USPatent applicationPatented

System and method for recovering gas containing CO2 and H2S

Granted 3 Oct 2017 · 2 office actions

Life of the application

12 dated events
⤢ drag to zoom20142016201820202022202420262028203020322034ProsecutionOwnershipTerm & fees
ProsecutionOwnershipTerm & feeshover for detail · click to open

Abstract

The system includes: an absorber which brings an introduction gas into contact with an absorbent that absorbs CO 2 and H 2 S; an absorbent regenerator which releases CO 2 or the like to regenerate the absorbent; a second supply line which returns a regenerated absorbent to the absorber from the regenerator; a third supply line which extracts a semi-rich solution from the vicinity of a middle stage of the absorber, and introduces the semi-rich solution to the vicinity of the middle stage of the regenerator; and a semi-rich solution heat exchanger which is interposed at an intersection between the third supply line and the second supply line to perform the heat exchange between the semi-rich solution and the lean solution.

Description

9 parts
›FIELD

The present invention relates to a recovery system and method of a gas containing CO 2 and H 2 S for efficiently recovering H 2 S from CO 2 and H 2 S contained in a gasified gas that is obtained, for example, by gasifying a coal, a biomass or the like by a gasification furnace.

›BACKGROUND

As a technique for removing an acid gas such as CO 2 and H 2 S contained in the gasified gas obtained by gasifying the coal, the biomass or the like in the gasification furnace, conventionally, a chemical absorption method (for example, an amine absorbent (for example, using (absorbent such as N-methyldiethanolamine: MDEA)) and a physical absorption method (for example, using Selexol absorbent using polyethylene glycol dimethyl ether) have been suggested.

Incidentally, in the case of a system such as an integrated coal gasification combined cycle (IGCC) technique, there are demands as follows.

1) In a power generation system, in order to set the discharge of SO X as air pollutants to a level less than a regulation value, it is necessary to remove H 2 S that is a generation source of SO X . Meanwhile, since there is an effect of enhancing the power generation efficiency, it is desirable that CO 2 should not be recovered as much as possible.

2) A small flow rate of recovered H 2 S-containing gas (off-gas) and a high H 2 S density are advantageous for the case of manufacturing chemical products from the recovered gas and the case of processing H 2 S, and it is desirable to be able to selectively recover H 2 S.

3) In a system that combines the CO shift and CCS (recovery and storage of carbon dioxide) in the IGCC, it is necessary to suppress the H 2 S density in CO 2 recovered by the CO 2 recovery process approximately to a specified value (for example, 10 to 20 ppm).

4) In order to improve the power generation efficiency, the amount of use of heat energy such as steam is preferably as small as possible.

That is, it is required to efficiently and selectively separate H 2 S from the gas containing CO 2 and H 2 S in terms of thermal energy.

Therefore, conventionally, there has been a suggestion of an energy-saving process which supplies a part of the absorbent, in which dissolved components are partly dissipated in a pressure discharge vessel (regenerator upper stage), from the lower part of the uppermost part of the absorber (Patent Literature 1).

The technique of Patent Literature 1 is effective in the case of being applied to the CO 2 recovery from the gas containing no H 2 S. However, in the case of being applied to the selective recovery of H 2 S from the gas containing CO 2 and H 2 S, the H 2 S density in the absorbent in the lower part of the absorber increases, and the H 2 S absorption rate is greatly reduced. Accordingly, there is a problem in that the H 2 S removal ratio and the H 2 S selectivity are lowered, and in order to obtain the desired removal ratio, on the contrary, an increase in thermal energy is caused.

Thus, the inventors have previously suggested a technique which extracts a part of the absorbent from the middle of the absorption portion of the absorber and supplies the absorbent, which absorbs CO 2 and H 2 S at a relatively low density, to the middle of a regeneration portion of the regenerator (Patent Literature 2).

›CITATION LIST

Patent Literature

Patent Literature 1: Japanese Patent Application Laid-open No. 2010-120013

Patent Literature 2: Japanese Patent Application Laid-open No. 2012-110835

›SUMMARY

Technical Problem

In the suggestion of Patent Literature 2, although it is possible to improve the selective absorptivity of H 2 S and reduce the regenerative heat energy consumption compared to a conventional process by about 10%, there is a problem in that the device cost and the number of heat exchangers increase and the system cost increases.

Thus, there is an earnest desire for an appearance of a system that is capable of efficiently and selectively separating H 2 S in terms of thermal energy from the gas containing CO 2 and H 2 S apart from the absorption of CO 2 in the chemical absorption process, and achieves the cost reduction.

In view of the above-mentioned problems, an object of the present invention is to provide a recovery system and a recovery method of a gas containing CO 2 and H 2 S that efficiently recover H 2 S contained in the gasified gas obtained by gasifying, for example, the coal, the biomass or the like by a gasification furnace.

Solution to Problem

According to a first aspect of the present invention in order to the above-mentioned problems, there is provided a system for recovering a gas containing CO 2 and H 2 S, including: an absorber which brings an introduction gas into contact with an absorbent absorbing CO 2 and H 2 S so as to absorb CO 2 and H 2 S from the introduction gas, the introduction gas containing CO 2 and H 2 S; an absorbent regenerator which extracts the absorbent, which has absorbed CO 2 and H 2 S from a bottom portion of the absorber, introduces the absorbent from a top portion side via a first supply line, and releases CO 2 and H 2 S by the heat of a reboiler so as to regenerate the absorbent; a second supply line which returns the regenerated absorbent to the absorber; a third supply line which extracts the absorbent, which has absorbed a part of CO 2 and H 2 S from the vicinity of a middle stage of the absorber, and introduces the extracted absorbent to the vicinity of the middle stage of the regenerator; and a heat exchanger which is interposed at an intersection between the third supply line and the second supply line so as to perform the heat exchange between the absorbent, which has absorbed CO 2 and H 2 S extracted from the vicinity of the middle stage of the absorber, and the regenerated absorbent.

According to a second aspect of the present invention, there is provided a method for recovering a gas containing CO 2 and H 2 S using an absorber and a regenerator which recovers CO 2 and H 2 S from an introduction gas containing CO 2 and H 2 S, the method including: extracting a part of the absorbent from the vicinity of a middle stage of the absorber which absorbs CO 2 and H 2 S from the introduction gas so as to reduce a flow rate of the absorbent flowing down below the absorber; and introducing the absorbent extracted from a bottom portion from the vicinity of the top portion of the regenerator, and introducing the absorbent extracted from the vicinity of a middle stage of the absorber into the vicinity of the middle stage of the regenerator so as to regenerate the absorbent, wherein the absorbent, which has absorbed CO 2 and H 2 S extracted from the vicinity of the middle stage of the absorber is heat-exchanged with the regenerated absorbent regenerated by the regenerator.

Advantageous Effects of Invention

In accordance with the present invention, by reducing the flow rate of the absorbent flowing down below the absorber so as to extract a part of the absorbent from the vicinity of the middle stage of the absorber by a third supply line, it is possible to lower the CO 2 absorption amount without substantially lowering the absorption amount of H 2 S, to improve the selective separation characteristics of H 2 S, and to reduce the reboiler heat capacity in the regenerator.

›BRIEF DESCRIPTION OF DRAWINGS

FIG. 1 is a schematic diagram of a recovery system of a gas containing CO 2 and H 2 S according to a first embodiment.

FIG. 2 is a schematic diagram in which an example of a temperature condition of the recovery system of the gas containing CO 2 and H 2 S according to the first example is added.

FIG. 3 is a schematic diagram in which an example of a temperature condition of the recovery system of the gas containing CO 2 and H 2 S according to a conventional example is added.

›DESCRIPTION OF EMBODIMENTS · 1 of 3

The present invention will be described in detail below with reference to the accompanying drawings. The present invention is not to be limited to the examples. In addition, constituent elements in the examples include those that can be easily assumed by a person skilled in the art or those that are substantially identical.

First Example

A recovery system of a gas containing CO 2 and H 2 S according to an example of the present invention will be described with reference to the drawings. FIG. 1 is a schematic diagram of a recovery system of a gas containing CO 2 and H 2 S according to the first example.

As illustrated in FIG. 1 , a recovery system 10 of the gas containing CO 2 and H 2 S according to this example includes an absorber 13 which uses a gasified gas containing CO 2 and H 2 S obtained from a gasification furnace for gasifying, for example, the coal, the biomass or the like, as an introduction gas 11 , and brings the introduction gas 11 into contact with an absorbent 12 which absorbs CO 2 and H 2 S to absorb CO 2 and H 2 S from the introduction gas 11 ; an absorbent regenerator (hereinafter, referred to as a “regenerator”) 14 which extracts an absorbent (rich solution) 12 A, which has absorbed CO 2 and H 2 S from a bottom portion 13 c of the absorber 13 , introduces the absorbent from a top portion 14 a via a first supply line L 1 , and releases CO 2 and H 2 S by the heat of a reboiler 15 to regenerate the absorbent 12 ; a second supply line L 2 which discharges a regenerated absorbent (lean solution) 12 B from a bottom portion 14 c of the regenerator 14 and returns the regenerated absorbent to a top portion 13 a of the absorber 13 ; a third supply line L 3 which extracts an absorbent (semi-rich solution) 12 C which has absorbed a part of CO 2 and H 2 S from the vicinity of a middle stage 13 b of the absorber 13 , and introduces the extracted semi-rich solution 12 C to the vicinity of a middle stage 14 b of the regenerator 14 ; and a semi-rich solution heat exchanger 17 which is interposed at an intersection between the third supply line L 3 and the second supply line L 2 to perform the heat exchange between the semi-rich solution 12 C and the lean solution 12 B.

In this system, CO 2 and H 2 S are removed in the regenerator 14 and the regenerated absorbent (lean solution) 12 B is reused as the absorbent 12 .

In a purifying method using the recovery system 10 of the gas containing CO 2 and H 2 S, the gasified gas obtained in the gasification furnace for gasifying the coal, the biomass, or the like is sent to a gas cooling device (not illustrated), is cooled here by the cooling water and is introduced into the absorber 13 as the introduction gas 11 .

Filling portions 13 A, 13 B are provided inside the absorber 13 to improve the countercurrent contact efficiency of the introduction gas 11 and the absorbent 12 , when passing through the filling portions 13 A, 13 B. In addition, a plurality of filling portions may be provided, and the countercurrent contact between the introduction gas 11 and the absorbent 12 may be performed, for example, by a spray method, a liquid column method, a tray method or the like other than the filling method.

In the absorber 13 , the introduction gas 11 , for example, comes into countercurrent-contact with the amine-based absorbent 12 , CO 2 and H 2 S in the introduction gas 11 are absorbed by the absorbent 12 by a chemical reaction, and purified gas 21 from which CO 2 and H 2 S are removed is discharged out of the system. The absorbent 12 which absorbs CO 2 and H 2 S is also referred to as “rich solution” 12 A. The rich solution 12 A is supplied to the top portion 14 a side of the absorbent regenerator 14 without heat exchange via a rich solution pump (not illustrated), while keeping the low temperature.

When the rich solution 12 A introduced from the top portion 14 a side is introduced into the regenerator from the vicinity of the top portion 14 a of the regenerator 14 having filling portions 14 A and 14 B by a spraying means (not illustrated) or the like and flows down in the regenerator, the rich solution 12 A generates an endothermic reaction due to water vapor 22 from the reboiler 15 , and discharges and regenerated most of CO 2 and H 2 S. The absorbent 12 , which has released a part or the most of CO 2 and H 2 S in the absorbent regenerator 14 , is referred to as “semi-lean solution”. When reaching the lower part of the regenerator 14 , the semi-lean solution becomes the absorbent in which substantially all of CO 2 and H 2 S have been removed. The absorbent regenerated by substantially all of CO 2 and H 2 S are removed is referred to as “lean solution” 12 B. The lean solution 12 B is indirectly heated by saturated water vapor 23 in the reboiler 15 , generates the water vapor 22 , and is returned to the bottom portion 14 c side of the regenerator 14 .

Further, CO 2 and H 2 S gas 25 accompanied by water vapor released from the rich solution 12 A and the semi-lean solution in the regenerator is derived from the top portion 14 a of the regenerator 14 , the water vapor is condensed by a condenser 26 , water 28 is separated by a separation drum 27 , and CO 2 and H 2 S gas 29 is released and recovered to the outside of the system. The water 28 separated by the separation drum 27 is supplied to the top portion 14 a of the absorbent regenerator 14 .

The regenerated absorbent (lean solution) 12 B is cooled by being heat-exchanged with the semi-rich solution 12 C by the semi-rich solution heat exchanger 17 , the pressure thereof is subsequently increased in a lean solvent pump (not illustrated), and after the regenerated absorbent is cooled by a lean solvent cooler 30 , it is supplied to the absorber 13 again and is reused as the absorbent 12 .

In this example, a part of the absorbent 12 is extracted from the vicinity of the middle stage 13 b below the uppermost stage of the absorber 13 by the third supply line L 3 . In addition, the extraction amount is adapted to measure the temperature, the pressure, the flow rate, the CO 2 density, the H 2 S density or the like of the introduction gas to be introduced, and collectively determine these conditions, thereby determining an optimum extraction position and extraction amount.

›DESCRIPTION OF EMBODIMENTS · 2 of 3

The extracted semi-rich solution 12 C is heated by heat exchange with the high-temperature lean solution 12 B extracted from the bottom portion 14 c of the regenerator 14 by the semi-rich solution heat exchanger 17 , and is supplied downward from the vicinity of the middle stage 14 b of the regenerator 14 , and more preferably, from the middle stage 14 b.

Incidentally, CO 2 in the introduction gas 11 is absorbed by the absorbent 12 together with H 2 S within the absorber 13 .

As in the present invention, by reducing the flow rate of the absorbent flowing down below the absorber 13 so as to extract a part of the absorbent from the vicinity of the middle stage 13 b of the absorber 13 by the third supply line L 3 , since the mass transfer of the gas side is dominant in H 2 S and the mass transfer of the liquid side is dominant in CO 2 , the absorption rate of CO 2 is further lowered.

Thus, as the CO 2 absorption amount is lowered, that is, the CO 2 density in the absorbent is lowered, the absorption amount of H 2 S increases.

Even in consideration of a decrease in the H 2 S absorption amount due to a decrease in the flow rate of the absorbent 12 , the H 2 S absorption amount hardly decreases.

Therefore, it is possible to improve the selectivity of H 2 S.

By introducing the rich solution 12 A having the high CO 2 and H 2 S density from the top portion 14 a of the regenerator 14 without heat exchange, and by supplying the semi-rich solution 12 C having relatively lower CO 2 and H 2 S density than the rich solution 12 A to the vicinity of the middle stage 14 b of the regenerator 14 or to the lower side thereof after heating by the semi-rich solution heat exchanger 17 , it is possible to reduce the heating capacity of the reboiler 15 . Thus, it is possible to reduce the water vapor consumption due to the reboiler 15 .

In addition, in this example, the rich solution 12 A and the semi-rich solution 12 C extracted from the absorber 13 are introduced to each of flash drums 31 , 32 to separate non-condensable gas 33 ( 33 a , 33 b ) such as N 2 , H 2 and CO here. Also, the non-condensable gas is joined with the CO 2 and H 2 S gas 29 separated by the separation drum 27 .

FIG. 2 is a schematic diagram in which an example of a temperature condition of the recovery system of the gas containing CO 2 and H 2 S according to the first example is added. In FIG. 2 , a square frame indicates the temperature.

As illustrated in FIG. 2 , in a recovery system 10 A of the gas containing CO 2 and H 2 S, the introduction gas 11 is introduced into the absorber 13 . The absorbent 12 (lean solution 12 B) is introduced into the absorber so as to face it and absorbs CO 2 and H 2 S.

Since the absorption is an exothermic reaction, the semi-rich solution 12 C extracted from the vicinity of the middle stage 13 b of the absorber 13 is 46° C. Meanwhile, the rich solution 12 A extracted from the bottom portion 13 c is 44° C.

The rich solution 12 A is introduced from the top portion 14 a of the regenerator 14 as it is, while keeping a temperature of 44° C., without the heat exchange.

In contrast, the semi-rich solution 12 C is heat-exchanged with the high-temperature (123° C.) lean solution 12 B in the semi-rich solution heat exchanger 17 , and the semi-rich solution 12 C becomes 113° C. and is introduced from the vicinity of the middle stage 14 b of the regenerator 14 . In addition, the temperature of the CO 2 and H 2 S gas 25 accompanied by the water vapor from the top portion 14 a of the regenerator 14 is 116° C., and the temperature thereof after passing through the condenser 26 is 40° C.

Thus, a reduction in the reboiler heating capacity of the reboiler 15 in the regenerator 14 is achieved.

FIG. 3 is a gas recovery system of the related art (Patent Literature 2).

As illustrated in FIG. 3 , in a recovery system 100 of the gas containing CO 2 and H 2 S, the rich solution 12 A extracted from the bottom portion 13 c of the absorber 13 is adapted to be introduced from the top portion 14 a side of the regenerator 14 after heat-exchange in a rich solution heat exchanger 16 .

Here, in the recovery system 100 of the gas containing CO 2 and H 2 S illustrated in FIG. 3 , the introduction gas 11 is introduced into the absorber 13 . The absorbent 12 (lean solution 12 B) is introduced into the absorber so as to face the introduction gas 11 , and absorbs CO 2 and H 2 S.

Since this absorption is an exothermic reaction, the semi-rich solution 12 C extracted from the vicinity of the middle stage 13 b of the absorber 13 is 49° C. Meanwhile, the rich solution 12 A extracted from the bottom portion 13 c is 44° C.

The rich solution 12 A and the semi-rich solution 12 C are heat-exchanged in series in the rich solution heat exchanger 16 and the semi-rich solution heat exchanger 17 by the high-temperature (122° C.) lean solution 12 B, respectively, and the rich solution 12 A becomes 77° C. and is introduced from the top portion 14 a of the regenerator 14 . Also, the semi-rich solution 12 C becomes 104° C. and is introduced from the vicinity of the middle stage 14 b of the regenerator 14 . The temperature of CO 2 and H 2 S gas 25 accompanied by water vapor from the top portion 14 a of the regenerator 14 is 118° C., and the temperature thereof after passing through the condenser 26 is 40° C.

Table 1 is a comparison of the load of the reboiler 15 of each regenerator, the load of the rich solution heat exchanger 16 , the load of the semi-rich solution heat exchanger 17 and the load of the condenser 26 , in the recovery system of the example and the gas recovery system of first and second conventional examples.

In the first conventional example (Patent Literature 2), the rich solution 12 A and the semi-rich solution 12 C are heat-exchanged with the lean solution 12 B in the rich solution heat exchanger 16 and the semi-rich solution heat exchanger 17 .

In the second conventional example, the rich solution 12 A is heat-exchanged with the lean solution 12 B in the rich solution heat exchanger 16 .

›DESCRIPTION OF EMBODIMENTS · 3 of 3

As illustrated in Table 1, in the recovery system of this example, it was possible to reduce the reboiler load as compared to the second conventional example.

Also, it was possible to significantly suppress the load of the condenser 26 which cools the CO 2 and H 2 S gas 25 accompanied by the water vapor discharged from the regenerator 14 compared to the first and second conventional examples.

Also, it was possible to reduce the cost and improve the heat balance of the overall process reduce, by eliminating the heat exchanger from the first conventional example.

›REFERENCE SIGNS LIST

10 , 10 A, 100 RECOVERY SYSTEM OF GAS CONTAINING CO 2 AND H 2 S

11 INTRODUCTION GAS

12 ABSORBENT

12 A RICH SOLUTION

12 B LEAN SOLUTION

12 C SEMI-RICH SOLUTION

13 ABSORBER

14 ABSORBENT REGENERATOR (REGENERATOR)

15 REBOILER

17 SEMI-RICH SOLUTION HEAT EXCHANGER

›Tables in the description — 1
TABLE 1
FirstSecond
PresentConventionalConventional
LoadExampleExampleExample
Rebolier1.0911.33
(15)
Heat—11.94
exchanger
(16)
Heat11—
exchanger
(17)
Cooler0.6711.18
(26)

Claims as granted

1 claim

Log in to read the claims of this application.

Log in to unlock

Classifications

4 codes
IPC · International Patent Classification
Section B — Performing operations; transporting
  • B01D53/14
Section C — Chemistry; metallurgy
  • C10K1/08
  • C10K1/00
  • C01B17/16

Claim changes

Soon
Coming soonHow the claims changed between publication and grant

See which claims were amended, added or cancelled during examination, with every added and removed word marked.

AmendedAddedCancelledUnchanged

The published claims of this application are not paired with the granted ones in what we hold.

File wrapper

⤢ drag to zoomJan 2014Jul 2014Jan 2015Jul 2015Jan 2016Jul 2016Jan 2017Jul 2017USPTOApplicantRestriction requirementResponse after non-final
USPTOApplicanthover for detail · click to open
Pendency
3.7 y
1,350 days filing → grant
Office actions
1
after a restriction
Responses
2
no RCE
Examiner
Imran Akram
art unit 1725 · TC 1700
Citations: 33 back · 0 forward

See the full prosecution history — every USPTO and applicant action on this file, in order.

Log in to unlock

Documents

Log in to open the documents of this file: the application as filed, every office action and response, the notice of allowance.

Log in to unlock

Chain of title

⤢ drag to zoom2016201820202022202420262028203020322034Owner 1Owner 2Owner 4
Titlehover for detail · click to open

See the full assignment history — every owner this patent has passed through, with recordation dates and reel/frame numbers.

Log in to unlock