Calcination system
The calcination system addresses equipment scale and energy challenges by using separate gas inlets to create an O2 concentration gradient, promoting decarbonation and achieving high CO2 concentrations efficiently.
Patent Information
- Application Number
- JP2024104051
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-06-27
- Publication Date
- 2026-01-16
AI Technical Summary
Existing CO2 capture technologies in cement manufacturing facilities face challenges such as the need for large-scale equipment and high energy consumption, and using high O2 concentration combustion gases leads to equipment burnout and reduced CO2 generation.
A calcination system that uses gases with different O2 concentrations supplied from separate inlets to create a concentration gradient, promoting decarbonation while preventing equipment damage and maintaining high CO2 concentrations in the exhaust gas.
The system enables efficient decarbonation of cement raw materials with small-scale equipment, suppressing burnout and achieving high CO2 concentrations in the exhaust gas.
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Figure 2026005588000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a calcination system, and in particular to a calcination system suitable for use in cement manufacturing facilities. [Background technology]
[0002] In recent years, reducing carbon dioxide (CO2) emissions has become an important issue in order to curb global warming. Exhaust gases generated during the cement manufacturing process contain a large amount of CO2. For this reason, technologies for efficiently capturing CO2 are being used in cement manufacturing facilities.
[0003] A widely known CO2 reduction technology that can be applied to exhaust gases from cement manufacturing facilities is the use of absorbents such as amines to absorb and separate the CO2 in the exhaust gases, thereby capturing it as high-concentration CO2. However, the amount of CO2 emitted from cement manufacturing facilities is large, and there are challenges such as the need to introduce large-scale equipment to capture the entire amount, and the large amount of energy required to capture the absorbed CO2.
[0004] If the concentration of CO2 contained in the exhaust gas can be increased, it becomes easier to separate and capture CO2. Furthermore, by reducing the amount of nitrogen and other substances contained in the exhaust gas, the volume of the generated exhaust gas can be relatively reduced, and the equipment required for separating and capturing CO2 can be made smaller.
[0005] One known method for increasing the CO2 concentration in exhaust gas is the technology disclosed in Patent Document 1 below. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2004-292298 Summary of the Invention [Problem to be solved by the invention]
[0007] However, the technology described in Patent Document 1 has a problem in that the equipment becomes large-scale.
[0008] The inventors focused on the fact that a large amount of CO2 is emitted from the calciner in cement production facilities. It is believed that CO2 can be efficiently captured by increasing the CO2 concentration in the gas emitted from the calciner. A specific method is to use gas with an increased O2 concentration instead of air as the combustion gas supplied to the calciner. This method can increase the CO2 concentration in the combustion exhaust gas during cement production. Furthermore, compared to using air as the combustion gas, it is possible to reduce the scale of the equipment for separating and capturing CO2.
[0009] However, when gas with a high O2 concentration is used as combustion gas, the combustion temperature rises too high, exceeding the heat resistance temperature of the furnace walls, causing problems such as burnout of the furnace walls and increased adhesion of molten raw materials (coating).In addition, when the CO2 concentration in the calciner becomes high, the decarbonation reaction of the cement raw materials becomes more difficult to proceed, and the amount of CO2 generated from the raw materials in the calciner decreases at the same temperature and residence time as before.
[0010] In view of the above problems, an object of the present invention is to provide a calcination system that enables the decarbonation reaction of cement raw materials to proceed while suppressing burnout of equipment inside the furnace, and that can obtain gas containing high concentrations of CO2 using small-scale equipment. [Means for solving the problem]
[0011] The calcination system according to the present invention comprises: a combustion furnace equipped with a burner for injecting fuel; a raw material inlet for injecting cement raw materials toward the combustion furnace; a first inlet for supplying a first gas containing O2 toward the combustion furnace; a duct connected to the combustion furnace and through which gas sent from the combustion furnace and the heat-treated cement raw material flow; a second inlet that supplies a second gas having an O2 concentration lower than that of the first gas toward the duct; and a first outlet disposed on the top side of the duct for discharging gas and solids that have flowed through the duct to the outside of the duct.
[0012] According to the calcination system described above, gases (first gas, second gas) having different O2 concentrations are introduced into the system from different locations.
[0013] More specifically, by supplying a first gas with a relatively high O2 concentration to the combustion furnace, fuel is burned in the combustion furnace in an atmosphere in which this first gas exists, creating a high-temperature environment. When the cement raw materials are charged into the high-temperature combustion furnace through the raw material charging port, the cement raw materials are heated and a decarbonation reaction begins, in which the cement raw materials are decomposed into quicklime (CaO) and carbon dioxide (CO2).
[0014] The cement raw materials for which the decarbonation reaction has occurred (or is in progress) are sent to a duct together with the gas in the combustion furnace. Here, a second gas with a relatively lower O2 concentration than the first gas is supplied to the duct. The flow of this second gas causes the cement raw materials after the decarbonation reaction to flow through the duct and be discharged from the first outlet. At this time, the CO2 produced by the decarbonation reaction is also discharged from the first outlet.
[0015] For example, by using a gas having a higher CO concentration than the first gas as the second gas, the CO concentration contained in the gas discharged from the first outlet (hereinafter referred to as "calcination exhaust gas") can be maintained at a high concentration. Conversely, by using a gas having a lower CO concentration than the second gas as the first gas, it is possible to prevent inhibition of the progress of the decarbonation reaction of the cement raw materials.
[0016] In this way, with the above configuration, the first gas and the second gas, which have different compositions, are supplied from different locations, and therefore a concentration gradient of substances such as O2 can be formed within the internal space formed by the combustion furnace and the duct. This allows calcination without increasing the O2 concentration in the entire internal space more than necessary, preventing excessively high temperatures and preventing damage to the equipment.
[0017] The first gas may be blown into the combustion furnace through the first inlet so as to form a swirling flow in the furnace, thereby sufficiently mixing the first gas and the cement raw materials to facilitate the reaction and enhance the function of protecting the furnace wall.
[0018] The O2 concentration of the first gas is preferably 30% by volume or more, more preferably 40% by volume or more, and particularly preferably 50% by volume or more. The first gas may also be a mixed gas containing O2 and CO2. In this case, the CO2 concentration of the first gas is preferably 70% by volume or less, more preferably 60% by volume or less, and particularly preferably 50% by volume or less.
[0019] When the first gas is a mixed gas containing O2 and CO2, the composition ratio of the first gas can be adjusted by adjusting the mixing ratio of the third gas whose main component is O2 and the fourth gas whose main component is CO2.
[0020] in particular, The calcination system comprises: a first flow rate regulator capable of adjusting a mixing ratio of a third gas whose main component is O2 and a fourth gas whose main component is CO2; a first pipe connecting the first flow regulator and the first inlet, The gas that has passed through the connecting point between the first flow regulator and the first pipe may be led to the first inlet as the first gas after flowing through the first pipe.
[0021] The second gas may be a mixed gas containing O2 and CO2. In this case, similar to the first gas, the composition ratio of the second gas can be adjusted by adjusting the mixing ratio of the third gas whose main component is O2 and the fourth gas whose main component is CO2.
[0022] in particular, The calcination system comprises: a second flow rate regulator capable of adjusting a mixing ratio of the third gas and the fourth gas independently of the first flow rate regulator; a second pipe connecting the second flow rate regulator and the second inlet, The gas that has passed through the connecting point between the second flow regulator and the second pipe may be led to the second inlet as the second gas after flowing through the second pipe.
[0023] According to the above configuration, the compositions of the first gas and the second gas can be appropriately adjusted, thereby adjusting the temperature of the combustion furnace and the concentration of CO2 contained in the calcination exhaust gas to desired values by adjusting the compositions of the first gas and the second gas according to the type of cement raw material and fuel.
[0024] More particularly, the calcination system comprises: a combustion-supporting gas supply device for supplying the third gas; a third pipe through which the third gas supplied from the combustion supporting gas supply device flows; a fourth pipe through which the fourth gas containing the calcination exhaust gas discharged through the first discharge port flows; The first flow regulator and the second flow regulator may each be configured to adjust the mixing ratio of the third gas flowing through the third pipe and the fourth gas flowing through the fourth pipe.
[0025] According to the above configuration, by adjusting the mixing ratio of the calcination exhaust gas (fourth gas) with a high CO concentration and the gas (third gas) with a high O concentration supplied from the combustion supporting gas supply device, it is possible to generate the first gas to be blown into the combustion furnace through the first inlet and the second gas to be blown into the duct through the second inlet. In particular, since the calcination exhaust gas has a sufficiently high temperature, by using the gas derived from the calcination exhaust gas as the fourth gas, the temperature inside the duct can be maintained at a temperature environment required for the decarbonation reaction.
[0026] The combustion-supporting gas supplied from the combustion-supporting gas supply device is preferably used as the third gas after being heated by heat exchange with the high-temperature gas supplied from the clinker cooler or the calcination exhaust gas.
[0027] In the above configuration, the calcination system includes a cyclone connected to the first outlet and configured to separate the solids in the duct supplied from the first outlet from the calcination exhaust gas; The calcination exhaust gas discharged from the cyclone may be introduced into the fourth pipe.
[0028] In another aspect, the calcination system further comprises a third flow regulator connected to the second pipe at a position closer to the second inlet than a connection point between the second flow regulator and the second pipe in terms of a flow direction, the third flow regulator being capable of adjusting a mixing ratio between the gas that has passed through the second flow regulator and a fifth gas whose main component is HO; The gas that has passed through the connecting point between the third flow regulator and the second pipe may be led to the second inlet as the second gas after flowing through the second pipe.
[0029] The duct may be a cylindrical body whose vertical length is longer than its horizontal length.
[0030] As described above, the decarbonation reaction of the cement raw materials, which has started to proceed, continues while being transported through the duct. Then, the cement raw materials after the decarbonation reaction are transported through the duct toward the first outlet by the airflow of the second gas, which has a relatively lower O2 concentration than the first gas.
[0031] By configuring the duct as a cylindrical body whose vertical length is longer than its horizontal length, it is possible to prevent the installation area of the equipment from increasing while promoting the decarbonation reaction of the cement raw materials. Various shapes such as an I-shape or an inverted U-shape can be used for this cylindrical body.
[0032] The calcination system comprises: a communication pipe connecting the combustion furnace and the duct; a second discharge port disposed on the bottom side of the combustion furnace and discharging solids and gases in the combustion furnace to the connecting pipe; The second inlet may be disposed at a position vertically below a connection point between the duct and the communication pipe.
[0033] According to the above configuration, the combustion furnace and the duct are connected via a connecting pipe, and therefore the combustion furnace and the duct are not directly connected. Therefore, the location where the second gas, which has a relatively low O2 concentration, is injected is distant from the location where the first gas, which has a relatively high O2 concentration, is injected. This increases the O2 concentration in the atmosphere in the region where the decarbonation reaction of the cement raw materials occurs, allowing for efficient decarbonation.
[0034] In particular, with the above configuration, the decarbonation reaction of the cement raw materials can be sufficiently promoted while the cement raw materials are being transported through the combustion furnace and the connecting pipe. Therefore, even if the second gas supplied into the duct is a gas with a relatively high CO2 concentration, it is unlikely to inhibit the decarbonation reaction of the cement raw materials. As a result, a gas with a high CO2 concentration can be obtained as the calciner exhaust gas discharged to the outside of the duct from the first outlet.
[0035] The raw material inlet and the burner may be disposed on the top side of the combustion furnace.
[0036] According to the above configuration, the cement raw materials are fed into the combustion furnace near the position of the burner flame, which allows the cement raw materials to be heated and decarbonated (endothermic reaction) efficiently, thereby lowering the flame temperature and preventing the furnace from burning out. [Effects of the Invention]
[0037] According to the calcination system of the present invention, even with a small-scale facility, it is possible to suppress burnout of the equipment inside the furnace, and to promote the decarbonation reaction of the cement raw material, thereby obtaining gas containing a high concentration of CO2. [Brief explanation of the drawings]
[0038] [Figure 1] 1 is a diagram schematically illustrating a portion of a clinker production facility including a calcination system according to a first embodiment. [Figure 2] FIG. 4 is a plan view schematically showing an example of an arrangement mode of a first inlet. [Figure 3] FIG. 2 is a block diagram schematically illustrating an example of a method for generating a first gas and a second gas. [Figure 4] FIG. 1 is a block diagram schematically illustrating an example of the configuration of a clinker production facility including a calcination system according to a first embodiment. [Figure 5] FIG. 2 is a block diagram schematically illustrating another example of the configuration of a clinker production facility including the calcination system of the first embodiment. [Figure 6] FIG. 2 is a block diagram schematically illustrating another example of the configuration of a clinker production facility including the calcination system of the first embodiment. [Figure 7] 1 is a diagram schematically illustrating the configuration of a calcination system according to a second embodiment. [Figure 8] FIG. 10 is a block diagram schematically illustrating an example of the configuration of a clinker production facility including a calcination system according to a second embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0039]
[0023] The calcination system according to the present invention will be described below with reference to the accompanying drawings. Note that the drawings are schematic illustrations, and the dimensional ratios of the drawings do not necessarily correspond to the actual dimensional ratios, and the dimensional ratios between the drawings do not necessarily correspond to each other.
[0040] In the following drawings, the flow of gas is schematically indicated by a two-dot chain line with an arrow, and the flow of solids is schematically indicated by a one-dot chain line with an arrow.
[0041] [First embodiment] A first embodiment of a calcination system according to the present invention will be described. Fig. 1 is a diagram schematically illustrating a part of a cement clinker production facility 90 (hereinafter referred to as "clinker production facility 90") that includes a calcination system 1 according to this embodiment. In Fig. 1, the flow of gas is indicated by a two-dot chain line with an arrow, and the flow of solids is indicated by a one-dot chain line with an arrow.
[0042] 1 also shows an XYZ coordinate system in which the vertical direction is the Z direction and the plane perpendicular to the Z direction is the XY plane. In the following description, this XYZ coordinate system will be referenced as appropriate.
[0043] Calcination system 1 is a facility for promoting decarbonation of cement clinker raw material (cement raw material) preheated in a preheater. Fig. 1 shows a configuration in which preheated cement raw material M1 is introduced into calcination system 1 from a cyclone-type preheating device 31, which is part of the preheater, via piping 32.
[0044] 1 , the calcination system 1 includes a combustion furnace 3, a raw material inlet 13 through which cement raw material M1 is introduced toward the combustion furnace 3, a first inlet 11 through which a first gas G1 is supplied toward the combustion furnace 3, a duct 5 connected to the combustion furnace 3, a second inlet 12 through which a second gas G2 is supplied toward the duct 5, and a first outlet 9 through which gas and solids that have flowed through the duct 5 are discharged to the outside of the duct 5. In particular, in the calcination system 1 of this embodiment, a communication pipe 7 is provided between the combustion furnace 3 and the duct 5, and the combustion furnace 3 and the duct 5 are connected via the communication pipe 7.
[0045] In the calcination system 1 of this embodiment shown in Fig. 1, the combustion furnace 3 is provided with a second outlet 14 that discharges solids and gases in the combustion furnace 3 into the connecting pipe 7. The burner 10, the first inlet 11, and the raw material inlet 13 are also provided in the combustion furnace 3.
[0046] In the example of FIG. 1 , the raw material inlet 13 is connected to a pipe 32. The raw material inlet 13 is an inlet for introducing the cement raw material M1, supplied through a cyclone preheating device 31, into the combustion furnace 3. The burner 10 injects fuel (not shown) into the combustion furnace 3, causing the fuel to burn within the combustion furnace 3 and creating a high-temperature environment within the combustion furnace 3. The first inlet 11 is an inlet for introducing a first gas G1 into the combustion furnace 3. The first gas G1 is a gas having a higher O2 concentration than a second gas G2, which will be described later. As a typical example, the first gas G1 has a higher O2 concentration than air and is a mixed gas containing O2 and CO2. As a specific example, the O2 concentration of the first gas G1 is preferably 30% by volume or more, more preferably 40% by volume or more, and particularly preferably 50% by volume or more. The CO2 concentration of the first gas G1 is preferably 70% by volume or less, more preferably 60% by volume or less, and particularly preferably 50% by volume or less.
[0047] Either a mono-fuel burner or a multi-fuel burner can be used as the burner 10. In addition, when the first gas G1 contains pure oxygen or oxygen at an extremely high concentration, a pure oxygen burner can also be used as the burner 10.
[0048] The fuel supplied to the burner 10 is not limited and may be in any state, such as solid, liquid, or gas. More specifically, the fuel used in the burner 10 may be fossil-derived fuel, hydrogen, ammonia, chemical fuels such as hydrocarbons and alcohols, biomass, combustible waste, or a mixture thereof. In particular, it is desirable for this fuel to be carbon-free when produced or discharged. Furthermore, the burner 10 is preferably configured so that the nozzle position can be adjusted according to the temperature inside the combustion furnace 3 and the shape of the flame emitted from the burner 10.
[0049] In the calcination system 1 of this embodiment, as illustrated in Fig. 1, the burner 10, the first inlet 11, and the raw material inlet 13 are all provided on the top side (+Z side) of the combustion furnace 3. Here, the "top side of the combustion furnace 3" may mean a position between the center position in the Z direction of the combustion furnace 3 and the apex position in the Z direction, and closer to the apex position than the center position in the Z direction. More preferably, the "top side of the combustion furnace 3" may mean a region within the upper 1 / 4 of the length (height) of the combustion furnace 3 in the Z direction.
[0050] That is, in the combustion furnace 3, the burner 10 and the first inlet 11 are installed close to each other. The first gas G1 flowing into the combustion furnace 3 from the first inlet 11 has a higher O2 concentration than air, and therefore, when this first gas G1 is supplied to the burner 10, oxy-combustion is carried out on the fuel supplied from the burner 10 on the top side of the combustion furnace 3. As a result, gas with a high CO2 concentration is produced in the combustion furnace 3. In this specification, the term "oxy-combustion" is a concept that encompasses combustion with pure oxygen, combustion with a mixed gas of oxygen and carbon dioxide, and combustion with a mixed gas that contains water vapor in addition to oxygen and carbon dioxide.
[0051] From the viewpoint of increasing the temperature and flow rate of the first gas G1, a heat supply device such as a burner may be installed at the first inlet 11.
[0052] A raw material inlet 13 is provided on the top side of the combustion furnace 3, through which the cement raw material M1 is introduced into the combustion furnace 3. Therefore, the cement raw material M1 is introduced through the raw material inlet 13 toward the region in the combustion furnace 3 where oxyfuel combustion is occurring, i.e., the high-temperature environment region. This initiates a decarbonation reaction in the cement raw material M1. Because the decarbonation reaction is an endothermic reaction, it serves to lower the temperature near the burner 10 where oxyfuel combustion is occurring, thereby preventing burn damage to the burner 10 and the bricks on the top side of the combustion furnace 3.
[0053] The cement raw material M1, which is placed in a high-temperature environment inside the combustion furnace 3 and has begun to undergo a decarbonation reaction, moves in the -Z direction through the combustion furnace 3 along the flow of fuel injected from the burner 10 and the flow of other gases (first gas G1, furnace exhaust gas). The combustion furnace 3 has a second exhaust port 14 on the bottom side (-Z side), and is sent out from the second exhaust port 14 to the connecting pipe 7 together with the furnace exhaust gas.
[0054] The first gas G1 injected into the combustion furnace 3 may form a swirling flow within the combustion furnace 3. FIG. 2 is a plan view schematically showing an example of an arrangement of the first inlets 11. According to the example shown in FIG. 2, the first inlets 11 are installed at two different locations in the circumferential direction, and the first gas G1 is injected toward a position shifted from the axial center. In the example shown in FIG. 2, the first gas G1 is injected while generating a counterclockwise swirling flow when viewed from the +Z side to the -Z direction. The cement raw materials M1 travel through the combustion furnace 3 on the first gas G1 that forms the swirling flow, which promotes mixing of the cement raw materials M1 and the high-temperature gas within the combustion furnace 3 and facilitates the decarbonation reaction within the combustion furnace 3.
[0055] To promote the decarbonation reaction, the cement raw material M1 is heated in the combustion furnace 3 to 830°C or higher, preferably 850°C to 1,100°C, more preferably 880°C to 1,080°C, and particularly preferably 900°C to 1,050°C.
[0056] From this viewpoint, the first gas G1 blown in from the first inlet 11 has a temperature within a range that does not inhibit combustion in the combustion furnace 3. Specifically, the temperature of the first gas G1 is preferably 500°C or higher, more preferably 650°C or higher, and particularly preferably 750°C or higher.
[0057] In the calcination system 1 of this embodiment shown in Fig. 1, the duct 5 is provided with a second inlet 12, a first outlet 9, and a pipe connecting part 16. The pipe connecting part 16 is a part where the connecting pipe 7 is connected to the duct 5. The cement raw material M1 that has moved through the connecting pipe 7 is fed into the duct 5 via the pipe connecting part 16.
[0058] 1, the second inlet 12 is disposed on the bottom side (-Z side) of the duct 5 and is an inlet for blowing the second gas G2 into the duct 5. More specifically, the second inlet 12 is located on the -Z side of the pipe connecting portion 16 and blows the second gas G2 into the duct 5 in the +Z direction. However, it is sufficient that the second gas G2 is blown into the duct 5 through the second inlet 12 in a state in which the second gas G2 has at least a velocity vector component related to the +Z direction, and it is not necessary that the second gas G2 be blown in the +Z direction in the strict sense.
[0059] The cement raw materials M1 sent into the duct 5 through the pipe connection part 16 are carried upward in the duct 5 by the air current of the second gas G2 blown in through the second inlet 12. The cement raw materials M1 have been heated to a high temperature by passing through the combustion furnace 3, and are in a temperature environment in which the decarbonation reaction continues to proceed, so the decarbonation reaction continues to proceed while the cement raw materials M1 are being transported through the connecting pipe 7. Furthermore, if the decarbonation reaction of the cement raw materials M1 is not complete when they are sent into the duct 5, the decarbonation reaction continues to proceed in the duct 5. The flow rate of the second gas G2 blown into the duct 5 from the second inlet 12 may be adjusted to adjust the time the cement raw materials M1 remain in the high-temperature duct 5.
[0060] From the viewpoint of ensuring time for the decarbonation reaction of the cement raw material M1 to occur while it is moving through the duct 5, it is preferable that the duct 5 be a cylindrical body whose length in the vertical direction (Z direction) is longer than its length in the horizontal direction (XY plane direction).
[0061] The second gas G2 has a lower O concentration than the first gas G1, and preferably has a higher CO concentration than the first gas G1. In this case, the duct 5 contains the furnace exhaust gas with a high CO concentration that flows in from the combustion furnace 3 through the connecting pipe 7, the second gas G2 with a high CO concentration, and the CO gas generated by the decarbonation reaction.
[0062] The first outlet 9 is provided on the top side (+Z side) of the duct 5. From this first outlet 9, gas with a high CO2 concentration (calcination exhaust gas GH) that has risen inside the duct 5 and the cement raw material M1 in which a decarbonation reaction has occurred (hereinafter referred to as the "decarbonated raw material M1" as appropriate) are discharged. In this specification and drawings, to avoid complexity, the same symbol M1 is used to denote both the "cement raw material" introduced from the raw material inlet 13 and the "decarbonated raw material" after the decarbonation reaction has occurred by heating in the calcination system 1. The expression "decarbonated raw material M1" is used to clearly indicate that the cement raw material M1 is in a state after the decarbonation reaction has progressed.
[0063] In the calcination system 1 of this embodiment, the second gas G2 is a gas injected into the duct 5, which is a separate facility from the combustion furnace 3, and therefore does not necessarily require oxygen for combustion. Therefore, unlike the first gas G1, the second gas G2 can have a low O2 concentration. On the other hand, if the second gas G2 has a low CO2 concentration, it will lead to a decrease in the CO2 concentration of the gas in the duct 5. From this perspective, a gas with a lower O2 concentration than the first gas G1 and a higher CO2 concentration than the first gas G1 is preferably used as the second gas G2. In a typical example, the main component of the second gas G2 is CO2. Here, the term "main component" refers to the component with the highest component ratio.
[0064] As described above, in the calcination system 1 of this embodiment, the heated cement raw materials M1 discharged from the combustion furnace 3 are transported through the connecting pipe 7 and then introduced into the duct 5. This allows the decarbonation reaction to proceed while the raw materials M1 are transported through the connecting pipe 7. However, since it is possible that the decarbonation reaction may not be complete even when the raw materials M1 reach the duct 5, the second gas G2 blown into the duct 5 is preferably at a high temperature within a range that does not inhibit the decarbonation reaction. Specifically, the second gas G2 is preferably at a temperature of 850°C or higher, more preferably at a temperature of 860°C or higher, and particularly preferably at a temperature of 875°C or higher. On the other hand, if the second gas G2 is too hot, the raw materials M1 may melt and adhere to the wall of the duct 5, causing blockage, or the adhered raw materials M1 may peel off and damage the wall of the duct 5. Therefore, from the viewpoints of equipment maintenance and stable operation, the temperature of the second gas is preferably at a temperature of 1,200°C or lower, more preferably at a temperature of 1,100°C or lower.
[0065] The calcination system 1 shown in Fig. 1 includes a cyclone 21 connected to the first discharge port 9. The cyclone 21 separates the decarbonated raw material M1 discharged through the first discharge port 9 from the calcination exhaust gas GH. In detail, the cyclone 21 separates the decarbonated raw material M1 discharged from the calcination system 1 from the calcination exhaust gas GH by centrifugation or the like.
[0066] The separated decarbonated raw material M1 is supplied to at least one of a preheater 30 and a rotary kiln 80 (described later with reference to FIG. 4) while maintaining the high temperature after heating. The separated calcination exhaust gas GH is sent to a pipe 71 (described later with reference to FIG. 4).
[0067] As shown in FIG. 1, the duct 5 may be provided with a coating discharge port 18 on the bottom side (-Z side). It is known that when the cement raw material M1 contains sulfur (S) or chlorine (Cl), viscous sulfur compounds and chlorine compounds are generated in a high-temperature environment, causing coating. As described above, a high-temperature environment is created inside the duct 5, so it is expected that coating will occur inside the duct 5. As the coating grows and becomes larger in diameter, it will fall under its own weight. Therefore, by providing the bottom side of the duct 5 with a coating discharge port 18 that can be freely opened and closed, the coating can be discharged to the outside of the duct 5 through the coating discharge port 18.
[0068] Fig. 3 is a block diagram showing a schematic example of a method for generating the first gas G1 and the second gas G2. In the example shown in Fig. 3, the first gas G1 and the second gas G2 are both generated by using a third gas G3 whose main component is O2 and a fourth gas G4 whose main component is CO2 and adjusting the mixing ratio between these gases.
[0069] The third gas supply source 23 delivers a third gas G3 to the pair of third pipes (43, 43). The fourth gas supply source 24 delivers a fourth gas G4 to the fourth pipe 44. In the example shown in FIG. 3, the fourth gas G4 flows in through a pair of branch pipes (44a, 44b) branched from the fourth pipe 44.
[0070] The branch pipe 44a and one of the third pipes 43 are connected to each other, and the mixing ratio between the third gas G3 flowing in through the third pipe 43 and the fourth gas G4 flowing in through the branch pipe 44a is adjusted by a first flow rate regulator 51. The branch pipe 44b and the other third pipe 43 are connected to each other, and the mixing ratio between the third gas G3 flowing in through the third pipe 43 and the fourth gas G4 flowing in through the branch pipe 44b is adjusted by a second flow rate regulator 52.
[0071] The specific configuration and installation manner of the first flow regulator 51 and the second flow regulator 52 are arbitrary as long as they can independently adjust the mixing ratio of the supplied third gas G3 and fourth gas.
[0072] The gas obtained by mixing the third gas G3 and the fourth gas G4 at a mixing ratio set by the first flow regulator 51 flows through the first pipe 41. This first pipe 41 is connected to the first inlet 11. In other words, the gas flowing through the first pipe 41 corresponds to the first gas G1.
[0073] The gas obtained by mixing the third gas G3 and the fourth gas G4 at the mixing ratio set by the second flow regulator 52 flows through the second pipe 42. This second pipe 42 is connected to the second inlet 12. In other words, the gas flowing through the second pipe 42 corresponds to the second gas G2.
[0074] 3, the first flow rate regulator 51 and the second flow rate regulator 52 adjust the mixing ratio of the third gas G3 and the fourth gas G4, thereby enabling adjustment of the O2 concentration and the CO2 concentration in the first gas G1 injected into the combustion furnace 3 through the first inlet 11 and the second gas G2 injected into the duct 5 through the second inlet 12. For example, the O2 concentration and the CO2 concentration in the first gas G1 and the second gas G2 can be easily adjusted depending on the type of cement raw material M1 and the raw materials fed from the burner 10. This allows the compositions of the first gas G1 and the second gas G2 to be adjusted depending on the type of cement raw material M1 and the fuel fed from the burner 10, making it possible to adjust the temperature of the combustion furnace 3 and the concentration of CO2 contained in the calcination exhaust gas GH to desired values.
[0075] In this specification, the term "mixture ratio" is intended to include the case where one gas is 100% and the other gas is 0%. In other words, a gas (a mixed gas for convenience) in which the third gas G3 is 100% and the fourth gas G4 is 0% may be used as the first gas G1. Similarly, a gas (a mixed gas for convenience) in which the third gas G3 is 0% and the fourth gas G4 is 100% may be used as the second gas G2. In other words, in this specification, a gas in which the third gas G3 and the fourth gas G4 are 100% and the other is 0% may also be referred to as a "mixture gas."
[0076] The third gas supply source 23 may be any gas supply source that supplies the third gas G3 whose main component is O. For example, the third gas supply source 23 may be a cylinder storing O gas, or a combustion-supporting gas supply device 54 described later with reference to FIG.
[0077] The fourth gas supply source 24 may be any gas supply source that supplies the fourth gas G4 whose main component is CO2, and the form thereof is not limited. For example, it may be a cylinder in which CO2 gas is stored, or a pipe through which exhaust gas containing a high concentration of CO2 flows. As described above, the exhaust gas (calcination exhaust gas GH) from the calcination system 1 contains a high concentration of CO2, and therefore the pipe through which this calcination exhaust gas GH flows can be used as the fourth gas supply source 24. This configuration will be described later with reference to FIG. 4.
[0078] FIG. 4 is a diagram schematically illustrating an example of the configuration of a clinker production facility 90 including the calcination system 1 of this embodiment.
[0079] 4 includes a preheater 30 that preheats the cement raw material M1, a rotary kiln 80 that calcines the preheated cement raw material M1 to obtain cement clinker, and the calcination system 1 described above that promotes decarbonation of the cement raw material M1. The clinker production facility 90 also includes a clinker cooler 83 that is disposed on the kiln front section 82 side of the rotary kiln 80 and that cools the obtained cement clinker.
[0080] The preheater 30 is configured to include a plurality of cyclone-type preheating devices, and the cement raw material M1 charged through the raw material inlet 39 passes through the cyclone-type preheating devices sequentially, whereby the raw material M1 is preheated by heat exchange with the high-temperature exhaust gas from the rotary kiln 80. As described above with reference to FIG. 1, a portion of the preheated cement raw material M1 is introduced from the cyclone-type preheating device 31, which is part of the preheater 30, through the piping 32 into the calcination system 1. Another portion of the preheated cement raw material M1 is sent into the rotary kiln 80 from the kiln end 81 side.
[0081] The clinker production facility 90 shown in Fig. 4 is equipped with a combustion-supporting gas supply device 54. As the combustion-supporting gas supply device 54, for example, an air separation device that separates oxygen from air GA can be used. This combustion-supporting gas supply device 54 corresponds to the third gas supply source 23 described above with reference to Fig. 3. In other words, the combustion-supporting gas supply device 54 delivers a third gas G3 whose main component is O2 through the third pipe 43.
[0082] A pipe 71 is connected to the cyclone 21 provided in the calcination system 1, and calcination exhaust gas GH having a high temperature and a high CO2 concentration flows through this pipe 71. The calcination exhaust gas GH may contain a portion of the cement raw material M1 (more specifically, the decarbonated raw material M1) in the form of extremely fine dust. For this reason, in the example shown in Fig. 4, the calcination exhaust gas GH is passed through a dust collector 62. The solid components collected by the dust collector 62 may be returned to the cement raw material M1.
[0083] A part of the calcination exhaust gas GH is sent to, for example, a CO2 recovery facility (not shown) through a pipe 72, where the CO2 is recovered. Since the calcination exhaust gas GH has an extremely high CO2 concentration, it is possible to recover a large amount of CO2 with a small facility.
[0084] 4, a portion of the calcination flue gas GH is fed as the fourth gas G4 through the fourth pipe 44. As described above with reference to FIG. 3, the branch pipe 44a branched from the fourth pipe 44 merges with one of the third pipes 43 via the first flow regulator 51, and the branch pipe 44b branched from the fourth pipe 44 merges with the other of the third pipes 43 via the second flow regulator 52. The third gas G3 and the fourth gas G4 are mixed according to the mixing ratio set by the respective flow regulators (51, 52). That is, in the clinker production facility 90 shown in FIG. 4, the calcination system 1 that generates the calcination flue gas GH that can be used as the fourth gas G4, or the pipe 71 through which the calcination flue gas GH flows, corresponds to the fourth gas supply source 24 in FIG. 3.
[0085] The gas in which the mixture ratio of the third gas G3 and the fourth gas G4 has been adjusted by the first flow rate regulator 51 is heated through the heat exchanger 63 and the heat exchanger 61, and then blown into the combustion furnace 3 as the first gas G1. Meanwhile, the gas in which the mixture ratio of the third gas G3 and the fourth gas G4 has been adjusted by the second flow rate regulator 52 is heated through the heat exchanger 63 and the heat exchanger 61, and then blown into the duct 5 as the second gas G2.
[0086] The heat exchanger 63 exchanges heat between high-temperature air GA, which has been heated by heat exchange with the cement clinker in the clinker cooler 83 and flows through the pipe 73, and a mixed gas of a third gas G3 and a fourth gas G4 mixed at a mixing ratio set by the flow rate regulators (51, 52). The heat exchanger 61 exchanges heat between the mixed gas and high-temperature calcination exhaust gas GH, which flows through the pipe 71. Note that the clinker production facility 90 preferably includes the heat exchangers 61 and 63, but the embodiment thereof is arbitrary as long as suitable temperatures can be achieved for the first gas G1 and the second gas G2.
[0087] For example, if the second gas G2 containing a relatively large amount of the fourth gas G4 has already attained a sufficiently high temperature, it may be introduced into the duct 5 without passing through a heat exchanger. As another example, since the third gas G3 immediately after being sent out from the combustion supporting gas supply device 54 is expected to be at an extremely low temperature compared to the fourth gas G4, it may be heated in advance by heat exchange with the calcination exhaust gas GH or the high-temperature air from the clinker cooler 83 before being mixed with the fourth gas G4.
[0088] Note that water vapor may be mixed with either or both of the first gas G1 and the second gas G2. In this case, a pipe connected to a water vapor supply device may be joined with either or both of the first pipe 41 and the second pipe 42 shown in FIG.
[0089] 5, water QW may be introduced through a pipe 93 and heated by a heat exchanger 63 and a boiler 91 to generate steam. In the example shown in FIG. 5, a fifth gas G5 mainly composed of steam generated in the boiler 91 is joined to the gas flowing through the second pipe 42, with the mixture ratio adjusted by a third flow regulator 92. The gas that has passed through the joint between the third flow regulator 92 and the second pipe 42 flows through the second pipe 42 and is then introduced to the second inlet 12 as the second gas G2. In this case, the second gas G2 is a gas containing at least H2O and CO2 and may further contain O2.
[0090] As another example, as shown in Fig. 6, a clinker production facility 90 includes a condenser 94 for lowering the temperature of the combustion exhaust gas GH flowing through the pipe 72. Water QW is supplied to the condenser 94 as a refrigerant, and the hot water heated by passing through the condenser 94 is introduced into a boiler 91 via a pipe 95. As in the clinker production facility 90 described above with reference to Fig. 5, a fifth gas G5 mainly composed of water vapor generated in the boiler 91 is joined to the gas flowing through the second pipe 42 with the mixing ratio adjusted by a third flow rate regulator 92.
[0091] [Second embodiment] A second embodiment of the calcination system according to the present invention will be described, focusing on the differences from the first embodiment. Figure 7 is a diagram that schematically illustrates the calcination system 1 of this embodiment, following Figure 1.
[0092] Similar to the calcination system 1 of the first embodiment, the calcination system 1 of this embodiment includes a combustion furnace 3, a raw material inlet 13 through which cement raw material M1 is introduced toward the combustion furnace 3, a first inlet 11 through which a first gas G1 is supplied toward the combustion furnace 3, a duct 5 connected to the combustion furnace 3, a second inlet 12 through which a second gas G2 is supplied toward the duct 5, and a first outlet 9 through which the gas and solids that have flowed through the duct 5 are discharged to the outside of the duct 5. On the other hand, the calcination system 1 of this embodiment differs from the first embodiment in that the combustion furnace 3 and the duct 5 are directly connected without including a connecting pipe 7.
[0093] In the calcination system 1 of this embodiment shown in Figure 7, the raw material inlet 13 is provided in the duct 5, but this illustration is merely an example. As another example, the raw material inlet 13 may be provided in the combustion furnace 3.
[0094] In the calcination system 1 of this embodiment shown in Fig. 7, a chute 8 for discharging coating is provided on the bottom side of the combustion furnace 3. A first inlet 11 is provided on this chute 8, and a first gas G1 is supplied from the chute 8 side toward the combustion furnace 3. However, the first inlet 11 only needs to be positioned so that the first gas G1 can be supplied toward the combustion furnace 3, and may be provided in the combustion furnace 3, for example.
[0095] In the calcination system 1 of this embodiment shown in Fig. 7, the second inlet 12 is provided in the duct 5. The cement raw material M1 heated in the high-temperature environment created by the combustion furnace 3 is transported to the first outlet 9 by the airflow of the second gas G2 supplied from the second inlet 12.
[0096] In this embodiment, unlike the first embodiment, the connection pipe 7 is not provided, and therefore the decarbonation reaction of the cement raw materials M1 is unlikely to be completed by the time the cement raw materials M1 are sent into the duct 5. For this reason, the decarbonation reaction of the cement raw materials M1 continues to progress even while the cement raw materials M1 are being transported through the duct 5. Therefore, the second gas G2 is preferably at a temperature that does not inhibit the progress of the decarbonation reaction of the cement raw materials M1, and in detail, as described above in the section on the first embodiment, the second gas G2 is preferably at a temperature of 850°C or higher, more preferably at a temperature of 860°C or higher, and particularly preferably at a temperature of 875°C or higher.
[0097] The configurations of the calcination system 1 of the first embodiment and the clinker production facility 90 including the same, which have been described above with reference to Figures 2 to 6, are also applicable to the calcination system 1 of this embodiment. Figure 8 is a diagram schematically showing a clinker production facility 90 including the calcination system 1 of this embodiment, following Figure 4. The aspects shown in Figures 5 to 6 can also be applied to the calcination system 1 of this embodiment.
[0098] In the calcination system 1 of this embodiment, the composition ratio of the first gas G1 and the second gas G2, including the O2 concentration, may also be appropriately adjusted. This allows the compositions of the first gas G1 and the second gas G2 to be adjusted according to the cement raw material M1 and the type of fuel injected from the burner 10, so that the temperature of the combustion furnace 3 and the concentration of CO2 contained in the calcination exhaust gas GH can be set to desired values.
[0099] The rest of the system is the same as the calcination system 1 of the first embodiment, so the explanation will be omitted.
[0100] [Another embodiment] In each of the above embodiments, a heat source supplying device for the purpose of heat insulation may be installed in the duct 5. A known heat source such as an electric heater may be used as the heat source supplying device. In the first embodiment, the heat source supplying device may be installed in the connecting pipe 7. [Explanation of symbols]
[0101] 1: Calcination system 3: Combustion furnace 5: Duct 7: Connecting piping 8: Shoot 9:First outlet 10: Burner 11:First inlet 12:Second inlet 13: Raw material input port 14:Second outlet 16: Pipe connection part 18: Coaching outlet 21: Cyclone 23: Third gas supply source 24: Fourth gas supply source 30: Preheater 31: Cyclone preheating device 32: Piping 39: Raw material input port 41:First piping 42:Second piping 43:Third piping 44:Fourth piping 44a: Branch piping 44b: Branch piping 51:First flow regulator 52:Second flow regulator 54: Combustion-supporting gas supply device 61:Heat exchanger 62: Dust collector 63:Heat exchanger 71: Piping 72: Piping 73: Piping 80: Rotary kiln 81: Bottom of the kiln 82: Front of the kiln 83: Clinker cooler 90: Cement clinker manufacturing facility 91: Boiler 92:Third flow regulator 93: Piping 94: Condenser 95: Piping G1: First Gas G2: Second gas G3: Third gas G4: Fourth Gas G5: Fifth Gas GA: Air GH: Calcination exhaust gas M1: Cement raw material QW: Water
Claims
1. a combustion furnace equipped with a burner for injecting fuel; a raw material inlet for injecting cement raw materials toward the combustion furnace; O is directed toward the combustion furnace 2 a first inlet for supplying a first gas comprising: a duct connected to the combustion furnace and through which gas sent from the combustion furnace and the heat-treated cement raw material flow; The first gas is O 2 a second inlet for supplying a second gas having a lower concentration toward the duct; and a first outlet for discharging the gas and solids that have flowed through the duct to the outside of the duct.
2. The main component is O 2 a third gas whose main component is CO 2 a first flow rate regulator capable of adjusting a mixing ratio of the first gas with the fourth gas; a first pipe connecting the first flow regulator and the first inlet, 2. The calcination system according to claim 1, wherein the gas that has passed through the connection point between the first flow regulator and the first pipe flows through the first pipe and is then introduced into the first inlet as the first gas.
3. a second flow rate regulator capable of adjusting a mixing ratio of the third gas and the fourth gas independently of the first flow rate regulator; a second pipe connecting the second flow rate regulator and the second inlet, 3. The calcination system according to claim 2, wherein the gas that has passed through the connection point between the second flow regulator and the second pipe flows through the second pipe and is then introduced into the second inlet as the second gas.
4. a combustion-supporting gas supply device for supplying the third gas; a third pipe through which the third gas supplied from the combustion supporting gas supply device flows; a fourth pipe through which the fourth gas containing the calcination exhaust gas discharged through the first discharge port flows; 4. The calcination system according to claim 3, wherein the first flow rate regulator and the second flow rate regulator are configured to be able to adjust a mixing ratio of the third gas flowing through the third pipe and the fourth gas flowing through the fourth pipe, respectively.
5. a cyclone connected to the first outlet and configured to separate the solids in the duct supplied from the first outlet from the calcination exhaust gas; The calcination system according to claim 4, wherein the calcination exhaust gas discharged from the cyclone is introduced into the fourth pipe.
6. The gas is connected to the second pipe at a position closer to the second inlet than the connecting point between the second flow regulator and the second pipe in the flow direction, and the gas that has passed through the second flow regulator and the main component is H 2 a third flow rate regulator capable of adjusting a mixing ratio with a fifth gas which is O; 4. The calcination system according to claim 3, wherein the gas that has passed through the connection point between the third flow regulator and the second pipe flows through the second pipe and is then introduced into the second inlet as the second gas.
7. 2. The calcination system according to claim 1, wherein the duct is a cylindrical body whose vertical length is longer than its horizontal length.
8. a communication pipe connecting the combustion furnace and the duct; a second discharge port disposed on the bottom side of the combustion furnace and discharging solids and gases in the combustion furnace to the connecting pipe; The calcination system according to any one of claims 1 to 7, wherein the second inlet is disposed at a position vertically below a connection point between the duct and the connecting pipe.
9. 9. The calcination system according to claim 8, wherein the raw material inlet and the burner are disposed on the top side of the combustion furnace.
Citation Information
Patent Citations
Method and apparatus for separating and recovering carbon dioxide
JP2004292298A