Membrane treatment device for industrial water recycling zero emission
By using structural designs such as modular frames and lifting columns, the problem of insufficient structural scalability of membrane treatment devices has been solved, resulting in improved stability and treatment efficiency. It also supports the connection and combination of multiple membrane treatment components, thereby improving wastewater treatment performance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SUZHOU SUJING ENVIRONMENTAL ENG
- Filing Date
- 2025-06-06
- Publication Date
- 2026-06-02
Smart Images

Figure CN224313297U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of industrial wastewater treatment technology, specifically a membrane treatment device for zero-discharge industrial production water circulation. Background Technology
[0002] Zero discharge refers to the ability of treated wastewater generated during the production process to be reused without any waste liquid being discharged from the factory. Compared with the previous method of separating industrial production water and industrial wastewater treatment, zero discharge reuses 90% to 99% of the water from industrial wastewater for industrial production, greatly reducing the amount of water used in industrial production and alleviating the problem of water scarcity. At the same time, it can also recover solid by-products.
[0003] A membrane treatment device is a system that uses membrane separation technology to filter, purify, and clean liquids. The core of a membrane treatment device is the membrane module, which has selective permeability and can separate different components in a liquid based on molecular size, charge, and other properties.
[0004] Conventional membrane treatment devices have relatively limited capacity and efficiency in terms of wastewater treatment capacity due to their structural design, making it difficult to expand their structure and thus affecting their treatment efficiency. Utility Model Content
[0005] The purpose of this invention is to provide a membrane treatment device for zero-discharge industrial water circulation, so as to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a membrane treatment device for zero-discharge industrial water circulation, comprising a device base component and a first assembly frame. The first assembly frame is installed on the top of the device base component, and membrane treatment components are horizontally installed at both ends inside the first assembly frame. A second assembly frame is symmetrically installed on the middle section of the membrane treatment components. The first assembly frame includes a first assembly frame, a second assembly frame, a buffer frame, a combination stake, a combination insertion hole, and a combination bolt. The second assembly frame is provided at the bottom of the first assembly frame. Buffer frames are installed on both the side of the first assembly frame away from the second assembly frame and the side of the second assembly frame away from the first assembly frame. A combination stake is vertically arranged on the side of the second assembly frame closest to the first assembly frame, and a combination insertion hole is vertically opened on the side of the first assembly frame closest to the second assembly frame. Combination bolts are vertically installed at both ends of the first and second assembly frames.
[0007] Furthermore, the device base component includes a base, a lifting column, and a grounding support foot. The lifting column is vertically installed at the bottom of the base, and the grounding support foot is installed at the bottom of the lifting column.
[0008] Furthermore, the lifting column is set at the left and right ends of the bottom of the base and is symmetrically arranged front and back, and the grounding support foot and the lifting column are fixedly connected, and the grounding support foot is provided with holes for bolt installation at the four opposite corners.
[0009] Furthermore, the combined bolts are threaded to both ends of the first and second combined frames, and the outer surface structure of the combined stake matches the inner surface structure of the combined insertion hole.
[0010] Furthermore, the membrane treatment component includes a main membrane filter tank, a secondary membrane filter tank, a combined pipe, and an external pipe. Secondary membrane filter tanks are installed at both ends of the main membrane filter tank, and the end of the secondary membrane filter tank away from the secondary membrane filter tank is connected to the combined pipe. The end of the combined pipe away from the secondary membrane filter tank is provided with an external pipe.
[0011] Furthermore, the main membrane filter tank and the secondary membrane filter tank are integrated into a single structure, and the combined pipe and the secondary membrane filter tank are connected to each other using a quick-connect coupling.
[0012] Furthermore, the second assembly frame includes a first support frame, a second support frame, a docking hole, a docking stake, and a connecting bolt. The second support frame is provided at the bottom of the first support frame, and a docking hole is provided on the surface of the first support frame near the second support frame. A docking stake is vertically provided on the side of the second support frame near the first support frame, and connecting bolts are vertically installed at both the left and right ends of the first and second support frames.
[0013] Furthermore, the connecting bolt is threadedly connected to the first support frame and the second support frame, and the outer surface structure of the mating pile and the inner surface structure of the mating hole are matched.
[0014] This utility model provides a membrane treatment device for zero-discharge industrial water circulation, which has the following beneficial effects:
[0015] 1. This utility model, by setting a first combined frame, utilizes a first combined frame and a second combined frame to be respectively fastened to both ends of the membrane treatment component, thereby forming a clamping structure at both ends of the membrane treatment component. Simultaneously, the use of combined bolts at both ends of the first and second combined frames allows for quick fixation of the two structures. Furthermore, the use of upper and lower buffer frames, along with bolts, allows for structural splicing and combination of the membrane treatment component with the first combined frame installed at both ends, thus expanding the structure. Using the above structure, multiple membrane treatment components can be connected and combined. Combined with the structure of external connecting pipes, multiple membrane treatment components can be interconnected to achieve different processing effects and efficiencies. Additionally, the structure between the combined insert and the combined insertion hole provides good structural stability for the docking and combination of the first and second combined frames, facilitating the rapid docking of the entire first combined frame while ensuring structural stability during use.
[0016] 2. This utility model features a second combined frame symmetrically arranged on the left and right sides of the middle section of the membrane treatment component. The first and second support frames are spliced vertically together and fastened to the surface of the main membrane filter tank. During this process, the connecting stake is vertically inserted into the connecting hole, and then the combined bolts are screwed together to connect and fix the two ends of the first and second support frames. This structure assists in the use of the first combined frame, providing stable structural support for the membrane treatment component to ensure the operational stability of the device. Both the first and second combined frames are made of energy-absorbing metal, thus ensuring structural strength while reducing the impact of external forces on the membrane treatment component. Furthermore, the device base component allows the membrane treatment component connected to the first combined frame to be fixed to the top surface of the base. The lifting column's telescopic structure allows for height adjustment within a certain range, enabling structural lifting of the membrane treatment component and avoiding structural interference with other structures, facilitating equipment setup and adjustment. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the main body of a membrane treatment device for zero-discharge industrial water circulation according to the present invention.
[0018] Figure 2 This is a schematic diagram of the device base component structure of a membrane treatment device for zero-discharge industrial water circulation according to the present invention;
[0019] Figure 3 This is a three-dimensional structural diagram of the first assembly frame of a membrane treatment device for zero-discharge industrial water circulation according to the present invention.
[0020] Figure 4 This is a three-dimensional structural diagram of the membrane treatment component of a membrane treatment device for zero-discharge industrial water circulation according to the present invention.
[0021] Figure 5 This is a three-dimensional structural diagram of the second assembly frame of a membrane treatment device for zero-discharge industrial water circulation according to the present invention.
[0022] In the diagram: 1. Device base component; 101. Base; 102. Lifting column; 103. Grounding support foot; 2. First assembly frame; 201. First assembly frame; 202. Second assembly frame; 203. Buffer frame; 204. Assembly stake; 205. Assembly socket; 206. Assembly bolt; 3. Membrane treatment component; 301. Main membrane filter tank; 302. Secondary membrane filter tank; 303. Assembly pipe; 304. External pipe; 4. Second assembly frame; 401. First support frame; 402. Second support frame; 403. Docking hole; 404. Docking stake; 405. Connecting bolt. Detailed Implementation
[0023] 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.
[0024] like Figures 1 to 5As shown, a membrane treatment device for zero-discharge industrial water circulation includes a device base component 1 and a first assembly frame 2. The first assembly frame 2 is mounted on the top of the device base component 1, and membrane treatment components 3 are horizontally mounted at both ends inside the first assembly frame 2. A second assembly frame 4 is symmetrically mounted on the middle section of the membrane treatment components 3. The first assembly frame 2 includes a first assembly frame 201, a second assembly frame 202, a buffer frame 203, a combination stake 204, a combination insertion hole 205, and a combination bolt 206. The second assembly frame 202 is located at the bottom of the first assembly frame 201. Buffer frames 203 are mounted on both the side of the first assembly frame 201 away from the second assembly frame 202 and the side of the second assembly frame 202 away from the first assembly frame 201. Furthermore, the second assembly frame 202 is positioned closer to the first assembly frame 201. A combination stake 204 is vertically arranged on one side, and a combination socket 205 is vertically opened on the side of the first combination frame 201 near the second combination frame 202. At the same time, combination bolts 206 are vertically installed at both ends of the first combination frame 201 and the second combination frame 202. The combination bolts 206 are threaded to both ends of the first combination frame 201 and the second combination frame 202. The outer surface structure of the combination stake 204 matches the inner surface structure of the combination socket 205. The first combination frame 201 and the second combination frame 202 are respectively fastened to both ends of the membrane treatment component 3 to form a clamping structure at both ends of the membrane treatment component 3. At the same time, the combination bolts 206 at both ends of the first combination frame 201 and the second combination frame 202 can quickly fix the two sets of structures.
[0025] like Figures 1 to 5As shown, the device base component 1 includes a base 101, a lifting column 102, and a grounding support 103. The lifting column 102 is vertically mounted on the bottom of the base 101, and the grounding support 103 is mounted on the bottom of the lifting column 102. The lifting column 102 is located at the left and right ends of the bottom of the base 101 and is symmetrically arranged front and back. The grounding support 103 and the lifting column 102 are fixedly connected, and the four diagonal corners of the grounding support 103 are provided with holes for bolt installation. The membrane treatment component 3 includes a main membrane filter tank 301 and a secondary membrane filter tank 302. The filter tank 302, the combined pipe 303, and the external pipe 304 are included. Sub-membrane filter tanks 302 are installed at both ends of the main membrane filter tank 301. The end of the sub-membrane filter tank 302 furthest from the sub-membrane filter tank 302 is connected to the combined pipe 303, and the end of the combined pipe 303 furthest from the sub-membrane filter tank 302 is equipped with an external pipe 304. The main membrane filter tank 301 and the sub-membrane filter tanks 302 are integrally structured, and the combined pipe 303 and the sub-membrane filter tanks 302 are interconnected using a quick-connect coupling. The second assembly frame 4 includes... The system comprises a first support frame 401, a second support frame 402, a mating hole 403, a mating post 404, and a connecting bolt 405. The second support frame 402 is located at the bottom of the first support frame 401. A mating hole 403 is formed on the surface of the first support frame 401 near the second support frame 402. A mating post 404 is vertically arranged on the side of the second support frame 402 near the first support frame 401. Connecting bolts 405 are vertically installed at both ends of the first and second support frames 401 and 402. The connecting bolts 405 and the second support frame 402... The first support frame 401 and the second support frame 402 are connected by threads, and the outer surface structure of the docking post 404 and the inner surface structure of the docking hole 403 are matched with each other. The first support frame 401 and the second support frame 402 are spliced together and fastened to the surface of the main membrane filter tank 301. During this process, the docking post 404 is vertically inserted into the docking hole 403. Then, the combination bolt 206 is connected and fixed at both ends of the first support frame 401 and the second support frame 402 by screwing.
[0026] In summary, as Figures 1 to 5 As shown, the membrane treatment device for zero discharge of industrial production water circulation is used by first fastening two sets of first combination frames 201 and second combination frames 202 onto the upper and lower surfaces of the auxiliary membrane filter tank 302 respectively. During this process, the combination stakes 204 are vertically inserted into the interior of the combination sockets 205 to ensure the stability of the splicing of the first combination frames 201 and second combination frames 202. Then, the two sets of combination bolts 206 are screwed to the two ends of the first combination frames 201 and second combination frames 202 to achieve the combination and fixation of the two structures, and fix the entire first combination frame 2 to both ends of the membrane treatment component 3.
[0027] Subsequently, the two sets of first support frames 401 and second support frames 402 are respectively fastened to the two ends of the middle part of the main membrane filter tank 301. During this process, the docking pins 404 are inserted into the docking holes 403, thereby combining the first support frames 401 and second support frames 402 on the surface of the auxiliary membrane filter tank 302, and two sets of connecting bolts 405 are screwed to the two ends of the first support frames 401 and second support frames 402 to achieve structural combination and fixation.
[0028] The membrane treatment component 3, which is equipped with the first combined frame 2, is then fixed to the surface of the base 101 using the buffer frame 203 and bolts. As needed, the lifting column 102 can be used to extend and retract a certain distance to achieve appropriate structural raising or lowering. In addition, the holes at the four opposite corners of the grounding support 103, along with bolts, are used to fix the entire device to the ground. Then, the combined pipe 303 and the external pipe 304, along with the external connecting pipes and the structural setup of the first combined frame 2, are used to connect and combine multiple sets of membrane treatment components 3 to achieve different wastewater treatment efficiencies.
[0029] 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 membrane treatment device for zero-discharge industrial production water circulation, comprising a device base component (1) and a first assembly frame (2), characterized in that: The top of the device base component (1) is equipped with a first combined frame (2), and membrane treatment components (3) are horizontally installed at both ends inside the first combined frame (2). A second combined frame (4) is symmetrically installed on the middle section of the membrane treatment component (3). The first combined frame (2) includes a first combined frame (201), a second combined frame (202), a buffer frame (203), a combined insert (204), a combined insertion hole (205), and a combined bolt (206). The bottom of the first combined frame (201) is provided with the second combined frame (202), and the first combined frame... A buffer frame (203) is installed on the side of the frame (201) away from the second frame (202) and the side of the second frame (202) away from the first frame (201). A combination stake (204) is vertically installed on the side of the second frame (202) close to the first frame (201). A combination socket (205) is vertically opened on the side of the first frame (201) close to the second frame (202). At the same time, combination bolts (206) are vertically installed at both ends of the first frame (201) and the second frame (202).
2. The membrane treatment device for zero-discharge industrial production water circulation according to claim 1, characterized in that, The device base component (1) includes a base (101), a lifting column (102) and a grounding support (103). The lifting column (102) is vertically installed at the bottom of the base (101), and the grounding support (103) is installed at the bottom of the lifting column (102).
3. The membrane treatment device for zero-discharge industrial production water circulation according to claim 2, characterized in that, The lifting column (102) is set at the left and right ends of the bottom of the base (101) and is symmetrically arranged front and back. The grounding support (103) and the lifting column (102) are fixedly connected. The grounding support (103) has holes for bolt installation at the four opposite corners.
4. The membrane treatment device for zero-discharge industrial production water circulation according to claim 1, characterized in that, The combined bolts (206) are all threaded to both ends of the first combined frame (201) and the second combined frame (202), and the outer surface structure of the combined stake (204) matches the inner surface structure of the combined socket (205).
5. A membrane treatment device for zero-discharge industrial production water circulation according to claim 1, characterized in that, The membrane treatment component (3) includes a main membrane filter tank (301), a secondary membrane filter tank (302), a combined pipe (303), and an external pipe (304). The main membrane filter tank (301) is equipped with secondary membrane filter tanks (302) at both its left and right ends. The end of the secondary membrane filter tank (302) away from the secondary membrane filter tank (302) is connected to the combined pipe (303), and the end of the combined pipe (303) away from the secondary membrane filter tank (302) is provided with an external pipe (304).
6. A membrane treatment device for zero-discharge industrial production water circulation according to claim 5, characterized in that, The main membrane filter tank (301) and the secondary membrane filter tank (302) are integrated into one structure, and the combined pipe (303) and the secondary membrane filter tank (302) are connected to each other by a quick connector structure.
7. A membrane treatment device for zero-discharge industrial production water circulation according to claim 1, characterized in that, The second assembly frame (4) includes a first support frame (401), a second support frame (402), a docking hole (403), a docking post (404), and a connecting bolt (405). The bottom of the first support frame (401) is provided with the second support frame (402), and the first support frame (401) has a docking hole (403) on the side surface of the second support frame (402) near the second support frame (402). The second support frame (402) has a docking post (404) vertically arranged on the side of the second support frame (401) near the first support frame (401). The left and right ends of the first support frame (401) and the second support frame (402) are both vertically installed with connecting bolts (405).
8. A membrane treatment device for zero-discharge industrial production water circulation according to claim 7, characterized in that, The connecting bolt (405) is threadedly connected to the first support frame (401) and the second support frame (402), and the outer surface structure of the docking pile (404) and the inner surface structure of the docking hole (403) are matched.