Working system for intelligent fluid operation

The intelligent fluid transport system utilizes sensors and controllers to achieve automated control of liquid transport, solving the problem of low automation in existing technologies and realizing intelligent and convenient operation of fluid transport.

CN223964545UActive Publication Date: 2026-03-03LISHUI BOYUAN TECH CO LTD
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Patent Information

Application Number
CN202520877866.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-07
Publication Date
2026-03-03
Estimated Expiration
2035-05-07

AI Technical Summary

Technical Problem

Existing technologies mainly employ unidirectional liquid delivery or manual operation, resulting in low levels of automation.

Method used

Design an intelligent fluid operation system, including sensors to detect the liquid level and control the start and stop of the electronic pump, a sealing device to balance the air pressure, intelligent control of the flow path and forward and reverse rotation, and automated operation by combining a controller and a wireless transmission module.

Benefits of technology

It enables intelligent control of fluid transport, reduces manual workload, simplifies operation procedures, improves the degree of automation, and supports multi-functional and multi-environment use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model is suitable for the technical field of fluid transportation, and particularly relates to an intelligent fluid operation working system which comprises a first container and a second container, and a sealing device is installed at an opening of the first container. The sealing device is used for sealing the first container and balancing air pressure inside and outside the first container, the sealing device is connected with an electronic pump through a pipeline, the electronic pump is connected with the second container through a pipeline, a sensor is installed in the sealing device, and the sensor is used for detecting the remaining liquid in the first container and sending a control instruction to the electronic pump. According to the utility model, the flow path can be intelligently controlled to run and positively and negatively rotate, the manual workload is reduced through intelligent monitoring, the working procedures are saved, the operation is simple and convenient, the sensor and the flow path are integrally designed, the integrated use of functional hardware and the integrated design of pumping and adding fluid are realized, and the effects of multiple functions and multi-environment use are realized.
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Description

Technical Field

[0001] This utility model belongs to the field of fluid transport technology, and in particular relates to an intelligent fluid operation system. Background Technology

[0002] To transfer fluid from one container to another, a common method is to install an electric pump. The pump's inlet and outlet are connected to both containers via piping, forming a complete flow path. Power is then supplied, and the pump's start and stop are controlled by a switch, thus achieving fluid transfer. In practice, appropriate pump and piping materials must be selected based on the fluid properties, ensuring good sealing at connections. The operating status is monitored using flow meters or pressure gauges, and regular equipment maintenance is essential to guarantee long-term stable operation. This method is widely used in the chemical, food, and pharmaceutical industries, offering advantages such as high efficiency, reliability, and ease of control.

[0003] Existing technologies mainly employ unidirectional liquid transport or manual liquid transport, resulting in low levels of automation. Utility Model Content

[0004] The purpose of this invention is to provide an intelligent fluid operation system, which aims to solve the problem that existing technologies mainly use unidirectional liquid transportation or manual liquid transportation, resulting in low automation.

[0005] This invention is implemented as follows: an intelligent fluid operation system includes a first container and a second container. A sealing device is installed at the opening of the first container to seal the first container and balance the air pressure inside and outside the first container. The sealing device is connected to an electronic pump through a pipeline, and the electronic pump is connected to the second container through a pipeline. A sensor is installed inside the sealing device to detect the remaining liquid level inside the first container and send control commands to the electronic pump.

[0006] Preferably, the sealing device is fixedly installed with a first adapter and a second adapter. Both the first adapter and the second adapter are used to connect pipelines. The first adapter is located outside the first container, and the second adapter is located inside the first container.

[0007] Preferably, a filter cup is connected in series in the pipeline between the electronic pump and the second container.

[0008] Preferably, the electronic pump is equipped with a controller, which is electrically connected to the electronic pump and is used to control the start and stop of the electronic pump and its direction of operation.

[0009] Preferably, the controller is equipped with a wireless transmission module.

[0010] Preferably, the controller transmits data with the mobile device via a wireless transmission module.

[0011] Preferably, the electronic pump supports manual control.

[0012] The intelligent fluid operation system provided by this utility model can realize intelligent control of the flow path operation and forward and reverse flow. Through intelligent monitoring, it reduces manual workload, saves processes, and is easy to operate. By integrating the sensor and flow path into a single design, it achieves integrated use of functional hardware and integrated design of fluid extraction and addition, thus realizing the effect of multi-functionality and multi-environment use. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the structure of an intelligent fluid operation system provided in an embodiment of the present invention.

[0014] In the attached diagram: 1. First container; 2. Sealing device; 3. First adapter; 4. Second adapter; 5. Electronic pump; 6. Controller; 7. Filter cup; 8. Second container; 9. Sensor. Detailed Implementation

[0015] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.

[0016] The specific implementation of this utility model will be described in detail below with reference to specific embodiments.

[0017] like Figure 1 The diagram shown is a structural schematic of an intelligent fluid operation system provided in an embodiment of this utility model. The intelligent fluid operation system includes a first container 1 and a second container 8. A sealing device 2 is installed at the opening of the first container 1. The sealing device 2 is used to seal the first container 1 and balance the air pressure inside and outside the first container 1. The sealing device 2 is connected to an electronic pump 5 through a pipeline. The electronic pump 5 is connected to the second container 8 through a pipeline. A sensor 9 is installed inside the sealing device 2. The sensor 9 is used to detect the remaining liquid level inside the first container 1 and send control commands to the electronic pump 5.

[0018] In this embodiment of the utility model, during installation, the sensor 9 is installed inside the sealing device 2, the first adapter 3 and the second adapter 4 are respectively installed on the outside and inside of the sealing device 2 and connected to the pipeline, the sealing device 2 is installed at the opening of the first container 1, the electronic pump 5 is connected to the first adapter 3 through the pipeline, the controller 6 is installed on the electronic pump 5, the two ends of the filter cup 7 are respectively connected to the pipeline, and the two pipelines are connected to the electronic pump 5 and the second container 8.

[0019] In this embodiment of the utility model, the functions of each component are as follows:

[0020] First container 1: Used to hold fluids.

[0021] Sealing device 2: used to install some components and connect the internal and external flow paths of the first container 1, and is provided with air holes to balance the air pressure inside and outside the first container 1.

[0022] First adapter 3: Used for pipeline installation and flow path connection.

[0023] Second adapter 4: Used for pipe installation and flow path connection.

[0024] Electric pump 5: Used for conveying fluids.

[0025] Controller 6: Used to receive signals from the sensors and control the start and operation of the electronic pump 5.

[0026] Filter cup 7: Used to filter impurities in fluids.

[0027] Second container 8: Used to hold fluids.

[0028] Sensor 9: Used to transmit the fluid volume signal in the first container.

[0029] In one embodiment of this utility model, during use, a section of pipe is installed onto the second adapter 4 inside the sealing device 2, and then the sealing device 2 is installed at the opening of the first container 1. The first adapter 3 is connected to one end of the pipe, and the other end of the pipe is connected to the electronic pump 5. Then, the other end of the electronic pump 5 is connected to the filter cup 7 via a pipe, and then connected to the second container 8 via a pipe through the filter cup 7. The controller 6 is installed on the electronic pump 5.

[0030] Automatic control: When sensor 9 detects that the fluid volume in the first container is lower than the set lower limit, it transmits a signal to controller 6. After receiving the signal, controller 6 starts electronic pump 5 to transport the fluid in the second container to sealing device 2 through the flow path. The fluid flows into the first container through second adapter 4, sealing device 2 and first adapter 3 in sequence. At this time, the fluid volume in the first container increases. When it increases to the set upper limit of the fluid volume, sensor 9 sends a high capacity signal to controller 6. Controller 6 receives the signal and stops electronic pump 5, and the flow path operation stops.

[0031] Manual control ①: Manually start controller 6 to control the forward or reverse rotation of electronic pump 5 to control the direction of fluid delivery in the flow path; manually switch controller 6 to off, and electronic pump 5 will stop running.

[0032] Manual control ②: Use a mobile device to control the start of forward or reverse rotation. The controller 6 receives the signal via wireless signal transmission such as Bluetooth, and the electronic pump 5 starts to rotate forward or reverse to control the direction of fluid delivery in the flow path; when the signal is switched to stop, the controller 6 stops and the electronic pump 5 stops running.

[0033] In this embodiment, the air vent on the sealing device 2 can be replaced by a one-way valve or a pressure balancing valve. For example, two one-way valves can be installed, one for venting and the other for venting. When the internal pressure of the first container 1 is too high, the one-way valve reaches its venting limit and vents through the one-way valve to balance the internal and external pressure of the first container 1. When the internal pressure of the first container 1 is too low, the one-way valve reaches its venting limit and vents through the one-way valve to balance the internal and external pressure of the first container 1. Alternatively, a pressure balancing valve can be installed to replace the air vent, which can automatically balance the internal and external pressure of the first container 1.

[0034] In one embodiment of this utility model, when the fluid is a gas, an electronic valve can replace the electronic pump 5, and the electronic valve can be opened and closed by a controller 6 or a switch, thereby controlling the gas flow in the flow channel.

[0035] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. An intelligent fluidically operated work system, characterized by, The intelligent fluid operation working system comprises a first container (1) and a second container (8), an opening of the first container (1) is provided with a sealing device (2), the sealing device (2) is used for sealing the first container (1) and balancing the air pressure inside and outside the first container (1), the sealing device (2) is connected with an electronic pump (5) through a pipeline, the electronic pump (5) is connected with the second container (8) through a pipeline, and a sensor (9) is arranged in the sealing device (2), the sensor (9) is used for detecting the liquid residual amount in the first container (1) and sending a control instruction to the electronic pump (5).

2. The intelligent fluid-operated work system of claim 1, wherein, The sealing device (2) is fixedly provided with a first adapter (3) and a second adapter (4), the first adapter (3) and the second adapter (4) are used for connecting the pipeline, the first adapter (3) is located outside the first container (1), and the second adapter (4) is located inside the first container (1).

3. The intelligent fluid-operated work system of claim 1, wherein, A filter cup (7) is arranged in series in the pipeline between the electronic pump (5) and the second container (8).

4. The intelligent hydraulically operated working system of claim 1, wherein, A controller (6) is arranged on the electronic pump (5), the controller (6) is electrically connected with the electronic pump (5) and is used for controlling the start-stop and the running direction of the electronic pump (5).

5. The intelligent fluid-operated work system of claim 4, wherein, The controller (6) is provided with a wireless transmission module.

6. The intelligent fluid-operated work system of claim 5, wherein, The controller (6) transmits data with a mobile device through the wireless transmission module.

7. The intelligent hydraulically operated working system of claim 1, wherein, The electronic pump (5) supports manual control.