A processing apparatus and a processing method for igniter container drying
By using a system combining a low-pressure vessel and a vacuum pump, and employing a dryer and a heater to dry the ignition agent container, the problem of residual moisture and organic solvents inside the ignition agent container is solved, achieving a safe and reliable drying process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- ZHONGKE AEROSPACE (GUANGZHOU) AEROSPACE MANUFACTURING IND CO LTD
- Filing Date
- 2023-11-09
- Publication Date
- 2026-04-21
AI Technical Summary
Existing technologies have problems with the difficulty in removing residual moisture and organic solvents during the drying process of ignition agent containers, and lack a clear judgment of the degree of dryness, which poses safety hazards.
A processing device and method are adopted, which uses a system combining a low-pressure vessel and a vacuum pump to dry the ignition agent container using a dryer and a heater, and achieves gas replacement and removal of residues through the control of multiple pipelines and solenoid valves, and combines humidity and temperature sensors for real-time monitoring and control.
It effectively removes residual moisture and organic solvents from the ignition agent container, ensuring that the degree of dryness can be judged, reducing safety hazards, and extending the service life of the container.
Smart Images

Figure CN117329824B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of liquid rocket engines, and specifically relates to a processing device and method for drying ignition agent containers. Background Technology
[0002] A liquid oxygen-kerosene engine is a rocket engine that uses liquid oxygen as an oxidizer and hydrocarbon compounds as fuel. Under normal circumstances, the oxidizer and fuel mixture cannot spontaneously combust; a specialized ignition device is required to ignite the mixture and start the engine. In current rocket engine development, a widely used and mature ignition method utilizes a self-igniting igniter in an oxygen-rich environment. This method involves placing a container of igniter in the rocket engine's fuel supply line, then introducing pressurized gas into the pressurized gas chamber within the container. This forces the igniter, stored in the liquid chamber of the igniter container, into the engine's combustion chamber. In the combustion chamber, the igniter reacts spontaneously with the liquid oxygen and then ignites with the fuel, thus achieving ignition.
[0003] In actual space launch practices, the commonly used igniter is mainly a combination of triethylaluminum and triethylboron. This combination of igniters is chemically very active and will burn violently when in contact with small amounts of oxygen, water and other substances. Therefore, this igniter and its storage container must be strictly isolated from oxygen and water during operation, storage and transportation.
[0004] During the reuse of ignition agent containers, the ignition agent liquid chamber of the container needs to be cleaned to remove aluminum and boron oxides generated during the release of the ignition agent. Therefore, after cleaning, the ignition agent liquid chamber often has a small amount of water and organic solvent residue, which poses a huge safety hazard to the refilling of the ignition agent container.
[0005] In traditional processing methods, vacuum drying ovens are often used to dry ignition agent containers. This drying method has the following disadvantages:
[0006] (1) Due to the special structure of the liquid chamber of the ignition agent in the ignition agent container, there is still residual water after treatment with a vacuum drying oven.
[0007] (2) After drying in a vacuum drying oven, there is no obvious reference index to measure the dryness of the ignition agent liquid chamber in the ignition agent container, which makes it difficult for operators to judge whether to continue the drying operation.
[0008] (3) If the organic solvents used in the cleaning process are not completely removed, they may explode when heated and volatilized in the vacuum drying oven, posing a safety hazard. Summary of the Invention
[0009] The purpose of this invention is to provide a processing device and method for drying ignition agent containers, which can more thoroughly dry the ignition agent liquid chamber inside the ignition agent container, making it easier to judge the degree of dryness of the ignition agent liquid chamber, and at the same time remove residual organic solvents, reducing safety hazards.
[0010] To achieve the above objectives, the present invention provides a processing device for drying an ignition agent container, comprising a control system and a process system and an auxiliary system connected to the control system. The process system includes a low-pressure container and an ignition agent container. The auxiliary system includes a gas source and a vacuum pump. The gas source is connected to the low-pressure container via an inlet pipe. The low-pressure container is connected to the ignition agent container via a supply pipe. The ignition agent container is provided with an exhaust pipe. The low-pressure container is connected to the vacuum pump via a first vacuum pipe. The ignition agent container is connected to the vacuum pump via a second vacuum pipe. The control system is used to control the switching on and off of the gas source and the vacuum pump, as well as the on / off states of the inlet pipe, supply pipe, exhaust pipe, first vacuum pipe, and second vacuum pipe.
[0011] The ignition agent container includes an ignition agent liquid chamber and a pressurized gas chamber. The second extraction pipe is connected to the pressurized gas chamber, and the gas supply pipe and the exhaust pipe are both connected to the ignition agent liquid chamber.
[0012] Furthermore, the control system includes a controller, a power supply, and an analog input module, both of which are electrically connected to the controller.
[0013] Furthermore, a dryer, a heater, a first solenoid valve, a first pressure transmitter, and a first humidity transmitter are sequentially connected to the intake pipe. The dryer, heater, and first solenoid valve are all connected to the controller, and the first pressure transmitter and the first humidity transmitter are both connected to the analog input module.
[0014] Furthermore, a second solenoid valve is connected to the gas supply line, and the second solenoid valve is connected to the controller.
[0015] Furthermore, a first temperature transmitter, a second humidity transmitter, and a third solenoid valve are sequentially connected to the exhaust pipe. The third solenoid valve is connected to the controller, and the first temperature transmitter and the second humidity transmitter are both connected to the analog input module.
[0016] Furthermore, a fourth solenoid valve is provided on the first extraction pipeline, and a fifth solenoid valve is provided on the second extraction pipeline. Both the fourth and fifth solenoid valves are connected to the controller.
[0017] Furthermore, the low-pressure container is equipped with a second pressure transmitter, a second temperature transmitter, and a third humidity transmitter, all of which are connected to the analog input module.
[0018] Furthermore, the processing equipment for drying the ignition agent container also includes a human-machine interface module and an alarm module. Both the human-machine interface module and the alarm module are connected to the control system. The human-machine interface module is used to display the operating parameters of the control system, and the alarm module is used to issue warnings and reminders.
[0019] A method for drying ignition agent containers is also provided, which uses the processing equipment for drying ignition agent containers as described above, and includes the following steps:
[0020] Step 1, Detection; The control system performs detection, reading the working status and parameters of the equipment's process system and auxiliary systems;
[0021] Step 2, Initialization; The control system initializes the control and processing equipment, opens the intake pipe, supply pipe and exhaust pipe, and closes the first and second extraction pipes.
[0022] Step 3, pre-drying; close the gas supply line, exhaust line, and second extraction line, open the first extraction line, and turn on the gas source and extraction machine;
[0023] Step 4: End pre-drying; close the first exhaust pipe and the intake pipe;
[0024] Step 5, drying; turn on the air source, turn on the air intake line, air supply line and exhaust line, and open the second air extraction line;
[0025] Step 6, end drying; close the intake pipe and supply pipe, open the exhaust pipe, the first extraction pipe and the second extraction pipe, and end the process.
[0026] Furthermore, after step 5 is completed, the real-time humidity value in the exhaust pipe is detected. If it is greater than the target value, step 5 is continued; if it is less than the target value, step 6 is executed.
[0027] The present invention has the following beneficial effects:
[0028] The processing equipment for drying ignition agent containers according to embodiments of the present invention can effectively remove residual moisture from the ignition agent liquid chamber. By replacing the ignition agent liquid chamber with dried and heated gas, the ignition agent liquid chamber can be dried, ensuring the service life of the ignition agent container and avoiding safety hazards caused by improper operation of vacuum drying equipment. At the same time, it can determine the degree of dryness of the ignition agent liquid chamber, and the heated gas can also heat and evaporate and blow away the organic solvents used in the cleaning process, effectively eliminating the safety hazards caused by organic solvents.
[0029] The processing method for drying ignition agent containers in this embodiment of the invention is designed based on the processing equipment for drying ignition agent containers described above. Its beneficial effects are similar to those of the processing equipment for drying ignition agent containers described above, and will not be repeated here. Attached Figure Description
[0030] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0031] Figure 1 This is a schematic diagram of a processing device for drying ignition agent containers provided in an embodiment of the present invention;
[0032] Figure 2 This is a schematic diagram of the equipment process system and auxiliary system provided in the embodiments of the present invention;
[0033] Figure 3 This is a schematic diagram of the inlet and outlet pipes within the ignition agent liquid chamber provided in an embodiment of the present invention;
[0034] Figure 4 This is a flowchart illustrating a method for drying an ignition agent container according to an embodiment of the present invention.
[0035] Explanation of the markings in the image:
[0036] 1. Equipment process system; 2. Ignition agent container; 3. Auxiliary system; 4. Control system; 5. Inlet pipe; 6. Gas supply pipe; 7. Exhaust pipe; 8. First extraction pipe; 9. Second extraction pipe; 10. Low-pressure vessel; 11. Second pressure transmitter; 12. Second temperature transmitter; 13. Third humidity transmitter; 21. Ignition agent liquid chamber; 22. Pressurized gas chamber; 31. Gas source; 32. Vacuum pump; 33. Human-machine interface module; 34. Alarm module; 41. Controller; 42. Power supply; 43. Analog input module; 51. Dryer; 52. Heater; 53. First solenoid valve; 54. First pressure transmitter; 55. First humidity transmitter; 61. Second solenoid valve; 71. First temperature transmitter; 72. Second humidity transmitter; 73. Third solenoid valve; 74. Opening; 81. Fourth solenoid valve; 91. Fifth solenoid valve. Detailed Implementation
[0037] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0038] It should be understood that, when used in this specification and the appended claims, the terms "comprising" and "including" indicate the presence of the described features, integrals, steps, operations, elements and / or components, but do not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components and / or collections thereof.
[0039] It should also be understood that the terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the invention. As used in this specification and the appended claims, the singular forms “a,” “an,” and “the” are intended to include the plural forms unless the context clearly indicates otherwise.
[0040] It should also be further understood that the term "and / or" as used in this specification and the appended claims refers to any combination of one or more of the associated listed items and all possible combinations, and includes such combinations.
[0041] Example 1
[0042] Please see Figure 1-2As shown, the processing equipment for drying ignition agent containers provided in this embodiment includes a control system 4, a process system 1 and an auxiliary system 3 connected to the control system 4. The process system 1 includes a low-pressure container 10 and an ignition agent container 2. The auxiliary system 3 includes a gas source 31 and a vacuum pump 32. The gas source 31 is connected to the low-pressure container 10 through an inlet pipe 5. The low-pressure container 10 is connected to the ignition agent container 2 through a gas supply pipe 6. The ignition agent container 2 is provided with an exhaust pipe 7. The low-pressure container 10 is connected to the ignition agent container 2 through a first vacuum pump. Pipeline 8 is connected to the vacuum pump 32, and the ignition agent container 2 is connected to the vacuum pump 32 through the second vacuum pipeline 9; the control system 4 is used to control the switching of the gas source 31 and the vacuum pump 32, as well as the opening and closing of the inlet pipeline 5, the supply pipeline 6, the exhaust pipeline 7, the first vacuum pipeline 8 and the second vacuum pipeline 9; wherein, the ignition agent container 2 includes an ignition agent liquid chamber 21 and a pressurized gas chamber 22, the second vacuum pipeline 9 is connected to the pressurized gas chamber 22, and the supply pipeline 6 and the exhaust pipeline 7 are both connected to the ignition agent liquid chamber 21.
[0043] In the above process, the gas in the gas source 31 first enters the low-pressure container 10 through the inlet pipe 5, and then enters the ignition agent liquid chamber 21 on the ignition agent container 2 through the gas supply pipe 6. The presence of the low-pressure container 10 can prevent the compressed gas in the gas source 31 from directly entering the ignition agent container 2 and impacting its structure. During the drying process, the gas in the low-pressure container is replaced by the gas provided by the gas source 31 and then extracted by the vacuum pump 32 through the first vacuum pipe 8. The gas provided by the gas source 31 is then slowly introduced into the ignition agent container 2 through the gas supply pipe 6 to dry the ignition agent container 2. Subsequently, the gas in the pressurized gas chamber 22 is extracted by the vacuum pump 32 through the second vacuum pipe 9, and the gas in the ignition agent liquid chamber 21 is discharged through the exhaust pipe 7. This achieves the drying of the ignition agent liquid chamber 21 and also removes organic solvents, effectively eliminating the safety hazards caused by organic solvents.
[0044] See Figure 3 Since both the intake pipe 5 and the exhaust pipe 7 are connected to the ignition agent liquid chamber 21, the intake pipe 5 and the exhaust pipe 7 are connected to the ignition agent liquid chamber 21 in a sleeve-like manner, with the intake pipe 5 as the inner layer and the exhaust pipe 7 as the outer layer. To increase exhaust efficiency, an opening 74 is added to the interface of the exhaust pipe 7 to ensure exhaust efficiency.
[0045] Optionally, the gas source 31 is an air compressor, whose main function is to provide compressed gas for the processing equipment used for drying ignition agent containers.
[0046] See Figure 1As shown, specifically, the control system 4 includes a controller 41, a power supply 42, and an analog input module 43. Both the power supply 42 and the analog input module 43 are electrically connected to the controller 41. The controller 41 can perform overall control of the processing equipment used for drying ignition agent containers. The power supply 42 can provide power to the processing equipment used for drying ignition agent containers. The analog input module 43 is used to output various parameters as electrical signals and feed them back to the controller 41.
[0047] Specifically, a dryer 51, a heater 52, a first solenoid valve 53, a first pressure transmitter 54, and a first humidity transmitter 55 are sequentially connected to the intake pipe 5. The dryer 51, heater 52, and first solenoid valve 53 are all connected to the controller 41. The first pressure transmitter 54 and the first humidity transmitter 55 are both connected to the analog input module 43. The dryer 51 is used to dry the gas supplied by the gas source 31, the heater 52 is used to heat the gas supplied by the gas source 31, the first solenoid valve 53 is used to control the opening and closing of the intake pipe 5, and the first pressure transmitter 54 and the first humidity transmitter 55 are used to measure the pressure and humidity values in the intake pipe 5, respectively, and transmit the measured values to the analog input module 43.
[0048] In this embodiment, there are two dryers 51. The two dryers 51 can more effectively dry the gas provided by the gas source 31, thereby ensuring the dryness of the gas delivered to the low-pressure container 10. By replacing the dried and heated gas into the ignition agent liquid chamber 21, the ignition agent liquid chamber 21 can be dried.
[0049] Specifically, a second solenoid valve 61 is connected to the gas supply line 6. The second solenoid valve 61 is connected to the controller 41 and is used to control the opening and closing of the gas supply line 6.
[0050] Specifically, a first temperature transmitter 71, a second humidity transmitter 72, and a third solenoid valve 73 are sequentially connected to the exhaust pipe 7. The third solenoid valve 73 is connected to the controller 41. The first temperature transmitter 71 and the second humidity transmitter 72 are both connected to the analog input module 43. The first temperature transmitter 71 and the second humidity transmitter 72 are used to measure the temperature and humidity values in the exhaust pipe 7, respectively. The third solenoid valve 73 is used to control the opening and closing of the exhaust pipe 7.
[0051] Specifically, a fourth solenoid valve 81 is provided on the first air extraction pipeline 8, and a fifth solenoid valve 91 is provided on the second air extraction pipeline 9. Both the fourth solenoid valve 81 and the fifth solenoid valve 91 are connected to the controller 41. The fourth solenoid valve 81 is used to control the opening and closing of the first air extraction pipeline 8, and the fifth solenoid valve 91 is used to control the opening and closing of the second air extraction pipeline 9.
[0052] Specifically, a second pressure transmitter 11, a second temperature transmitter 12, and a third humidity transmitter 13 are provided on the low-pressure container 10. The second pressure transmitter 11, the second temperature transmitter 12, and the third humidity transmitter 13 are all connected to the analog input module 43. The second pressure transmitter 11, the second temperature transmitter 12, and the third humidity transmitter 13 are used to measure the pressure, temperature, and humidity values inside the low-pressure container 10, and transmit the measured values to the analog input module 43.
[0053] See Figure 1 As shown, optionally, the processing equipment for drying the ignition agent container also includes a human-machine interface module 33 and an alarm module 34. Both the human-machine interface module 33 and the alarm module 34 are connected to the control system 4. The human-machine interface module 33 is used to display the operating parameters of the control system 4, and the alarm module 34 is used to issue warnings.
[0054] Specifically, the human-machine interface module 33 mainly displays the on / off status of the dryer 51, heater 52, first solenoid valve 53, second solenoid valve 61, third solenoid valve 73, fourth solenoid valve 81 and fifth solenoid valve 91, which facilitates manual control by the operator. It can also display the real-time values of various pressures, temperatures and humidity obtained by the analog input module 43. At the same time, the operator can use it to set various working parameters and query historical data and other information.
[0055] Specifically, alarm module 34 is an audible and visual alarm device. The functions of alarm module 34 include issuing warnings when equipment operating parameters exceed limits and issuing warnings when a process is completed.
[0056] Example 2
[0057] Please see Figure 4 As shown, a method for drying the ignition agent container 2 is also provided, which uses the drying equipment for the ignition agent container 2 described in Example 1, and includes the following steps:
[0058] Step 1, Detection; Turn on power 42 and turn on controller 41 to detect the processing equipment, read the working status of dryer 51, heater 52, first solenoid valve 53, second solenoid valve 61, third solenoid valve 73, fourth solenoid valve 81 and fifth solenoid valve 91, as well as the real-time working parameters of first pressure transmitter 54, first humidity transmitter 55, first temperature transmitter 71, second humidity transmitter 72, second pressure transmitter 11, second temperature transmitter 12 and third humidity transmitter 13;
[0059] Step 2, Initialization; Controller 41 initializes the control processing equipment, shuts down heater 52, shuts down fourth solenoid valve 81 and fifth solenoid valve 91, and opens first solenoid valve 53, second solenoid valve 61 and third solenoid valve 73.
[0060] Step 3, pre-drying; the real-time values of the second pressure transmitter 11, the second temperature transmitter 12 and the third humidity transmitter 13 are read through the analog input module 43, and the controller 41 starts to execute the drying program of the low-pressure container 10. During this process, the second solenoid valve 61, the third solenoid valve 73 and the fifth solenoid valve 91 are closed, the fourth solenoid valve 81 and the heater 52 are opened, the gas source 31 is turned on to provide compressed gas, and the vacuum pump 32 is started.
[0061] Step 4: End the pre-drying process by detecting the real-time values of the second temperature transmitter 12 and the third humidity transmitter 13. After the inside of the low-pressure container 10 is completely dry, the drying process of the low-pressure container 10 is completed. The alarm module 34 issues a warning and closes the four solenoid valves and the first solenoid valve 53.
[0062] Step 5, Drying; Controller 41 starts executing the drying program of ignition agent container 2, turns on gas source 31, opens heater 52, first solenoid valve 53, second solenoid valve 61, and third solenoid valve 73, closes fourth solenoid valve 81, and then opens fifth solenoid valve 91. At this time, the dry hot air generated by gas source 31 is slowly pressed into the ignition agent liquid chamber 21 of ignition agent container 2 after passing through low-pressure container 10. At the same time, the gas in pressurized gas chamber 22 of ignition agent container 2 is discharged through fifth solenoid valve 91 to ensure that the gas pressure in ignition agent liquid chamber 21 is greater than the gas pressure in pressurized gas chamber 22, so as to ensure the service life of ignition agent container 2.
[0063] Step 6: End drying; Check the status of the first solenoid valve 53, the second solenoid valve 61, the third solenoid valve 73, the fourth solenoid valve 81, the fifth solenoid valve 91 and the heater 52, close the first solenoid valve 53 and the second solenoid valve 61 in sequence, open the third solenoid valve 73, the fourth solenoid valve 81 and the fifth solenoid valve 91, and after confirming that the readings of the first pressure transmitter 54 and the second pressure transmitter 11 are equal to the standard atmospheric pressure, the alarm module 34 issues a warning reminder and ends the processing procedure.
[0064] Specifically, after step 5, the ignition agent container 2 reads the real-time values of the first humidity transmitter 55 and the second humidity transmitter 72. If the values are greater than the target value, step (5) is continued; if the values are less than the target value, step 6 is executed.
[0065] First solenoid valve 53, second solenoid valve 61, third solenoid valve 73, fourth solenoid valve 81, fifth solenoid valve 91, heater 52, first solenoid valve 53, second solenoid valve 61, third solenoid valve 73, fourth solenoid valve 81, fifth solenoid valve 91, first pressure transmitter 54, second pressure transmitter 11. Specifically, in steps 3 to 5, if the controller 41 detects that the real-time value of at least one of the first pressure transmitter 54, the second pressure transmitter 11, the first temperature transmitter 71, and the second temperature transmitter 12 is greater than the set value, the controller 41 will initiate an emergency stop procedure. The emergency stop procedure is to close the first solenoid valve 53 and open the second solenoid valve 61, the third solenoid valve 73, the fourth solenoid valve 81, and the fifth solenoid valve 91. The alarm module 34 will issue a warning and shut down the air compressor to cut off the air supply.
[0066] Optionally, the operator can set the running time of the drying program for the low-pressure container 10 and the drying program for the ignition agent container 2 on the human-machine interface module 33 to achieve automatic processing mode. The operator can also set the upper and lower limits of the parameters of the first pressure transmitter 54, the first humidity transmitter 55, the first temperature transmitter 71, the second humidity transmitter 72, the second pressure transmitter 11, the second temperature transmitter 12 and the third humidity transmitter 13. When the parameter exceeds the upper or lower limit, the alarm module 34 issues a warning to facilitate the operator's inspection.
[0067] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in the present invention, and these modifications or substitutions should all be covered within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
Claims
1. A processing device for drying ignition agent containers, characterized in that, The system includes a control system and a process system and auxiliary systems connected to the control system. The process system includes a low-pressure vessel and an ignition agent vessel. The auxiliary system includes a gas source and a vacuum pump. The gas source is connected to the low-pressure vessel through an inlet pipe. The low-pressure vessel is connected to the ignition agent vessel through a supply pipe. The ignition agent vessel is equipped with an exhaust pipe. The low-pressure vessel is connected to the vacuum pump through a first vacuum pipe. The ignition agent vessel is connected to the vacuum pump through a second vacuum pipe. The control system is used to control the switching on and off of the gas source and the vacuum pump, as well as the on / off states of the inlet pipe, supply pipe, exhaust pipe, first vacuum pipe, and second vacuum pipe. The ignition agent container includes an ignition agent liquid chamber and a pressurized gas chamber, the second extraction pipe is connected to the pressurized gas chamber, and the gas supply pipe and the exhaust pipe are both connected to the ignition agent liquid chamber. The control system includes a controller, a power supply, and an analog input module, both of which are electrically connected to the controller. A dryer, a heater, a first solenoid valve, a first pressure transmitter, and a first humidity transmitter are sequentially connected to the air intake pipe. The dryer, heater, and first solenoid valve are all connected to the controller, and the first pressure transmitter and first humidity transmitter are both connected to the analog input module. A second solenoid valve is connected to the gas supply pipeline, and the second solenoid valve is connected to the controller; the gas supply pipeline and the exhaust pipeline are connected to the ignition agent liquid chamber in a sleeve-like manner, with the inner layer being the gas supply pipeline and the outer layer being the exhaust pipeline. A first temperature transmitter, a second humidity transmitter, and a third solenoid valve are sequentially connected to the exhaust pipe. The third solenoid valve is connected to the controller, and the first temperature transmitter and the second humidity transmitter are both connected to the analog input module. A fourth solenoid valve is provided on the first air extraction pipeline, and a fifth solenoid valve is provided on the second air extraction pipeline. Both the fourth and fifth solenoid valves are connected to the controller. The low-pressure vessel is equipped with a second pressure transmitter, a second temperature transmitter, and a third humidity transmitter, all of which are connected to the analog input module.
2. The processing equipment for drying ignition agent containers according to claim 1, characterized in that, The processing equipment for drying ignition agent containers also includes a human-machine interface module and an alarm module. Both the human-machine interface module and the alarm module are connected to the control system. The human-machine interface module is used to display the operating parameters of the control system, and the alarm module is used to issue warnings and reminders.
3. A method for drying ignition agent containers, characterized in that, The process, performed using the equipment for drying ignition agent containers as described in any one of claims 1-2, includes the following steps: Step 1, Detection; The control system performs detection, reading the working status and parameters of the equipment's process system and auxiliary systems; Step 2, Initialization; The control system initializes the control and processing equipment, opens the intake pipe, supply pipe and exhaust pipe, and closes the first and second extraction pipes. Step 3, pre-drying; close the gas supply line, exhaust line, and second extraction line, open the first extraction line, and turn on the gas source and extraction machine; Step 4: End pre-drying; close the first exhaust pipe and the intake pipe; Step 5, drying; turn on the air source, turn on the air intake pipe, air supply pipe and exhaust pipe, and open the second air extraction pipe; Step 6, end drying; close the intake pipe and supply pipe, open the exhaust pipe, the first extraction pipe and the second extraction pipe, and end the process.
4. The treatment method for drying ignition agent containers according to claim 3, characterized in that, After step 5 is completed, the real-time humidity value in the exhaust pipe is detected. If it is greater than the target value, step 5 is continued; if it is less than the target value, step 6 is executed.
Citation Information
Patent Citations
Gas supply pipeline pressure regulation device and gas production device
CN202266831U
Drying system and drying device
CN217654188U