Gas carburizing treatment equipment
The gas carburizing treatment apparatus addresses the challenge of reducing carrier gas and agent use while maintaining positive pressure, ensuring safety and efficiency in carburizing processes by using a controlled gas generation and supply system.
Patent Information
- Application Number
- JP2022080651
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-05-17
- Publication Date
- 2026-01-22
- Estimated Expiration
- 2042-05-17
AI Technical Summary
Gas carburizing processes face challenges in reducing carrier gas and dripping agent usage while preventing negative pressure that could allow outside air to enter the heating furnace, potentially causing explosions.
A gas carburizing treatment apparatus with a carrier gas supply unit that generates carbon monoxide and hydrogen, a hydrogen sensor to measure concentration, a pressure gauge, and an inert gas supply unit to maintain positive pressure and controlled gas flow rates, reducing dripping agent use and preventing outside air ingress.
The apparatus effectively reduces carrier gas use, maintains positive pressure, and prevents air ingress, achieving safer and more energy-efficient carburizing processes with reduced carbon dioxide emissions.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a gas carburization treatment apparatus. [Background technology]
[0002] Conventionally, there has been proposed a gas carburizing treatment apparatus that includes a heating furnace and a carrier gas supply unit that drops a dripping agent into the heating furnace to cause thermal decomposition and generate a carrier gas containing carbon monoxide (CO) in the heating furnace, places the workpiece in the heating furnace, and drips the dripping agent into the heating furnace to perform gas carburizing treatment on the workpiece in the heating furnace (see, for example, Patent Document 1).In the gas carburizing treatment apparatus described in Patent Document 1, the amount of dripping agent per unit time is always constant. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-129324 Summary of the Invention [Problem to be solved by the invention]
[0004] In recent years, efforts to achieve carbon neutrality and decarbonization have been gaining momentum in various fields, and gas carburizing processes are also being forced to address these issues. For example, in gas carburizing processes, reducing the amount of dripping agent per unit time and the amount of carrier gas supplied, which is a source of carbon dioxide (CO2), is an option. However, simply reducing the amount of dripping agent per unit time and the amount of carrier gas supplied can create negative pressure in the heating furnace, potentially allowing outside air to flow into the furnace through the exhaust port. This can potentially cause an explosion inside the heating furnace.
[0005] An object of the present invention is to provide a gas carburizing treatment apparatus that can prevent outside air from flowing into a heating furnace while reducing the amount of carrier gas supplied to the heating furnace during gas carburizing treatment. [Means for solving the problem]
[0006] One aspect of the gas carburizing treatment apparatus of the present invention comprises: (a) a heating furnace that accommodates a workpiece; (b) a carrier gas supply unit that drops a dripping agent containing methanol into the heating furnace and thermally decomposes it to generate a carrier gas containing carbon monoxide and hydrogen in the heating furnace; (c) a hydrogen sensor that measures the concentration of hydrogen in the heating furnace; (d) a pressure gauge that measures the pressure in the heating furnace; and (e) an inert gas supply unit that supplies an inert gas into the heating furnace; and (f) the carrier gas supply unit is configured to perform a temperature increase process, a soaking process, a dipping process, and a heating process in the gas carburizing treatment. The gist of the method is that, during the diffusion process to the quenching process among the carburizing process, diffusion process, temperature reduction process and quenching process, the amount of dripping agent per unit time is reduced compared to during the carburizing process, and (g) the inert gas supply unit controls the flow rate of the inert gas supplied into the heating furnace so that, during the diffusion process to the quenching process, the pressure measured by the pressure gauge is maintained at a positive pressure and the hydrogen concentration measured by the hydrogen sensor is a predetermined first predetermined value that is lower than the hydrogen concentration measured by the hydrogen sensor during the carburizing process. [Effects of the Invention]
[0007] According to one aspect of the present invention, the amount of dripping agent per unit time is reduced during the diffusion process to the quenching process, thereby reducing the amount of carrier gas supplied to the heating furnace. Furthermore, since the pressure inside the heating furnace is maintained at a positive pressure, negative pressure can be prevented from occurring inside the heating furnace, preventing outside air from flowing into the heating furnace. Therefore, a gas carburizing treatment apparatus can be provided that can reduce the amount of carrier gas supplied to the heating furnace while preventing outside air from flowing into the heating furnace. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a diagram showing the overall configuration of a gas carburizing treatment apparatus according to an embodiment. [Figure 2] FIG. 1 is a diagram showing the treatment temperature, carbon potential, time, amount of dripping agent per unit time, concentration of carbon monoxide, and flow rate of inert gas in gas carburizing treatment. [Figure 3] FIG. 1 is a diagram showing the overall configuration of a gas carburizing treatment apparatus according to a comparative example. [Figure 4] FIG. 10 is a diagram showing the treatment temperature, carbon potential, time, amount of dripping agent per unit time, and carbon monoxide concentration in the gas carburizing treatment of the comparative example. DETAILED DESCRIPTION OF THE INVENTION
[0009] An example of a gas carburizing treatment apparatus according to an embodiment of the present invention will be described below with reference to Figures 1 to 4. The embodiment of the present invention will be described in the following order. 1. Configuration of gas carburizing treatment equipment 2. Examples and comparative examples of gas carburizing treatment
[0010] 1. Configuration of gas carburizing treatment equipment A gas carburizing treatment apparatus 1 according to an embodiment of the present invention will be described. Fig. 1 is a diagram showing the overall configuration of the gas carburizing treatment apparatus 1 according to the embodiment. Fig. 2 is a diagram showing the treatment temperature, carbon potential, time, amount of dripping agent per unit time, carbon monoxide concentration, and inert gas flow rate in the gas carburizing treatment performed by the gas carburizing treatment apparatus 1. As shown in FIG. 2, the gas carburizing treatment apparatus 1 performs the following gas carburizing treatment steps: a temperature-raising process in which the workpiece is heated to a predetermined temperature (e.g., 930°C) in a heating furnace; a soaking process in which the predetermined temperature is maintained for a certain period of time so that the entire workpiece becomes uniform in temperature; a carburizing process in which the carbon potential of the atmospheric gas is maintained at a high predetermined value (e.g., 1.05%) to cause carbon to penetrate into the surface of the workpiece; a diffusion process in which the carbon potential of the atmospheric gas is maintained at a low predetermined value (e.g., 0.8%) to diffuse the carbon that has penetrated into the surface into the workpiece and set the carbon concentration on the surface to a target carbon concentration; a temperature-reducing process in which the temperature of the workpiece is reduced to a quenching temperature (e.g., 850°C); and a quenching process in which the temperature of the workpiece is maintained at the quenching temperature to quench the workpiece.
[0011] As shown in FIG. 1, the gas carburizing treatment apparatus 1 according to this embodiment includes a heating furnace 2, a carrier gas supply unit 3, an inert gas supply unit 4, an enriched gas supply unit 5, a reduced gas supply unit 6, a controller 7, a first regulator 8 (broadly speaking, a "carbon monoxide concentration calculation unit"), and a second regulator 9 (broadly speaking, a "flow rate control unit"). The heating furnace 2 is capable of accommodating a workpiece 10 therein. The workpiece 10 may be, for example, a low-carbon steel part. The heating furnace 2 is provided with an exhaust port for discharging the atmospheric gas inside the heating furnace 2 to the outside of the furnace. Furthermore, the heating furnace 2 is provided with a heater for heating the inside of the heating furnace 2 and a centrifugal fan 11 for agitating the atmospheric gas inside the heating furnace 2.
[0012] The heating furnace 2 is also equipped with a hydrogen sensor 12 that measures the hydrogen (H2) concentration within the heating furnace 2, an oxygen sensor 13 that measures the oxygen (O2) concentration within the heating furnace 2, a pressure gauge 14 that measures the pressure within the heating furnace 2, and a thermometer 15 that measures the temperature within the heating furnace 2. The hydrogen sensor 12 can be, for example, a thermal conductivity hydrogen sensor that detects the hydrogen concentration of the atmospheric gas within the heating furnace 2 based on the thermal conductivity of the atmospheric gas. Using a thermal conductivity hydrogen sensor allows for continuous measurement of the hydrogen concentration and reduces the cost of the sensor. The measurement result of the hydrogen sensor 12 is output to the first controller 8. The oxygen sensor 13 can be, for example, a zirconia oxygen sensor that detects the oxygen concentration of the atmospheric gas based on the electromotive force generated by the difference in oxygen concentration on both sides of zirconia. The measurement result of the oxygen sensor 13 is output to the second controller 9. The measurement results of the pressure gauge 14 and the thermometer 15 are each output to the controller 7. FIG. 1 illustrates an example in which the hydrogen sensor 12 and the oxygen sensor 13 are disposed in the upper part of the heating furnace 2, and the pressure gauge 14 is disposed on the side of the heating furnace 2.
[0013] The carrier gas supply unit 3 has one end connected to a supply source of the dripping agent and the other end connected to the inside of the heating furnace 2. The dripping agent flows through a pipe 16, and an on-off valve 17 and a flow meter 18 provided in the pipe 16. For example, methanol (CH3OH) can be used as the dripping agent. The on-off valve 17 only opens and closes the flow path of the dripping agent in the pipe 16 and keeps the flow path open during gas carburizing treatment. The flow meter 18 measures the flow rate of the dripping agent flowing through the pipe 16 and controls the flow rate of the dripping agent so that the measured flow rate matches a target flow rate indicated by a signal from the controller 7. Here, since the dripping agent is dripped into the heating furnace 2, the "flow rate of the dripping agent" corresponds to the "amount of dripping agent per unit time." As will be described later, the target flow rate indicated by the signal from the controller 7 is a first flow rate (for example, 2000 cc / h) that maintains at least the pressure inside the heating furnace 2 at a positive pressure (>0) during the temperature increase process to the carburization process, and a second flow rate (for example, 1000 cc / h) that is less than the first flow rate during the diffusion process to the quenching process. That is, the carrier gas supply unit 3 reduces the amount of dripping agent per unit time during the diffusion process to the quenching process compared to during the carburization process.
[0014] Then, the carrier gas supply unit 3 drops the dripping agent (CHOH) into the heating furnace 2 and thermally decomposes it to generate a carrier gas containing carbon monoxide (CO) and hydrogen (H) in the heating furnace 2. Here, the thermal decomposition reaction of the dripping agent proceeds as shown in the following formula (1). CH3OH→CO+2H2……(1) Therefore, a mixed gas containing carbon monoxide (CO) and hydrogen (H2) in a ratio of CO:33.3% and H2:66.7% (CO:H2=1:2) is generated as the carrier gas. Furthermore, in the diffusion process to the quenching process, the amount of dripping agent per unit time is reduced, so that the amount of carrier gas (gas containing carbon monoxide (CO)) supplied into the heating furnace 2 can be reduced.
[0015] Here, methods for generating a carrier gas containing carbon monoxide (CO) and hydrogen (H2) include, for example, a drip-feeding method using a dripping agent and a conversion method using a conversion gas. The drip-feeding method is the method used in this embodiment. The conversion method uses a hydrocarbon gas (e.g., propane (C3H8)) as a gas source and generates a carrier gas containing carbon monoxide (CO) and hydrogen (H2) by reacting the hydrocarbon gas with air in a conversion gas generator maintained at a high temperature. In the conversion method, the reaction between the hydrocarbon gas and air proceeds as shown in the following (2). C3H8+1.5O2+6N2→3CO+4H2+6N2……(2) Therefore, a mixed gas with a ratio of CO: 23%, H2: 31%, and N2: 46% is generated as the carrier gas.
[0016] Furthermore, the carburization rate of the surface of the workpiece 10 depends on the carbon transfer coefficient β of the atmospheric gas. The carbon transfer coefficient β reaches a maximum value when the carbon monoxide (CO) concentration is in the range of 30% to 50%. Therefore, the drip-feed method (the method of this embodiment) has a higher carbon transfer coefficient β and a faster carburization rate of the surface of the workpiece 10 than the metamorphic method (carbon monoxide (CO) concentration is 23%) because the carbon monoxide (CO) concentration contained in the carrier gas is 33.3%. Therefore, in the carburization process (the process of penetrating carbon into the surface of the workpiece 10), the drip-feed method is advantageous in terms of carburization rate. On the other hand, the diffusion rate of carbon from the surface to the interior of the workpiece 10 depends on the temperature and concentration difference. Therefore, it is not necessary to maintain the carbon monoxide (CO) concentration at 30% to 50% (a concentration at which the carbon transfer coefficient β is high). Therefore, in this embodiment, the amount of carrier gas (gas containing carbon monoxide (CO)) supplied to the heating furnace 2 is reduced by reducing the amount of dripping agent after the diffusion process. However, in order to maintain the carbon concentration on the surface of the workpiece 10, the carbon monoxide (CO) concentration in the heating furnace 2 must not be set to "0%" but must be maintained at a predetermined value greater than "0%" (for example, a value in the range of 20.0% to 26.0%).
[0017] The inert gas supply unit 4 has one end connected to an inert gas supply source and the other end connected to the inside of the heating furnace 2. The inert gas flows through a pipe 19, and an on-off valve 20 and a flow meter 21 are provided along the pipe 19. Examples of inert gases that can be used include nitrogen (N2) gas, helium (He) gas, and argon (Ar) gas. The on-off valve 20 only opens and closes the inert gas flow path in the pipe 19, maintaining the flow path closed during the heating process through the carburizing process and maintaining the flow path open during the diffusion process through the quenching process. The flow meter 21 measures the flow rate of the inert gas flowing through the pipe 19 and controls the flow rate of the inert gas so that the measured flow rate matches the target flow rate indicated by a signal from the first controller 8. In this way, the inert gas supply unit 4 supplies the inert gas into the heating furnace 2. The target flow rate indicated by the signal from the first controller 8 is the flow rate of the inert gas calculated by the first controller 8 so that the concentration of hydrogen (H2) measured by the hydrogen sensor 12 becomes a predetermined first value (for example, a value in the range of 40.0% to 52.0%) that is lower than the concentration of hydrogen (H2) measured by the hydrogen sensor 12 during the carburization process (66.7%), as described below.
[0018] Furthermore, the flow meter 21 prevents the flow rate of the inert gas from falling below the target flow rate indicated by the signal from the controller 7. That is, when the "target flow rate indicated by the signal from the controller 7" is greater than the "target flow rate indicated by the signal from the first controller 8," the flow rate of the inert gas is controlled to match the target flow rate indicated by the signal from the controller 7. The target flow rate indicated by the signal from the controller 7 is the flow rate of the inert gas calculated by the controller 7 so that the pressure measured by the pressure gauge 14 is maintained at a positive pressure, as will be described later. This maintains the pressure inside the heating furnace 2 at a positive pressure, thereby preventing the generation of negative pressure inside the heating furnace 2 and preventing outside air from flowing into the heating furnace 2. This prevents an explosion inside the heating furnace 2 due to outside air flowing into the heating furnace 2. As described above, the inert gas supply unit 4 controls the flow rate of the inert gas supplied into the heating furnace 2 so that the pressure measured by the pressure gauge 14 is maintained at a positive pressure during the diffusion process to the quenching process, and the concentration of hydrogen (H2) measured by the hydrogen sensor 12 is a first predetermined value that is lower than the concentration of hydrogen (H2) measured by the hydrogen sensor 12 during the carburizing process.
[0019] The enriched gas supply unit 5 has one end connected to an enriched gas supply source and the other end connected to the inside of the heating furnace 2, and includes a pipe 22 through which the enriched gas flows, an on-off valve 23, and a flow meter 24 provided in the pipe 22. For example, a hydrocarbon gas (methane (CH4), propane (C3H8), etc.) can be used as the enriched gas. The on-off valve 23 only opens and closes the flow path of the enriched gas in the pipe 22, maintaining the flow path in a closed state during the temperature increase step and the soaking step, and maintaining the flow path in an open state during the carburizing step to the quenching step. The flow meter 24 measures the flow rate of the enriched gas flowing through the pipe 22 and controls the flow rate of the enriched gas so that the measured flow rate coincides with a target flow rate indicated by a signal from the second controller 9. In this way, the enriched gas supply unit 5 supplies the enriched gas into the heating furnace 2. Here, the target flow rate indicated by the signal from the second controller 9 is the flow rate of the enriched gas calculated by the second controller 9 so that the carbon potential CP in the heating furnace 2 becomes a predetermined second predetermined value (e.g., 1.05%, 0.8%), as will be described later.
[0020] The reduce gas supply unit 6 has one end connected to a reduce gas supply source and the other end connected to the inside of the heating furnace 2, and has a pipe 25 through which the reduce gas flows, an on-off valve 26 and a flow meter 27 provided in the middle of the pipe 25. The reduce gas may be, for example, , sky Air, oxygen (O2), carbon dioxide (CO2) etc.The on-off valve 26 only opens and closes the flow path of the reduce gas in the piping 25, maintaining the flow path closed during the temperature-raising process and the soaking process, and maintaining the flow path open during the carburizing process through the quenching process. The flow meter 27 measures the flow rate of the reduce gas flowing through the piping 25 and controls the flow rate of the reduce gas so that the measured flow rate matches the target flow rate indicated by the signal from the second controller 9. The reduce gas supply unit 6 thereby supplies the reduce gas into the heating furnace 2. The target flow rate indicated by the signal from the second controller 9 is the flow rate of the reduce gas calculated by the second controller 9 so that the carbon potential CP in the heating furnace 2 becomes a predetermined second predetermined value (e.g., 1.05%, 0.8%), as will be described later.
[0021] Based on the measurement result of the pressure gauge 14, the controller 7 calculates a target flow rate of the inert gas to be supplied from the inert gas supply unit 4 so that the pressure measured by the pressure gauge 14 (i.e., the pressure inside the heating furnace 2) is maintained at a positive pressure. The target flow rate is output to a flow meter 21. As the controller 7, for example, a PLC (Programmable Logic Controller) can be used. Furthermore, the controller 7 determines whether the temperature rise process through the carburizing process is being performed or the diffusion process through the quenching process is being performed based on the measurement result (temperature inside the heating furnace 2) of the thermometer 15 and a timer (not shown) or the like. During the temperature rise process through the carburizing process, the controller 7 sets the target flow rate to a first flow rate (e.g., 1000 cc / h) that maintains at least the pressure inside the heating furnace 2 at a positive pressure (>0), and during the diffusion process through the quenching process, the controller 7 sets the target flow rate to a second flow rate (e.g., 2000 cc / h) that is lower than the first flow rate. The target flow rate is output to the flowmeter 18.
[0022] The first controller 8 calculates the carbon monoxide (CO) concentration in the heating furnace 2 based on the measurement result of the hydrogen sensor 12 (the concentration of hydrogen (H2) in the heating furnace 2). Here, as shown in the above formula (1), the ratio of carbon monoxide (CO) to hydrogen (H2) contained in the carrier gas is always constant (CO:H2 = 1:2). Therefore, even if an inert gas is supplied into the heating furnace 2 and the concentrations of carbon monoxide (CO) and hydrogen (H2) in the heating furnace 2 decrease, the ratio of carbon monoxide (CO) to hydrogen (H2) in the heating furnace 2 (CO:H2 = 1:2) does not change. Therefore, the carbon monoxide (CO) concentration is calculated as half the hydrogen (H2) concentration. Here, enriched gases such as methane (CH4) and propane (C3H8) are introduced to reduce the oxygen (O2) concentration in the heating furnace 2, but the oxygen (O2) in the heating furnace 2 is 1×10 -17 ~1×10 -20 The amount is in the order of % and is extremely small. Therefore, the amount of enriched gas required to adjust for this small amount of oxygen (O2) is also very small. Similarly, the amount of reduced gas required is also very small. Therefore, the amount of change in the ratio of carbon monoxide (CO) to hydrogen (H2) (CO:H2) due to the supply of enriched gas or reduced gas is extremely small, so the carbon monoxide (CO) concentration can be calculated assuming that the CO:H2 ratio remains 1:2 even when enriched gas or reduced gas is supplied. The calculated carbon monoxide (CO) concentration in the heating furnace 2 is output to the second controller 9.
[0023] Furthermore, during the diffusion process through the quenching process, the first controller 8 calculates a target flow rate of the inert gas supplied from the inert gas supply unit 4 based on the measurement results of the hydrogen sensor 12 so that the hydrogen (H2) concentration (in the heating furnace 2) measured by the hydrogen sensor 12 becomes a predetermined first predetermined value. The first predetermined value can be, for example, a value lower than the hydrogen (H2) concentration (66.7%) measured by the hydrogen sensor 12 during the carburizing process. For example, a hydrogen (H2) concentration (e.g., a value in the range of 40.0% to 52.0%) that enables a carbon monoxide (CO) concentration close to 23% in the transformer carrier gas (23% ± α%; e.g., a value in the range of 20.0% to 26.0%) can be used. The target flow rate is output to the flowmeter 21.
[0024] The second controller 9 calculates the carbon potential CP in the heating furnace 2 based on the calculation result of the first controller 8 (the carbon monoxide (CO) concentration in the heating furnace 2) and the measurement result of the oxygen sensor 13 (the oxygen (O2) concentration in the heating furnace 2). The second controller 9 also calculates the target flow rates of the enriched gas and the reduced gas so that the calculated carbon potential CP becomes a predetermined second predetermined value. The second controller 9 controls the flow rates of the enriched gas and the reduced gas based on these target values. For example, as shown in FIG. 2, the second predetermined value is set to a large value (e.g., 1.05%) during the carburizing process so that a large amount of carbon penetrates the surface of the workpiece 10, and a smaller value (e.g., 0.8%) during the diffusion process, the temperature-lowering process, and the quenching process than during the carburizing process. The target flow rate of the enriched gas is output to the flow meter 24, and the target flow rate of the reduced gas is output to the flow meter 27.
[0025] During the diffusion process through the quenching process, an inert gas is supplied into the heating furnace 2, so that the carbon monoxide (CO) concentration in the heating furnace 2 is lower than 33.3% (for example, a value in the range of 20.0% to 26.0%). In this case, for example, a method can be considered in which the target flow rate of the dripping agent and the target flow rate of the inert gas are set to predetermined values so that the carbon monoxide (CO) concentration is in the range of 20.0% to 26.0%, and a fixed value (a value in the range of 20.0% to 26.0%) is used as the carbon monoxide (CO) concentration used to calculate the carbon potential CP. However, in the method using a fixed value, at the beginning of the diffusion process, the carbon monoxide (CO) concentration in the heating furnace 2 is in the range of the fixed value % to 33.3% until it stabilizes at the fixed value % due to the start of the supply of the inert gas. Therefore, in this embodiment, the actual carbon monoxide (CO) concentration in the heating furnace 2 is calculated based on the measurement result of the hydrogen sensor 12 (the concentration of hydrogen (H2) in the heating furnace 2). This makes it possible to calculate the carbon potential CP in the heating furnace 2 based on the actual carbon monoxide (CO) concentration at the beginning of the diffusion process. As a result, the carbon potential CP can be controlled more appropriately.
[0026] As described above, in the gas carburizing treatment apparatus 1 according to this embodiment, the carrier gas supply unit 3 reduces the amount of dripping agent per unit time during the diffusion to quenching steps of the gas carburizing treatment, which are the temperature-raising step, soaking step, carburizing step, diffusion step, temperature-lowering step, and quenching step, compared to the amount during the carburizing step. Furthermore, the inert gas supply unit 4 controls the flow rate of the inert gas supplied into the heating furnace 2 during the diffusion to quenching steps so that the pressure measured by the pressure gauge 14 is maintained at a positive pressure and the hydrogen (H2) concentration measured by the hydrogen sensor 12 is a predetermined first value (e.g., a value in the range of 40.0% to 52.0%) lower than the hydrogen (H2) concentration (66.7%) measured by the hydrogen sensor 12 during the carburizing step. This reduces the amount of dripping agent per unit time during the diffusion to quenching steps, thereby reducing the amount of carrier gas supplied into the heating furnace 2. Furthermore, since the pressure inside the heating furnace 2 is maintained at a positive pressure, it is possible to prevent negative pressure from occurring inside the heating furnace 2 and prevent outside air from flowing into the heating furnace 2. Therefore, it is possible to prevent outside air from flowing into the heating furnace 2 while reducing the amount of carrier gas supplied into the heating furnace 2.
[0027] Here, the dripping method has a higher concentration of carbon monoxide (CO) contained in the carrier gas than the metamorphic method, resulting in a faster carburization rate. Therefore, the carburization process can be completed in a shorter time, resulting in excellent energy savings. Specifically, the amount of carrier gas used in the dripping method is 1 / 4 to 1 / 3 of that used in the metamorphic method. In addition, in this embodiment, the amount of dripping agent added is reduced during the diffusion process, so the amount of carrier gas used is about 1 / 8 of that used in the metamorphic method. However, during the diffusion process, the diffusion rate of carbon from the surface to the interior of the workpiece 10 decreases. In contrast, in the gas carburizing treatment apparatus 1 according to this embodiment, the flow rate of the inert gas supplied into the heating furnace 2 is controlled during the diffusion process to quenching process so that the hydrogen (H2) concentration measured by the hydrogen sensor 12 is a predetermined first value (a value in the range of 40.0% to 52.0%) that is lower than the hydrogen (H2) concentration (66.7%) measured by the hydrogen sensor 12 during the carburizing process. As a result, the diffusion rate of carbon from the surface to the interior of the workpiece 10 during the diffusion process is approximately the same as that in the metamorphic method. Therefore, the gas carburizing treatment apparatus 1 according to this embodiment can prevent discomfort caused by a decrease in the diffusion rate.
[0028] In this embodiment, the first predetermined value is set to a value in the range of 40.0% to 52.0%, but is not limited thereto. For example, the lower limit of the first predetermined value, i.e., the lower limit of the hydrogen (H2) concentration during the diffusion process to the quenching process, may be set to less than 40.0%, for example, 20.0%. This allows for a further reduction in the amount of carrier gas supplied to the heating furnace 2. However, when the hydrogen (H2) concentration is set to 20.0%, the carbon monoxide (CO) concentration becomes 10%, which is different from the 23% carbon monoxide (CO) concentration in the metamorphic carrier gas. Therefore, the diffusion rate of carbon from the surface to the interior of the workpiece 10 is lower than in the metamorphic carrier gas.
[0029] Furthermore, in the gas carburizing treatment apparatus 1 according to this embodiment, the first controller 8 (carbon monoxide concentration calculation unit) calculates the carbon monoxide (CO) concentration in the heating furnace 2 based on the hydrogen (H) concentration in the heating furnace 2 measured by the hydrogen sensor 12. The second controller 9 (flow rate control unit) calculates the carbon potential CP in the heating furnace 2 based on the carbon monoxide (CO) concentration in the heating furnace 2 calculated by the first controller 8 and the oxygen (O) concentration in the heating furnace 2 measured by the oxygen sensor 13. The flow rates of the enriched gas and the reduced gas are controlled so that the calculated carbon potential CP becomes a predetermined second predetermined value (e.g., 1.05%, 0.8%). Since the carbon potential CP is calculated using the actual carbon monoxide (CO) concentration in the heating furnace 2, the carbon monoxide (CO) concentration changes at the beginning of the diffusion process (e.g., from 33.3% to 20.0%). However, the carbon potential CP can be calculated by reflecting this change. Therefore, for example, compared to a method of calculating the carbon potential CP simply using a fixed value (for example, 20.0%), the calculation accuracy of the carbon potential CP can be improved, and the carbon potential CP can be controlled more appropriately.
[0030] 2. Examples and Comparative Examples of Gas Carburizing Treatment Next, examples and comparative examples of gas carburizing treatment using the gas carburizing treatment apparatus 1 will be described. (Example) First, the workpiece 10 was placed in the heating furnace 2. Next, a temperature-raising process was performed, in which heating was initiated in the heating furnace 2 using a heater. As shown in FIG. 2, the workpiece 10 was heated to 930°C. Heating to 930°C was continued until the end of the diffusion process. Additionally, the controller 7 and carrier gas supply unit 3 were used to start dripping the dripping agent into the heating furnace 2 at 2000 cc / h. This generated carrier gas in the heating furnace 2, and the carbon monoxide (CO) concentration in the heating furnace 2 was increased to 33.3%. Dripping of the dripping agent at 2000 cc / h continued until the end of the carburizing process. Next, a soaking process was performed, in which the temperature of the workpiece 10 was maintained at 930°C so that the entire workpiece 10 was at a uniform temperature. The soaking process was performed for 30 minutes. Next, the carburizing process was carried out, and the supply of enriched gas and reduced gas into the heating furnace 2 was started using the first controller 8, the second controller 9, the enriched gas supply unit 5, and the reduced gas supply unit 6. The flow rates of the enriched gas and reduced gas were controlled so that the carbon potential CP of the atmospheric gas in the heating furnace 2 was maintained at a relatively high value of 1.05%. This allowed carbon to penetrate into the surface of the workpiece 10. The carburizing process was carried out for 70 minutes.
[0031] Next, the diffusion process was performed, and the drip rate of the dripping agent from the carrier gas supply unit 3 was reduced from 2000 cc / h to 1000 cc / h. The dripping of the dripping agent at 1000 cc / h continued until the end of the quenching process. The supply of inert gas into the heating furnace 2 was initiated using the first regulator 8, controller 7, and inert gas supply unit 4. The flow rate of the inert gas was controlled so that the pressure inside the heating furnace 2 was maintained positive (>0) and the carbon monoxide (CO) concentration was 20.0%. The flow rates of the enriched gas and reduced gas from the enriched gas supply unit 5 and reduced gas supply unit 6 were controlled so that the carbon potential CP of the atmospheric gas inside the heating furnace 2 was maintained at a relatively low value of 0.8%. This allowed the carbon that had penetrated the surface of the workpiece 10 to diffuse into the interior of the workpiece 10, and the surface carbon concentration was adjusted to the target carbon concentration of 0.8%. The carbon potential CP of 0.8% was maintained until the end of the quenching process. The diffusion process was carried out for 50 minutes. Subsequently, a temperature-lowering process was carried out, in which the temperature of the workpiece 10 was lowered to 850°C using a heater. Subsequently, a quenching process was carried out, in which the temperature of the workpiece 10 was maintained at 850°C, and the workpiece 10 was quenched. The quenching process was carried out for 20 minutes. This resulted in a quenched and hardened workpiece 10.
[0032] (Comparative Example) In the comparative example, as shown in Fig. 3, a gas carburizing treatment apparatus 1 was used that was the same as the gas carburizing treatment apparatus 1 of the example except that the inert gas supply unit 4, first controller 8, hydrogen sensor 12, and pressure gauge 14 were omitted. As shown in Fig. 4, the supply of inert gas to the heating furnace 2 was omitted, and the amount of dripping agent per unit time during the temperature-raising process through the quenching process was set to a constant value of 2000 cc / h. Furthermore, the second controller 9 was set to calculate the carbon potential CP using a predetermined constant value of 33.3% as the carbon monoxide (CO) concentration in the heating furnace 2. Other than that, the gas carburizing treatment was performed under the same conditions as the example.
[0033] For the gas carburizing treatments of the examples and comparative examples, the presence or absence of inflow of outside air into the heating furnace 2, the amount of dripping agent used, and the amount of carbon dioxide (CO2) emissions were evaluated. The evaluation results are shown in Table 1 below. The amount of carbon dioxide (CO2) emissions was calculated assuming that (1) carbon monoxide (CO) is burned upon emission and becomes carbon dioxide (CO2), and (2) 90% of the carbon monoxide (CO) contained in the atmospheric gas is emitted. [Table 1] As shown in Table 1, it was confirmed that the example can prevent the inflow of outside air into the heating furnace 2, reduce the amount of dripping agent used, and reduce carbon dioxide (CO2) emissions compared to the comparative example. Specifically, the amount of carbon dioxide (CO2) emissions could be reduced by 19.8%. [Explanation of symbols]
[0034] 1...gas carburizing treatment device, 2...heating furnace, 3...carrier gas supply unit, 4...inert gas supply unit, 5...enriched gas supply unit, 6...reduced gas supply unit, 7...controller, 8...first controller, 9...second controller, 10...workpiece, 11...centrifugal fan, 12...hydrogen sensor, 13...oxygen sensor, 14...pressure gauge, 15...thermometer, 16...piping, 17...on-off valve, 18...flow meter, 19...piping, 20...on-off valve, 21...flow meter, 22...piping, 23...on-off valve, 24...flow meter, 25...piping, 26...on-off valve, 27...flow meter
Claims
1. a heating furnace that accommodates the workpiece; a carrier gas supply unit that drops a dripping agent containing methanol into the heating furnace and thermally decomposes it to generate a carrier gas containing carbon monoxide and hydrogen in the heating furnace; a hydrogen sensor for measuring the concentration of hydrogen in the heating furnace; a pressure gauge for measuring the pressure inside the heating furnace; an inert gas supply unit that supplies an inert gas into the heating furnace, the carrier gas supply unit reduces the amount of dripping agent per unit time during the diffusion process to the quenching process among the temperature increase process, the soaking process, the carburization process, the diffusion process, the temperature decrease process, and the quenching process in the gas carburization treatment, compared to during the carburization process; The inert gas supply unit controls the flow rate of the inert gas supplied into the heating furnace so that the pressure measured by the pressure gauge is maintained at a positive pressure during the diffusion process to the quenching process, and the hydrogen concentration measured by the hydrogen sensor is a first predetermined value that is lower than the hydrogen concentration measured by the hydrogen sensor during the carburizing process. Gas carburizing treatment equipment.
2. The inert gas is nitrogen gas, helium gas, or argon gas. The gas carburizing treatment apparatus according to claim 1 .
3. The hydrogen sensor is a thermal conductivity hydrogen sensor that detects the hydrogen concentration of the atmospheric gas in the heating furnace based on the thermal conductivity of the atmospheric gas. The gas carburizing treatment apparatus according to claim 1 .
4. The first predetermined value is a value in the range of 40.0% to 52.0%. The gas carburizing treatment apparatus according to claim 1 .
5. an enriched gas supply unit that supplies an enriched gas, which is a gas for increasing the carbon potential in the heating furnace, into the heating furnace; a reduce gas supply unit that supplies a reduce gas, which is a gas for reducing the carbon potential in the heating furnace, into the heating furnace; an oxygen sensor for measuring the concentration of oxygen in the heating furnace; a carbon monoxide concentration calculation unit that calculates the concentration of carbon monoxide in the heating furnace based on the concentration of hydrogen measured by the hydrogen sensor; a flow rate control unit that calculates a carbon potential in the heating furnace based on the oxygen concentration measured by the oxygen sensor and the carbon monoxide concentration calculated by the carbon monoxide concentration calculation unit, and controls the flow rates of the enriched gas and the reduced gas supplied into the heating furnace so that the calculated carbon potential becomes a predetermined second predetermined value. The gas carburizing treatment apparatus according to any one of claims 1 to 4.
6. the enriched gas is a hydrocarbon gas, The reducing gas is air, oxygen or carbon dioxide. The gas carburizing treatment apparatus according to claim 5 .
Citation Information
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