An electrode storage device
By combining a cleaning rotating device, a conveying structure, and a lifting device, the problems of dust contamination and complex operation in electrode storage devices are solved, achieving efficient cleaning and convenient storage of electrodes and extending their service life.
Patent Information
- Application Number
- CN202310688873.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-12
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2043-06-12
AI Technical Summary
Existing electrode storage devices are susceptible to dust contamination during frequent use, and the operation procedures are cumbersome, affecting electrode sensitivity and service life.
An electrode storage device is designed, which includes a cleaning and rotating device, a conveying structure, and a lifting device. The cleaning and rotating device automatically cleans the dust and dirt on the electrode surface, the conveying structure facilitates the storage of electrodes, and the lifting device enables the cleaning, storage, and interchange of electrodes.
It effectively reduces the contact between the electrode and dust in the air, extends the service life of the electrode, simplifies the operation process, and improves the convenience of fixing and storing the electrode during transportation.
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Figure CN116714876B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of electrodes, specifically an electrode storage device. Background Technology
[0002] In a battery, electrodes generally refer to the locations where redox reactions occur with the electrolyte solution. Electrodes are classified as positive and negative; the positive electrode is typically the cathode, gaining electrons and undergoing a reduction reaction, while the negative electrode is the anode, losing electrons and undergoing an oxidation reaction. Electrodes can be metallic or non-metallic; as long as they can exchange electrons with the electrolyte solution, they become electrodes. With the development of technology, the application of electrodes has become increasingly widespread. Because electrodes are generally made of relatively active or sensitive metallic materials, they should not be easily exposed to air during use, and should be protected from contamination and mold. They are usually placed in distilled water. In addition, because there are few electrode storage racks for transportation and fixation, they are easily touched and damaged during transportation. If they are completely fixed, they are inconvenient to access. When using them, attention should be paid to the storage time, and manual cleaning is required after use, which is quite troublesome.
[0003] A patent application with publication number CN102837878A discloses an electrode storage box, including a rectangular box structure. A horizontal plate is fixed inside the box, positioned between the upper and lower ends of the box. When the electrode is placed on the plate, the plate has a set of accommodating through holes that cooperate with the electrode. Each set of through holes includes a main through hole that cooperates with the lower main body of the electrode and a secondary through hole that cooperates with the lower branch of the electrode. The lower end of the outer wall of the electrode storage box has stacking latching parts and groove-shaped structures that cooperate with the stacking latching parts. The lower part of the outer wall also has a notch structure suitable for gripping. This invention has a simple structure, is easy to implement, and can ensure that automated Inova electrode storage and handling are protected from damage by squeezing and bumping.
[0004] Therefore, it can be seen that the above-mentioned device can be easily transported and stored during use. However, with frequent use, repeated handling and exposure to air will reduce the sensitivity of the electrode and the probability of dust contamination. In addition, the electrode has a special cleaning device, and the operation steps are numerous when cleaning it back and forth, which can easily cause wear and reduce the service life of the electrode, making it quite troublesome.
[0005] Therefore, the present invention provides an electrode storage device. Summary of the Invention
[0006] In order to overcome the shortcomings of the prior art, at least one technical problem raised in the background art is solved.
[0007] The technical solution adopted by the present invention to solve its technical problem is as follows: The electrode storage device of the present invention includes a square box, a cleaning box fixedly connected to the center of the square box, and a cleaning rotation device installed inside the cleaning box. The cleaning rotation device includes:
[0008] The cleaning tub is slidably installed inside the cleaning chamber.
[0009] The cleaning rotating column is rolled inside the square box, and the bottom end of the cleaning rotating column is fixedly connected with cleaning helical teeth.
[0010] Cleaning brushes: Several cleaning brushes are fixedly connected to the inner wall of the cleaning tub.
[0011] The first cleaning cover plate is fixedly installed at the top of the cleaning tank. The cleaning cover plate has an opening for cleaning electrodes. Before cleaning, the electrode is held in the center of the opening. Then, the cleaning tank is filled with about half of the cleaning solution. After filling, the electrode is ready to be cleaned. First, the cleaning helical teeth are rotated. The cleaning helical teeth drive the cleaning rotating column fixedly connected to the top to rotate. The rotation of the cleaning rotating column drives the cleaning tank fixedly connected to the top to rotate synchronously. The rotation of the cleaning tank drives several cleaning brushes fixedly connected to the inner wall to rotate synchronously. At this time, the electrode is fixed, and the rotation of the cleaning brushes can clean the garbage and dust on the electrode surface. The cleaning solution inside the cleaning tank can help clean the electrode and remove any dust and dirt residue that has not been completely cleaned.
[0012] Preferably, a lifting device is slidably installed inside the lifting ring. The lifting device includes a lifting threaded block slidably installed on the inner wall of the lifting ring. The inner wall of the lifting ring is provided with a limit protrusion, and the outer wall of the lifting threaded block is provided with a lifting limit groove. A threaded rod is rolled inside the lifting threaded block. A single tooth is fixedly installed at the lower end of the outer wall of the threaded rod, and a threaded helical tooth is fixedly installed at the bottom end of the threaded rod. When it is necessary to raise the lifting threaded block, the threaded helical tooth is first rotated. The threaded helical tooth drives the threaded rod fixedly connected to the top end to rotate. The threaded rod is installed inside the square box, so the threaded helical tooth drives the threaded rod to rotate. The rod rotates inside the square box, and a lifting ring is set at the top of the square box. The inner wall of the lifting ring is fixedly installed with a limiting protrusion. When the threaded rod rotates, it drives the lifting threaded block connected to the outer wall to rotate. The lifting limiting groove on the outer wall of the lifting threaded block engages with the limiting protrusion. Therefore, the lifting threaded block moves upward with the rotation of the threaded rod. There is a section of empty thread at the upper end of the threaded rod, so that the lifting threaded block does not rise completely to the top and hit the threaded disc teeth fixed at the top. When it is necessary to lower the lifting threaded block, it is only necessary to rotate the threaded helical teeth in the opposite direction. The movement is the opposite of the above.
[0013] Preferably, the side wall of the lifting threaded block is provided with a lifting recess, and a telescopic device is fixedly installed on the side wall of the lifting recess. The telescopic device includes a support base fixedly connected to the side wall of the lifting recess, two support base extension handles fixedly installed on the side wall of the support base, a first fixed cylinder fixedly connected to the inner wall of the support base extension handle, a reciprocating threaded column rolledly connected to the inside of the support base extension handle, a reciprocating nut slidably connected to the outer wall of the reciprocating threaded column, a nut telescopic rod fixedly connected to the side wall of the reciprocating nut, a first sliding rod cylinder fixedly connected to the outer wall of the reciprocating nut, a rotating shaft rod rolledly connected to the inside of the nut telescopic rod, a rotating shaft handle rolledly installed on the outer wall of the rotating shaft rod, the rotating shaft handle rolledly connected to a ring through the rotating shaft rod, a sliding cylinder rolledly connected to the inner wall of the ring, both ends of the sliding cylinder rolledly connected to the inside of the clamping and fixing handle, a second sliding rod cylinder fixedly connected to the outer wall of the ring, and a second fixed cylinder fixedly connected to the inner wall of the clamping and fixing handle.
[0014] Preferably, a clamping ring is fixedly connected to the side wall of the clamping handle, and a clamping power column is slidably installed inside the clamping ring. A clamping plate is fixedly connected to the side wall of the clamping power column, and a clamping spring is fixedly connected to the side wall of the clamping plate. One end of the clamping spring is fixedly connected to the clamping plate, and the other end of the clamping spring is fixedly connected to the inner wall of the clamping ring. When it is necessary to clamp the electrode, first hold the electrode in your hand, then pull the clamping power columns at both ends of the clamping ring outward. Under the action of the clamping power columns, the clamping plates will increase the gap between the two clamping plates. Then place the electrode in the middle of the clamping plates, release the clamping power columns on both sides, and then release your hand to complete the clamping of the electrode. If it is necessary to remove it, simply reverse the operation steps. This device can move and limit the electrode after clamping it, which is convenient for the maintenance and upkeep of the electrode.
[0015] Preferably, a conveying structure is slidably installed inside the square housing. The conveying structure includes a movable rack slidably installed inside the square housing. Several placement blocks are fixedly installed on the inner wall of the movable rack, and electrode placement buckets are fixedly installed on the side walls of the placement blocks. A bucket cover is fixedly installed on the top of the electrode placement bucket. When it is necessary to rotate the electrode placement bucket, the threaded helical teeth can be rotated first. The threaded helical teeth drive the actuating single tooth on the outer wall to rotate, thereby causing the actuating single tooth to mesh with the movable rack. The movable rack is slidably installed inside the square housing. Therefore, the rotating threaded helical teeth drive the actuating single tooth to actuate the movable rack, and the movable rack, in turn, causes the placement blocks and electrode placement buckets fixedly connected to the inner wall of the movable rack to continue to move. After that, the entire movable rack can be replaced. Furthermore, a ratchet structure is installed at the position where the actuating single tooth is installed. If it is rotated counterclockwise, it will not drive the actuating single tooth to rotate. This device can prevent the movable rack from swinging back and forth during movement, thereby improving the stability of the equipment.
[0016] Preferably, a cleaning spring is fixedly connected to the bottom end of the cleaning tub, and the bottom end of the cleaning spring is fixedly connected to the top end of the cleaning cylindrical groove. When the clamping ring moves from the top end to the top end of the cleaning tub, the cleaning tub is pushed upward under the action of the cleaning spring, so as to prevent the helical teeth at one end of the driven column from driving the cleaning helical teeth to rotate. When the clamping ring continues to move downward, it can press the cleaning tub, so that the cleaning helical teeth mesh with the helical teeth at one end of the driven column, thereby driving the cleaning tub to rotate, thus achieving the purpose of tilting force on the electrode. This device transmits power by pressing, has a simple structure, and saves time and effort.
[0017] Preferably, the bottom end of the square box is internally connected to a power structure, the power structure including a driven column internally connected to the bottom end of the square box, one end of the driven column engaging with a cleaning helical gear for transmission, the other end of the driven column engaging with a threaded helical gear for transmission, a first power column internally connected to the square box near the side wall, the end of the first power column being fixedly connected to a first power helical gear, the first power column and the threaded rod engaging with the threaded helical gear and the first power helical gear for transmission.
[0018] Preferably, the cleaning oblique teeth, the cleaning rotating column, and the cleaning tank all have channels at their center. A cleaning electrode opening is slidably connected to the middle of the cleaning oblique teeth. A pipe is fixedly installed inside the square box, extending to the outer wall of the square box. A pipe switch valve is fixedly connected to the outer wall of the pipe. The cleaning tank, the cleaning rotating column, and the cleaning oblique teeth are hollow, and the pipe is slidably connected to the bottom end of the cleaning oblique teeth, so that the pipe is connected to the cleaning tank. The pipe switch valve can open and close the flow and replacement of the liquid inside the cleaning tank. This device can replace the water flow inside the cleaning tank and can also flush the pipe through the water pipe. The water flow inside the pipe flows into the cleaning tank and also flushes the cleaning tank, thereby replacing and protecting the cleaning tank.
[0019] Preferably, a power fixing block is fixedly connected to the side wall of the support base, a power cylinder is rolledly connected to the inner wall of the power fixing block, a power disc tooth is fixedly connected to the top of the power cylinder, and a threaded disc tooth is fixedly connected to the top of the threaded rod. The threaded disc tooth and the power disc tooth mesh when they are at the same height. When the lifting threaded block moves to the lower end, the distance between the power disc tooth and the threaded disc tooth is relatively far, so the power disc tooth will not rotate. When the power disc tooth moves to the top, the power disc tooth contacts the threaded disc tooth, and there is an unthreaded area left on the upper end of the outer wall of the threaded rod. Therefore, when the lifting threaded block moves to the top, the lifting threaded block stays at the upper end, and the power disc tooth meshes with the threaded disc tooth, thereby driving the power disc tooth to rotate. This device completes the transmission of force to the power disc tooth and the entire force at the lower end of the power disc tooth through distance coordination.
[0020] Preferably, the clamping power column has a spring-loaded groove inside, and the top of the placement bucket lid is fixedly connected to a placement protrusion. When the clamping ring moves to the top of the cleaning bucket, the first cleaning cover does not have a placement protrusion at its top, so the clamping plate will not open, thereby clamping and stabilizing the electrode during cleaning. The placement protrusion at the top of the placement bucket lid is for placement and storage when the clamping ring moves directly above the electrode placement bucket. This device separates placement and storage, thus making the division of labor in the equipment clear.
[0021] The beneficial effects of this invention are as follows:
[0022] 1. The electrode storage device of the present invention can clean the electrodes by means of a cleaning and rotating device, thereby reducing the contact between the electrodes and dust in the air after use. Cleaning the electrodes can maintain their sensitivity and service life, thus extending their service life.
[0023] 2. The electrode storage device of the present invention stores electrodes through a conveying structure. During use, the electrodes can be cleaned and stored using a power structure, which also provides a holding effect on the electrodes, making them easy to fix during transportation.
[0024] 3. The electrode storage device of the present invention interchanges the cleaning and storage of electrodes through a lifting device. During cleaning, the device transports the electrode to the cleaning position and then places the tilted electrode above the storage position, combining the movements of the two structures to improve usability. Attached Figure Description
[0025] The invention will now be further described with reference to the accompanying drawings.
[0026] Figure 1 This is an overall structural outline drawing of the present invention;
[0027] Figure 2 This is a cross-sectional view of the outer shape of the rotating device of the present invention;
[0028] Figure 3 This is a structural diagram of the telescopic device of the present invention;
[0029] Figure 4 This is a segmented diagram of the telescopic device of the present invention;
[0030] Figure 5 This is a structural telescopic diagram of the telescopic device of the present invention;
[0031] Figure 6 This is a diagram of the power structure of the telescopic device of the present invention;
[0032] Figure 7 This is a structural diagram of the clamping device of the present invention;
[0033] Figure 8 This is a cross-sectional view of the lifting device structure of the present invention;
[0034] Figure 9 This is a structural diagram of the transmission device of the present invention;
[0035] Figure 10 This is a cross-sectional view of the power structure of the present invention;
[0036] Figure 11 This is an overall diagram of the power transmission system of the present invention;
[0037] Figure 12 This is a cross-sectional view of the water flow pipe of the present invention;
[0038] In the picture:
[0039] 1. Square housing; 11. Cleaning housing; 112. Cleaning cylindrical groove; 12. Lifting ring; 121. Limiting protrusion; 13. Electrode;
[0040] 2. Cleaning rotating device; 21. First cleaning cover plate; 22. Cleaning tank; 23. Cleaning brush; 24. Cleaning rotating column; 25. Cleaning helical teeth; 26. Cleaning spring; 27. Cleaning electrode opening; 28. Pipeline; 29. Pipeline switch valve;
[0041] 3. Telescopic device; 31. Support base; 311. Power fixing block; 312. Power cylinder; 313. Power disc tooth; 32. Support base extension handle; 321. First fixed cylinder; 322. First sliding rod cylinder; 33. Reciprocating threaded column; 34. Reciprocating nut; 35. Nut telescopic rod; 36. Rotating shaft rod; 37. Rotating shaft handle; 38. Clamping fixing handle; 381. Clamping ring; 382. Clamping power column; 383. Spring-opening groove; 384. Clamping spring; 385. Clamping plate; 386. Second fixed cylinder; 3861. Second sliding rod cylinder; 387. Ring; 3871. Sliding cylinder;
[0042] 4. Lifting device; 41. Lifting threaded block; 411. Lifting limit slide groove; 412. Lifting concave block; 42. Threaded rod; 43. Actuating single tooth; 44. Threaded helical tooth; 45. Threaded disc tooth;
[0043] 5. Conveying structure; 51. Moving rack; 52. Fixing block; 53. Electrode placement bucket; 54. Bucket lid; 55. Protrusion placement;
[0044] 6. Power structure; 61. Driven column; 62. First power column; 621. First power helical gear. Detailed Implementation
[0045] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.
[0046] Example 1
[0047] like Figure 1-12 As shown in the embodiment of the present invention, an electrode storage device includes a square box 1, a cleaning box 11 fixedly connected to the center of the square box 1, and a cleaning rotation device 2 installed inside the cleaning box 11. The cleaning rotation device 2 includes:
[0048] The cleaning tub 22 is slidably installed inside the cleaning chamber 11.
[0049] A cleaning rotating column 24 is fixed to the bottom of the cleaning tank 22. The cleaning rotating column 24 is rolled inside the square box 1. A cleaning helical tooth 25 is fixedly connected to the bottom of the cleaning rotating column 24.
[0050] Cleaning brush 23, several cleaning brushes 23 are fixedly connected to the inner wall of the cleaning tub 22;
[0051] The first cleaning cover plate 21 is fixedly installed on the top of the cleaning tank 22, and the cleaning electrode opening 27 is provided inside the first cleaning cover plate 21.
[0052] Specifically, before cleaning, electrode 13 is placed inside the center of cleaning electrode opening 27. Then, cleaning solution is placed inside cleaning tank 22. After placement, preparation for cleaning electrode 13 begins. First, cleaning helical teeth 25 are rotated. Cleaning helical teeth 25 drive cleaning rotating column 24 fixedly connected to the top to rotate. The rotation of cleaning rotating column 24 drives cleaning tank 22 fixedly connected to the top to rotate synchronously. The rotation of cleaning tank 22 drives several cleaning brushes 23 fixedly connected to the inner wall to rotate synchronously. At this time, electrode 13 is stationary. The rotation of cleaning brushes 23 can clean the debris and dust on the surface of electrode 13. The cleaning solution inside cleaning tank 22 can help clean the electrode 13 of any dust and dirt residue that has not been completely cleaned on the surface, thereby reducing the contact between electrode 13 and dust in the air after use. Cleaning electrode 13 can maintain the sensitivity and service life of electrode 13, making electrode 13 last longer.
[0053] like Figure 8-11As shown, a lifting device 4 is installed on the square box 1. The lifting device 4 includes a lifting ring 12 on the outer wall of the top of the square box 1, a lifting threaded block 41 slidably installed on the inner wall of the lifting ring 12, a limiting protrusion 121 on the inner wall of the lifting ring 12, a lifting limiting groove 411 on the outer wall of the lifting threaded block 41, a threaded rod 42 rollingly installed inside the lifting threaded block 41, a single tooth 43 fixedly installed on the lower end of the outer wall of the threaded rod 42, and a threaded helical tooth 44 fixedly installed on the bottom end of the threaded rod 42.
[0054] Specifically, when it is necessary to raise the lifting threaded block 41, the threaded helical tooth 44 needs to be rotated first. The threaded helical tooth 44 drives the threaded rod 42, which is fixedly connected at the top, to rotate. The threaded rod 42 is installed inside the square box 1. Therefore, the threaded helical tooth 44 drives the threaded rod 42 to rotate inside the square box 1. The top of the square box 1 is provided with a lifting ring 12, and the inner wall of the lifting ring 12 is fixedly installed with a limiting protrusion 121. When the threaded rod 42 rotates and drives the lifting threaded block 41, which is rolled on the outer wall, to rotate, the lifting limiting groove 411 on the outer wall of the lifting threaded block 41 engages with the limiting protrusion 121. Therefore, the lifting threaded block 41 moves upward with the rotation of the threaded rod 42. The upper end of the threaded rod 42 has a section of empty thread, so that the lifting threaded block 41 does not rise completely to the top and hit the threaded disc tooth 45 fixedly connected at the top. When it is necessary to lower the lifting threaded block 41, it is only necessary to rotate the threaded helical tooth 44 in the opposite direction. The movement is the opposite of the above.
[0055] like Figure 3-7 As shown, the side wall of the lifting threaded block 41 is provided with a lifting recess 412, and a telescopic device 3 is fixedly installed on the side wall of the lifting recess 412. The telescopic device 3 includes a support base 31 fixedly connected to the side wall of the lifting recess 412. Two support base extension handles 32 are fixedly installed on the side wall of the support base 31. A first fixed cylinder 321 is fixedly connected to the inner wall of the support base extension handle 32. A reciprocating threaded column 33 is rolledly connected inside the support base extension handle 32. A reciprocating nut 34 is slidably connected to the outer wall of the reciprocating threaded column 33. A nut extension is fixedly connected to the side wall of the reciprocating nut 34. The outer wall of the telescopic rod 35 and the reciprocating nut 34 is fixedly connected to a first sliding rod cylinder 322. The inner wall of the nut telescopic rod 35 is rolledly connected to a rotating shaft rod 36. The outer wall of the rotating shaft rod 36 is rolledly mounted with a rotating shaft handle 37. The rotating shaft handle 37 is rolledly connected to a ring 387 through the rotating shaft rod 36. The inner wall of the ring 387 is rolledly connected to a sliding cylinder 3871. The two ends of the sliding cylinder 3871 are rolledly connected to the inside of the clamping and fixing handle 38. The outer wall of the ring 387 is fixedly connected to a second sliding rod cylinder 3861. The inner wall of the clamping and fixing handle 38 is fixedly connected to a second fixing cylinder 386.
[0056] Specifically, the support base 31 is fixedly installed on the outer wall of the lifting recess 412. When the lifting recess 412 is in place, the entire structure connected to the side of the support base 31 rises. When the lifting recess 412 descends, the entire structure connected to the side of the support base 31 descends. Therefore, when the entire device needs to be unfolded, the power disc gear 313 is rotated first. The power disc gear 313 drives the power cylinder 312, which is fixedly connected at the bottom, to rotate. The bottom end of the power cylinder 312 is provided with helical teeth that mesh with the helical teeth of the reciprocating threaded column 33, which is rolled and connected to the inner wall of the support base extension handle 32, thereby driving the reciprocating threaded column 33 to rotate. The inner wall of the support base extension handle 32 is provided with a first fixed cylinder 321 and a first sliding cylinder 322. The first fixed cylinder 321 is provided with a groove and is fixedly connected to the inner surface of the support base extension handle 32. The first sliding cylinder 322 is fixedly connected to the outer wall of the reciprocating nuts 34 on both sides, thereby allowing the first sliding cylinder 322 to embed into the first fixed cylinder 321. The groove left in the fixed cylinder 321 allows the reciprocating nut 34, which is rolled on the outer wall, to slide on the outer wall of the reciprocating threaded cylinder 33 when the reciprocating threaded cylinder 33 is rotated, without rotating. Then, the reciprocating nut 34 makes a translational movement parallel to the reciprocating threaded cylinder 33 on the outer wall of the reciprocating threaded cylinder 33. Since the reciprocating threaded cylinders 33 on both sides are reciprocating screws, they will automatically turn around at both ends of the reciprocating threaded cylinder 33. The linear motion of the reciprocating nut 34 drives the nut telescopic rod 35 to move synchronously. The rotating shaft 37 is cross-shaped and movable. Therefore, under the movement of the nut telescopic rod 35 and the limitation of the rotating shaft rod 36, the rotating shaft 37 extends the entire front part forward, thereby driving the end ring 387 and the second sliding cylinder 3861 to move synchronously by the same distance, thereby achieving the purpose of extending the entire device. If it is necessary to retract the entire part, the power disc tooth 313 can be rotated in the opposite direction to retract the entire part. The movement mode is the opposite of the above.
[0057] like Figure 7 As shown, a clamping ring 381 is fixedly connected to the side wall of the clamping and fixing handle 38. A clamping power column 382 is slidably installed inside the clamping ring 381. A clamping plate 385 is fixedly connected to the side wall of the clamping power column 382. A clamping spring 384 is fixedly connected to the side wall of the clamping plate 385. One end of the clamping spring 384 is fixedly connected to the clamping plate 385, and the other end of the clamping spring 384 is fixedly connected to the inner wall of the clamping ring 381.
[0058] Specifically, when it is necessary to clamp the electrode 13, first hold the electrode 13 in your hand, then pull the clamping power columns 382 at both ends of the clamping ring 381 outwards. Under the action of the clamping power columns 382, the clamping plates 385 will increase the gap between the two clamping plates 385. Then place the electrode 13 in the middle of the clamping plates 385, release the clamping power columns 382 on both sides, and then release your hand. The clamping of the electrode 13 is now complete. If it needs to be removed, simply reverse the operation steps. This device can move and limit the electrode 13 after clamping it, which is convenient for the maintenance and upkeep of the electrode 13.
[0059] like Figure 9 As shown, a conveying structure 5 is slidably installed inside the square box 1. The conveying structure 5 includes a movable rack 51 slidably installed inside the square box 1. Several placement blocks 52 are fixedly installed on the inner wall of the movable rack 51. An electrode placement bucket 53 is fixedly installed on the side wall of the placement blocks 52. A bucket cover 54 is fixedly installed on the top of the electrode placement bucket 53.
[0060] Specifically, when it is necessary to rotate the electrode placement bucket 53, the threaded helical tooth 44 can be rotated first. The threaded helical tooth 44 drives the actuating single tooth 43 on the outer wall to rotate, thereby driving the actuating single tooth 43 to mesh with the moving rack 51. The moving rack 51 is slidably installed inside the square box 1. Therefore, the rotating threaded helical tooth 44 drives the actuating single tooth 43 to actuate the moving rack 51. The moving rack 51 then drives the placement fixing block 52 and the electrode placement bucket 53, which are fixedly connected to the inner wall of the moving rack 51, to continue to move. After that, the entire moving rack 51 can be replaced. The position where the actuating single tooth 43 is installed is equipped with a ratchet structure. If it is rotated counterclockwise, it will not drive the actuating single tooth 43 to rotate. This device can prevent the moving rack 51 from swinging back and forth during movement, thereby improving the stability of the equipment.
[0061] like Figure 10 As shown, a cleaning spring 26 is fixedly connected to the bottom end of the cleaning tub 22, and the bottom end of the cleaning spring 26 is fixedly connected to the top end of the cleaning cylindrical groove 112.
[0062] Specifically, when the clamping ring 381 moves from the top to the top of the cleaning tub 22, the cleaning tub 22 is pushed upward by the cleaning spring 26, thus preventing the helical teeth at one end of the driven column 61 from rotating the cleaning helical teeth 25. When the clamping ring 381 continues to move downward, it can press the cleaning tub 22, thereby allowing the cleaning helical teeth 25 to mesh with the helical teeth at one end of the driven column 61, thus driving the cleaning tub 22 to rotate, thereby achieving the purpose of tilting the electrode 13. This device transmits power through pressing, has a simple structure, and saves time and effort.
[0063] like Figure 10-11 As shown, the power structure 6 is rolled inside the bottom of the square box 1. The power structure 6 includes a driven column 61 rolled inside the bottom of the square box 1. One end of the driven column 61 is engaged with the cleaning helical gear 25 for transmission, and the other end of the driven column 61 is engaged with the threaded helical gear 44 for transmission. A first power column 62 is rolled inside the square box 1 near the side wall. A first power helical gear 621 is fixedly connected to the end of the first power column 62. The first power column 62 and the threaded rod 42 are engaged for transmission through the threaded helical gear 44 and the first power helical gear 621.
[0064] Specifically, when the entire motion device needs to be started, the first power column 62, which is rolled inside the square box 1, is rotated first. The first power column 62 drives the first power helical tooth 621, which is fixedly connected at the end, to rotate. The first power helical tooth 621 meshes with the threaded helical tooth 44, which in turn meshes with the helical tooth at the end of the driven column 61. The rotation of the washing tub 22 needs to be triggered. At this time, the helical tooth of the driven column 61 has already driven the transmission structure, thus completing the transmission of force. This device can transmit force to the entire device through a single power source. It has a simple structure and is easy to use.
[0065] like Figure 12 As shown, the cleaning helical teeth 25, the cleaning rotating column 24 and the cleaning tank 22 are all provided with channels in their internal centers. The cleaning helical teeth 25 are slidably connected to the cleaning electrode opening 27 in the middle. A pipe 28 is fixedly installed inside the square box 1. The pipe 28 extends to the outer wall of the square box 1. A pipe switch valve 29 is fixedly connected to the outer wall of the pipe 28.
[0066] Specifically, the cleaning tank 22, the cleaning rotating column 24, and the cleaning helical teeth 25 are hollow inside, and the pipe 28 is slidably connected to the bottom end of the cleaning helical teeth 25, so that the pipe 28 is connected to the cleaning tank 22. The pipe switch valve 29 can open and close the flow and replacement of the liquid inside the cleaning tank 22. This device can replace the water flow inside the cleaning tank 22, and can also flush the pipe 28 through the water pipe. The water flow inside the pipe 28 flows into the cleaning tank 22 and also flushes the cleaning tank 22, thereby replacing and protecting the cleaning tank 22.
[0067] like Figure 6-8 As shown, a power fixing block 311 is fixedly connected to the side wall of the support base 31, a power cylinder 312 is rolledly connected to the inner wall of the power fixing block 311, a power disc tooth 313 is fixedly connected to the top of the power cylinder 312, and a threaded disc tooth 45 is fixedly connected to the top of the threaded rod 42. The threaded disc tooth 45 and the power disc tooth 313 mesh when they are at the same height.
[0068] Specifically, when the lifting threaded block 41 moves to the lower end, the distance between the power disc tooth 313 and the threaded disc tooth 45 is relatively far, so the power disc tooth 313 will not rotate. However, when the power disc tooth 313 moves to the top, the power disc tooth 313 contacts the threaded disc tooth 45, and there is an unthreaded area on the upper end of the outer wall of the threaded rod 42. Therefore, when the lifting threaded block 41 moves to the top, the lifting threaded block 41 stays at the upper end, and the power disc tooth 313 meshes with the threaded disc tooth 45, thereby driving the power disc tooth 313 to rotate. This device completes the transmission of force to the power disc tooth 313 and the entire force at the lower end of the power disc tooth 313 through the coordination of distance.
[0069] like Figure 3 and 9 As shown, the clamping power column 382 has a spring-opening groove 383 inside, and the top of the barrel cover 54 is fixedly connected to a placement protrusion 55.
[0070] Specifically, when the clamping ring 381 moves to the top of the cleaning tub 22, the clamping plate 385 will not open if the top of the first cleaning cover 21 does not have a protrusion 55, thus clamping and stabilizing the electrode 13 during cleaning. When the clamping ring 381 moves to the top of the placement tub cover 54, the placement protrusion 55 is placed and stored. This device separates placement and storage, thus making the division of labor of the equipment clear.
[0071] Working principle: Before use, first determine whether there is cleaning agent inside the cleaning tank 22 and the degree of cleanliness of the cleaning agent. If replacement or addition is needed, it is done through the pipeline switch valve 29. After preparation, first align the placement protrusion 55 and the electrode placement tank 53 with the electrode 13. Then, pull the clamping power column 382 and place the electrode 13 in the middle of the clamping plate 385, so that the clamping plate 385 clamps the electrode 13. Start working by rotating the first power column 62. The first power column 62 drives the first power helical tooth 621 to rotate, and the first power helical tooth 621 meshes with the threaded helical tooth 44, thereby driving... When the driven column 61 rotates, the threaded helical teeth 44 simultaneously engage with the helical teeth at the end of the driven column 61, thereby causing the driven column 61 to rotate. The rotation of the driven column 61 causes the helical teeth at both ends to rotate simultaneously. At this time, the cleaning spring 26 and the cleaning bucket 22 are in an upward-springing state, thereby causing the cleaning helical teeth 25 to separate from the driven column 61, and the cleaning bucket 22 does not rotate. If the cleaning bucket 22 is pressed downward when the clamping ring 381 moves to the bottom, the cleaning helical teeth 25 can engage with the helical teeth at the end of the driven column 61, causing the cleaning bucket 22 to rotate. At this time, the threaded helical teeth 44 drive the threaded rod 42 at the top to rotate, and the limiting protrusion 121 inside the lifting ring 12...The lifting threaded block 41 has a lifting limit groove 411 inside, so that when the threaded rod 42 rotates, it drives the lifting threaded block 41 to move upward. Then, when the lifting threaded block 41 moves to the top, it stops at the top and does not abut against the threaded disc teeth 45. Then, the support seat 31 fixedly connected to the side wall of the lifting concave block 412 moves to the top, so that the power disc teeth 313 mesh with the threaded disc teeth 45, thereby driving the power cylinder 312 to rotate. The helical teeth at the bottom of the power cylinder 312 drive the reciprocating threaded column 33 to rotate, and the reciprocating threaded column 33 drives the reciprocating nut 34 to move inward, thereby allowing multiple rotating shafts 37 and extension... This causes the clamping handle 38 to move forward, while the actuating tooth 43 at the lower end of the threaded rod 42 engages with the moving rack 51, thereby causing the moving rack 51 to rotate. The rotation of the moving rack 51 causes the position of the electrode placement bucket 53 to change, and then it rotates in the opposite direction. When the threaded rod 42 rotates in the opposite direction, the clamping handle 38 is in the extended state. After the lifting threaded block 41 moves downward to the bottom, the electrode 13 is aligned with the cleaning electrode opening 27 in the middle of the first cleaning cover plate 21 at the bottom, thereby causing the clamping ring 381 to press against the cleaning bucket 22, so that the cleaning helical tooth 25 engages with the helical tooth at the end of the driven column 61, thereby causing the cleaning bucket 22 to rotate, and thus... Electrode 13 is cleaned and dusted. After cleaning, it rotates in the opposite direction, causing the first power column 62 to drive the lifting threaded block 41 upward. The clamping ring 381 disengages from the cleaning tub 22, thus stopping the rotation of the cleaning tub 22. The subsequent effect is as described above: the power disc teeth 313 and the threaded disc teeth 45 mesh, causing the clamping ring 381 to retract to its original state. Then, it rotates in the opposite direction again, causing the lifting threaded block 41 to move downward. When the lifting threaded block 41 reaches the bottom, the placement protrusion 55 at the top of the electrode placement tub 53 pushes open the position of the spring-loaded groove 383. When the first power column 62 rotates, it drives the threaded helical teeth 44 to rotate, thereby... The rotating single tooth 43 engages with the moving rack 51, thereby cooperating with the upper lifting threaded block 41 and the cleaning tank 22 to raise, lower, and clean the electrode 13. After cleaning, the electrode 13 is placed inside the electrode placement tank 53, causing the clamping power column 382 to move outward. Then, the clamping plate 385 retracts, storing the electrode 13 inside the electrode placement tank 53. This completes the cleaning and storage of the electrode 13, reducing its contact with dust in the air after use. Cleaning the electrode 13 helps maintain its sensitivity and lifespan, extending its service life.
[0072] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. An electrode storage device, comprising a square box (1), characterized in that: A cleaning chamber (11) is fixedly connected to the center of the square box (1). A cleaning rotation device (2) is installed inside the cleaning chamber (11). The cleaning rotation device (2) includes: A cleaning tub (22) is slidably installed inside the cleaning chamber (11); A cleaning rotating column (24) is fixed to the bottom of the cleaning tank (22). The cleaning rotating column (24) is rolled inside the square box (1). A cleaning helical tooth (25) is fixedly connected to the bottom of the cleaning rotating column (24). Cleaning brush (23), a number of cleaning brushes (23) are fixedly connected to the inner wall of the cleaning tub (22); The first cleaning cover plate (21) is fixedly installed on the top of the cleaning tank (22), and the cleaning electrode opening (27) is provided inside the first cleaning cover plate (21). The top outer wall of the square box (1) is provided with a lifting ring (12), and a lifting device (4) is slidably installed inside the lifting ring (12). The lifting device (4) includes a lifting threaded block (41) slidably installed on the inner wall of the lifting ring (12). The inner wall of the lifting ring (12) is provided with a limiting protrusion (121). The outer wall of the lifting threaded block (41) is provided with a lifting limiting groove (411). A threaded rod (42) is slidably installed inside the lifting threaded block (41). A single tooth (43) is fixedly installed at the lower end of the outer wall of the threaded rod (42). A threaded helical tooth (44) is fixedly installed at the bottom end of the threaded rod (42). The lifting threaded block (41) has a lifting recess (412) on its side wall. A telescopic device (3) is fixedly installed on the side wall of the lifting recess (412). The telescopic device (3) includes a support seat (31) fixedly connected to the side wall of the lifting recess (412). Two support seat extension handles (32) are fixedly installed on the side wall of the support seat (31). A first fixed cylinder (321) is fixedly connected to the inner wall of the support seat extension handle (32). A reciprocating threaded column (33) is rolled inside the support seat extension handle (32). A reciprocating nut (34) is slidably connected to the outer wall of the reciprocating threaded column (33). A nut telescopic rod (34) is fixedly connected to the side wall of the reciprocating nut (34). 5) The outer wall of the reciprocating nut (34) is fixedly connected to a first sliding cylinder (322), the inside of the nut telescopic rod (35) is rolledly connected to a rotating shaft (36), the outer wall of the rotating shaft (36) is rolledly mounted with a rotating handle (37), the rotating handle (37) is rolledly connected to a ring (387) through the rotating shaft (36), the inner wall of the ring (387) is rolledly connected to a sliding cylinder (3871), the two ends of the sliding cylinder (3871) are rolledly connected to the inside of the clamping and fixing handle (38), the outer wall of the ring (387) is fixedly connected to a second sliding cylinder (3861), and the inner wall of the clamping and fixing handle (38) is fixedly connected to a second fixing cylinder (386). A clamping ring (381) is fixedly connected to the side wall of the clamping and fixing handle (38). A clamping power column (382) is slidably installed inside the clamping ring (381). A clamping plate (385) is fixedly connected to the side wall of the clamping power column (382). A clamping spring (384) is fixedly connected to the side wall of the clamping plate (385). One end of the clamping spring (384) is fixedly connected to the clamping plate (385), and the other end of the clamping spring (384) is fixedly connected to the inner wall of the clamping ring (381). The square box (1) has a conveying structure (5) slidably installed inside. The conveying structure (5) includes a movable rack (51) slidably installed inside the square box (1). Several placement blocks (52) are fixedly installed on the inner wall of the movable rack (51). Electrode placement buckets (53) are fixedly installed on the side walls of the placement blocks (52). A bucket cover (54) is fixedly installed on the top of the electrode placement buckets (53).
2. The electrode storage device according to claim 1, characterized in that: A cleaning spring (26) is fixedly connected to the bottom end of the cleaning tub (22), and the bottom end of the cleaning spring (26) is fixedly connected to the top end of the cleaning cylindrical groove (112).
3. The electrode storage device according to claim 2, characterized in that: The bottom end of the square box (1) is internally connected to a power structure (6). The power structure (6) includes a driven column (61) internally connected to the bottom end of the square box (1). One end of the driven column (61) is engaged with a cleaning helical gear (25) for transmission, and the other end of the driven column (61) is engaged with a threaded helical gear (44) for transmission. The inside of the square box (1) near the side wall is internally connected to a first power column (62). The end of the first power column (62) is fixedly connected to a first power helical gear (621). The first power column (62) and the threaded rod (42) are engaged with each other through the threaded helical gear (44) and the first power helical gear (621).
4. The electrode storage device according to claim 3, characterized in that: The cleaning helical teeth (25), the cleaning rotating column (24) and the cleaning tank (22) are all provided with channels in the center. The cleaning helical teeth (25) are slidably connected to the middle of the cleaning electrode opening (27). The square box (1) is fixedly installed with a pipe (28). The pipe (28) extends to the outer wall of the square box (1). The outer wall of the pipe (28) is fixedly connected with a pipe switch valve (29).
5. The electrode storage device according to claim 1, characterized in that: The side wall of the support base (31) is fixedly connected to a power fixing block (311), the inner wall of the power fixing block (311) is rolledly connected to a power cylinder (312), the top end of the power cylinder (312) is fixedly connected to a power disc tooth (313), the top end of the threaded rod (42) is fixedly connected to a threaded disc tooth (45), and the threaded disc tooth (45) meshes with the power disc tooth (313) at the same height.
6. The electrode storage device according to claim 1, characterized in that: The clamping power column (382) has a spring-opening groove (383) inside, and the top of the placement bucket cover (54) is fixedly connected to a placement protrusion (55).
Citation Information
Patent Citations
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CN102837878A
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