Aluminum bar transfer device for aluminum profile production

By designing a multi-stage sliding frame and a clamp structure aluminum rod transport device, the problems of specification adaptability and height adjustment are solved, stable and efficient transport of aluminum rods are achieved, and the applicability and safety of the equipment are improved.

CN223302719UActive Publication Date: 2025-09-05SICHUAN COMITY ALUMINIUM CO LTD
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Patent Information

Application Number
CN202420916884.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-04-29
Publication Date
2025-09-05
Estimated Expiration
2034-04-29

AI Technical Summary

Technical Problem

The existing aluminum rod transfer devices have not been able to effectively adapt to aluminum rods of different specifications, and there are shortcomings in the height adjustment of the conveying location, which is inefficient in lifting equipment and is inconvenient for the transfer and transportation of aluminum rods.

Method used

An aluminum rod transport device is designed, including vehicle body components, lifting components and driving components. The fixing and height adjustment of aluminum rods of different specifications is achieved through a multi-stage sliding frame and a block structure. The driving components are used to control the lifting and movement of the partitions to adapt to the height requirements of different conveying points.

Benefits of technology

It realizes stable transport and flexible height adjustment of aluminum rods of different specifications, improves transportation efficiency, and ensures the safety and convenience of aluminum rods during the transportation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of aluminum bar transfer, in particular to an aluminum bar transfer device for aluminum profile production, which comprises a vehicle body component, a lifting component and a driving component are arranged on the vehicle body component, the vehicle body component comprises a chassis and a plurality of partition plates, the lifting component comprises a support frame, and a four-stage sliding frame is slidably connected onto the support frame. A fourth-stage sliding frame is slidably connected to the first-stage sliding frame, a third-stage sliding frame is slidably connected to the fourth-stage sliding frame, a second-stage sliding frame is slidably connected to the third-stage sliding frame, a first-stage sliding frame is slidably connected to the second-stage sliding frame, and a partition plate is fixedly connected to each of the first-stage sliding frame, the second-stage sliding frame, the third-stage sliding frame and the fourth-stage sliding frame. Each stage of sliding frame is provided with a lifting block, and the lifting blocks are lifted to drive the corresponding partition plates to be lifted, so that the aluminum bars on the different partition plates are conveyed at the same height, and the aluminum bars can be conveniently transferred to other equipment or places.
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Description

Technical Field

[0001] The utility model relates to the technical field of aluminum bar transfer, in particular to an aluminum bar transfer device for aluminum profile production. Background Art

[0002] Aluminum bar transfer devices are commonly used in aluminum alloy production lines or processing plants to move aluminum bars from one location to another for further processing or treatment.

[0003] Announcement No. CN205221473U is a utility model that discloses an aluminum bar transfer rack, including a locking mechanism, a square base and four columns connected to the four corners of the base. The aluminum bar transfer rack provided by this solution can stack more than 6 aluminum bars at a time. Compared with the existing technology, the number of aluminum bars transferred at one time is increased and the efficiency is improved; and because the front columns and the rear columns block the aluminum bars, the stability of the aluminum bars is guaranteed after the crane is lifted, and the aluminum bars are fixed by using the locking mechanism, which effectively prevents the aluminum bars from slipping during the transportation process and ensures safe operation.

[0004] However, the aforementioned patent does not consider the aluminum bar specifications, the transportation location, or the height of the equipment when transferring aluminum bars. Due to the specifications of the aluminum bars themselves, lifting is usually used for transfer. However, lifting equipment is not suitable for all situations and is inefficient and inconvenient. Therefore, a transfer device is needed to facilitate the transfer of aluminum bars, transfer to a vehicle, or delivery to a production facility, and to raise the height of aluminum bars at different levels to facilitate their removal from the transfer device. Utility Model Content

[0005] The purpose of the utility model is to provide an aluminum bar transfer device for aluminum profile production, which can adapt to the specifications of the aluminum bars during the transfer process and solve the height problem of the aluminum bar borrowing point at the delivery point.

[0006] The utility model is realized through the following technical scheme: an aluminum rod transfer device for aluminum profile production, including a vehicle body assembly, a lifting assembly and a driving assembly are provided on the vehicle body assembly, the vehicle body assembly includes a chassis and multiple partitions, the lifting assembly includes a support frame, a four-stage sliding frame is slidably connected to the support frame, a three-stage sliding frame is slidably connected to the four-stage sliding frame, a two-stage sliding frame is slidably connected to the three-stage sliding frame, a first-stage sliding frame is slidably connected to the second-stage sliding frame, a first-stage sliding frame is slidably connected to the second-stage sliding frame, a partition is fixedly connected to the first-stage sliding frame, the driving assembly includes multiple moving frames, each moving frame is slidably connected to two clamping blocks, a first end of a spring is fixedly connected to both ends of the moving frame, a second end of the spring is fixedly connected to the clamping block, and an inclined surface is provided at the end of the clamping block away from the spring.

[0007] In order to better realize the present invention, further, the partition is provided with a plurality of holes, and limiting blocks are slidably connected to the holes, and the limiting blocks are provided with arc-shaped inclined surfaces.

[0008] In order to better realize the present invention, further, the first-level sliding frame is fixedly connected to a sliding frame, the end of the sliding frame close to the chassis is slidably connected to a sliding block, the end of the sliding frame away from the chassis is fixedly connected to a lifting block, the end of the lifting block away from the first-level sliding frame is provided with an inclined surface, and the inclined surface faces the mobile frame, and the end of the sliding block away from the first-level sliding frame is provided with an inclined surface, and the inclined surface faces the chassis.

[0009] In order to better realize the present invention, further, the multiple card blocks are fixedly connected by a connecting rod, the connecting rod is rotatably connected to the first end of the left-moving connecting rod and the right-moving connecting rod, and the second end of the left-moving connecting rod and the right-moving connecting rod is rotatably connected to a connecting block.

[0010] In order to better implement the present invention, further, the connecting block is threadedly connected to the threaded rod, and the threaded rod is provided with a bidirectional thread.

[0011] In order to better realize the present invention, further, both ends of the threaded rod are rotatably connected to the chassis, and gearboxes are provided on both ends of the threaded rod, and the gearbox is provided with a rocker.

[0012] Compared with the prior art, the present invention has the following advantages and beneficial effects:

[0013] 1. The utility model opens holes on the partition plate, and can install limiting blocks of different specifications according to the specifications of the aluminum rods or install the limiting blocks at different hole positions, thereby adapting to aluminum rods of various specifications.

[0014] 2. The utility model sets up a multi-level sliding frame, and each sliding frame is provided with a lifting block. By lifting the lifting block, the corresponding partition is driven to lift, so that the aluminum bars on different partitions are transported at the same height, thereby facilitating the transfer of the aluminum bars to other equipment or places. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 It is a front view of the utility model;

[0016] Figure 2 It is a schematic diagram of the overall structure of the utility model;

[0017] Figure 3 for Figure 2 A magnified view of the local structure at point A;

[0018] Figure 4 This is a schematic structural diagram of the lifting assembly of the utility model;

[0019] Figure 5 This is a structural diagram of the sliding block of the utility model;

[0020] Figure 6 This is a schematic diagram of the structure of the drive assembly of the utility model;

[0021] Figure 7 for Figure 6 A magnified view of the local structure at point B in the middle;

[0022] Among them, 1-body assembly; 2-lifting assembly; 3-driving assembly; 101-chassis; 102-driving wheel; 103-partition; 104-limiting block; 201-first-level sliding frame; 202-second-level sliding frame; 203-third-level sliding frame; 204-fourth-level sliding frame; 205-support frame; 206-sliding block; 207-slide; 208-lifting block; 301-moving frame; 302-spring; 303-block; 304-connecting rod; 305-left-moving connecting rod; 306-right-moving connecting rod; 307-connecting block; 308-threaded rod; 309-gearbox; 310-rocker. DETAILED DESCRIPTION

[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0024] Example 1:

[0025] like Figures 1 to 7 As shown, an aluminum rod transfer device for aluminum profile production includes a body assembly 1, a lifting assembly 2 and a driving assembly 3 are provided on the body assembly 1, the body assembly 1 includes a chassis 101 and a plurality of partitions 103, the lifting assembly 2 includes a support frame 205, a four-stage sliding frame 204 is slidably connected to the support frame 205, a three-stage sliding frame 203 is slidably connected to the four-stage sliding frame 204, a two-stage sliding frame 202 is slidably connected to the three-stage sliding frame 203, and a two-stage sliding frame 202 is slidably connected to the two-stage sliding frame 202. The first-stage sliding frame 201, the first-stage sliding frame 201, the second-stage sliding frame 202, the third-stage sliding frame 203 and the fourth-stage sliding frame 204 are all fixedly connected with a partition 103, the driving assembly 3 includes multiple moving frames 301, each moving frame 301 is slidably connected to two clamping blocks 303, and the first end of a spring 302 is fixedly connected to both ends of the moving frame 301, the second end of the spring 302 is fixedly connected to the clamping block 303, and an inclined surface is provided on the end of the clamping block 303 away from the spring 302.

[0026] The partition plate 103 is provided with a plurality of holes, and the holes are slidably connected to the limiting blocks 104 , and the limiting blocks 104 are provided with an arc-shaped inclined surface.

[0027] During use, according to the specifications of the aluminum rods to be transported, the limiting blocks 104 of corresponding specifications are installed in the holes on the partition 103, or the hole positions of the limiting blocks 104 on the partition 103 are adjusted, that is, not all holes on the partition 103 need to be installed with the limiting blocks 104, and they can be adjusted according to the specifications of the aluminum rods to adapt to aluminum rods of different specifications. In addition, the replacement of the limiting blocks 104 is simple and convenient, which is convenient for the staff to make adjustments.

[0028] When the operation is required, the aluminum bars are placed on the limiting blocks 104 of each layer of the partitions 103. The limiting blocks 104 restrict the movement of the aluminum bars to prevent the aluminum bars from shaking during transportation. The steps of loading and unloading the aluminum bars are opposite. That is, the driving assembly 3 controls the lifting of each layer of the partitions 103, first loading the bottom layer of the partitions 103, and then loading the aluminum bars step by step. After all loading is completed, the driving wheel 102 controls the movement of the chassis 101 to transfer the aluminum bars and deliver them to other places or the feeding port of the equipment.

[0029] Example 2:

[0030] like Figure 4 and Figure 5 As shown, the first-level sliding frame 201 is fixedly connected to a sliding frame 207, and the sliding block 206 is slidably connected to the end of the sliding frame 207 close to the chassis 101, and the lifting block 208 is fixedly connected to the end of the sliding frame 207 away from the chassis 101. The lifting block 208 is provided with an inclined surface at the end away from the first-level sliding frame 201, and the inclined surface faces the movable frame 301, and the sliding block 206 is provided with an inclined surface at the end away from the first-level sliding frame 201, and the inclined surface faces the chassis 101.

[0031] A sliding block 206, a slide 207 and a lifting block 208 form a group. Two groups are provided on each of the first-stage slide 201, the second-stage slide 202, the third-stage slide 203 and the fourth-stage slide 204, and are distributed at both ends.

[0032] When in use, when it is necessary to lift the partitions 103 at each level, the movable frame 301 is first controlled to descend so that the movable frame 301 descends to the required partition 103. During this process, when the movable frame 301 descends, the inclined surface of the card block 303 will contact the lifting blocks 208 and sliding blocks 206 corresponding to the partitions 103 at each level. Through the inclined surface of the card block 303, when the card block 303 moves downward, the card block 303 will be squeezed by the lifting block 208 and the sliding block 206, that is, the card block 303 slides on the movable frame 301 in the direction away from the lifting block 208. After passing the lifting block 208 or the sliding block 206, the card block 303 is reset under the action of the spring 302, and so on. When the card block 303 moves to the predetermined position, that is, between the lifting block 208 and the sliding block 206 corresponding to the required partition 103, the card block 303 is no longer controlled to move downward, but is controlled to move upward. At this time, the inclined surfaces of the card block 303 and the lifting block 208 are not facing each other, but are facing away from each other. Therefore, when the card block 303 moves upward, it will not slide due to the inclined surfaces, but the card block 303 pushes the lifting block 208, thereby driving the corresponding first-level sliding frame 201, second-level sliding frame 202, third-level sliding frame 203 or fourth-level sliding frame 204, and then driving the corresponding partition 103 to be lifted, until the partition 103 is lifted to a suitable height, and then the aluminum rod on the partition 103 can be pushed out.

[0033] When the card block 303 needs to lift the partition 103 on the fourth-level sliding frame 204, the card block 303 is controlled to move between the lifting block 208 and the sliding block 206 on the fourth-level sliding frame 204. The lifting block 208 on the fourth-level sliding frame 204 is lifted by the lifting of the card block 303, thereby lifting the partition 103 on the fourth-level sliding frame 204 and making the fourth-level sliding frame 204 slide on the support frame 205, while the third-level sliding frame 203, the second-level sliding frame 202 and the first-level sliding frame 201 do not move. When the card block 303 needs to lift the partition 103 on the third-level sliding frame 203, the card block 303 is controlled to move to the lifting block 208 on the third-level sliding frame 203 and the sliding block 206. The lifting block 208 on the third-level sliding frame 203 is lifted by the rising of the card block 303, thereby lifting the partition 103 on the third-level sliding frame 203, and making the third-level sliding frame 203 slide on the support frame 205, and when the lifting block 208 on the third-level sliding frame 203 contacts the slide 207 on the fourth-level sliding frame 204, the lifting block 208 on the third-level sliding frame 203 pushes the slide 207 on the fourth-level sliding frame 204, and then pushes the fourth-level sliding frame 204, so that the fourth-level sliding frame 204 slides on the support frame 205, and the second-level sliding frame 202 and the first-level sliding frame 201 are the same, and will gradually drive the upper-level structure during the lifting process.

[0034] When the conveying or installation of the aluminum rod is completed and the movable frame 301 needs to be reset, the movable frame 301 is first controlled to drive the card block 303 to move downward. After the card block 303 passes a sliding block 206, the moving direction of the movable frame 301 is changed, that is, the card block 303 is driven to move upward, so that the card block 303 contacts the inclined surface of the sliding block 206. Because the sliding block 206 is slidably connected to the slide 207, the card block 303 first pushes the sliding block 206 to slide on the slide 207. When the sliding block 206 contacts the lifting block 208, the sliding block 206 cannot slide further. As a result, when the card block 303 continues to move upward, the inclined surface on the sliding block 206 pushes the card block 303 to slide on the movable frame 301. When the card block 303 is close to the sliding block 2 When one end of 06 leaves the inclined surface of the sliding block 206 and contacts the side wall of the sliding block 206, the thrust between the blocking block 303 and the sliding block 206 is changed to friction, and at this time the lifting block 208 is in close contact with the sliding block 206, and the gap between the lifting block 208 and the end of the sliding block 206 close to the blocking block 303 is closed, so that the end of the blocking block 303 close to the lifting block 208 can slide upward along the lifting block 208 and the side walls of the sliding block 206, that is, the end of the blocking block 303 close to the lifting block 208 can slide directly from the side wall of the sliding block 206 to the side wall of the lifting block 208, and when the blocking block 303 is separated from the sliding block 206, the sliding block 206 loses the thrust and friction, so that the sliding block 206 is reset by gravity.

[0035] Example 3:

[0036] like Figure 6 and Figure 7 As shown, the multiple blocks 303 are fixedly connected by a connecting rod 304, and the first end of the connecting rod 304 is rotatably connected to the left-moving connecting rod 305 and the right-moving connecting rod 306, and the second end of the left-moving connecting rod 305 and the right-moving connecting rod 306 is rotatably connected to a connecting block 307.

[0037] The connecting block 307 is threadedly connected to the threaded rod 308 , and the threaded rod 308 is provided with a bidirectional thread.

[0038] The two ends of the threaded rod 308 are rotatably connected to the chassis 101. A gearbox 309 is provided at both ends of the threaded rod 308. The gearbox 309 is provided with a rocker 310. The rocker 310, the gearbox 309, the threaded rod 308, the connecting block 307, the left-moving connecting rod 305 / the right-moving connecting rod 306, and the connecting rod 304 are sequentially driven.

[0039] During use, when it is necessary to lift the partitions 103 at each level, manually turn the rocker 310, and the rocker 310 drives the threaded rod 308 to rotate on the chassis 101 through the gearbox 309, and then drives the connecting blocks 307 on the left-moving link 305 and the right-moving link 306 to move toward the two ends of the threaded rod 308 through the threads on the threaded rod 308, thereby driving the horizontal height of the first ends of the left-moving link 305 and the right-moving link 306 to drop, and then driving the connecting rod 304 and the movable frame 301 to drop, thereby driving the blocking block 303 to move to the position between the lifting block 208 and the sliding block 206 that needs to be lifted. After moving to the appropriate position, rotate the rocker 310 in the opposite direction to control the movable frame 301 to rise, thereby lifting the lifting block 208 through the blocking block 303, and then lifting the corresponding partition 103.

[0040] The above description is only a preferred embodiment of the present invention and does not limit the present invention in any form. Any simple modification or equivalent change made to the above embodiment based on the technical essence of the present invention shall fall within the scope of protection of the present invention.

Claims

1. An aluminum bar transfer device for aluminum profile production, comprising a vehicle body assembly (1), a lifting assembly (2) and a driving assembly (3) being provided on the vehicle body assembly (1), characterized in that: The vehicle body assembly (1) includes a chassis (101) and a plurality of partitions (103); the lifting assembly (2) includes a support frame (205); a fourth-stage sliding frame (204) is slidably connected to the support frame (205); a third-stage sliding frame (203) is slidably connected to the fourth-stage sliding frame (204); a second-stage sliding frame (202) is slidably connected to the third-stage sliding frame (203); a first-stage sliding frame (201) is slidably connected to the second-stage sliding frame (202); the first-stage sliding frame (201) and the second-stage sliding frame ( 202), a third-stage sliding frame (203) and a fourth-stage sliding frame (204) are all fixedly connected to a partition (103), the driving assembly (3) includes a plurality of moving frames (301), each moving frame (301) is slidably connected to two clamping blocks (303), the first end of a spring (302) is fixedly connected to both ends of the moving frame (301), the second end of the spring (302) is fixedly connected to the clamping block (303), and an end of the clamping block (303) away from the spring (302) is provided with an inclined surface.

2. The aluminum bar transfer device for aluminum profile production according to claim 1, characterized in that: The partition (103) is provided with a plurality of holes, and the holes are slidably connected to limiting blocks (104), and the limiting blocks (104) are provided with arc-shaped inclined surfaces.

3. The aluminum bar transfer device for aluminum profile production according to claim 2, characterized in that: The first-stage sliding frame (201) is fixedly connected to a sliding frame (207), an end of the sliding frame (207) close to the chassis (101) is slidably connected to a sliding block (206), an end of the sliding frame (207) away from the chassis (101) is fixedly connected to a lifting block (208), an end of the lifting block (208) away from the first-stage sliding frame (201) is provided with an inclined surface, and the inclined surface faces the moving frame (301), and an end of the sliding block (206) away from the first-stage sliding frame (201) is provided with an inclined surface, and the inclined surface faces the chassis (101).

4. The aluminum bar transfer device for aluminum profile production according to claim 3, characterized in that: The plurality of clamping blocks (303) are fixedly connected to each other via a connecting rod (304); the first ends of the left-moving connecting rod (305) and the right-moving connecting rod (306) are rotatably connected to the connecting rod (304); and the second ends of the left-moving connecting rod (305) and the right-moving connecting rod (306) are rotatably connected to a connecting block (307).

5. The aluminum bar transfer device for aluminum profile production according to claim 4, characterized in that: The connecting block (307) is threadedly connected to the threaded rod (308), and the threaded rod (308) is provided with a bidirectional thread.

6. The aluminum bar transfer device for aluminum profile production according to claim 5, characterized in that: Both ends of the threaded rod (308) are rotatably connected to the chassis (101), and gearboxes (309) are provided on both ends of the threaded rod (308), and the gearbox (309) is provided with a rocker (310).

Citation Information

Patent Citations

  • Frame is transported to aluminium bar

    CN205221473U