METHODS FOR CARBON DIOXIDE CAPTURE
20170368495 · 2017-12-28
Inventors
- Rachid Mabrouk (Munich, DE)
- Stevan Jovanovic (North Plainfield, NJ, US)
- Ramachandran Krishnamurthy (Piscataway, NJ)
Cpc classification
B01D53/1493
PERFORMING OPERATIONS; TRANSPORTING
Y02C20/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02A50/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01D53/1431
PERFORMING OPERATIONS; TRANSPORTING
B01D53/145
PERFORMING OPERATIONS; TRANSPORTING
B01D53/1425
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A method for separating carbon dioxide from a flue gas stream wherein the flue gas stream is fed to an absorber column thereby producing a carbon dioxide depleted flue gas stream and wherein carbon dioxide absorbed from the carbon dioxide rich flue gas stream in the solvent is fed from the absorber column to a stripper column as a carbon dioxide rich solvent blend. The method is an improvement over prior carbon dioxide separation process by feeding the flue gas stream to a gas pre-treatment device prior to feeding into the absorber column preferably for decreasing the oxygen content in the flue gas and recycling a carbon dioxide product from the stripper column to the absorber column to increase the carbon dioxide content in the flue gas.
Claims
1. A method for separating carbon dioxide from a flue gas stream wherein the flue gas stream is fed to an absorber column thereby producing a carbon dioxide rich solvent stream and a carbon dioxide depleted treated gas stream wherein the carbon dioxide rich solvent stream is fed from the bottom of the absorber column to a stripper column as a carbon dioxide rich solvent wherein the carbon dioxide is separated as a gaseous product by application of thermal energy, the improvement comprising feeding the flue gas stream to a gas pre-treatment device prior to feeding into the absorber column and recycling a fraction of carbon dioxide product from the stripper column to the absorber column.
2. The method as claimed in claim 1 wherein the gas pre-treatment device is a deoxygenation unit.
3. The method as claimed in claim 2 wherein the oxygen separation device is a deoxygenation unit.
4. The method as claimed in claim 1 wherein the flue gas stream is fed to a blower or compressor for increasing the flue gas stream pressure before being fed to the absorber column.
5. The method as claimed in claim 1 wherein the absorber column uses an amine-based solvent.
6. The method as claimed in claim 1 wherein the carbon dioxide rich solvent blend from the absorber column is raised in temperature to boiling point before being fed to the stripper column.
7. The method as claimed in claim 1 wherein the recycled carbon dioxide from the stripper column is fed to the gas pre-treatment device before entering the absorber column.
8. A method for separating carbon dioxide from a flue gas stream comprising feeding the flue gas stream to a gas pre-treatment device; feeding the oxygen depleted flue gas stream to an absorber column; absorbing carbon dioxide in a recirculating solvent from the carbon dioxide rich flue gas stream thereby forming a carbon dioxide rich solvent blend and feeding the carbon dioxide rich solvent blend to a stripper column wherein carbon dioxide is separated by applying thermal energy and recovered, wherein the recovered carbon dioxide is partially recycled to the absorber column.
9. The method as claimed in claim 8 wherein the gas pre-treatment device is an oxygen consuming device.
10. The method as claimed in claim 9 wherein the oxygen consuming device is a deoxygenation unit.
11. The method as claimed in claim 8 wherein the flue gas stream is fed to a blower or compressor for increasing the flue gas stream pressure before being fed to the absorber column.
12. The method as claimed in claim 8 wherein the absorber column uses an amine-based solvent.
13. The method as claimed in claim 8 wherein steam is added to the stripper column thereby providing the thermal energy to release carbon dioxide present in the carbon dioxide rich solvent blend.
14. The method as claimed in claim 8 wherein the carbon dioxide rich solvent blend from the absorber column is raised in temperature to boiling point before being fed to the stripper column.
15. The method as claimed in claim 8 wherein the recycled carbon dioxide from the stripper column is fed to the gas pre-treatment device before entering the absorber column.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013]
[0014]
[0015]
DETAILED DESCRIPTION OF THE INVENTION
[0016] Turning to
[0017] This carbon dioxide rich flue gas is fed through line 2 to absorber B. Typically the absorber column uses an amine-based solvent. The absorber column B utilizes external heat exchangers to assist in inter-stage cooling of the solvent stream as the temperature rises through the column.
[0018] The carbon dioxide rich flue gas stream 2 enters the absorption at the bottom of the column B. Carbon dioxide gas molecules are then absorbed in the solvent flowing downward, countercurrent to the flue gas flow. Structured packing material is placed in the column to enhance gas-liquid contact. The flue gas continues to flow upward and gets depleted of carbon dioxide due to its absorption in the solvent. The recirculating solvent stream gets richer in carbon dioxide as it flows downward in the absorber.
[0019] The absorber column consists of two (shown in
[0020] The carbon dioxide rich solvent stream intermediate between the two absorption sections passes through line 19 where it is cooled in the heat exchanger HE3 before being returned to the absorber column B above the bottom section. This inter-cooling increases the solvent absorption capacity.
[0021] In the wash sections above the absorption sections, water or other fluid is circulated and any entrained solvent is absorbed in the wash fluid. In
[0022] Thus, the treated flue gas stream mainly nitrogen (90 to 98 vol %), oxygen (approximately 1 to 8%) and CO.sub.2 that is not absorbed (typically <1 vol %) can then be emitted from the top of absorber column B through line 3 to the atmosphere. This treated gas stream is saturated with water. The top of the column may contain a metal mesh demister pad to further prevent any free water or solvent from carrying over with the treated gas.
[0023] The carbon dioxide that is separated from the carbon dioxide rich flue gas into the recirculating solvent stream is transferred from the bottom of absorber column B through line 4. This stream passes through heat exchanger HE5 where it will be raised in temperature and is fed into the stripper column C.
[0024] The carbon dioxide released from the CO.sub.2 rich solvent in the stripper column C will exit through line 6 and pass through heat exchanger HE6 and fed through line 7 into knock out drum D to separate CO.sub.2 gas stream from water and any solvent carry over. The final carbon dioxide product will exit the unit operation through line 8 and be either captured as carbon dioxide product for use in specific industrial operations. A fraction might be recycled, to increase carbon dioxide content in the raw flue gas, or returned through line 9 to line 1 where it will be fed into the feed gas pre-treatment unit A to be fed into absorber column B. Alternately, the recycle CO.sub.2 stream can also be added to line 2 through line 9A prior to entering the absorber column B with flue gas. The liquid phase stream from the flash unit operation D can be returned to the stripper column C through line 10 or be fed through line 10 to line 11 as a purge where it will be discharged to the atmosphere in an environmentally proper manner.
[0025] During operation of the stripper column C, the recirculating solvent stream which is now lean in carbon dioxide can be withdrawn through the bottom section as stream 12 and fed through steam heated heat exchanger HE7 before it is returned back to the stripper column C as a vaporized gas stream. The carbon dioxide depleted solvent (lean solvent) is discharged from the stripper column C through line 5 and pass through heat exchanger HE5 and heat exchanger HE4 where they will be warmed up before being fed into absorber column B for separation.
[0026]
[0027] The heated flue gas stream is fed through line 26 to a water cooled deoxygenation unit G which receives boiler feed water through line 28 and will emit steam through line 29. This deoxygenation unit G will raise the temperature of the flue gas as it passes through to line 27. The hot flue gas stream will pass through a feed effluent heat exchanger HE8 where it will be cooled and enter line 21 where it will be fed into heat exchanger HE9 where the flue gas stream will be further reduced in temperature to dew point.
[0028] This flue gas stream will then be fed through line 22 into a gas-liquid separator unit F where the gas phase is separated from the Liquid phase. The flue gas stream is separated in the unit F with the carbon dioxide rich flue gas stream exiting the top of the flash unit F through line 24 and being fed into a compressor E where its pressure will be increased prior to being fed through line 2 to the absorber column B as described in
[0029] As shown in
[0030] Therefore the overall performance of the system for removing carbon dioxide from a flue gas stream is improved. The advantages namely are the recycle of a carbon dioxide product stream to the absorption column; removal of oxygen from the flue gas stream prior to entering the absorption column; relocation of a flue gas blower to before the absorption column thereby operating the absorber column at a positive pressure and a higher lean solvent inlet temperature of 50 to 60° C. rather than 40° C. or lower.
[0031] While this invention has been described with respect to particular embodiments thereof, it is apparent that numerous other forms and modifications of the invention will be obvious to those skilled in the art. The appended claims in this invention generally should be construed to cover all such obvious forms and modifications which are within the true spirit and scope of the present invention.