System and Method for Recovering Isotopologues from a Gas Stream
20210299611 · 2021-09-30
Inventors
Cpc classification
B01D59/08
PERFORMING OPERATIONS; TRANSPORTING
B01D59/02
PERFORMING OPERATIONS; TRANSPORTING
C01B4/00
CHEMISTRY; METALLURGY
International classification
Abstract
A method for recovering isotopologues from a gas stream is provided with a wet scrubber column, which includes a liquid inlet, a liquid outlet, a gas inlet, a gas outlet, and a plurality of bubble cap trays. An initial gas stream is enriched with isotopologues, while an initial aqueous liquid is depleted of isotopologues. The initial gas stream is countercurrently contacting the initial aqueous solution through the bubble cap trays as the initial gas stream traverses from the gas inlet to the gas outlet and as the initial aqueous liquid traverses from the liquid inlet to the liquid outlet. A processed gas stream is then captured from the gas outlet and is depleted of isotopologues. Simultaneously, a processed aqueous liquid is captured from the liquid outlet and is enriched with isotopologues.
Claims
1. A method for recovering isotopologues from a gas stream, the method comprises the steps of: (A) providing a wet scrubber column, wherein the wet scrubber column includes a liquid inlet, a liquid outlet, a gas inlet, a gas outlet, and a plurality of bubble cap trays, and wherein the liquid inlet and the liquid outlet are in fluid communication with each other through the plurality of bubble cap trays, and wherein the gas inlet and the gas outlet are in fluid communication with each other through the bubble cap trays; (B) providing a gas stream, wherein an initial portion of the gas stream is enriched with isotopologues; (C) providing an initial quantity of aqueous liquid, wherein the initial quantity of aqueous liquid is depleted of isotopologues; (D) countercurrently contacting the initial portion of the gas stream with the initial quantity of aqueous liquid through the plurality of bubble cap trays as the initial portion of the gas stream traverses from the gas inlet to the gas outlet and as the initial quantity of aqueous liquid traverses from the liquid inlet to the liquid outlet; (E) capturing a processed portion of the gas stream from the gas outlet, wherein the processed portion of the gas stream is depleted of isotopologues; and (F) capturing a processed quantity of aqueous liquid from the liquid outlet, wherein the processed quantity of aqueous liquid is enriched with isotopologues.
2. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1, wherein the gas stream is made of an incondensable gas.
3. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1, wherein the initial quantity of aqueous liquid continuously flows from the liquid inlet to the liquid outlet during step (D).
4. The method for recovering isotopologues from a gas stream, the method as claimed in claim 3, wherein the wet scrubber column further includes a plurality of downcomers, and wherein each adjacent pair of trays from the plurality of bubble cap trays is in fluid communication with each other through a corresponding downcomer from the plurality of downcomers, and wherein the initial quantity of aqueous liquid continuously flows through the plurality of bubble cap trays by the plurality of downcomers during step (D).
5. The method for recovering isotopologues from a gas stream, the method as claimed in claim 3, wherein the initial quantity of aqueous liquid continuously flows from the liquid inlet to the liquid outlet during step (D) at a static liquid flowrate.
6. The method for recovering isotopologues from a gas stream, the method as claimed in claim 3, wherein the initial quantity of aqueous liquid continuously flows from the liquid inlet to the liquid outlet during step (D) at a dynamic liquid flowrate, and wherein the dynamic liquid flowrate is adjusted to maintain a constant liquid-to-gas flow ratio.
7. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1 comprises the steps of: providing a continuous liquid flow, wherein the continuous liquid flow is the initial quantity of aqueous liquid flowing from the liquid inlet, through the plurality of bubble cap trays, and to the liquid outlet during step (D); and liquid-sealing a serial transference of the initial portion of the gas stream through the plurality of bubble cap trays with the continuous liquid flow.
8. The method for recovering isotopologues from a gas stream, the method as claimed in claim 7 comprises the steps of: providing the wet scrubber column with a sump, wherein a last tray and the liquid outlet are in fluid communication with each other through the sump, and wherein the last tray is from the plurality of bubble cap trays, and wherein the continuous liquid flow is the initial quantity of aqueous liquid flowing from the liquid inlet, through the plurality of bubble cap trays, through the sump, and to the liquid outlet during step (D); and further liquid-sealing the initial portion of the gas stream between the last tray and the sump with the continuous liquid flow.
9. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1 comprises the steps of: providing a cooling jacket, wherein the wet scrubber column is enclosed by the cooling jacket; and circulating a cooling fluid through the cooling jacket during step (D).
10. The method for recovering isotopologues from a gas stream, the method as claimed in claim 9, wherein the cooling fluid is water at a temperature range between 4 degrees Celsius and 10 degrees Celsius.
11. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1 comprises the steps of: providing a condenser, wherein the condenser is in fluid communication with the gas inlet; and cooling the initial portion of the gas stream through the condenser into the gas inlet before step (D).
12. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1, wherein the gas inlet is positioned adjacent to a lowest gravitational point of the wet scrubber column.
13. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1, wherein the gas outlet is positioned at a highest gravitational point of the wet scrubber column.
14. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1, wherein the liquid inlet is positioned adjacent to a highest gravitational point of the wet scrubber column.
15. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1, wherein the liquid outlet is positioned at a lowest gravitational point of the wet scrubber column.
16. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1 comprises the step of: filling each of the plurality of bubble cap trays with liquid water before step (D).
17. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1 comprises the steps of: executing a plurality of iterations for steps (D) through (F); and flowing a wetting quantity of liquid water from the liquid inlet to the liquid outlet in between the plurality of iterations.
18. The method for recovering isotopologues from a gas stream, the method as claimed in claim 1 comprises the steps of: flowing a cleaning quantity of liquid water from the liquid inlet to the liquid outlet after step (F); and flowing a quantity of drying gas from the gas inlet to the gas outlet.
19. The method for recovering isotopologues from a gas stream, the method as claimed in claim 18 comprises the steps of: providing each of the plurality of bubble cap trays with a drain valve; and draining liquid water remnants on the plurality of bubble cap trays through the liquid outlet by opening the drain valve for each of the plurality of bubble cap trays.
20. The method for recovering isotopologues from a gas stream, the method as claimed in claim 18, wherein the quantity of drying gas is selected from a group consisting of: air, nitrogen, and combinations thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0033] All illustrations of the drawings are for the purpose of describing selected versions of the present invention and are not intended to limit the scope of the present invention.
[0034] The present invention is a system and method of recovering isotopologues from a gas stream in order to reduce its concentration of deuterium and/or tritium. As can be seen in
[0035] Moreover, the plurality of bubble cap trays 6 is used to force interfacial contact between a gas stream and an aqueous liquid that are countercurrently moving through the wet scrubber column 1. Thus, the liquid inlet 2 and the liquid outlet 3 need to be in fluid communication with each other through the plurality of bubble cap trays 6 in order to facilitate the interfacial contact between the gas stream and the aqueous liquid. Likewise, the gas inlet 4 and the gas outlet 5 need to be in fluid communication with each other through the plurality of bubble cap trays 6 in order to facilitate the interfacial contact between the gas stream and the aqueous liquid. In addition, the system of the present invention is further provided with a gas stream (Step B) that flows through the wet scrubber column 1. Moreover, an initial portion of the gas stream is enriched with isotopologues (e.g. deuterium and/or tritium). The initial portion of the gas stream may be made of water vapor, acid vapor, or another kind of chemical vapor that has a higher concentration of deuterium and/or tritium. The system of the present invention is further provided with an initial quantity of aqueous liquid (Step C), which is depleted of isotopologues. The initial quantity of aqueous liquid may be made of liquid water or some other kind of aqueous solution that has a lower concentration of deuterium and/or tritium.
[0036] As can be seen in
[0037] One specification that may be made to the overall process is for the gas stream to be made of an incondensable gas. This specification prevents any portion of the gas stream to phase change into liquid and consequently prevents a disruption of the phase-isotope exchange and absorption process during Step D.
[0038] Another specification that may be made to the overall process is for the initial quantity of aqueous liquid to continuously flow from the liquid inlet 2 to the liquid outlet 3 during Step D, which is shown in
[0039] In order to implement the aforementioned specification, the wet scrubber column 1 may further include a plurality of downcomers 8, which is shown in in
[0040] As can be seen in
[0041] As can be seen in
[0042] As an alternative to the cooling jacket 10, another specification that may be made to the overall process is to lower the temperature of the initial portion of the gas stream prior to entering the wet scrubber column 1, which is shown in
[0043] Another specification that may be made to the overall process is the arrangement of the gas inlet 4 and the gas outlet 5 allowing the initial portion of the gas stream to continuously flow through the wet scrubber column 1 and the arrangement of the liquid inlet 2 and the liquid outlet 3 allowing the initial quantity of aqueous liquid to continuously flow through the wet scrubber column 1. This specification also requires that the wet scrubber column 1 is positioned in a vertical manner. Thus, the gas outlet 5 is positioned at a highest gravitational point of the wet scrubber column 1 because a gas portion of a gas-and-liquid mixture retained within a vertically-oriented enclosure rises to the top of the vertically-oriented enclosure. Moreover, the liquid inlet 2 is positioned adjacent to the highest gravitational point of the wet scrubber column 1 so that the initial quantity of aqueous liquid is able to countercurrently contact the initial portion of the gas stream for the maximum allowable distance along the wet scrubber column 1 without interfering with the exit of the initial portion of the gas stream through the gas outlet 5. Similarly, the liquid outlet 3 is positioned at a lowest gravitational point of the wet scrubber column 1 because a liquid portion of a gas-and-liquid mixture retained within a vertically-oriented enclosure flows to the bottom of the vertically-oriented enclosure. In addition, the gas inlet 4 is positioned adjacent to a lowest gravitational point of the wet scrubber column 1 so that the initial portion of the gas stream is able to countercurrently contact the initial quantity of the aqueous liquid for the maximum allowable distance along the wet scrubber column 1 without interfering with the exit of the initial quantity of aqueous liquid through the liquid outlet 3.
[0044] As can be seen in
[0045] As can be seen in
[0046] The wet scrubber column 1 may also be placed into a shutdown state, which is shown in
[0047] Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.