A high strength material stacking device

CN224783287UActive Publication Date: 2026-09-22CHANGSHU TONGRUI LOGISTICS EQUIP CO LTD
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Patent Information

Application Number
CN202522401123.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-12
Publication Date
2026-09-22
Estimated Expiration
2035-11-12

AI Technical Summary

Technical Problem

[0004]为解决对比技术中物料堆叠效率低、精度差、稳定性不足以及对高强度物料适应性差等问题,本实用新型提供了一种高强度物料堆叠装置

Benefits of technology

在堆叠物料时,定位气缸能够推动定位推板向物料移动,并在随后推动物料使其两侧与定位挡条接触,实现精准定位,此时,物料处于滚动式托台上,且位于通过口中,此时托举液压缸带动滚动式托台下移即可使得堆叠的物料的上端面与台面板齐平,便于后续物料的堆叠,综上能够对物料进行精准定位,确保每次堆叠的物料位置准确,提高了堆叠的整齐度和稳定性;

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Abstract

The utility model discloses a kind of high-strength material stacking devices, belong to material stacking device technical field, including stacking arrangement frame, its top end is fixedly installed with positioning table;Support seat, its top is fixedly installed with the material push mechanism towards stacking arrangement frame;Wherein, the stacking arrangement frame includes two side support plates, its lower part is fixedly provided with mounting bracket, the mounting bracket bottom is fixedly installed with lifting hydraulic cylinder, its axle end is fixedly connected with rolling type support table, the positioning table includes table panel, pass-through opening is formed in it. Its technical points are: positioning cylinder can push positioning push plate to material and move, and make its two sides contact with positioning baffle after pushing material, realize accurate positioning, at this time, material is on rolling type support table, and located in pass-through opening, at this time lifting hydraulic cylinder drives rolling type support table to descend, so that the upper end surface of stacked material is flush with table panel, the stacking of subsequent material is facilitated, to this end, stable and continuous automatic stacking can be realized.
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Description

Technical Field

[0001] This utility model relates to the technical field of material stacking devices, specifically a high-strength material stacking device. Background Technology

[0002] In many fields such as industrial production and logistics warehousing, the stacking and organization of materials is an important and frequent task. Material stacking devices are equipment used to automatically or semi-automatically stack materials in an orderly manner, with their core function being to improve operational efficiency and space utilization. Through mechanical structures or intelligent control systems, they can neatly stack materials such as packaging boxes, bagged goods, and sheets according to preset rules (such as the number of layers and arrangement), reducing manual handling and organization time and lowering labor intensity. At the same time, stacking devices can optimize storage space, making material storage more compact and reducing floor space required. In addition, their standardized operation ensures stacking stability, prevents material tipping and damage, and guarantees operational safety.

[0003] Traditional manual stacking methods are not only labor-intensive and inefficient, but also fail to guarantee the neatness and stability of the stacks. Especially for high-strength materials, manual operation may also pose safety hazards. Although some existing material stacking devices have achieved automation to a certain extent, they still have shortcomings in stacking accuracy, device stability, and adaptability to different materials, and cannot meet the needs of efficient and accurate stacking of high-strength materials. Therefore, a high-strength material stacking device is proposed to address the above problems. Utility Model Content

[0004] To address the problems of low material stacking efficiency, poor accuracy, insufficient stability, and poor adaptability to high-strength materials in comparative technologies, this utility model provides a high-strength material stacking device.

[0005] The technical solution adopted by the embodiments of this application to solve its technical problem is: A high-strength material stacking device includes a stacking rack with a positioning platform fixedly installed at its top; a support base located at one end of the positioning platform, with a material pushing mechanism fixedly installed on its top facing the stacking rack; and a receiving platform located at the other end of the positioning platform. The stacking rack includes two symmetrically arranged side support plates, with a mounting frame fixedly installed at its lower part. A lifting hydraulic cylinder is fixedly installed at the bottom of the mounting frame, and a rolling support is fixedly connected to its shaft end. The positioning platform includes a tabletop with a passageway corresponding to the rolling support.

[0006] In one possible implementation, a positioning baffle is fixedly provided on the upper surface of the platform. The baffle is L-shaped and its inner end face is flush with the two sides of the passage. Two positioning cylinders facing the positioning baffle are also fixedly installed on the platform, and a positioning push plate is fixedly connected to the shaft end of each positioning cylinder.

[0007] In one possible implementation, guide rods are fixedly connected to the four corners of the lower end face of the rolling support, which are slidably connected to the top plate of the mounting frame.

[0008] In one possible implementation, the rolling support includes a base plate on which a base frame is fixedly mounted. The base frame has a plurality of mounting slots arranged in an array, in which rotating rollers are mounted.

[0009] In one possible implementation, the material ejection mechanism includes an ejection hydraulic cylinder fixedly mounted on a support base, with an L-shaped ejection plate fixedly connected to its shaft end, the lower end face of the ejection plate slidingly contacting the upper end face of the support base.

[0010] In one possible implementation, two symmetrically arranged anti-slip rods are fixedly connected to the ejector plate, and a sliding seat corresponding to the anti-slip rods is fixedly installed on the upper end face of the support base, wherein the anti-slip rods and the sliding seat are slidably connected.

[0011] In one possible implementation, a number of support rods are fixedly connected to the lower end of the tabletop. Some of the support rods are short rods with their bottom ends fixedly connected to the support base, while others are long rods with their bottom ends in contact with the ground.

[0012] In one possible implementation, the outer end face of the side support plate is fixedly provided with a number of reinforcing ribs arranged in an array.

[0013] In summary, this utility model has the following beneficial technical effects: When stacking materials, the positioning cylinder can push the positioning push plate to move towards the material, and then push the material so that its two sides contact the positioning stops to achieve precise positioning. At this time, the material is on the rolling support platform and is located in the passage. Then, the lifting hydraulic cylinder drives the rolling support platform to move down so that the upper surface of the stacked material is flush with the platform, which facilitates the stacking of subsequent materials. In summary, it can accurately position the material, ensure that the position of the material is accurate each time it is stacked, and improve the neatness and stability of the stack. In addition, the sliding connection between the guide rod and the mounting bracket, the sliding connection between the anti-slip rod and the sliding seat, and the setting of the reinforcing ribs effectively enhance the stability of each component of the device, ensuring the reliable operation of the device when facing the stacking of heavy materials. Furthermore, the roller design on the rolling support platform can significantly reduce the friction of the material during the ejection process, significantly reduce the workload of the material ejection mechanism, and facilitate its efficient ejection of stacked materials. Attached Figure Description

[0014] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings: Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the stacking and sorting rack structure of this utility model; Figure 3 This is a schematic diagram of the material ejection structure of this utility model; Figure 4 This is a schematic diagram of the material positioning structure of this utility model; Figure 5 This is a schematic diagram of the rolling support structure of this utility model.

[0015] In the diagram: 1. Stacking rack; 11. Side support plate; 12. Mounting frame; 13. Lifting hydraulic cylinder; 14. Rolling support platform; 141. Base plate; 142. Base frame; 143. Mounting groove; 144. Idler roller; 15. Guide rod; 16. Reinforcing rib; 2. Positioning platform; 21. Platform panel; 22. Pass-through port; 23. Positioning stop bar; 24. Positioning cylinder; 25. Positioning push plate; 26. Support rod; 3. Support seat; 4. Material ejection mechanism; 41. Ejection hydraulic cylinder; 42. Ejection plate; 43. Anti-slip rod; 44. Sliding seat; 5. Placement frame. Detailed Implementation

[0016] The technical solution in this application embodiment is to solve the problems mentioned in the background art, and the overall idea is as follows: like Figure 1 - Figure 2 As shown, this embodiment provides a high-strength material stacking device, including a stacking rack 1 with a positioning platform 2 fixedly installed at its top; a support base 3, which is located at one end of the positioning platform 2, and a material pushing mechanism 4 facing the stacking rack 1 is fixedly installed on its top; and a receiving platform 5, which is located at the other end of the positioning platform 2. The stacking rack 1 includes two symmetrically arranged side support plates 11, with a mounting frame 12 fixedly installed at its lower part. A lifting hydraulic cylinder 13 is fixedly installed at the bottom of the mounting frame 12, and a rolling support platform 14 is fixedly connected to its shaft end. The positioning platform 2 includes a platform 21 with a passage 22 corresponding to the rolling support platform 14.

[0017] Based on the above structural scheme, during the stacking process, the material first contacts the rolling support platform 14 through the opening 22. Then, the lifting hydraulic cylinder 13 controls the rolling support platform 14 to move downward, so that the upper surface of the stacked material is flush with the platform 21, which facilitates the smooth stacking of subsequent materials. The above steps are repeated until the rolling support platform 14 moves to the bottom position, completing the stacking of this batch of materials. Then, the material ejection mechanism 4 can completely eject the stacked material and move it to the receiving platform 5, making it easy for the staff to take away the stacked material. The above scheme can accurately position the material, ensuring that the position of the material stacked each time is accurate, and improving the neatness and stability of the stacking.

[0018] To achieve the positioning of the material so that it is exactly above the rolling platform 14, such as... Figure 4 As shown, a positioning baffle 23 is fixedly installed on the upper surface of the platform 21. The overall shape is L-shaped and the inner end face is flush with the two sides of the passage 22. Two positioning cylinders 24 facing the positioning baffle 23 are also fixedly installed on the platform 21. Each positioning cylinder 24 has a positioning push plate 25 fixedly connected to its shaft end. The positioning cylinder 24 can push the positioning push plate 25 to move towards the material and then push the material so that its two sides contact the positioning baffle 23 to achieve precise positioning. At this time, the material is on the rolling support 14 and is located in the passage 22.

[0019] like Figure 3 As shown, the material ejection mechanism 4 includes an ejection hydraulic cylinder 41 fixedly installed on the support base 3. An L-shaped ejection plate 42 is fixedly connected to the shaft end of the cylinder. The lower end face of the ejection plate 42 slides in contact with the upper end face of the support base 3. When working, the ejection hydraulic cylinder 41 can apply a pushing force to the stacked material through the ejection plate 42 to achieve rapid ejection of the material. The operator only needs to be responsible for unloading the material. In addition, the stacking of the material can be carried out simultaneously during the unloading process, which has high efficiency.

[0020] To ensure the smooth release of materials, such as Figure 5 As shown, the rolling support platform 14 includes a base plate 141 on which a base frame 142 is fixedly mounted. The base frame 142 has several mounting slots 143 arranged in an array, in which rotating rollers 144 are installed. The design of the rollers 144 can significantly reduce the friction of the material during the ejection process, significantly reduce the workload of the material ejection mechanism 4, and facilitate the efficient ejection of stacked materials.

[0021] In addition, to enhance the overall structural strength of the device and give it higher load-bearing capacity and structural stability, such as Figure 2 - Figure 4As shown, the device also includes the following measures: guide rods 15 are fixedly connected to the four corners of the lower end face of the rolling support 14, which are slidably connected to the top plate of the mounting frame 12; two symmetrically arranged anti-slip rods 43 are fixedly connected to the push-out plate 42, and a sliding seat 44 corresponding to the anti-slip rod 43 is fixedly installed on the upper end face of the support 3, wherein the anti-slip rod 43 and the sliding seat 44 are slidably connected; a number of reinforcing ribs 16 arranged in an array are fixedly provided on the outer end face of the side support plate 11.

[0022] The above-mentioned structural design can form a stable and effective support system, and also has the function of motion guidance, which effectively enhances the stability of each component of the device and ensures the reliable operation of the device when facing the stacking of materials with large self-weight.

[0023] In addition, such as Figure 4 As shown, a number of support rods 26 are fixedly connected to the lower end of the tabletop 21. Some of the support rods 26 are short rods with their bottom ends fixedly connected to the support base 3, while others are long rods with their bottom ends in contact with the ground. The support structure composed of the support rods 26 can provide stable support for the tabletop 21 and prevent it from deforming in a working environment where it bears a large amount of material for a long time.

[0024] The working principle and usage process of this utility model: When stacking materials, the materials are placed on the platform 21. The positioning cylinder 24 can push the positioning push plate 25 to move towards the materials, and then push the materials so that both sides of them contact the positioning stops 23 to achieve precise positioning. At this time, the materials are on the rolling support 14 and are located in the passage 22. At this time, the lifting hydraulic cylinder 13 drives the rolling support 14 to move down so that the upper surface of the stacked materials is flush with the platform 21, which facilitates the stacking of subsequent materials. Repeat the above steps until the rolling support 14 moves to the bottom position to complete the stacking of this batch of materials.

[0025] When the hydraulic cylinder 41 is working, it can apply a pushing force to the stacked materials through the ejection plate 42 to achieve rapid ejection of the materials. The operator only needs to be responsible for unloading the materials. Furthermore, the stacking of materials can be carried out simultaneously during the unloading process, which has high efficiency.

[0026] Finally, it should be noted that the above embodiments are merely examples for clearly illustrating the present invention and are not intended to limit the implementation. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.

Claims

1. A high-strength material stacking device, characterized in that, include: A stacking rack (1) with a positioning platform (2) fixedly installed on its top; Support base (3) is located at one end of positioning platform (2), and a material ejection mechanism (4) facing stacking rack (1) is fixedly installed on its top. The support frame (5) is located at the other end of the positioning platform (2); The stacking rack (1) includes two symmetrically arranged side support plates (11), with a mounting frame (12) fixedly installed at the bottom. A lifting hydraulic cylinder (13) is fixedly installed at the bottom of the mounting frame (12), and a rolling support platform (14) is fixedly connected to its shaft end. The positioning platform (2) includes a platform panel (21), on which a passage (22) corresponding to the rolling support platform (14) is opened.

2. The high-strength material stacking device according to claim 1, characterized in that: The upper surface of the platform (21) is fixedly provided with a positioning stop (23), which is L-shaped and its inner end face is flush with the two sides of the passage (22). Two positioning cylinders (24) facing the positioning stop (23) are also fixedly installed on the platform (21), and each positioning cylinder (24) is fixedly connected to a positioning push plate (25) at the shaft end.

3. The high-strength material stacking device according to claim 1, characterized in that: Guide rods (15) are fixedly connected to the four corners of the lower end face of the rolling support (14), and are slidably connected to the top plate of the mounting frame (12).

4. A high-strength material stacking device according to claim 3, characterized in that: The rolling support platform (14) includes a base plate (141) on which a base frame (142) is fixedly mounted. The base frame (142) has a plurality of mounting slots (143) arranged in an array, in which rotating rollers (144) are installed.

5. A high-strength material stacking device according to claim 1, characterized in that: The material ejection mechanism (4) includes an ejection hydraulic cylinder (41) fixedly installed on the support base (3), and an ejection plate (42) with an L-shaped cross section is fixedly connected to its shaft end. The lower end face of the ejection plate (42) slides in contact with the upper end face of the support base (3).

6. A high-strength material stacking device according to claim 5, characterized in that: Two symmetrically arranged anti-slip rods (43) are fixedly connected to the ejector plate (42), and a sliding seat (44) corresponding to the anti-slip rods (43) is fixedly installed on the upper end face of the support base (3). The anti-slip rods (43) and the sliding seat (44) are slidably connected.

7. A high-strength material stacking device according to claim 1, characterized in that: The lower end of the tabletop (21) is fixedly connected with several support rods (26). Some of the support rods (26) are short rods with their bottom ends fixedly connected to the support base (3), while others are long rods with their bottom ends in contact with the ground.

8. A high-strength material stacking device according to claim 1, characterized in that: The outer end face of the side support plate (11) is fixedly provided with a number of reinforcing ribs (16) arranged in an array.