Foamed ceramic finished product stacking device

By designing an automated foam ceramic finished product palletizing device, the automated arrangement and palletizing of foam ceramics is achieved using conveyor belts and positioning plates. Combined with pressure sensor control of the moving platform, the problem of low production efficiency caused by manual operation is solved, and efficient automated production is realized.

CN224410787UActive Publication Date: 2026-06-26山西富谦特种陶瓷有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
山西富谦特种陶瓷有限公司
Filing Date
2025-08-27
Publication Date
2026-06-26

AI Technical Summary

Technical Problem

Existing foam ceramic finished product palletizing equipment relies on manual operation, which leads to high physical exertion for workers and limits production efficiency.

Method used

Design an automated device comprising a fixed base, a conveying component, a positioning component, and a palletizing component. The device achieves automated arrangement and palletizing of foam ceramics by driving a conveyor belt and a positioning plate with a motor, and automatically controls the movement of the mobile platform by combining a pressure sensor.

Benefits of technology

It reduces manual operation steps, improves the production and palletizing efficiency of foam ceramics, reduces the workload of workers, and realizes the automated production and palletizing of foam ceramics.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a foam ceramic finished product stacking device, and relates to the technical field of ceramic production equipment. The application has the effect of reducing the production efficiency problem of foam ceramics limited by the manual stacking speed.
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Description

Technical Field

[0001] This application relates to the field of ceramic production equipment technology, and in particular to a foam ceramic finished product stacking device. Background Technology

[0002] Foam ceramics are porous materials with high-temperature properties and are widely used in various industrial fields. As the demand for foam ceramics gradually increases, traditional manual palletizing and packaging methods can no longer meet the production speed of factories; therefore, it is necessary to design a finished foam ceramic palletizing device.

[0003] A related foam ceramic finished product palletizing device includes a fixed base, a conveying component, and a positioning component. The fixed base provides installation space for the conveying component and the positioning component. The positioning component arranges the foam ceramics that have passed through the conveying component neatly, making it convenient for workers to palletize them.

[0004] However, the existing foam ceramic finished product palletizing device mainly relies on manual palletizing by workers, which is physically demanding and limits the production efficiency of foam ceramics. Utility Model Content

[0005] To reduce the problem of production efficiency being limited by the speed of manual stacking of foam ceramics, this application provides a finished foam ceramic stacking device.

[0006] This application provides a finished foam ceramic palletizing device, which adopts the following technical solution:

[0007] A foam ceramic finished product palletizing device, comprising:

[0008] A fixed base is fixedly installed on the ground.

[0009] A conveying component is mounted on a fixed base.

[0010] A positioning component is fixedly mounted on a fixed base, and the height of the positioning component is higher than that of the conveying component.

[0011] The palletizing component is configured to correspond to the output of the conveying component. The palletizing component can place the foam ceramics output by the conveying component.

[0012] By adopting the above technical solution, the fixed base provides installation space for the conveying component and the positioning component. The conveying component can convey the completed foam ceramics along the length of the fixed base. The positioning component can arrange the foam ceramics that have passed through the conveying component neatly, so that the foam ceramics are arranged in a row along the length of the fixed base. The stacking component stacks the foam ceramics in a row, which is convenient for workers to collect and organize. This reduces the steps of manually stacking the foam ceramics and improves the production efficiency of foam ceramics.

[0013] Optionally, the transmission components include:

[0014] The first motor is fixedly mounted on the periphery of the fixed base, and the output end of the first motor passes through the fixed base.

[0015] The conveyor roller is rotatably mounted on the fixed base. One end of the conveyor roller is fixedly connected to the output end of the first motor. Multiple sets of conveyor rollers are arranged at intervals along the length of the fixed base.

[0016] A conveyor belt, which is wound around multiple sets of conveyor rollers.

[0017] By adopting the above technical solution, the rotation of the first motor can drive the conveyor rollers to rotate synchronously, and the rotation of multiple sets of conveyor rollers can drive the conveyor belt to move. The movement of the conveyor belt can transport the completed foam ceramics along the length of the fixed base, thereby achieving the purpose of automated movement of foam ceramics, reducing the amount of manual handling, and improving the production and stacking efficiency of foam ceramics.

[0018] Optionally, the positioning components include:

[0019] The mounting bracket is fixedly mounted on the base, and the height of the mounting bracket is higher than the height of the foam ceramic.

[0020] The slider has a groove, and the slider is fitted onto the mounting bracket through the groove. The slider is slidably connected to the mounting bracket. Two sets of sliders are symmetrically arranged along the length of the fixed base.

[0021] A rotating rod is vertically rotatable at the end of the slider that is furthest from the mounting bracket.

[0022] The positioning plate is fixedly installed at one end of the rotating rod near the fixed base.

[0023] By adopting the above technical solution, the mounting frame provides installation space for the slider, which can slide along the length of the mounting frame. The movement of the slider can drive the rotating rod to move synchronously. The two sets of positioning plates can limit the foam ceramics on the conveying component, so that the foam ceramics can only be conveyed through the gap between the two sets of positioning plates during the conveying process, thereby arranging the foam ceramics in a row along the length of the fixed base. The operator can adjust the position of the slider and the angle of the rotating rod to adjust the spacing and angle between the positioning plates, so that the positioning component can adapt to the positioning requirements of foam ceramics of different sizes and shapes, thus improving the applicability of the foam ceramic finished product stacking device.

[0024] Optionally, the palletizing assembly includes:

[0025] The mobile platform is set on the ground, and multiple sets of moving wheels are rotatably installed at the lower end of the mobile platform. The moving direction of the moving wheels is perpendicular to the length direction of the fixed base.

[0026] The second motor is fixedly mounted on the mobile platform, and its output end is fixedly connected to the mobile wheel.

[0027] The palletizing rack is vertically installed on the mobile platform. The palletizing rack is equipped with palletizing slots. Multiple sets of palletizing racks are spaced apart along the length of the mobile platform.

[0028] A spring, one end of which is fixedly mounted on the palletizing slot near the moving platform;

[0029] The placement plate is slidably set in the palletizing slot, and the placement plate is fixedly connected to the end of the spring away from the moving platform.

[0030] By adopting the above technical solution, the mobile platform provides placement space for the palletizing rack. The rotation of the second motor drives the moving wheels to rotate, causing the mobile platform to move along the width direction of the fixed base. The conveying component conveys the foam ceramics to the placement plate. The spring is compressed along the palletizing groove towards the mobile platform by the gravity of the foam ceramics and the placement plate, causing the foam ceramics to move downward along the palletizing groove, making it easier for the next group of foam ceramics to be stacked on top of the previous group. This process is repeated to achieve automatic palletizing of multiple groups of foam ceramics. When the palletizing groove is full, the mobile platform moves along the width direction of the fixed base under the drive of the second motor, so that the next group of palletizing racks corresponds to the conveying component, thereby continuing to palletize the foam ceramics. This reduces the manual palletizing steps for workers, reduces the workload of workers, and improves the working efficiency of the foam ceramic finished product palletizing device.

[0031] Optionally, the distance between the positioning plate and the conveyor belt is less than the thickness of the foam ceramic.

[0032] By adopting the above technical solution, it is ensured that the positioning plate can effectively limit the foam ceramics on the conveyor belt, reducing the probability that the foam ceramics are not limited during the conveying process.

[0033] Optionally, observation slots are vertically provided on the periphery of the palletizing rack, and the observation slots are connected to the palletizing slots.

[0034] By adopting the above technical solution, the setting of the observation slot allows the staff to observe the stacking status of the foam ceramics inside the palletizing rack in real time, which facilitates the staff to adjust the misaligned stacking status of the foam ceramics in the palletizing slot in a timely manner.

[0035] Optionally, a positioning block is provided on the mobile platform.

[0036] By adopting the above technical solution, the positioning block allows workers to quickly position the palletizing frame on the mobile platform, improving the installation accuracy and efficiency of the palletizing frame, while reducing the probability of the palletizing frame shaking on the mobile platform and improving the palletizing stability of the foam ceramic products.

[0037] Optionally, a pressure sensor is installed on the mobile platform, and a through hole is provided at the end of the palletizing rack near the mobile platform, with the through hole corresponding to the pressure sensor.

[0038] By adopting the above technical solution, when the palletizing rack is full of foam ceramics, the placement plate is affected by the gravity of multiple sets of foam ceramics and moves towards the lowest point of the moving platform. At this time, the lower end of the placement plate passes through the through hole and contacts the pressure sensor. After the pressure sensor receives pressure, it sends a signal to the control terminal. The control terminal controls the second motor to drive the moving platform to move, so that the next set of palletizing racks and conveying components are set up accordingly. This reduces the steps of manually controlling the movement of the moving platform, and allows the moving platform to move automatically so that the palletizing racks and conveying components are set up accordingly, thereby improving the working efficiency of the foam ceramic palletizing device.

[0039] In summary, this utility model provides a foam ceramic finished product palletizing device, which includes at least one of the following beneficial technical effects:

[0040] 1. The fixed base provides installation space for the conveying and positioning components. The conveying component can transport the finished foam ceramics along the length of the fixed base. The positioning component can arrange the foam ceramics that have passed through the conveying component neatly, so that the foam ceramics are arranged in a row along the length of the fixed base. The stacking component will stack the foam ceramics in the row, which is convenient for workers to collect and organize. This reduces the steps of manually stacking the foam ceramics and improves the production efficiency of foam ceramics.

[0041] 2. When the stacking rack is full of foam ceramics, the placement plate moves towards the lowest point of the moving platform under the influence of the gravity of multiple sets of foam ceramics. At this time, the lower end of the placement plate passes through the through hole and comes into contact with the pressure sensor. After the pressure sensor receives pressure, it sends a signal to the control terminal. The control terminal controls the second motor to drive the moving platform to move, so that the next set of stacking racks and conveying components are set up accordingly. This reduces the steps of manually controlling the movement of the moving platform, allowing the moving platform to move automatically so that the stacking racks and conveying components are set up accordingly, thus improving the working efficiency of the foam ceramic stacking device. Attached Figure Description

[0042] Figure 1 A schematic diagram of the structure of a foam ceramic finished product palletizing device provided in an embodiment of this utility model;

[0043] Figure 2 A schematic diagram of the positioning component structure in a foam ceramic finished product palletizing device provided for an embodiment of this utility model;

[0044] Figure 3 A schematic diagram of the palletizing component structure in a foam ceramic finished product palletizing device provided for an embodiment of this utility model;

[0045] Figure 4 This is a schematic cross-sectional view of a palletizing component in a foam ceramic finished product palletizing device provided for an embodiment of this utility model.

[0046] Explanation of the markings in the image:

[0047] 1. Conveying assembly; 11. First motor; 12. Conveying roller; 13. Conveying belt;

[0048] 2. Positioning assembly; 21. Mounting bracket; 22. Slider; 23. Rotating rod; 24. Positioning plate;

[0049] 3. Palletizing assembly; 31. Moving platform; 32. Second motor; 33. Palletizing rack; 34. Spring; 35. Placement plate;

[0050] 41. Fixed base; 42. Casters; 43. Positioning block; 44. Pressure sensor; 45. Slide groove; 46. Palletizing groove; 47. Observation groove; 48. Through hole; 49. Connecting block; 50. Connecting frame; 51. Foam ceramic. Detailed Implementation

[0051] The following is in conjunction with the appendix Figure 1-4 This application will be described in further detail.

[0052] Combination Figure 1 , Figure 2 , Figure 3 and Figure 4This application discloses a foam ceramic finished product palletizing device, including: a fixed base 41, a conveying component 1, a positioning component 2, and a palletizing component 3; the fixed base 41 is fixedly set on the ground, the conveying component 1 is set on the fixed base 41, the positioning component 2 is fixedly set on the fixed base 41, the height of the positioning component 2 is higher than that of the conveying component 1, and the palletizing component 3 is set corresponding to the output end of the conveying component 1, and the palletizing component 3 can stack the foam ceramic 51 output by the conveying component 1.

[0053] In this embodiment, the fixed base 41 is a rectangular frame, providing installation space for the conveying component 1 and the positioning component 2. Workers can place the completed foam ceramics 51 onto the conveying component 1. Activation of the conveying component 1 drives the foam ceramics 51 to move along the length of the fixed base 41. A connecting block 49 is provided at one end of the fixed base 41 near the stacking component 3, allowing the foam ceramics 51 on the conveying component 1 to move smoothly onto the stacking component 3. The positioning component 2 arranges the foam ceramics 51 conveyed by the conveying component 1 into a row along the length of the fixed base 41. The neatly arranged foam ceramics 51 move onto the stacking component 3 under the drive of the conveying component 1. The stacking component 3 stacks multiple sets of foam ceramics 51 together sequentially, thus achieving the purpose of automatically stacking the foam ceramics 51, reducing the manual steps of stacking multiple sets of foam ceramics 51, and improving the working efficiency of the foam ceramics 51 stacking device.

[0054] In practical use, the staff places the foam ceramics 51 to be stacked on the conveying component 1, and the staff starts the conveying component 1. The conveying component 1 drives the foam ceramics 51 to move along the length direction of the fixed base 41. The positioning component 2 arranges the passing foam ceramics 51 into a row, and the stacking component 3 stacks the neatly arranged foam ceramics 51.

[0055] Combination Figure 1 and Figure 2 In one specific embodiment, the conveying assembly 1 includes: a first motor 11, a conveying roller 12, and a conveyor belt 13; the first motor 11 is fixedly disposed on the periphery of the fixed base 41, the output end of the first motor 11 passes through the fixed base 41, the conveying roller 12 is rotatably disposed on the fixed base 41, one end of the conveying roller 12 is fixedly connected to the output end of the first motor 11, multiple sets of conveying rollers 12 are arranged at intervals along the length direction of the fixed base 41, and the conveyor belt 13 is wound around the multiple sets of conveying rollers 12.

[0056] In this embodiment, the rotation of the output end of the first motor 11 is not affected by the fixed base 41. The conveyor roller 12 is cylindrical. The rotation of the first motor 11 can drive the conveyor roller 12 to rotate synchronously. The rotation of the conveyor roller 12 can drive the conveyor belt 13, which is wound around multiple sets of conveyor rollers 12, to move along the length direction of the fixed base 41. The operator can place the foam ceramics 51 to be stacked on the conveyor belt 13. The movement of the conveyor belt 13 can drive the foam ceramics 51 to move synchronously, thereby achieving the purpose of conveying the foam ceramics 51 to the stacking assembly 3. By controlling the conveying speed of the conveyor belt 13 by the motor, the operator can control the stacking speed of the foam ceramics 51, which improves the operator's control flexibility of the device.

[0057] In practical use, the staff places the foam ceramics 51 to be stacked on the conveyor belt 13, and the staff starts the first motor 11. The first motor 11 rotates and drives the conveyor rollers 12 to rotate synchronously. The rotation of multiple sets of conveyor rollers 12 drives the conveyor belt 13 to move along the length direction of the fixed base 41. The movement of the conveyor belt 13 drives the foam ceramics 51 to move synchronously, thereby conveying the foam ceramics 51 to the stacking assembly 3.

[0058] Combination Figure 1 and Figure 2 In one specific embodiment, the positioning component 2 includes: a mounting bracket 21 fixedly mounted on a fixed base 41, the height of the mounting bracket 21 being higher than the height of the foam ceramic 51; a slider 22 having a sliding groove 45, the slider 22 being fitted onto the mounting bracket 21 through the sliding groove 45, the slider 22 being slidably connected to the mounting bracket 21; two sets of sliders 22 being symmetrically arranged along the length of the fixed base 41; a rotating rod 23 being vertically rotatably mounted at the end of the slider 22 away from the mounting bracket 21; and a positioning plate 24 being fixedly mounted at the end of the rotating rod 23 close to the fixed base 41.

[0059] In this embodiment, the mounting bracket 21 is arranged in an inverted U-shape, with both ends of the mounting bracket 21 fixedly connected to the fixed base 41. The length direction of the mounting bracket 21 is perpendicular to the length direction of the fixed base 41. The mounting bracket 21 and the fixed base 41 can be welded, bolted, or integrally formed; no specific limitation is made in this embodiment. The slider 22 is arranged in a cuboid shape, with its length direction consistent with that of the fixed base 41. The slide groove 45 is also arranged in a cuboid shape, with its cross-section being the same as that of the mounting bracket 21. There is significant friction between the slider 22 and the mounting bracket 21. Only when an external force is applied manually to the slider 22 can it move along the length direction of the mounting bracket 21. The rotating rod 23 is cylindrical, with one end rotatably connected to the slider 22 and the other end fixedly connected to the positioning plate 24. Next, the positioning plate 24 is rectangular. The rotation of the rotating rod 23 can drive the positioning plate 24 to form an angle with the mounting frame 21. There is a large friction between the slider 22 and the rotating rod 23. Only when an external force is applied to the rotating rod 23 manually can the rotating rod 23 be rotated. The distance between the positioning plate 24 and the conveyor belt 13 is less than the thickness of the foam ceramic 51, so that the positioning plate 24 can prevent the foam ceramic 51 from moving synchronously with the conveyor belt 13. Before using the palletizing device, the operator controls the two sets of positioning plates 24 to move closer to each other, so that the distance between the two sets of positioning plates 24 is slightly larger than the diameter of the foam ceramic 51. This ensures that only one set of foam ceramic 51 can pass through the space between the two sets of positioning plates 24 at a time, so that the foam ceramic 51 can pass through the positioning plates 24 one by one and be arranged in a row, which makes it convenient for the palletizing component 3 to directly palletize the foam ceramic 51.

[0060] In practical use, before starting the conveyor assembly 1, the operator applies a pushing force to the slider 22 to move the slider 22 to a suitable position along the length of the mounting frame 21. The operator then drives the rotating rod 23 to rotate to a suitable angle so that the distance between the two sets of positioning plates 24 near the end of the palletizing assembly 3 is slightly greater than the diameter of the foam ceramic 51. The operator starts the conveyor assembly 1. When the conveyor belt 13 drives the foam ceramic 51 to move along the length of the fixed base 41, multiple sets of foam ceramic 51 are restricted by the two sets of positioning plates 24 and converge towards the middle position of the two sets of positioning plates 24. Only one set of foam ceramic 51 can pass through the gap between the two sets of positioning plates 24 at a time, thereby arranging the foam ceramic 51 one by one into a neat row and continuously conveying it to the palletizing assembly 3.

[0061] Combination Figure 1 , Figure 3 and Figure 4In one specific embodiment, the palletizing assembly 3 includes: a moving platform 31, a second motor 32, a palletizing frame 33, a spring 34, and a placement plate 35; the moving platform 31 is set on the ground, and multiple sets of moving wheels 42 are rotatably arranged at the lower end of the moving platform 31. The moving direction of the moving wheels 42 is perpendicular to the length direction of the fixed base 41. The second motor 32 is fixedly set on the moving platform 31, and the output end of the second motor 32 is fixedly connected to the moving wheels 42. The palletizing frame 33 is vertically set on the moving platform 31, and a palletizing groove 46 is provided on the palletizing frame 33. Multiple sets of palletizing frames are spaced apart along the length direction of the moving platform 31. One end of the spring 34 is fixedly set at the end of the palletizing groove 46 near the moving platform 31. The placement plate 35 is slidably set in the palletizing groove 46, and the placement plate 35 is fixedly connected to the end of the spring 34 away from the moving platform 31.

[0062] In this embodiment, the mobile platform 31 is rectangular in shape. Four sets of connecting frames 50 are fixedly mounted on the lower end of the mobile platform 31. The connecting frames 50 are arranged in an inverted Y-shape, and are respectively located at the four corners of the lower end of the mobile platform 31. The connecting frames 50 and the mobile platform 31 can be bolted, welded, or integrally formed; no specific limitation is made in this embodiment. The moving wheels 42 are rotatably mounted on the lower end of the connecting frames 50. The second motor 32 is fixedly mounted on the side of the connecting frame 50 near the center line of the length direction of the mobile platform 31. The rotation of the output end of the second motor 32 can drive the moving wheels 42 to rotate synchronously, thereby enabling the mobile platform 31 to rotate synchronously. The mobile platform 31 moves along the width of the fixed base 41. A positioning block 43 is provided on the mobile platform 31. The positioning block 43 is U-shaped, with its opening direction aligned with the length direction of the mobile platform 31. The width of the opening of the positioning block 43 is the same as the width of the palletizing frame 33, allowing workers to quickly position the palletizing frame 33 onto the mobile platform 31. The palletizing frame 33 is rectangular, and the palletizing groove 46 is also rectangular. A notch is provided on the upper end of the palletizing frame 33 near the fixed base 41, facilitating the entry of the foam ceramics 51 from the conveyor belt 13 into the palletizing groove 46. Observation slots 47 are vertically arranged around the perimeter of the palletizing frame 33, allowing workers to observe the process in real time. The system allows for monitoring the stacking of foam ceramics 51 inside the palletizing rack 33, facilitating adjustments to any improperly stacked pieces. The placement plate 35 is nail-shaped, with springs 34 providing support. The spring constant of spring 34 matches the weight of the foam ceramics 51. When spring 34 is subjected to the weight of each group of foam ceramics 51, its deformation is the same as the height of the foam ceramics 51, ensuring each group of foam ceramics 51 can be stably stacked on top of the previous group. A pressure sensor 44 is installed on the moving platform 31, and a through hole 48 is located at one end of the palletizing rack 33 near the moving platform 31. The through hole 48 is connected to the pressure sensor. The sensor 44 is configured such that when the palletizing rack 33 is full of foam ceramics 51, the spring 34 is compressed to the lowest point by the gravity of multiple sets of foam ceramics 51. The placement plate 35 moves to the lowest point, and the lower end of the placement plate 35 passes through the through hole 48 and abuts against the pressure sensor 44. After the pressure sensor 44 is subjected to pressure, the control terminal sends a signal, and the control terminal controls the second motor 32 to rotate a certain number of revolutions, so that the moving platform 31 moves along the width direction of the fixed base 41 and aligns the next set of palletizing racks 33 with the foam ceramics 51 on the conveying assembly 1. This process is repeated to realize the rapid and continuous palletizing operation of the foam ceramic finished product palletizing device, which improves the palletizing efficiency and accuracy.

[0063] In practical use, the operator precisely places multiple stacking racks 33 onto the moving platform 31 using positioning blocks 43, aligning the stacking slots 46 with the foam ceramics 51 on the conveyor belt 13. When the foam ceramics 51 on the conveyor belt 13 enter the stacking slots 46, their gravity compresses the springs 34. This compression causes the placement plate 35 and the foam ceramics 51 to move towards the bottom of the stacking slots 46, with the moving distance exactly equal to the height of the foam ceramics 51. This allows the next set of foam ceramics 51 to move and be stacked above the previous set, and so on. When the palletizing rack 33 is filled with foam ceramics 51, the placement plate 35 moves down to the lowest point and passes through the through hole 48 to contact the pressure sensor 44. After the pressure sensor 44 is subjected to pressure, it transmits a signal to the control terminal. The control terminal controls the second motor 32 to operate according to the preset program. The rotation of the second motor 32 drives the moving wheel 42 to rotate, thereby driving the moving platform 31 to move along the width direction of the fixed base 41. When the second set of palletizing racks 33 is aligned with the foam ceramics 51 on the conveyor belt 13, the moving platform 31 stops moving. Then the foam ceramics 51 continue to enter the palletizing slot 46 of the next set of palletizing racks 33 for palletizing.

[0064] The implementation principle of this application is as follows: Workers adjust the position and angle of the positioning plates 24 by controlling the slider 22 and rotating rod 23, so that the distance between the two sets of positioning plates 24 is slightly larger than the diameter of the foam ceramics 51. Workers place the foam ceramics 51 to be stacked on the conveyor belt 13. Workers start the first motor 11, which rotates and drives the conveyor rollers 12 to rotate synchronously. The rotation of multiple sets of conveyor rollers 12 drives the conveyor belt 13 and the foam ceramics 51 to move along the length of the fixed base 41. When the foam ceramics 51 pass the positioning plates 24, they are restricted by the positioning plates 24 and pass through the gap between the two sets of positioning plates 24 in sequence, thus arranging the foam ceramics 51 one by one into a neat row. The conveyor belt 13 transports the neatly arranged foam ceramics 51 to the placement plate 35. The gravity of the foam ceramics 51 drives the spring 34 to compress, and the compression of the spring 34 drives the placement plate 35 to move. 5 and foam ceramic 51 move towards the bottom of the palletizing groove 46, and the moving distance is exactly the height of foam ceramic 51, so that the next set of foam ceramic 51 can move and be stacked above the previous set of foam ceramic 51. This process continues. When the palletizing rack 33 is full of foam ceramic 51, the lower end of the placement plate 35 moves down to the lowest point and passes through the through hole 48 to contact the pressure sensor 44. After the pressure sensor 44 is subjected to pressure, it transmits a signal to the control terminal. The control terminal controls the second motor 32 to operate according to the preset program. The rotation of the second motor 32 drives the moving wheel 42 to rotate, thereby driving the moving platform 31 to move along the width direction of the fixed base 41. When the second set of palletizing rack 33 is aligned with the foam ceramic 51 on the conveyor belt 13, the moving platform 31 stops moving. Then the foam ceramic 51 continues to enter the palletizing groove 46 of the next set of palletizing rack 33 for palletizing.

[0065] This specific embodiment is merely an explanation of this application and is not intended to limit it. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but such modifications are protected by patent law as long as they fall within the scope of the claims of this application.

Claims

1. A foam ceramic finished product stacking device, characterized by, include: A fixed base (41) is fixedly installed on the ground; A conveying component (1) is disposed on the fixed base (41); Positioning component (2), which is fixedly mounted on the fixed base (41), and the height of the positioning component (2) is higher than that of the conveying component (1). The palletizing component (3) is configured to correspond to the output end of the conveying component (1), and the palletizing component (3) is capable of palletizing the foam ceramics (51) output by the conveying component (1).

2. The foam ceramic finished product palletizing device according to claim 1, characterized in that: The transmission component (1) includes: The first motor (11) is fixedly disposed on the periphery of the fixed base (41), and the output end of the first motor (11) passes through the fixed base (41). A conveying roller (12) is rotatably mounted on the fixed base (41). One end of the conveying roller (12) is fixedly connected to the output end of the first motor (11). Multiple sets of the conveying roller (12) are arranged at intervals along the length direction of the fixed base (41). A conveyor belt (13) is wound around a plurality of conveyor rollers (12).

3. The foam ceramic finished product palletizing device according to claim 2, characterized in that: The positioning component (2) includes: Mounting bracket (21), which is fixedly mounted on the fixed base (41), and the height of the mounting bracket (21) is higher than the height of the foam ceramic (51); The slider (22) is provided with a groove (45). The slider (22) is sleeved on the mounting frame (21) through the groove (45). The slider (22) is slidably connected to the mounting frame (21). Two sets of sliders (22) are symmetrically arranged along the length direction of the fixed base (41). A rotating rod (23) is vertically rotatably disposed at one end of the slider (22) away from the mounting bracket (21); Positioning plate (24) is fixedly disposed at one end of the rotating rod (23) near the fixed base (41).

4. The foam ceramic finished product palletizing device according to claim 1, characterized in that: The palletizing assembly (3) includes: A mobile platform (31) is set on the ground. The lower end of the mobile platform (31) is rotatably equipped with multiple sets of moving wheels (42). The moving direction of the moving wheels (42) is perpendicular to the length direction of the fixed base (41). The second motor (32) is fixedly mounted on the mobile platform (31), and the output end of the second motor (32) is fixedly connected to the mobile wheel (42); A palletizing rack (33) is vertically mounted on the mobile platform (31). The palletizing rack (33) is provided with a palletizing groove (46). Multiple sets of the palletizing rack (33) are spaced apart along the length of the mobile platform (31). A spring (34), one end of which is fixedly disposed on the palletizing groove (46) near the end of the moving platform (31); Placement plate (35) is slidably disposed in the palletizing groove (46), and the placement plate (35) is fixedly connected to the end of the spring (34) away from the moving platform (31).

5. A foam ceramic finished product palletizing device according to claim 3, characterized in that: The distance between the positioning plate (24) and the conveyor belt (13) is less than the thickness of the foam ceramic (51).

6. A foam ceramic finished product palletizing device according to claim 4, characterized in that: The palletizing rack (33) has observation slots (47) vertically arranged around its perimeter.

7. A foam ceramic finished product palletizing device according to claim 4, characterized in that: The mobile platform (31) is provided with a positioning block (43).

8. A foam ceramic finished product palletizing device according to claim 4, characterized in that: A pressure sensor (44) is provided on the mobile platform (31), and a through hole (48) is provided at one end of the palletizing rack (33) near the mobile platform (31). The through hole (48) is provided in correspondence with the pressure sensor (44).