Efficient gas-liquid separator of reservoir siphon equipment

By designing a high-efficiency gas-liquid separator for reservoir siphon equipment, and utilizing components such as an inner rotating seat, a separation drum, and a dehumidification disc for triple gas-liquid separation, the problem of poor separation effect in existing technologies is solved, achieving powerful separation and autonomous protection.

CN224057058UActive Publication Date: 2026-03-31HANGZHOU XIAOSHAN YONGCHAO WATER PUMP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing gas-liquid separators cannot perform multiple separation operations, and the separation efficiency needs to be improved.

Method used

A high-efficiency gas-liquid separator for a reservoir siphon device was designed. It uses components such as an inner rotating seat, a separation drum, a dehumidification disc, and a solenoid valve to achieve triple gas-liquid separation through centrifugal force and dehumidification operation. It is also equipped with an electronic level gauge and a control relay for autonomous protection.

Benefits of technology

It achieves a powerful gas-liquid separation effect and has an autonomous protection function to prevent liquid from entering the vacuum pump, thus improving the practicality and functionality of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an efficient gas-liquid separator of reservoir siphon equipment, relates to the technical field of gas-liquid separators, and aims to solve the problems that the existing gas-liquid separator cannot perform multiple separation operations and the separation effect needs to be improved. The technical scheme is that the efficient gas-liquid separator comprises a separation tank, the side surface of the separation tank is fixedly connected with a gas inlet pipe, and the gas inlet pipe is fixedly connected with a gas outlet pipe; the air inlet pipe is communicated with the middle position in the separation tank, an inner rotating seat is rotatably mounted in the separation tank, a separation drum is fixedly connected to the end face of the inner rotating seat, a dehumidification disc is mounted at the upper end in the separation tank in a clamped mode, and fan blades are fixedly connected to the inner wall of the inner rotating seat; honeycomb holes are formed in the dehumidification disc, a dehumidification bag is installed in each honeycomb hole in a clamped mode, and the dehumidification bags are filled with drying agents. And the effects of multiple gas-liquid separation operation and strong separation effect are achieved.
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Description

Technical Field

[0001] This utility model relates to the field of gas-liquid separator technology, and in particular to a high-efficiency gas-liquid separator for reservoir siphon equipment. Background Technology

[0002] The reservoir siphon system is one of the reservoir drainage devices, which has a profound impact on the water level management of the reservoir. When it is working, the air in the siphon system pipe is first extracted by the vacuum equipment, so that the inside of the pipe is in a negative pressure state, so that the high water level water can smoothly enter the pipe. When vacuuming, a gas-liquid separator is required to prevent liquid from being accidentally drawn into the vacuum pump.

[0003] Existing gas-liquid separators cannot perform multiple separation operations, and the separation efficiency needs to be improved. Utility Model Content

[0004] The purpose of this invention is to provide a high-efficiency gas-liquid separator for reservoir siphon equipment that can perform multiple gas-liquid separation operations with strong separation effect.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] A high-efficiency gas-liquid separator for a reservoir siphon system includes a separation tank. An air inlet pipe is fixedly connected to the side surface of the separation tank and communicates with the middle position inside the separation tank. An inner rotating seat is rotatably installed inside the separation tank, and a separation drum is fixedly connected to the end face of the inner rotating seat. A dehumidification disc is engaged and installed at the upper end inside the separation tank.

[0007] By adopting the above technical solution, multiple gas-liquid separation operations can be performed with strong separation effect.

[0008] Furthermore, fan blades are fixedly connected to the inner wall of the inner rotating seat.

[0009] By adopting the above technical solution, the rotation of the inner rotating seat can be effectively driven.

[0010] Furthermore, the dehumidification tray has honeycomb holes inside, and each honeycomb hole has a dehumidification bag that is fitted inside, and the dehumidification bag is filled with desiccant.

[0011] By adopting the above technical solution, effective moisture absorption can be achieved.

[0012] Furthermore, an electronic level gauge is fixedly installed on the side surface of the separation tank, and a control relay is fixedly installed on the side surface of the separation tank. The electronic level gauge is electrically connected to the signal receiving end of the control relay.

[0013] By adopting the above technical solution, the water level at the bottom of the separator can be monitored in real time, and an active protection signal can be issued when the warning position is reached.

[0014] Furthermore, a drain pipe is fixedly connected to the lower end face of the separation tank, and a first solenoid valve is fixedly installed in the drain pipe. The first solenoid valve is electrically connected to a control relay.

[0015] By adopting the above technical solution, the drainage pipe can be effectively controlled.

[0016] Furthermore, an air extraction pipe is installed on the upper end of the separation tank, and a second solenoid valve is fixedly installed in the air extraction pipe. The second solenoid valve is electrically connected to a control relay.

[0017] By adopting the above technical solution, the extraction pipe can be effectively controlled.

[0018] In summary, the beneficial technical effects of this utility model are as follows:

[0019] 1. In use, this utility model can be installed on a vacuum pipeline, allowing air from the siphon equipment pipeline to enter the interior of the separator tank through the inlet pipe. Under the influence of gravity, the liquid flows into the bottom of the separator tank, while the air rises. As it passes through the separator drum, the flowing air drives the fan blades to rotate, which in turn rotates the inner rotating seat, causing the separator drum to rotate. The air passing through the separator drum begins to rotate, and under the influence of centrifugal force, the moisture in the air impacts the inner wall of the separator tank before flowing into the bottom of the separator tank. The gas separated by centrifugal force passes through the interior of the dehumidification disc, where the dehumidification pads effectively absorb moisture from the air, thus achieving a third dehumidification operation. The moisture-absorbing air is then discharged through the exhaust pipe. This process enables a triple gas-liquid separation operation, resulting in a strong separation effect.

[0020] 2. This utility model can use an electronic level gauge to monitor the water level at the bottom of the separator in real time. When the water level at the bottom of the separator reaches a certain level, the electronic level gauge sends an electrical signal to the control relay. After receiving the signal, the control relay closes the working circuit of the first and second solenoid valves, causing the first solenoid valve to open and the second solenoid valve to close, preventing liquid from being drawn into the vacuum pump. At the same time, the liquid at the bottom of the separator is discharged through the drain pipe, so that the device has an autonomous protection structure and function, and its practicality and functionality are effectively improved. Attached Figure Description

[0021] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0022] Figure 2This is a diagram of the internal structure of the present invention;

[0023] Figure 3 This utility model Figure 2 Enlarged view of point A.

[0024] In the diagram: 1. Separator; 2. Air inlet pipe; 3. Drain pipe; 4. First solenoid valve; 5. Electronic level gauge; 6. Control relay; 7. Air extraction pipe; 8. Second solenoid valve; 9. Dehumidifier disc; 10. Inner rotating seat; 11. Fan blade; 12. Dehumidifier bag; 13. Separator drum. Detailed Implementation

[0025] The method of this utility model will be further described in detail below with reference to the accompanying drawings.

[0026] Reference Figure 1 , Figure 2 The high-efficiency gas-liquid separator of the reservoir siphon equipment includes a separation tank 1. An air inlet pipe 2 is fixedly connected to the side surface of the separation tank 1, and the air inlet pipe 2 communicates with the middle position inside the separation tank 1. An inner rotating seat 10 is rotatably installed inside the separation tank 1, and a separation drum 13 is fixedly connected to the end face of the inner rotating seat 10. A dehumidification disc 9 is engaged and installed at the upper end inside the separation tank 1. A fan blade 11 is fixedly connected to the inner wall of the inner rotating seat 10. The dehumidification disc 9 has honeycomb holes inside, and a dehumidification bag 12 is engaged and installed inside each honeycomb hole. The dehumidification bag 12 is filled with desiccant. In use, this device can be installed on a vacuum pipeline, and then the air in the siphon equipment pipeline can enter the interior of the separation tank 1 through the air inlet pipe 2. Under the influence of gravity, the liquid flows into the bottom of the separator tank 1, and the air moves upward along the separator tank 1. When it passes through the separator drum 13, the flowing air drives the fan blades 11 to rotate, and the fan blades 11 rotate in conjunction with the inner rotating seat 10, which in turn causes the separator drum 13 to rotate. At this time, the air passing through the separator drum 13 begins to rotate. Under the action of centrifugal force, the moisture in the air hits the inner wall of the separator tank 1 and then flows into the bottom of the separator tank 1. The gas separated by centrifugal force passes through the interior of the dehumidification disc 9. At this time, the dehumidification bag 12 inside the dehumidification disc 9 can effectively absorb the moisture in the air, thereby realizing the third dehumidification operation. The air after absorbing moisture is discharged from the exhaust pipe 7. In this process, the air can undergo a triple gas-liquid separation operation with a strong separation effect.

[0027] Reference Figure 1 , Figure 2 , Figure 3An electronic level gauge 5 is fixedly installed on the side surface of the separator 1, and a control relay 6 is also fixedly installed on the side surface of the separator 1. The electronic level gauge 5 is electrically connected to the signal receiving end of the control relay 6. A drain pipe 3 is fixedly connected to the lower end face of the separator 1, and a first solenoid valve 4 is fixedly installed in the drain pipe 3. The first solenoid valve 4 is electrically connected to the control relay 6. An air extraction pipe 7 is installed on the upper end cover of the separator 1, and a second solenoid valve 8 is fixedly installed in the air extraction pipe 7. The second solenoid valve 8 is electrically connected to the control relay 6. Electronic level gauge 5 and control relay 6 can be used to control the separator 1. The level gauge 5 monitors the water level at the bottom of the separator 1 in real time. When the water level at the bottom of the separator 1 reaches a certain level, the electronic level gauge 5 sends an electrical signal to the control relay 6. After receiving the signal, the control relay 6 closes the working circuit of the first solenoid valve 4 and the second solenoid valve 8, so that the first solenoid valve 4 opens and the second solenoid valve 8 closes, preventing liquid from being drawn into the vacuum pump. At the same time, the liquid at the bottom of the separator 1 is discharged through the drain pipe 3, so that the device has an autonomous protection structure and function, and its practicality and functionality are effectively improved.

[0028] Working principle: In use, the device is installed on the vacuum pipeline. Air from the siphon equipment pipeline then enters the separator 1 through the inlet pipe 2. Under gravity, the liquid flows into the bottom of the separator 1, while the air rises. As it passes through the separator drum 13, the flowing air drives the fan blades 11 to rotate, which in turn rotates the inner rotating seat 10, causing the separator drum 13 to rotate. The air passing through the separator drum 13 begins to rotate. Under centrifugal force, the moisture in the air impacts the inner wall of the separator 1 and then flows into the bottom of the separator 1. The gas separated by centrifugal force then passes through the dehumidification disc 9. At this time, the dehumidification pack 12 inside the dehumidification tray 9 can effectively absorb moisture in the air, thereby achieving the third dehumidification operation. During the gas-liquid separation process, the electronic level gauge 5 monitors the water level at the bottom of the separation tank 1 in real time. When the water level at the bottom of the separation tank 1 reaches a certain level, the electronic level gauge 5 sends an electrical signal to the control relay 6. After receiving the signal, the control relay 6 closes the working circuit of the first solenoid valve 4 and the second solenoid valve 8, so that the first solenoid valve 4 opens and the second solenoid valve 8 closes, preventing liquid from being drawn into the vacuum pump. At the same time, the drain pipe 3 is used to drain the liquid at the bottom of the separation tank 1, so that the device has an autonomous protection structure and function.

[0029] The specific real-time examples described herein are preferred real-time examples of this utility model and are not intended to limit the scope of protection of this utility model. Therefore, all equivalent changes made to the structure, shape, and principle of this utility model should be included within the scope of protection of this utility model.

Claims

1. A high efficiency gas-liquid separator for a reservoir siphon apparatus comprising a separation tank (1), characterised in that: The side surface of the separation tank (1) is fixedly connected with an air inlet pipe (2), which communicates with the middle position of the inside of the separation tank (1); the inside of the separation tank (1) is rotatably installed with an inner rotating seat (10), the end surface of the inner rotating seat (10) is fixedly connected with a separation drum (13), and the upper end of the inside of the separation tank (1) is clampingly installed with a dehumidification disc (9).

2. The high efficiency gas-liquid separator of a reservoir siphoning apparatus of claim 1, wherein: The inner wall of the inner rotating seat (10) is fixedly connected with a fan blade (11).

3. The high efficiency gas-liquid separator of a reservoir siphoning apparatus of claim 1, wherein: The inside of the dehumidification disc (9) is provided with honeycomb holes, and the inside of each honeycomb hole is clampingly installed with a dehumidification bag (12), and the inside of the dehumidification bag (12) is filled with a drying agent.

4. The high efficiency gas-liquid separator of a reservoir siphoning apparatus of claim 1, wherein: The side surface of the separation tank (1) is fixedly installed with an electronic liquid level meter (5), and the side surface of the separation tank (1) is fixedly installed with a control relay (6); the signal receiving end of the electronic liquid level meter (5) is electrically connected with the control relay (6).

5. The high efficiency gas-liquid separator of a reservoir siphoning apparatus of claim 4, wherein: The lower end surface of the separation tank (1) is fixedly connected with a drain pipe (3), and the pipeline of the drain pipe (3) is fixedly installed with a first electromagnetic valve (4); the first electromagnetic valve (4) is electrically connected with the control relay (6).

6. The high efficiency gas-liquid separator of a reservoir siphoning apparatus of claim 4, wherein: The upper end cover of the separation tank (1) is clampingly installed with an air exhaust pipe (7), and the pipeline of the air exhaust pipe (7) is fixedly installed with a second electromagnetic valve (8); the second electromagnetic valve (8) is electrically connected with the control relay (6).