Water gas component real-time monitoring system
By introducing a first-level cooling mechanism, a bimetallic thermostat and a centrifugal separation mechanism into the real-time monitoring system of water and gas components, the problem of blockage of water and gas cooler is solved, and efficient cooling and gas-liquid separation is achieved, ensuring the accuracy and timeliness of water and gas component monitoring.
Patent Information
- Application Number
- CN202510414320.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-02
- Publication Date
- 2025-07-08
AI Technical Summary
The heat exchange effect of the traditional water gas sampling system cooler is poor, resulting in frequent generation of ammonium salt crystals, which leads to blockage of the sample pipeline, affecting the accuracy and timeliness of the measurement of water gas components.
The first-stage cooling mechanism and the second-stage cooling mechanism are combined with the separation mechanism, and the fan and centrifugal cylinder are used to perform gas cooling and liquid water separation respectively. The cooling effect is controlled through a temperature sensor and a bimetallic thermostat. Combined with the stainless steel tube bundle and circulating water system, ensuring efficient cooling and preventing blockage.
It effectively avoids the blockage of the sample pipeline by ammonium salt crystallization, ensures the accuracy and timeliness of water and gas components monitoring, and improves cooling efficiency and gas-liquid separation effect.
Smart Images

Figure CN120282414A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of gas monitoring, and specifically to a real-time monitoring system for the components of water gas. Background Art
[0002] As an important industrial gas fuel and chemical raw material, the main components of water gas include hydrogen (H2), carbon monoxide (CO), carbon dioxide (CO2), nitrogen (N2), and a small amount of methane (CH4), etc. In the production process of water gas and related processes, the water gas sample often contains components such as ammonia and hydrogen sulfide. When the temperature is below 85 °C, ammonia and hydrogen sulfide will react to form ammonium salt crystals, and these crystals are extremely easy to accumulate in the sample pipeline, thus causing the sample pipeline to be blocked. Once the sample pipeline is blocked, it will seriously affect the accuracy and timeliness of the measurement of the components of water gas, and further interfere with the monitoring and control of the entire production process.
[0003] The heat exchange effect of the cooler in the traditional water gas sampling system is not good, and it cannot effectively control the sample temperature, resulting in frequent occurrence of ammonium salt crystals, unreasonable layout of the inlet and outlet water pipelines, low cooling efficiency, and lack of effective anti-freezing and anti-blocking measures. Summary of the Invention
[0004] (1) Technical Problems to be Solved
[0005] In view of the deficiencies of the prior art, the present invention provides a real-time monitoring system for the components of water gas, which has the advantages of effectively avoiding the blockage of the sample pipeline by ammonium salt crystals, etc., and solves the problems mentioned in the above background art.
[0006] (2) Technical Solutions
[0007] To achieve the above object, the present invention provides the following technical solution: A real-time monitoring system for water gas components, including a housing, in the middle of the front of the housing is fixedly connected with a liquid viewing tube, in the middle of the left side of the housing is fixedly connected with an intake pipe, on the right side of the housing is provided with a first connecting mechanism, on the right side of the first connecting mechanism is provided with a primary cooling mechanism, on the right side of the primary cooling mechanism is provided with a secondary cooling mechanism, on the right side of the secondary cooling mechanism is provided with a second connecting mechanism. The first connecting mechanism includes a first threaded outlet pipe, one end of the first threaded outlet pipe is fixedly connected to the middle of the right side of the housing, on the outer side of the right side of the first threaded outlet pipe is provided with a first gasket, in the middle of the right side of the first gasket is fixedly connected with a first connecting pipe, in the middle of the outer side of the first connecting pipe is provided with a first threaded sleeve. The primary cooling mechanism includes a wind cylinder, in the middle of the left side of the wind cylinder is fixedly connected to the right side of the first connecting pipe, in the middle of the left inner wall of the wind cylinder is fixedly connected with a cross bar, in the middle of the right side of the cross bar is fixedly connected with a fixed cylinder, in the middle of the left inner part of the fixed cylinder is fixedly installed with a first motor, on the right side of the first motor is fixedly connected with a first rotating shaft, on the right side of the first rotating shaft is provided with a fan, on the right side of the fixed cylinder is fixedly connected with a filter disc, on the right inner wall of the wind cylinder is fixedly connected with a plurality of heat dissipation fins, in the middle of the right upper surface of the wind cylinder is provided with a temperature sensor, in the middle of the left side of the cross bar is provided with a bimetallic thermostat, in the middle of the front of the wind cylinder is fixedly installed with an operation panel, in the middle of the right side of the wind cylinder is fixedly connected with a first flow pipe.
[0008] Preferably, a plurality of tube bundles are arranged inside the housing, both the left and right sides of the tube bundles are fixedly connected with tube sheets, below the left side of the left tube sheet is fixedly connected with a water inlet pipe, below the right side of the right tube sheet is fixedly connected with a water outlet pipe, on the outer side of the left side of the water inlet pipe is provided with a circulating water pipeline pump.
[0009] The tube bundle is composed of a plurality of heat exchange tubes arranged neatly. The heat exchange tubes are generally made of stainless steel to ensure efficient heat conduction performance and corrosion resistance to circulating water and water gas. The tube sheets are used to fix both ends of the heat exchange tubes to ensure the stability of the tube bundle, and at the same time realize the separation of the tube side and the shell side. The circulating water enters the housing through the water inlet pipe and is discharged out through the water outlet pipe. The circulating water pipeline pump is responsible for ensuring the stable transportation of the circulating water to meet the requirements of the cooler for the water pressure difference.
[0010] Preferably, the second connecting mechanism includes a second connecting pipe, one side of the second connecting pipe is fixedly connected to the middle of the right side of the secondary cooling mechanism, and the right side of the second connecting pipe is fixedly connected with a second gasket.
[0011] Preferably, on the middle of the outer side of the second connecting pipe is provided with a second threaded sleeve, on the outer side of the right side of the second gasket is provided with a second threaded outlet pipe, and on the right side of the second threaded outlet pipe is provided with a separation mechanism.
[0012] One end of the second connecting pipe is vertically connected to the middle part on the right side of the secondary cooling mechanism. The second cushion plate and the second threaded gas outlet pipe can be fitted together. The second threaded sleeve can slide horizontally outside the second connecting pipe and perform threaded rotational movement with the second threaded gas outlet pipe, threading the secondary cooling mechanism and the separation mechanism together, facilitating disassembly and assembly by the operator.
[0013] Preferably, the separation mechanism includes a separation tank. The middle part above the left side of the separation tank is fixedly connected to the right side of the second threaded gas outlet pipe, and a plurality of support legs are fixedly connected to the lower surface of the separation tank.
[0014] Preferably, a second flow pipe is fixedly connected to the middle part above the left side of the inner wall of the separation tank, an exhaust pipe is fixedly connected to the middle part of the upper surface of the separation tank, and an automatic liquid discharge valve is arranged in the middle part below the right side of the separation tank.
[0015] The support legs support the separation tank. The second flow pipe communicates with the second threaded gas outlet pipe. The cooled water gas enters the interior of the separation tank through the second threaded gas outlet pipe and the second flow pipe. The separated gas is discharged outward through the exhaust pipe. When the liquid level inside the separation tank reaches a certain height, the automatic liquid discharge valve opens and the liquid water is discharged.
[0016] Preferably, a placement rack is fixedly connected to the position near the middle of the lower surface of the separation tank. A second motor is fixedly installed at the bottom inside the placement rack, and a sealing gasket is arranged in the middle of the lower surface of the separation tank.
[0017] Preferably, a second rotating shaft is arranged at the top of the second motor, and a centrifugal cylinder is fixedly connected to the top of the second rotating shaft.
[0018] The placement rack is used to install the second motor. The second motor drives the centrifugal cylinder at the top to rotate inside the separation tank through the second rotating shaft at the top. Under the action of centrifugal force, the liquid water is thrown towards the tank wall and accumulates at the bottom of the tank along the tank wall, performing gas-liquid separation on the liquid water.
[0019] Compared with the prior art, the present invention provides a real-time monitoring system for the components of water gas, having the following beneficial effects:
[0020] 1. The real-time monitoring system for the water gas components is connected to the first threaded outlet pipe in the middle of the right side of the housing. The first threaded sleeve can slide outside the first connecting pipe and perform threaded rotational movement with the first threaded outlet pipe to connect the air duct to the housing. The first motor drives the fan to operate through the first rotating shaft. The heat dissipation fins increase the heat dissipation area. The temperature sensor monitors the temperature inside the air duct in real time, and it can transmit signals to the bimetal thermostat to control the operation of the fan, thereby effectively avoiding the blockage of the sample pipeline caused by ammonium salt crystallization.
[0021] 2. The real-time monitoring system for the water gas components is equipped with a second motor installed at the bottom inside the placement rack. The second motor drives the centrifugal cylinder at the top to operate inside the separation tank through the second rotating shaft at the top. The liquid water in the separation tank will be thrown towards the tank wall and accumulate at the bottom of the tank along the tank wall, thereby effectively separating the liquid water and gas. Brief Description of the Drawings
[0022] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0023] Figure 2 It is a schematic diagram of the internal structure of the housing of the present invention;
[0024] Figure 3 It is a schematic diagram of the front cross-sectional view of the housing of the present invention;
[0025] Figure 4 It is a schematic diagram of the internal structure of the primary cooling mechanism and the secondary cooling mechanism of the present invention;
[0026] Figure 5 It is a schematic diagram of the front cross-sectional view of the primary cooling mechanism of the present invention;
[0027] Figure 6 It is a schematic diagram of the front cross-sectional view of the secondary cooling mechanism of the present invention;
[0028] Figure 7 It is a schematic diagram of the internal structure of the separation tank of the present invention;
[0029] Figure 8 It is a schematic diagram of the front cross-sectional view of the separation tank of the present invention.
[0030] Wherein: 1. Outer shell; 101. Liquid viewing tube; 102. Air inlet pipe; 103. Tube bundle; 104. Tube sheet; 105. Water inlet pipe; 106. Water outlet pipe; 107. Circulating water pipeline pump; 2. First connection mechanism; 201. First threaded air outlet pipe; 202. First gasket; 203. First connecting pipe; 204. First threaded sleeve; 3. Primary cooling mechanism; 301. Air duct; 302. Cross bar; 303. Fixed cylinder; 304. First motor; 305. First rotating shaft; 306. Fan; 307. Filter disc; 308. Heat dissipation fins; 309. Temperature sensor; 310. Bimetallic thermostat; 311. Operation panel; 312. First flow pipe; 4. Secondary cooling mechanism; 5. Second connection mechanism; 501. Second connecting pipe; 502. Second gasket; 503. Second threaded sleeve; 504. Second threaded air outlet pipe; 6. Separation mechanism; 601. Separation tank; 602. Support leg; 603. Second flow pipe; 604. Exhaust pipe; 605. Automatic drain valve; 606. Placing rack; 607. Second motor; 608. Sealing gasket; 609. Second rotating shaft; 610. Centrifugal cylinder. Detailed implementation manners
[0031] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0032] Please refer to Figure 1-8, A real-time monitoring system for water gas components, including a housing 1. In the middle of the front of the housing 1, a liquid viewing tube 101 is fixedly connected. In the middle of the left side of the housing 1, an air inlet pipe 102 is fixedly connected. On the right side of the housing 1, a first connection mechanism 2 is provided. On the right side of the first connection mechanism 2, a primary cooling mechanism 3 is provided. On the right side of the primary cooling mechanism 3, a secondary cooling mechanism 4 is provided. On the right side of the secondary cooling mechanism 4, a second connection mechanism 5 is provided. The first connection mechanism 2 includes a first threaded air outlet pipe 201. One end of the first threaded air outlet pipe 201 is fixedly connected to the middle of the right side of the housing 1. On the outer side of the right side of the first threaded air outlet pipe 201, a first gasket 202 is provided. In the middle of the right side of the first gasket 202, a first connecting pipe 203 is fixedly connected. In the middle of the outer side of the first connecting pipe 203, a first threaded sleeve 204 is provided. The housing 1 is made of carbon steel, with good strength and corrosion resistance, and can withstand a certain pressure. The liquid viewing tube 101 facilitates the staff to observe the situation inside the housing 1. The water gas enters the inside of the housing 1 through the air inlet pipe 102. The gas inside the housing 1 is discharged through the first threaded air outlet pipe 201 and enters the air duct 301. The first gasket 202 and the first threaded air outlet pipe 201 can fit together. The first threaded sleeve 204 can slide horizontally on the outside of the first connecting pipe 203 and rotate in a threaded manner with the first threaded air outlet pipe 201, facilitating the operator to disassemble and assemble the housing 1 and the primary cooling mechanism 3;
[0033] The primary cooling mechanism 3 includes a blower tube 301. The middle part on the left side of the blower tube 301 is fixedly connected to the right side of the first connecting pipe 203. The middle part on the left inner wall of the blower tube 301 is fixedly connected to a cross bar 302. The middle part on the right side of the cross bar 302 is fixedly connected to a fixed cylinder 303. The middle part on the left side inside the fixed cylinder 303 is fixedly installed with a first motor 304. The right side of the first motor 304 is fixedly connected to a first rotating shaft 305. A fan 306 is arranged on the right side of the first rotating shaft 305. The right side of the fixed cylinder 303 is fixedly connected to a filter disc 307. A plurality of heat dissipation fins 308 are fixedly connected to the right inner wall of the blower tube 301. The middle part on the right upper surface of the blower tube 301 is provided with a temperature sensor 309. The middle part on the left side of the cross bar 302 is provided with a bimetallic thermostat 310. The middle part on the front surface of the blower tube 301 is fixedly installed with an operation panel 311. The middle part on the right side of the blower tube 301 is fixedly connected to a first flow pipe 312. The cross bar 302 is vertically connected to the middle part on the left inner wall of the blower tube 301 for installing the fixed cylinder 303. The first motor 304 drives the fan 306 to operate through the first rotating shaft 305, blowing the water gas towards the heat dissipation fins 308 on the right side. The filter disc 307 can provide a certain degree of filtering protection for the first motor 304 and the fan 306 inside the fixed cylinder 303. The heat dissipation fins 308 increase the heat dissipation area and improve the heat dissipation efficiency of the water gas. The temperature sensor 309 monitors the temperature of the water gas inside the blower tube 301 in real time. When the temperature is too high, the temperature sensor 309 transmits a signal to the bimetallic thermostat 310. The bimetallic strip expands when heated and will bend and deform, causing the control circuit to connect the power supply of the first motor 304, and the fan 306 operates, increasing the air flow rate and accelerating the cooling of the water gas. As the cooling process proceeds, the temperature of the water gas gradually decreases. When the temperature drops below the set value, the bimetallic strip cools and contracts to return to its original state, and the control circuit disconnects the power supply of the first motor 304, and the fan 306 stops working or reduces its speed, reducing the air flow rate to avoid excessive drop in the temperature of the water gas. The first flow pipe 312 is connected between the blower tube 301 and the secondary cooling mechanism 4, and the secondary cooling mechanism 4 is similar in structure to the primary cooling mechanism 3.
[0034] Specifically, as Figure 1 and Figure 2 shown, a plurality of tube bundles 103 are arranged inside the housing 1. Tube plates 104 are fixedly connected to both the left and right sides of the tube bundles 103. The lower left side of the left tube plate 104 is fixedly connected to a water inlet pipe 105. The lower right side of the right tube plate 104 is fixedly connected to a water outlet pipe 106. A circulating water pipeline pump 107 is arranged outside the left side of the water inlet pipe 105.
[0035] Through the above technical solution, the tube bundle 103 is composed of multiple heat exchange tubes arranged neatly. The heat exchange tubes are generally made of stainless steel to ensure efficient heat conduction performance and corrosion resistance to circulating water and water gas. The tube sheet 104 is used to fix both ends of the heat exchange tubes, ensuring the stability of the tube bundle 103 and separating the tube side and the shell side at the same time. The circulating water enters the outer shell 1 through the water inlet pipe 105 and is discharged out through the water outlet pipe 106. The circulating water pipeline pump 107 is responsible for ensuring the stable transportation of the circulating water to meet the requirements of the cooler for the water pressure difference.
[0036] Specifically, as Figure 1 and Figure 6 shown, the second connection mechanism 5 includes a second connecting pipe 501. One side of the second connecting pipe 501 is fixedly connected to the middle part of the right side of the secondary cooling mechanism 4. A second cushion plate 502 is fixedly connected to the right side of the second connecting pipe 501. A second threaded sleeve 503 is arranged in the middle of the outside of the second connecting pipe 501. A second threaded air outlet pipe 504 is arranged on the outside of the right side of the second cushion plate 502. A separation mechanism 6 is arranged on the right side of the second threaded air outlet pipe 504.
[0037] Through the above technical solution, one end of the second connecting pipe 501 is vertically connected to the middle part of the right side of the secondary cooling mechanism 4. The second cushion plate 502 and the second threaded air outlet pipe 504 can be fitted together. The second threaded sleeve 503 can slide horizontally on the outside of the second connecting pipe 501 and perform a threaded rotational movement with the second threaded air outlet pipe 504, threading the secondary cooling mechanism 4 and the separation mechanism 6 together, which is convenient for the operator to disassemble and assemble.
[0038] Specifically, as Figure 7 and Figure 8 shown, the separation mechanism 6 includes a separation tank 601. The middle part of the upper left side of the separation tank 601 is fixedly connected to the right side of the second threaded air outlet pipe 504. A plurality of support legs 602 are fixedly connected to the lower surface of the separation tank 601. A second flow pipe 603 is fixedly connected to the middle part of the upper left side of the inner wall of the separation tank 601. An exhaust pipe 604 is fixedly connected to the middle part of the upper surface of the separation tank 601. An automatic liquid discharge valve 605 is arranged in the middle part of the lower right side of the separation tank 601.
[0039] Through the above technical solution, the support legs 602 support the separation tank 601. The second flow pipe 603 is communicated with the second threaded air outlet pipe 504. The cooled water gas enters the inside of the separation tank 601 through the second threaded air outlet pipe 504 and the second flow pipe 603. The separated gas is discharged out through the exhaust pipe 604. When the liquid level inside the separation tank 601 reaches a certain height, the automatic liquid discharge valve 605 opens and the liquid water is discharged.
[0040] Specifically, as Figure 8As shown, a placement rack 606 is fixedly connected to the position near the middle of the lower surface of the separation tank 601. A second motor 607 is fixedly installed at the inner bottom of the placement rack 606. A gasket 608 is provided in the middle of the lower surface of the separation tank 601. A second rotating shaft 609 is provided at the top of the second motor 607. A centrifugal cylinder 610 is fixedly connected to the top of the second rotating shaft 609.
[0041] Through the above technical solution, the placement rack 606 is used to install the second motor 607. The second motor 607 drives the centrifugal cylinder 610 at the top to rotate inside the separation tank 601 through the second rotating shaft 609 at the top. Under the action of centrifugal force, the liquid water is thrown towards the tank wall and accumulates at the bottom of the tank along the tank wall, realizing the gas-liquid separation of the liquid water.
[0042] During use, the operator passes the water body into the tube bundle 103 through the circulating water pipeline pump 107 and the water inlet pipe 105, and it flows out through the water outlet pipe 106 after flowing through the tube bundle 103. The water gas is passed into the housing 1 through the gas inlet pipe 102 for cooling. The cooled water gas enters the air duct 301 of the primary cooling mechanism 3 through the first threaded outlet pipe 201. The first motor 304 drives the fan 306 to operate through the first rotating shaft 305, cooling the water gas in the air duct 301. The temperature sensor 309 monitors the temperature of the water gas in the air duct 301 in real time. When the temperature is too high or too low, the signal is transmitted to the bimetallic thermostat 310 to control the operation of the first motor 304 and the fan 306 to ensure the temperature of the water gas. The water gas after primary cooling enters the secondary cooling mechanism 4 through the first flow pipe 312 for further cooling. The cooled water gas enters the separation tank 601 through the second threaded outlet pipe 504 and the second flow pipe 603. The second motor 607 drives the centrifugal cylinder 610 to operate through the second rotating shaft 609 at the top. Under the centrifugal action, the liquid water and the gas are separated, and the gas is discharged through the exhaust pipe 604 at the top. When the water body reaches a certain liquid level, it is discharged through the automatic drain valve 605.
[0043] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A real-time monitoring system for water gas components, comprising a housing (1), characterized in that: In the middle of the front of the housing (1), a liquid viewing tube (101) is fixedly connected. In the middle of the left side of the housing (1), an air inlet pipe (102) is fixedly connected. On the right side of the housing (1), a first connecting mechanism (2) is provided. On the right side of the first connecting mechanism (2), a primary cooling mechanism (3) is provided. On the right side of the primary cooling mechanism (3), a secondary cooling mechanism (4) is provided. On the right side of the secondary cooling mechanism (4), a second connecting mechanism (5) is provided. The first connecting mechanism (2) includes a first threaded air outlet pipe (201). One end of the first threaded air outlet pipe (201) is fixedly connected to the middle of the right side of the housing (1). On the outer side of the right side of the first threaded air outlet pipe (201), a first gasket (202) is provided. In the middle of the right side of the first gasket (202), a first connecting pipe (203) is fixedly connected. In the middle of the outer side of the first connecting pipe (203), a first threaded sleeve (204) is provided. The primary cooling mechanism (3) includes a wind tunnel (301). In the middle of the left side of the wind tunnel (301), the right side of the first connecting pipe (203) is fixedly connected. In the middle of the left inner wall of the wind tunnel (301), a cross bar (302) is fixedly connected. In the middle of the right side of the cross bar (302), a fixed cylinder (303) is fixedly connected. In the middle of the left side of the interior of the fixed cylinder (303), a first motor (304) is fixedly installed. On the right side of the first motor (304), a first rotating shaft (305) is fixedly connected. On the right side of the first rotating shaft (305), a fan (306) is provided. On the right side of the fixed cylinder (303), a filter disc (307) is fixedly connected. On the right inner wall of the wind tunnel (301), a number of heat dissipation fins (308) are fixedly connected. In the middle of the right upper surface of the wind tunnel (301), a temperature sensor (309) is provided. In the middle of the left side of the cross bar (302), a bimetallic thermostat (310) is provided. In the middle of the front of the wind tunnel (301), an operation panel (311) is fixedly installed. In the middle of the right side of the wind tunnel (301), a first flow pipe (312) is fixedly connected.
2. The real-time monitoring system for water gas components according to claim 1, wherein: Inside the housing (1), a number of tube bundles (103) are provided. On both the left and right sides of the tube bundles (103), tube sheets (104) are fixedly connected. Below the left side of the left tube sheet (104), a water inlet pipe (105) is fixedly connected. Below the right side of the right tube sheet (104), a water outlet pipe (106) is fixedly connected. On the outer side of the left side of the water inlet pipe (105), a circulating water pipeline pump (107) is provided.
3. The real-time monitoring system for water gas components according to claim 1, wherein: The second connecting mechanism (5) includes a second connecting pipe (501). One side of the second connecting pipe (501) is fixedly connected to the middle of the right side of the secondary cooling mechanism (4). On the right side of the second connecting pipe (501), a second gasket (502) is fixedly connected.
4. The real-time monitoring system for water gas components according to claim 3, characterized in that: The middle part of the outer side of the second connecting pipe (501) is provided with a second threaded sleeve (503). The outer side of the right side of the second gasket (502) is provided with a second threaded air outlet pipe (504). A separation mechanism (6) is arranged on the right side of the second threaded air outlet pipe (504).
5. The real-time monitoring system for the components of water gas according to claim 4, characterized in that: The separation mechanism (6) includes a separation tank (601). The middle part above the left side of the separation tank (601) is fixedly connected to the right side of the second threaded air outlet pipe (504). A plurality of support legs (602) are fixedly connected to the lower surface of the separation tank (601).
6. The real-time monitoring system for water gas components according to claim 5, characterized in that: The middle part above the left side of the inner wall of the separation tank (601) is fixedly connected to a second flow pipe (603). The middle part of the upper surface of the separation tank (601) is fixedly connected to an exhaust pipe (604). An automatic liquid discharge valve (605) is arranged in the middle part below the right side of the separation tank (601).
7. The real-time monitoring system for water gas components according to claim 5, characterized in that: A placement rack (606) is fixedly connected to the position close to the middle of the lower surface of the separation tank (601). A second motor (607) is fixedly installed at the bottom of the interior of the placement rack (606). A sealing gasket (608) is arranged in the middle part of the lower surface of the separation tank (601).
8. A real-time monitoring system for the components of water gas according to claim 5, characterized in that: A second rotating shaft (609) is arranged at the top of the second motor (607). A centrifugal cylinder (610) is fixedly connected to the top of the second rotating shaft (609).