Membrane adsorption device with rapid adsorption function

By introducing an electric turbine fan and modular components into the membrane adsorption device, rapid media flow and simplified connection are achieved, solving the problems of low efficiency and complex structure of existing devices, and improving processing efficiency and connection convenience.

CN223995817UActive Publication Date: 2026-03-17SHANGHAI JIAWEI NEW MATERIAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520581039.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2026-03-17
Estimated Expiration
2035-03-28

AI Technical Summary

Technical Problem

Existing membrane adsorption devices have limited processing efficiency and complex structures, resulting in high manufacturing costs and inconvenient connections.

Method used

The design employs membrane adsorption and flow diversion components, utilizes an electric turbofan to achieve rapid medium flow, and achieves modular connection through detachable and modular components, including flow diversion chambers, electric turbofans, sealing rings, and combination piles, simplifying the connection method.

Benefits of technology

It improves filtration efficiency, simplifies device structure, reduces manufacturing costs, and enhances the ease of connection and stability of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a fast adsorption membrane adsorption device relates to membrane adsorption device technical field, including membrane adsorption member and drainage member, the drainage member is symmetrically installed at the both ends of membrane adsorption member, and the drainage member one side far away from membrane adsorption member is equipped with the capping member, the membrane adsorption member is equipped with the membrane adsorption member. And the side edge of the membrane adsorption component is connected with the combined component. According to the membrane adsorption device capable of achieving rapid adsorption, drainage components are symmetrically arranged at the two ends of the membrane adsorption component, and an electric turbofan arranged in the structure rotates at a high speed, so that a medium passing through the interior of the whole device can be disturbed, and the drainage effect is achieved; by means of the structure arrangement of the combined component and the combined use of part of structures of the membrane adsorption component, multiple sets of devices can be combined and spliced according to needs, and series combination of the structures is achieved by using the quick-connection valve head in cooperation with the use of a pipeline.
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Description

Technical Field

[0001] This utility model relates to the field of membrane adsorption device technology, specifically a membrane adsorption device for rapid adsorption. Background Technology

[0002] A membrane adsorption device is a device that uses the adsorption capacity of a membrane to separate and purify substances. Its core working principle is to use the selective adsorption characteristics of the membrane to adsorb specific components in a mixture onto the membrane, while other components pass through the membrane, thereby achieving separation.

[0003] Conventional membrane adsorption devices utilize the fluidity of the medium to achieve purification and filtration, but the processing efficiency is relatively limited, which restricts the overall practicality. At the same time, the structural connections between them are relatively complex, resulting in higher manufacturing costs and relatively limited ease of connection. Utility Model Content

[0004] The purpose of this invention is to provide a membrane adsorption device for rapid adsorption, so as to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a rapid adsorption membrane adsorption device, comprising a membrane adsorption component and a flow guiding component. Flow guiding components are symmetrically installed at both ends of the membrane adsorption component, and a sealing component is installed on the side of the flow guiding component away from the membrane adsorption component. Furthermore, a combined component is connected and installed on the side of the membrane adsorption component. The flow guiding component includes a flow guiding cavity, an electric turbine fan, a first sealing ring, a second sealing ring, and a combined stake. An electric turbine fan is mounted in the middle of the interior of the flow guiding cavity, and a first sealing ring is installed on the surface of the flow guiding cavity near the membrane adsorption component. A second sealing ring is installed on the surface of the flow guiding cavity near the sealing component, and combined stakes are horizontally arranged at the four opposite corners on both sides of the flow guiding cavity near the membrane adsorption component and the sealing component.

[0006] Furthermore, the membrane adsorption component includes a membrane adsorption tank body, a support base, a docking seat, and a first sealing groove. Support bases are provided at both ends of the membrane adsorption tank body, and a docking seat is provided on the side of the support base away from the vertical central axis of the membrane adsorption tank body. Moreover, a first sealing groove is formed on the surface of the docking seat away from the support base.

[0007] Furthermore, the docking seat has four diagonal holes for inserting and connecting the combined piles at the four corners of the side near the diversion component, and the side of the docking seat near the diversion component adopts an embedded structure to connect with one side surface of the diversion cavity. The inner surface structure of the first sealing groove matches the outer surface structure of the first sealing ring.

[0008] Furthermore, both the first and second sealing rings are embedded in the two sides of the flow guide cavity, and the combined pile and the flow guide cavity are integrated into one structure.

[0009] Furthermore, the sealing component includes a sealing body, a second sealing groove, and a quick-connect valve head. The sealing body has a second sealing groove on the surface near the drainage component, and a quick-connect valve head is horizontally installed in the middle of the sealing body on the side away from the drainage component.

[0010] Furthermore, the cap body has four opposite corners on the side near the drainage component, each with a hole structure that matches the surface structure of one end of the combined pile, and the inner surface structure of the second sealing groove matches the outer surface structure of the second sealing ring.

[0011] Furthermore, the combined component includes a support rod, a combination block, and a fixing nut. Both ends of the support rod are through-installed with combination blocks, and fixing nuts are provided on both sides of the combination blocks near the support rod.

[0012] Furthermore, the support rod and the assembly block are connected by threads, and the assembly block is symmetrically and horizontally arranged at the upper and lower ends of the side of the assembly block. Moreover, the assembly block and the support base are connected to each other by an insertion structure at opposite corners, and the support rod and the support base are connected by threads.

[0013] This invention provides a membrane adsorption device for rapid adsorption, which has the following beneficial effects:

[0014] 1. This utility model features symmetrically installed flow-guiding components at both ends of the membrane adsorption component. An electric turbine fan is mounted inside the flow-guiding cavity. Since the flow-guiding cavity and the membrane adsorption component are interconnected, when the medium to be filtered enters the flow-guiding cavity through the quick-connect valve, the electric turbine fans inside the flow-guiding cavities at both ends of the membrane adsorption component operate separately: one group performs suction rotation, and the other performs tapping rotation. This allows for rapid flow of the medium. The above structure effectively ensures the efficiency of the device when filtering the medium, enabling the membrane adsorption tank to quickly filter the medium flowing inside. Furthermore, the membrane adsorption component, flow-guiding component, sealing component, and combined components are connected by a detachable structure, resulting in a modular design that facilitates the use and maintenance of the device.

[0015] 2. This utility model, by providing a combined component, in which the combined assembly and the support base are inserted and connected, and the support rod is screwed to the connection point of the combined assembly and the support base, and two sets of fixing nuts are tightened on each side of the combined assembly and the support base respectively, can quickly connect and combine the membrane adsorption component and the sealing component. Using the above structure, on the one hand, multiple devices can be spliced ​​and combined, and with the use of quick-connect valve heads and connecting pipes, multiple devices can be connected in series. On the other hand, the combined component can also provide a certain degree of structural support in the middle of the membrane adsorption component, thereby ensuring the structural strength of the structure itself, and also ensuring that the combined devices have good structural support and stability after splicing. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the axial side view of the main body of the membrane adsorption device for rapid adsorption according to this utility model;

[0017] Figure 2 This is a schematic diagram of the membrane adsorption component structure of a rapid adsorption membrane adsorption device according to the present invention;

[0018] Figure 3 This is a three-dimensional structural diagram of the flow-guiding component of a membrane adsorption device for rapid adsorption according to the present invention.

[0019] Figure 4 This is a three-dimensional structural diagram of the sealing component of a membrane adsorption device for rapid adsorption according to the present invention;

[0020] Figure 5 This is a three-dimensional structural diagram of the combined components of a rapid adsorption membrane adsorption device according to this utility model.

[0021] In the diagram: 1. Membrane adsorption component; 101. Membrane adsorption tank body; 102. Support base; 103. Docking base; 104. First sealing groove; 2. Drainage component; 201. Drainage cavity; 202. Electric turbine fan; 203. First sealing ring; 204. Second sealing ring; 205. Combined pile; 3. Cover component; 301. Cover body; 302. Second sealing groove; 303. Quick-connect valve head; 4. Combined component; 401. Support rod; 402. Combined quick; 403. Fixing nut. Detailed Implementation

[0022] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.

[0023] like Figures 1 to 5As shown, a rapid adsorption membrane adsorption device includes a membrane adsorption component 1 and a flow guiding component 2. Flow guiding components 2 are symmetrically installed at both ends of the membrane adsorption component 1, and a sealing component 3 is installed on the side of the flow guiding component 2 away from the membrane adsorption component 1. A combined component 4 is connected and installed on the side of the membrane adsorption component 1. The flow guiding component 2 includes a flow guiding cavity 201, an electric turbine fan 202, a first sealing ring 203, a second sealing ring 204, and a combined pile 205. An electric turbine fan 202 is mounted in the middle of the interior of the flow guiding cavity 201. A first sealing ring 203 is installed on the surface of the flow guiding cavity 201 near the membrane adsorption component 1, and a second sealing ring 204 is installed on the surface of the flow guiding cavity 201 near the sealing component 3. Four pairs of sealing components 4 are installed on both sides of the flow guiding cavity 201 near the membrane adsorption component 1 and the sealing component 3. A combination pile 205 is horizontally installed at each corner. The inner surface structure of the first sealing groove 104 matches the outer surface structure of the first sealing ring 203. The first sealing ring 203 and the second sealing ring 204 are both embedded and installed on both sides of the flow guide cavity 201. The combination pile 205 and the flow guide cavity 201 are integrated. An electric turbine fan 202 is installed in the middle of the flow guide cavity 201. Since the flow guide cavity 201 is interconnected with the membrane adsorption component 1, when the medium to be filtered enters the flow guide cavity 201 through the quick-connect valve head 303, the electric turbine fans 202 inside the flow guide cavities 201 at both ends of the membrane adsorption component 1 will operate separately. One group performs suction rotation and the other group performs tapping rotation, which can drive the medium to flow quickly.

[0024] like Figures 1 to 5As shown, the membrane adsorption component 1 includes a membrane adsorption tank body 101, a support base 102, a docking seat 103, and a first sealing groove 104. Support bases 102 are provided at both ends of the membrane adsorption tank body 101, and a docking seat 103 is provided on the side of the support base 102 away from the vertical central axis of the membrane adsorption tank body 101. The surface of the docking seat 103 away from the support base 102 has a first sealing groove 104. Insertion holes for the insertion and connection of the combined pile 205 are provided at four opposite corners on the side of the docking seat 103 near the diversion component 2. The structure includes an embedded structure on the side of the docking seat 103 near the drainage component 2, which is mated to one side of the drainage cavity 201. The sealing component 3 includes a sealing body 301, a second sealing groove 302, and a quick-connect valve head 303. The second sealing groove 302 is provided on the surface of the sealing body 301 near the drainage component 2, and the quick-connect valve head 303 is horizontally installed in the middle of the side of the sealing body 301 away from the drainage component 2. At the four opposite corners of the sealing body 301 near the drainage component 2, there are joints that connect with the combined pile 205. The insertion hole structure has matching end surface structures. The inner surface structure of the second sealing groove 302 matches the outer surface structure of the second sealing ring 204. The combined component 4 includes a support rod 401, a combination block 402, and a fixing nut 403. The combination block 402 is installed through both ends of the support rod 401, and fixing nuts 403 are provided on both sides of the combination block 402 near the support rod 401. The support rod 401 and the combination block 402 are threaded together, and the combination block 402 is symmetrically and horizontally arranged on the side of the combination block 402. The upper and lower ends are connected by an insertion structure between the assembly block 402 and the support base 102 at opposite corners, and the support rod 401 and the support base 102 are connected by a thread. The assembly block 402 and the support base 102 are inserted and connected, and the support rod 401 is screwed to the connection between the assembly block 402 and the support base 102. Two sets of fixing nuts 403 are tightened on one side of the assembly block 402 and the support base 102 respectively, so that the membrane adsorption component 1 and the sealing component 3 can be quickly connected and assembled.

[0025] In summary, as Figures 1 to 5 As shown, when using this rapid adsorption membrane adsorption device, firstly, the side of the flow guiding cavity 201 with the first sealing ring 203 is connected to the docking seat 103 at one end of the membrane adsorption tank body 101, and the combined post 205 on one side is inserted into the diagonal of the docking seat 103. At the same time, the first sealing ring 203 is embedded into the interior of the first sealing groove 104. Then, four sets of bolts are used to connect and fix the docking seat 103 and the combined post 205 after docking, thereby completing the combination and fixation of the membrane adsorption component 1 and the flow guiding component 2.

[0026] Then, the side of the capping body 301 with the second sealing groove 302 is inserted and connected to the side of the second sealing ring 204, so that the combined pile 205 on the other side of the diversion cavity 201 is inserted into the diagonal of the capping body 301, and the second sealing ring 204 is embedded in the interior of the second sealing groove 302. Then, four sets of bolts are used to connect and fix the capping body 301 and the combined pile 205 after docking, thereby completing the combination of the diversion component 2 and the capping component 3.

[0027] The quick-connect valves 303 at both ends of the device can then be used to connect with upstream and downstream equipment to ensure media delivery and filtration. If series connection is required, simply insert the vertical side of the combination quick 402 into the support base 102 of the two devices respectively, then set the two sets of fixing nuts 403 on one side of the support base 102 and the combination quick 402 respectively, and use the support rod 401 to pass horizontally through them. Finally, simply tighten the fixing nuts 403 to connect the two adjacent devices. Then, use the pipeline structure in conjunction with the quick-connect valves 303 to connect the two devices. Under the operation of the electric turbo fan 202, the flowing media can be quickly diverted to achieve accelerated processing.

[0028] The embodiments of this utility model are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the utility model to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical applications of this utility model, and to enable those skilled in the art to understand this utility model and design various embodiments with various modifications suitable for a particular purpose.

Claims

1. A rapid adsorption membrane adsorber device comprising a membrane adsorber member (1) and a flow guide member (2), characterized in that: Two ends of the membrane adsorption component (1) are symmetrically provided with a drainage component (2), and a cover component (3) is arranged on the side of the drainage component (2) away from the membrane adsorption component (1), and the side edges of the membrane adsorption component (1) are connected and arranged with a combination component (4), the drainage component (2) comprises a flow guide cavity (201), an electric turbofan (202), a first sealing ring (203), a second sealing ring (204) and a combination pile (205), the electric turbofan (202) is arranged on the inner middle of the flow guide cavity (201), the first sealing ring (203) is arranged on the side surface of the flow guide cavity (201) close to the membrane adsorption component (1), the second sealing ring (204) is arranged on the side surface of the flow guide cavity (201) close to the cover component (3), and the combination pile (205) is horizontally arranged at the four opposite corners of the flow guide cavity (201) close to the membrane adsorption component (1) and the cover component (3).

2. A rapid adsorption membrane adsorber device according to claim 1, characterized in that The membrane adsorption component (1) comprises a membrane adsorption tank body (101), a support seat (102), a butt joint seat (103) and a first sealing groove (104), the two ends of the membrane adsorption tank body (101) are provided with the support seat (102), the side of the support seat (102) away from the vertical middle axis of the membrane adsorption tank body (101) is provided with the butt joint seat (103), and the side surface of the butt joint seat (103) away from the support seat (102) is provided with the first sealing groove (104).

3. A rapid adsorption membrane adsorber according to claim 2, wherein The butt joint seat (103) is provided with a jack structure for the combination pile (205) at the four opposite corners of the side close to the drainage component (2), and the side close to the drainage component (2) of the butt joint seat (103) is embedded into the side surface of the flow guide cavity (201) in a matched manner, and the inner surface structure of the first sealing groove (104) is matched with the outer surface structure of the first sealing ring (203).

4. A rapid adsorption membrane adsorber device according to claim 1, wherein, The first sealing ring (203) and the second sealing ring (204) are embedded into the two side surfaces of the flow guide cavity (201) in a matched manner, and the combination pile (205) and the flow guide cavity (201) are arranged in an integrated structure.

5. A rapid adsorption membrane adsorber device according to claim 1, wherein, The cover component (3) comprises a cover body (301), a second sealing groove (302) and a quick-connection valve head (303), the surface of the cover body (301) close to the side of the drainage component (2) is provided with the second sealing groove (302), and the middle part of the side of the cover body (301) away from the drainage component (2) is horizontally provided with the quick-connection valve head (303).

6. A rapid adsorption membrane adsorber device according to claim 5, characterized in that The cover body (301) is provided with a jack structure at the four opposite corners of the side close to the drainage component (2), and the jack structure is matched with the end surface structure of the combination pile (205), and the inner surface structure of the second sealing groove (302) is matched with the outer surface structure of the second sealing ring (204).

7. A rapid adsorption membrane adsorber device according to claim 2, wherein, The combined component (4) comprises a support rod (401), a combined fastener (402) and a fixing nut (403), both ends of the support rod (401) are provided with the combined fastener (402), and the combined fastener (402) is provided with the fixing nut (403) close to both sides of the support rod (401).

8. A rapid adsorption membrane adsorber device according to claim 7, characterized in that The support rod (401) and the combined fastener (402) are in threaded connection, the combined fastener (402) is symmetrically arranged on the upper and lower ends of the side edges of the combined fastener (402), the combined fastener (402) and the support base (102) are connected in combination in an insertion structure, and the support rod (401) and the support base (102) are in threaded connection.