Ionic membrane electrolytic bath structure
By introducing structures such as sliding plates, sliders, frames, and lifting adjustment mechanisms into the ion-exchange membrane electrolyzer, the problem of inconvenient adjustment of the electrode mesh gap is solved, enabling convenient adjustment of the electrode mesh position and improving the efficiency of the electrolysis reaction.
Patent Information
- Application Number
- CN202422899134.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-27
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-11-27
AI Technical Summary
In existing ion-exchange membrane electrolyzers, the gap between electrode meshes is not easily adjustable, which affects the efficiency of the electrolysis reaction.
A structure including a slide plate, a slider, a frame, a lifting adjustment mechanism, an inner folded frame, and a Z-shaped rod was designed. Through the cooperation of the handle and the pull plate, the position adjustment of the electrode grid can be conveniently achieved.
This improves the ease of adjusting the movement of the electrode mesh, facilitates the adjustment of the spacing between electrode meshes, and enhances the efficiency of the electrolysis reaction.
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Figure CN223576608U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of electrolytic cell, concretely to ion exchange membrane electrolytic cell structure. BACKGROUND
[0002] The outstanding performance of ion exchange membrane electrolytic cell in energy saving and environmental protection in the prior art makes the ion exchange membrane electrolytic cell widely used in chlor-alkali chemical field and become the mainstream equipment for caustic soda production. In addition, the ion exchange membrane electrolytic cell is also widely used in wastewater treatment, seawater desalination, pharmaceutical and other fields.
[0003] Electrolysis is a process of causing oxidation-reduction reaction on the cathode and anode by passing current through electrolyte solution or molten electrolyte (also known as electrolyte). Electrochemical cell can occur electrolysis process when external direct current voltage is applied. The process uses electrochemical reaction occurring at the interface of electrode as electron conductor and electrolyte as ion conductor to synthesize chemicals, manufacture high-purity materials and treat material surface. When power is on, cations in electrolyte move to cathode, absorb electrons and occur reduction to generate new substances; anions in electrolyte move to anode, release electrons and occur oxidation to also generate new substances. Electrolytic cell is a reaction container mainly containing electrolyte and electrode mesh.
[0004] Although the electrolytic cell in the prior art can facilitate electrolysis reaction through electrolyte and electrode mesh, it still has some deficiencies in actual use, such as the gap between electrode meshes in the device cannot be conveniently adjusted according to actual use. Therefore, an ion exchange membrane electrolytic cell structure is proposed to solve this problem. SUMMARY
[0005] In view of the deficiencies of the prior art, the utility model provides an ion exchange membrane electrolytic cell structure to solve the problem that the gap between electrode meshes cannot be conveniently adjusted according to actual use.
[0006] To achieve the above purpose, the utility model realizes the following technical scheme: an ion exchange membrane electrolytic cell structure, comprising an electrolytic cell tank and a chute plate, the chute plate is provided with two, and the two chute plates are respectively fixedly arranged on the two sides of the top of the electrolytic cell tank, a plurality of sliding blocks are arranged in the interior of the chute plate, a frame is arranged between the two laterally symmetrical sliding blocks, a lifting adjusting mechanism matched with the frame is arranged on the side surface of the sliding block, an electrode mesh is installed in the interior of the frame, an inner folding edge sleeve frame is slidably arranged on the two sides of the frame, Z-shaped rods are fixedly connected to the front side and the rear side of the inner folding edge sleeve frame, a handle is fixedly connected to the top of the frame, a pull plate is slidably connected in the interior of the handle, and inclined frames matched with the Z-shaped rods are fixedly connected to the two sides of the front side and the rear side of the pull plate.
[0007] Preferably, the lifting adjusting mechanism comprises a sliding frame fixedly arranged on the side of the sliding groove plate, a sliding plate slidably connected in the sliding frame, a first reset spring fixedly connected between the sliding plate and the sliding frame, and a support fixedly connected between one side of the sliding plate and the top of the frame.
[0008] Preferably, a threaded groove penetrating through the top and the bottom of the sliding block is formed, a bolt is threadedly connected in the threaded groove, and a moving notch matched with the bolt is formed in the top of the sliding groove plate.
[0009] Preferably, the front side and the rear side of the frame are fixedly connected with the blocking edges matched with the inner folding edge sleeve frame.
[0010] Preferably, the two sides of the frame are provided with the receiving grooves, the receiving grooves are equidistantly arranged, a supporting rod is slidably connected in the receiving groove, the end of the supporting rod is fixedly connected with the inner wall of the inner folding edge sleeve frame, and a second reset spring is fixedly connected between the supporting rod and the receiving groove.
[0011] Beneficial effects
[0012] The utility model provides a kind of ion exchange membrane cell structure.Compared with prior art, it has the following beneficial effects: the utility model is provided with lifting adjusting mechanism between sliding block and frame, and inner folding edge sleeve frame is arranged on the two sides of frame, and pull plate, inclined frame and Z-type rod are arranged between handle and inner folding edge sleeve frame, so that the movement adjustment of electrode net position can be carried out by the above-mentioned cooperation, the contact surface of frame and electrode net and electrolytic tank box inner wall can be separated and attached in advance, then front and rear position adjustment is carried out, and then the convenience of electrode net movement adjustment is improved, so that the spacing adjustment between electrode net and electrode net is facilitated. BRIEF DESCRIPTION OF DRAWINGS
[0013] Figure 1 It is the external structure schematic diagram of the utility model;
[0014] Figure 2 It is the cross-sectional view of electrolytic tank box structure of the utility model;
[0015] Figure 3 It is the utility model Figure 2 It is the local enlarged view of A in the utility model;
[0016] Figure 4 It is the cross-sectional view of frame structure of the utility model.
[0017] In the figure: 1, electrolytic tank box; 2, sliding groove plate; 3, sliding block; 4, frame; 5, lifting adjusting mechanism; 501, sliding frame; 502, sliding plate; 503, first reset spring; 6, electrode net; 7, inner folding edge sleeve frame; 8, Z-shaped rod; 9, handle; 10, pull plate; 11, inclined frame; 12, threaded groove; 13, bolt; 14, moving notch; 15, retaining edge; 16, storage groove; 17, supporting rod; 18, second reset spring. DETAILED DESCRIPTION
[0018] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model.
[0019] Please refer to Figures 1-4 The utility model provides a technical scheme: a ion exchange membrane electrolytic cell structure, including electrolytic tank box 1 and sliding groove plate 2, sliding groove plate 2 are provided with two, and two sliding groove plates 2 are respectively fixedly arranged on the both sides of the top of electrolytic tank box 1, the inside of sliding groove plate 2 is slidably provided with a plurality of sliding blocks 3, and two transverse symmetrical sliding blocks 3 are provided with frame 4.
[0020] Further: for the convenience of adjusting the position of electrode net 6, the side of sliding block 3 is provided with the lifting adjusting mechanism 5 matched with frame 4, the lifting adjusting mechanism 5 includes sliding frame 501, sliding frame 501 is fixedly arranged on the side of sliding groove plate 2, the inside of sliding frame 501 is slidably connected with sliding plate 502, first reset spring 503 is fixedly connected between sliding plate 502 and sliding frame 501, the top of frame 4 is fixedly connected with the side of sliding plate 502 through support, electrode net 6 is installed in the inside of frame 4, inner folding edge sleeve frame 7 is slidably arranged on the both sides of frame 4, retaining edge 15 matched with inner folding edge sleeve frame 7 is fixedly connected on the both sides of the front side and the back side of frame 4, Z-shaped rod 8 is fixedly connected on the front side and the back side of inner folding edge sleeve frame 7, handle 9 is fixedly connected on the top of frame 4, pull plate 10 is slidably connected in the inside of handle 9, inclined frame 11 matched with Z-shaped rod 8 is fixedly connected on the both sides of the front side and the back side of pull plate 10.
[0021] As a detailed description: the both sides of frame 4 are provided with storage groove 16, a plurality of storage grooves 16 are equidistantly arranged, supporting rod 17 is slidably connected in the inside of storage groove 16, the end of supporting rod 17 is fixedly connected with the inner wall of inner folding edge sleeve frame 7, second reset spring 18 is fixedly connected between supporting rod 17 and storage groove 16.
[0022] Among them: for the convenience of fixing the position of electrode net 6, threaded groove 12 is set up on the top of sliding block 3 and penetrates to the bottom, bolt 13 is screw connected in the inside of threaded groove 12, moving notch 14 matched with bolt 13 is set up on the top of sliding groove plate 2.
[0023] When the installation position of the electrode net 6 is moved: the bolt 13 is screwed in advance, the bolt 13, the sliding block 3 and the sliding groove plate 2 are disengaged from the limiting cooperation, then the operator holds the handle 9 with the palm, then the fingers bend and hold the pull plate 10, the pull plate 10 is close to the top of the inner cavity of the handle 9, the pull plate 10 rises to drive the inclined frame 11 to extrude the Z-shaped rod 8, the Z-shaped rod 8 drives the inner folded edge sleeve frame 7 to move to the contraction of the handle 9, after the inner folded edge sleeve frame 7 is disengaged from the close cooperation with the inner wall of the electrolytic tank box 1, then the current holding posture is kept, the frame 4 is lifted to make the frame 4 slightly rise, so that the bottom of the electrode net 6 is disengaged from the close cooperation with the bottom of the inner cavity of the electrolytic tank box 1, finally the handle 9 is dragged forward and backward, so that the frame 4 and the electrode net 6 are moved forward and backward.
Claims
1. An ion-exchange membrane electrolyzer structure, comprising an electrolyzer tank (1) and two sliding plates (2), wherein two sliding plates (2) are provided, and the two sliding plates (2) are respectively fixedly disposed on both sides of the top of the electrolyzer tank (1), characterized in that: The slide plate (2) has several sliders (3) slidably arranged inside. A frame (4) is arranged between two horizontally symmetrical sliders (3). The sliders (3) are provided with lifting adjustment mechanisms (5) that are used in conjunction with the frame (4) on their sides. An electrode mesh (6) is installed inside the frame (4). An inner folded edge frame (7) is slidably arranged on both sides of the frame (4). A Z-shaped rod (8) is fixedly connected to the front and rear sides of the inner folded edge frame (7). A handle (9) is fixedly connected to the top of the frame (4). A pull plate (10) is slidably connected inside the handle (9). An inclined bracket (11) that is used in conjunction with the Z-shaped rod (8) is fixedly connected to both the front and rear sides of the pull plate (10).
2. The ion-exchange membrane electrolyzer structure according to claim 1, characterized in that: The lifting adjustment mechanism (5) includes a sliding frame (501), which is fixedly disposed on the side of the slide plate (2). A sliding plate (502) is slidably connected inside the sliding frame (501). A first return spring (503) is fixedly connected between the sliding plate (502) and the sliding frame (501). One side of the sliding plate (502) is fixedly connected to the top of the frame (4) through a bracket.
3. The ion-exchange membrane electrolyzer structure according to claim 1, characterized in that: The top of the slider (3) is provided with a threaded groove (12) that extends to the bottom. The threaded groove (12) is internally threaded with a bolt (13). The top of the slide plate (2) is provided with a movable slot (14) that is matched with the bolt (13).
4. The ion-exchange membrane electrolyzer structure according to claim 1, characterized in that: Both sides of the front and rear sides of the frame (4) are fixedly connected with a retaining edge (15) that is used in conjunction with the inner folded frame (7).
5. The ion-exchange membrane electrolyzer structure according to claim 1, characterized in that: The frame (4) has storage slots (16) on both sides. Several storage slots (16) are equidistantly arranged. A support rod (17) is slidably connected inside the storage slot (16). The end of the support rod (17) is fixedly connected to the inner wall of the inner folded frame (7). A second return spring (18) is fixedly connected between the support rod (17) and the storage slot (16).