Blast furnace operation methods and ancillary equipment
By injecting preheated gas and optimizing gas composition in oxygen blast furnaces, the method addresses the challenge of achieving high molten iron temperatures and reduced carbon dioxide emissions, ensuring stable operation.
Patent Information
- Application Number
- JP2024529148
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-04-07
- Filing Date
- 2024-02-14
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2044-02-14
AI Technical Summary
Existing blast furnace operation methods struggle to achieve both significant carbon dioxide emissions reduction and high molten iron temperature stabilization, particularly in oxygen blast furnaces with large methane gas injection, due to insufficient heat transfer and reduced blast gas flow rates.
Injecting preheated gas into the shaft or belly of the blast furnace and adjusting its heat quantity based on methane gas injection levels, using a method that includes generating recycled methane gas and optimizing oxygen and methane concentrations, along with preheating gas injection to maintain sufficient heat input.
Achieves high molten iron temperatures and stable operation while significantly reducing carbon dioxide emissions by optimizing heat input and gas composition in oxygen blast furnaces.
Smart Images

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Figure 0007718592000014
Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for operating a blast furnace and ancillary equipment. [Background technology]
[0002] In recent years, there has been a strong demand for reducing carbon dioxide (CO2) emissions against the backdrop of global environmental issues. Therefore, low reducing agent ratio (RAR) operation is required for blast furnaces installed in steelworks. In a typical blast furnace, hot air (air heated to approximately 1200°C) is blown into the blast furnace through the tuyere as blast gas. This causes the oxygen in the hot air to react with the reducing agents, coke and pulverized coal, generating carbon monoxide (CO) gas and hydrogen (H2) gas. These CO and H gases then reduce the iron ore charged into the blast furnace. The reduction reaction of the iron ore also generates carbon dioxide. The blast gas is blown into the blast furnace through the tuyere and serves to gasify the coke and pulverized coal inside the blast furnace.
[0003] One proposed technology for reducing carbon dioxide emissions in blast furnace operation involves reforming carbon monoxide and carbon dioxide contained in by-product gases emitted from a blast furnace or the like to produce hydrocarbons such as methane and ethanol, and then reintroducing the hydrocarbons into the blast furnace as reducing agents. For example, Patent Document 1 describes a method for operating a blast furnace, including a step (A) of separating and recovering CO2 and / or CO from a mixed gas containing CO2 and / or CO, a step (B) of adding hydrogen to the separated and recovered CO2 and / or CO and converting the CO2 and / or CO to CH4, a step (C) of separating and removing HO from the gas that has undergone step (B), and a step (D) of injecting the gas that has undergone step (C) into the blast furnace. Patent Document 2 also describes a method for operating a blast furnace, including separating CO2 from the exhaust gas of a combustion furnace that uses blast furnace gas as part or all of its fuel, reforming the separated CO2 into methane, and injecting the resulting reducing gas into the blast furnace. Patent Document 3 also describes a method for operating a blast furnace, which includes a step of generating regenerated methane gas from by-product gas discharged from the blast furnace, and a step of injecting a blast gas and a reducing agent into the blast furnace through the tuyere of the blast furnace, in which oxygen gas is used as the blast gas and regenerated methane gas is used as at least a part of the reducing agent. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2011-225969 [Patent Document 2] Japanese Patent Application Laid-Open No. 2014-005510 [Patent Document 3] International Publication No. 2021 / 106578 [Patent Document 4] Japanese Patent Application Publication No. 63-169310 [Non-patent literature]
[0005] [Non-Patent Document 1] Sato et al., Kawasaki Steel Technical Report, vol. 29 (1997), pp. 30-36 Summary of the Invention [Problem to be solved by the invention]
[0006] In the blast furnace operation methods described in Patent Documents 1 and 2, if the amount of methane gas injected into the blast furnace as a reducing agent exceeds a predetermined value, operational problems such as insufficient heat transfer in the lower part of the blast furnace, increased pressure loss, and poor slag discharge may occur. Therefore, in order to operate the blast furnace stably, it is necessary to limit the amount of methane gas injected, which limits the effectiveness of reducing carbon dioxide emissions. Meanwhile, the blast furnace operation method described in Patent Document 3 uses oxygen as the blast gas rather than heated air (hot air). Hereinafter, a typical blast furnace that uses hot air as the blast gas is referred to as a hot air blast furnace, and a blast furnace that uses oxygen as the blast gas is referred to as an oxygen blast furnace.
[0007] The blast furnace operation method described in Patent Document 3 claims that by using an oxygen blast furnace instead of a hot-air blast furnace, the methane gas injection rate can be increased and carbon dioxide emissions can be significantly reduced. However, because the blast gas in an oxygen blast furnace does not contain nitrogen, the blast gas flow rate through the blast furnace is lower than in a hot-air blast furnace, and the amount of heat supplied to the raw materials from the blast gas is also reduced. This raises concerns that the raw materials may not be heated sufficiently, resulting in an insufficient molten iron temperature. Generally, for stable blast furnace operation, a molten iron temperature of 1500°C or higher is desirable. If the molten iron temperature falls below 1500°C, operation may become unstable or even impossible. Patent Document 4 describes a technique for resolving the heat shortage inside an oxygen blast furnace by injecting preheat gas into the shaft of the oxygen blast furnace. However, the technique described in Patent Document 4 is intended for oxygen blast furnaces that inject pulverized coal and cannot be applied to oxygen blast furnaces that inject methane gas. Furthermore, Patent Document 4 does not describe the temperature of the molten iron, and it is unclear whether the blast furnace can be operated stably.
[0008] As such, the reality is that no blast furnace operating method has yet been established that can achieve both a significant reduction in carbon dioxide emissions by injecting a large amount of methane gas and a high molten iron temperature that enables stable operation.
[0009] The present invention has been made to solve the above-mentioned problems, and an object of the present invention is to provide a blast furnace operation method and blast furnace ancillary equipment that can achieve a high molten iron temperature in an oxygen blast furnace that injects a large amount of methane gas, thereby achieving both a significant reduction in carbon dioxide emissions from the blast furnace and stable operation. [Means for solving the problem]
[0010] The inventors of the present invention have conducted extensive research to achieve high molten iron temperatures in an oxygen blast furnace with a large amount of methane gas injection. As a result, they have found that high molten iron temperatures can be achieved even in an oxygen blast furnace with a large amount of methane gas injection by injecting preheat gas into the shaft or belly of the blast furnace and adjusting the amount of heat brought into the blast furnace by the preheat gas to an appropriate amount depending on the amount of methane gas injected. The present invention is based on this finding and is summarized as follows.
[0011] The method for operating a blast furnace according to the present invention is a method for operating a blast furnace in which a reducing agent containing oxygen gas and methane gas is injected into the interior of the blast furnace from a tuyere of the blast furnace, and when the oxygen concentration in the oxygen gas is 80% by volume or more, preheated gas having a carry-over heat quantity equal to or greater than a predetermined heat quantity set in accordance with the amount of methane gas injected is injected into the interior of the blast furnace from a gas injection section provided above the tuyere of the blast furnace.
[0012] The methane gas may include regenerated methane gas produced using carbon monoxide and / or carbon dioxide in the blast furnace gas discharged from the blast furnace and hydrogen supplied from an external source.
[0013] When the weight ratio of the methane gas in the reducing material is 80% by weight or more and the amount of methane gas injected when producing 1 ton of molten iron is 120 kg / t or more and 270 kg / t or less, it is preferable that the heat quantity brought in by the preheating gas be a value that satisfies the following mathematical formula (1):
[0014]
number
[0015] When the weight ratio of the methane gas in the reducing material is 80% by weight or more, and when producing 1 ton of molten pig iron, if the amount of methane gas injected is 120 kg / t or more and less than 170 kg / t, the calorific value of the preheating gas brought in should be 550 Mcal / t or more; if the amount of methane gas injected is 170 kg / t or more and less than 220 kg / t, the calorific value of the preheating gas should be 400 Mcal / t or more; and if the amount of methane gas injected is 220 kg / t or more and 270 kg / t or less, the calorific value of the preheating gas should be 300 Mcal / t or more.
[0016] The temperature of the preheated gas is preferably set to 700°C or higher and 1100°C or lower.
[0017] The predetermined calorific value may be set according to the productivity of the blast furnace, which is calculated by dividing the amount of molten iron produced by the blast furnace per day by the volume of the blast furnace. The amount of molten iron produced per day may be calculated by averaging the amount of molten iron produced over a predetermined period of time.
[0018] The weight ratio of the methane gas in the reducing material is 80% by weight or more, and the productivity of the blast furnace is 4.0 t / d / m 3 In the above cases, when producing 1 ton of molten iron, if the amount of methane gas injected is 120 kg / t or more and 270 kg / t or less, the heat quantity brought in by the preheating gas should be set to a value that satisfies the following formula (2):
[0019]
number
[0020] The weight ratio of the methane gas in the reducing material is 80% by weight or more, and the productivity of the blast furnace is 4.0 t / d / m3 In the above cases, when producing 1 ton of molten iron, if the amount of methane gas injected is 120 kg / t or more and less than 170 kg / t, the calorific value of the preheating gas brought in should be 1250 Mcal / t or more; if the amount of methane gas injected is 170 kg / t or more and less than 220 kg / t, the calorific value of the preheating gas should be 600 Mcal / t or more; and if the amount of methane gas injected is 220 kg / t or more and 270 kg / t or less, the calorific value of the preheating gas should be 500 Mcal / t or more.
[0021] The temperature of the preheated gas is preferably set to 900°C or higher and 1100°C or lower.
[0022] When the installation height of the tuyere is 0 and the height from the installation height of the tuyere to the stock line of the blast furnace is 1, the installation height of the gas injection section is preferably in the range of 0.1 to 0.8.
[0023] It is preferable to recover blast furnace gas discharged from the top of the blast furnace and burn a part of it to obtain a gas, which can be used as the preheating gas.
[0024] The blast furnace ancillary equipment of the present invention is an ancillary equipment of a blast furnace used in the blast furnace operating method of the present invention, and includes a methane gas generation device that generates recycled methane gas using blast furnace gas, a gas injection device having a methane gas supply unit that introduces the recycled methane gas into the tuyere of the blast furnace and an oxygen gas supply unit that introduces the oxygen gas into the tuyere of the blast furnace, a preheating gas generation device that recovers the blast furnace gas and generates preheating gas, and a gas injection device that injects the preheating gas into the blast furnace. [Effects of the Invention]
[0025] According to the blast furnace operation method and associated equipment of the present invention, a high molten iron temperature can be achieved in an oxygen blast furnace that injects a large amount of methane gas, thereby achieving both a significant reduction in carbon dioxide emissions and stable operation. [Brief explanation of the drawings]
[0026] [Figure 1] FIG. 1 is a schematic diagram showing the configuration of an oxygen blast furnace according to one embodiment of the present invention. [Figure 2] FIG. 2 is a schematic diagram showing the configuration of a modified example of the oxygen blast furnace shown in FIG. [Figure 3] FIG. 3 is a schematic diagram showing the configuration of the blowing device shown in FIGS. [Figure 4] FIG. 4 shows the relationship between the heat quantity brought in by the preheating gas and the molten iron temperature when the methane gas injection rate is 220 kg / t or more and 270 kg / t or less at a pig iron productivity of 2.5 t / d / m3. [Figure 5] FIG. 5 shows the relationship between the heat quantity brought in by the preheating gas and the molten iron temperature when the methane gas injection rate is 170 kg / t or more and less than 220 kg / t at a pig iron productivity of 2.5 t / d / m3. [Figure 6] FIG. 6 shows the relationship between the heat quantity brought in by the preheating gas and the molten iron temperature when the methane gas injection rate is 120 kg / t or more and less than 170 kg / t at a pig iron productivity of 2.5 t / d / m3. [Figure 7] FIG. 7 shows the relationship between the heat quantity brought in by the preheating gas and the molten iron temperature when the methane gas injection rate is 220 kg / t or more and 270 kg / t or less at a pig iron productivity of 5.0 t / d / m3. [Figure 8] FIG. 8 shows the relationship between the heat quantity brought in by the preheating gas and the molten iron temperature when the methane gas injection rate is 170 kg / t or more and less than 220 kg / t at a pig iron productivity of 5.0 t / d / m3. [Figure 9] FIG. 9 shows the relationship between the heat quantity brought in by the preheating gas and the molten iron temperature when the methane gas injection rate is 120 kg / t or more and less than 170 kg / t at a pig iron productivity of 5.0 t / d / m3. [Figure 10] FIG. 10 is a diagram showing the relationship between the methane gas injection rate and the required amount of heat brought in from the preheating gas when the productivity is set to 2.5 t / d / m 3 or 5.0 t / d / m 3 . DETAILED DESCRIPTION OF THE INVENTION
[0027] Hereinafter, a method of operating a blast furnace according to one embodiment of the present invention will be described, taking as an example a case where the present invention is applied to an oxygen blast furnace shown in Figures 1 and 2. In Figures 1 and 2, reference numeral 1 denotes an oxygen blast furnace, reference numeral 2 denotes a tuyere, reference numeral 3 denotes an injection device, reference numeral 4 denotes a first dehydration device, reference numeral 5 denotes a preheat gas production device, reference numeral 6 (see Figure 2) denotes a gas separation device, reference numeral 7 denotes a methane gas generation device, reference numeral 8 denotes a second dehydration device, and reference numeral 9 denotes an injection nozzle.
[0028] [Blast furnace operation method] As shown in FIG. 1 , in a method of operating a blast furnace according to one embodiment of the present invention, first, raw materials such as sintered ore, lump ore, pellets (hereinafter also referred to as raw ore), and coke are charged into the oxygen blast furnace 1 from the top of the oxygen blast furnace 1. Next, a reducing agent and blast gas are injected into the oxygen blast furnace 1 from an injection device 3 through tuyere 2 installed at the bottom of the oxygen blast furnace 1. The reducing agent injected into the oxygen blast furnace 1 is also called an injected reducing agent to distinguish it from coke. The blast gas is injected into the oxygen blast furnace 1 through the tuyere 2 and serves to gasify the injected reducing agent and coke in the oxygen blast furnace 1. The raw ore charged into the oxygen blast furnace 1 is reduced by carbon monoxide and hydrogen generated by the reaction of the blast gas with the injected reducing agent or coke, and molten pig iron is produced.
[0029] Carbon dioxide (CO2) gas is generated during the reduction process of the ore raw material. This carbon dioxide gas is discharged from the top of the oxygen blast furnace 1 as a by-product gas together with carbon monoxide (CO) gas and hydrogen (H2) gas that did not react with the ore raw material. The top of the oxygen blast furnace 1 is under high-pressure conditions of approximately 2 to 4 atmospheres. Therefore, when the blast furnace gas, a by-product gas discharged from the top of the oxygen blast furnace 1, returns to normal pressure, it expands and cools, causing water vapor to condense. The condensed water is removed by the first dehydration device 4. Next, at least a portion of the blast furnace gas is introduced into the methane gas generator 7. The methane gas generator 7 reacts the carbon monoxide and / or carbon dioxide contained in the blast furnace gas with hydrogen to generate methane gas (CH4). The methane gas generated in the methane gas generator 7 is called recycled methane gas.
[0030] As shown in FIG. 2, before introducing the blast furnace gas into the methane gas generator 7, the blast furnace gas may be introduced into a gas separator 6, and only the carbon dioxide separated from the blast furnace gas may be introduced into the methane gas generator 7. This configuration reduces the volume of gas introduced into the methane gas generator 7, allowing the methane gas generator 7 to be made more compact. In this case, the remaining gas after carbon dioxide has been separated from the blast furnace gas (hereinafter also referred to as the residual gas after separation) may be merged into the blast furnace gas supply line to the steelworks. The residual gas after separation mainly contains carbon monoxide and hydrogen, and may also contain nitrogen, argon, etc.
[0031] The hydrogen used to generate the regenerated methane gas may be supplied from an external source, but a production method that generates as little carbon dioxide as possible is preferred, such as electrolysis of water. Examples of hydrogen supplied from an external source include hydrogen produced by reforming hydrocarbons such as natural gas using steam reforming, hydrogen obtained by vaporizing liquefied hydrogen, and hydrogen produced by dehydrogenating organic hydrides. While the hydrogen does not need to be a gas with a hydrogen concentration of 100% by volume, it is preferable to use a gas with a high hydrogen concentration, specifically, a gas with a hydrogen concentration of 80% by volume or higher, in order to increase the methane concentration in the regenerated methane gas. The hydrogen concentration is more preferably 90% by volume or higher, and even more preferably 95% by volume or higher. The hydrogen concentration may be 100% by volume. Examples of remaining gases other than hydrogen include CO, CO2, H2S, CH4, and N2.
[0032] Next, the regenerated methane gas is cooled to room temperature, thereby condensing the water vapor in the regenerated methane gas. The condensed water is removed by the second dehydration device 8. In this way, regenerated methane gas is produced using the carbon dioxide, carbon monoxide and / or hydrogen in the blast furnace gas, and hydrogen supplied from an external source. The gas separation device 6, the methane gas generator 7, and the second dehydration device 8 do not necessarily have to be located adjacent to the oxygen blast furnace 1. For example, the blast furnace gas may be supplied to an external source, carbon dioxide may be separated from the blast furnace gas by the external gas separation device 6, and the carbon dioxide may be reacted with hydrogen supplied from an external source in the external methane gas generator 7 to produce regenerated methane gas.
[0033] Next, the regenerated methane gas is introduced into the injection device 3. The injection device 3 has a reducing agent supply section that introduces the injection reducing agent into the tuyere 2 and an oxygen gas supply section that introduces oxygen gas, which serves as the blast gas, into the tuyere 2. For example, as shown in FIG. 3(a), the injection device 3 is configured with a coaxial multi-tube arrangement having a central tube 31 and an outer tube 32. Methane gas G1 containing regenerated methane gas is introduced into the central tube 31, which serves as the methane gas supply section (path), and blast gas G2 is introduced into the annular duct between the central tube 31 and the outer tube 32, which serves as the blast gas supply section (path). The methane gas injected into the oxygen blast furnace 1 (hereinafter referred to as injected methane gas) may contain not only regenerated methane gas but also methane gas (also referred to as external methane gas) supplied from a separate line in accordance with the operation of the steelworks. In this case, an external methane gas supply line may be connected to the methane gas supply section of the injection device 3, or an external methane gas supply line may be connected to another injection reducing agent supply section (described later).
[0034] Furthermore, an external methane gas supply line may be connected to the regenerated methane gas flow passage between the methane gas generator 7 and the blowing device 3 (preferably between the second dehydration device 8 and the blowing device 3). Examples of external methane gas include methane gas derived from fossil fuels. The ratio of external methane gas in the blown methane gas is preferably 20% by volume or less, more preferably 10% by volume or less, and even more preferably 5% by volume or less. All of the methane gas may be regenerated methane gas, and external methane gas may not be included. This is because as the amount of external methane gas increases, the amount of CO2 gas emitted from the furnace top that is reused as methane gas decreases, resulting in an increase in CO2 gas emitted to the outside. By reducing the ratio of external methane gas in the methane gas and increasing the ratio of regenerated methane gas, a high CO2 reduction effect can be achieved.
[0035] Other reducing agents, such as pulverized coal or waste plastics, or reducing gases such as hydrogen or carbon monoxide, may also be used together with methane gas. The amount of the other reducing agents injected into the oxygen blast furnace 1 is preferably less than 20% by weight of the total amount of reducing agents including methane gas. In other words, the weight ratio of methane gas in the reducing agents is preferably 80% by weight or more. When using other reducing agents, they may also be introduced into the methane gas supply section. When pulverized coal or waste plastics are used as the reducing agents, it is preferable to provide a separate reducing agent supply section (path) for circulating the pulverized coal or waste plastics, separate from the methane gas supply section.
[0036] In this case, as shown in Figure 3(b), the injection device 3 is configured with a coaxial multi-tube structure, in which an inner tube 33 is provided within the central tube 31 in addition to a central tube 31 and an outer tube 32. Pulverized coal, waste plastic, and other injection reducing materials G3 are introduced through the inner tube passage, which serves as a separate reducing material supply section. Methane gas G1 is introduced through the annular passage between the inner tube 33 and the central tube 31, which serves as a methane gas supply section, and blast gas G2 is introduced through the annular passage between the central tube 31 and the outer tube 32, which serves as an oxygen gas supply section. Since room-temperature oxygen used as the blast gas reduces ignition performance, it is preferable to make the discharge section of the outer tube 32 porous to promote mixing of oxygen and the injection reducing material. Next, as shown in Figures 3(a) and 3(b), the injection reducing material such as methane gas and the blast gas introduced from the injection device 3 are mixed in the tuyere 2, and the mixed gas is rapidly ignited and combusted immediately after being injected into the oxygen blast furnace 1 through the tuyere 2. A raceway is formed in the blast furnace at the end of the tuyere 2, which is an area where the reducing agent such as methane gas or coke reacts with oxygen gas.
[0037] [Oxygen concentration] In one embodiment of the present invention, a blast furnace operating method uses oxygen gas instead of hot air as the blast gas. When hot air (air heated to approximately 1200°C) is used as the blast gas, the combustion gas contains approximately 50% by volume of nitrogen, which does not contribute to the combustion reaction, making it difficult for the flame temperature in the raceway to reach a high temperature. For this reason, when a large amount of methane gas is blown into the blast furnace, the tuyere tip temperature drops, causing operational problems. On the other hand, when oxygen gas is used as the blast gas, the inclusion of nitrogen gas, which does not contribute to the combustion reaction, can be suppressed, making it possible to raise the tuyere tip temperature to a sufficient temperature. In other words, the flame temperature in the raceway can be made higher than when hot air is used.
[0038] The oxygen concentration in the oxygen gas is set to 80% by volume or more. If the oxygen concentration in the oxygen gas is low, a sufficient tuyere tip temperature cannot be ensured when a large amount of methane gas is injected, which may result in operational problems. For this reason, the oxygen concentration in the oxygen gas is set to 80% by volume or more, more preferably 90% by volume or more, and even more preferably 95% by volume or more. The oxygen concentration may be 100% by volume. The oxygen gas may contain nitrogen, carbon dioxide, argon, etc. as the remaining gas other than oxygen.
[0039] 〔methane gas〕 The methane concentration in the injected methane gas, which is composed of regenerated methane gas or regenerated methane gas and external methane gas, is preferably 80% by volume or more. If the methane concentration in the injected methane gas is low, the amount of gas injected into the blast furnace increases, which may increase the pressure loss in the blast furnace and reduce productivity. Furthermore, if the methane concentration in the injected methane gas is low, the reduction efficiency of iron ore in the blast furnace may deteriorate, which may cause operational problems. For this reason, the methane concentration in the injected methane gas is preferably 80% by volume or more. The methane concentration in the injected methane gas is more preferably 90% by volume or more, and even more preferably 95% by volume or more. The methane concentration in the injected methane gas may be 100% by volume.
[0040] For the same reason, the methane concentration in each of the regenerated methane gas and the external methane gas is preferably 80% by volume or more. The methane concentration in each of the regenerated methane gas and the external methane gas is more preferably 90% by volume or more, and even more preferably 95% by volume or more. The methane concentration in each of the regenerated methane gas and the external methane gas may be 100% by volume. The remaining gases other than methane in the injected methane gas, regenerated methane gas, and external methane gas may include impurity gases such as carbon monoxide, carbon dioxide, hydrogen, hydrocarbons, and nitrogen. Furthermore, if the methane concentration in the regenerated methane gas decreases, the methane concentration in the injected methane gas can be maintained high by reducing the proportion of regenerated methane gas in the injected methane gas while increasing the proportion of external methane gas with a high methane concentration.
[0041] In one embodiment of the blast furnace operating method, the methane gas injection rate is set to 120 kg / t or more and 270 kg / t or less. The unit "kg / t" refers to the weight (kg) required to produce 1 ton of molten iron. The amount of reducing gas in the blast furnace is proportional to the amount of coke (kg / t) and the amount of injected reducing material (kg / t). When the methane gas injection rate is less than 120 kg / t, the amount of reducing gas generated from the methane gas becomes extremely small. As a result, even if the preheating gas injection conditions described below are adjusted, a high molten iron temperature cannot be obtained, making stable operation difficult. While it is possible to increase the reducing gas by increasing the amount of coke, this is counter to the goal of reducing CO2 emissions. On the other hand, if the methane gas injection rate is too high, the gas temperature at the tuyere tip will drop dramatically, even if the amount of reducing gas is sufficient. As a result, even if the preheating gas injection conditions described below are adjusted, a high molten iron temperature cannot be obtained, making stable operation difficult.
[0042] Furthermore, the productivity is 4.0t / d / m 3 If the boiler temperature is above 4.0 t / d / m, it is desirable to limit the methane gas injection rate to 170 kg / t or more and 270 kg / t or less. 3 If the temperature is above this, the residence time in the furnace will be short, and the time available for reduction will be short. Therefore, in order to obtain a high molten iron temperature, it is necessary to increase the amount of reducing gas by increasing the amount of methane gas injection, thereby promoting reduction.
[0043] [Preheating gas] In one embodiment of the present invention, a method for operating a blast furnace involves injecting preheating gas into an oxygen blast furnace through a gas injection nozzle installed in the shaft or belly. The amount of heat brought into the oxygen blast furnace by this preheating gas is adjusted to an appropriate value depending on the amount of methane gas injected. Because the blast gas in an oxygen blast furnace does not contain nitrogen, the gas flow rate through the furnace is lower than in a hot-blast blast furnace, resulting in less heat being supplied to the raw materials from the gas. This results in an insufficient temperature rise in the raw materials, resulting in a drop in the molten iron temperature. Therefore, in this embodiment, as shown in FIGS. 1 and 2 , to compensate for the insufficient heat, preheating gas is injected through an injection nozzle 9 installed in the shaft or belly. This increases the heat brought in by the preheating gas to a predetermined value or higher, thereby increasing the molten iron temperature. The predetermined value is preferably set according to the productivity of the blast furnace, which is calculated by dividing the amount of molten iron produced by the blast furnace within a predetermined period (e.g., one day) by the furnace volume.
[0044] In this embodiment, methane gas is injected from the tuyere 2, and the amount of gas in the furnace changes depending on the amount of methane gas injected. When the amount of methane gas injected is small, the amount of gas in the furnace is small, so the amount of heat supplied from the gas to the raw materials decreases. Therefore, to obtain a high molten iron temperature, it is necessary to increase the amount of preheating gas injected. On the other hand, when the amount of methane gas injected is large, the amount of gas in the furnace increases, so the amount of heat supplied from the gas to the raw materials increases. Therefore, the amount of heat brought in by the preheating gas can be smaller than when the amount of methane gas injected is small. For this reason, it is important to adjust the amount of heat brought in by the preheating gas depending on the amount of methane gas injected.
[0045] The calorific value of the preheating gas is preferably set in accordance with the amount of methane gas injected so as to satisfy the condition shown in the following formula (1).
[0046]
number
[0047] Preferably, (1) when the methane gas injection rate is 220 kg / t or more and 270 kg / t or less, the calorific value of the preheating gas is 300 Mcal / t or more, (2) when the methane gas injection rate is 170 kg / t or more and less than 220 kg / t, the calorific value of the preheating gas is 400 Mcal / t or more, and (3) when the methane gas injection rate is 120 kg / t or more and less than 170 kg / t, the calorific value of the preheating gas is 550 Mcal / t or more.
[0048] In addition, the productivity is 4.0t / d / m 3 In this case, the amount of heat brought in by the preheating gas is preferably set so as to satisfy the condition shown in the following formula (2) according to the amount of methane gas injected.
[0049]
number
[0050] Preferably, (4) when the methane gas injection rate is 220 kg / t or more and 270 kg / t or less, the calorific value of the preheating gas is 500 Mcal / t or more, (5) when the methane gas injection rate is 170 kg / t or more and less than 220 kg / t, the calorific value of the preheating gas is 600 Mcal / t or more, and (6) when the methane gas injection rate is 120 kg / t or more and less than 170 kg / t, the calorific value of the preheating gas is 1250 Mcal / t or more.
[0051] The above relational expression was derived by calculation using a blast furnace simulation model. The configuration of the blast furnace simulation model used was the same as that described in Non-Patent Document 1. It has been confirmed that this simulation model can accurately reproduce the operating conditions of an actual blast furnace, and it is thought that results similar to those obtained by this simulation model can be obtained when operating an actual blast furnace. Using this simulation model, 3In a blast furnace, oxygen gas with an oxygen concentration of 100% and a temperature of 25°C and methane gas with a methane concentration of 100% are blown into the tuyeres, and preheated gas is blown into the shaft, with a production rate of 2.5t / d / m. 3 An operational simulation was conducted under the conditions of a coke rate of 460 kg / t. The methane gas injection rate and the heat input rate were varied to investigate the conditions under which the hot metal temperature would exceed 1500°C. The results showed that the hot metal temperature could be increased by increasing the heat input rate of the preheating gas above a specified value, and that the heat input rate of the preheating gas required to raise the hot metal temperature to 1500°C or higher varied depending on the methane gas injection rate.
[0052] The relationship between the heat input of the preheating gas and the molten pig iron temperature when the methane gas injection rate is 220 kg / t to 270 kg / t, 170 kg / t to 220 kg / t, and 120 kg / t to 170 kg / t is shown in Figures 4 to 6. From these figures, it was found that the heat input of the preheating gas required to raise the molten pig iron temperature to 1500°C or higher is 300 Mcal / t or more when the methane gas injection rate is 220 kg / t to 270 kg / t, 400 Mcal / t or more when the methane gas injection rate is 170 kg / t to 220 kg / t, and 550 Mcal / t or more when the methane gas injection rate is 120 kg / t to 170 kg / t.
[0053] In addition, the productivity was increased to 5.0t / d / m 3 The results of a similar evaluation conducted with the productivity changed to 5.0 t / d / m are shown in Figures 7 to 9. 3 In this case, it was found that the calorific value of the preheating gas required to raise the molten iron temperature to 1500°C or higher is 500 Mcal / t or more when the methane gas injection rate is 220 kg / t or more and 270 kg / t or less, 600 Mcal / t or more when the methane gas injection rate is 170 kg / t or more and less than 220 kg / t, and 1250 Mcal / t or more when the methane gas injection rate is 120 kg / t or more and less than 170 kg / t.
[0054] When the typical value of the methane gas injection rate is set to 220 kg / t when it is between 220 kg / t and 270 kg / t, 170 kg / t when it is between 170 kg / t and 220 kg / t, and 120 kg / t when it is between 120 kg / t and 170 kg / t, the relationship between the methane gas injection rate and the required heat quantity brought in by the preheating gas is plotted as shown in Figure 10. An approximate curve is drawn for these plots, and the productivity is 2.5 t / d / m 3 In this case, the approximate curve shown in the following formula (3) is obtained.
[0055]
number
[0056] Therefore, if the heat quantity brought in by the preheating gas satisfies the following formula (1), the molten iron temperature can be raised to 1500°C or higher.
[0057]
number
[0058] In addition, the productivity is 4.0t / d / m 3 In this case, the approximate curve shown in the following formula (4) is obtained.
[0059]
number
[0060] Therefore, if the heat quantity brought in by the preheating gas satisfies the following formula (2), the molten iron temperature can be raised to 1500°C or higher.
[0061]
number
[0062] The heat amount carried over by the preheating gas can be adjusted by adjusting the temperature or injection rate of the preheating gas. The temperature of the preheating gas to be injected is preferably 700°C or higher and 1100°C or lower. If the temperature of the preheating gas to be injected is lower than 700°C, the flow rate must be extremely increased to obtain the required heat amount, which is undesirable as it deteriorates the gas permeability inside the furnace. On the other hand, if the temperature of the preheating gas to be injected is higher than 1100°C, the heat load on the furnace body around the injection nozzle increases, which shortens the life of the furnace body, which is undesirable. Furthermore, if the productivity is 4.0 t / d / m 3 In this case, the temperature of the preheated gas to be blown is preferably 900°C or higher and 1100°C or lower.
[0063] Preheat gas can be generated by burning fuel with oxygen to generate high-temperature gas, which is then mixed with dilution gas to achieve a desired temperature and flow rate, or by directly heating the gas using an electric heater. When generating preheat gas by combustion, blast furnace gas, coke oven gas, natural gas, propane gas, etc. can be used as fuel. Furthermore, blast furnace gas, coke oven gas, nitrogen, etc. can be used as dilution gas. From the perspective of efficient energy utilization, as shown in Figures 1(a) and 1(b), it is recommended to recover the blast furnace gas discharged from the top of the oxygen blast furnace 1, combust a portion of it to generate high-temperature gas, and then mix it with uncombusted blast furnace gas to adjust the desired temperature and flow rate.
[0064] The installation height of the injection nozzle 9 is set to 0.1 to 0.8, preferably 0.2 to 0.7, where 0 is the installation height of the tuyere 2 of the oxygen blast furnace 1 and 1 is the height from the installation height of the tuyere 2 to the stock line. The stock line is an index representing the height of the piled raw materials in the blast furnace and is a position preset in each blast furnace according to the planned value of the pig iron production rate. If the installation height of the injection nozzle 9 is greater than 0.8, the distance over which heat exchange occurs between the preheating gas and the raw materials in the furnace is short, and the heating effect of the preheating gas cannot be fully obtained. On the other hand, if the installation height of the injection nozzle 9 is less than 0.1, the temperature of the gas in the furnace at the height where the preheating gas is injected becomes higher than the preheating gas temperature, and the temperature drops due to the preheating gas injection, making it impossible to obtain the molten iron temperature. [Example]
[0065] Examples of the present invention and comparative examples are shown in Table 1. In this example, a furnace with a volume of 150 m 3 This is an example of a numerical simulation performed assuming operation of an oxygen blast furnace. In this example, the preheat gas was generated by recovering and dehydrating blast furnace gas from the top of the oxygen blast furnace, combusting a portion of it with oxygen, and then mixing it with the uncombusted blast furnace gas to generate a gas with a predetermined temperature and flow rate, which was then injected. The injection nozzle was installed at a height of 0.5, where the tuyere installation position of the oxygen blast furnace is 0 and the height from the tuyere installation position to the stock line is 1. It was confirmed that in Examples 1 to 7, the molten iron temperature was 1500°C or higher, but in Comparative Examples 1 to 6, the molten iron temperature was less than 1500°C. This confirms that the present invention can achieve high molten iron temperatures in an oxygen blast furnace that injects a large amount of methane gas, thereby achieving both a significant reduction in carbon dioxide emissions from the blast furnace and stable operation.
[0066] [Table 1]
[0067] Although the present invention has been described above as an embodiment, the present invention is not limited to the descriptions and drawings that form part of the disclosure of the present invention. In other words, other embodiments, examples, and operational techniques that can be made by those skilled in the art based on the present invention are all included in the scope of the present invention. [Industrial Applicability]
[0068] According to the present invention, it is possible to provide a blast furnace operation method and blast furnace ancillary equipment that can achieve a high molten iron temperature in an oxygen blast furnace that injects a large amount of methane gas, and that can achieve both a significant reduction in carbon dioxide emissions from the blast furnace and stable operation. [Explanation of symbols]
[0069] 1. Oxygen blast furnace 2 Tuyere 3 Blowing device 4 1st dehydration device 5 Preheating gas production equipment 6 Gas Separator 7. Methane gas generator 8 Second dehydration device 9 Blowing nozzle
Claims
1. A method for operating a blast furnace, comprising injecting a reducing agent containing oxygen gas and methane gas into the interior of the blast furnace through a tuyere of the blast furnace, When the oxygen concentration in the oxygen gas is 80% by volume or more, a preheating gas having a carry-over heat quantity equal to or greater than a predetermined heat quantity set in accordance with an injection amount of the methane gas is injected into the blast furnace from a gas injection section provided above the tuyere of the blast furnace, The methane gas includes regenerated methane gas produced using carbon monoxide and / or carbon dioxide in the blast furnace gas discharged from the blast furnace and hydrogen supplied from an external source. A method for operating a blast furnace, wherein, when a weight ratio of the methane gas in the reducing material is 80% by weight or more and an injection rate of the methane gas is 120 kg / t or more and 270 kg / t or less when producing 1 ton of molten iron, the heat quantity brought in by the preheating gas is set to a value that satisfies the following mathematical formula (1): [Equation 1] Here, Q represents the amount of heat brought in by the preheating gas [Mcal / t], and M represents the amount of methane gas injected [kg / t] when producing 1 t of molten iron.
2. 2. The method for operating a blast furnace according to claim 1, wherein, when a weight ratio of the methane gas in the reducing material is 80% by weight or more and when, in producing 1 ton of molten pig iron, the calorific value of the preheating gas is set to 550 Mcal / t or more if the injection rate of the methane gas is 120 kg / t or more and less than 170 kg / t, the calorific value of the preheating gas is set to 400 Mcal / t or more if the injection rate of the methane gas is 170 kg / t or more and less than 220 kg / t, and the calorific value of the preheating gas is set to 300 Mcal / t or more if the injection rate of the methane gas is 220 kg / t or more and 270 kg / t or less.
3. The method for operating a blast furnace according to claim 1, wherein the temperature of the preheating gas is set to 700°C or higher and 1100°C or lower.
4. The method for operating a blast furnace according to claim 2, wherein the temperature of the preheating gas is set to 700°C or higher and 1100°C or lower.
5. 2. The method for operating a blast furnace according to claim 1, wherein the predetermined heat quantity is set according to a productivity of the blast furnace, which is calculated by dividing an amount of molten iron produced by the blast furnace per day by a volume of the blast furnace.
6. The weight ratio of the methane gas in the reducing material is 80% by weight or more, and the productivity of the blast furnace is 4.0 t / d / m 3 6. The method for operating a blast furnace according to claim 5, wherein, when the methane gas injection rate is 120 kg / t or more and 270 kg / t or less when producing 1 ton of molten iron, the heat quantity brought in by the preheating gas is set to a value that satisfies the following mathematical formula (2): [Equation 2] Here, Q represents the amount of heat brought in by the preheating gas [Mcal / t], and M represents the amount of methane gas injected [kg / t] when producing 1 t of molten iron.
7. The weight ratio of the methane gas in the reducing material is 80% by weight or more, and the productivity of the blast furnace is 4.0 t / d / m 3 6. The method for operating a blast furnace according to claim 5, wherein, when producing 1 ton of molten iron, if the amount of methane gas injected is 120 kg / t or more and less than 170 kg / t, the amount of heat brought in by the preheating gas is 1250 Mcal / t or more, if the amount of methane gas injected is 170 kg / t or more and less than 220 kg / t, the amount of heat brought in by the preheating gas is 600 Mcal / t or more, and if the amount of methane gas injected is 220 kg / t or more and 270 kg / t or less, the amount of heat brought in by the preheating gas is 500 Mcal / t or more.
8. The method for operating a blast furnace according to claim 6, wherein the temperature of the preheating gas is set to 900°C or higher and 1100°C or lower.
9. The method for operating a blast furnace according to claim 7, wherein the temperature of the preheating gas is set to 900°C or higher and 1100°C or lower.
10. 2. The method for operating a blast furnace according to claim 1, wherein the installation height of the gas injection section is set within a range of 0.1 to 0.8, where the installation height of the tuyere is 0 and the height from the installation height of the tuyere to a stock line of the blast furnace is 1.
11. 2. The method for operating a blast furnace according to claim 1, wherein blast furnace gas discharged from a top of the blast furnace is recovered, and a gas obtained by burning a part of the recovered gas is used as the preheating gas.
12. 12. Ancillary equipment for a blast furnace used in the method for operating a blast furnace according to any one of claims 1 to 11, comprising: a methane gas generating device that generates recycled methane gas using blast furnace gas; a gas injection device having a methane gas supply unit that introduces the recycled methane gas into the tuyere of the blast furnace and an oxygen gas supply unit that introduces the oxygen gas into the tuyere of the blast furnace; a preheating gas generating device that recovers the blast furnace gas and generates preheating gas; and a gas injection device that injects the preheating gas into the blast furnace.
Citation Information
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