Transportation frame for oxygen-free copper rod production
By designing a transport frame for the production of oxygen-free copper rods, the use of components such as slide chutes, sliders, limit rods and motors to fix the oxygen-free copper rods, which solves the scratches caused by bumps during transportation and ensures that the appearance and performance of the copper rods are not damaged.
Patent Information
- Application Number
- CN202422544984.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-22
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2034-10-22
AI Technical Summary
During transportation, the oxygen-free copper rods shake due to bumps in uneven road surfaces, resulting in scratches and affecting appearance and performance.
A transport frame for the production of oxygen-free copper rods is designed to realize the movement of the limit rod and limit plate through slide chutes, sliders, limit rods, drive components, bevel gears and motors, and fix the inner and outer sides of the oxygen-free copper rods to prevent shaking.
Effectively prevent scratches caused by bumps during transportation by oxygen-free copper rods, protecting their appearance and performance.
Smart Images

Figure CN223162351U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of oxygen-free copper rod production, and particularly relates to a transport rack for oxygen-free copper rod production. Background Technique
[0002] An oxygen-free copper rod refers to a copper rod with an extremely low oxygen content (usually not more than 0.02%). In the production process of this copper rod, the introduction of oxygen is strictly controlled to ensure its high purity and excellent performance. The oxygen-free copper rod not only has an extremely low oxygen content, but also the total impurity content is not high (not more than 0.05%), and the purity of copper is usually greater than 99.95%. This makes the oxygen-free copper rod have excellent electrical conductivity, thermal conductivity, corrosion resistance and processing performance.
[0003] When transporting oxygen-free copper rods, they are mostly transported by transport vehicles. When the transport vehicle encounters bumps on the road surface during transportation and generates jolts, the oxygen-free copper rods may shake on the transport vehicle. The shaking may cause friction between the oxygen-free copper rods or with the surface of the transport tool, resulting in scratches. These scratches not only affect the appearance of the oxygen-free copper rods, but may also have a certain impact on their performance. In view of this, we propose a transport rack for oxygen-free copper rod production. Content of the Utility Model
[0004] The purpose of the utility model is to provide a transport rack for oxygen-free copper rod production to solve the problems raised in the above background technique.
[0005] In view of this, the utility model provides a transport rack for oxygen-free copper rod production, including:
[0006] A base and a plurality of first chutes. The plurality of first chutes are opened on the top surface of the base. A first slider is slidably connected in the first chute, and a limiting rod is fixedly connected to the top end of the first slider;
[0007] A driving assembly, which is located in the base and is used to drive a plurality of limiting rods to move;
[0008] A plurality of second chutes. The plurality of second chutes are opened on the top surface of the base. A second slider is slidably connected in the second chute, and a limiting plate is fixedly connected to the top end of the second slider. A threaded rod is threadedly connected in the second slider, and the threaded rod is located in the second chute and is rotatably connected to the second chute;
[0009] A plurality of first rotation slots. The plurality of first rotation slots are opened in the base and are respectively communicated with the plurality of second chutes. A bevel gear is rotatably connected in the first rotation slot, and one end of the bevel gear extends into the second chute and is fixed to one end of the threaded rod;
[0010] A second installation groove is provided. The second installation groove is formed in the base and communicates with one of the first rotation grooves. A second motor is fixedly connected in the second installation groove, and one end of the second motor extends into the first rotation groove and is fixed to one of the bevel gears.
[0011] A transmission assembly is provided. The transmission assembly is located in the base.
[0012] Based on the above structure, through the provided first sliding groove, first slider and limiting rod, it is ensured that the first slider can drive the limiting rod to move along the first sliding groove. Through the provided driving assembly, it is ensured that the user can drive multiple first sliders to slide through the driving assembly, so that multiple first sliders respectively drive multiple limiting rods to slide, enabling multiple limiting rods to fix the inner cavity of the wound oxygen-free copper rod. Through the provided second sliding groove, second slider and limiting plate, it is ensured that the second slider can drive the limiting plate to slide along the second sliding groove. Through the provided first rotation groove and bevel gear, it is ensured that the bevel gear can rotate in the first rotation groove. Through the provided threaded rod, second motor and transmission assembly, it is ensured that when the user starts the second motor, the output shaft of the second motor will drive one of the bevel gears to rotate in one of the first rotation grooves, and one of the bevel gears will drive other multiple bevel gears to rotate through the transmission assembly. When multiple bevel gears rotate, multiple bevel gears will respectively drive multiple threaded rods to rotate, causing multiple second sliders to move under the action of the threads of multiple threaded rods respectively, and multiple second sliders will respectively drive multiple limiting plates to move.
[0013] In the above technical solution, further, the driving assembly includes:
[0014] A second rotation groove is provided. The second rotation groove is formed in the base and communicates with multiple first sliding grooves. A disc is rotatably connected in the second rotation groove. Multiple arc grooves are formed in the disc. Multiple transmission blocks are respectively slidably connected in multiple arc grooves, and one end of each of the multiple transmission blocks extends into multiple first sliding grooves and is respectively fixed to the bottom ends of multiple first sliders.
[0015] A first installation groove is provided. The first installation groove is formed on the bottom surface of the inner wall of the second rotation groove. A first motor is fixedly connected in the first installation groove, and the output shaft of the first motor extends into the second rotation groove and is fixed to the disc.
[0016] In this technical solution, it is ensured that when multiple limiting rods move to appropriate positions, multiple limiting rods can fix the inner side of the wound oxygen-free copper rod.
[0017] In the above technical solution, further, one end of the transmission block is slidably connected to the first sliding groove.
[0018] In this technical solution, it is ensured that one end of the transmission block can slide normally in the first sliding groove.
[0019] In the above technical solution, further, the output shaft of the first motor is rotationally connected to the second rotating groove.
[0020] In this technical solution, it is ensured that the output shaft of the first motor can rotate normally in the second rotation groove.
[0021] In the above technical solution, further, the transmission assembly includes:
[0022] An annular groove is provided in the base and is connected to the plurality of first rotating grooves. A bevel gear ring meshing with the plurality of bevel gears is rotatably connected in the annular groove.
[0023] In this technical solution, when the plurality of limit plates are moved to appropriate positions, the plurality of limit plates can fix the outer side of the wound oxygen-free copper rod to prevent the wound oxygen-free copper rod from shaking on the base.
[0024] In the above technical solution, further, the output shaft of the second motor is rotationally connected to one of the first rotating grooves.
[0025] In this technical solution, it is ensured that the output shaft of the second motor can rotate normally in one of the first rotation slots.
[0026] The beneficial effects of the utility model are:
[0027] For the transport rack used in the production of oxygen-free copper rods, through the provided first chute, first slider, and limiting rod, it is ensured that the first slider can drive the limiting rod to move along the first chute. Through the provided driving component, it is ensured that the user can drive multiple first sliders to slide through the driving component, enabling multiple first sliders to drive multiple limiting rods to slide respectively, so that multiple limiting rods can fix the inner cavity of the wound oxygen-free copper rod. Through the provided second chute, second slider, and limiting plate, it is ensured that the second slider can drive the limiting plate to slide along the second chute. Through the provided first rotating groove and bevel gear, it is ensured that the bevel gear can rotate within the first rotating groove. Through the provided threaded rod, second motor, and transmission component, it is ensured that when the user starts the second motor, the output shaft of the second motor will drive one of the bevel gears to rotate within one of the first rotating grooves, enabling one bevel gear to drive multiple other bevel gears to rotate through the transmission component. When multiple bevel gears rotate, multiple bevel gears will drive multiple threaded rods to rotate respectively, causing multiple second sliders to move under the action of the threads of multiple threaded rods, and enabling multiple second sliders to drive multiple limiting plates to move, solving the problem that when the transport vehicle encounters bumps on the road surface during transportation and jolts occur, the oxygen-free copper rods may shake on the transport vehicle, and the shaking may cause friction between the oxygen-free copper rods or with the surface of the transport tool, resulting in scratches. These scratches not only affect the appearance of the oxygen-free copper rods but may also have a certain impact on their performance. Brief Description of the Drawings
[0028] Figure 1 is the overall structural schematic diagram of the present utility model;
[0029] Figure 2 is one of the cross-sectional structural schematic diagrams of the base of the present utility model;
[0030] Figure 3 is one of the internal structural schematic diagrams of the base of the present utility model;
[0031] Figure 4 is the second cross-sectional structural schematic diagram of the base of the present utility model;
[0032] Figure 5 is the second internal structural schematic diagram of the base of the present utility model;
[0033] Figure 6 is the third internal structural schematic diagram of the base of the present utility model.
[0034] The markings in the figures are shown as:
[0035] 1. Base; 2. First chute; 3. First slider; 4. Second chute; 5. Second slider; 6. Threaded rod; 7. First rotating groove; 8. Bevel gear; 9. Second rotating groove; 10. Disc; 11. Arc groove; 12. Transmission block; 13. First mounting groove; 14. First motor; 15. Annular groove; 16. Bevel gear ring; 17. Second mounting groove; 18. Second motor; 19. Limiting rod; 20. Limiting plate. Detailed implementation mode
[0036] The following will clearly describe the technical solutions in the embodiments of the present application with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all of them. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art belong to the scope of protection of the present application.
[0037] In the description of the present application, it should be noted that the terms used herein are only for describing specific implementation modes, rather than intending to limit the exemplary implementation modes according to the present application. For the convenience of description, the dimensions of each part shown in the drawings are not drawn according to the actual proportional relationship. Technologies, methods, and devices known to those of ordinary skill in the relevant field may not be discussed in detail, but where appropriate, the technologies, methods, and devices should be regarded as part of the authorization specification. In all the examples shown and discussed here, any specific value should be interpreted as merely exemplary, rather than as a limitation. Therefore, other examples of the exemplary embodiments may have different values. It should be noted that similar reference numerals and letters indicate similar items in the following drawings. Therefore, once an item is defined in one drawing, it does not need to be further discussed in subsequent drawings.
[0038] It should be noted that the terms "first", "second", etc. in the description and claims of the present application are used to distinguish similar objects, rather than to describe a specific order or sequence. It should be understood that such data can be interchanged under appropriate circumstances, so that the embodiments of the present application can be implemented in an order other than those illustrated or described here, and the objects distinguished by "first", "second", etc. are usually of the same type, and the number of objects is not limited. For example, the first object can be one or multiple. In addition, "and / or" in the description and claims means at least one of the connected objects, and the character " / " generally represents an "or" relationship between the associated objects before and after.
[0039] It should be noted that in the description of this application, the orientation or positional relationships indicated by the orientation terms such as "front, rear, upper, lower, left, right", "lateral, vertical, perpendicular, horizontal" and "top, bottom", etc. are usually based on the orientation or positional relationships shown in the drawings. It is only for the convenience of describing this application and simplifying the description. Without contrary explanations, these orientation terms do not indicate or imply that the devices or components referred to must have a specific orientation or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting the protection scope of this application; the orientation terms "inside, outside" refer to the inside and outside relative to the contours of the respective components themselves.
[0040] It should be noted that in this application, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitations, the element defined by the statement "including one..." does not exclude the existence of additional identical elements in the process, method, article or device including that element. In addition, it should be pointed out that the scope of the methods and devices in the embodiments of this application is not limited to performing functions in the order shown or discussed. It may also include performing functions in a substantially simultaneous manner or in the reverse order according to the functions involved. For example, the described methods may be performed in an order different from that described, and various steps may be added, omitted, or combined. Additionally, the features described with reference to certain examples may be combined in other examples.
[0041] Embodiment 1:
[0042] Please refer to Figure 1 - Figure 6 as shown, this embodiment provides a transport rack for the production of oxygen-free copper rods, including:
[0043] A base 1 and a plurality of first chutes 2. The plurality of first chutes 2 are opened on the top surface of the base 1. A first slider 3 is slidably connected in the first chute 2, and a limiting rod 19 is fixedly connected to the top end of the first slider 3;
[0044] A driving assembly, which is located inside the base 1 and is used to drive the plurality of limiting rods 19 to move;
[0045] A plurality of second chutes 4. The plurality of second chutes 4 are opened on the top surface of the base 1. A second slider 5 is slidably connected in the second chute 4, and a limiting plate 20 is fixedly connected to the top end of the second slider 5. A threaded rod 6 is threadedly connected in the second slider 5, and the threaded rod 6 is located in the second chute 4 and is rotatably connected to the second chute 4;
[0046] A plurality of first rotation grooves 7 are provided. The plurality of first rotation grooves 7 are formed in the base 1 and are respectively communicated with the plurality of second sliding grooves 4. A bevel gear 8 is rotatably connected in the first rotation groove 7, and one end of the bevel gear 8 extends into the second sliding groove 4 and is fixed to one end of the threaded rod 6.
[0047] A second installation groove 17 is provided. The second installation groove 17 is formed in the base 1 and is communicated with one of the first rotation grooves 7. A second motor 18 is fixedly connected in the second installation groove 17, and one end of the second motor 18 extends into the first rotation groove 7 and is fixed to one of the bevel gears 8.
[0048] A transmission assembly is located inside the base 1.
[0049] Embodiment 2:
[0050] This embodiment provides a transport rack for the production of oxygen-free copper rods. In addition to including the technical solutions of the above embodiments, it further has the following technical features. The drive assembly includes:
[0051] A second rotation groove 9 is provided. The second rotation groove 9 is formed in the base 1 and is communicated with the plurality of first sliding grooves 2. A disc 10 is rotatably connected in the second rotation groove 9. A plurality of arc grooves 11 are formed in the disc 10. A plurality of transmission blocks 12 are respectively slidably connected in the plurality of arc grooves 11, and one ends of the plurality of transmission blocks 12 respectively extend into the plurality of first sliding grooves 2 and are respectively fixed to the bottom ends of the plurality of first sliders 3.
[0052] A first installation groove 13 is provided. The first installation groove 13 is formed on the bottom surface of the inner wall of the second rotation groove 9. A first motor 14 is fixedly connected in the first installation groove 13, and the output shaft of the first motor 14 extends into the second rotation groove 9 and is fixed to the disc 10.
[0053] Among them, during use, the user fixes the base 1 in the cargo box of the transport vehicle. Then, the user hoists the wound oxygen-free copper rod onto the base 1 by a crane and locates it between the plurality of discs 10 and the plurality of limiting rods 19. Subsequently, the user starts the first motor 14, so that the output shaft of the first motor 14 drives the disc 10 to rotate in the second rotation groove 9, causing the disc 10 to respectively press the plurality of transmission blocks 12 through the plurality of arc grooves 11, and enabling one ends of the plurality of transmission blocks 12 to respectively drive the plurality of first sliders 3 to slide in the plurality of first sliding grooves 2, so that the plurality of first sliders 3 respectively drive the plurality of limiting rods 19 to move away from each other, ensuring that when the plurality of limiting rods 19 move to appropriate positions, the plurality of limiting rods 19 can fix the inside of the wound oxygen-free copper rod.
[0054] Embodiment 3:
[0055] This embodiment provides a transport rack for the production of oxygen-free copper rods. In addition to including the technical solutions of the above embodiments, it also has the following technical features: one end of the transmission block 12 is slidably connected to the first chute 2.
[0056] Among them, it is ensured that one end of the transmission block 12 can slide normally within the first chute 2.
[0057] Embodiment 4:
[0058] This embodiment provides a transport rack for the production of oxygen-free copper rods. In addition to including the technical solutions of the above embodiments, it also has the following technical features: the output shaft of the first motor 14 is rotatably connected to the second rotating groove 9.
[0059] Among them, it is ensured that the output shaft of the first motor 14 can rotate normally within the second rotating groove 9.
[0060] Embodiment 5:
[0061] This embodiment provides a transport rack for the production of oxygen-free copper rods. In addition to including the technical solutions of the above embodiments, it also has the following technical features: the transmission assembly includes:
[0062] An annular groove 15, which is opened in the base 1 and communicates with a plurality of first rotating grooves 7. A bevel gear ring 16 that is rotatably connected within the annular groove 15 and meshes with a plurality of bevel gears 8.
[0063] Among them, during use, the user starts the second motor 18, so that the output shaft of the second motor 18 drives one of the bevel gears 8 to rotate within one of the first rotating grooves 7, causing one of the bevel gears 8 to drive the bevel gear ring 16 to rotate within the annular groove 15, and enabling the bevel gear ring 16 to drive the other plurality of bevel gears 8 to rotate. When the plurality of bevel gears 8 rotate, the plurality of bevel gears 8 will respectively drive a plurality of threaded rods 6 to rotate within a plurality of second chutes 4, causing a plurality of second sliders 5 to be respectively driven by the threads of the plurality of threaded rods 6 to drive a plurality of limiting plates 20 towards the direction of the wound oxygen-free copper rod. It is ensured that when the plurality of limiting plates 20 move to appropriate positions, the plurality of limiting plates 20 can fix the outside of the wound oxygen-free copper rod to prevent the wound oxygen-free copper rod from shaking on the base 1.
[0064] Embodiment 6:
[0065] This embodiment provides a transport rack for the production of oxygen-free copper rods. In addition to including the technical solutions of the above embodiments, it also has the following technical features: the output shaft of the second motor 18 is rotatably connected to one of the first rotating grooves 7.
[0066] Among them, it is ensured that the output shaft of the second motor 18 can rotate normally within one of the first rotating grooves 7.
[0067] In use, the user fixes the base 1 in the cargo box of the transport vehicle. Then, the user hoists the wound oxygen-free copper rod onto the base 1 by a crane, and it is located between the plurality of discs 10 and the plurality of limiting rods 19. Subsequently, the user starts the first motor 14, and the output shaft of the first motor 14 drives the disc 10 to rotate in the second rotating groove 9, so that the disc 10 respectively presses the plurality of transmission blocks 12 through the plurality of arc-shaped grooves 11, and one end of each of the plurality of transmission blocks 12 drives the plurality of first sliders 3 to slide in the plurality of first sliding grooves 2, so that the plurality of first sliders 3 respectively drive the plurality of limiting rods 19 to move away from each other, ensuring that when the plurality of limiting rods 19 move to appropriate positions, the plurality of limiting rods 19 can fix the inner side of the wound oxygen-free copper rod. Subsequently, the user starts the second motor 18, and the output shaft of the second motor 18 drives one of the bevel gears 8 to rotate in one of the first rotating grooves 7, so that one of the bevel gears 8 drives the bevel gear ring 16 to rotate in the annular groove 15, and the bevel gear ring 16 drives the other plurality of bevel gears 8 to rotate. When the plurality of bevel gears 8 rotate, the plurality of bevel gears 8 respectively drive the plurality of threaded rods 6 to rotate in the plurality of second sliding grooves 4, and the plurality of second sliders 5 respectively drive the plurality of limiting plates 20 to move towards the wound oxygen-free copper rod under the action of the threads of the plurality of threaded rods 6, ensuring that when the plurality of limiting plates 20 move to appropriate positions, the plurality of limiting plates 20 can fix the outer side of the wound oxygen-free copper rod to prevent the wound oxygen-free copper rod from shaking on the base 1.
[0068] The embodiments of the present application have been described above in conjunction with the accompanying drawings. Without conflict, the embodiments and the features in the embodiments in the present application can be combined with each other. The present application is not limited to the above specific embodiments. The above specific embodiments are merely illustrative and not restrictive. Under the inspiration of the present application, those of ordinary skill in the art can also make many forms without departing from the purpose of the present application and the scope protected by the claims, and all belong to the protection scope of the present application.
Claims
1. A transport rack for the production of oxygen-free copper rods, characterized in that, Comprising: A base (1) and a plurality of first sliding grooves (2), the plurality of first sliding grooves (2) are opened on the top surface of the base (1), a first slider (3) is slidably connected in the first sliding groove (2), and a limiting rod (19) is fixedly connected to the top end of the first slider (3); A driving assembly, the driving assembly is located inside the base (1) and is used to drive a plurality of limiting rods (19) to move; A plurality of second sliding grooves (4), the plurality of second sliding grooves (4) are opened on the top surface of the base (1), a second slider (5) is slidably connected in the second sliding groove (4), a limiting plate (20) is fixedly connected to the top end of the second slider (5), a threaded rod (6) is threadedly connected in the second slider (5), and the threaded rod (6) is located inside the second sliding groove (4) and is rotatably connected to the second sliding groove (4); A plurality of first rotating grooves (7), the plurality of first rotating grooves (7) are opened inside the base (1) and are respectively communicated with the plurality of second sliding grooves (4), a bevel gear (8) is rotatably connected in the first rotating groove (7), and one end of the bevel gear (8) extends into the second sliding groove (4) and is fixed to one end of the threaded rod (6); A second installation groove (17), the second installation groove (17) is opened inside the base (1) and is communicated with one of the first rotating grooves (7), a second motor (18) is fixedly connected in the second installation groove (17), and one end of the second motor (18) extends into the first rotating groove (7) and is fixed to one of the bevel gears (8); A transmission assembly, the transmission assembly is located inside the base (1).
2. A transport rack for producing oxygen-free copper rods according to claim 1, characterized in that: The driving assembly includes: A second rotating groove (9), the second rotating groove (9) is opened inside the base (1) and is communicated with the plurality of first sliding grooves (2), a disc (10) is rotatably connected in the second rotating groove (9), a plurality of arc-shaped grooves (11) are opened on the disc (10), a plurality of transmission blocks (12) are respectively slidably connected in the plurality of arc-shaped grooves (11), and one ends of the plurality of transmission blocks (12) respectively extend into the plurality of first sliding grooves (2) and are respectively fixed to the bottom ends of the plurality of first sliders (3); A first installation groove (13), the first installation groove (13) is opened on the bottom surface of the inner wall of the second rotating groove (9), a first motor (14) is fixedly connected in the first installation groove (13), and the output shaft of the first motor (14) extends into the second rotating groove (9) and is fixed to the disc (10).
3. The transport rack for the production of oxygen-free copper rods according to claim 2, characterized in that, One end of the transmission block (12) is slidably connected to the first sliding groove (2).
4. The transport rack for producing oxygen-free copper rods according to claim 2, characterized in that, The output shaft of the first motor (14) is rotatably connected to the second rotating groove (9).
5. The transport rack for producing oxygen-free copper rods according to claim 1, wherein, The transmission assembly includes: An annular groove (15), the annular groove (15) is opened inside the base (1) and is communicated with the plurality of first rotating grooves (7), a bevel gear ring (16) that meshes with the plurality of bevel gears (8) is rotatably connected in the annular groove (15).
6. A transport rack for producing oxygen-free copper rods according to claim 1, characterized in that: The output shaft of the second motor (18) is rotatably connected to one of the first rotating grooves (7).