Claims
- 1. In a process for the ultrapurification of oxygen containing impurities by the cryogenic separation of oxygen from its impurities by distillation comprising:
- introducing feed oxygen to be purified into a first distillation column, said oxygen being substantially at its liquid-gas equilibrium temperature at the operating pressures within said first distillation column;
- separating said oxygen feed by distillation within said first distillation column into a hydrocarbon free oxygen vapor fraction and a hydrocarbon enriched oxygen liquid fraction;
- vaporizing at least a portion of said hydrocarbon enriched oxygen liquid fraction to provide a rising vapor for said first distillation column by indirect heat exchange with a condensing gas which is substantially at its liquid-gas equilibrium temperature at the heat exchange operating pressures to form a low boiling point liquid;
- condensing at least a portion of said hydrocarbon free oxygen vapor fraction by indirect heat exchange with a low boiling liquified gas, said low boiling liquified gas being substantially at its liquid-gas equilibrium temperature at the heat exchange operating pressures and employing said condensed vapors as reflux in said first distillation column;
- withdrawing said hydrocarbon free oxygen vapor fraction from said fist distillation column;
- introducing said hydrocarbon free oxygen vapor fraction into a second distillation column, said hydrocarbon free oxygen vapor fraction being substantially at its liquid-gas equilibrium temperature at the operating pressures within said second distillation column;
- separating said hydrocarbon free oxygen vapor fraction by distillation within said second distillation column into an impurity enriched oxygen vapor fraction and an ultrapure oxygen liquid fraction;
- vaporizing at least a portion of said ultrapure oxygen liquid fraction to provide a rising vapor for said second distillation column by indirect heat exchange with a condensing gas which is substantially at its liquid-gas equilibrium temperature at the heat exchange operating pressures to form a low boiling point liquid;
- condensing at least a portion of said oxygen vapor fraction within said second distillation column by indirect heat exchange with low boiling liquified gas, said low boiling liquified gas being substantially at its liquid-gas equilibrium temperature at the heat exchange operating pressures and employing said condensed vapors as reflux in the column; and,
- recovering said ultrapure oxygen liquid fraction as product;
- the improvement which comprises:
- vaporizing at least a portion of said hydrocarbon enriched oxygen liquid fraction to provide a rising vapor within said first distillation column by indirect heat exchange with a condensing gas which is substantially at its liquid-gas equilibrium temperature at the heat exchange operating pressures to form a low boiling point liquid.
- 2. A process as claimed in claim 1 wherein at least a portion of said feed oxygen is cooled by indirect heat exchange with at least a portion of said impurity rich oxygen liquid produced in said first distillation column.
- 3. The process of claim 2 wherein said low boiling liquified gas and said condensing gas are nitrogen.
- 4. The process of claim 2 wherein said low boiling liquified gas and said condensing gas are liquified air.
- 5. A process as claimed in claim 1 wherein said low boiling liquified gas and said condensing gas are selected from oxygen, nitrogen, air, and mixtures thereof.
- 6. The process of claim 5 wherein said low boiling liquified gas and said condensing gas are nitrogen.
- 7. The process of claim 5 wherein said low boiling liquified gas and said condensing gas are liquified air.
- 8. A process as claimed in claim 1 wherein at least a portion of said oxygen to be purified is obtained from an air separation process.
- 9. A process as claimed in claim 1 wherein said low boiling liquified gas and said condensing gas are nitrogen, and wherein said oxygen to be purified and said nitrogen are both obtained from an air separation process.
- 10. The combination of an air separation process and the process of claim 9.
- 11. The process of claim 9 wherein said impurity enriched oxygen vapor fraction is withdrawn from the upper half of said second distillation column and returned to the air separation process.
- 12. A process as claimed in claim 1 wherein said low boiling liquified gas and said condensing gas are nitrogen, and wherein said oxygen to be purified and said nitrogen are both obtained from stored nitrogen and stored oxygen.
- 13. A process as claimed in claim 12 wherein said purification process is performed on site where the ultrapure oxygen product is to be used.
- 14. The process of claim 1 wherein said first and second distillation columns operate at a pressure in the range of from about 10 psia to about 40 psia.
- 15. The process of claim 1 wherein said first and second distillation columns operate at a pressure in the range of from about 20 psia to about 30 psia.
- 16. The process of claim 1 wherein said oxygen feed stream is introduced into the lower half of said first distillation column.
- 17. The process of claim 16 wherein said hydrocarbon enriched oxygen liquid is withdrawn from a point within said first distillation column which is below said point of introduction of said oxygen feed stream.
- 18. The process of claim 1 wherein said hydrocarbon free oxygen vapor is withdrawn from the upper half of said first distillation column.
- 19. The process of claim 1 wherein said impurity enriched oxygen vapor fraction is withdrawn from the upper half of said second distillation column.
- 20. The process of claim 19 wherein said hydrocarbon free oxygen vapor fraction is introduced into said second distillation column at a point below the point of withdrawal of said impurity-rich vapor fraction.
- 21. The process of claim 1 wherein said impurity enriched oxygen vapor is withdrawn from the upper half of said second distillation column and then introduced into a crude Argon separation column for separation of Argon
- 22. The process of claim 1 wherein said low boiling liquified gas and said condensing gas are nitrogen which is recycled for reuse by:
- repressurizing in a blower;
- cooling in an aftercooler; and,
- further cooling by indirect heat exchange contact with process and heat exchange streams exiting from said first and second distillation columns.
- 23. The process of claim 22 wherein said nitrogen cooled by indirect heat exchange contact with process and heat exchange streams exiting from said first and second distillation columns is divided so that part of the nitrogen is brought into indirect heat exchange contact with at least a portion of said oxygen vapor fraction rising within said first distillation column and the remaining nitrogen is brought into indirect heat exchange contact with at least a portion of said oxygen vapor fraction rising within said second distillation column.
- 24. The process of claim 1 wherein said low boiling liquified gas and said condensing gas are nitrogen and after said nitrogen is circulated into indirect heat exchange relation with at least a portion of said condensed oxygen liquid fraction in said first distillation column said nitrogen is then circulated into indirect heat exchange contact with at least a portion of said rising oxygen vapor fraction within said first distillation column,
- and after said nitrogen is circulated into indirect heat exchange relation with al least a portion of said condensed oxygen liquid fraction in said second distillation column said nitrogen is then circulated into indirect heat exchange contact with at least a portion of said rising oxygen vapor fraction within said second distillation column.
- 25. A process for the ultrapurification of oxygen containing impurities comprising:
- introducing feed oxygen into a first distillation column operating at a pressure in the range of about 10 psia to about 40 psia, said feed oxygen being substantially at its liquid-gas equilibrium temperature at the operating pressures within said first distillation column;
- separating said oxygen feed in said first distillation column by distillation into a hydrocarbon free oxygen vapor and a hydrocarbon impurity enriched oxygen liquid;
- condensing at least a portion of said oxygen vapor within said first distillation column to provide reflux for said column by indirect heat exchange contact with a cryogenic liquid which is substantially at its liquid-gas equilibrium temperature at the heat exchange operating pressures which causes said vaporized cryogenic liquid to be vaporized;
- vaporizing at least a portion of said liquid oxygen at the bottom of said first distillation column to form reboil for the column by indirect heat exchange contact with a vaporized cryogenic liquid which is substantially at its liquid-gas equilibrium temperature at the heat exchange operating pressures which causes said cryogenic liquid to be condensed;
- withdrawing at least a portion of said hydrocarbon impurity enriched oxygen liquid as waste from the lower half of said first distillation column;
- withdrawing at least a portion of said hydrocarbon free oxygen vapor from the upper half of said first distillation column;
- feeding said withdrawn hydrocarbon free oxygen vapor to a second distillation column operating at a pressure in the range of about 10 psia to about 40 psia, said feed hydrocarbon free oxygen vapor being substantially at its liquid-gas equilibrium temperature at the operating pressures within said second distillation column;
- separating said hydrocarbon free oxygen vapor feed in said second distillation column by distillation into argon and nitrogen and any other lower boiling point impurity enriched vapor and ultrapure oxygen liquid;
- condensing at least a portion of said oxygen vapor within said second distillation column to provide reflux for said column by indirect heat exchange contact with a cryogenic liquid which is substantially at its liquid-gas equilibrium temperature at the heat exchange operating pressures which causes said cryogenic liquid to be vaporized;
- vaporizing at least a portion of said liquid oxygen at the bottom of said second distillation column to form reboil for the column by indirect heat exchange contact a vaporized cryogenic liquid which is substantially at its liquid-gas equilibrium temperature at the heat exchange operating pressures which causes said vaporized cryogenic liquid to be condensed;
- withdrawing said argon and nitrogen and other impurity enriched vapor as waste from the upper half of said second distillation column; and,
- withdrawing said pure oxygen liquid as product from the lower half of said second distillation column.
- 26. A process according to claim 25 wherein at least a portion of said oxygen vapor feed is cooled by transferring heat by indirect heat exchange contact with at least a portion of said liquid oxygen waste stream withdrawn from said distillation column.
- 27. Apparatus for the ultrapurification of cryogenic low boiling linquified gases comprising in combination:
- a first distillation column equipped with a top column condenser and a bottom column reboiler;
- a second distillation column equipped with a top column condenser and a bottom column reboiler;
- at least one conduit means within said first distillation column for the introduction and withdrawal of liquids and vapors;
- at least one conduit means within said second distillation column for the introduction and withdrawal of liquids and vapors;
- at least one circuit means within said top column condenser of said first distillation column for the introduction and withdrawal of liquids and vapors;
- at least one conduit means within said top column condenser of said second distillation column for the introduction and withdrawal of liquids and vapors;
- at least one conduit means within said bottom reboiler of said first distillation column for the introduction and withdrawal of liquids and vapors;
- at least one conduit means within said bottom reboiler or said second distillation column for the introduction and withdrawal of liquids and vapors;
- a heat exchanger;
- a blower;
- an aftercooler;
- at least one conduit means connecting at least one of said conduit means within said top column condenser of said first distillation column with said heat exchanger;
- at least one conduit means connecting at least one of said conduit means within said top column condenser of said second distillation column with said heat exchanger;
- at least one conduit means connecting at least one of said conduit means within said bottom reboiler of said first distillation column with said heat exchanger;
- at least one conduit means connecting at least one of said conduit means within said bottom reboiler of said second distillation column with said heat exchanger;
- at least one conduit means connecting said heat exchanger with said blower;
- at least one conduit means connecting said blower with said aftercooler;
- at least one conduit means connecting said aftercooler with said heat exchanger; and,
- at least one valve means within at least one of said conduit means.
- 28. An apparatus in combination according to claim 27 further comprising:
- at least one conduit means joining at least one of said conduit means of said reboiler of said second distillation column with at least one of said conduit means of said top condenser of said second distillation column;
- at least one conduit means joining at least one of said conduit means of said reboiler of said second distillation column with at least one of said conduit means of said top condenser of said second distillation column.
- 29. An apparatus in combination according to claim 27 further comprising:
- at least one temperature indicator means within at least one of said conduit means, said heat exchanger, said columns, said condensers, and said reboilers;
- at least one temperature indicator control means within at least one of said conduit means, said heat exchanger, said columns, said condenser, and said reboilers;
- at least one pressure indicator means within at least one of said conduit means, said heat exchanger, said columns, said condenser, and said reboilers;
- at least one pressure indicator control means within at least one of said conduit means, said heat exchanger, said columns, said condensers, and said reboilers;
- at least one level indicator means within at least one of said conduit means, said heat exchanger, said columns, said condensers, and said reboilers;
- at least one level indicator control means within at least one of said conduit means, said heat exchanger, said columns, said condensers, and said reboilers; and,
- at least one valve means responsive to said temperature indicator control means, said pressure indicator control means, and said level indicator control means.
- 30. An apparatus in combination according to claim 27 further comprising:
- at least one filter means within said conduit means connected to said heat exchanger.
- 31. An apparatus in combination according to claim 30 further comprising:
- a third distillation column;
- at least one conduit means from said second distillation column to said third distillation column; and,
- at least one conduit means within said third distillation column for the introduction and withdrawal of liquids and vapors.
- 32. An apparatus in combination according to claim 27, further comprising:
- a standard air separation unit;
- at least one conduit means connecting said air separation unit with said first distillation column; and,
- at least one conduit means connecting said air separation unit with said second distillation column.
Parent Case Info
This application is a continuation-in-part of Ser. No. 07/277,550 filed Nov. 29, 1988 now U.S. Pat. No. 4,867,772.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
4560397 |
Cheung |
Dec 1985 |
|
4711651 |
Sharma et al. |
Nov 1987 |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
277550 |
Nov 1988 |
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