A new type of intelligent welding rod heat preservation bucket

By introducing an adjustment device and a straightening component into the electrode insulation container, the problem of insufficient adaptability of the electrode channel was solved, enabling smooth electrode feeding and straightening, and improving the efficiency of welding work.

CN224278150UActive Publication Date: 2026-05-26CHANGSHA AVIATION VOCATIONAL & TECH COLLEGE (AIR FORCE AVIATION MAINTENANCE TECH COLLEGE)

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHANGSHA AVIATION VOCATIONAL & TECH COLLEGE (AIR FORCE AVIATION MAINTENANCE TECH COLLEGE)
Filing Date
2025-06-03
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing electrode insulation containers cannot adjust the size of the electrode channel according to the electrode size, which leads to electrode blockage or bending, preventing the electrode from passing through smoothly and affecting the efficiency of welding work.

Method used

An adjustment device and correction assembly were designed, including a movable baffle, a guide plate, a correction plate, and a pushing device, which can adjust the channel size according to the electrode size and correct bent electrodes to ensure that the electrodes pass through smoothly.

Benefits of technology

It enables adaptive adjustment of the electrode channel, prevents clogging and corrects bent electrodes, improves the smoothness and efficiency of electrode handling, and ensures continuous welding operations.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model belongs to the technical field of welding rod insulation tanks, and discloses a novel intelligent welding rod insulation tank, including an insulation tank body connected to a base for mounting the insulation tank body; a pushing device disposed inside the base for pushing the welding rod out of the insulation tank body; a welding rod channel formed on the insulation tank body and the base; and an adjusting device disposed within the welding rod channel for adjusting the size of the welding rod channel. Through the action of a moving first driving component and a moving baffle, and by adjusting the size of the welding rod according to its size, the welding rod can be prevented from accumulating and clogging within the welding rod channel, thus ensuring smooth welding rod delivery. Simultaneously, a straightening component corrects bent welding rods, preventing them from failing to pass smoothly through the welding rod channel, which would otherwise affect the entire automatic welding rod removal process, causing inconvenience and delaying welding work.
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Description

Technical Field

[0001] This utility model belongs to the technical field of welding rod insulation buckets, and in particular relates to a new type of intelligent welding rod insulation bucket. Background Technology

[0002] The intelligent welding electrode warming container is a tool used to store and heat welding electrodes, particularly suitable for the secondary voltage power supply of arc welding machines, and features temperature control. The main functions of the intelligent welding electrode warming container include drying and heat preservation. It mainly includes an insulated container body, a cover, a heating device, a wireless charging coil, a battery, an insulating isolation plate, a gravity sensor, a temperature controller, and a wireless transmitter. It can perform necessary drying of the welding electrodes before welding, reducing welding problems caused by damp electrode coatings. Furthermore, the insulated container maintains a constant electrode temperature, ensuring the stability and quality of the welding process. The intelligent welding electrode warming container is typically connected to the secondary voltage terminal of the welding machine, and through intelligent temperature control, the maximum operating temperature can reach 500℃, with temperature uniformity controlled within ±10℃. This design allows the welding electrodes to maintain optimal working condition during construction, improving welding efficiency and quality.

[0003] In the existing technology, the structure of the welding rod insulation tank allows the welder to automatically feed the welding rod from the welding rod channel without opening the lid during use, making it more convenient to retrieve the welding rod and improving production efficiency.

[0004] However, during use, the size of the electrode channel cannot be adjusted according to the size of the electrode. Different insulated containers are needed to store electrodes of different sizes, which makes it not very versatile. In addition, when some electrodes are slightly bent due to external pressure during storage, they cannot pass through the electrode channel smoothly, which affects the entire electrode dispensing process, making it inconvenient to retrieve and delaying welding work. Utility Model Content

[0005] This utility model addresses the problems in the prior art by proposing the following technical solution: a novel intelligent welding rod heat preservation bucket, comprising:

[0006] The insulated bucket body is connected to a base for mounting the insulated bucket body;

[0007] A pushing device, located inside the base, is used to push the welding rod out of the insulation barrel body;

[0008] Welding electrode channels are provided on the body and base of the insulated container;

[0009] An adjustment device, located within the electrode channel, is used to adjust the size of the electrode channel.

[0010] The regulating device includes:

[0011] A movable baffle is installed within the welding electrode channel;

[0012] The first driving component is connected to one side of the movable baffle and is used to push the movable baffle to move.

[0013] Two secondary drive components are located inside the base;

[0014] A guide plate, connected to one side of the second drive component, is used to guide the welding rod.

[0015] As a preferred embodiment of the above technical solution, the electrode channel includes:

[0016] The entrance to the passageway is located at the bottom of the insulated container.

[0017] The groove, located inside the base, connects to the channel entrance and is used to transfer welding rods.

[0018] As a preferred embodiment of the above technical solution, movable grooves are provided on both sides of the bottom of the heat-insulating barrel body, the first driving component is connected to the movable groove, the movable baffle is located in the channel entrance, and the guide plate includes:

[0019] The activity board is set up inside the passageway entrance;

[0020] An arc-shaped plate is connected to a movable plate. The arc-shaped plate is located in a groove, and both the movable plate and the arc-shaped plate are located at the bottom of the movable baffle.

[0021] As a preferred embodiment of the above technical solution, the adjustment device further includes two correction components, which are symmetrically arranged about the center of the base. Each correction component includes:

[0022] The movable block is connected to the second driving component and is located on one side of the movable plate and the arc plate.

[0023] The third drive unit is connected to one side of the moving block, and the third drive unit is connected to a mounting plate;

[0024] A straightening plate, connected to the mounting plate via a first telescopic rod, is used to straighten bent welding rods;

[0025] Guide components are mounted on the straightening plate and the guide plate.

[0026] As a preferred embodiment of the above technical solution, one side of the correction plate is arc-shaped, and an elastic rubber layer is provided on the arc surface. There are three sets of the third driving component, the correction plate, and the guide component, which are arranged in a linear array between the movable plate and the arc-shaped plate.

[0027] As a preferred embodiment of the above technical solution, the guide component includes:

[0028] Adjust the telescopic plate, which is hinged between the movable plate and the straightening plate;

[0029] Multiple second telescopic rods are installed between the adjusting telescopic plate and the movable plate to support the movement of the adjusting telescopic plate.

[0030] As a preferred embodiment of the above technical solution, the telescopic plate is inclined, and the correction plate is located at the connection between the movable plate and the arc plate.

[0031] As a preferred embodiment of the above technical solution, a replacement component is provided at the bottom of the base, the replacement component including:

[0032] A collection box, mounted on the base, is used to collect debris;

[0033] Rotate the baffle, which is positioned between the collection box and the base;

[0034] The fourth driving component is connected inside the collection box. The fourth driving component is connected to the rotating baffle via a rotating shaft and is used to drive the rotating baffle to rotate.

[0035] As a preferred embodiment of the above technical solution, the bottom of the base has an installation opening for installing the collection box, and a limiting member is provided inside the installation opening and on one side of the base for fixing the collection box to the bottom of the base.

[0036] As a preferred embodiment of the above technical solution, the limiting element includes:

[0037] The movable block is movably connected to one side of the base;

[0038] A limiting block is connected to a movable block, which is movably positioned inside the installation port. Limiting slots are provided on both sides of the collection box, and the limiting block is inserted into the limiting slot.

[0039] The beneficial effects of this utility model are as follows:

[0040] This invention utilizes the action of a moving first driving component and a moving baffle, and through an adjusting device, can adjust the size of the welding rod channel according to the size of the welding rod, so that the welding rod will not accumulate and block the welding rod channel, affecting the smoothness of welding rod feeding. At the same time, the straightening component corrects bent welding rods, preventing bent welding rods from being unable to pass through the welding rod channel smoothly, thereby affecting the entire automatic welding rod removal process, causing inconvenience in retrieval, and delaying welding work. Attached Figure Description

[0041] Figure 1 The diagram shown is a schematic representation of the overall structure of the embodiment;

[0042] Figure 2 The diagram shown is a cross-sectional view of the insulated bucket body, base, and adjustment device of an embodiment.

[0043] Figure 3 The diagram shown is a cross-sectional view of the insulated bucket body of the embodiment;

[0044] Figure 4The diagram shown is a cross-sectional view of the insulated bucket body and the base of the embodiment;

[0045] Figure 5 The diagram shown is a structural diagram of the base of the embodiment;

[0046] Figure 6 What is shown is Figure 2 Enlarged view of point A;

[0047] Figure 7 The diagram shown is a structural diagram of the adjustment device in the embodiment;

[0048] Figure 8 The diagram shown is a structural diagram of the guide component in an embodiment;

[0049] Figure 9 The diagram shown is a structural diagram of the replacement component in the embodiment.

[0050] In the diagram: 1. Insulated container body; 2. Pushing device; 3. Base; 4. Moving baffle; 5. First driving component; 6. Second driving component; 7. Guide plate; 8. Channel entrance; 9. Groove; 10. Movable plate; 11. Arc plate; 12. Moving block; 13. Third driving component; 14. Mounting plate; 15. Correcting plate; 16. First telescopic rod; 17. Guide component; 18. Adjustable telescopic plate; 19. Second telescopic rod; 20. Collection box; 21. Rotating baffle; 22. Fourth driving component; 23. Movable block; 24. Limiting block. Detailed Implementation

[0051] To make the objectives, technical solutions, and advantages of the present invention clearer, the technical solutions of the present invention will be clearly and completely described below in conjunction with the embodiments.

[0052] This utility model provides a novel intelligent welding rod insulation bucket, such as Figures 1 to 6As shown, the device includes an insulation barrel body 1, a base 3, a pushing device 2, a welding rod channel, and an adjusting device. The base 3 is fixedly connected to the bottom of the insulation barrel body 1 for mounting the body. Rollers are fixedly installed on the bottom of the base 3 to facilitate movement of the insulation barrel body 1. A display screen is installed on the outer wall of the insulation barrel body 1 to display the internal temperature and monitor it in real time. An alarm is automatically triggered when the temperature exceeds the standard range. The pushing device 2 is located inside the base 3 to push the welding rod out of the insulation barrel body 1. The welding rod channel is located on both the insulation barrel body 1 and the base 3. The pushing device 2 is located on one side of the welding rod channel. An outlet is located on one side of the base 3, communicating with the welding rod channel, allowing the welding rod to move from the outlet to the outside of the insulation barrel body 1 and the base 3 for use. This design accommodates welding rods of different sizes. The electrode can be easily removed. The adjustment device is set inside the electrode channel to adjust the size of the electrode channel. The adjustment device includes a movable baffle 4, a first driving member 5, two second driving members 6, and a guide plate 7. The movable baffle 4 is set inside the electrode channel. The first driving member 5 is fixedly connected to one side of the movable baffle 4 to push the movable baffle 4 to move. By moving the movable baffle 4, the electrode can enter the electrode channel one by one, preventing multiple electrodes from entering the electrode channel and causing blockage, which would affect the removal effect of the electrode. The two second driving members 6 are set inside the base 3. The guide plate 7 is fixedly connected to one side of the second driving member 6 to guide the electrode. The movable baffle 4 is located on top of the second driving member 6 and the guide plate 7. There are two of each of the second driving member 6 and the guide plate 7. They are symmetrically arranged around the center of the electrode channel to improve the stability when guiding the electrode.

[0053] In this embodiment, the first driving component 5 and the second driving component 6 can be electric push rods. When it is necessary to remove the welding rod, according to the size of the welding rod inside the insulation barrel body 1, the first driving component 5 is activated to drive the moving baffle 4 to move, and the second driving component 6 is activated to drive the guide plate 7 to move, so that the distance between the two guide plates 7 and the distance between the moving baffle 4 can be adapted to the size of the welding rod. When the welding rod moves into the welding rod channel through the moving baffle 4, the first driving component 5 is activated again to drive the moving baffle 4 to move back to its original position to block the welding rod inside the insulation barrel body 1, and the guide plate 7 inside the welding rod channel guides the welding rod so that the welding rod can fall into the welding rod channel one by one. Then, the pushing device 2 is activated to push the welding rod in the welding rod channel from the outlet to the outside of the base 3 and the insulation barrel body 1, thereby improving the welding rod effect, improving the applicability of the insulation barrel body 1, and facilitating use.

[0054] like Figures 2 to 6As shown, to facilitate the removal of welding rods one by one from the body 1 of the insulation container, thereby improving the smoothness and efficiency of removal, the welding rod channel includes a channel inlet 8 and a groove 9. The welding rod channel is located at the bottom of the body 1 of the insulation container, and the groove 9 is located inside the base 3. The channel inlet 8 and the groove 9 are interconnected and are funnel-shaped to facilitate the movement of the welding rods. The channel inlet 8 and the groove 9 facilitate the installation of an adjustment device for conveying welding rods and adjusting the size of the welding rod channel to accommodate welding rods of different sizes. The bottom of the body 1 of the insulation container has... The guide plate 7 has a movable groove located on both sides of the channel entrance 8. The first driving component 5 is fixedly connected to the movable groove, the movable baffle 4 is located in the channel entrance 8, the second driving component 6 is fixedly installed on the inner wall of the groove 9, and the guide plate 7 includes a movable plate 10 and an arc plate 11. The movable plate 10 is movably disposed in the channel entrance 8, and the arc plate 11 is fixedly connected to the bottom of the movable plate 10. The arc plate 11 is located in the groove 9, and both the movable plate 10 and the arc plate 11 are located at the bottom of the movable baffle 4. The top of the movable plate 10 is slidably connected to the inner wall of the channel entrance 8.

[0055] The first driving component 5 is installed through the movable slot, which drives the movable baffle 4 to move. The distance between the two movable baffles 4 is controlled according to the size of the welding rod, so that the welding rod can move from between the two movable baffles 4 into the channel entrance 8. Then, the second driving component 6 drives the movable plate 10 and the arc plate 11 to move, adjusting the size to prevent the welding rod from getting stuck due to the distance between the movable plate 10 and the arc plate 11, which would affect the delivery of the welding rod. The movable plate 10 moves the welding rod to the arc plate 11 in the groove 9. The arc plate 11 limits the position of the welding rod, so that the welding rod can correspond to the pushing device 2, and the pushing device 2 can push the welding rod to move it out of the base 3 for easy removal.

[0056] like Figure 2 , Figure 5 , Figure 6 , Figure 7 and Figure 8As shown, in order to adjust the bent welding rod and prevent it from getting stuck at the connection between the movable plate 10 and the arc plate 11, thus affecting the automatic removal of the welding rod, the adjustment device also includes two straightening components. The two straightening components are symmetrically arranged with respect to the center of the base 3. Each straightening component includes a moving block 12, a third driving component 13, a mounting plate 14, a straightening plate 15, a first telescopic rod 16, and a guide component 17. The moving block 12 is fixedly connected to the second driving component 6 and is located on one side of the movable plate 10 and the arc plate 11. The third driving component 13 is fixedly connected to one side of the moving block 12. The third driving component 13 passes through the movable plate 10 and is fixedly connected to the mounting plate 14. Multiple first telescopic rods 16 are fixedly installed on one side of the mounting plate 14. The straightening plate 15 is connected to the mounting plate 14 through the first telescopic rods 16 and is used to straighten the bent welding rod. The guide component 17 is set on the straightening plate 15 and the guide plate 7 to guide the welding rod to move between the straightening plates 15 for straightening. One side of the straightening plate 15 is arc-shaped and an elastic rubber layer is provided on the arc surface. There are three sets of the third driving component 13, the straightening plate 15 and the guide component 17, and they are arranged in a linear array between the movable plate 10 and the arc plate 11.

[0057] In this embodiment, the third driving member 13 can be an electric telescopic rod. The moving block 12 facilitates the installation of the third driving member 13 and the mounting plate 14. When the welding rod falls into the channel inlet 8, it is guided by the guide member 17 to move smoothly between the straightening plates 15. When the welding rod bends, the bent portion presses against the straightening plate 15, causing the straightening plate 15 to drive the first telescopic rod 16 to retract. The arc-shaped straightening plate 15 facilitates contact with the outer side of the welding rod, improving the straightening effect. Through the elasticity of the elastic rubber layer, when the third driving member 13 drives the mounting plate 14... When the first telescopic rod 16 moves, the straightening plate 15 moves toward the center of the groove 9, so that the straightening plate 15 contacts and presses against the welding rod. The elastic rubber layer can deform accordingly. For welding rods with slight bending, this elastic deformation can provide a certain buffer space for the welding rod, help the welding rod adjust its posture, and push the welding rod to be straightened, so that it can be taken out for use. After the straightening is completed, the third driving member 13 drives the mounting plate 14, the first telescopic rod 16 and the straightening plate 15 to move to their original positions, so that the welding rod falls into the groove 9 and is pushed out by the pushing device 2.

[0058] like Figure 2 , Figure 6 , Figure 7 and Figure 8As shown, in order to enable the welding rod to move accurately between the straightening plates 15, correct bends, and improve the efficiency of welding rod removal, the guide member 17 includes an adjusting telescopic plate 18 and second telescopic rods 19. The adjusting telescopic plate 18 is hinged between the movable plate 10 and the straightening plate 15. One end of the adjusting telescopic plate 18 is hinged to the movable plate 10, and the other end is hinged to the top of the straightening plate 15. Multiple second telescopic rods 19 are arranged between the adjusting telescopic plate 18 and the movable plate 10. One end of the second telescopic rod 19 is fixedly connected to the movable plate 10, and the other end is slidably connected to the adjusting telescopic plate 18 to support the movement of the adjusting telescopic plate 18. The adjusting telescopic plate 18 is inclined. The straightening plate 15 is located at the connection between the movable plate 10 and the arc plate 11.

[0059] When the third driving component 13 moves the mounting plate 14, it causes the first telescopic rod 16 to move the straightening plate 15. By adjusting the hinges of the two ends of the telescopic plate 18 to the movable plate 10 and the straightening plate 15 respectively, the telescopic plate 18 is extended and deflected, causing the connected second telescopic rod 19 to extend. The second telescopic rod 19 supports and limits the deflected telescopic plate 18, improving its stability. When the straightening plate 15 moves to adapt to the welding rod size, it also allows the telescopic plate 18 to deflect. The welding rod is guided by the rotating plate. When the welding rod moves between the straightening plates 15, the curved part of the welding rod presses against the straightening plates 15, causing the straightening plates 15 to drive the first telescopic rod 16 to retract. The magnetic blocks 20 move relative to each other, so that the elastic rubber layer on the arc side of the straightening plate 15 fits against the curved part. The third driving component 13 drives the mounting plate 14 and the first telescopic rod 16 to move, pressing the straightening plate 15, causing the elastic rubber layer to deform. This makes it easier to continue adjusting the curved welding rod, so that the welding rod can move smoothly to the outside of the base 3 and the body of the heat preservation barrel 1.

[0060] like Figure 2 , Figure 9As shown, in order to collect and clean the debris that falls during the movement of the welding rod and prevent the debris from accumulating inside the groove 9, thus affecting the efficiency of the welding rod movement, a replacement component is provided at the bottom of the base 3. The replacement component includes a collection box 20, a rotating baffle 21, and a fourth driving component 22. The collection box 20 is set on the base 3 to collect debris. The rotating baffle 21 is set between the collection box 20 and the base 3. The fourth driving component 22 is connected inside the collection box 20 and is connected to the rotating baffle 21 through a rotating shaft to drive the rotating baffle 21 to rotate. An installation port is opened at the bottom of the base 3 for installing the collection box 20. A limiting component is provided inside the installation port and on one side of the base 3 to fix the collection box 20 to the bottom of the base 3. The limiting component includes a movable block 23 and a limiting block 24. The movable block 23 is movably connected to the side of the base 3 near the outlet, and the limiting block 24 is fixedly connected to one side of the movable block 23. The movable block 23 is movably connected to the inner wall of the installation port. Limiting grooves are opened on both sides of the collection box 20, and the limiting block 24 is inserted into the limiting groove.

[0061] When debris remains on the rotating baffle 21, the fourth driving component 22 is activated to rotate the rotating shaft and the rotating baffle 21. The fourth driving component 22 can be a motor, causing the rotating baffle 21 to rotate into the collection box 20. The debris on the rotating baffle 21 slides down the rotating baffle 21 into the collection box 20 for collection. Then, the fourth driving component 22 drives the rotating shaft and the rotating baffle 21 to move back to their original positions, keeping the rotating baffle 21 clean and facilitating the movement of the welding rod. When the collection box 20 needs to be replaced, the movable block 23 is moved away from the installation port, causing the movable block 23 to move the limiting block 24 away from the limiting slot, so that the two sides of the collection box 20 are no longer limited. The debris inside the collection box 20 is then cleaned. After cleaning, the collection box 20 is placed in the installation port. By moving the movable block 23 and the limiting block 24, the limiting block 24 is inserted into the limiting slot, limiting the collection box 20 and fixing it to the bottom of the base 3 for easy reuse and improving the automatic removal effect of the welding rod.

[0062] Working principle: During use, when the welding rod needs to be removed, based on the size of the welding rod inside the insulation barrel body 1, the first driving component 5 is activated to move the moving baffle 4, and simultaneously the second driving component 6 moves the guide plate 7. This ensures that the distance between the two guide plates 7 and the distance between the moving baffle 4 are adapted to the size of the welding rod. When the welding rod moves from between the rotating baffles 21 to the channel entrance 8 into the groove 9, the first driving component 5 is activated again to move the rotating baffle 21 back to its original position, blocking the welding rod inside the insulation barrel body 1. The telescopic plate 18 is adjusted to guide the welding rod, allowing it to fall between the straightening plates 15. The bent parts of the welding rod press against the straightening plates 15, thus straightening the rod. The positive plate 15 drives the first telescopic rod 16 to retract. The correcting plate 15 and the adjusting telescopic plate 18 move relative to each other through the magnetic block 20, so that the elastic rubber layer on the arc side of the correcting plate 15 fits the bent part. The third driving component 13 drives the mounting plate 14 and the first telescopic rod 16 to move, squeezing the correcting plate 15, causing the elastic rubber layer to deform, adjusting the bent welding rod, and pushing the welding rod to correct it. After the correction is completed, the third driving component 13 drives the mounting plate 14, the first telescopic rod 16 and the correcting plate 15 to move away from each other, so that the welding rod falls into the arc plate 11 in the groove 9. Then the pushing device 2 is activated to push the welding rod from the outlet to the outside of the base 3 and the body of the heat preservation barrel 1.

[0063] When welding rod debris remains on the rotating baffle 21, the fourth drive unit 22 is activated to rotate the rotating shaft and the rotating baffle 21, causing the rotating baffle 21 to rotate into the collection box 20. The debris on the rotating baffle 21 slides down the rotating baffle 21 into the collection box 20 for collection. Then, the fourth drive unit 22 drives the rotating shaft and the rotating baffle 21 to move back to their original positions, so that the rotating baffle 21 can continue to be at the bottom of the groove 9, facilitating the movement of the welding rod. When the collection box 20 needs to be replaced, the movable block 23 is moved away from the installation port, so that the movable block 23 moves the limiting block 24 away from the limiting groove, so that the side of the collection box 20 is no longer limited. Then, the debris inside the collection box 20 is cleaned. After cleaning, the collection box 20 is placed in the installation port. By moving the movable block 23 and the limiting block 24, the limiting block 24 is inserted into the limiting groove, limiting the collection box 20 and fixing it to the bottom of the base 3 for easy reuse and improving the efficiency of welding rod removal.

[0064] The above embodiments are only used to illustrate the technical solution of this utility model, and are not intended to limit it.

Claims

1. A new type of intelligent electrode storage bucket, characterized in that, include: The insulated bucket body (1) is connected to a base (3) for mounting the insulated bucket body (1). A pushing device (2) is installed inside the base (3) to push the welding rod out of the heat preservation barrel body (1). Welding electrode channels are provided on the body (1) of the heat preservation barrel and the base (3); An adjustment device is provided inside the electrode channel to adjust the size of the electrode channel; The regulating device includes: A movable baffle (4) is disposed within the welding electrode channel; The first driving component (5) is connected to one side of the movable baffle (4) and is used to push the movable baffle (4) to move. Two second drive units (6) are disposed inside the base (3); The guide plate (7) is connected to one side of the second drive member (6) and is used to guide the welding rod.

2. The novel intelligent electrode storage bucket according to claim 1, characterized in that, The electrode channel includes: The passage entrance (8) is located at the bottom of the insulated barrel body (1); A groove (9) is formed inside the base (3), and the channel entrance (8) is connected to the groove (9) for conveying welding rods.

3. The new smart electrode storage bucket according to claim 2, characterized in that, The insulated bucket body (1) has movable slots on both sides of its bottom. The first driving component (5) is connected to the movable slot. The movable baffle (4) is located inside the channel entrance (8). The guide plate (7) includes: An active panel (10) is set up inside the entrance (8) of the passageway; An arc-shaped plate (11) is connected to the movable plate (10). The arc-shaped plate (11) is located in the groove (9). Both the movable plate (10) and the arc-shaped plate (11) are located at the bottom of the movable baffle (4).

4. The novel intelligent electrode keeping bucket according to claim 3, characterized in that, The adjustment device further includes two correction components, which are symmetrically arranged about the center of the base (3). Each correction component includes: A movable block (12) is connected to the second driving member (6), and the movable block (12) is located on one side of the movable plate (10) and the arc plate (11); The third drive unit (13) is connected to one side of the moving block (12), and the third drive unit (13) is connected to the mounting plate (14). A straightening plate (15) is connected to the mounting plate (14) via a first telescopic rod (16) and is used to straighten bent welding rods; Guide member (17) is disposed on the correction plate (15) and the guide plate (7).

5. The novel intelligent electrode keeping bucket according to claim 4, characterized in that, The correction plate (15) has an arc shape on one side, and an elastic rubber layer is provided on the arc surface of the correction plate (15). There are three sets of the third driving member (13), the correction plate (15) and the guide member (17), and they are arranged in a linear array between the movable plate (10) and the arc plate (11).

6. The novel intelligent electrode keeping bucket according to claim 5, characterized in that, The guide (17) includes: Adjustable telescopic plate (18) is hinged between the movable plate (10) and the corrective plate (15); Multiple second telescopic rods (19) are disposed between the adjusting telescopic plate (18) and the movable plate (10) to support the adjusting telescopic plate (18) in moving.

7. The novel intelligent electrode keeping bucket according to claim 6, characterized in that, The adjustable telescopic plate (18) is inclined, and the correction plate (15) is located at the connection between the movable plate (10) and the arc plate (11).