Scrubber apparatus, and gas treatment method in a scrubber apparatus

The scrubber apparatus addresses ammonia removal inefficiencies by using a controlled circulation and discharge system with concentration meters and valves, ensuring effective ammonia capture and minimal resource use.

JP7843673B2Active Publication Date: 2026-04-10MITSUBISHI SHIPBUILDING CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-09-15
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing scrubber devices face challenges in effectively removing ammonia from air, particularly when ammonia concentration unexpectedly increases or during temporary malfunctions, leading to potential ammonia release and the need for increased absorbent liquid flow and device capacity.

Method used

A scrubber apparatus with a gas supply unit, liquid spraying unit, gas discharge unit, absorbent liquid discharge unit, and gas circulation line, equipped with concentration meters and valves, allows for controlled ammonia removal by circulating and spraying absorbent liquid within the casing to efficiently absorb ammonia, and releasing gas only when concentration meets standards.

Benefits of technology

The apparatus effectively suppresses ammonia release while minimizing absorbent liquid flow and casing volume, ensuring efficient ammonia removal without excessive resource use.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a scrubber system which reduces discharge of ammonia to the outside while inhibiting increase in a flow rate of an absorbent and a capacity of a casing.SOLUTION: A scrubber system includes: a casing; a gas supply part which may supply a gas containing ammonia to the casing; a liquid spreading part which may spread an absorbent, supplied from the outside of the casing, from an upper part in the casing; a gas discharge part which may discharge the gas from the upper part of the casing; an absorbent discharge part which may discharge the absorbent from a lower part of the casing; and a gas circulation line which circulates the gas from the upper part of the casing to the lower part of the casing.SELECTED DRAWING: Figure 1
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Description

Technical Field

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[0001] The present disclosure relates to a scrubber device and a gas treatment method in the scrubber device.

Background Art

[0002] In a room that houses devices, equipment, etc. that handle ammonia, there is a possibility of ammonia leakage. Further, in the devices, equipment, etc. that handle ammonia, purging may be performed with an inert gas that does not react with ammonia, and ammonia remaining together with the inert gas may be discharged. Since ammonia can act on the mucous membranes of humans and cause damage, the gas containing ammonia generated by the above leakage, purging, etc. cannot be directly released into the atmosphere.

[0003] Patent Document 1 describes a so-called scrubber device that absorbs harmful substances into an absorption liquid by spraying the absorption liquid onto a gas containing harmful substances. More specifically, Patent Document 1 discloses a ship exhaust gas purification system including a spray tower and a spray device as a SOx scrubber for removing sulfur oxides (SOx). The spray tower has an exhaust gas inlet and an exhaust gas outlet. The exhaust gas inlet introduces exhaust gas into the internal space of the spray tower. The exhaust gas outlet extracts purified exhaust gas from the internal space of the spray tower. The general flow of exhaust gas passes through the internal space of the spray tower from the exhaust gas inlet to the exhaust gas outlet. The spray device provides a scrubber liquid flow that opposes the general flow of exhaust gas within the internal space of the spray tower. The scrubber liquid flow absorbs sulfur oxides by contacting the exhaust gas within the internal space of the spray tower, reducing the amount of sulfur oxides in the exhaust gas.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

[0005] However, when attempting to remove ammonia from the air using a scrubber device as described in Patent Document 1, there is a possibility that ammonia may not be sufficiently removed if, for example, the ammonia concentration unexpectedly increases or a temporary malfunction occurs in the scrubber device's spray. Furthermore, if the device is designed to handle unexpected increases in ammonia concentration, the amount of absorbent liquid supplied to the scrubber device and the amount of ammonia absorbent liquid that has absorbed ammonia will increase. In addition, to be able to handle the temporary malfunction of the spray, measures such as increasing the capacity of the scrubber device's casing are necessary, which presents a challenge.

[0006] This disclosure has been made to solve the above problems and aims to provide a scrubber device and a gas treatment method in a scrubber device that can suppress the release of ammonia to the outside while suppressing an increase in the flow rate of the absorbent liquid and an increase in the volume of the casing. [Means for solving the problem]

[0007] To solve the above problems, the scrubber apparatus according to this disclosure comprises a casing, a gas supply unit, a liquid spraying unit, a gas discharge unit, an absorbent liquid discharge unit, and a gas circulation line. Ammonia gas concentration meter, The device is equipped with the following: The gas supply unit is capable of supplying a gas containing ammonia into the casing. The liquid dispensing unit is capable of dispensing an absorbent liquid supplied from outside the casing from the top inside the casing. The gas discharge section includes a gas discharge line, one end of which is connected to the upper part of the casing, and a first valve that opens and closes the flow path of the gas discharge line. The gas discharge section can discharge gas from the top of the casing. The absorbent liquid discharge section can discharge absorbent liquid from the bottom of the casing. The gas circulation line circulates gas from the top of the casing to the bottom of the casing. The ammonia gas concentration meter detects the ammonia concentration of the gas flowing from the casing to the gas discharge section. The gas circulation line comprises a gas circulation connecting pipe, one end of which is connected between one end of the gas discharge line and the first valve; a second valve provided in the middle of the gas circulation connecting pipe for opening and closing the flow path of the gas circulation connecting pipe; and a fan for sending the gas out from the top of the casing. A portion of the gas circulation line shares a section with the gas discharge line between the part where one end of the gas discharge line and one end of the gas circulation connecting pipe are connected. The ammonia gas concentration meter and the fan are provided in this section.

[0008] The gas treatment method for a scrubber apparatus according to this disclosure is the gas treatment method for a scrubber apparatus as described above. This gas treatment method for a scrubber apparatus includes the steps of circulating gas to the lower part of a casing, detecting the ammonia concentration, and releasing gas from the upper part of the casing. The step of circulating gas to the lower part of the casing involves supplying ammonia-containing gas into the casing while spraying water supplied from outside the casing from the upper part of the casing, thereby circulating the gas from the upper part of the casing to the lower part of the casing. The step of detecting the ammonia concentration involves detecting the ammonia concentration of the gas released from the upper part of the casing. The step of releasing gas from the upper part of the casing involves stopping the circulation of gas from the upper part of the casing to the lower part of the casing and releasing the gas from the upper part of the casing when the detected ammonia concentration falls below a preset gas concentration standard value. [Effects of the Invention]

[0009] According to the scrubber apparatus and gas treatment method in the scrubber apparatus of this disclosure, it is possible to suppress the release of ammonia to the outside while suppressing an increase in the flow rate of the absorbent liquid and an increase in the volume of the casing. [Brief explanation of the drawing]

[0010] [Figure 1] This figure shows the configuration of a scrubber device according to the first embodiment of this disclosure. [Figure 2] This is a flowchart showing the procedure for a gas treatment method in a scrubber apparatus according to an embodiment of the present disclosure. [Figure 3] This figure shows a step in a gas treatment method for a scrubber apparatus according to an embodiment of the present disclosure, in which gas is circulated to the lower part of the casing. [Figure 4] This figure shows a step in a gas treatment method in a scrubber apparatus according to an embodiment of the present disclosure, in which gas is released from the top of the casing. [Figure 5]This figure shows a state in which the absorbent liquid is discharged from the bottom of the casing in a scrubber device according to an embodiment of the present disclosure. [Figure 6] This figure shows the configuration of a scrubber device according to a second embodiment of the present disclosure. [Figure 7] This figure shows the hardware configuration of the control device for a scrubber apparatus according to a second embodiment of the present disclosure. [Figure 8] This is a functional block diagram of a control device according to a second embodiment of the present disclosure. [Modes for carrying out the invention]

[0011] Hereinafter, a scrubber apparatus and a gas treatment method in the scrubber apparatus according to the embodiments of this disclosure will be described with reference to Figures 1 to 8. <First Embodiment> (Overall configuration of the scrubber device) As shown in Figure 1, the scrubber device 10 of this embodiment performs a process to remove ammonia from a gas G containing ammonia. Such a scrubber device 10 is installed in an ammonia facility that handles ammonia. Examples of ammonia facilities include facilities equipped with tanks for storing ammonia, facilities equipped with devices that use ammonia as fuel, and facilities equipped with a distribution system through which ammonia flows. Furthermore, ammonia facilities may be installed on land, or they may be installed on floating bodies that float in the sea, including various types of ships. In the case of ships, the type of ship is not limited to a specific type. Examples of ship types include liquefied gas carriers, ferries, RORO ships, car carriers, passenger ships, etc. Furthermore, the floating body is not limited to ships, but may be an FSU (Floating Storage Unit), FSRU (Floating Storage and Regasification Unit), etc.

[0012] Further, the scrubber device 10 purges a gas containing ammonia leaked from ammonia equipment handling ammonia or a purge with an inert gas that does not react with ammonia, and removes ammonia from a gas containing ammonia discharged together with the inert gas, etc.

[0013] As shown in FIG. 1, the scrubber device 10 includes at least a casing 11, a gas supply section 15, an absorption liquid supply section 25, a liquid dispersion section 20, a gas discharge section 40, a gas circulation line 80, an absorption liquid discharge section 50, and an absorption liquid circulation line 90.

[0014] The casing 11 is formed in a cylindrical shape extending in the vertical direction Dv. An absorption liquid L can be stored in the lower part of the internal space 11s (inside the casing) of the casing 11.

[0015] The gas supply section 15 is capable of supplying a gas G containing ammonia (hereinafter simply referred to as gas G) into the casing 11. The gas supply section 15 includes a gas supply line 16 and an on-off valve 17.

[0016] One end of the gas supply line 16 is connected to a gas generation source (not shown) that generates the gas G to be treated. The other end 16b of the gas supply line 16 is connected to the casing 11. The other end 16b opens at a position above the liquid level of the absorption liquid L in the internal space 11s of the casing 11.

[0017] The on-off valve 17 opens and closes the flow path in the gas supply line 16. By opening and closing the on-off valve 17, the supply of the gas G into the casing 11 through the gas supply line 16 is interrupted. In this first embodiment, the gas supply line 16 supplies the gas G sent out together with the inert gas to the internal space 11s of the casing 11 when purging the fuel supply system of a combustion device using ammonia as fuel with the inert gas.

[0018] Furthermore, the gas supply unit 15 is equipped with a secondary gas supply line 18. The secondary gas supply line 18 supplies gas G containing a low concentration or small amount of ammonia from a system containing ammonia gas, such as an air vent pipe of a wastewater tank, into the casing 11. The secondary gas supply line 18 is connected to the casing 11. The secondary gas supply line 18 is connected to the casing 11 such that it opens at a position above the liquid level of the absorbent liquid L in the internal space 11s of the casing 11. An example is shown where the secondary gas supply line 18 is equipped with a check valve 19 to prevent backflow of gas G from the casing 11 side.

[0019] The gas G supplied to the internal space 11s of the casing 11 from the gas supply line 16 of the gas supply unit 15, and the gas G supplied to the internal space 11s of the casing 11 from the auxiliary gas supply line 18, each rise from the bottom to the top within the internal space 11s of the casing 11.

[0020] The absorbent liquid supply unit 25 supplies the absorbent liquid L to the spraying unit 20 from outside the casing 11. The absorbent liquid supply unit 25 includes an absorbent liquid supply line 26, a fifth valve 27, and a pump 28.

[0021] One end of the absorbent liquid supply line 26 is connected to a source (not shown) of the absorbent liquid L. When fresh water is used as the absorbent liquid L, one end of the absorbent liquid supply line 26 is connected to a fresh water tank (not shown) that serves as the source. Furthermore, when the scrubber device 10 is installed on a floating body and the surrounding seawater on which the floating body floats is used as the absorbent liquid, one end of the absorbent liquid supply line 26 is positioned to face the sea. The other end 26b of the absorbent liquid supply line 26 is connected to a spray nozzle 21 located at the top of the internal space 11s within the casing 11. A pump 28 is provided in the middle of the absorbent liquid supply line 26, and this pump 28 supplies the absorbent liquid L to the spray nozzle 21.

[0022] In this first embodiment, an absorbent liquid supply line 26 is provided with an absorbent liquid cooling unit 29 capable of cooling the absorbent liquid L sprayed from the top of the casing 11 by the spraying unit 20. The absorbent liquid cooling unit 29 cools the absorbent liquid L in the absorbent liquid supply line 26 by heat exchange with an external heat transfer medium. Cooling the absorbent liquid L by the absorbent liquid cooling unit 29 increases the ammonia absorption efficiency of the absorbent liquid L.

[0023] The dispensing unit 20 is capable of dispensing the absorbent liquid L supplied from the absorbent liquid supply unit 25 from the top of the casing 11. The dispensing unit 20 is equipped with a dispensing nozzle 21. The dispensing nozzle 21 dispenses the absorbent liquid L into the internal space 11s of the casing 11 by spraying, dropping, atomizing, etc. The dispensed absorbent liquid L moves downward through the internal space 11s of the casing 11 due to its own weight. In the process of moving through the internal space 11s of the casing 11, the absorbent liquid L comes into contact with the gas G rising from the bottom to the top of the internal space 11s of the casing 11, and absorbs the ammonia component contained in the gas G.

[0024] The gas discharge section 40 is capable of releasing gas G from the internal space 11s from the upper part of the casing 11. The gas discharge section 40 includes a gas discharge line 41 and a first valve 45. In this first embodiment, one end 41a of the gas discharge line 41 is connected to the top of the casing 11. The other end (not shown) of the gas discharge line 41 can be connected to a funnel, a vent post, or the like. The gas discharge section 40 discharges the gas G to the atmosphere, for example.

[0025] The first valve 45 opens and closes the flow path of gas G from the casing 11 to the gas discharge section 40. The first valve 45 also opens and closes the flow path of the gas discharge line 41. By opening and closing the first valve 45, the discharge of gas G from the casing 11 through the gas discharge line 41 is interrupted.

[0026] The gas circulation line 80 circulates gas G from the top of the casing 11 to the bottom of the casing 11. In this first embodiment, the gas circulation line 80 circulates gas G from the top of the casing 11, through the outside of the casing 11, to the bottom of the casing 11. Alternatively, the gas circulation line 80 may circulate gas G from the top of the casing 11, through the inside of the casing 11, to the bottom of the casing 11.

[0027] The gas circulation line 80 includes a gas circulation connecting pipe 81, a second valve 85, a fan 84, and a check valve 86. In this first embodiment, one end 81a of the gas circulation connecting pipe 81 is connected to the gas discharge line 41 between one end 41a of the gas discharge line 41 and the first valve 45. Furthermore, the other end 81b of the gas circulation connecting pipe 81 is connected to the gas supply line 16 between the other end 16b of the gas supply line 16 and the on / off valve 17.

[0028] The gas circulation line 80 illustrated in this first embodiment shares a portion of its section with the gas discharge line 41 and the gas supply line 16. Specifically, the gas circulation line 80 shares a portion of its section 82 with the gas discharge line 41, between one end 41a and the portion where one end 81a of the gas circulation connecting pipe 81 is connected. The gas circulation line 80 also shares a portion of its section 83 with the gas supply line 16, between one end 16a and the portion where the other end 81b of the gas circulation connecting pipe 81 is connected. In other words, the gas circulation line 80 includes a portion of the gas discharge line 41 (section 82), the gas circulation connecting pipe 81, and a portion of the gas supply line 16 (section 83). The gas circulation line 80 circulates the gas G discharged from the top of the casing 11 to the bottom of the casing 11 through the portion 82, the gas circulation connecting pipe 81, and the portion 83.

[0029] The second valve 85 opens and closes the flow path of gas G from the casing 11 to the gas circulation line 80. In this first embodiment, the second valve 85 is located in the middle of the gas circulation connecting pipe 81. By opening and closing the second valve 85, the flow path of gas G within the gas circulation connecting pipe 81 is opened and closed. By opening and closing the second valve 85, the inflow of gas G from the casing 11 to the gas circulation connecting pipe 81 of the gas circulation line 80 is interrupted.

[0030] The fan 84 draws in and discharges the gas G from the internal space 11s of the casing 11 from the top of the casing 11. In this first embodiment, the fan 84 is provided in a section 82, and more specifically, it is provided between the ammonia gas concentration meter 100 (described later) and the portion to which one end 81a of the gas circulation connecting pipe 81 is connected. The fan 84 may also be provided between one end 81a of the gas circulation connecting pipe 81 and the second valve 85.

[0031] The check valve 86 is located in the middle of the gas circulation connecting pipe 81. Specifically, the check valve 86 is located between the second valve 85 and the other end 81b of the gas circulation connecting pipe 81. The check valve 86 allows the flow of gas G from the gas circulation connecting pipe 81 to the gas supply line 16, while preventing backflow of gas G from the casing 11 from the side of a certain section 83.

[0032] The absorbent liquid discharge section 50 is capable of discharging the absorbent liquid L from the bottom of the casing 11 to the outside of the casing 11. The absorbent liquid discharge section 50 includes an absorbent liquid discharge line 51 and a third valve 55.

[0033] One end 51a of the absorbent liquid discharge line 51 is connected to the bottom of the casing 11. The other end (not shown) of the absorbent liquid discharge line 51 is connected to a waste liquid tank (not shown) or the like.

[0034] The third valve 55 is located in the middle of the absorbent liquid discharge line 51. The third valve 55 opens and closes the flow path of the absorbent liquid L discharged from the casing 11 to the absorbent liquid discharge section 50. By opening and closing the third valve 55, the discharge of the absorbent liquid L from the casing 11 through the absorbent liquid discharge line 51 is intermittently controlled.

[0035] The absorbent liquid circulation line 90 is capable of circulating the absorbent liquid L from the lower part of the casing 11 to the upper part of the casing 11 via the dispensing section 20. The absorbent liquid circulation line 90 includes an absorbent liquid circulation connecting pipe 91 and a fourth valve 95. The absorbent liquid circulation connecting pipe 91 forms a flow path for the absorbent liquid L. One end 91a of the absorbent liquid circulation connecting pipe 91 is connected to the lower part of the casing 11. The one end 91a is connected to the casing 11 at a position below the liquid level of the absorbent liquid L stored in the internal space 11s of the casing 11. The other end 91b of the absorbent liquid circulation connecting pipe 91 is connected to the absorbent liquid supply line 26 between the fifth valve 27 and the pump 28 of the absorbent liquid supply line 26.

[0036] The absorbent liquid circulation line 90 illustrated in this first embodiment shares a portion of its section with the absorbent liquid supply line 26. Specifically, the absorbent liquid circulation line 90 shares a portion of the absorbent liquid supply line 26, specifically a section 92 between the point where the other end 91b of the absorbent liquid circulation connecting pipe 91 is connected and the other end 26b of the absorbent liquid supply line 26. In other words, the absorbent liquid circulation line 90 of this first embodiment includes the absorbent liquid circulation connecting pipe 91 and a portion of the absorbent liquid supply line 26 92. The absorbent liquid circulation line 90 supplies the absorbent liquid L extracted from the bottom of the casing 11 to the spray nozzle 21 of the spray unit 20 through the absorbent liquid circulation connecting pipe 91 and the portion of the spray unit 92.

[0037] The fourth valve 95 opens and closes the flow path of the absorbent liquid L from the casing 11 to the absorbent liquid circulation line 90. In this first embodiment, the fourth valve 95 is located in the middle of the absorbent liquid circulation connecting pipe 91. By opening and closing the fourth valve 95, the flow path of the absorbent liquid L in the absorbent liquid circulation connecting pipe 91 is opened and closed. By opening and closing the fourth valve 95, the extraction of the absorbent liquid L from the lower part of the casing 11 to the absorbent liquid circulation connecting pipe 91 of the absorbent liquid circulation line 90 is interrupted.

[0038] The scrubber apparatus 10 illustrated in this first embodiment further comprises an ammonia gas concentration meter 100 and an ammonia absorption solution concentration meter 200. The ammonia gas concentration meter 100 detects the ammonia concentration of the gas G released from the casing 11 to the gas discharge section 40. In this first embodiment, the ammonia gas concentration meter 100 is installed between one end 41a of the gas discharge line 41 and a position in the gas discharge line 41 that is connected to one end 81a of the gas circulation connecting pipe 81.

[0039] The ammonia absorbent solution concentration meter 200 detects the ammonia concentration of the absorbent solution L in the casing 11. In this first embodiment, the ammonia absorbent solution concentration meter 200 detects the ammonia concentration of the absorbent solution L stored in the lower part of the internal space 11s of the casing 11.

[0040] The first valve 45, second valve 85, third valve 55, fourth valve 95, and fifth valve 27 are each automatic operating valves, such as piston valves, and their opening and closing operations can be controlled based on signals received from an external source, such as a control panel (not shown). The valve drive unit 45v of the first valve 45 and the valve drive unit 85v of the second valve 85 perform their respective opening and closing operations based on the detected ammonia concentration value detected by the ammonia gas concentration meter 100. The valve drive unit 55v of the third valve 55, the valve drive unit 95v of the fourth valve 95, and the valve drive unit 27v of the fifth valve 27 perform their respective opening and closing operations based on the detected ammonia concentration value of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200. In this first embodiment, the opening and closing operations of the valve drive units 45v, 85v, 55v, 95v, and 27v are performed by an operator who has confirmed the detected values ​​of the ammonia gas concentration meter 100 and the ammonia absorbent liquid concentration meter 200, via remote operation or the like.

[0041] (Procedure for gas treatment in a scrubber apparatus) Figure 2 is a flowchart showing the procedure for a gas treatment method in a scrubber apparatus according to an embodiment of this disclosure. As shown in Figure 2, the gas treatment method S10 in the scrubber device 10 includes a step S11 of circulating gas G, a step S12 of detecting the ammonia concentration of gas G, a step S13 of determining whether or not the gas concentration has fallen below a standard value, and a step S14 of releasing gas G from the top of the casing 11.

[0042] Figure 3 shows a step in a gas treatment method in a scrubber apparatus according to an embodiment of the present disclosure, in which gas is circulated to the lower part of the casing. In the scrubber device 10, after startup, a process S11 is executed to circulate the gas G in order to remove ammonia contained in the gas G. In the gas circulation process S11, as shown in Figure 3, the on-off valve 17 is opened, the first valve 45 is closed, and the second valve 85 is opened. By opening the on-off valve 17, the ammonia-containing gas G is introduced into the internal space 11s of the casing 11 through the gas supply line 16. In the internal space 11s of the casing 11, the ammonia in the introduced gas G is absorbed by the absorbent liquid L sprayed from the spray nozzle 21 of the spraying section 20. The gas G from which ammonia has been removed in the internal space 11s of the casing 11 is circulated to the bottom of the casing 11 through the gas circulation line 80 and comes into contact with the absorbent liquid L sprayed from the spraying section 20 again. This reduces the ammonia concentration of the gas G. In this process, since the first valve 45 is closed, the gas G is not discharged to the outside during processing. Therefore, when the scrubber device 10 is mounted on a floating body, for example, the inadvertent leakage of gas G due to motion is suppressed.

[0043] In step S12, which involves detecting the ammonia concentration of gas G, the ammonia concentration of gas G released from the top of the casing 11 is detected by the ammonia gas concentration meter 100.

[0044] In step S13, which determines whether the gas concentration has fallen below the standard value, it is determined whether the ammonia concentration of gas G detected by the ammonia gas concentration meter 100 has fallen below the standard value. This determination may be made by the operator visually, but if the ammonia concentration of gas G detected by the ammonia gas concentration meter 100 falls below the standard value, the monitoring device of the ammonia gas concentration meter 100 may output an alarm signal or the like.

[0045] If, in step S13, it is determined that the ammonia concentration of gas G is not below the gas concentration standard value (No in step S13), the process returns to step S11. On the other hand, if, in step S13, it is determined that the ammonia concentration of gas G is below the gas concentration standard value (Yes in step S13), the process proceeds to step S14.

[0046] Figure 4 shows a step in a gas treatment method in a scrubber apparatus according to an embodiment of the present disclosure, in which gas is released from the top of the casing. In step S14, which involves releasing gas G from the top of the casing 11, the first valve 45 is opened and the second valve 85 is closed, as shown in Figure 4. Closing the second valve 85 in this way stops the circulation of gas G from the top to the bottom of the casing 11. Then, by opening the first valve 45, the gas G from which the ammonia component has been removed in the internal space 11s of the casing 11 is released from the casing 11 to the gas release section 40. In this way, only gas G from which the ammonia component has been sufficiently removed is released to the gas release section 40.

[0047] By the way, as mentioned above, when performing the process to remove ammonia contained in gas G, the scrubber device 10 basically circulates the absorbent liquid L from the bottom of the casing 11 through the spray section 20 to the top of the casing 11 via the absorbent liquid circulation line 90. To do this, as shown in Figures 3 and 4, the third valve 55 and the fifth valve 27 are closed and the fourth valve 95 is opened. The scrubber device 10 monitors the ammonia concentration of the absorbent solution L detected by the ammonia absorbent solution concentration meter 200 and determines whether the detected ammonia concentration of the absorbent solution L is equal to or greater than a preset absorbent solution concentration standard value. This determination may be made by the operator visually, but if the ammonia concentration of the absorbent solution L detected by the ammonia absorbent solution concentration meter 200 is equal to or greater than the absorbent solution concentration standard value, the monitoring device of the ammonia absorbent solution concentration meter 200 may output an alarm signal or the like.

[0048] Figure 5 shows a state in which the absorbent liquid is discharged from the bottom of the casing in a scrubber device according to an embodiment of this disclosure. When the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200 exceeds the absorbent liquid concentration standard value, the fourth valve 95 is closed and the third valve 55 and fifth valve 27 are opened, as shown in Figure 5. By opening the third valve 55 in this way, the absorbent liquid L that has absorbed ammonia through contact with the ammonia-containing gas G is discharged to the absorbent liquid discharge section 50. Also, by opening the fifth valve 27, new absorbent liquid L is supplied to the dispensing section 20 from outside the casing 11 by the absorbent liquid supply section 25. This reduces the ammonia concentration of the absorbent liquid L in the internal space 11s of the casing 11. Note that Figure 5 illustrates the case where the third valve 55 and fifth valve 27 are opened when the gas G is not circulating, but this may also be done when the gas G is circulating.

[0049] (Effects and Benefits) In the first embodiment described above, the gas supply unit 15 supplies gas G containing ammonia to the internal space 11s of the casing 11. The spraying unit 20 sprays absorbent liquid L supplied from outside the casing 11 from the top of the internal space 11s of the casing 11. As a result, the absorbent liquid L comes into contact with the gas G containing ammonia, and the ammonia contained in the gas G is absorbed by the absorbent liquid L. The absorbent liquid L that has absorbed the ammonia falls to the bottom of the casing 11 due to its own weight. The gas G from which the ammonia has been removed is released from the top of the casing 11 by the gas release unit 40. The absorbent liquid discharge unit 50 discharges the absorbent liquid L that has absorbed ammonia to the outside of the casing 11 from the bottom of the casing 11. The gas circulation line 80 circulates gas G from the top to the bottom of the casing 11. In other words, the gas circulation line 80 circulates the gas G, from the top to the bottom of the casing 11, after ammonia has been absorbed by the absorbent liquid L sprayed from the spraying section 20. The gas G circulated to the bottom of the casing 11 comes into contact with the absorbent liquid L sprayed from the spraying section 20 again in the internal space 11s of the casing 11. As a result, even if ammonia remains in the gas G after ammonia has been absorbed by the absorbent liquid L, the gas G is circulated to the bottom of the casing 11, allowing for multiple ammonia absorptions by the absorbent liquid L. Therefore, even if ammonia cannot be sufficiently removed with only one contact with the absorbent liquid L, ammonia can be sufficiently removed from the ammonia-containing gas G. Furthermore, there is no need to increase the amount of absorbent liquid L or the capacity of the casing 11. Thus, it is possible to suppress the release of ammonia to the outside while suppressing an increase in the flow rate of absorbent liquid L and an increase in the capacity of the casing 11.

[0050] Furthermore, in the first embodiment described above, the discharge of gas G from the casing 11 to the gas discharge section 40 can be intermittently controlled by opening and closing the first valve 45. Also, the circulation of gas G from the casing 11 to the gas circulation line 80 can be intermittently controlled by opening and closing the second valve 85. The ammonia gas concentration meter 100 detects the ammonia concentration of gas G flowing from the casing 11 to the gas discharge section 40. Based on the ammonia concentration of gas G detected by the ammonia gas concentration meter 100, the first valve 45 and the second valve 85 can be opened and closed. For example, if the detected ammonia concentration of gas G is below a preset gas concentration standard value, the first valve 45 is opened and the second valve 85 is closed. As a result, gas G from which ammonia has been removed in the internal space 11s of the casing 11 is discharged from the casing 11 to the gas discharge section 40. Also, if the detected ammonia concentration of gas G is equal to or greater than a preset gas concentration standard value, the first valve 45 is closed and the second valve 85 is opened. Then, the gas G from which ammonia has been removed in the internal space 11s of the casing 11 is circulated to the lower part of the casing 11 through the gas circulation line 80 and comes into contact again with the absorbent liquid L sprayed from the spraying section 20. This reduces the ammonia concentration of the gas G.

[0051] Furthermore, in the first embodiment described above, the absorbent liquid L can be circulated from the lower part of the casing 11 to the upper part of the casing 11 via the absorbent liquid circulation line 90 through the liquid dispensing section 20. The third valve 55 can intermittently discharge the absorbent liquid L from the casing 11 to the absorbent liquid discharge section 50. The fourth valve 95 can intermittently circulate the absorbent liquid L from the casing 11 through the absorbent liquid circulation line 90. The ammonia absorbent liquid concentration meter 200 detects the ammonia concentration of the absorbent liquid L in the internal space 11s of the casing 11. Based on the ammonia concentration of the absorbent liquid L in the internal space 11s of the casing 11, the third valve 55 and the fourth valve 95 can be opened and closed to switch between discharging the absorbent liquid L to the absorbent liquid discharge section 50 or circulating it to the upper part of the casing 11 through the absorbent liquid circulation line 90.

[0052] Furthermore, in the first embodiment described above, if the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200 exceeds a preset absorbent liquid concentration reference value, the fifth valve 27 is opened. Then, the absorbent liquid supply unit 25 supplies the absorbent liquid L to the spray unit 20 from outside the casing 11. This makes it possible to reduce the ammonia concentration of the absorbent liquid L.

[0053] Furthermore, in the first embodiment described above, the absorbent liquid cooling unit 29 can cool the absorbent liquid L that is sprayed from the top of the internal space 11s of the casing 11 by the spraying unit 20. In particular, the absorbent liquid L circulated by the absorbent liquid circulation line 90 has its temperature risen due to the reaction heat during ammonia absorption. By cooling the absorbent liquid L whose temperature has risen, the ammonia absorption efficiency of the absorbent liquid L can be increased.

[0054] Furthermore, in the first embodiment described above, the fan 84 can send gas G from the top of the casing 11. In particular, when the gas G is circulated from the top of the casing 11 to the bottom of the casing 11 by the gas circulation line 80, the circulation of gas G can be carried out efficiently.

[0055] <Second Embodiment> Next, a scrubber apparatus and a gas treatment method in the scrubber apparatus according to the second embodiment of this disclosure will be described. In the second embodiment described below, the only difference from the first embodiment is the configuration in which a control device 60 is included, so the same reference numerals are used for the same parts as in the first embodiment and redundant explanations are omitted. Figure 6 shows the configuration of a scrubber apparatus according to the second embodiment of this disclosure. As shown in Figure 6, the scrubber device 10B of this embodiment comprises at least a casing 11, a gas supply unit 15, a liquid spraying unit 20, a gas discharge unit 40, a gas circulation line 80, an absorbent liquid discharge unit 50, an absorbent liquid circulation line 90, and a control device 60.

[0056] (Hardware configuration diagram) Figure 7 shows the hardware configuration of the control device of a scrubber apparatus according to the second embodiment of this disclosure. As shown in Figure 7, the control device 60 is a computer equipped with a CPU 61 (Central Processing Unit), ROM 62 (Read Only Memory), RAM 63 (Random Access Memory), storage 64 such as an HDD (Hard Disk Drive), and a signal transmission / reception module 65.

[0057] (Functional block diagram) Figure 8 is a functional block diagram of a scrubber apparatus according to the second embodiment of this disclosure. As shown in Figure 8, the CPU 61 of the control device 60 executes programs pre-stored in RAM 63, storage 64, etc., thereby realizing the functional configurations of the signal receiving unit 71, gas flow path control unit 72, absorbent liquid flow path control unit 73, and command signal output unit 74. The signal receiving unit 71 receives detection signals from the ammonia gas concentration meter 100 and the ammonia absorption solution concentration meter 200 via the hardware signal transmission / reception module 65.

[0058] The gas flow control unit 72 outputs command signals to control the opening and closing of the first valve 45 and the second valve 85 based on the ammonia concentration of gas G detected by the ammonia gas concentration meter 100. The output command signals are then output from the command signal output unit 74 to the valve drive unit 45v of the first valve 45 and the valve drive unit 85v of the second valve 85. The gas flow control unit 72 outputs a command signal to close the first valve 45 and open the second valve 85 when the ammonia concentration of gas G detected by the ammonia gas concentration meter 100 exceeds a preset gas concentration reference value. As a result, gas G, from which ammonia has been removed in the internal space 11s of the casing 11, is circulated to the lower part of the casing 11 through the gas circulation line 80 and comes into contact again with the absorbent liquid L sprayed from the spraying section 20. This reduces the ammonia concentration of gas G.

[0059] The gas flow control unit 72 outputs a command signal to open the first valve 45 and close the second valve 85 if the ammonia concentration of gas G detected by the ammonia gas concentration meter 100 is below a preset gas concentration reference value. As a result, gas G from which ammonia has been removed in the internal space 11s of the casing 11 is released from the casing 11 to the gas discharge section 40.

[0060] The absorbent fluid flow path control unit 73 outputs command signals to control the opening and closing of the third valve 55 and the fourth valve 95 based on the ammonia concentration of the absorbent fluid L detected by the ammonia absorbent fluid concentration meter 200. The output command signals are then output from the command signal output unit 74 to the valve drive unit 55v of the third valve 55, the valve drive unit 95v of the fourth valve 95, and the valve drive unit 27v of the fifth valve 27.

[0061] The absorbent fluid flow path control unit 73 outputs a command signal to close the third valve 55 and open the fourth valve 95 if the ammonia concentration of the absorbent fluid L detected by the ammonia absorbent fluid concentration meter 200 falls below a preset absorbent fluid concentration reference value. As a result, the absorbent fluid L is circulated to the upper part of the casing 11 through the absorbent fluid circulation line 90 and is again sprayed from the spraying unit 20 into contact with the ammonia-containing gas G. The absorbent fluid flow path control unit 73 outputs a command signal to open the third valve 55 and close the fourth valve 95 when the ammonia concentration of the absorbent fluid L detected by the ammonia absorbent fluid concentration meter 200 exceeds a preset absorbent fluid concentration reference value. When the ammonia concentration of the absorbent fluid L exceeds a preset absorbent fluid concentration reference value, the ammonia absorption efficiency of the absorbent fluid L decreases, so the absorbent fluid L is discharged from the casing 11 to the absorbent fluid discharge unit 50.

[0062] Furthermore, the absorbent liquid flow path control unit 73 outputs a command signal to open the fifth valve 27 when the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200 exceeds a preset absorbent liquid concentration reference value. As a result, the absorbent liquid supply unit 25 supplies the absorbent liquid L to the spray unit 20 from outside the casing 11. This reduces the ammonia concentration of the absorbent liquid L.

[0063] (Procedure for gas treatment in a scrubber apparatus) Figure 2 is a flowchart showing the procedure for a gas treatment method in a scrubber apparatus according to an embodiment of this disclosure. In the scrubber device 10B, the control device 60 performs the same procedure as the gas treatment method in the scrubber device shown in the first embodiment above. As shown in Figure 2, the gas treatment method S20 in the scrubber device 10B includes a step S21 of circulating gas G, a step S22 of detecting the ammonia concentration of gas G, a step S23 of determining whether the gas concentration has fallen below a reference value, and a step S24 of releasing gas G from the top of the casing 11.

[0064] After the process to remove ammonia contained in gas G is started, in step S21, which involves circulating gas G, the control device 60 opens the on-off valve 17, closes the first valve 45, and opens the second valve 85. By opening the on-off valve 17, gas G containing ammonia is introduced into the internal space 11s of the casing 11 through the gas supply line 16. In the internal space 11s of the casing 11, the ammonia in the introduced gas G is absorbed by the absorbent liquid L sprayed from the spray nozzle 21 of the spray unit 20. The gas G from which ammonia has been removed in the internal space 11s of the casing 11 is circulated to the bottom of the casing 11 through the gas circulation line 80 and comes into contact with the absorbent liquid L sprayed from the spray unit 20 again. This reduces the ammonia concentration in gas G.

[0065] In step S22, which involves detecting the ammonia concentration of gas G, the ammonia concentration of gas G released from the top of the casing 11 is detected by the ammonia gas concentration meter 100.

[0066] In step S23, which determines whether the gas concentration has fallen below the standard value, the control device 60 determines whether the ammonia concentration of gas G detected by the ammonia gas concentration meter 100 has fallen below the standard value. If, in step S23, it is determined that the ammonia concentration of gas G is not below the gas concentration standard value (No in step S23), the process returns to step S22. On the other hand, if, in step S23, it is determined that the ammonia concentration of gas G is below the gas concentration standard value (Yes in step S23), the process proceeds to step S24.

[0067] In step S24, where gas G is released from the top of the casing 11, the control device 60 opens the first valve 45 and closes the second valve 85. By closing the second valve 85, the circulation of gas G from the top to the bottom of the casing 11 is stopped. By opening the first valve 45, gas G from which ammonia components have been removed in the internal space 11s of the casing 11 is released from the casing 11 to the gas discharge section 40. In this way, only gas G from which ammonia components have been sufficiently removed is released to the gas discharge section 40.

[0068] Furthermore, as described above, when the control device 60 performs the process of removing ammonia contained in the gas G, it closes the third valve 55 and the fifth valve 27 and opens the fourth valve 95. As a result, the absorbent liquid L is circulated from the lower part of the casing 11 through the spraying section 20 to the upper part of the casing 11 via the absorbent liquid circulation line 90. The control device 60 monitors the ammonia concentration of the absorbent solution L detected by the ammonia absorbent solution concentration meter 200 and determines whether the detected ammonia concentration of the absorbent solution L is equal to or greater than a preset absorbent solution concentration standard value.

[0069] If the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200 exceeds the absorbent liquid concentration standard value, the control device 60 closes the fourth valve 95 and opens the third valve 55 and the fifth valve 27. By opening the third valve 55, the absorbent liquid L that has absorbed ammonia through contact with the ammonia-containing gas G is discharged to the absorbent liquid discharge section 50. Also, by opening the fifth valve 27, a new absorbent liquid L is supplied to the dispensing section 20 from outside the casing 11 by the absorbent liquid supply section 25. This reduces the ammonia concentration of the absorbent liquid L in the internal space 11s of the casing 11.

[0070] (Effects and Benefits) According to the second embodiment described above, similar to the first embodiment, it is possible to suppress the release of ammonia to the outside while suppressing an increase in the flow rate of the absorbent liquid L and an increase in the volume of the casing 11.

[0071] Furthermore, in the second embodiment described above, the gas flow path control unit 72 controls the opening and closing of the first valve 45 and the second valve 85 based on the ammonia concentration of gas G detected by the ammonia gas concentration meter 100. This allows the system to automatically determine and execute whether to release gas G to the gas discharge unit 40 or circulate gas G in the gas circulation line 80, depending on the ammonia concentration of gas G after ammonia removal treatment by the absorbent liquid L.

[0072] Furthermore, in the second embodiment described above, if the ammonia concentration of gas G is below a preset gas concentration standard value, the gas flow path control unit 72 can control the gas G to release it from the casing 11 to the gas discharge unit 40. Also, if the detected ammonia concentration of gas G is equal to or greater than the preset gas concentration standard value, the gas G can be circulated through the gas circulation line 80 to the lower part of the casing 11 and brought into contact again with the absorbent liquid L sprayed from the spraying unit 20.

[0073] Furthermore, in the second embodiment described above, the absorbent liquid flow path control unit 73 controls the opening and closing of the third valve 55 and the fourth valve 95 based on the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200. This allows the system to automatically determine and execute whether to discharge the absorbent liquid L, which has absorbed ammonia by contact with the gas G containing ammonia, to the absorbent liquid discharge unit 50 or to circulate it to the upper part of the casing 11 through the absorbent liquid circulation line 90.

[0074] Furthermore, in the second embodiment described above, under the control of the absorbent liquid flow path control unit 73, if the ammonia concentration of the absorbent liquid L is below a preset absorbent liquid concentration standard value, the absorbent liquid L can be circulated to the upper part of the casing 11 through the absorbent liquid circulation line 90 and again sprayed from the spraying unit 20 to come into contact with the ammonia-containing gas G. Also, if the detected ammonia concentration of the absorbent liquid L is above the preset absorbent liquid concentration standard value, the ammonia absorption efficiency by the absorbent liquid L decreases, and the absorbent liquid L can be discharged from the casing 11 to the absorbent liquid discharge unit 50.

[0075] Furthermore, in the second embodiment described above, the absorbent liquid flow path control unit 73 opens the fifth valve 27 when the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200 exceeds a preset absorbent liquid concentration reference value. Then, the absorbent liquid supply unit 25 supplies the absorbent liquid L to the spray unit 20 from outside the casing 11. This makes it possible to reduce the ammonia concentration of the absorbent liquid L.

[0076] (Other embodiments) Although embodiments of this disclosure have been described in detail above with reference to the drawings, the specific configurations are not limited to each embodiment and may include design changes, etc., that do not depart from the gist of this disclosure. In the above embodiment, the procedures for the gas treatment methods S10 and S20 in the scrubber device 10 were shown, but the order and specific content of each step can be changed as appropriate. Furthermore, although the above embodiment described a configuration in which seawater surrounding the floating body is directly sucked in and used as an absorbent liquid, the configuration is not limited to this. For example, seawater stored in a seawater tank (not shown), such as a ballast tank installed on board the ship, may be used, or the seawater surrounding the floating body and the seawater in a seawater tank (not shown) installed on board the ship may be switched between as appropriate. Furthermore, in the above embodiment, a case was described in which, when the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200 exceeds a preset absorbent liquid concentration standard value, a new absorbent liquid L with a lower ammonia concentration is supplied to the dispensing unit 20 from the outside. However, the configuration is not limited to the above embodiment. In addition to the configuration of the above embodiment, for example, if the ammonia concentration of the gas G detected by the ammonia gas concentration meter 100 exceeds a preset upper limit specified value for ammonia concentration, a new absorbent liquid L with a lower ammonia concentration may also be supplied to the dispensing unit 20 from the outside. This makes it possible to reduce the ammonia concentration of the circulating absorbent liquid L before it exceeds the absorbent liquid concentration standard value, even in situations where the ammonia concentration of the circulating absorbent liquid L rises sharply.

[0077] <Note> The scrubber devices 10, 10B and the gas treatment methods S10, S20 in the scrubber devices 10, 10B described in each embodiment can be understood, for example, as follows.

[0078] (1) The scrubber apparatus 10, 10B according to the first embodiment comprises a casing 11, a gas supply unit 15 capable of supplying a gas G containing ammonia into the casing 11, a liquid spraying unit 20 capable of spraying an absorbent liquid L supplied from outside the casing 11 from the upper part inside the casing 11, a gas discharge unit 40 capable of releasing gas G from the upper part of the casing 11, an absorbent liquid discharge unit 50 capable of discharging the absorbent liquid L from the lower part of the casing 11, and a gas circulation line 80 that circulates gas G from the upper part of the casing 11 to the lower part of the casing 11. Examples of absorbent liquid L include fresh water and seawater.

[0079] In these scrubber devices 10 and 10B, a gas G containing ammonia is supplied into the casing 11 by the gas supply unit 15. The spraying unit 20 sprays absorbent liquid L, supplied from outside the casing 11, from the top inside the casing 11. As a result, the absorbent liquid L comes into contact with the ammonia-containing gas G, and the ammonia contained in the gas G is absorbed by the absorbent liquid L. The absorbent liquid L, having absorbed the ammonia, falls to the bottom of the casing 11 due to its own weight. The gas G from which the ammonia has been removed is released from the top of the casing 11 by the gas discharge unit 40. The absorbent liquid discharge unit 50 discharges the absorbent liquid L, which has absorbed the ammonia, to the outside of the casing 11 from the bottom of the casing 11. The gas circulation line 80 circulates the gas G from the top to the bottom of the casing 11. In other words, the gas circulation line 80 circulates the gas G, from the top to the bottom of the casing 11, after ammonia has been absorbed by the absorbent liquid L sprayed from the spraying unit 20. The gas G circulated to the bottom of the casing 11 comes into contact with the absorbent liquid L sprayed from the spraying unit 20 again within the casing 11. As a result, even if ammonia remains in the gas G after ammonia has been absorbed by the absorbent liquid L, the gas G is circulated to the bottom of the casing 11, allowing for multiple ammonia absorptions by the absorbent liquid L. Therefore, even if ammonia cannot be sufficiently removed with only one contact with the absorbent liquid L, ammonia can be sufficiently removed from the ammonia-containing gas G. Furthermore, there is no need to increase the amount of absorbent liquid L or the capacity of the casing 11. Thus, it is possible to suppress the release of ammonia to the outside while suppressing an increase in the flow rate of absorbent liquid L and an increase in the capacity of the casing 11.

[0080] (2) The scrubber apparatus 10, 10B according to the second embodiment is the scrubber apparatus 10, 10B according to (1), further comprising: a first valve 45 for opening and closing the flow path of the gas G from the casing 11 to the gas discharge section 40; a second valve 85 for opening and closing the flow path of the gas G from the casing 11 to the gas circulation line 80; and an ammonia gas concentration meter 100 for detecting the ammonia concentration of the gas G flowing from the casing 11 to the gas discharge section 40.

[0081] This allows the release of gas G from the casing 11 to the gas discharge section 40 to be intermittently controlled by opening and closing the first valve 45. Similarly, the circulation of gas G from the casing 11 to the gas circulation line 80 can be intermittently controlled by opening and closing the second valve 85. The ammonia gas concentration meter 100 detects the ammonia concentration of gas G flowing from the casing 11 to the gas discharge section 40. Based on the ammonia concentration of gas G detected by the ammonia gas concentration meter 100, the first valve 45 and the second valve 85 can be opened and closed. For example, if the detected ammonia concentration of gas G is below a preset gas concentration standard, the first valve 45 is opened and the second valve 85 is closed. As a result, gas G from which ammonia has been removed within the casing 11 is released from the casing 11 to the gas discharge section 40. If the detected ammonia concentration of gas G is above a preset gas concentration standard, the first valve 45 is closed and the second valve 85 is opened. Then, the gas G from which ammonia has been removed within the casing 11 is circulated to the lower part of the casing 11 through the gas circulation line 80 and comes into contact again with the absorbent liquid L sprayed from the spraying section 20. This reduces the ammonia concentration of gas G.

[0082] (3) The scrubber device 10B according to the third embodiment is the scrubber device 10B of (2), further comprising a gas flow control unit 72 that controls the opening and closing of the first valve 45 and the second valve 85 based on the ammonia concentration of the gas G detected by the ammonia gas concentration meter 100.

[0083] As a result, the gas flow path control unit 72 controls the opening and closing of the first valve 45 and the second valve 85 based on the ammonia concentration of gas G detected by the ammonia gas concentration meter 100, thereby automatically determining and executing whether to release gas G to the gas discharge unit 40 or circulate gas G to the gas circulation line 80, depending on the ammonia concentration of gas G after ammonia removal treatment by the absorbent liquid L.

[0084] (4) The scrubber device 10B according to the fourth embodiment is the scrubber device 10B of (3), wherein the gas flow path control unit 72 opens the first valve 45 and closes the second valve 85 when the ammonia concentration of the gas G detected by the ammonia gas concentration meter 100 is below a preset gas concentration standard value, and closes the first valve 45 and opens the second valve 85 when the ammonia concentration of the gas G detected by the ammonia gas concentration meter 100 is above a preset gas concentration standard value.

[0085] As a result, if the ammonia concentration of gas G is below a preset gas concentration standard value, gas G can be released from the casing 11 to the gas discharge section 40. If the detected ammonia concentration of gas G is above the preset gas concentration standard value, gas G can be circulated through the gas circulation line 80 to the bottom of the casing 11 and brought into contact again with the absorbent liquid L sprayed from the spraying section 20.

[0086] (5) A scrubber device 10, 10B according to the fifth embodiment is any one of the scrubber devices 10, 10B of (1) to (4), further comprising: an absorbent liquid circulation line 90 capable of circulating absorbent liquid L from the lower part of the casing 11 to the upper part of the casing 11 via the spraying section 20; a third valve 55 for opening and closing the flow path of the absorbent liquid L discharged from the casing 11 to the absorbent liquid discharge section 50; a fourth valve 95 for opening and closing the flow path of the absorbent liquid L from the casing 11 to the absorbent liquid circulation line 90; and an ammonia absorbent liquid concentration meter 200 for detecting the ammonia concentration of the absorbent liquid L in the casing 11.

[0087] As a result, the absorbent liquid circulation line 90 can circulate the absorbent liquid L from the bottom of the casing 11 through the dispensing section 20 to the top of the casing 11. The third valve 55 can intermittently discharge the absorbent liquid L from the casing 11 to the absorbent liquid discharge section 50. The fourth valve 95 can intermittently circulate the absorbent liquid L from the casing 11 through the absorbent liquid circulation line 90. The ammonia absorbent liquid concentration meter 200 detects the ammonia concentration of the absorbent liquid L in the casing 11. Based on the ammonia concentration of the absorbent liquid L in the casing 11, the third valve 55 and the fourth valve 95 can be opened and closed to switch between discharging the absorbent liquid L to the absorbent liquid discharge section 50 or circulating it to the top of the casing 11 through the absorbent liquid circulation line 90.

[0088] (6) The scrubber device 10B according to the sixth embodiment is the scrubber device 10B of (5), further comprising an absorbent fluid flow path control unit 73 that controls the opening and closing of the third valve 55 and the fourth valve 95 based on the ammonia concentration of the absorbent fluid L detected by the ammonia absorbent fluid concentration meter 200.

[0089] In this configuration, the absorbent liquid flow path control unit 73 controls the opening and closing of the third valve 55 and the fourth valve 95 based on the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200. This allows the system to automatically switch between discharging the absorbent liquid L, which has absorbed ammonia by contact with the ammonia-containing gas G, to the absorbent liquid discharge unit 50 or circulating it through the absorbent liquid circulation line 90 to the upper part of the casing 11.

[0090] (7) The scrubber device 10B according to the seventh embodiment is any one of the scrubber devices 10B of (6), wherein the absorbent liquid flow path control unit 73 closes the third valve 55 and opens the fourth valve 95 when the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200 is below a preset absorbent liquid concentration standard value, and opens the third valve 55 and closes the fourth valve 95 when the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200 is equal to or above a preset absorbent liquid concentration standard value.

[0091] As a result, if the ammonia concentration of the absorbent liquid L is below a preset absorbent liquid concentration standard value, the absorbent liquid L can be circulated to the top of the casing 11 through the absorbent liquid circulation line 90 and then sprayed again from the spraying section 20 to come into contact with the ammonia-containing gas G. Also, if the detected ammonia concentration of the absorbent liquid L is above the preset absorbent liquid concentration standard value, the ammonia absorption efficiency by the absorbent liquid L decreases, and the absorbent liquid L can be discharged from the casing 11 to the absorbent liquid discharge section 50.

[0092] (8) The scrubber device 10B according to the eighth embodiment is the scrubber device 10B of (7), further comprising an absorbent liquid supply unit 25 that supplies the absorbent liquid L to the spraying unit 20 from outside the casing 11, and a fifth valve 27 that opens and closes the flow path of the absorbent liquid L from the absorbent liquid supply unit 25 to the spraying unit 20, wherein the absorbent liquid flow path control unit 73 opens the fifth valve 27 when the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200 becomes equal to or greater than a preset absorbent liquid concentration reference value.

[0093] As a result, the absorbent liquid flow path control unit 73 opens the fifth valve 27 when the ammonia concentration of the absorbent liquid L detected by the ammonia absorbent liquid concentration meter 200 exceeds a preset absorbent liquid concentration reference value. Then, the absorbent liquid supply unit 25 supplies the absorbent liquid L to the spray unit 20 from outside the casing 11. This reduces the ammonia concentration of the absorbent liquid L.

[0094] (9) A scrubber device 10, 10B according to the ninth embodiment is any one of the scrubber devices 10, 10B of (1) to (8), further comprising an absorbent liquid cooling unit 29 capable of cooling the absorbent liquid L that is sprayed from the upper part of the casing 11 by the spraying unit 20.

[0095] As a result, the absorbent liquid cooling unit 29 can cool the absorbent liquid L that is sprayed from the top of the casing 11 by the spraying unit 20. In particular, the absorbent liquid L circulated by the absorbent liquid circulation line 90 has its temperature risen due to the reaction heat during ammonia absorption. By cooling the absorbent liquid L, the ammonia absorption efficiency of the absorbent liquid L can be increased.

[0096] (10) A scrubber device 10, 10B according to the tenth embodiment is any one of the scrubber devices 10, 10B of (1) to (9), further comprising a fan 84 that sends the gas G from the upper part of the casing 11.

[0097] This allows the fan 84 to send gas G from the top of the casing 11. In particular, when the gas G is circulated from the top to the bottom of the casing 11 by the gas circulation line 80, the circulation of gas G can be performed efficiently.

[0098] (11) A gas treatment method S10, S20 in a scrubber device 10, 10B according to the 11th embodiment is a gas treatment method S10, S20 in any one of the scrubber devices 10, 10B according to (1) to (10), comprising: steps S11, S21 of supplying a gas G containing ammonia into the casing 11, spraying water supplied from outside the casing 11 from the top of the casing 11, and circulating the gas G from the top of the casing 11 to the bottom of the casing 11; steps S12, S22 of detecting the ammonia concentration of the gas G released from the top of the casing 11; and steps S14, S24 of stopping the circulation of gas G from the top of the casing 11 to the bottom of the casing 11 and releasing gas G from the top of the casing 11 when the detected ammonia concentration falls below a preset gas concentration standard value.

[0099] In the gas treatment methods S10 and S20 of these scrubber devices 10 and 10B, if the ammonia concentration of gas G detected by the ammonia gas concentration meter 100 is equal to or greater than a preset gas concentration standard value, the gas G from which ammonia has been removed within the casing 11 is circulated to the bottom of the casing 11. By circulating the gas G to the bottom of the casing 11, ammonia is absorbed by the absorbent liquid L multiple times. Therefore, even if ammonia cannot be sufficiently removed with only one contact with the absorbent liquid L, ammonia can be sufficiently removed from the ammonia-containing gas G. Furthermore, there is no need to increase the amount of absorbent liquid L or increase the capacity of the casing 11. Thus, it is possible to suppress the release of ammonia to the outside while suppressing an increase in the flow rate of absorbent liquid L and an increase in the capacity of the casing 11. [Explanation of Symbols]

[0100] 10,10B…Scrubber device 11…Casing 11s…Internal space 15…Gas supply unit 16…Gas supply line 16a…One end 16b…Other end 17…On / off valve 18…Auxiliary gas supply line 19…Check valve 20…Spraying unit 21…Spraying nozzle 25…Absorbent liquid supply unit 26…Absorbent liquid supply line 26b…Other end 27…Fifth valve 27v…Valve drive unit 28…Pump 29…Absorbent liquid cooling unit 40…Gas discharge unit 41…Gas discharge line 41a…One end 45…First valve 45v…Valve drive unit 50…Absorbent liquid discharge unit 51…Absorbent liquid discharge line 51a…One end 55…Third valve 55v…Valve drive unit 60…Control device 61…CPU 62…ROM 63…RAM 64…Storage 65…Signal transmission / reception module 71...Signal receiving unit 72...Gas flow path control unit 73...Absorbent liquid flow path control unit 74...Command signal output unit 80...Gas circulation line 81...Gas circulation connecting pipe 81a...One end 81b...Other end 82...Partial section 83...Partial section 84...Fan 85...Second valve 85v...Valve drive unit 86...Check valve 90...Absorbent liquid circulation line 91...Absorbent liquid circulation connecting pipe 91a...One end 91b...Other end 92...Partial section 95...Fourth valve 95v...Valve drive unit 100...Ammonia gas concentration meter 200...Ammonia absorbent liquid concentration meter Dv...Up and down direction G...Gas L...Absorbent liquid S10,S20...Gas processing method in scrubber device S11,S21...Process of circulating gas S12,S22...Process of detecting the ammonia concentration of the gas S13,S23...Process of determining whether the gas concentration has fallen below the standard value S14, S24... Process of releasing gas from the top of the casing.

Claims

1. Casing and, A gas supply unit capable of supplying a gas containing ammonia into the casing, The absorbing liquid supplied from outside the casing is provided by a spraying section that can spray the liquid from the top inside the casing, A gas discharge section having a gas discharge line at one end connected to the upper part of the casing and a first valve for opening and closing the flow path of the gas discharge line, and capable of discharging gas from the upper part of the casing, An absorbent liquid discharge section that can discharge absorbent liquid from the lower part of the casing, A gas circulation line that circulates gas from the upper part of the casing to the lower part of the casing, An ammonia gas concentration meter for detecting the ammonia concentration of the gas flowing from the casing to the gas discharge section, Equipped with, The gas circulation line comprises a gas circulation connecting pipe, one end of which is connected between one end of the gas discharge line and the first valve; a second valve provided in the middle of the gas circulation connecting pipe for opening and closing the flow path of the gas circulation connecting pipe; and a fan for sending the gas out from the top of the casing. A portion of the aforementioned gas circulation line shares a section with the gas discharge line between the part where one end of the gas discharge line and one end of the gas circulation connecting pipe are connected. The ammonia gas concentration meter and the fan are provided in the aforementioned section. A scrubber device is included.

2. A first valve that opens and closes the gas flow path from the casing to the gas discharge section, The system further comprises a second valve that opens and closes the gas flow path from the casing to the gas circulation line. The scrubber device according to claim 1.

3. The system further comprises a gas flow control unit that controls the opening and closing of the first valve and the second valve based on the ammonia concentration of the gas detected by the ammonia gas concentration meter. The scrubber apparatus according to claim 2.

4. The gas flow path control unit is If the ammonia concentration of the gas detected by the ammonia gas concentration meter is below a preset gas concentration standard value, the first valve is opened and the second valve is closed. When the ammonia concentration of the gas detected by the ammonia gas concentration meter exceeds a preset gas concentration standard value, the first valve is closed and the second valve is opened. The scrubber device according to claim 3.

5. An absorbent liquid circulation line is provided that allows the absorbent liquid to be circulated from the lower part of the casing through the liquid dispensing section to the upper part of the casing. A third valve that opens and closes the flow path of the absorbent liquid discharged from the casing to the absorbent liquid discharge section, A fourth valve that opens and closes the flow path of the absorbent liquid from the casing to the absorbent liquid circulation line, An ammonia absorbent solution concentration meter for detecting the ammonia concentration of the absorbent solution in the casing, It also has The scrubber device according to claim 1 or 2.

6. The system further comprises an absorbent fluid flow path control unit that controls the opening and closing of the third valve and the fourth valve based on the ammonia concentration of the absorbent fluid detected by the ammonia absorbent fluid concentration meter. The scrubber apparatus according to claim 5.

7. The absorbent liquid flow channel control unit is If the ammonia concentration of the absorbent solution detected by the ammonia absorbent solution concentration meter is below a preset absorbent solution concentration standard value, the third valve is closed and the fourth valve is opened. When the ammonia concentration of the absorbent solution detected by the ammonia absorbent solution concentration meter exceeds a preset absorbent solution concentration standard value, the third valve is opened and the fourth valve is closed. The scrubber device according to claim 6.

8. An absorbent liquid supply unit that supplies the absorbent liquid to the spraying section from outside the casing, The system further includes a fifth valve that opens and closes the flow path of the absorbent liquid from the absorbent liquid supply unit to the spraying unit, The absorbent liquid flow path control unit opens the fifth valve when the ammonia concentration of the absorbent liquid detected by the ammonia absorbent liquid concentration meter exceeds a preset absorbent liquid concentration reference value. The scrubber device according to claim 7.

9. The casing further comprises an absorbent liquid cooling unit capable of cooling the absorbent liquid sprayed from the upper part of the casing by the spraying unit. The scrubber device according to claim 1 or 2.

10. A gas treatment method in a scrubber apparatus according to claim 1 or 2, The process involves supplying a gas containing ammonia into the casing, spraying water supplied from outside the casing from the top of the casing, and circulating the gas from the top of the casing to the bottom of the casing. A step of detecting the ammonia concentration of the gas released from the upper part of the casing, The process includes, if the detected ammonia concentration falls below a preset gas concentration standard value, stopping the circulation of gas from the top of the casing to the bottom of the casing and releasing the gas from the top of the casing. Gas treatment method in a scrubber apparatus.

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