A gas-water separation device with a safety pressure relief function
By using a detection panel to trigger pressure relief and a filtration mechanism to clean impurities, the problem of excessive internal pressure and blockage in the gas-water separator is solved, achieving safe pressure relief and efficient separation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-03-29
- Publication Date
- 2026-04-07
AI Technical Summary
Existing gas-liquid separators are prone to excessive internal pressure when the liquid inlet is too large, and the internal pressure is easily further increased due to impurities clogging the system. They are unable to quickly reduce the internal pressure to the safe limit, which affects the separation efficiency.
A gas-liquid separator with a safety pressure relief function was designed. The liquid inlet volume is detected by the detection panel and the pressure relief device is triggered to release pressure. Combined with the filtration mechanism and cleaning unit, clogging is prevented. Impurities are collected by rubber scrapers and sliding plates to avoid internal pressure rise and blockage.
It effectively prevents excessive internal pressure, prevents blockage of the standard liquid inlet pipe, improves gas-liquid separation efficiency and quality, and ensures that the internal pressure of the device is within a safe range.
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Figure CN116159346B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of gas-water separator technology, specifically to a gas-water separator device with a safety pressure relief function. Background Technology
[0002] Gas-liquid separators are mainly used in industrial liquid systems to separate gas and liquid, thereby improving the dryness of steam and reducing water carryover in steam. Commonly used gas-liquid separators include baffle type, packing type, and cyclone type.
[0003] The working principle of the baffle-type gas-liquid separator is as follows: Utilizing the difference in density between gas and liquid, when gas and liquid are mixed and flow together, if they encounter an obstruction, the gas will be deflected and flow away, while the liquid, due to inertia, will have a forward velocity. The forward-moving liquid adheres to the obstruction and, under the action of gravity, gathers downward and is discharged through the discharge pipe.
[0004] The principle of the packing gas-liquid separator is similar to that of the baffle gas-liquid separator, but compared with the ordinary baffle separator, the gas-liquid separator has a much larger blocking collection wall area, and the liquid easily adheres to the wall due to repeated baffles, so its separation efficiency is higher.
[0005] The principle of a cyclone gas-liquid separator is as follows: water-containing steam enters the gas-liquid separator and moves downwards in a centrifugal, inclined motion; the entrained water is separated due to the reduced speed; the separated liquid flows through a drain valve and is discharged, while the dry and clean steam is discharged from the separator outlet.
[0006] During operation, the gas-liquid separator needs to control the internal pressure of the device through a pressure relief device to ensure that the internal pressure of the gas-liquid separator is within the safe limit. However, in actual operation, the internal pressure of the gas-liquid separator often becomes too high due to various factors (such as inlet blockage, excessive liquid flow, etc.). In this case, if the internal pressure exceeds the limit value and pressure relief is performed, it is easy to fail to quickly reduce the internal pressure to below the limit value. Therefore, we propose a gas-liquid separator with a safe pressure relief function. Summary of the Invention
[0007] The purpose of this invention is to provide a gas-liquid separation device with a safety pressure relief function to solve the problems mentioned in the background art.
[0008] To achieve the above objectives, the present invention provides the following technical solution: a gas-liquid separation device with a safety pressure relief function, comprising a vertical separator, a separation mechanism disposed inside the vertical separator, and a standard liquid inlet pipe disposed on the vertical separator, wherein a processing pipe is disposed on the vertical separator, and the outlet of the processing pipe is connected to the inlet of the standard liquid inlet pipe, wherein a detection panel for detecting the liquid content is disposed inside the processing pipe, and a button body disposed on the outer wall of the processing pipe, and a drive unit for controlling the on / off state of the button body is disposed on the detection panel;
[0009] It also includes a filtration mechanism disposed inside the processing pipe, the filtration mechanism including a filtration area, a storage area and a collection area, and a rubber scraper disposed on one side of the filtration mechanism, and a cleaning unit disposed inside the processing pipe, wherein the cleaning unit is used to drive the rubber scraper to process impurities on the surface of the filtration area; and a connecting mechanism disposed on the driving unit, wherein the connecting mechanism is used to discharge the processed impurities to the collection area for collection.
[0010] Preferably, the drive unit includes a shaft disposed on the detection panel, and both ends of the shaft are rotatably connected to the inner wall of the processing pipe. One end of the shaft penetrates the inner wall of the processing pipe and extends to the outside. A drive rod is installed at the end of the shaft penetrating the inner wall of the processing pipe. A touch post is installed at the end of the drive rod, and the button body is located on the movement trajectory of the touch post. The connecting mechanism is disposed on the shaft.
[0011] Preferably, the cleaning unit includes a circular plate frame disposed inside the processing pipe, and multiple force-bearing plates are disposed on the circular plate frame, and the force-bearing plates are distributed in a ring at equal intervals on the circular plate frame. A rotating shaft is also disposed on the circular plate frame, and one end of the rotating shaft is rotatably connected to the inner wall of the processing pipe. A fixed housing is installed on the inner wall of the processing pipe, and the other end of the rotating shaft penetrates the outer wall of the fixed housing and extends into its interior.
[0012] Preferably, a worm is installed at the other end of the rotating shaft, and a worm wheel for meshing with the worm is installed inside the fixed housing, wherein a transmission column is installed on the worm wheel, and the end of the transmission column penetrates the inner wall of the fixed housing and is connected to the side wall of the rubber scraper.
[0013] Preferably, the inner diameter of the processing pipe is larger than the inner diameter of the standard inlet pipe, wherein the interior of the processing pipe is divided into region A and region B, wherein region A is located above region B, and the detection panel is located on region A, and the lowest stress plate on the circular plate frame is located on region B.
[0014] Preferably, the top of the storage area is in communication with the collection area, and adjustment grooves are provided on the inner walls of both sides of the storage area. A sliding plate frame is provided inside the storage area, and sliding columns for sliding connection with the adjustment grooves are provided on both sides of the sliding plate frame.
[0015] Preferably, the regulating groove is composed of a lifting area and an arc-shaped area.
[0016] Preferably, the connecting mechanism includes a pulley mounted on a shaft, and a rope is wound on the pulley, with the end of the rope penetrating the inner wall of the processing pipe and connecting to the top of the sliding plate frame.
[0017] Preferably, the inner wall of one side of the storage area is inclined, and a chamfered rod is installed on this side wall of the storage area.
[0018] Preferably, the separation mechanism includes a baffle installed on the inner wall of the vertical separator, the baffle being located on one side of the liquid outlet end of the standard liquid inlet pipe, and a plurality of umbrella-shaped separators installed inside the vertical separator. A foam net is installed near the top of the vertical separator, and a pressure relief device is installed on the vertical separator, the pressure relief device being electrically connected to the button body, and a drain pipe is installed near the bottom of the vertical separator.
[0019] Compared with the prior art, the beneficial effects of the present invention are:
[0020] This invention utilizes a detection panel to measure the influent volume and takes advantage of the panel's rotation caused by the impact of water flow. This rotation causes the shaft to sequentially drive the drive rod and the contact column to rotate. By touching the button, the pressure relief device can perform appropriate pressure relief based on the internal pressure of the vertical separator, effectively preventing excessive internal pressure in the vertical separator. Furthermore, the pressure relief device can perform pressure relief before the internal pressure reaches its peak, thus protecting the vertical separator.
[0021] This invention utilizes a filtration mechanism to treat impurities in liquids, preventing impurities from clogging the standard inlet pipe. Simultaneously, under the action of a rubber scraper, impurities on the surface of the filtration area can be scraped off into the storage area for collection. Furthermore, the scraped area is cleaned by a chamfering rod, thereby effectively preventing clogging of the standard inlet pipe.
[0022] This invention uses a rope to control the position of the sliding plate frame, and uses an arc-shaped area to change the angle of the sliding plate frame, so that impurities in the storage area can enter the collection area for storage, thus preventing impurities from being mixed with the water flow again. Attached Figure Description
[0023] Figure 1This is a schematic diagram illustrating the pipe structure of the present invention;
[0024] Figure 2 This is a schematic diagram of the overall structure of the present invention;
[0025] Figure 3 This is a schematic diagram of the vertical separator and its internal structure according to the present invention;
[0026] Figure 4 This is a schematic diagram of the internal structure of the pipeline processed by the present invention;
[0027] Figure 5 This is a schematic diagram of the structure of the outer wall of the pipe processed by the present invention;
[0028] Figure 6 This is a schematic diagram of the connection mechanism structure of the present invention;
[0029] Figure 7 This is a schematic diagram of the cleaning unit structure of the present invention;
[0030] Figure 8 This is a partial structural diagram of the cleaning unit of the present invention;
[0031] Figure 9 This is a schematic diagram of the filter mechanism structure of the present invention;
[0032] Figure 10 This is a partial structural diagram of the filtration mechanism of the present invention.
[0033] In the diagram: 1-Vertical separator; 2-Separation mechanism; 21-Baffle; 22-Umbrella separator; 23-Foam net; 24-Pressure relief device; 25-Drain pipe; 3-Standard inlet pipe; 4-Processing pipe; 41-Area A; 42-Area B; 5-Detection panel; 6-Button body; 7-Drive unit; 71-Shaft; 72-Drive rod frame; 73-Touch column; 8-Filtering mechanism; 81-Filtering area; 82-Storage area 83-Collection area; 84-Control groove; 841-Lifting area; 842-Arc-shaped area; 85-Sliding plate frame; 86-Sliding column; 87-Chamfered rod; 9-Rubber scraper; 10-Cleaning unit; 101-Circular plate frame; 102-Force plate; 103-Rotating shaft; 104-Fixed housing; 105-Worm gear; 106-Worm wheel; 107-Transmission column; 11-Connecting mechanism; 111-Pulley; 112-Rope. Detailed Implementation
[0034] 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 embodiments of the present invention, and not all embodiments. 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.
[0035] Please see Figure 1-10 This invention provides a technical solution: a gas-liquid separator with a safety pressure relief function. This invention addresses the technical problems mentioned in the background art by making corresponding improvements to reduce the situation where excessive liquid flow leads to excessively high internal pressure in the separator. It includes a vertical separator 1, wherein a separation mechanism 2 for separating gas and water is installed inside the vertical separator 1, and a standard liquid inlet pipe 3 is also installed on the vertical separator 1. Further, the separation mechanism 2 includes a baffle 21 fixedly installed on the inner wall of the vertical separator 1, and the baffle 21 is located on one side of the liquid outlet end of the standard liquid inlet pipe 3, and a baffle plate 21 fixedly installed on the vertical separator 1. The vertical separator 1 contains multiple umbrella-shaped separators 22, which separate water droplets carried by the gas. The water droplets converge into a fluid that flows downward under gravity. A foam net 23 is installed near the top of the vertical separator 1 to separate small water droplets carried by the gas, causing them to coalesce into larger droplets and settle. A pressure relief device 24 is also installed on the vertical separator 1 to control the internal pressure. A drain pipe 25 is installed near the bottom of the vertical separator 1, through which the settled liquid flows. The liquid is discharged from pipe 25; a treatment pipe 4 is installed on the vertical separator 1, and the treatment pipe 4 is fastened to the vertical separator 1 by bolts. The discharge end of the treatment pipe 4 is connected to the inlet end of the standard inlet pipe 3. It should be noted that the inner diameter of the treatment pipe 4 is larger than the inner diameter of the standard inlet pipe 3, and the treatment pipe 4 can be divided into area A 41 and area B 42 according to the standard liquid inlet volume. Area A 41 is located above area B 42. Under normal liquid inlet conditions, the liquid inlet volume is in area B 42, and its water level will not reach area A 41. A system is set inside the treatment pipe 4. There is a detection panel 5 for detecting the liquid inlet volume. It should be noted that the detection panel 5 is located on area A 41, and its lowest end is close to the junction of area A 41 and area B 42. The outer wall of the treatment pipe 4 is also equipped with a button body 6 for controlling the start and stop of the pressure relief device 24. The button body 6 is electrically connected to the pressure relief device 24. The detection panel 5 is equipped with a drive unit 7, which is used to control the on / off state of the button body 6. When the button body 6 is touched for the first time, the button body 6 controls the pressure relief device 24 to open, and the vertical separator 1 performs pressure relief.
[0036] As a further limitation of the present invention, the drive unit 7 includes a shaft 71 mounted on the detection panel 5, wherein both ends of the shaft 71 are rotatably connected to the inner wall of the processing pipe 4, so that when a large amount of liquid enters the device, the water flow impacts the detection panel 5, and the impact force causes the shaft 71 to rotate. One end of the shaft 71 penetrates the inner wall of the processing pipe 4 and extends to the outside, and a drive rod 72 is mounted at this end of the shaft 71. A touch post 73 is mounted at the end of the drive rod 72, and the button body 6 is located on the movement trajectory of the touch post 73. It should be noted that the button body 6 is close to the touch column 73; specifically, when the detection panel 5 in area A 41 is impacted by water flow, the detection panel 5 and its shaft 71 rotate inside the processing pipe 4, and during the rotation of the shaft 71, the drive rod 72 at one end drives the touch column 73 to move synchronously to touch the button body 6. The button body 6 sends a signal to the pressure relief device 24, and the pressure relief device 24 performs appropriate pressure relief according to the internal pressure of the vertical separator 1; thus, this structural component solves the problem of increased internal pressure in the vertical separator 1 due to large liquid flow.
[0037] Meanwhile, the present invention installs a filter mechanism 8 inside the processing pipe 4. This filter mechanism 8 can effectively solve the problem of blockage in the standard inlet pipe 3, preventing the problem of increased internal pressure caused by blockage. Furthermore, the filter mechanism 8 in the present invention includes a filtering area 81, a storage area 82, and a collection area 83. The storage area 82 is located on area A 41, meaning that normal water flow will not pass through the storage area 82, and the top of the collection area 83 is in communication with the top of the storage area 82. A rubber scraper 9 is provided on one side of the filter mechanism 8, and the rubber scraper 9 is in contact with the surface of the filter mechanism 8. It should be noted that the filter mechanism 8 is used to block solid impurities and prevent them from entering the standard inlet pipe 3 and the vertical separator 1. Since the filter mechanism 8 will accumulate on the surface of the filter mechanism 8 when it blocks solid impurities, if it is not cleaned for a long time, it will easily cause blockage of the filter mechanism 8, which will affect the normal liquid intake effect. Therefore, the present invention installs a filter mechanism 8 inside the processing pipe 4. A cleaning unit 10 is provided, which drives the rubber scraper 9 to treat impurities on the surface of the filtration area 81 and transports the treated impurities to the storage area 82. At the same time, the present invention also has a connecting mechanism 11 installed on the shaft 71. The connecting mechanism 11 is used to discharge the treated impurities to the collection area 83 for collection. It should be noted that the connecting mechanism 11 is connected to the shaft 71 and can only be activated when the liquid inflow is large. The reason is that under normal liquid inflow, the water flow will not reach the storage area 82, and the impurities in the storage area 82 will not be affected. When the liquid inflow exceeds the standard, the water flow may reach the storage area 82, which may cause the impurities in it to return to the water flow. Therefore, when the liquid inflow exceeds the standard, the impurities are transported to the collection area 83 for collection under the action of the connecting mechanism 11. Since the collection area 83 is located at the top of the inner wall of the entire treatment pipe 4, the impurities inside it will not be affected by the water flow.
[0038] As a further limitation of the present invention, the cleaning unit 10 includes a circular plate frame 101 disposed inside the processing pipe 4. It should be noted that the circular plate frame 101 is located within region A 41, while its lowest point is located within region B 42. Multiple force-bearing plates 102 are equidistantly installed on the circular plate frame 101. The force-bearing plate 102 at the lowest point of the circular plate frame 101 is located within region B 42 (i.e., the water flow area within the standard limit). Thus, under normal conditions, when the water flow impacts the force-bearing plates 102, the impact force causes the circular plate frame 101 to rotate. The circular plate frame 101 is also equipped with a rotating shaft 103, one end of which is rotatably connected to the inner wall of the processing pipe 4. A fixed housing 104 is fixedly installed inside the processing pipe 4. The fixed housing 104 is located in area A 41, which will not affect the normal flow of water. The other end of the rotating shaft 103 passes through the outer wall of the fixed housing 104 and extends into its interior. A worm gear 105 is installed at one end of the rotating shaft 103 in the fixed housing 104, and a worm wheel 106 that meshes with the worm gear 105 is installed inside the fixed housing 104. A transmission column 107 is also installed on the worm wheel 106. The end of the transmission column 107 passes through the inner wall of the fixed housing 104 and extends to one side of the rubber scraper 9 and is connected to it. In this invention, the rubber scraper 9 rotates clockwise under the action of the transmission column 107, so that during the rotation process, the scraping surface of the rubber scraper 9 contacts the surface of the filter area 81 and scrapes the impurities on it toward the storage area 82.
[0039] Further description of the filtration mechanism 8: The inner walls of both sides of the storage area 82 are provided with regulating grooves 84, which consist of a lifting area 841 and an arc-shaped area 842. A sliding plate frame 85 is installed inside the storage area 82, and sliding columns 86 for sliding connection with the regulating grooves 84 are installed on both sides of the sliding plate frame 85. One inner wall of the storage area 82 is inclined, so that when the rubber scraper 9 scrapes impurities to the storage area 82, the impurities fall towards the inclined side wall due to inertia and fall along the inclined side wall onto the sliding plate frame 85 at the bottom. A chamfered rod 87 is also installed on the inclined side wall of the storage area 82, and the chamfered rod 87 is located on the movement trajectory of the rubber scraper 9, so that the rubber scraper 9 moves to the chamfered rod 87. At that time, the chamfered rod 87 acts on the rubber scraper 9, and the impurities remaining on the rubber scraper 9 are scraped off and slide down along the inclined side wall of the storage area 82. As a further limitation of the present invention, the connecting mechanism 11 includes a pulley 111 mounted on the shaft 71, and a rope 112 is wound on the pulley 111. The end of the rope 112 passes through the inner wall of the processing pipe 4 and is connected to the top of the sliding plate frame 85. It should be noted that a rubber sealing gasket is provided where the rope 112 passes through the inner wall of the processing pipe 4, so that when the sliding plate frame 85 rises, the sliding columns 86 on both sides move from the lifting area 841 to the arc area 842. When it moves to the arc area 842, the sliding plate frame 85 adjusts its angle and discharges the impurities on its surface into the collection area 83 for collection.
[0040] Specifically, when the liquid inlet volume is not excessive, the water flow is normal and will not touch the detection panel 5. The detection panel 5 is stationary. However, the force plate 102 is impacted by the water flow, which will drive the circular plate frame 101 and its rotating shaft 103 to rotate. When the rotating shaft 103 rotates, the worm gear 105 at its end will mesh with the worm wheel 106 to rotate. Under the action of the transmission column 107, the rubber scraper 9 will rotate on the filtration area 81, scraping the impurities on the surface of the filtration area 81 into the storage area 82. When it moves to the storage area 82, the impurities on the rubber scraper 9 fall towards the inclined side wall of the storage area 82 under the action of inertia and slide down along the side wall. At the same time, when the rubber scraper 9 moves to the chamfered rod 87, the chamfered rod 87 acts on the rubber scraper 9, and the remaining impurities on the rubber scraper 9 are scraped off and slide down along the inclined side wall of the storage area 82. Under this condition, the impurities are stored in the storage area 82.
[0041] When the influent volume exceeds the limit, the water flow acts on the detection panel 5, causing the shaft 71 to rotate within the processing pipe 4. As the shaft 71 rotates, the drive rod 72 on it drives the touch column 73 to move synchronously. During this movement, the touch column 73 touches the button body 6, which sends a signal to the pressure relief device 24. The pressure relief device 24 then performs appropriate pressure relief based on the internal pressure of the vertical separator 1. Simultaneously, the shaft 71 also drives the pulley 111 to wind up the rope 112, thereby driving the sliding plate under the action of the rope 112. The frame 85 rises, and during this rise, the sliding columns 86 on both sides move from the lifting area 841 to the arc-shaped area 842. When it reaches the arc-shaped area 842, the sliding plate frame 85 adjusts its angle to discharge impurities on its surface into the collection area 83 for collection, thereby preventing impurities from being mixed with the water again. Through the structural design of this invention, the liquid inlet volume is effectively controlled to avoid the internal pressure from rising due to excessive liquid inlet volume, while also preventing the standard liquid inlet pipe 3 from becoming blocked, thereby improving the efficiency and quality of gas-liquid separation.
[0042] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0043] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A gas-liquid separation device with a safety pressure relief function, comprising a vertical separator (1), a separation mechanism (2) disposed inside the vertical separator (1), and a standard liquid inlet pipe (3) disposed on the vertical separator (1), characterized in that: The vertical separator (1) is provided with a processing pipe (4), and the outlet of the processing pipe (4) is connected to the inlet of the standard liquid inlet pipe (3). The processing pipe (4) is provided with a detection panel (5) for detecting the liquid content inside, and a button body (6) provided on the outer wall of the processing pipe (4). The detection panel (5) is provided with a drive unit (7) for controlling the on / off state of the button body (6). The processing pipe (4) is also provided with a filter mechanism (8) inside, which includes a filtration area (81), a storage area (82), and a collection area (83). A rubber scraper (9) is located on one side of the filter mechanism (8), and a cleaning unit (10) is provided inside the processing pipe (4), wherein the cleaning unit (10) is used to drive the rubber scraper (9) to process impurities on the surface of the filter area (81); and a connecting mechanism (11) is provided on the drive unit (7), and the connecting mechanism (11) is used to discharge the processed impurities to the collection area (83) for collection; the cleaning unit (10) includes a circular plate frame (101) provided inside the processing pipe (4), and a plurality of force plates (102) are provided on the circular plate frame (101), and the force plates (102) are located on the circular plate frame (81). The circular plate frame (101) is equidistantly distributed in a ring. A rotating shaft (103) is also provided on the circular plate frame (101). One end of the rotating shaft (103) is rotatably connected to the inner wall of the processing pipe (4). A fixed housing (104) is installed on the inner wall of the processing pipe (4). The other end of the rotating shaft (103) passes through the outer wall of the fixed housing (104) and extends into its interior. A worm gear (105) is installed on the other end of the rotating shaft (103). A worm wheel (106) for meshing with the worm gear (105) is installed inside the fixed housing (104). A transmission column (107) is installed on the worm wheel (106). 7) The end penetrates the inner wall of the fixed housing (104) and is connected to the side wall of the rubber scraper (9); the separation mechanism (2) includes a baffle (21) installed on the inner wall of the vertical separator (1), and the baffle (21) is located on one side of the liquid outlet end of the standard liquid inlet pipe (3), and multiple umbrella plate separators (22) installed inside the vertical separator (1), a foam net (23) is installed near the top of the vertical separator (1), and a pressure relief device (24) is installed on the vertical separator (1), and the pressure relief device (24) is electrically connected to the button body (6), and a drain pipe (25) is installed near the bottom of the vertical separator (1).
2. The gas-water separator with a safety pressure relief function according to claim 1, characterized in that: The drive unit (7) includes a shaft (71) disposed on the detection panel (5), and the two ends of the shaft (71) are rotatably connected to the inner wall of the processing pipe (4). One end of the shaft (71) penetrates the inner wall of the processing pipe (4) and extends to the outside. A drive rod frame (72) is installed at the end of the shaft (71) that penetrates the inner wall of the processing pipe (4). A touch column (73) is installed at the end of the drive rod frame (72). The button body (6) is located on the movement trajectory of the touch column (73). The connecting mechanism (11) is disposed on the shaft (71).
3. The gas-liquid separator with a safety pressure relief function according to claim 1, characterized in that: The inner diameter of the processing pipe (4) is larger than the inner diameter of the standard inlet pipe (3). The processing pipe (4) is divided into region A (41) and region B (42). Region A (41) is located above region B (42), and the detection panel (5) is located on region A (41). The lowest stress plate (102) on the circular plate frame (101) is located on region B (42).
4. A gas-water separator with a safety pressure relief function according to claim 3, characterized in that: The top of the storage area (82) is connected to the collection area (83), and control grooves (84) are provided on the inner walls of both sides of the storage area (82). A sliding plate frame (85) is provided inside the storage area (82), and sliding columns (86) for sliding connection with the control grooves (84) are provided on both sides of the sliding plate frame (85).
5. A gas-water separator with a safety pressure relief function according to claim 4, characterized in that: The regulating groove (84) is composed of a lifting area (841) and an arc-shaped area (842).
6. A gas-water separator with a safety pressure relief function according to claim 5, characterized in that: The connecting mechanism (11) includes a pulley (111) disposed on a shaft (71), and a rope (112) is wound on the pulley (111). The end of the rope (112) passes through the inner wall of the processing pipe (4) and is connected to the top of the sliding plate frame (85).
7. A gas-water separator with a safety pressure relief function according to claim 6, characterized in that: The inner wall of one side of the storage area (82) is inclined, and a chamfered rod (87) is installed on the side wall of the storage area (82).
Citation Information
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Liquid drainage type gas-liquid separator
CN115845507A
Gas storage tank with accumulated water collecting and discharging functions
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