method of any of claims 19-23 or 25-31, wherein the amount of dimethyl carbonate (DMC) is in a molar ratio with the free fatty acid greater than or equal to 1 :3 free fatty acid:DMC.
  25. 25
    The method of any of claims 19-24 or 26-31, wherein contacting the refining mixture with the metal oxide catalyst is performed with a residence time of less than or equal to 120 minutes.
  26. 26
    The method of any of claims 19-25 or 27-31, wherein contacting the refining mixture with the metal oxide catalyst is performed with a residence time of less than or equal to 60 minutes.
  27. 27
    The method of any of claims 19-26 or 28-31, wherein contacting the refining mixture with the metal oxide catalyst is performed at a temperature between about 150 degrees Celsius and 220 degrees Celsius.
  28. 28
    The method of any of claims 19-27 or 29-31, wherein contacting the refining mixture with the metal oxide catalyst is performed at a temperature between about 170 degrees Celsius and 180 degrees Celsius.
  29. 29
    The method of any of claims 19-28 or 30-31, wherein contacting the refining mixture with the metal oxide catalyst is performed at a pressure of greater than or equal to 300 PSI.
  30. 30
    The method of any of claims 19-29 or 31, wherein contacting the refining mixture with the metal oxide catalyst is performed at a pressure of greater than or equal to 500 PSI.
  31. 31
    The method of any of claims 19-30, wherein the steps of combining and contacting are performed as part of a continuous process.
  32. 32
    A system for producing a refined oil product comprising:a production reactor for producing a crude oil product mixture, the reactor comprising a first housing defining an interior volume, metal oxide media disposed within the first housing, a lipid reservoir in fluid communication with the production reactor, and an alcohol reservoir in fluid communication with the production reactor;and a refinement reactor in fluid communication with the production reactor, the refinement reactor comprising a second housing defining an interior volume, the second housing configured to receive the crude oil product mixture from the production reactor, metal oxide media disposed within the interior volume of the second housing, and a dimethyl carbonate reservoir in fluid communication with the refinement reactor.
  33. 33
    The system of any of claims 32 or 34, the metal oxide media disposed within the first housing selected from the group consisting of zirconia, titania, alumina, and hafnia.
  34. 34
    The system of any of claims 32-33, the metal oxide media disposed within the second housing selected from the group consisting of zirconia, titania, alumina, and hafnia.
  35. 35
    A device for removal of free organic acids from a crude product mixture comprising:a production housing defining an interior volume, an input port, and an output port;metal oxide media disposed within the production housing, the metal oxide media comprising a metal oxide selected from the group consisting of zirconia, alumina, hafnia, and titania;and a temperature control unit configured to maintain the temperature within the production housing at greater than about 200 degrees Celsius;a refinement housing defining an interior volume, an input port, and an output port;metal oxide media disposed within the production housing, the metal oxide media comprising a metal oxide selected from the group consisting of zirconia, alumina, hafnia, and titania;a temperature control unit configured to maintain the temperature within the production housing at greater than about 100 degrees Celsius;and a dimethyl carbonate reservoir in fluid communication with the refinement housing.
Independent claims35