Conveying device for production of heat preservation and decoration integrated plate
By combining the pitch adjustment component, displacement component, and stabilization component, the problem of adapting existing conveying devices to plates of different widths and materials is solved, achieving efficient and stable plate conveying.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- LANGFANG FORDS BUILDING MATERIALS CO LTD
- Filing Date
- 2026-04-01
- Publication Date
- 2026-05-08
AI Technical Summary
Existing conveyor systems for producing integrated thermal insulation and decorative panels are unable to quickly adapt to panels of different widths and cannot adjust the support distribution according to the characteristics of the panels, resulting in low production efficiency and panel damage.
By employing pitch adjustment components, displacement components, and stabilization components, the uniform distribution and stability of the conveyor belt can be achieved by adjusting the spacing and distribution of the support plates, thus adapting to the needs of plates of different widths and materials.
It improves the adaptability and stability of the conveying device, reduces damage to the sheet metal, and enhances production efficiency and flexibility.
Smart Images

Figure CN121990302A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of conveying device technology, and in particular to a conveying device for the production of integrated thermal insulation and decorative panels. Background Technology
[0002] Integrated thermal insulation and decorative panels are a new type of building material that combines thermal insulation, decoration, and waterproofing, and are widely used in building exterior wall decoration projects. Their production process involves multiple steps, including material preparation, molding, curing, and cutting. Conveying devices are used between these steps to ensure continuous transfer of the panels and maintain production efficiency.
[0003] Existing conveyor systems for producing integrated thermal insulation and decorative panels mostly employ a fixed-spacing multi-conveyor-belt structure, which is difficult to adapt quickly to panels of different widths. Changing panel width necessitates stopping the machine to adjust the system structure, resulting in cumbersome operation and time-consuming specification changes, severely impacting continuous production efficiency. Furthermore, conventional conveyor systems can only provide uniform support and cannot adjust the support distribution for different panel characteristics such as soft core materials and easily damaged edges. This easily leads to problems like panel sagging, edge damage, and conveyor misalignment, failing to meet diverse production needs.
[0004] Therefore, in view of the above situation, there is an urgent need to develop a conveying device for the production of integrated thermal insulation and decorative panels to overcome the shortcomings in current practical applications. Summary of the Invention
[0005] The purpose of this invention is to provide a conveying device for the production of integrated thermal insulation and decorative panels, which aims to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: A conveying device for producing integrated thermal insulation and decorative panels includes a support frame and symmetrical stops. Two mating shafts are rotatably connected between the two stops. One end of one of the mating shafts passes through the stop and is fixedly connected to a motor. Two rotating wheels are fixedly sleeved in the middle of both mating shafts. Multiple limiting plates symmetrical about the rotating wheels are fixedly connected to the outer wall of the mating shafts. Multiple rotating wheels are slidably sleeved on both mating shafts. Each rotating wheel has a limiting groove on its inner wall that slides with the limiting plates. Annular plates are rotatably arranged on both sides of the outer walls of the rotating wheels. Support plates are fixedly connected between the multiple annular plates on the paired rotating wheels and between the multiple annular plates on the two rotating wheels. Multiple connecting blocks are fixedly connected to the bottom of the support plates, and some of the connecting blocks are fitted with adjustable distance components.
[0007] A further technical solution includes a displacement component on the adjustable distance assembly for changing the distribution of multiple sets of support plates, a stabilizing component between the multiple support plates, receiving grooves on both sides of the outer wall of the first and second rotating wheels, annular plates rotatably connected in the receiving grooves, and multiple sliding rods fixedly connected between the two stops, the sliding rods penetrating the second support plate and slidingly connected to the corresponding connecting block.
[0008] A further technical solution includes a rotating rod, a receiving plate, a first rotating plate, a second rotating plate, and a first telescopic rod. The rotating rod is rotatably connected to the bottom end of the second supporting plate, and the receiving plate is fixedly connected to the lower end face of the rotating rod. The first rotating plate is rotatably connected to both ends of the receiving plate, and the other end of the first rotating plate is rotatably connected to a connecting block away from the second supporting plate. The second rotating plate is also rotatably connected to the receiving plate, and the second rotating plate is rotatably connected to a connecting block close to the second supporting plate. The first telescopic rod is also rotatably connected to the bottom end of the second supporting plate, and the other end of the first telescopic rod is rotatably connected to the receiving plate.
[0009] A further technical solution includes a second motor, a slide groove, a slider, and a rotating shaft; a slide groove symmetrical about the rotating rod is provided on the receiving plate, a rotating shaft is rotatably connected inside the receiving plate, and the rotating shaft passes through the slide groove, the portion of the rotating shaft located inside the slide groove is threaded, a slider is slidably connected to the inner wall of the slide groove, the slider is rotatably connected to the second rotating plate, the slider is threadedly connected to the rotating shaft, and a second motor is fixedly connected to one end of the receiving plate, and the drive end of the second motor is fixedly connected to the rotating shaft.
[0010] A further technical solution includes a placement slot, a base, a rotating plate three, a connecting plate, a clamping head one, a telescopic rod two, and a clamping groove one. The bottom end of the support plate two has a placement slot, and a base is fixedly connected to the bottom end of the support plate two near the edge of the placement slot. The rotating plate three is rotatably connected to the base, and a connecting plate is fixedly connected to one end of the rotating plate three. Multiple evenly distributed clamping heads one are fixedly connected to the upper end of the connecting plate. Multiple clamping grooves one are opened at the bottom end of the support plate one, and only one of the multiple clamping grooves one of the same support plate one can engage with a clamping head one at the same time. A telescopic rod two is also rotatably connected between the inner wall of the placement slot and the rotating plate three.
[0011] In a further technical solution, a fixed plate is fixedly connected to the upper end of the receiving plate, and a plurality of slots are provided on the outer edge of the fixed plate. A clamping head is fixedly connected to the end of the rotating plate away from the connecting plate, and the clamping head engages with the inner wall of the slot.
[0012] A further technical solution is to make the distance between the base and the second card head smaller than the distance between the base and the connecting plate.
[0013] In summary, the embodiments of the present invention have the following beneficial effects compared with the prior art: 1. The spacing adjustment component is used to synchronously adjust the spacing between multiple adjacent support plates, thereby adjusting the spacing between multiple adjacent support plates. The support plates and the ring plate work together to drive the corresponding rotating wheel and conveyor belt to move, thereby synchronously adjusting the spacing between multiple conveyor belts. The multiple conveyor belts are evenly distributed to adapt to plates of different widths. The drive end of motor one drives the mating shaft to rotate, and the mating shaft drives the rotating wheel two to rotate. The mating shaft synchronously drives the rotating wheel one to rotate through the limit groove and the limit plate, thereby driving the conveyor belt to transport the plates. 2. By further adjusting the position of the support plate one closer to the support plate two through the displacement component, the position distribution of multiple support plates one is changed, thereby changing the spacing between multiple support plates one, and further changing the position distribution of multiple support plates one. This allows for switching between three modes: uniform support, edge dense support, and center dense support. This significantly improves the adaptability and conveying stability of plates with different widths, materials, and processing requirements. 3. By using stabilizing components, the stability of multiple support plates is improved, effectively preventing them from shaking during the conveyor belt transport of the plates.
[0014] 4. By setting multiple sliders in the chute, each slider is independently connected to a set of rotating plates and support plates, the number of conveyor belts can be increased according to requirements without changing the overall machine structure, which significantly improves the modular expansion capability of the device.
[0015] To more clearly illustrate the structural features and effects of the present invention, the present invention will be described in detail below with reference to the accompanying drawings and specific embodiments. Attached Figure Description
[0016] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 For the present invention Figure 1 A schematic diagram of the three-dimensional structure viewed from below; Figure 3 For the present invention Figure 1 Enlarged structural diagram at point A; Figure 4 For the present invention Figure 1 Exploded view of the middle structure; Figure 5 For the present invention Figure 4 A bottom-view three-dimensional structural diagram of the middle section; Figure 6 For the present invention Figure 5 Exploded view of the middle section of the structure; Figure 7 For the present invention Figure 5 A magnified 3D structural diagram at point B in the middle; Figure 8For the present invention Figure 5 Enlarged structural diagram at point C; Figure 9 For the present invention Figure 4 A three-dimensional structural diagram of a portion of the transfer plate.
[0017] In the diagram: 1. Support frame; 2. Stop block; 3. Mating shaft; 4. Slide rod; 5. Motor 1; 6. Limiting plate; 7. Rotary wheel 1; 8. Limiting groove; 9. Rotary wheel 2; 10. Receiving groove; 11. Annular plate; 12. Conveyor belt; 13. Support plate 1; 14. Support plate 2; 15. Adjustment assembly; 151. Rotating rod; 152. Receiving plate; 153. Rotating plate 1; 154. Rotating plate 2; 155. Extension rod. 16. Telescopic rod 1; 16. Displacement assembly; 161. Motor 2; 162. Slide groove; 163. Slider; 164. Rotating shaft; 17. Stabilizing assembly; 171. Placement slot; 172. Fixing plate; 173. Base; 174. Rotating plate 3; 175. Connecting plate; 176. Clamp 1; 177. Telescopic rod 2; 178. Clamp 2; 179. Clamp slot 2; 1710. Clamp slot 1; 18. Connecting block. Detailed Implementation
[0018] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.
[0019] The specific implementation of the present invention will be described in detail below with reference to specific embodiments.
[0020] like Figures 1-9 As shown, this embodiment of the invention provides a conveying device for producing integrated thermal insulation and decorative panels, including a support frame 1. Symmetrical blocks 2 are fixedly connected to the support frame 1. Two mating shafts 3 are rotatably connected between the two blocks 2. One end of one mating shaft 3 passes through the block 2 and is fixedly connected to a motor 5. A rotating wheel 9 is fixedly sleeved in the middle of each of the two mating shafts 3. Multiple limiting plates 6 are fixedly connected to the outer wall of the mating shaft 3, which are symmetrically arranged with respect to the rotating wheel 9. Multiple rotating wheels 7 are slidably sleeved on each of the two mating shafts 3. The inner wall of each rotating wheel 7 is provided with a limiting groove 8 that slidably engages with the limiting plate 6. Annular plates 11 are rotatably arranged on both sides of the outer wall of the rotating wheel 7 and the rotating wheel 9. Support plates 13 are fixedly connected between multiple annular plates 11 on the paired rotating wheels 7, and support plates 24 are fixedly connected between multiple annular plates 11 on the two rotating wheels 9; each pair of rotating wheels 7 has a conveyor belt 12 fitted on its outer wall, and the conveyor belt 12 is slidably supported by the support plates 13; the two rotating wheels 9 also have conveyor belts 12 fitted on their outer walls, and the conveyor belts 12 are slidably supported by the support plates 24. Multiple connecting blocks 18 are fixedly connected to the bottom end of the support plate 13. Some of the connecting blocks 18 are fitted with a spacing adjustment component 15. The spacing adjustment component 15 is used to adjust the distance between multiple adjacent support plates 13. A displacement component 16 is fitted on the spacing adjustment component 15. The displacement component 16 is used to finely adjust the position of the support plate 13 close to the support plate 14, so as to change the distribution of multiple sets of support plates 13.
[0021] Furthermore, both sides of the outer wall of the first rotating wheel 7 and the second rotating wheel 9 are provided with receiving grooves 10, and annular plates 11 are rotatably connected in the receiving grooves 10. Multiple sliding rods 4 are also fixedly connected between the two stops 2. The sliding rods 4 pass through the second support plate 14, and the sliding rods 4 are slidably connected to the corresponding connecting blocks 18. A stabilizing component 17 is also provided between the multiple first support plates 13.
[0022] It is understood that the first rotating wheel 7 and the second rotating wheel 9 have the same shape and size. The difference is that the inner wall of the first rotating wheel 7 has a limiting groove 8. The first support plate 13 and the second support plate 14 have the same shape and structure. The difference is that the height of the second support plate 14 is greater than that of the first support plate 13 (that is, under the condition that the upper end face is coplanar, the height of the lower end face of the second support plate 14 is lower than that of the lower end face of the first support plate 13).
[0023] In this embodiment of the invention, the spacing adjustment component 15 is used to synchronously adjust the spacing between multiple adjacent support plates 13, thereby adjusting the spacing between multiple adjacent support plates 13. The support plates 13 and the annular plate 11 cooperate to drive the corresponding rotating wheel 7 and the conveyor belt 12 to move, thereby synchronously adjusting the spacing between multiple conveyor belts 12. The multiple conveyor belts 12 are evenly distributed to adapt to plates of different widths. The drive end of the motor 5 drives the mating shaft 3 to rotate, and the mating shaft 3 drives the rotating wheel 9 to rotate. The mating shaft 3 synchronously drives the rotating wheel 7 to rotate through the limiting groove 8 and the limiting plate 6, thereby driving the conveyor belt 12 to transport the plates. The displacement component 16 further adjusts the position of the support plate 13 near the support plate 2 14, thereby changing the position distribution of multiple support plates 13, thus changing the spacing between multiple support plates 13, and further changing the position distribution of multiple support plates 13. This allows for switching between three modes: uniform support, edge dense support, and center dense support. This significantly improves the adaptability and conveying stability of plates with different widths, materials, and processing requirements. The stabilization component 17 improves the stability of multiple support plates 13, effectively preventing them from shaking during the conveyor belt 12's transport of plates.
[0024] It is understandable that uniform support means that multiple support plates 13 are evenly distributed, which is suitable for rigid boards in the conventional range; edge-dense means that more support plates 13 are distributed on both sides away from support plate 2 14, which is suitable for edge processing and protection of boards with fragile edges; center-dense means that more support plates 13 are distributed on both sides close to support plate 2 14, which is suitable for conveying soft core materials.
[0025] Furthermore, the outer radius of the annular plate 11 is larger than the outer radius of the wheel 7. By using multiple annular plates 11 in the same group, the conveyor belt 12 can be confined to the outer wall of the wheel 7 between the multiple annular plates 11, which can effectively correct the deviation of the conveyor belt 12.
[0026] like Figure 2 , Figure 5-7 As shown, the adjustable distance assembly 15 includes a rotating rod 151, a receiving plate 152, a first rotating plate 153, a second rotating plate 154, and a first telescopic rod 155. The rotating rod 151 is rotatably connected to the bottom end of the second support plate 14. The receiving plate 152 is fixedly connected to the lower end face of the rotating rod 151. The first rotating plate 153 is rotatably connected to both ends of the receiving plate 152. The other end of the first rotating plate 153 is rotatably connected to the connecting block 18 away from the second support plate 14. The second rotating plate 154 is also rotatably connected to the receiving plate 152. The second rotating plate 154 is rotatably connected to the connecting block 18 near the second support plate 14. The first telescopic rod 155 is also rotatably connected to the bottom end of the second support plate 14. The other end of the first telescopic rod 155 is rotatably connected to the receiving plate 152.
[0027] In practical applications, the extension rod (e.g., an electric actuator or cylinder) is controlled to extend (see reference). Figure 6 The telescopic rod 155 drives the receiving plate 152 and the rotating rod 151 to rotate counterclockwise around the axis of the rotating rod 151. The receiving plate 152 drives the rotating plate 154 and the rotating plate 153 to rotate. The rotating plate 153 and the rotating plate 154 respectively drive the corresponding support plate 13 to move away from the support plate 14 through the connecting block 18. In addition, since multiple connecting blocks 18 in the same group are slidably connected to the same sliding rod 4, and the rotating plate 153 and the rotating plate 154 are in different positions with the receiving plate 152, when the receiving plate 152 rotates by a certain angle, the sliding distance of the connecting block 18 driven by the rotating plate 153 is greater than the sliding distance of the connecting block 18 driven by the rotating plate 154. That is, the distance between the support plate 13 corresponding to the rotating plate 153 and the rotating plate 154 gradually increases, thereby adjusting to adapt to the wide plate. Control the telescopic rod to shorten by 155 degrees (e.g., electric actuator or cylinder, etc.) (reference) Figure 6The telescopic rod 155 drives the receiving plate 152 and the rotating rod 151 to rotate clockwise around the axis of the rotating rod 151. The receiving plate 152 drives the rotating plate 154 and the rotating plate 153 to rotate. The rotating plate 153 and the rotating plate 154 respectively drive the corresponding support plate 13 to move closer to the support plate 14 through the connecting block 18. In addition, since multiple connecting blocks 18 in the same group are slidably connected to the same sliding rod 4, and the rotating plate 153 and the rotating plate 154 are in different positions with the receiving plate 152, when the receiving plate 152 rotates at a certain angle, the sliding distance of the connecting block 18 driven by the rotating plate 153 is greater than the sliding distance of the connecting block 18 driven by the rotating plate 154. That is, the distance between the support plate 13 corresponding to the rotating plate 153 and the rotating plate 154 gradually decreases, thereby adjusting to adapt to the narrow plate.
[0028] like Figures 5-7 As shown, the displacement assembly 16 includes a second motor 161, a slide groove 162, a slider 163, and a rotating shaft 164. A slide groove 162 symmetrical about the rotating rod 151 is provided on the receiving plate 152. The rotating shaft 164 is rotatably connected within the receiving plate 152 and passes through the slide groove 162. A threaded section of the rotating shaft 164 within the slide groove 162 is provided. A slider 163 is slidably connected to the inner wall of the slide groove 162. The slider 163 is rotatably connected to the second rotating plate 154 and threadedly connected to the rotating shaft 164. One end of the receiving plate 152 is fixedly connected to the second motor 161, and the driving end of the second motor 161 is fixedly connected to the rotating shaft 164.
[0029] In practical applications, the drive end of the control motor 161 rotates, which drives the rotating shaft 164 to rotate. Then, the rotating shaft 164 drives the slider 163 to slide along the inner wall of the slide groove 162. Next, the slider 163 drives the corresponding support plate 13 through the rotating plate 154, thereby adjusting the position of the support plate 13, and then adjusting the position of the conveyor belt 12 corresponding to the support plate 13, thereby adjusting the distribution of the conveyor belt 12, so as to switch between three modes: uniform support, dense edge support, and dense center support. In addition, the data information of motor 161 and telescopic rod 155 corresponding to the support plate 13 position for different materials can be saved and directly called up next time to quickly match different materials.
[0030] Furthermore, for this conveying device, when different configurations are required, i.e. when the number of conveyor belts 12 needs to be increased, sliders 163 can be added in the chute 162. That is, multiple sliders 163 are slidably connected in the chute 162. Then, a second rotating plate 154, a first support plate 13, and a first rotating wheel 7 are added. Each slider 163 is rotatably connected to the corresponding first support plate 13 through a second rotating plate 154, thereby increasing the number of conveyor belts 12 as needed to meet different configuration requirements.
[0031] like Figures 5-8 As shown, the stabilization component 17 includes a placement groove 171, a base 173, a rotating plate 174, a connecting plate 175, a locking head 176, a telescopic rod 177, and a locking slot 1710. The support plate 14 has a placement groove 171 at its bottom end. The base 173 is also fixedly connected to the bottom end of the support plate 14 near the edge of the placement groove 171. The rotating plate 174 is rotatably connected to the base 173. The connecting plate 175 is fixedly connected to one end of the rotating plate 174. Multiple evenly distributed locking heads 176 are fixedly connected to the upper end of the connecting plate 175. Multiple locking slots 1710 are opened at the bottom end of the support plate 13. Only one of the multiple locking slots 1710 of the same support plate 13 can engage with a locking head 176 at any given time. The telescopic rod 177 is also rotatably connected between the inner wall of the placement groove 171 and the rotating plate 174.
[0032] Furthermore, a fixed plate 172 is fixedly connected to the upper end of the receiving plate 152, and a plurality of slots 179 are provided on the outer edge of the fixed plate 172. A locking head 178 is fixedly connected to the end of the rotating plate 174 away from the connecting plate 175, and the locking head 178 engages with the inner wall of the slot 179.
[0033] Furthermore, the distance between the base 173 and the second clamp 178 is smaller than the distance between the base 173 and the connecting plate 175. That is, the moving distance of the second clamp 178 is less than the moving distance of the first clamp 176. This allows the second clamp 178 to move a small distance while the first clamp 176 moves a large distance, effectively ensuring that when the second clamp 178 disengages from the second clamp slot 179, the first clamp 176 disengages from the first clamp slot 1710. Moreover, when the second clamp 178 engages with the second clamp slot 179, the first clamp 176 can be firmly inserted into the first clamp slot 1710, thereby limiting the swaying of the support plate 13 along the slide rod 4 and improving its stability.
[0034] In practical applications, when it is necessary to adjust the movement of support plate 13, firstly, control the telescopic rod 177 (e.g., an electric push rod or cylinder) to shorten. The telescopic rod 177 drives the rotating plate 174 to rotate clockwise around the base 173. The rotating plate 174 drives the locking head 178 to rise and disengage from the locking slot 179. The other end of the rotating plate 174 drives the connecting plate 175 to descend. Then, the connecting plate 175 drives the locking head 176 to disengage from the locking slot 1710. After that, the position of support plate 13 is adjusted to meet the needs of different sheet materials. After the adjustment is completed, control the telescopic rod 177 to extend. 177 drives the rotating plate 174 to rotate counterclockwise around the base 173. The rotating plate 174 drives the locking head 178 to descend and engage in the locking slot 179. The other end of the rotating plate 174 drives the connecting plate 175 to rise. Then the connecting plate 175 drives the locking head 176 to engage in the locking slot 1710, thereby fixing the support plate 13 and fixing the fixing plate 172, thereby further improving the stability of the receiving plate 152 and preventing the receiving plate 152 from sliding. Furthermore, the stability of the support plate 13 is further improved by the cooperation of the rotating plate 153 and the connecting block 18.
[0035] The working principle of this invention is as follows: when it is necessary to increase the spacing between multiple conveyor belts 12, the telescopic rod 155 (e.g., an electric push rod or a cylinder) is extended (see reference). Figure 6 Telescopic rod 155 drives the receiving plate 152 and rotating rod 151 to rotate counterclockwise around the axis of rotating rod 151. The receiving plate 152 drives the rotating plate 154 and rotating plate 153 to rotate. The rotating plate 153 and rotating plate 154 respectively drive the corresponding support plate 13 to move away from the support plate 14 through the connecting block 18. In addition, since multiple connecting blocks 18 in the same group are slidably connected to the same sliding rod 4, and the rotating plate 153 and rotating plate 154 are in different positions with the receiving plate 152, when the receiving plate 152 rotates by a certain angle, the sliding distance of the connecting block 18 driven by the rotating plate 153 is greater than the sliding distance of the connecting block 18 driven by the rotating plate 154. That is, the distance between the support plates 13 corresponding to the rotating plate 153 and rotating plate 154 gradually increases. When it is necessary to reduce the spacing between multiple conveyor belts 12, the telescopic rod 155 is shortened. The telescopic rod 155 drives the receiving plate 152 and the rotating rod 151 to rotate clockwise around the axis of the rotating rod 151. The receiving plate 152 drives the rotating plate 154 and the rotating plate 153 to rotate. The rotating plate 153 and the rotating plate 154 respectively drive the corresponding support plate 13 to move closer to the support plate 14 through the connecting block 18. In addition, since multiple connecting blocks 18 in the same group are slidably connected to the same slide rod 4, and the rotating plate 153 and the rotating plate 154 are in different positions with the receiving plate 152, when the receiving plate 152 rotates at a certain angle, the sliding distance of the connecting block 18 driven by the rotating plate 153 is greater than the sliding distance of the connecting block 18 driven by the rotating plate 154. That is, the spacing between the support plates 13 corresponding to the rotating plate 153 and the rotating plate 154 gradually decreases. In addition, by controlling the drive end of motor 161 to rotate, the drive end of motor 161 drives the rotating shaft 164 to rotate. Then, the rotating shaft 164 drives the slider 163 to slide along the inner wall of the slide groove 162. Then, the slider 163 drives the corresponding support plate 13 through the rotating plate 154, thereby adjusting the position of the support plate 13, and then adjusting the position of the conveyor belt 12 corresponding to the support plate 13, thereby adjusting the distribution of the conveyor belt 12. This allows for switching between three modes: uniform support, dense edge support, and dense center support, thus making it suitable for a wider range of sheet materials.
[0036] The circuits, electronic components, and modules involved are all existing technologies, which can be fully implemented by those skilled in the art, and need not be elaborated upon. The content protected by this invention does not involve any improvement to the software and methods.
[0037] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A conveying device for producing integrated thermal insulation and decorative panels, comprising a support frame (1) and symmetrical stops (2), wherein two mating shafts (3) are rotatably connected between the two stops (2), and one end of one of the mating shafts (3) passes through the stop (2) and is fixedly connected to a motor (5), characterized in that... ; Two rotating wheels (9) are fixedly sleeved in the middle of the two mating shafts (3). Multiple limiting plates (6) symmetrical about the rotating wheels (9) are fixedly connected to the outer wall of the mating shafts (3). Multiple rotating wheels (7) are slidably sleeved on the two mating shafts (3). The inner wall of each rotating wheel (7) is provided with a limiting groove (8) that slides with the limiting plate (6). Annular plates (11) are rotatably arranged on both sides of the outer wall of the rotating wheels (7) and the rotating wheels (9). Support plates (13) are fixedly connected between the multiple annular plates (11) on the corresponding pairs of rotating wheels (7). Support plates (14) are fixedly connected between the multiple annular plates (11) on the two rotating wheels (9). Multiple connecting blocks (18) are fixedly connected to the bottom end of the support plates (13). Adjustment components (15) are provided between some of the connecting blocks (18).
2. The conveying device for producing integrated thermal insulation and decorative panels according to claim 1, characterized in that, The adjustable component (15) is equipped with a displacement component (16) for changing the distribution of multiple sets of support plates (13). A stabilizing component (17) is also provided between the multiple support plates (13). Both sides of the outer wall of the first wheel (7) and the second wheel (9) are provided with receiving grooves (10). A ring plate (11) is rotatably connected in the receiving groove (10). Multiple sliding rods (4) are fixedly connected between the two stops (2). The sliding rods (4) penetrate the second support plate (14) and are slidably connected to the corresponding connecting block (18).
3. The conveying device for producing integrated thermal insulation and decorative panels according to claim 2, characterized in that, The adjustable distance assembly (15) includes a rotating rod (151), a receiving plate (152), a rotating plate one (153), a rotating plate two (154), and a telescopic rod one (155). A rotating rod (151) is rotatably connected to the bottom end of the second support plate (14). A receiving plate (152) is fixedly connected to the lower end face of the rotating rod (151). A rotating plate (153) is rotatably connected to both ends of the receiving plate (152). The other end of the rotating plate (153) is rotatably connected to the connecting block (18) away from the second support plate (14). A rotating plate (154) is also rotatably connected to the receiving plate (152). The rotating plate (154) is rotatably connected to the connecting block (18) close to the second support plate (14). A telescopic rod (155) is also rotatably connected to the bottom end of the second support plate (14). The other end of the telescopic rod (155) is rotatably connected to the receiving plate (152).
4. The conveying device for producing integrated thermal insulation and decorative panels according to claim 3, characterized in that, The displacement assembly (16) includes a second motor (161), a slide (162), a slider (163), and a rotating shaft (164). The receiving plate (152) is provided with a symmetrical groove (162) about the rotating rod (151). A rotating shaft (164) is rotatably connected inside the receiving plate (152), and the rotating shaft (164) passes through the groove (162). The part of the rotating shaft (164) located inside the groove (162) is threaded. A slider (163) is slidably connected to the inner wall of the groove (162). The slider (163) is rotatably connected to the second rotating plate (154). The slider (163) is threaded to the rotating shaft (164). A second motor (161) is fixedly connected to one end of the receiving plate (152), and the driving end of the second motor (161) is fixedly connected to the rotating shaft (164).
5. The conveying device for producing integrated thermal insulation and decorative panels according to claim 4, characterized in that, The stabilization component (17) includes a placement slot (171), a base (173), a rotating plate three (174), a connecting plate (175), a clamp head one (176), a telescopic rod two (177), and a clamp slot one (1710). The bottom end of the support plate 2 (14) is provided with a placement groove (171). The bottom end of the support plate 2 (14) is also fixedly connected to the edge of the placement groove (171). The base (173) is rotatably connected to the base (173). The connecting plate (174) is fixedly connected to one end of the connecting plate (174). The upper end of the connecting plate (175) is fixedly connected to a plurality of evenly distributed clamping heads (176). The bottom end of the support plate 1 (13) is provided with a plurality of clamping slots (1710). Only one of the clamping slots (1710) of the same support plate 1 (13) is engaged with the clamping head (176) at the same time. The inner wall of the placement groove (171) is also rotatably connected to the rotating plate 3 (174). The telescopic rod 2 (177) is also rotatably connected between the inner wall of the placement groove (171) and the rotating plate 3 (174).
6. The conveying device for producing integrated thermal insulation and decorative panels according to claim 5, characterized in that, The upper end of the receiving plate (152) is fixedly connected to a fixed plate (172), and the outer edge of the fixed plate (172) is provided with multiple slots (179). The end of the rotating plate (174) away from the connecting plate (175) is fixedly connected to a head (178), and the head (178) engages with the inner wall of the slot (179).
7. The conveying device for producing integrated thermal insulation and decorative panels according to claim 6, characterized in that, The distance between the base (173) and the second card head (178) is smaller than the distance between the base (173) and the connecting plate (175).