Exhaust pipeline of crust breaking cylinder of electrolytic bath
By introducing a combination of galvanized iron pipe and rubber hose into the exhaust pipe of the electrolytic cell, and combining it with a gas leak detector and a casing support plate, the problem of poor exhaust was solved, ensuring stable operation of the cylinder and improving the production efficiency and product quality of the electrolytic cell.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-30
- Publication Date
- 2026-03-10
AI Technical Summary
The existing exhaust pipe of the shell-breaking cylinder in the electrolytic cell has poor exhaust effect, which affects the cylinder's operation, causing the cylinder to malfunction and affecting the operation of the electrolytic cell.
An exhaust pipe structure was designed, comprising a galvanized iron pipe, a rubber hose, a sleeve, and a gas leak detector. The combination of the galvanized iron pipe and the rubber hose ensures smooth gas discharge, and the gas leak detector monitors and adjusts the exhaust path. The sleeve and support plate structure enhance the stability of the exhaust pipe.
This achieves the orderly discharge of cylinder exhaust gas, reduces the impact of accumulation on cylinder operation, improves the reliability and stability of equipment operation, and reduces the failure rate.
Smart Images

Figure CN223985074U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to electrolytic cell exhaust technology field, concretely is a kind of electrolytic cell crust breaking air cylinder exhaust pipeline. BACKGROUND
[0002] Electrolytic cell is composed of cell body, anode and cathode, most of them are separated by diaphragm, electrolytic cell works based on electrolysis principle, when direct current passes through electrolyte solution or molten electrolyte, oxidation-reduction reaction will occur on the electrode and electrolyte interface, cation is reduced by electron at cathode, anion is oxidized by losing electron at anode, in this way, electric energy is converted into chemical energy, realizing the decomposition or synthesis of matter, at the same time, a layer of hard electrolyte crust is formed on the surface of electrolytic cell during production process, which hinders raw material addition and electrolysis reaction, crust breaking air cylinder needs to break this layer of crust, and make material port for adding material on the surface of electrolyte crust, so as to regularly and densely add raw material into electrolytic cell, to ensure uniform discharging and stable electrolysis reaction, which is beneficial to improve electrolytic production efficiency and product quality, at the same time, electrolytic cell production in electrolysis workshop is completed by crust breaking and discharging system to supply production raw materials, when crust breaking air cylinder acts, it needs to be completed by reversing valve exhaust, but the existing crust breaking air cylinder exhaust pipeline has poor exhaust effect, which will affect air cylinder action, cause air cylinder to work abnormally, and affect electrolytic cell operation. SUMMARY
[0003] The utility model aims at providing a kind of electrolytic cell crust breaking air cylinder exhaust pipeline, to solve the problem that the existing crust breaking air cylinder exhaust pipeline is proposed in the above background art, and the exhaust effect is poor, which will affect air cylinder action, cause air cylinder to work abnormally, and affect electrolytic cell operation.
[0004] To achieve the above object, the utility model provides the following technical scheme: a kind of electrolytic cell crust breaking air cylinder exhaust pipeline, including electrolytic cell, the surface of electrolytic cell is connected with air cylinder, and air cylinder output shaft is inserted into the inside of electrolytic cell;
[0005] The both ends of electrolytic cell are symmetrically installed with smoke pipe, the surface of smoke pipe is installed with guide structure, and guide structure includes: 2 galvanized iron pipes are welded and installed at the end of smoke pipe, the end of galvanized iron pipe is installed with rubber tube, the surface of rubber tube is symmetrically installed with sleeve one, and the surface of sleeve one is connected with gas leak detector, the surface of rubber tube is installed with sleeve two, and the surface of sleeve two is symmetrically rotatably installed with receiving plate, the surface of sleeve two is fixedly connected with mounting block, and the surface of mounting block is connected with screw rod, the end of screw rod is connected with positioning block penetrating the surface of mounting block.
[0006] Preferably, the both ends of the rubber tube are connected with the galvanized iron pipes on both sides respectively, and the surface of the rubber tube is connected with exhaust.
[0007] The exhaust gas generated by the cylinder enters the inside of the galvanized iron pipe, and the exhaust is smooth.
[0008] Preferably, the sleeve one is arranged in a circular ring structure, and the sleeve one and the rubber tube are in sliding friction structure.
[0009] The sleeve one is moved to slide on the surface of the rubber tube.
[0010] Preferably, the sleeve two is arranged in a hollow cylindrical structure, and the sleeve two and the rubber tube are in sliding friction structure.
[0011] The sleeve two is moved to move on the surface of the rubber tube.
[0012] Preferably, the sleeve two and the receiving plate are rotationally connected, the receiving plate is arranged in a circular arc structure, and the top of the receiving plate is attached to the bottom surface of the rubber tube.
[0013] The sleeve two drives the receiving plate to rotate, so that the receiving plate supports the bottom of the rubber tube, prevents the rubber tube from falling, and improves the stability of the rubber tube installation.
[0014] Preferably, the inside of the mounting block is provided with threads, and the mounting block and the screw rod are in threaded connection.
[0015] The screw rod is rotated to rotate along the threads in the inside of the mounting block, so that the screw rod is moved out of the inside of the mounting block, the position of the positioning block is adjusted, and the positioning block is closer to the mounting surface.
[0016] Compared with the prior art, the electrolytic tank shell breaking air cylinder exhaust pipe has the advantages that:
[0017] 1. The rubber tube and the galvanized iron pipe are arranged, so that the exhaust gas generated by the cylinder can enter the galvanized iron pipe in order, and then be discharged through the rubber tube. The reasonable exhaust path makes the exhaust more smooth, reduces the influence of exhaust gas accumulation on the action of the cylinder, ensures the stable operation of the cylinder, detects the bending part of the rubber tube through the gas leakage detector, reduces the failure caused by the exhaust problem, and improves the reliability of the equipment operation.
[0018] 2. The guide structure is arranged, the position of the receiving plate can be adjusted flexibly by moving the sleeve two, the position of the positioning block can be adjusted by rotating the screw rod, the rubber tube is fixed, the bottom of the rubber tube can be effectively supported by the receiving plate, excessive shaking or deformation of the rubber tube is prevented, and the stability of the exhaust pipe structure is ensured. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 It is a three-dimensional structure schematic view of the utility model.
[0020] Figure 2 The utility model gas leakage detector installation three-dimensional structure schematic drawing for;
[0021] Figure 3 The utility model sleeve two installation three-dimensional structure schematic drawing for;
[0022] Figure 4 The utility model screw rod installation three-dimensional structure schematic drawing for.
[0023] In the drawing: 10, electrolytic tank;20, air cylinder;
[0024] 30, flue;301, galvanized iron pipe;302, rubber tube;
[0025] 40, sleeve one;401, gas leakage detector;402, sleeve two;403, receiving plate;404, mounting block;405, screw rod;406, positioning block. Specific embodiments
[0026] The technical scheme in the embodiments of the utility model will be described clearly and completely below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the utility model.
[0027] Please refer to Figures 1-4 The utility model provides a technical scheme: a kind of electrolytic tank crust breaking air cylinder exhaust pipe, including electrolytic tank 10, air cylinder 20, flue 30, galvanized iron pipe 301, rubber tube 302, sleeve one 40, gas leakage detector 401, sleeve two 402, receiving plate 403, mounting block 404, screw rod 405 and positioning block 406;
[0028] The electrolytic tank crust breaking air cylinder exhaust pipe, it is convenient to discharge waste gas generated by air cylinder 20, specific embodiment is:
[0029] A cylinder 20 is connected to the surface of the electrolytic cell 10, and the output shaft of the cylinder 20 is inserted into the interior of the electrolytic cell 10. Flue pipes 30 are symmetrically installed at both ends of the electrolytic cell 10. A guide structure is installed on the surface of each flue pipe 30, comprising: galvanized iron pipes 301 welded to the ends of the two flue pipes 30; rubber hoses 302 installed at the ends of the galvanized iron pipes 301; sleeves 40 symmetrically fitted onto the surface of the rubber hoses 302; a gas leak detector 401 connected to the surface of sleeves 401; a second sleeve 402 fitted onto the surface of the rubber hoses 302; a receiving plate 403 symmetrically rotatably mounted on the surface of the second sleeve 402; and a mounting block 404 fixedly connected to the surface of the second sleeve 402, with a lead screw connected to the surface of the mounting block 404. 405, the end of the lead screw 405 passes through the surface of the mounting block 404 and is connected to the positioning block 406. The two ends of the rubber tube 302 are respectively connected to the galvanized iron pipes 301 on both sides. The surface of the rubber tube 302 is connected to the exhaust pipe. The first sleeve 40 is set as a circular structure, and the first sleeve 40 and the rubber tube 302 are in a sliding friction structure. The second sleeve 402 is set as a hollow cylindrical structure, and the second sleeve 402 and the rubber tube 302 are in a sliding friction structure. The second sleeve 402 is rotatably connected to the receiving plate 403, and the receiving plate 403 is set as an arc structure. The top of the receiving plate 403 is in contact with the bottom surface of the rubber tube 302. The mounting block 404 is provided with threads inside, and the mounting block 404 and the lead screw 405 are threadedly connected.
[0030] When the cylinder 20 is in use, the gas generated by the cylinder 20 enters the electrolytic cell 10, and the gas enters the smoke pipes 30 on both sides through the electrolytic cell 10, so that the gas enters the galvanized iron pipe 301 through the smoke pipe 30, so that the gas enters the rubber hose 302 through the galvanized iron pipe 301, and the gas is discharged through the rubber hose 302.
[0031] Move the sleeve 40 so that it slides on the surface of the hose 302, causing the sleeve 40 to move the gas leak detector 401 on the surface to the bend of the hose 302. The gas leak detector 401 detects the bend of the hose 302. When the gas leak detector 401 detects a gas leak, it transmits an electrical signal to the user to repair the hose 302.
[0032] like Figure 1Rotate the lead screw 405 upwards, causing it to rotate upwards along the internal thread of the mounting block 404, thus disengaging the lead screw 405 from the mounting block 404. This causes the lead screw 405 to move the positioning block 406 upwards, moving its end to one side of the mounting surface. Simultaneously, move the sleeve 402, allowing it to slide on the surface of the hose 302. Adjust the left and right positions of the sleeve 402 while rotating it. At the same time, hold the receiving plate 403 in place. The second sleeve 402 rotates on the surface of the hose 302, causing the receiving plate 403 to rotate on the surface of the second sleeve 402, ensuring that the receiving plate 403 is always at the bottom of the hose 302. This causes the second sleeve 402 to drive the position of the mounting block 404 to change, which in turn causes the mounting block 404 to drive the screw 405 to rotate. This allows the second sleeve 402 to drive the screw 405 to rotate, enabling multi-directional adjustment of the positioning block 406. This ensures that the end of the positioning block 406 is in contact with the mounting surface, and then the positioning block 406 is fixed to the surface of the mounting surface by screws.
[0033] Working principle: When using the exhaust pipe of the shell-breaking cylinder of the electrolytic cell, a galvanized iron pipe 301, a rubber hose 302, a sleeve 40, and a gas leak detector 401 are provided to facilitate the discharge of exhaust gas generated by the cylinder 20. A sleeve 402, a receiving plate 403, a mounting block 404, a lead screw 405, and a positioning block 406 are also provided to facilitate multi-directional adjustment of the position of the positioning block 406 and to facilitate the fixing of the position of the rubber hose 302, thereby increasing the overall practicality.
[0034] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A crust breaking air cylinder exhaust pipe of electrolytic cell, comprising an electrolytic cell (10), the surface of the electrolytic cell (10) is connected with an air cylinder (20), and the output shaft of the air cylinder (20) is inserted into the inside of the electrolytic cell (10); two symmetrical smoke pipes (30) are installed at the two ends of the electrolytic cell (10), the surface of the smoke pipe (30) is installed with a guide structure, and the guide structure comprises: two galvanized iron pipes (301) are welded and installed at the ends of the smoke pipe (30), the ends of the galvanized iron pipe (301) are installed with a rubber pipe (302), the surface of the rubber pipe (302) is symmetrically sleeved with a sleeve one (40), the surface of the sleeve one (40) is connected with a gas leakage detector (401), the surface of the rubber pipe (302) is sleeved with a sleeve two (402), the surface of the sleeve two (402) is symmetrically rotatably installed with a receiving plate (403), the surface of the sleeve two (402) is fixedly connected with a mounting block (404), the surface of the mounting block (404) is connected with a lead screw (405), and the end of the lead screw (405) penetrates through the surface of the mounting block (404) and is connected with a positioning block (406). characterized in that The two ends of the rubber pipe (302) are connected with the galvanized iron pipes (301) on the two sides, respectively, and the surface of the rubber pipe (302) is connected with an exhaust pipe.
2. A gas cylinder exhaust conduit for a cell hood according to claim 1, characterised in that: The sleeve one (40) is arranged in a circular ring structure, and the sleeve one (40) and the rubber pipe (302) are in sliding friction structure.
3. A gas cylinder exhaust conduit for a cell hood according to claim 1, characterised in that: The sleeve two (402) is arranged in a hollow cylindrical structure, and the sleeve two (402) and the rubber pipe (302) are in sliding friction structure.
4. A gas cylinder exhaust conduit for a cell unscaling rig according to claim 1, characterised in that: The sleeve two (402) and the receiving plate (403) are rotatably connected, the receiving plate (403) is arranged in a circular arc structure, and the top of the receiving plate (403) is attached to the bottom surface of the rubber pipe (302).
5. A gas cylinder exhaust conduit for a cell unscaling rig according to claim 1, characterised in that: The inside of the mounting block (404) is provided with a thread, and the mounting block (404) and the lead screw (405) are in threaded connection.
6. A gas cylinder exhaust conduit for a cell unscaling rig according to claim 1, characterised in that: