Acid gas removal control apparatus, acid gas removal control method, and acid gas removing apparatus
The acid gas removal control apparatus addresses absorbent degradation by using temperature-controlled resupply and removal of amine components, enhancing system efficiency and reducing operational burdens.
Patent Information
- Application Number
- GB2021012884
- Authority / Receiving Office
- GB · GB
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-11
- Filing Date
- 2021-09-09
- Publication Date
- 2025-05-21
- Estimated Expiration
- 2041-09-09
AI Technical Summary
Existing acid gas removal systems face issues with absorbent degradation due to decomposition of amine components under heat or oxygen influence, leading to reduced performance and the accumulation of heat stable amine salts, which necessitate frequent resupply or replacement, imposing operational burdens.
An acid gas removal control apparatus and method that includes a controller to monitor and control the resupply of amine-based absorbents and removal of heat stable amine salts by measuring the temperature of the absorbent in the regeneration tower, using threshold temperatures to determine when to initiate or stop resupply or removal based on temperature changes.
This approach reduces the need for frequent manual analysis of absorbent content, maintaining optimal absorbent performance by timely resupply or removal of amine components, thereby minimizing operational burdens and maintaining efficient acid gas removal.
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Abstract
Description
CROSS REFERENCE TO RELATED APPLICATION 5 This application is based upon and claims the benefit of priority from the prior Japanese Patent Application No. 2020-153278, filed on September 11, 2020. FIELD 10 Embodiments described herein relate to an acid gas removal control apparatus, an acid gas removal control method, and an acid gas removing apparatus. BACKGROUND 15 In thermal power plants or ironworks, various gases are used and discharged. Examples of such gases include combustion flue gas generated by burning fossil fuel, coal gasified gas produced by gasifying coal, and natural gas to be used as fuel. These gases contain acid gas components such as CO2 (carbon 20 dioxide), SOX (sulfur oxide), NOX (nitrogen oxide), and H2S (hydrogen sulfide), for example. In order to prevent such an acid gas component from being emitted into the atmosphere, a method of causing the acid gas component to be absorbed into an absorbent (absorbing liquid) to 25 remove the acid gas component is being studied enthusiastically. An example of such an absorbent is an aqueous solution containing an amino-group containing compound (amine-based compound). By subjecting treatment-target gas containing an acid gas component and an absorbent to gas-liquid contact, the 30 acid gas component in the treatment-target gas can be absorbed into the absorbent to remove the acid gas component from the treatment-target gas. For example, a CO2 recovery apparatus is known which includes an absorption tower that brings flue gas and an 35 absorbent into contact to cause CO2 in the flue gas to be absorbed 07 11 22 into the absorbent and a regeneration tower that heats the absorbent having absorbed CO2 to cause CO2 to be emitted from the absorbent. The absorbent regenerated by emitting CO2 is supplied again from the regeneration tower to the absorption 5 tower, and reused in the absorption tower. In this apparatus, the absorbent is used in a circulating manner between the absorption tower and the regeneration tower. However, an absorbent component such as an amine component may decompose under the influence of heat, influence 10 of oxygen, or the like, or may be released together with gas discharged from an outlet of the absorption tower. When such decomposition or release occurs, the absorbent component gradually disappears from the absorbent. When the absorbent component in the absorbent decreases, acid gas recovery 15 performance of the absorbent degrades. This requires periodic resupply of the absorbent component or replacement of the absorbent. Moreover, when the amine component in the absorbent reacts with carbonyl sulfide, hydrogen cyanide, thiocyanic acid, 20 thiosulfuric acid, or another inorganic acid, a deteriorated object called heat stable amine salt (HSAS) is generated. The heat stable amine salt is also generated when an amine component decomposes under the influence of heat, influence of oxygen, or the like. These heat stable amine salts are accumulated in the 25 absorbent because of not being decomposed by heat supplied when regenerating the absorbent in the regeneration tower and not being separated from the absorbent. Accumulation of the heat stable amine salts in the absorbent degrades acid gas recovery performance of the absorbent. 30 SUMMARY OF THE INVENTION According to a first aspect of the present invention, there is provided an acid gas removal control apparatus according to claim 1. According to a second aspect of the present invention, there is provided an acid gas removal control method according to 07 11 22 claim 9. According to a third aspect of the present invention, there is provided an acid gas removing apparatus according to claim 10. The dependent claims define optional or preferred features. BRIEF DESCRIPTION OF THE DRAWINGS To enable a better understanding of the present invention, and to show how the same may be carried into effect, reference 5 will now be made, by way of example only, to the accompanying drawings, in which:- FIG. 1 is a schematic view showing a configuration of an acid gas removing apparatus of a first embodiment; FIG. 2 is a graph showing a relation between amine 10 concentration and regeneration tower bottom temperature of the first embodiment; FIG. 3 is a schematic view showing a configuration of an acid gas removing apparatus of a second embodiment; FIG. 4 is a graph showing a relation between acid 15 concentration and regeneration tower bottom temperature of the second embodiment; and FIG. 5 is a schematic view showing a configuration of an acid gas removing apparatus of a third embodiment. 20 DETAILED DESCRIPTION In an acid gas removing apparatus such as a CO2 recovery apparatus, an amine content and an amount of acid accumulated (amount of acid component accumulated) in an absorbent need to be periodically analyzed in order to maintain acid gas absorbing 25 performance of the absorbent by resupplying an amine component and removing an acid component. However, the periodic analysis of the amine content and amount of acid accumulated in the absorbent imposes a great burden on an operation of the acid gas removing apparatus. 30 Moreover, the above-described regeneration tower heats the absorbent by vapor to cause CO2 to be emitted from the 07 11 22 absorbent. On the other hand, when the amine component in the absorbent decreases, or acid accumulates in the absorbent, the absorbent in the regeneration tower is typically raised in temperature while maintaining a predetermined CO2 recovered amount. As the absorbent has a higher temperature, the amine component is more likely to be decomposed. This makes it preferable to maintain the absorbent in the regeneration tower at the lowest possible temperature. Embodiments will now be explained with reference to the accompanying drawings. In FIGS. 1 to 5, the same components are denoted by the same reference numerals, and repeated description will be omitted. In one embodiment, an acid gas removing apparatus includes an absorber configured to bring a first gas including an acid gas and a lean solution into contact to discharge a rich solution that is the lean solution having absorbed the acid gas, and a second gas including the first gas from which the acid gas has been removed, a regenerator configured to separate the acid gas from the rich solution discharged by the absorber to discharge the lean solution that is the rich solution separated from the acid gas, and a third gas including the acid gas separated from the rich solution, and a measuring instrument configured to measure a temperature of the rich solution or the lean solution in the regenerator. Furthermore, an acid gas removal control apparatus that controls the acid gas removing apparatus includes a receiver configured to receive the temperature measured by the measuring instrument, and a controller configured to control resupply of a resupplied solution to the rich solution or the lean solution or removal of an acid component from the rich solution or the lean solution, based on the temperature received by the receiver. (First embodiment) FIG. 1 is a schematic view showing a configuration of an acid gas removing apparatus of a first embodiment. The acid gas removing apparatus in FIG. 1 is a CO2 recovery apparatus that recovers CO2 in treatment-target gas, for example. 07 11 22 The acid gas removing apparatus in FIG. 1 includes an absorption tower 1, a heat exchanger 2, a regeneration tower 3, a reboiler 4, a cooler 5, a circulating pump 6, a cooler 7, a gas-liquid separator 8, a thermometer 11, a resupplied solution tank 12, a 5 resupplied solution pump 13, a valve 14, and a control apparatus 15. The absorption tower 1 includes a gas-liquid contact portion la and a gas washing portion lb. The regeneration tower 3 includes a gas-liquid contact portion 3a. The control apparatus 15 includes a receiver 15a, a storage 15b, and a controller 15c. 10 The absorption tower 1 is an example of an absorber, and the regeneration tower 3 is an example of a regenerator. The thermometer 11 is an example of a measuring instrument, and the control apparatus 15 is an example of an acid gas removal control apparatus. The resupplied solution tank 12, the 15 resupplied solution pump 13, and the valve 14 are examples of a resupplier, and the valve 14 is an example of a first valve. The treatment-target gas in the present embodiment is a flue gas 101a containing CO2, and CO2 in the flue gas 101a is absorbed into the absorbent in the acid gas removing apparatus. 20 A flue gas 101b which is the flue gas 101a from which CO2 has been removed is discharged to the outside of the acid gas removing apparatus. The flue gas 101a is an example of a first gas, and the flue gas 101b is an example of a second gas. An absorbent having a high CO2 concentration is called a 25 rich solution, and an absorbent having a low CO2 concentration is called a lean solution. The lean solution turns into the rich solution by absorbing CO2. The rich solution turns into the lean solution by emitting CO2. In the present embodiment, the absorbent circulates 30 among the absorption tower 1, the heat exchanger 2, the regeneration tower 3, the reboiler 4, and the cooler 5. The absorbent turns into the rich solution from the lean solution, or turns into the lean solution from the rich solution while circulating in this manner. FIG. 1 shows a rich solution 102a flowing from 35 the absorption tower 1 to the heat exchanger 2, a rich solution 102b flowing from the heat exchanger 2 to the regeneration tower 07 11 22 3, a lean solution 102c flowing between the regeneration tower 3 and the reboiler 4, a lean solution 102d flowing from the regeneration tower 3 to the heat exchanger 2, and a lean solution 102e flowing from the heat exchanger 2 to the absorption tower 1 5 via the cooler 5. The absorbent in the present embodiment is an amine-based aqueous solution containing an amine-based compound (amino-group containing compound) and water. Examples of the amine-based compound include primary amines 10 such as monoethanolamine and 2-amino-2-methyl-l-propanol, secondary amines such as diethanolamine and 2-methylaminoethanol, tertiary amines such as triethanolamine and n-methyldiethanolamine, polyamines such as ethylenediamine, triethylenediamine, diethylenetriamine, and 15 xylylenediamine, cyclic amines such as piperazines, piperidines, and pyrrolidines, and amino acids such as methylaminocarboxylic acid. The absorbent may contain only one of these amine-based compounds, or may contain two or more of these amine-based compounds. The absorbent in the present embodiment is an 20 aqueous solution containing 10 to 70 wt% of an amine-based compound, for example. The absorbent in the present embodiment may contain another substance together with the amine-based compound and water. Examples of such a substance include a reaction 25 accelerator for accelerating a chemical reaction, a nitrogen-containing compound for improving CO2 absorbing performance, a corrosion inhibitor for inhibiting corrosion of a plant facility, an antifoaming agent for inhibiting foaming of the absorbent, an antioxidant for inhibiting deterioration of the 30 absorbent, and a pH adjuster for adjusting pH of the absorbent. The absorbent may contain such a substance in a range in which the effects of the absorbent are not impaired. Examples of the flue gas 101a include combustion flue gas discharged from boilers and gas turbines in thermal power plants, 35 and treated flue gas generated in ironworks. The flue gas 101a is raised in pressure by a blower, for example, cooled in a cooling 07 11 22 tower, and then introduced into the absorption tower 1 via a flue gas line LI (for example, an airflue). The flue gas line LI introduces the flue gas 101a into a space under the gas-liquid contact portion la in the absorption tower 1. 5 The absorption tower 1 captures the flue gas 101a into the space under the gas-liquid contact portion la in the absorption tower 1, and captures the lean solution 102e into a space between the gas-liquid contact portion la and the gas washing portion lb in the absorption tower 1. The gas-liquid contact portion la 10 brings the flue gas 101a and the lean solution 102e into contact to cause the lean solution 102e to absorb CO2 in the flue gas 101a. The flue gas 101a from which CO2 has been removed is supplied to the gas washing portion lb. The gas washing portion lb cleans (washes) the flue gas 101a, and recovers amine 15 entrained by the flue gas 101a. The cleaned flue gas 101a is discharged as the flue gas 101b which is treated gas from the absorption tower 1 to an absorption tower outlet line L2, and discharged from the absorption tower outlet line L2 to the outside of the acid gas removing apparatus. On the other hand, the lean 20 solution 102e having absorbed CO2 is discharged as the rich solution 102a from the absorption tower 1 to a rich solution line L3. The gas-liquid contact portion la in the present embodiment is formed of a filling material. This increases the 25 gas-liquid contact efficiency of the flue gas 101a and the lean solution 102e. A liquid disperser is provided above the gas-liquid contact portion la. The liquid disperser drops the lean solution 102e captured into the absorption tower 1 to the gas-liquid contact portion la in a dispersed manner. On the other hand, the 30 flue gas 101a captured into the absorption tower 1 moves up from the bottom to the top of the absorption tower 1. When the flue gas 101a moving up in the absorption tower 1 comes into contact with the lean solution 102e in the gas-liquid contact portion la by counterflow contact, a reaction such as in formula (1) or formula 35 (2), for example, occurs, and thermally decomposable salt (R.3NH2CO3) or heat stable amine salt (R.3NHX) is formed: 07 11 22 R3N + CO2+H2O -> R3NH2CO3 ... (1) R3N + HX R3NHX ... (2) By the reaction in formula (1), CO2 in the flue gas 101a is absorbed into the lean solution 102e, and CO2 is removed from the 5 flue gas 101a. The lean solution 102e having absorbed CO2 is retained as the rich solution 102a at the bottom of the absorption tower 1. The rich solution 102a contains a thermally decomposable salt and a heat stable amine salt. The rich solution 102a may further contain an organic acid generated by a 10 reaction with oxygen contained in the flue gas 101a. The rich solution 102a may further contain a heat stable amine salt generated by absorbing SOX, NOX, carbonyl sulfide, hydrogen cyanide, thiocyanic acid, thiosulfuric acid, or another inorganic acid contained in the flue gas 101a. 15 The flue gas 101a passed through the gas-liquid contact portion la further moves up in the absorption tower 1 to be supplied to the gas washing portion lb. Further details of the gas washing portion lb will be described later. The rich solution 102a retained at the bottom of the 20 absorption tower 1 is discharged from the absorption tower 1 to the rich solution line L3. The rich solution 102a is raised in pressure by a pump not shown on the rich solution line L3, and introduced into the heat exchanger 2 on the rich solution line L3. The heat exchanger 2 exchanges heat between the rich solution 25 102a and the lean solution 102d to heat the rich solution 102a. The heat exchanger 2 is a plate heat exchanger or shell and tube heat exchanger, for example. The heated rich solution 102a is introduced into the regeneration tower 3 as the rich solution 102b via the rich solution line L3. 30 The regeneration tower 3 captures the rich solution 102b into a space above the gas-liquid contact portion 3a in the regeneration tower 3, and captures gas from the reboiler 4 into a space under the gas-liquid contact portion 3a in the regeneration tower 3. The gas-liquid contact portion 3a brings the gas from 35 the reboiler 4 and the rich solution 102b into contact to heat the rich solution 102b with the gas from the reboiler 4. As a result, 07 11 22 CO2 is emitted from the rich solution 102b, so that CO2 is separated from the rich solution 102b. The rich solution 102b may emit CO2 as a whole in the rich solution 102b, or may emit only part of CO2 in the rich solution 102b. 5 CO2 separated from the rich solution 102b is discharged as a regeneration tower outlet gas 103a from the regeneration tower 3 to a regeneration tower outlet line L4 together with other gases. The regeneration tower outlet gas 103a is an example of a third gas. On the other hand, the rich solution 102b separated from 10 CO2 is discharged as the lean solution 102c from the regeneration tower 3 to a lean solution line L5, or discharged as the lean solution 102d from the regeneration tower 3 to a lean solution line L6. In this manner, the rich solution 102b is regenerated in the regeneration tower 3 as the lean solutions 102c and 102d. 15 The lean solution 102c discharged to the lean solution line L5 is introduced into the reboiler 4 on the lean solution line L5. The reboiler 4 exchanges heat between the lean solution 102c and vapor to heat the lean solution 102c. As a result, CO2 and water vapor are generated from the lean solution 102c. The heated 20 lean solution 102c is returned to the bottom of the regeneration tower 3 via the lean solution line L5 together with the generated CO2 and water vapor. The gas-liquid contact portion 3a in the present embodiment is formed of a filling material similarly to the 25 above-described gas-liquid contact portion la. A liquid disperser is provided above the gas-liquid contact portion 3a. The liquid disperser drops the rich solution 102b captured into the regeneration tower 3 to the gas-liquid contact portion 3a in a dispersed manner. On the other hand, the gas from the reboiler 30 4, that is, CO2 and water vapor returned from the reboiler 4 move up from the bottom to the top of the regeneration tower 3. When the gas moving up in the regeneration tower 3 comes into contact with the rich solution 102b in the gas-liquid contact portion 3a by counterflow contact, the rich solution 102b is heated by the gas. 35 As a result, CO2 is desorbed from the rich solution 102b, and water vapor is evaporated from the rich solution 102b. 07 11 22 The rich solution 102b having emitted CO2 is retained as the lean solutions 102c and 102d at the bottom of the regeneration tower 3. On the other hand, CO2 and water vapor generated from the rich solution 102b move up further in the 5 regeneration tower 3, and are then discharged as the regeneration tower outlet gas 103a from the regeneration tower 3 to the regeneration tower outlet line L4. Further details of the regeneration tower outlet line L4 will be described later. The lean solution 102d discharged to the lean solution line 10 L6 is raised in pressure by a pump not shown on the lean solution line L6, and introduced into the heat exchanger 2 on the lean solution line L6. The heat exchanger 2 exchanges heat between the lean solution 102d and the rich solution 102a to cool the lean solution 102d. The cooled lean solution 102d is introduced as the 15 lean solution 102e into the absorption tower 1 via the lean solution line L6. The lean solution 102e is cooled further by the cooler 5 on the lean solution line L6 before being introduced into the absorption tower 1. Next, further details of the gas washing portion lb will be 20 described. The gas washing portion lb in the present embodiment cleans the flue gas 101a with a cleaning liquid 104a, and recovers amine entrained by the flue gas 101a into the cleaning liquid 104a. The gas washing portion lb is located downstream of the 25 gas-liquid contact portion la, and located upstream of the gas-liquid contact portion la in a direction in which the flue gas 101a flows. The gas washing portion lb may be a gas cleaning tower provided outside the absorption tower 1. A liquid disperser is provided above the gas washing 30 portion lb. The liquid disperser drops the cleaning liquid 104a to the gas washing portion lb in a dispersed manner. On the other hand, the flue gas 101a moves up from the bottom to the top of the absorption tower 1. The flue gas 101a moving up in the absorption tower 1 comes into contact with the cleaning liquid 35 104a in the gas washing portion lb to be cleaned with the cleaning liquid 104a. The cleaned flue gas 101a moves up further in the 07 11 22 absorption tower 1, and is then discharged as the flue gas 101b which is treated gas to the outside of the acid gas removing apparatus. On the other hand, the cleaning liquid 104a having 5 recovered amine is retained in a cleaning liquid retainer not shown but provided below the gas washing portion lb. The cleaning liquid retainer is coupled to a cleaning liquid line L7. The cleaning liquid 104a retained in the cleaning liquid retainer is delivered by the circulating pump 6 on the cleaning liquid line L7 10 to be supplied again to the liquid disperser above the gas washing portion lb. In this manner, the cleaning liquid 104a is used in a circulating manner between the gas washing portion lb and the cleaning liquid line L7. The cleaning liquid 104a is pure water or sulfuric acid water, 15 for example. In general, as the cleaning liquid 104a has lower pH, the cleaning liquid 104a has higher cleaning efficiency. When the cleaning liquid 104a is continuously used, the amine concentration in the cleaning liquid 104a increases, and the amine recovery performance of the cleaning liquid 104a degrades. 20 For this reason, in the present embodiment, part of the cleaning liquid 104a circulating between the gas washing portion lb and the cleaning liquid line L7 may be discharged to the outside of the acid gas removing apparatus, or may be mixed into the absorbent in the acid gas removing apparatus. In this case, a new cleaning 25 liquid may be resupplied to the cleaning liquid line L7. Next, further details of the regeneration tower outlet line L4 will be described. The regeneration tower outlet gas 103a discharged to the regeneration tower outlet line L4 contains CO2 gas and water 30 vapor. The acid gas removing apparatus in the present embodiment includes the cooler 7 and the gas-liquid separator 8 for treating the regeneration tower outlet gas 103a on the regeneration tower outlet line L4. The cooler 7 cools the regeneration tower outlet gas 103a 35 to condense water vapor in the regeneration tower outlet gas 103a into liquid water (condensate). The cooler 7 discharges a 07 11 22 gas-liquid two-phase flow 103b containing the CO2 gas and condensate described above to the gas-liquid separator 8. The gas-liquid separator 8 separates the gas-liquid two-phase flow 103b into a CO2 gas 103c and a condensate 103d. 5 The CO2 gas 103c is discharged from the gas-liquid separator 8 to the outside of the acid gas removing apparatus. The acid gas removing apparatus in the present embodiment can recover the CO2 gas 103c from the flue gas 101a in this manner. On the other hand, the condensate 103d is returned to the inside of the 10 regeneration tower 3 from the gas-liquid separator 8 via the regeneration tower outlet line L4. Next, details of the thermometer 11, the resupplied solution tank 12, the resupplied solution pump 13, the valve 14, and the control apparatus 15 will be described. 15 The thermometer 11 measures a temperature of the absorbent in the regeneration tower 3, and outputs a signal including a measurement result of this temperature to the control apparatus 15. This absorbent may be the rich solution in the regeneration tower 3, or may be the lean solution in the 20 regeneration tower 3, for example. The thermometer 11 in the present embodiment measures a regeneration tower bottom temperature, that is, a temperature of the lean solution retained at the bottom (a still part) of the regeneration tower 3. This lean solution is discharged as the lean solution 102c or the lean 25 solution 102d from the regeneration tower 3. The resupplied solution tank 12 retains the resupplied solution 105a to be resupplied to the absorbent in the acid gas removing apparatus. The resupplied solution 105a may be a new absorbent, for example. The resupplied solution tank 12 may 30 supply the resupplied solution 105a to the rich solution, or may supply the resupplied solution 105a to the lean solution. In the present embodiment, the resupply tank 12 and the absorption tower 1 are coupled with the resupplied solution line Lil, and the resupplied solution 105a in the resupply tank 12 is supplied to the 35 absorption tower 1 via the resupplied solution line Lil. The resupplied solution line Lil introduces the resupplied solution 07 11 22 105a into the space under the gas-liquid contact portion la in the absorption tower 1 to resupply the resupplied solution 105a to the rich solution 102a at the bottom of the absorption tower 1. The resupplied solution line Lil is an example of a first flow path. 5 The resupplied solution pump 13 and the valve 14 are provided on the resupplied solution line Lil. The resupplied solution pump 13 delivers the resupplied solution 105a in the resupplied solution tank 12 to the absorption tower 1. The valve 14 is used to control delivery of the resupplied solution 105a from 10 the resupplied solution tank 12 to the absorption tower 1. For example, in a case of starting resupply of the resupplied solution 105a, the valve 14 is opened, and in a case of stopping resupply of the resupplied solution 105a, the valve 14 is closed. The control apparatus 15 controls various operations of the 15 acid gas removing apparatus. Examples of the control apparatus 15 include a processor, an electric circuit, and a PC (Personal Computer). The control apparatus 15 monitors a signal from the thermometer 11, and controls opening / closing and an opening degree of the valve 14, for example. 20 The receiver 15a receives, from the thermometer 11, a signal including a measurement result of the temperature of the absorbent in the regeneration tower 3. The receiver 15a in the present embodiment receives data on the regeneration tower bottom temperature measured by the thermometer 11, for 25 example. The storage 15b is used to store various types of data for controlling the operations of the acid gas removing apparatus. The storage 15b in the present embodiment stores set temperatures Tai and Ta2 which will be described later, for 30 example (see FIG. 2). The controller 15c controls resupply of the resupplied solution 105a to the absorbent in the acid gas removing apparatus based on the temperature received by the receiver 15a. For example, when resupplying the resupplied solution 105a to the 35 absorbent in the acid gas removing apparatus, the controller 15c opens the valve 14 on the resupplied solution line Lil. This 07 11 22 allows the resupplied solution 105a to be introduced into the absorption tower 1 from the resupplied solution tank 12 via the resupplied solution line Lil, and the resupplied solution 105a is resupplied to the rich solution 102a at the bottom of the 5 absorption tower 1. FIG. 2 is a graph showing a relation between amine concentration and regeneration tower bottom temperature in the first embodiment. In the graph in FIG. 2, the horizontal axis indicates an 10 amine concentration in the lean solution retained at the bottom of the regeneration tower 3, and the vertical axis indicates the temperature (regeneration tower bottom temperature) of the lean solution retained at the bottom of the regeneration tower 3. FIG. 2 shows a relation between the amine concentration and the 15 regeneration tower bottom temperature in a case where the flow amount of vapor to be used for heat exchange in the reboiler 4 is constant. As shown in FIG. 2, when the amine concentration in the lean solution decreases, the regeneration tower bottom temperature rises. 20 Since the CO2 recovery performance of the absorbent degrades when the amine component in the absorbent decreases as described above, the amine component is desirably resupplied to the absorbent. However, if the amine content in the absorbent shall be periodically analyzed in order to sense that the amine 25 component in the absorbent has decreased, a large burden will be imposed on the operation of the acid gas removing apparatus. The acid gas removing apparatus in the present embodiment resupplies the amine component to the absorbent utilizing the relation shown in FIG. 2. For example, in a case 30 where the regeneration tower bottom temperature is high, the controller 15c determines that the amine concentration in the absorbent is low, and resupplies the resupplied solution 105a to the absorbent. On the other hand, in a case where the regeneration tower bottom temperature is low, the controller 15c 35 determines that the amine concentration in the absorbent is high, and does not resupply the resupplied solution 105a to the 07 11 22 absorbent. The present embodiment makes it possible to determine a time at which the resupplied solution 105a is to be resupplied to the absorbent by measuring the temperature of the absorbent instead of analyzing the amine content in the 5 absorbent. In the present embodiment, in order to exert such control, the set temperatures Tai and Ta2 shown in FIG. 2 are used. The set temperature Tai is a regeneration tower bottom temperature in a case where the amine concentration is Cal, and the set 10 temperature Ta2 is the regeneration tower bottom temperature in a case where the amine concentration is Ca2. The set temperature Tai is used as a threshold value for starting resupply of the resupplied solution 105a. The set temperature Ta2 is used as a threshold value for terminating resupply of the resupplied 15 solution 105a. In the present embodiment, the set temperature Ta2 is lower than the set temperature Tai (Ta2<Tal), and the amine concentration Ca2 is higher than the amine concentration Cal (Ca2>Cal). The set temperature Tai is an example of a first set temperature. The set temperature Ta2 is an example of a 20 second set temperature. Next, an operation of the acid gas removing apparatus in the present embodiment will be described with reference to FIG. 1 again. The controller 15c opens the valve 14 in a case where a 25 temperature (received temperature) received by the receiver 15a rises to the set temperature Tai. This allows resupply of the resupplied solution 105a to be started, and the amine concentration in the absorbent in the acid gas removing apparatus increases. 30 The control apparatus 15c keeps the valve 14 open while the received temperature is higher than the set temperature Tai to continue resupply of the resupplied solution 105a. On the other hand, the control apparatus 15c do not close the valve 14 even if the received temperature drops to the set temperature Tai. 35 If the received temperature drops to the set temperature Ta2, the control apparatus 15c closes the valve 14. This allows resupply 07 11 22 of the resupplied solution 105a to be terminated. The present embodiment makes it possible to prevent opening / closing of the valve 14 from being repeated in a short period in a case where the received temperature oscillates around 5 the set temperature Tai by setting the set temperature Ta2 (the threshold value for terminating resupply) to be lower than the set temperature Tai (the threshold value for starting resupply). The set temperatures Tai and Ta2 are 100°C to 150°C, for example. Moreover, the difference (Tal-Ta2) between the set temperature 10 Tai and the set temperature Ta2 is 5°C to 50°C, for example. The control apparatus 15c keeps the valve 14 closed while the received temperature is lower than the set temperature Ta2 to keep stopping resupply of the resupplied solution 105a. On the other hand, the control apparatus 15c does not open the valve 14 15 even if the received temperature rises to the set temperature Ta2. The control apparatus 15c opens the valve 14 again if the received temperature rises to the set temperature Tai. This allows resupply of the resupplied solution 105a to be started again, and the amine concentration in the absorbent in the acid gas removing 20 apparatus increases. In the present embodiment, start and termination of resupply of the resupplied solution 105a are repeated alternately. Next, various variations of the operation of the acid gas removing apparatus in the present embodiment will be described. 25 The present embodiment also makes it possible to control resupply of the resupplied solution 105a based on a necessary flow amount of vapor to be used for heat exchange in the reboiler 4 instead of being based on the regeneration tower bottom temperature. In this case, the thermometer 11 is replaced by a 30 flowmeter. However, the temperature of the absorbent is easier to manage than the flow amount of vapor by preventing the temperature of the absorbent from becoming high. This makes it more desirable to control resupply of the resupplied solution 105a based on the regeneration tower bottom temperature. 35 In the present embodiment, the set temperature Tai may be used as a threshold value for both start of resupply and 07 11 22 termination of resupply. For example, in a case where the received temperature is unlikely to oscillate around the set temperature Tai, only the set temperature Tai may be used as a threshold value. On the other hand, in a case where the received 5 temperature is highly likely to oscillate around the set temperature Tai, both the set temperatures Tai and Ta2 are desirably used as threshold values. The resupplied solution 105a may be resupplied to an absorbent other than the rich solution 102a at the bottom of the 10 absorption tower 1. The resupplied solution 105a may be resupplied to the rich solution 102a, 102b or the lean solution 102c, 102d, 102e in the absorption tower 1, in the regeneration tower 3, on the rich solution line L3, on the lean solution line L5, or on the lean solution line L6, for example. 15 Moreover, when resupplying the resupplied solution 105a to the absorbent, the amount and time of resupply of the resupplied solution 105a can be set freely. For example, in a case where the received temperature rises to the set temperature Tai, and resupply of the resupplied solution 105a is started, the 20 controller 15c may terminate resupply of the resupplied solution 105a if a predetermined time elapses after resupply of the resupplied solution 105a is started or if a predetermined amount of resupply is resupplied, instead of terminating resupply of the resupplied solution 105a if the received temperature drops to the 25 set temperature Ta2. After resupply is completed, a predetermined waiting time may be set. By measuring if the regeneration tower bottom temperature after the lapse of the predetermined waiting time has reached the set temperature Ta2, and performing further resupply, an influence caused by a sudden 30 variation in the regeneration tower bottom temperature associated with the resupply can be reduced. Moreover, the controller 15c may control resupply of the resupplied solution 105a based on an instantaneous value of the regeneration tower bottom temperature, or may control resupply 35 of the resupplied solution 105a based on an average value of the regeneration tower bottom temperature. The former case makes 07 11 22 it possible to reflect an instantaneous change in the regeneration tower bottom temperature in the resupply of the resupplied solution 105a. The latter case makes it possible to ignore a change in the regeneration tower bottom temperature in a short 5 time as an error. Since the regeneration tower bottom temperature may vary under the influence of a variation in the CO2 concentration in the flue gas 101a, it is preferable to use the average value in a case where the variation ranges widely. The above-described average value can be set freely, but is an average 10 value of the regeneration tower bottom temperature per hour to per day, for example. Moreover, the set temperatures Tai and Ta2 can be set freely. The set temperature Tai is desirably set to be lower than a saturation temperature of water at a full pressure in the 15 regeneration tower 3, for example. This makes it possible to start resupply of the resupplied solution 105a before the absorbent reaches the saturation temperature, which can prevent the temperature of the absorbent from becoming high. As described above, the controller 15c in the present 20 embodiment controls resupply of the resupplied solution 105a to the absorbent based on the temperature of the absorbent measured by the thermometer 11. This makes it possible to suitably perform resupply of the resupplied solution 105a to the absorbent in the present embodiment. A time at which the 25 resupplied solution 105a is to be resupplied to the absorbent can be determined by measuring the temperature of the absorbent instead of analyzing the content of an absorbent component in the absorbent, for example. (Second embodiment) 30 FIG. 3 is a schematic view showing a configuration of an acid gas removing apparatus of a second embodiment. The acid gas removing apparatus in FIG. 3 has a configuration similar to that of the acid gas removing apparatus in FIG. 1, but includes a valve 16, an electrodialyzer 17, and an acid 35 recovery solution supplier 18 instead of the resupplied solution tank 12, the resupplied solution pump 13, and the valve 14. The 07 11 22 electrodialyzer 17 includes at least one each of an absorbent purifying chamber 17a, an acid recovering chamber 17b, and an anion exchange membrane 17c. The valve 16, the electrodialyzer 17, and the acid recovery solution supplier 18 are 5 examples of an acid component remover, and the valve 16 is an example of a second valve. The valve 16, the electrodialyzer 17, and the acid recovery solution supplier 18 may be replaced by other means. Examples of such means include distillation, vacuum distillation, 10 ion-exchange resin, and membrane separation. The following description will be given using electrodialysis as an example. The acid gas removing apparatus in FIG. 3 further has lines similar to those of the acid gas removing apparatus in FIG. 1, but includes a lean solution line L12, an acid recovery solution line L13, 15 a lean solution line L14, and an acid recovery solution line L15 instead of the resupplied solution line Lil. The lean solution line L12 extends from the lean solution line L6 to the electrodialyzer 17 via the valve 16. The lean solution line L14 extends from the electrodialyzer 17 to the lean 20 solution line L6. FIG. 3 shows a lean solution 102f flowing in the lean solution line L12, and a lean solution 102g flowing in the lean solution line L14. The lean solution line L12 and the lean solution line L14 in the present embodiment are coupled to the lean solution line L6 at points between the cooler 5 and the absorption 25 tower 1. However, the coupling point between the lean solution line L14 and the lean solution line L6 is positioned downstream of the coupling point between the lean solution line L12 and the lean solution line L6. The lean solution line L12 is an example of a second flow path, and the lean solution line L6 is an example of a 30 third flow path. On the other hand, the acid recovery solution line L13 extends from the acid recovery solution supplier 18 to the electrodialyzer 17. The acid recovery solution line L15 extends from the electrodialyzer 17 to the acid recovery solution supplier 35 18. FIG. 3 shows an acid recovery solution 106a flowing in the acid recovery solution line L13, and an acid recovery solution 106b 07 11 22 flowing in the acid recovery solution line L15. The valve 16 is provided on the lean solution line L12. The lean solution line L12 couples the lean solution line L6 and the electrodialyzer 17 as shown in FIG. 3, and supplies at least part of 5 the lean solution 102e flowing in the lean solution line L6 to the electrodialyzer 17 as the lean solution 102f. The valve 16 is used to control delivery of the lean solution 102f from the lean solution line L6 to the electrodialyzer 17. For example, in a case of starting removal of the acid component, the valve 16 is opened, 10 and in a case of stopping removal of the acid component, the valve 16 is closed. The electrodialyzer 17 removes the acid component from the lean solution 102f by electrodialysis. Specifically, the electrodialyzer 17 in the present embodiment removes the acid 15 component from the lean solution 102f by recovering the acid component from the lean solution 102f into the acid recovery solution 106a. The lean solution 102f from which the acid component has been removed is discharged as the lean solution 102g from the electrodialyzer 17 to the lean solution line L14, and 20 returned from the lean solution line L14 to the lean solution line L6. On the other hand, the acid recovery solution 106a having recovered the acid component is discharged as the acid recovery solution 106b from the electrodialyzer 17 to the acid recovery solution line L15. The acid component targeted for recovery is 25 the above-described heat stable amine salt (R3NHX), for example, and is X' in R3NHX in more detail. In this case, an aqueous solution containing the heat stable amine salt (R3NHX), for example, is used as the acid recovery solution 106a. The electrodialyzer 17 includes the absorbent purifying 30 chamber 17a and the acid recovering chamber 17b between a cathode not shown and an anode not shown. The anion exchange membrane 17c is provided between the absorbent purifying chamber 17a and the acid recovering chamber 17b. The electrodialyzer 17 is used in a state where a voltage is applied 35 across the above-described cathode and the above-described anode. 07 11 22 The lean solution 102f is introduced into the absorbent purifying chamber 17a. In the absorbent purifying chamber 17a, R.3NHX in the lean solution 102f is ionized into R3NH+ and X'. X’ in the absorbent purifying chamber 17a passes through the anion 5 exchange membrane 17c by being attracted to the anode, and moves into the acid recovering chamber 17b. The acid recovery solution 106a is introduced into the acid recovering chamber 17b, and recovers X' having entered. The lean solution 102f is discharged as the lean solution 10 102g from the absorbent purifying chamber 17a. The lean solution 102g contains a lower concentration of X’ than the lean solution 102f. This can be expressed that R.3NHX decreases and R.3N increases when the lean solution 102f turns into the lean solution 102g. In this manner, the electrodialyzer 17 can remove 15 X' (acid component) from the lean solution 102f. The acid recovery solution 106a is discharged as the acid recovery solution 106b from the acid recovering chamber 17b. The acid recovery solution 106b has a higher concentration of X' than the acid recovery solution 106a. In this manner, the 20 electrodialyzer 17 can recover X' (acid component) in the lean solution 102f into the acid recovery solution 106a. The acid recovery solution supplier 18 supplies the acid recovery solution 106a to the electrodialyzer 17 via the acid recovery solution line L13. The acid recovery solution 106a is a 25 liquid having electric conductivity that enables electrodialysis, for example, and may be pure water, but desirably contains in advance a small amount of acid, alkali, salt, or the like. Examples of such an acid include sulfur, nitric acid, formic acid, and acetic acid. The acid recovery solution 106a used in the 30 electrodialyzer 17 is discharged as the acid recovery solution 106b to the acid recovery solution line L15, and returned to the acid recovery solution supplier 18 from the acid recovery solution line L15. The control apparatus 15 controls various operations of the 35 acid gas removing apparatus similarly to the case of the first embodiment. The control apparatus 15 monitors a signal from 07 11 22 the thermometer 11, and controls opening / closing and an opening degree of the valve 16, for example. The receiver 15a receives a signal including a measurement result of the temperature of the absorbent in the 5 regeneration tower 3 from the thermometer 11. The receiver 15a in the present embodiment receives data on the regeneration tower bottom temperature measured by the thermometer 11, for example, similarly to the case of the first embodiment. The storage 15b is used to store various types of data for 10 controlling the operation of the acid gas removing apparatus. The storage 15b in the present embodiment stores the set temperatures Tbl and Tb2 which will be described later, for example (see FIG. 4). The controller 15c controls removal of the acid component 15 from the absorbent in the acid gas removing apparatus based on the temperature received by the receiver 15a. For example, when removing the acid component from the absorbent in the acid gas removing apparatus, the controller 15c opens the valve 16 on the lean solution line L12 to activate the electrodialyzer 17. This 20 allows the lean solution 102f to be introduced into the electrodialyzer 17 from the lean solution line L6 via the lean solution line L12, and the acid component is removed from the lean solution 102f by the electrodialyzer 17. FIG. 4 is a graph showing a relation between the acid 25 concentration and regeneration tower bottom temperature in the second embodiment. In the graph in FIG. 4, the horizontal axis indicates the acid concentration (acid component concentration) in the lean solution retained at the bottom of the regeneration tower 3, and the 30 vertical axis indicates the temperature (regeneration tower bottom temperature) of the lean solution retained at the bottom of the regeneration tower 3. FIG. 4 shows a relation between the acid concentration and regeneration tower bottom temperature in a case where the flow amount of vapor to be used for heat 35 exchange in the reboiler 4 is constant. As shown in FIG. 4, when the acid concentration in the lean solution increases, the 07 11 22 regeneration tower bottom temperature rises. As described above, when the acid component accumulates in the absorbent and the acid concentration in the absorbent increases, CO2 recovery performance of the absorbent degrades. 5 This makes it desirable to remove the acid component from the absorbent. However, when the amount of acid accumulated in the absorbent shall be periodically analyzed in order to sense that the acid component in the absorbent has increased, a large burden will be imposed on the operation of the acid gas removing 10 apparatus. The acid gas removing apparatus in the present embodiment removes the acid component from the absorbent utilizing the relation shown in FIG. 4. For example, in a case where the regeneration tower bottom temperature is high, the 15 controller 15c determines that the acid concentration in the absorbent is high, and removes the acid component from the absorbent. On the other hand, in a case where the regeneration tower bottom temperature is low, the controller 15c determines that the acid concentration in the absorbent is low, and do not 20 remove the acid component from the absorbent. The present embodiment makes it possible to determine a time when the acid component is to be removed from the absorbent by measuring the temperature of the absorbent instead of analyzing the amount of acid accumulated in the absorbent. 25 In order to exert such control, the present embodiment uses the set temperatures Tbl and Tb2 shown in FIG. 4. The set temperature Tbl is the regeneration tower bottom temperature in a case where the acid concentration is Cbl, and the set temperature Tb2 is the regeneration tower bottom temperature in 30 a case where the acid concentration is Cb2. The set temperature Tbl is used as a threshold value for starting removal of the acid component. The set temperature Tb2 is used as a threshold value for terminating removal of the acid component. In the present embodiment, the set temperature Tb2 is lower than the 35 set temperature Tbl (Tb2<Tbl), and the acid concentration Cb2 is lower than the acid concentration Cbl (Cb2<Cbl). The set 07 11 22 temperature Tbl is an example of a first set temperature. The set temperature Tb2 is an example of a second set temperature. Next, the operation of the acid gas removing apparatus in the present embodiment will be described with reference to FIG. 3 5 again. In a case where the temperature (received temperature) received by the receiver 15a rises to the set temperature Tbl, the controller 15c opens the valve 16 to activate the electrodialyzer 17. This allows removal of the acid component to be started, and 10 the acid concentration in the absorbent in the acid gas removing apparatus decreases. The control apparatus 15c keeps the valve 16 open while the received temperature is higher than the set temperature Tbl, and continues removing the acid component. On the other hand, 15 the control apparatus 15c does not close the valve 16 even if the received temperature drops to the set temperature Tbl. The control apparatus 15c closes the valve 16 when the received temperature drops to the set temperature Tb2. This allows removal of the acid component to be terminated. 20 By setting the set temperature Tb2 (a threshold value for terminating removal) to be lower than the set temperature Tbl (a threshold value for starting removal), the present embodiment makes it possible to prevent opening / closing of the valve 16 from being repeated in a short period in a case where the received 25 temperature oscillates around the set temperature Tbl. The set temperatures Tbl and Tb2 are 100°C to 150°C, for example. Moreover, the difference (Tbl-Tb2) between the set temperature Tbl and the set temperature Tb2 is 1°C to 20°C, for example. The control apparatus 15c keeps the valve 16 closed while 30 the received temperature is lower than the set temperature Tb2, and keeps stopping removal of the acid component. On the other hand, the control apparatus 15c does not open the valve 16 even if the received temperature rises to the set temperature Tb2. The control apparatus 15c opens the valve 16 again when the 35 received temperature rises to the set temperature Tbl to activate the electrodialyzer 17. This allows removal of the acid 07 11 22 component to be started again, and the acid concentration in the absorbent in the acid gas removing apparatus decreases. In the present embodiment, start and termination of removal of the acid component are repeated alternately. 5 Next, various variations of the operation of the acid gas removing apparatus in the present embodiment will be described. The present embodiment also makes it possible to control removal of the acid component based on the flow amount of vapor to be used for heat exchange in the reboiler 4 instead of being 10 based on the regeneration tower bottom temperature. In this case, the thermometer 11 is replaced by a flow meter. However, the temperature of the absorbent is easier to manage than the flow amount of vapor by preventing the temperature of the absorbent from becoming high. This makes it more desirable to 15 control removal of the acid component based on the regeneration tower bottom temperature. In the present embodiment, the set temperature Tbl may be used as a threshold value both for start of removal and termination of removal. For example, in a case where the 20 received temperature is unlikely to oscillate around the set temperature Tbl, only the set temperature Tbl may be used as the threshold value. On the other hand, in a case where the received temperature is highly likely to oscillate around the set temperature Tbl, it is desirable to use both the set temperatures 25 Tbl and Tb2 as threshold values. The acid component remover including the electrodialyzer 17 and the acid recovery solution supplier 18 may be replaced by another means that removes the acid component from the absorbent. Examples of such means include distillation, vacuum 30 distillation, ion-exchange resin, and membrane separation. The electrodialyzer 17 may capture an absorbent other than the lean solution 102e on the lean solution line L6. The electrodialyzer 17 may capture the rich solution 102a, 102b or the lean solution 102c, 102d, 102e in the absorption tower 1, in the 35 regeneration tower 3, on the rich solution line L3, on the lean solution line L5, or on the lean solution line L6, for example. 07 11 22 However, since it is desirable that the absorbent captured by the electrodialyzer 17 or ion-exchange resin have a low temperature, it is desirable that the absorbent in this case be the rich solution 102a or the lean solution 102e. In a case of comparing the rich 5 solution 102a and the lean solution 102e, CO2 in the rich solution 102a interferes with acid removal, which makes it more desirable to use the lean solution 102e than to use the rich solution 102a. Moreover, the lean solution 102e downstream of the cooler 5 has a temperature lower than the temperature of the lean solution 10 102e upstream of the cooler 5, which makes it desirable to use the lean solution 102e downstream of the cooler 5. Moreover, when removing the acid component, the amounts of the lean solution 102f and the acid recovery solution 106a to be supplied to the electrodialyzer 17, as well as a time for 15 removing the acid component can be set freely. For example, in a case where the received temperature rises to the set temperature Tbl, and removal of the acid component is started, the controller 15c may terminate removal of the acid component when a predetermined time elapses after removal of the acid 20 component instead of terminating removal of the acid component when the received temperature drops to the set temperature Tb2. It is further preferable to set a predetermined waiting time after removal of the acid component is completed. Whether the regeneration tower bottom temperature after the lapse of the 25 predetermined waiting time has reached the set temperature Tb2 is measured. If a temperature higher than Tb2 continues, an influence caused by a sudden variation in the regeneration tower bottom temperature associated with removal of the acid component can be reduced by further carrying out removal of the 30 acid component. Moreover, the controller 15c may control removal of the acid component based on an instantaneous value of regeneration tower bottom temperature, or may control removal of the acid component based on an average value of the regeneration tower 35 bottom temperature. The former case makes it possible to reflect an instantaneous change in the regeneration tower bottom 07 11 22 temperature in removal of the acid component. The latter case makes it possible to ignore a change in the regeneration tower bottom temperature in a short time as an error. Since the regeneration tower bottom temperature may also vary under the 5 influence of a variation in the CO2 concentration in the flue gas 101a, or the like, it is preferable to use an average value in a case where the variation range is wide. The above-described average value is an average value of the regeneration tower bottom temperature per hour to per day, for example. 10 Moreover, the set temperatures Tbl and Tb2 can be set freely. It is desirable to set the set temperature Tbl to be lower than a saturation temperature of water at a full pressure in the regeneration tower 3, for example. This makes it possible to start removing the acid component before the absorbent reaches 15 the saturation temperature, and the temperature of the absorbent can be prevented from becoming high. Moreover, the set temperature Tbl in the present embodiment may be the same temperature as or a temperature different from the set temperature Tai in the first embodiment. 20 However, since a preferable upper limit temperature of the regeneration tower bottom temperature is considered the same in many cases both in the first embodiment and in the present embodiment, the set temperature Tbl desirably is the same temperature as the set temperature Tai. 25 Moreover, the set temperature Tb2 in the present embodiment may be the same temperature as or a temperature different from the set temperature Ta2 in the first embodiment. For example, in a case of intending to set a margin temperature "Tbl-Tb2" in the present embodiment at a temperature different 30 from the margin temperature "Tal-Ta2" in the first embodiment, the set temperature Tbl may be set at the same temperature as the set temperature Tai, and the set temperature Tb2 may be set at a temperature different from the set temperature Ta2. As described above, the controller 15c in the present 35 embodiment controls removal of the acid component from the absorbent based on the temperature of the absorbent measured 07 11 22 by the thermometer 11. This makes it possible to suitably remove the acid component from the absorbent in the present embodiment. For example, a time when the acid component is to be removed from the absorbent can be determined by measuring 5 the temperature of the absorbent instead of analyzing the content of the acid component in the absorbent. (Third embodiment) FIG. 5 is a schematic view showing a configuration of an acid gas removing apparatus of a third embodiment. 10 The acid gas removing apparatus in FIG. 5 includes the absorption tower 1, the heat exchanger 2, the regeneration tower 3, the reboiler 4, the cooler 5, the circulating pump 6, the cooler 7, the gas-liquid separator 8, the thermometer 11, the resupplied solution tank 12, the resupplied solution pump 13, the valve 14, 15 the control apparatus 15, the valve 16, the electrodialyzer 17, and the acid recovery solution supplier 18. In this manner, the acid gas removing apparatus in FIG. 5 includes both the components shown in FIG. 1 and the components shown in FIG. 3. Hereinafter, an operation of the control apparatus 15 in the 20 present embodiment will be described. The control apparatus 15 controls various operations of the acid gas removing apparatus similarly to the cases of the first and second embodiments. The control apparatus 15 monitors a signal from the thermometer 11, and controls opening / closing and 25 opening degrees of the valves 14 and 16, for example. The receiver 15a receives a signal including a measurement result of the temperature of the absorbent in the regeneration tower 3 from the thermometer 11. The receiver 15a in the present embodiment receives data on the regeneration 30 tower bottom temperature measured by the thermometer 11, for example, similarly to the cases of the first and second embodiments. The storage 15b is used to store various types of data for controlling the operation of the acid gas removing apparatus. 35 The storage 15b in the present embodiment stores the aforementioned set temperatures Tai, Ta2, Tbl, and Tb2 (see FIG. 07 11 22 2 and FIG. 4), for example. The set temperature Tai and the set temperature Tbl may be the same temperature or different temperatures. The set temperature Ta2 and the set temperature Tb2 may also be the same temperature or different temperatures. 5 In the following description in the present embodiment, the set temperature Tai and the set temperature Tbl shall be the same temperature (Tal=Tbl), and the set temperature Ta2 and the set temperature Tb2 shall also be the same temperature (Ta2=Tb2). The controller 15c controls resupply of the resupplied 10 solution 105a to the absorbent in the acid gas removing apparatus and removal of an acid component from the absorbent in the acid gas removing apparatus based on the temperature received by the receiver 15a. For example, when resupplying the resupplied solution 105a to the absorbent in the acid gas removing apparatus, 15 the controller 15c opens the valve 14 on the resupplied solution line Lil. This allows the resupplied solution 105a to be introduced into the absorption tower 1 from the resupplied solution tank 12 via the resupplied solution line Lil, and the resupplied solution 105a is resupplied to the rich solution 102a at 20 the bottom of the absorption tower 1. Moreover, when removing an acid component from the absorbent in the acid gas removing apparatus, the controller 15c opens the valve 16 on the lean solution line L12. This allows the lean solution 102f to be introduced into the electrodialyzer 17 from the lean solution line 25 L6 via the lean solution line L12, and the acid component is removed from the lean solution 102f by the electrodialyzer 17. Next, an operation of the acid gas removing apparatus in the present embodiment will be described with continuous reference to FIG. 5. 30 The controller 15c opens the valves 14 and 16 in a case where the temperature (received temperature) received by the receiver 15a rises to the set temperature Tai (=Tbl). This allows resupply of the resupplied solution 105a to be started, and the amine concentration in the absorbent in the acid gas removing 35 apparatus increases. Furthermore, removal of the acid component is started, and the acid concentration in the absorbent 07 11 22 in the acid gas removing apparatus decreases. When opening the valves 14 and 16 as described above, the valves 14 and 16 may be opened simultaneously, or may be opened in a predetermined order. For example, in a case where 5 the received temperature rises to the set temperature Tai, the valve 14 may be opened first, and the valve 16 may be opened next. In this case, setting data for setting the order of opening the valves 14 and 16 may be stored in the storage 15b in advance. The control apparatus 15c keeps the valves 14 and 16 open 10 while the received temperature is higher than the set temperature Tai to continue resupply of the resupplied solution 105a and removal of the acid component. On the other hand, the control apparatus 15c does not close the valves 14 and 16 even if the received temperature drops to the set temperature Tai. The 15 control apparatus 15c closes the valves 14 and 16 when the received temperature drops to the set temperature Ta2 (=Tb2). This allows resupply of the resupplied solution 105a and removal of the acid component to be terminated. When closing the valves 14 and 16 as described above, the 20 valves 14 and 16 may be closed simultaneously, or may be opened in a predetermined order. For example, in the case where the received temperature drops to the set temperature Ta2, the valve 14 may be closed first, and the valve 16 may be closed next. In this case, setting data for setting the order of closing the valves 25 14 and 16 may be stored in the storage 15b in advance. By setting the set temperature Ta2 (a threshold value for termination of resupply and termination of removal) to be lower than the set temperature Tai (a threshold value for start of resupply and start of removal), the present embodiment makes it 30 possible to prevent opening / closing of the valves 14 and 16 from being repeated in a short period in a case where the received temperature oscillates around the set temperature Tai. The set temperatures Tai and Ta2 are 100°C to 150°C, for example. Moreover, the difference (Tal-Ta2) between the set temperature 35 Tai and the set temperature Ta2 is 1°C to 20°C, for example. The control apparatus 15c keeps the valves 14 and 16 07 11 22 closed while the received temperature is lower than the set temperature Ta2 to keep stopping resupply of the resupplied solution 105a and removal of the acid component. On the other hand, the control apparatus 15c does not open the valves 14 and 5 16 even if the received temperature rises to the set temperature Ta2. The control apparatus 15c opens the valves 14 and 16 again if the received temperature rises to the set temperature Tai. This allows resupply of the resupplied solution 105a to be started again, and the amine concentration in the absorbent in the acid 10 gas removing apparatus increases. Furthermore, removal of the acid component is started again, and the acid concentration in the absorbent in the acid gas removing apparatus decreases. In the present embodiment, start and termination of resupply of the resupplied solution 105a are repeated alternately, and start and 15 termination of removal of the acid component are repeated alternately. Various modifications of the operation of the acid gas removing apparatus in the first embodiment and various modifications of the operation of the acid gas removing apparatus 20 in the second embodiment are also applicable to the operation of the acid gas removing apparatus in the present embodiment. Hereinafter, further modifications of the operation of the acid gas removing apparatus in the present embodiment will be described. In general, decrease of an absorbent component and 25 increase of an acid component in the acid gas removing apparatus occur simultaneously. This may make it impossible to prevent the regeneration tower bottom temperature from rising if only one of resupply of the resupplied solution 105a and removal of the acid component is performed. By performing both resupply of 30 the resupplied solution 105a and removal of the acid component in a case where the received temperature is higher than the set temperature Tai, the present embodiment makes it possible to effectively prevent the regeneration tower bottom temperature from rising. 35 The control apparatus 15c may open the valves 14 and 16 alternately while the received temperature is higher than the set 07 11 22 temperature Tai, instead of keeping the valves 14 and 16 open. For example, the control apparatus 15c may alternately and repeatedly perform first processing of opening the valve 14 and closing the valve 16 and second processing of closing the valve 14 5 and opening the valve 16. This allows resupply of the resupplied solution 105a and removal of the acid component to be performed alternately and repeatedly. Moreover, in a case of opening the valves 14 and 16 successively, the valves 14 and 16 may be opened at any timing. 10 For example, the valve 14 may be opened at a time when a rise of the received temperature to the set temperature Tai is detected, and the valve 16 may be opened at a time when it is detected that the received temperature does not drop to the set temperature Ta2 even if a predetermined amount is resupplied or a 15 predetermined time elapses thereafter. This makes it possible to effectively lower the regeneration tower bottom temperature. Similarly, in a case of closing the valves 14 and 16 successively, the valves 14 and 16 may be closed at any timing. Alternatively, the control apparatus 15c may alternately 20 and repeatedly perform first processing of only opening the valve 14 when the received temperature becomes higher than the set temperature Tai to perform resupply and closing the valve 14 when the received temperature reaches the set temperature Ta2, and then second processing of only opening the valve 16 when the 25 received temperature becomes higher than the set temperature Tbl to remove the acid component, and closing the valve 16 when the received temperature reaches the set temperature Tb2. Still alternatively, rather than performing the first processing and the first processing alternately, the frequency or repetitive pattern of 30 the first processing and the second processing may be changed to: first processing second processing -> second processing -4-first processing second processing -4- second processing, in accordance with operation performance of a plant. This makes it possible to more effectively lower the regeneration tower bottom 35 temperature. In this case, setting data on the order of the first processing and the second processing may be stored in the 07 11 22 storage 15b in advance. As described above, the controller 15c in the present embodiment controls resupply of the resupplied solution 105a to the absorbent and removal of the acid component from the 5 absorbent based on the temperature of the absorbent measured by the thermometer 11. This makes it possible to suitably perform resupply of the resupplied solution 105a to the absorbent and removal of the acid component from the absorbent in the present embodiment. For example, measuring the temperature 10 of the absorbent instead of analyzing the content of the absorbent component or the acid component in the absorbent makes it possible to determine a time when the resupplied solution 105a is to be resupplied to the absorbent and a time when the acid component is to be removed from the absorbent. 15 The acid gas removing apparatuses in the first to third embodiments may be apparatuses that remove acid gas other than CO2 from treatment-target gas. Examples of such acid gas include SOX, NOX, and H2S. Moreover, the treatment-target gas may be gas other than flue gas. 20 While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the claims. Indeed, the novel apparatuses and methods described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions 25 and changes in the form of the apparatuses and methods described herein may be made without departing from the scope of the claims. 18 02 25
Claims
1. An acid gas removal control apparatus that controls an acid gas removing apparatus comprising:an absorber configured to bring a first gas including an acid gas and a lean solution including an absorbent component into contact to discharge a rich solution that is the lean solution having absorbed the acid gas, and a second gas including the first gas from which the acid gas has been removed, the absorbent component being able to decompose and being able to be deteriorated,a regenerator configured to separate the acid gas from the rich solution discharged by the absorber to discharge the lean solution that is the rich solution separated from the acid gas, and a third gas including the acid gas separated from the rich solution, anda measuring instrument configured to measure a temperature of the lean solution retained at a bottom of the regenerator,the acid gas removal control apparatus comprising:a receiver configured to receive the temperature measured by the measuring instrument; anda controller configured to control supply of a supplementary solution to the rich solution or the lean solution or removal of an acid component from the rich solution or the lean solution, based on the temperature received by the receiver, the acid component being generated by a reaction of the acid gas and the absorbent component,wherein the controller is configured to:start the supply of the supplementary solution or the removal of the acid component, in a case where the temperature received by the receiver rises to a first set temperature,continue the supply of the supplementary solution or the removal of the acid component, in a case where the temperature received by the receiver rises to a first set temperature, andterminate the supply of the supplementary solution or the18 02 25received by the receiver drops to a second set temperature that is lower than the first set temperature.
2. The apparatus of any preceding claim, whereinthe acid gas removing apparatus further comprises a supplier configured to supply the supplementary solution to the rich solution or the lean solution, andthe controller controls the supply of the supplementary solution by the supplier, based on the temperature received by the receiver.
3. The apparatus of any preceding claim, whereinthe acid gas removing apparatus further comprises an acid component remover configured to remove the acid component from the rich solution or the lean solution, andthe controller controls removal of the acid component by the acid component remover, based on the temperature received by the receiver.
4. The apparatus of Claim 1, whereinthe acid gas removing apparatus further comprises a supplier configured to resupply the supplementary solution to the rich solution or the lean solution, and an acid component remover configured to remove the acid component from the rich solution or the lean solution, andthe controller controls the supply of the supplementary solution by the supplier and removal of the acid component by the acid component remover, based on the temperature received by the receiver.
5. The apparatus of Claim 2 or 4, whereinthe supplier includes a first valve provided on a first flow path that supplies the supplementary solution to the rich solution or the lean solution, andof the supplementary solution by the supplier.
6. The apparatus of Claim 5, whereinthe absorber includes a gas-liquid contact portion in which the first gas and the lean solution are brought into contact, andthe first flow path introduces the supplementary solution into a space under the gas-liquid contact portion in the absorber to resupply the supplementary solution to the rich solution in the absorber.18 02 257. The apparatus of Claim 3 or 4, whereinthe acid component remover includes a second valve provided on a second flow path that supplies the rich solution or the lean solution to the acid component remover, andthe controller controls the second valve to control removal of the acid component by the acid component remover.
8. The apparatus of Claim 7, wherein the second flow path supplies the acid component remover with the lean solution flowing in a third flow path directed from the regenerator to the absorber.
9. An acid gas removal control method for controlling an acid gas removing apparatus comprising:an absorber configured to bring a first gas including an acid gas and a lean solution including an absorbent component into contact to discharge a rich solution that is the lean solution having absorbed the acid gas, and a second gas including the first gas from which the acid gas has been removed, the absorbent component being able to decompose and being able to be deteriorated,a regenerator configured to separate the acid gas from the rich solution discharged by the absorber to discharge the lean solution that is the rich solution separated from the acid gas, and a third gas including the acid gas separated from the rich solution,18 02 25a measuring instrument configured to measure a temperature of the lean solution retained at a bottom of the regenerator,the acid gas removal control method comprising:receiving, by a receiver, the temperature measured by the measuring instrument; andcontrolling, by a controller, supply of a supplementary solution to the rich solution or the lean solution or removal of an acid component from the rich solution or the lean solution, based on the temperature received by the receiver, the acid component being generated by a reaction of the acid gas and the absorbent component,wherein the method further comprising:starting, by the controller, the supply of the supplementary solution or the removal of the acid component, in a case where the temperature received by the receiver rises to a first set temperature,continuing, by the controller, the supply of the supplementary solution or the removal of the acid component, in a case where the temperature received by the receiver is higher than the first set temperature, andterminating, by the controller, the supply of the supplementary solution or the removal of the acid component, in a case where the temperature received by the receiver drops to a second set temperature that is lower than the first set temperature.
10. An acid gas removing apparatus comprising:an absorber configured to bring a first gas including an acid gas and a lean solution including an absorbent component into contact to discharge a rich solution that is the lean solution having absorbed the acid gas, and a second gas including the first gas from which the acid gas has been removed, the absorbent component being able to decompose and being able to be deteriorated;18 02 25rich solution discharged by the absorber to discharge the lean solution that is the rich solution separated from the acid gas, and a third gas including the acid gas separated from the rich solution;a measuring instrument configured to measure a temperature of the lean solution retained at a bottom of the regenerator; anda controller configured to control supply of a supplementary solution to the rich solution or the lean solution or removal of an acid component from the rich solution or the lean solution, based on the temperature measured by the measuring instrument, the acid component being generated by a reaction of the acid gas and the absorbent component,wherein the controller is configured to:start the supply of the supplementary solution or the removal of the acid component, in a case where the temperature measured by the measuring instrument rises to a first set temperature,continue the supply of the supplementary solution or the removal of the acid component, in a case where the temperature measured by the measuring instrument is higher than the first set temperature, andterminate the supply of the supplementary solution or the removal of the acid component, in a case where the temperature measured by the measuring instrument drops to a second set temperature that is lower than the first set temperature.
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