COMBUSTION SYSTEM, METHOD FOR PURGE OF AMMONIA GAS IN A COMBUSTION SYSTEM, AND METHOD FOR SUPPLYING AMMONIA GAS IN A COMBUSTION SYSTEM - Patent application
A dual gas conduit system using nitrogen and air in a combustion system addresses high purging costs by automating seal maintenance, ensuring efficient ammonia gas removal and sealing in combustion systems.
Patent Information
- Application Number
- JP2025502850
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2024-03-15
- Filing Date
- 2024-10-23
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2044-10-23
AI Technical Summary
Using nitrogen for purging ammonia gas from piping in combustion systems increases costs, and maintaining gas sealing after purging is necessary to prevent pressure drops.
A combustion system with a dual gas conduit system using nitrogen and air, controlled by a control device to purge and seal the piping by alternating between these gases during boiler operation and shutdown.
Maintains piping seal after purging while reducing costs by using cheaper air for sealing, and automates purging and sealing processes.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This application claims the benefit of priority from Japanese Patent Application No. 2024-040973, filed on March 15, 2024, the contents of which are incorporated herein by reference. [Background technology]
[0002] In combustion systems such as boilers, ammonia may be used as fuel. For example, Patent Document 1 discloses a power generation facility including a boiler that uses ammonia as fuel. When combustion stops and the boiler is not used for a long period of time, ammonia gas in the ammonia gas fuel piping facility is replaced with nitrogen gas, and the ammonia gas is sent to an ammonia gas absorption unit. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Patent No. 6319526 Summary of the Invention [Problem to be solved by the invention]
[0004] To purge ammonia gas from the piping, a gas inert to ammonia gas, such as nitrogen, is used. Furthermore, to maintain the gas seal of the piping after purging, it is necessary to continue supplying the gas to prevent a drop in pressure within the piping. However, using nitrogen for purging, as in Patent Document 1, increases costs.
[0005] The present disclosure aims to provide a combustion system that, when ammonia gas is used as fuel, can maintain gas sealing of piping after purging. The present disclosure also aims to provide a method for purging ammonia gas in a combustion system and a method for supplying ammonia gas in a combustion system. [Means for solving the problem]
[0006] A combustion system according to one aspect of the present disclosure includes a burner, a fuel conduit connected to the burner and supplying ammonia gas to the burner, a fuel valve provided in the fuel conduit and opening and closing the fuel conduit, a first gas conduit fluidly connected to the fuel conduit between the burner and the fuel valve and supplying a first gas inert to the ammonia gas to the fuel conduit, and a second gas conduit fluidly connected to the fuel conduit between the burner and the fuel valve and supplying a second gas inert to the first gas to the fuel conduit. a first gas valve provided in the first gas conduit for opening and closing the first gas conduit; a second gas valve provided in the second gas conduit for opening and closing the second gas conduit; and a control device for controlling the fuel valve, the first gas valve, and the second gas valve, the control device being configured to close the fuel valve to stop the supply of ammonia gas to the burner in order to purge the ammonia gas from the fuel conduit, open the first gas valve to supply the first gas to the fuel conduit and the burner, and after supplying the first gas to the fuel conduit and the burner, open the second gas valve to supply the second gas to the fuel conduit and the burner; Equipped with The control device is further configured to continue supplying the second gas from the second gas conduit to the fuel conduit and the burner while the burner is stopped. .
[0007] The first gas may be nitrogen and the second gas may be air.
[0009] A combustion system according to another aspect of the present disclosure includes a burner; a fuel conduit connected to the burner and supplying ammonia gas to the burner; a fuel valve provided in the fuel conduit and opening and closing the fuel conduit; a first gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve and supplying a first gas inert to the fuel conduit, the first gas being inert to the ammonia gas; a second gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve and supplying a second gas inert to the first gas being inert to the ammonia gas; a first gas valve provided in the first gas conduit and opening and closing the first gas conduit; a second gas valve provided in the second gas conduit and opening and closing the second gas conduit; and a control device configured to control the fuel valve, the first gas valve, and the second gas valve, and to continue supplying the second gas from the second gas conduit to the fuel conduit and the burner while the burner is stopped; The control device closes the second gas valve and opens the fuel conduit to supply ammonia gas to the burner. and Burner and stopping the supply of the second gas to the fuel conduit and opening the first gas valve. and Burner supplying a first gas to the fuel conduit; and Burner After supplying the first gas to the burner, open the fuel valve to supply ammonia gas to the burner; moreover configured to run R .
[0010] Another aspect of the present disclosure is a method for purging ammonia gas in a combustion system, the combustion system including: a burner; a fuel conduit connected to the burner and supplying ammonia gas to the burner; a fuel valve disposed in the fuel conduit and configured to open and close the fuel conduit; a first gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve and configured to supply a first gas inert to the fuel conduit; a second gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve and configured to supply a second gas inert to the first gas conduit; a first gas valve disposed in the first gas conduit and configured to open and close the first gas conduit; and a second gas valve disposed in the second gas conduit and configured to open and close the second gas conduit, the method including closing the fuel valve to stop the supply of ammonia gas to the burner, and opening the first gas valve to stop the supply of ammonia gas to the fuel conduit. and Burner supplying a first gas to the fuel conduit; and Burner After supplying the first gas to the fuel conduit, open the second gas valve. and Burner supplying a second gas to continuing to supply a second gas from the second gas conduit to the fuel conduit and the burner while the burner is shut off; Includes.
[0011] Yet another aspect of the present disclosure is a method for supplying ammonia gas in a combustion system, the combustion system including: a burner; a fuel conduit connected to the burner for supplying ammonia gas to the burner; a fuel valve disposed in the fuel conduit for opening and closing the fuel conduit; a first gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve for supplying a first gas inert to the ammonia gas to the fuel conduit; a second gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve for supplying a second gas inert to the first gas conduit; a first gas valve disposed in the first gas conduit for opening and closing the first gas conduit; and a second gas valve disposed in the second gas conduit for opening and closing the second gas conduit; While the burner is stopped, the second gas continues to be supplied from the second gas conduit to the fuel conduit and the burner, The method further comprises closing the second gas valve to open the fuel conduit. and Burner and stopping the supply of the second gas to the fuel conduit and opening the first gas valve. and Burner supplying a first gas to the fuel conduit; and Burner and then opening the fuel valve to supply ammonia gas to the burner. [Effects of the Invention]
[0012] According to the present disclosure, when ammonia is used as fuel, the gas can maintain a seal on the piping after purging. [Brief explanation of the drawings]
[0013] [Figure 1] FIG. 1 is a schematic diagram of a combustion system according to an embodiment. [Figure 2] FIG. 2 is a flow chart illustrating a method for purging ammonia gas. [Figure 3] FIG. 3 is a flow chart showing a method for supplying ammonia gas. DETAILED DESCRIPTION OF THE INVENTION
[0014] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. Specific dimensions, materials, numerical values, etc. shown in the embodiments are merely examples for ease of understanding and do not limit the present disclosure unless otherwise specified. In this specification and drawings, elements having substantially the same functions and configurations are designated by the same reference numerals to avoid redundant explanation, and elements not directly related to the present disclosure are not shown.
[0015] 1 is a schematic diagram of a combustion system 100 according to an embodiment. For example, in this embodiment, the combustion system 100 is applied to a boiler 1 of a thermal power plant. In other embodiments, the combustion system 100 may be applied to other facilities. For example, the combustion system 100 includes the boiler 1 and a control device 90.
[0016] The boiler 1 includes a furnace 11. The furnace 11 defines a combustion space S. In the present disclosure, combustion space means the space in which fuel is combusted.
[0017] The boiler 1 includes at least one burner 12. In this embodiment, the boiler 1 includes a plurality of burners 12. For example, a burner 12 is provided on each of the opposing front and rear walls of the furnace 11. For example, the plurality of burners 12 are arranged in a single row or multiple rows along the horizontal direction.
[0018] The burner 12 injects fuel containing ammonia gas ga into the combustion space S. For example, in this embodiment, the burner 12 may inject only ammonia gas ga into the combustion space S. Also, for example, in another embodiment, the burner 12 may inject a mixed fuel of ammonia gas ga and other fuel such as a fossil fuel into the combustion space S. Also, for example, in another embodiment, some of the multiple burners 12 may inject ammonia gas ga into the combustion space S, and the rest of the multiple burners 12 may inject other fuel into the combustion space S. Also, the burner 12 may inject only other fuel into the combustion space S as necessary. The fuel is combusted in the combustion space S.
[0019] The burner 12 is connected to a fuel conduit L1. The fuel conduit L1 supplies ammonia gas ga to the burner 12. For example, the fuel conduit L1 is connected to an ammonia supply source (not shown), such as a tank or an ammonia manufacturing apparatus. For example, the ammonia supply source may be a tank that stores liquid ammonia. In this case, for example, the fuel conduit L1 may be provided with a vaporizer (not shown), and ammonia gas ga may be supplied from the vaporizer to the burner 12. Note that if a portion of the liquid ammonia is not vaporized in the vaporizer, the ammonia gas ga may contain liquid ammonia. The ammonia supply source is not limited to a tank.
[0020] A first fuel valve V1 is provided in the fuel conduit L1. The first fuel valve V1 opens and closes the fuel conduit L1. The first fuel valve V1 is communicatively connected to the control device 90 via wire or wirelessly and is controlled by the control device 90. For example, the first fuel valve V1 may be a ball valve. The first fuel valve V1 is not limited to a ball valve and may include any mechanism that can open and close the fuel conduit L1.
[0021] A second fuel valve V2 is provided in the fuel conduit L1. The second fuel valve V2 is provided in the fuel conduit L1 between the first fuel valve V1 and the burner 12. The second fuel valve V2 is provided in the fuel conduit L1 downstream of the first fuel valve V1. The second fuel valve V2 opens and closes the fuel conduit L1. The second fuel valve V2 is communicatively connected to the control device 90 via wire or wirelessly and is controlled by the control device 90. For example, the second fuel valve V2 may be a ball valve. The second fuel valve V2 is not limited to a ball valve and may include any mechanism that can open and close the fuel conduit L1.
[0022] A vent pipe L2 is connected to the fuel conduit L1 between the first fuel valve V1 and the second fuel valve V2. For example, the vent pipe L2 is connected to an ammonia disposal device (not shown), such as a water abatement tank or a flare stack.
[0023] A vent valve V3 is provided in the vent pipe L2. The vent valve V3 opens and closes the vent pipe L2. The vent valve V3 is communicatively connected to the control device 90 via wire or wirelessly and is controlled by the control device 90. For example, in this embodiment, the second fuel valve V2 and the vent valve V3 may be operated simultaneously by a single driving device. In other embodiments, the second fuel valve V2 and the vent valve V3 may be operated by separate driving devices. For example, the vent valve V3 may be a ball valve. The vent valve V3 is not limited to a ball valve and may include any mechanism capable of opening and closing the vent pipe L2.
[0024] The fuel conduit L1 is in fluid communication with the first gas conduit L3. The first gas conduit L3 supplies the first gas g1 to the fuel conduit L1. The first gas conduit L3 is connected to the fuel conduit L1 at a position downstream of the second fuel valve V2. In this embodiment, the first gas conduit L3 is connected to a junction pipe L5 and is connected to the fuel conduit L1 via the junction pipe L5. In other embodiments, the first gas conduit L3 may be directly connected to the fuel conduit L1.
[0025] The first gas g1 is a gas inert to ammonia. For example, the first gas g1 may be nitrogen. The first gas g1 is not limited to nitrogen. For example, the first gas conduit L3 may be connected to a first gas supply source (not shown), such as a tank or a nitrogen production device. For example, the first gas supply source may be a tank that stores gaseous nitrogen. The first gas supply source is not limited to a tank.
[0026] A first gas valve V4 is provided in the first gas conduit L3. The first gas valve V4 opens and closes the first gas conduit L3. The first gas valve V4 is communicably connected to the control device 90 via wire or wirelessly and is controlled by the control device 90. For example, the first gas valve V4 may be a ball valve. The first gas valve V4 is not limited to a ball valve and may include any mechanism capable of opening and closing the first gas conduit L3.
[0027] The fuel conduit L1 is in fluid communication with a second gas conduit L4. The second gas conduit L4 supplies a second gas g2 to the fuel conduit L1. The second gas conduit L4 is connected to the fuel conduit L1 at a position downstream of the second fuel valve V2. In this embodiment, the second gas conduit L4 is connected to a junction pipe L5 and is connected to the fuel conduit L1 via the junction pipe L5. In other embodiments, the second gas conduit L4 may be connected directly to the fuel conduit L1.
[0028] The second gas g2 is a gas that is inert with respect to the first gas g1. For example, the second gas g2 may be a gas that is cheaper than the first gas g1. For example, the second gas g2 may be air, specifically, ambient air. The second gas is not limited to air. For example, the second gas conduit L4 may be connected to a second gas supply source such as a compressor (not shown). For example, the compressor may draw in ambient air and send the drawn air to the second gas conduit L4. The second gas supply source is not limited to a compressor.
[0029] A second gas valve V5 is provided in the second gas conduit L4. The second gas valve V5 opens and closes the second gas conduit L4. The second gas valve V5 is communicably connected to the control device 90 via wire or wirelessly and is controlled by the control device 90. For example, the second gas valve V5 may be a ball valve. The second gas valve V5 is not limited to a ball valve and may include any mechanism capable of opening and closing the second gas conduit L4.
[0030] The fuel conduit L1 may be provided with a pressure sensor Se that measures the pressure inside the fuel conduit L1. The pressure sensor Se is communicably connected to the control device 90 via wire or wirelessly, and transmits measurement data to the control device 90.
[0031] The control device 90 controls the combustion system 100. The control device 90 includes components such as a processor 90a, a storage device 90b, and a connector 90c, which are connected to one another via a bus. For example, the processor 90a includes a central processing unit (CPU). For example, the storage device 90b includes a hard disk, a read-only memory (ROM) in which programs and the like are stored, and a random access memory (RAM) as a work area. The control device 90 is connected to each component of the combustion system 100 via the connector 90c so as to be able to communicate with them via a wired or wireless connection. For example, the control device 90 may further include other components such as a display device such as a liquid crystal display or a touch panel, and an input device such as a keyboard, buttons, or a touch panel. For example, the operation of the control device 90 may be realized by the processor 90a executing a program stored in the storage device 90b.
[0032] Next, the operation of the combustion system 100 while the ammonia gas ga is being combusted will be described.
[0033] During operation of the boiler 1 (burner 12), the processor 90a opens the first fuel valve V1 and the second fuel valve V2 and closes the vent valve V3, the first gas valve V4, and the second gas valve V5. The fuel conduit L1 supplies ammonia gas ga to the burner 12. The burner 12 injects the ammonia gas ga into the combustion space S, where the ammonia gas ga is combusted. For example, the combustion gas may be used to heat water to steam.
[0034] Next, the operation of the combustion system 100 when the boiler 1 is stopped will be described.
[0035] Fig. 2 is a flowchart showing a method for purging ammonia gas g a. For example, the operation shown in Fig. 2 may be initiated when a command to shut down boiler 1 is input to control device 90. Referring to Fig. 1, before the operation shown in Fig. 2, first fuel valve V1 and second fuel valve V2 are open, and vent valve V3, first gas valve V4, and second gas valve V5 are closed.
[0036] 2, the processor 90a closes the second fuel valve V2 to stop the supply of ammonia gas ga to the burner 12 (step S100). At the same time, in step S100, the vent valve V3 is opened.
[0037] Next, the processor 90a opens the first gas valve V4 to supply the first gas g1 to the fuel conduit L1 (step S102).
[0038] 1, the first gas g1 pushes the ammonia gas ga remaining in the section of the fuel conduit L1 downstream of the second fuel valve V2 into the combustion space S via the burner 12. When the ammonia gas ga is no longer pushed out from the burner 12, combustion stops. Note that the combustion may be stopped by any fire extinguishing means before the operation shown in FIG.
[0039] Referring to FIG. 2, the processor 90a then determines whether or not a predetermined amount or more of the ammonia gas ga in the fuel conduit L1 has been replaced with the first gas g1 (step S104).
[0040] 1, for example, the length of time required to replace a predetermined amount or more of ammonia gas g in the fuel conduit L1 with the first gas g1 may be determined in advance by experiment or analysis and stored in the memory device 90b. For example, the predetermined amount of ammonia gas g may be determined so that the remaining ammonia gas g does not burn when the second gas g2 is supplied. In step S104, if the elapsed time since the first gas valve V4 was opened exceeds the length of time stored in the memory device 90b, the processor 90a may determine that the ammonia gas g in the fuel conduit L1 has been replaced with the first gas g1.
[0041] 2, if it is determined in step S104 that the ammonia gas ga in the fuel conduit L1 has not been replaced with the first gas g1 in an amount equal to or greater than the predetermined amount (NO), the processor 90a returns to step S104. For example, step S104 may be repeated at predetermined intervals.
[0042] In step S104, if it is determined that a predetermined amount or more of ammonia gas ga in the fuel pipe L1 has been replaced with the first gas g1 (YES), the processor 90a closes the first gas valve V4 to stop the supply of the first gas g1 to the fuel pipe L1 (step S106).
[0043] Subsequently, the processor 90a opens the second gas valve V5 to supply the second gas g2 to the fuel conduit L1 (S108), and then ends the operation.
[0044] 1, the second gas g2 pushes the first gas g1 remaining in the section of the fuel conduit L1 downstream of the second fuel valve V2 into the combustion space S via the burner 12. Therefore, the first gas g1 in the fuel conduit L1 is replaced with the second gas g2.
[0045] According to the above operation, ammonia gas g a is purged from the fuel conduit L1. While the boiler 1 is shut down, the second gas conduit L4 continues to supply the second gas g2 to the fuel conduit L1. This seals the burner 12 and the fuel conduit L1, protecting them from unburned fuel and foreign matter from the combustion space S. Furthermore, if the pressure of the ammonia supply source exceeds a predetermined threshold while the boiler 1 is shut down, excess ammonia gas g a is sent to the ammonia treatment device via the vent valve V3 and the vent pipe L2. Note that while the boiler 1 is shut down, the processor 90a may keep the first fuel valve V1 open, or may close the first fuel valve V1 at any time.
[0046] Next, the operation of the combustion system 100 when starting the operation of the boiler 1 will be described.
[0047] Fig. 3 is a flowchart showing a method for supplying ammonia gas ga. For example, the operations shown in Fig. 3 may be initiated when a command to start operation of the boiler 1 is input to the control device 90. Referring to Fig. 1, before the operations shown in Fig. 3, the second fuel valve V2 and the first gas valve V4 are closed, and the vent valve V3 and the second gas valve V5 are open. The first fuel valve V1 may be closed or open.
[0048] Referring to FIG. 3, the processor 90a closes the second gas valve V5 to stop the supply of the second gas g2 to the fuel conduit L1 (step S200).
[0049] Next, the processor 90a opens the first gas valve V4 to supply the first gas g1 to the fuel conduit L1 (step S202).
[0050] Referring to FIG. 1, the first gas g1 pushes the second gas g2, which remains in the section of the fuel conduit L1 downstream of the second fuel valve V2, into the combustion space S via the burner 12.
[0051] Referring to FIG. 3, the processor 90a then determines whether or not a predetermined amount or more of the second gas g2 in the fuel conduit L1 has been replaced with the first gas g1 (step S204).
[0052] 1, for example, the length of time required to replace a predetermined amount or more of the second gas g2 in the fuel conduit L1 with the first gas g1 may be determined in advance by experiment or analysis and stored in the memory device 90b. For example, the predetermined amount of the second gas g2 may be determined so that the ammonia gas ga does not burn in the fuel conduit L1 when the ammonia gas ga is supplied. In step S204, if the elapsed time since the first gas valve V4 was opened exceeds the length of time stored in the memory device 90b, the processor 90a may determine that the second gas g2 in the fuel conduit L1 has been replaced with the first gas g1.
[0053] 3, if it is determined in step S204 that the second gas g2 in the fuel conduit L1 has not been replaced with the first gas g1 by a predetermined amount or more (NO), the processor 90a returns to step S204. For example, step S204 may be repeated at predetermined intervals.
[0054] In step S204, if it is determined that a predetermined amount or more of the second gas g2 in the fuel pipe L1 has been replaced with the first gas g1 (YES), the processor 90a closes the first gas valve V4 to stop the supply of the first gas g1 to the fuel pipe L1 (step S206).
[0055] Next, the processor 90a opens the second fuel valve V2 to supply ammonia gas ga to the burner 12 (S208), and ends the operation. Also, in step S208, the vent valve V3 is closed at the same time. Also, if the first fuel valve V1 is closed, the processor 90a opens the first fuel valve V1 in step S208.
[0056] According to the above operation, ammonia gas ga is supplied to the burner 12. Referring to Fig. 1, the ammonia gas ga injected from the burner 12 into the combustion space S is ignited by an arbitrary ignition device.
[0057] As described above, the combustion system 100 according to this embodiment includes the burner 12, the fuel conduit L1 connected to the burner 12 and supplying ammonia gas ga to the burner 12, the fuel valve V2 provided in the fuel conduit L1 and opening and closing the fuel conduit L1, the first gas conduit L3 fluidly connected to the fuel conduit L1 between the burner 12 and the fuel valve V2 and supplying a first gas g1 inert to the ammonia gas ga to the fuel conduit L1, and the second gas conduit L4 fluidly connected to the fuel conduit L1 between the burner 12 and the fuel valve V2 and supplying a second gas g2 inert to the first gas g1 to the fuel conduit L1. With this configuration, first, the ammonia gas ga remaining in the fuel conduit L1 can be purged with the first gas g1, and then the first gas g1 remaining in the fuel conduit L1 can be purged with the second gas g2. After purging the first gas g1, the burner 12 and the fuel conduit L1 can be sealed by continuing to supply the second gas g2 to the fuel conduit L1. Therefore, when ammonia gas ga is used as fuel, the gas seal of the piping can be maintained after purging. In addition, by using a gas that is cheaper than the first gas g1 as the second gas g2, the cost of sealing can be reduced.
[0058] Furthermore, in the combustion system 100, the first gas g1 is nitrogen and the second gas g2 is air. With this configuration, the second gas g2 can be obtained at low cost.
[0059] The combustion system 100 also includes a first gas valve V4 provided in the first gas conduit L3 for opening and closing the first gas conduit L3, a second gas valve V5 provided in the second gas conduit L4 for opening and closing the second gas conduit L4, and a control device 90 for controlling the fuel valve V2, the first gas valve V4, and the second gas valve V5. The control device 90 is configured to close the fuel valve V2 to stop the supply of ammonia gas ga to the burner 12 in order to purge the ammonia gas ga from the fuel conduit L1 (step S100), open the first gas valve V4 to supply the first gas g1 to the fuel conduit L1 (step S102), and, after supplying the first gas g1 to the fuel conduit L1, open the second gas valve V5 to supply the second gas g2 to the fuel conduit L1 (step S108). With this configuration, purging and sealing can be automatically performed by the control device 90 when the operation of the burner 12 is stopped.
[0060] Furthermore, in the combustion system 100, the control device 90 is configured to execute the following steps in order to supply ammonia gas ga to the burner 12: close the second gas valve V5 to stop the supply of the second gas g2 to the fuel conduit L1 (step S200), open the first gas valve V4 to supply the first gas g1 to the fuel conduit L1 (step S202), and, after supplying the first gas g1 to the fuel conduit L1, open the fuel valve V2 to supply ammonia gas ga to the burner 12 (step S208). With this configuration, when starting operation of the burner 12, the control device 90 can automatically release the seal and supply ammonia gas ga.
[0061] Furthermore, a method for purging ammonia gas ga in the combustion system 100 according to this embodiment includes closing the fuel valve V2 to stop the supply of ammonia gas ga to the burner 12 (step S100), opening the first gas valve V4 to supply the first gas g1 to the fuel conduit L1 (step S102), and, after supplying the first gas g1 to the fuel conduit L1, opening the second gas valve V5 to supply the second gas g2 to the fuel conduit L1 (step S108). With this configuration, purging and sealing can be performed when the operation of the burner 12 is stopped.
[0062] Furthermore, the method for supplying ammonia gas ga in the combustion system 100 according to this embodiment includes closing the second gas valve V5 to stop the supply of the second gas g2 to the fuel conduit L1 (step S200), opening the first gas valve V4 to supply the first gas g1 to the fuel conduit L1 (step S202), and, after supplying the first gas g1 to the fuel conduit L1, opening the fuel valve V2 to supply ammonia gas ga to the burner 12 (step S208). With this configuration, in addition to performing purging and sealing when the operation of the burner 12 is stopped, it is possible to release the seal and supply ammonia gas ga when the operation of the burner 12 is started.
[0063] Although the embodiments have been described above with reference to the accompanying drawings, the present disclosure is not limited to the above embodiments. It is clear that a person skilled in the art can conceive of various modifications or alterations within the scope of the claims, and it is understood that these also fall within the technical scope of the present disclosure. Furthermore, the steps of the method of the above embodiments do not have to be performed in the order described above, and may be performed in a different order as long as no technical contradiction occurs.
[0064] For example, referring to Figure 2, in the above embodiment, step S102 is started after step S100. In other embodiments, for example, step S102 may be started simultaneously with step S100.
[0065] Similarly, in the above embodiment, step S108 is started after step S106. In other embodiments, for example, step S108 may be started simultaneously with step S106.
[0066] 3, in the above embodiment, step S202 is started after step S200. In other embodiments, for example, step S202 may be started simultaneously with step S200.
[0067] Similarly, in the above embodiment, step S208 is started after step S206. In other embodiments, for example, step S208 may be started simultaneously with step S206.
[0068] The disclosure can promote the use of ammonia, which leads to reduced CO2 emissions, and thereby contribute, for example, to Sustainable Development Goals (SDGs) Goal 7 "Ensure access to affordable, reliable, sustainable and modern energy" and Goal 13 "Take urgent action to combat climate change and its impacts." [Explanation of symbols]
[0069] 12 Burner 90 Control device 100 Combustion System g1 First gas g2 Second gas ga ammonia gas L1 fuel conduit L3 First gas pipeline L4 Second gas pipeline V2 Second fuel valve (fuel valve) V4 1st gas valve V5 Second gas valve
Claims
1. Burner and a fuel conduit connected to the burner for supplying ammonia gas to the burner; a fuel valve provided in the fuel conduit for opening and closing the fuel conduit; a first gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve, the first gas conduit supplying a first gas inert to ammonia gas to the fuel conduit; a second gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve, the second gas conduit supplying a second gas to the fuel conduit, the second gas being inert to the first gas; a first gas valve provided in the first gas conduit for opening and closing the first gas conduit; a second gas valve provided in the second gas conduit for opening and closing the second gas conduit; a control device for controlling the fuel valve, the first gas valve, and the second gas valve, The control device includes: closing the fuel valve to stop the supply of ammonia gas to the burner; opening the first gas valve to supply the first gas to the fuel conduit and the burner; After supplying the first gas to the fuel conduit and the burner, opening the second gas valve to supply the second gas to the fuel conduit and the burner; configured to perform a control device; Equipped with The control device continuing to supply the second gas from the second gas conduit to the fuel conduit and to the burner while the burner is shut off; further configured to perform Combustion system.
2. The first gas is nitrogen and the second gas is air. The combustion system of claim 1 .
3. A burner, a fuel conduit connected to the burner for supplying ammonia gas to the burner; a fuel valve provided in the fuel conduit for opening and closing the fuel conduit; a first gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve, the first gas conduit supplying a first gas inert to ammonia gas to the fuel conduit; a second gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve, the second gas conduit supplying a second gas to the fuel conduit, the second gas being inert to the first gas; a first gas valve provided in the first gas conduit for opening and closing the first gas conduit; a second gas valve provided in the second gas conduit for opening and closing the second gas conduit; a control device for controlling the fuel valve, the first gas valve, and the second gas valve, The control device includes: continuing to supply the second gas from the second gas conduit to the fuel conduit and to the burner while the burner is shut off; configured to perform a control device; Equipped with The control device supplies ammonia gas to the burner. closing the second gas valve to stop the supply of the second gas to the fuel conduit and the burner; opening the first gas valve to supply the first gas to the fuel conduit and the burner; After supplying the first gas to the fuel conduit and the burner, opening the fuel valve to supply ammonia gas to the burner; and further configured to perform Combustion system.
4. The first gas is nitrogen and the second gas is air. The combustion system of claim 3 .
5. 1. A method of purging ammonia gas in a combustion system, comprising: The combustion system includes: Burner and a fuel conduit connected to the burner for supplying ammonia gas to the burner; a fuel valve provided in the fuel conduit for opening and closing the fuel conduit; a first gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve, the first gas conduit supplying a first gas inert to ammonia gas to the fuel conduit; a second gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve, the second gas conduit supplying a second gas to the fuel conduit, the second gas being inert to the first gas; a first gas valve provided in the first gas conduit for opening and closing the first gas conduit; a second gas valve provided in the second gas conduit for opening and closing the second gas conduit; The method comprises: closing the fuel valve to stop the supply of ammonia gas to the burner; opening the first gas valve to supply the first gas to the fuel conduit and the burner; After supplying the first gas to the fuel conduit and the burner, opening the second gas valve to supply the second gas to the fuel conduit and the burner; continuing to supply the second gas from the second gas conduit to the fuel conduit and to the burner while the burner is shut off; A method comprising:
6. 1. A method for supplying ammonia gas in a combustion system, comprising: The combustion system includes: Burner and a fuel conduit connected to the burner for supplying ammonia gas to the burner; a fuel valve provided in the fuel conduit for opening and closing the fuel conduit; a first gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve, the first gas conduit supplying a first gas inert to ammonia gas to the fuel conduit; a second gas conduit in fluid communication with the fuel conduit between the burner and the fuel valve, the second gas conduit supplying a second gas to the fuel conduit, the second gas being inert to the first gas; a first gas valve provided in the first gas conduit for opening and closing the first gas conduit; a second gas valve provided in the second gas conduit for opening and closing the second gas conduit; While the burner is stopped, the second gas continues to be supplied from the second gas conduit to the fuel conduit and the burner; The method comprises: closing the second gas valve to stop the supply of the second gas to the fuel conduit and the burner; opening the first gas valve to supply the first gas to the fuel conduit and the burner; After supplying the first gas to the fuel conduit and the burner, opening the fuel valve to supply ammonia gas to the burner; A method comprising:
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