Coiled material conveying device and using method thereof in intelligent storage of car cover
By designing the flipping and transfer components of the roll material conveying device, the problem of surface damage to the roll material during the erection process was solved, achieving efficient roll material protection and storage.
Patent Information
- Application Number
- CN202511926937.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-19
- Publication Date
- 2026-02-10
AI Technical Summary
Existing roll-on and transfer equipment is prone to scratching or creases on the surface of the roll-on when it is turned from horizontal to vertical, and there is also the problem of friction damage.
A roll material conveying device is designed, including a flipping component, a transport component, and a transfer component. The flipping component flips the horizontally placed roll material into a vertical state. The grid plate and fixing component protect the surface of the roll material during the transfer process to avoid friction and scratches. The support plate prevents indentation during storage.
This effectively avoids surface damage to the roll material during flipping and transfer, ensuring the quality of the roll material and achieving efficient storage and transportation.
Smart Images

Figure CN121493460A_ABST
Abstract
Description
Technical Field
[0002] This invention relates to the field of transportation technology, specifically to a roll material conveying device and its application in intelligent warehousing of car covers. Background Technology
[0003] Car covers, as high-performance transparent films, are applied to car paint using specialized techniques. They provide comprehensive protection against environmental damage to the original paint, including UV radiation, gravel impacts, bird droppings, and rain, effectively maintaining the integrity and aesthetics of the car's appearance. This has made them a core product in the automotive detailing and maintenance industry. To ensure convenient continuous production, efficient transportation, and ease of application, the industry commonly processes car covers into rolls, known as car cover rolls. These rolls typically use a rigid paper tube as a core, with the film tightly wound around it.
[0004] With the continuous growth of car ownership, the demand for car cover products is booming, leading to a sharp increase in the storage volume of car cover rolls by large-scale manufacturers. Automated storage and retrieval systems (AS / RS) have become the preferred solution for car cover manufacturers due to their advantages such as high space utilization, large storage capacity, precise management, and high operational efficiency. By expanding storage space vertically, these warehouses can increase warehouse floor space utilization by 3-5 times. Combined with automated control systems, they automate the entire process of roll material receiving, issuing, and inventory counting, significantly reducing labor costs and minimizing human error.
[0005] In actual warehousing operations, the transfer of roll materials involves key steps such as horizontal transport, vertical flipping, precise positioning, and storage. Currently, roll materials are mostly placed horizontally at the end of the production line and during transport to ensure stability and space utilization. However, upon storage, to prevent deformation of the bottom due to prolonged horizontal placement, they must be converted to a vertical position. Current mainstream flipping and transfer equipment has several drawbacks: some equipment uses robotic arms for clamping and flipping, but the clamping force is difficult to control precisely; excessive force can cause edge compression deformation, while insufficient force may cause the roll to slip during flipping; some equipment uses inclined tracks to achieve autonomous rolling and flipping of the roll, during which the roll experiences severe friction and impact with the inner wall of the track, easily resulting in scratches and creases; and in some equipment, the roll support surface is a single flat structure, and the relative movement between the transfer components and the support surface can cause sliding friction, further damaging the roll surface. Summary of the Invention
[0006] This invention provides a roll material conveying device and a method of using it in a smart warehouse for car cover, aiming to solve the problem that existing conveying devices cause creases or scratches on the surface of the car cover roll material when it is placed vertically from a horizontal position on a shelf, affecting its subsequent use.
[0007] The present invention provides a roll material conveying device, which includes a conveyor belt for conveying roll materials for garment construction, and also includes a flipping component, a transport component, a transfer component one, and a transfer component two. The flipping assembly is used to flip the horizontally placed roll material conveyed by the conveyor belt onto the flipping assembly into a vertical state; Transport components are used to deliver rolls of material to designated storage locations; Transfer component one and transfer component two are respectively installed on the flipping component and the transport component. When the flipping component flips, the roll material is placed vertically on transfer component one. Through the cooperation of transfer component one and transfer component two, the vertically placed roll material is moved to transfer component two, and the roll material on transfer component two is transported to the storage position by the transport component.
[0008] Preferably, the flipping assembly includes a flipping bracket, a flipping plate, and a flipping motor for driving the flipping plate to rotate. The flipping bracket is fixedly installed at one end of the conveyor belt, and the flipping plate is rotatably installed on the flipping bracket. When the flipping plate is in a horizontal state, the upper surface of the flipping plate is lower than the upper surface of the conveyor belt so that the roll material can be moved onto the flipping plate. The flipping motor is fixedly installed on the flipping bracket, and a V-shaped groove perpendicular to the conveying direction of the conveyor belt is opened on the flipping plate. The roll material moving onto the flipping plate is restricted in position by the action of the V-shaped groove.
[0009] Preferably, the transfer component includes a grid plate and a sliding plate, which are vertically fixedly connected. A groove is provided at the center of the flip plate along the extension direction of the V-shaped groove. The sliding plate slides in the groove, and the sliding direction of the sliding plate is the same as the extension direction of the V-shaped groove. A plurality of clearance grooves are provided on the grid plate.
[0010] Preferably, the transport component includes a track, a support plate, a conveying trolley, and a column. The track is fixedly installed on the ground, the conveying trolley moves on the track, the column is fixedly installed on the conveying trolley and extends vertically, and the support plate is slidably installed on the column to drive the transfer component two to move vertically on the column. The transport component moves the roll material to the designated position through the conveying trolley and the support plate.
[0011] Preferably, the transfer component two is slidably mounted on the support plate, and the sliding direction of the transfer component two is perpendicular to the conveying direction of the conveyor belt. The transfer component two includes a grid plate two and a connecting block. The connecting block is fixedly mounted on the grid plate two and is located on the side of the grid plate along the conveying direction of the conveyor belt. The grid plate two has the same specifications and shape as the grid plate one. A lead screw is rotatably mounted on the support plate. The axial direction of the lead screw is the same as the sliding direction of the transfer component two. The connecting block is screw-fitted with the lead screw. A drive source one is provided on the support plate to drive the lead screw to rotate, so that when the drive source one drives the lead screw to rotate, it drives the connecting block to move along the axial direction of the lead screw.
[0012] Preferably, the second grid plate is provided with a fixing component, which includes a connecting plate, a positioning plate and a second drive source. A limiting plate with a cavity in the center is fixedly provided on the second grid plate. The second drive source is fixedly provided in the cavity in the center of the limiting plate. The output end of the second drive source is fixedly connected to the connecting plate to drive the connecting plate to move up and down. The positioning plate is provided on the connecting plate and extends along the sliding direction of the second transfer component.
[0013] Preferably, a protrusion is fixedly provided below the positioning plate. The protrusion is frustum-shaped, and the cross-sectional area on the side away from the positioning plate is smaller than the cross-sectional area on the side closer to the positioning plate. A rigid paper tube is provided at the center of the roll material. A cavity is opened in the center of the rigid paper tube. When the second drive source moves the positioning plate and the connecting plate up and down, the protrusion extends into the cavity in the center of the rigid paper tube to restrict the position of the roll material.
[0014] Preferably, shelves for storing roll materials are provided on both sides of the track. The shelves are divided into multiple areas for storing roll materials separately. Each area is provided with a grid plate three, which has the same specifications and shape as grid plate two and grid plate one.
[0015] Preferably, support plates are provided on the flipping assembly, the bearing plate, and the shelf. The support plates are adapted to grating plate one, grating plate two, and grating plate three to fill the clearance grooves on grating plate one, grating plate two, and grating plate three, thereby supporting the roll material placed on grating plate one, grating plate two, and grating plate three.
[0016] A method for using a roll material conveying device in a smart warehouse for car covers, which utilizes the aforementioned roll material conveying device.
[0017] Beneficial effects: 1. By setting up a flipping component, the horizontally placed roll material on the conveyor belt is flipped to a vertical position, which avoids the roll material having a certain length and the bottom of the roll material being used as a fulcrum when flipping the roll material, which would cause creases on the surface of the roll material.
[0018] 2. Insert the second grating plate into the relief groove on the first grating plate, and move the grating plate upward through the bearing plate to transfer the roll material from the first grating plate to the second grating plate. During the transfer process, there is no friction between the roll material and the first and second grating plates to avoid damage to the surface of the roll material.
[0019] 3. A fixing component is provided on the second grating plate. When the roll material is transferred from the first grating plate to the second grating plate, the fixing component moves closer to the roll material so that the protrusion extends into the rigid roll in the center of the roll material. When fixing the roll material, there is no direct contact between the fixing component and the roll material, so as to avoid scratches or creases on the surface of the roll material when fixing it.
[0020] 4. Support plates are installed at both grating plate one and grating plate two to seal the clearance grooves on grating plate one and grating plate two, so as to avoid indentation on the bottom of the roll material during transfer, which would affect the quality of the roll material. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the structure of the present invention.
[0022] Figure 2 This is a schematic diagram of the flipping component in this invention.
[0023] Figure 3 This is a schematic diagram of the structure of the transfer component two in this invention.
[0024] Figure 4 This is a schematic diagram of the structure of the first transfer component in this invention.
[0025] Figure 5 This is a schematic diagram of the structure of drive source three and drive source four in this invention.
[0026] Figure 6 This is an exploded view of the first transfer component in this invention.
[0027] Figure 7 This is a schematic diagram of the state of the extrusion component in this invention.
[0028] Figure 8 This is a partial cross-sectional schematic diagram of the fixing component in this invention.
[0029] Figure label: 1. Conveyor belt; 11. Roll material; 111. Rigid paper tube; 2. Tilting assembly; 21. Tilting bracket; 22. Tilting plate; 221. V-groove; 23. Tilting motor; 3. Transport assembly; 31. Track; 32. Bearing plate; 321. Lead screw; 33. Conveying trolley; 34. Column; 35. Drive source one; 4. Transfer assembly one; 41. Grating plate one; 42. Sliding plate; 5. Transfer assembly two; 51. Grating plate two; 52. Connecting block; 6. Fixing assembly; 61. Connecting plate; 62. Positioning plate; 63. Drive source two; 64. Protrusion; 65. Limiting plate; 71. Shelf; 72. Grating plate three; 8. Support plate; 81. Support plate one; 82. Support plate two; 83. Support plate three; 84. Drive source three; 85. Drive source four; 86. Drive source five. Detailed Implementation
[0030] Embodiments of the present invention are described in detail below, examples of which are illustrated in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, and should not be construed as limiting the present invention.
[0031] Reference Figures 1 to 8 The present invention provides a roll material 11 conveying device, including a conveyor belt 1, a flipping component 2, a transport component 3, a transfer component 4 and a transfer component 5; the conveyor belt 1 is used to convey the roll material 11 of the car cover to the flipping component 2, the flipping component 2 is used to flip the horizontally placed roll material 11 conveyed by the conveyor belt 1 to the flipping component 2 to a vertical state, and the transport component 3 is used to transport the roll material 11 to a designated storage location. Transfer component 1 4 and transfer component 2 5 are respectively disposed on flipping component 2 and transport component 3, so that when flipping component 2 flips, the roll 11 is placed vertically on transfer component 1 4. Through the cooperation of transfer component 1 4 and transfer component 2 5, that is, transfer component 2 5 moves upward relative to transfer component 1 4, the vertically placed roll 11 is moved to transfer component 2 5. The transport component 3 drives transfer component 2 5 to move, so as to move the roll 11 to the designated storage position.
[0032] Reference Figures 3 to 6 The flipping assembly 2 includes a flipping bracket 21, a flipping plate 22, and a flipping motor 23. The flipping bracket 21 is fixedly mounted on one end of the conveyor belt 1. The flipping plate 22 is rotatably mounted on the flipping bracket 21. The flipping motor 23 is fixedly mounted on the flipping bracket 21 at the end away from the conveyor belt. The output end of the flipping motor 23 is connected to the flipping plate 22 to drive the flipping plate 22 to rotate on the flipping bracket 21. A V-groove 221 is provided on the flipping plate 22 along the conveying direction perpendicular to the conveyor belt.
[0033] Several horizontally placed rolls 11 are placed on the conveyor belt 1. When the flip plate 22 is in a horizontal state, the flip plate 22 is lower than the conveying surface of the conveyor belt 1, so that the rolls 11 can move into the V-groove 221 on the flip plate 22. The position of the rolls 11 is restricted by the V-groove 221. Then, the flip plate 22 is rotated by the flip motor 23, which in turn drives the rolls 11 to flip, so as to stand the horizontal rolls 11 upright.
[0034] Reference Figure 5 and Figure 6 The transfer component 4 includes a grid plate 41 and a sliding plate 42. A groove is provided in the center of the flip plate 22, and the extension direction of the groove is the same as the extension direction of the V-groove 221. The sliding plate 42 is adapted to the groove, that is, the sliding plate 42 is slidably disposed in the groove. The grid plate 41 is fixedly disposed on the sliding plate 42, and the grid plate 41 and the sliding plate 42 are perpendicular to each other.
[0035] The grating plate 41 and the sliding plate 42 are arranged vertically, that is, the grating plate 41 and the flipping plate 22 are arranged vertically. When the flipping plate 22 flips, the roll 11 on the flipping plate 22 moves to the grating plate under the action of gravity. When the flipping plate 22 rotates from the horizontal state to the vertical state, the roll 11 placed horizontally on the flipping plate 22 is transferred to the grating plate 41 and placed vertically on the grating plate 41.
[0036] Reference Figures 1 to 3 The transport component 3 includes a track 31, a support plate 32, a transport trolley 33, and a column 34. The track 31 is fixedly set on the ground, and the extension direction of the track 31 is the same as the conveying direction of the conveyor belt 1. The transport trolley 33 moves along the track 31. The column 34 is fixedly set on the transport trolley 33, and the support plate 32 is slidably set on the column 34.
[0037] The conveyor trolley 33 moves to move the roll 11 to a designated position, and then the carrier plate 32 moves the roll 11 to a designated height by moving it up and down.
[0038] Reference Figures 4 to 7The transfer component 2 5 is slidably mounted on the support plate 32. The transfer component 2 5 includes a grid plate 2 51 and a connecting block 52. The connecting block 52 is fixedly mounted on the side of the grid plate 2 51 along the conveying direction of the conveyor belt 1. In this embodiment, there are two connecting blocks 52, and the grid plate 2 51 is positioned at the center of the two connecting blocks 52. Several clearance grooves are provided on both the grid plate 1 41 and the grid plate 2 51. The clearance grooves are evenly distributed on the grid plate 1 41 and the grid plate 2 51 along the conveying direction of the conveyor belt 1. At the same time, the grid plate 1 41 and the grid plate 2 51 are evenly divided into multiple support modules along the conveying direction of the conveyor belt 1. In this embodiment, the width of each support module in the conveying direction of the conveyor belt 1 is smaller than the width of the clearance groove. The clearance grooves extend along the conveying direction perpendicular to the conveyor belt 1 so that the grid plate 1 41 and the grid plate 2 51 can move into each other's clearance grooves respectively.
[0039] A lead screw 321 is rotatably mounted on the support plate 32. The axis of the lead screw 321 is in the same direction as the extension direction of the relief groove. The connecting block 52 is screwed to the lead screw 321. A drive source 35 is fixedly mounted on the support plate 32. The output end of the drive source 35 is connected to the lead screw 321 to drive the lead screw 321 to rotate. In this embodiment, a transmission belt is provided between the output end of the drive source 35 and the lead screw 321. The drive source 35 drives the lead screw 321 to rotate through the transmission belt. Then, through the screw engagement between the connecting block 52 and the lead screw 321, the connecting block 52 and the second grid plate 51 slide on the support plate 32.
[0040] By using the clearance grooves on grating plate 1 (41) and grating plate 2 (51), when the roll material 11 needs to be transferred from grating plate 1 (41) to grating plate 2 (51), the transport trolley moves the carrying plate 32 to the flipping assembly 2, aligning the support module on grating plate 2 (51) with the clearance groove on grating plate 1 (41). Then, by rotating the drive source 1 (35), the connecting block 52 drives grating plate 2 (51) to move towards grating plate 1 (41). At this time, grating plate 2 (51) and grating plate 1 (41) respectively enter their respective clearance grooves, and the grating... The surface of plate 2 51 is lower than the surface of grating plate 1 41. Then, the bearing plate 32 is controlled to move upward along the column 34 so that the surface of grating plate 2 51 contacts the bottom of the roll 11. Then, the roll 11 is lifted off the surface of grating plate 1 41. Next, the drive source 1 35 is controlled to rotate in the opposite direction, driving grating plate 2 51 to reset. This completes the transfer of roll 11 from grating plate 1 41 to grating plate 2 51. During this process, roll 11 is not worn, so as to ensure the quality of roll 11 during the transfer process.
[0041] Reference Figure 5 and Figure 7A fixing component 6 is provided on the second grid plate 51. The fixing component 6 includes a connecting plate 61, a positioning plate 62, a second drive source 63, and a limiting plate 65. The limiting plate 65 is fixedly provided at the center of the second grid plate 51 along the extension direction of the relief groove. The limiting plate 65 has a cavity in the center. The second drive source 63 is fixedly provided in the cavity in the center of the limiting plate 65. The output end of the drive source is fixedly connected to the connecting plate 61 to drive the connecting plate 61 to move up and down. The positioning plate 62 is provided on the connecting plate 61 and extends toward the extension direction of the relief groove on the second grid plate 51. In this embodiment, the second drive source 63 is set as a cylinder.
[0042] When the roll 11 is transferred from the first grating plate 41 to the second grating plate 51, that is, when the second grating plate 51 moves closer to the first grating plate 41, the connecting plate 61 moves above the roll 11. Then, the connecting plate 61 is controlled by the second drive source to move downward and abut against the upper surface of the roll 11 to fix the roll 11 and prevent the position of the roll 11 from changing or falling off during transfer or transportation.
[0043] Reference Figure 5 and Figure 7 A protrusion 64 is fixedly provided below the connecting plate 61. The protrusion 64 is frustoconical, and the cross-sectional area of the side of the protrusion 64 near the connecting plate 61 is larger than that of the side away from the connecting plate 61. A rigid paper tube 111 is provided at the center of the roll material 11. The rigid paper tube 111 is used to wind the car cover roll material 11 and support the car cover. A cavity is opened in the center of the paper tube. The cross-sectional area of the side of the protrusion 64 away from the connecting plate 61 is smaller than the cross-sectional area of the cavity of the rigid paper tube 111, and the cross-sectional area of the side of the protrusion 64 near the connecting plate 61 is larger than the cross-sectional area of the cavity of the rigid paper tube 111.
[0044] When the roll 11 is being transferred, the protrusion 64 moves above the cavity of the rigid paper tube 111. When the connecting plate 61 approaches the roll 11, the protrusion 64 is inserted into the cavity of the rigid paper tube 111 to position the roll 11 and restrict its position to prevent it from moving on the grid plate 51.
[0045] Reference Figure 1 and Figure 8 A shelf 71 for storing roll material 11 is fixedly installed on the side of the track 31. The shelf 71 is divided into multiple areas for storing roll material 11 separately, so that the roll material 11 can be stored vertically separately. In each area of the shelf 71 for storing roll material 11, a grid plate 3 72 is provided. The grid plate 3 72 has the same specifications and shape as the grid plate.
[0046] When the transport vehicle moves to the shelf 71, the support plate 32 moves up and down along the column 34 to move the roll 11 to the corresponding storage area. At this time, the roll 11 needs to be moved from the second grid plate 51 to the third grid plate 72. That is, the drive source drives the lead screw 321 to rotate, controlling the second grid plate 51 to move closer to the third grid plate 72. That is, the third grid plate 72 and the second grid plate 51 enter each other's clearance grooves respectively, and at this time the surface of the second grid plate 51 is higher than the surface of the third grid plate 72. Then, the second drive source controls the connecting plate 61 to move away from the roll 11, releasing the fixation of the roll 11. Then, the support plate 32 moves down on the column 34, so that the ground of the roll 11 contacts the surface of the third grid plate 72. That is, the roll 11 moves onto the third grid plate 72. Then, the first drive source 35 controls the first grid plate 41 to reset. Then, the transport trolley moves again to the flipping device to store the next roll 11.
[0047] Reference Figures 4 to 8 Support plates 8 are provided in the relief grooves of grating plate 1 41, grating plate 2 51 and grating plate 3 72 respectively. The support plates 8 corresponding to grating plate 1 41, grating plate 2 51 and grating plate 3 72 are named support plate 1, support plate 2 and support plate 3 respectively. Support plate 1 81 is adapted to grating plate 1 41. Support plate 1 81 is slidably arranged in the relief groove in grating plate 1 41 along the extension direction of sliding plate 42. Drive source 3 84 is fixedly arranged on sliding plate 42. The output end of drive source 3 84 is fixedly connected to support plate to drive support plate 1 81 to move. The second support plate 82 and the second grid plate 51 are adapted to each other. The second support plate 82 is slidably set on the support plate 32 in the vertical direction. The fourth drive source 85 is fixedly set on the support plate 32. The output end of the fourth drive source 85 is fixedly connected to the second support plate 82 to drive the support plate to move up and down on the support plate 32. Support plate 3 83 and grid plate 3 72 are adapted to each other. Support plate 3 83 is slidably installed in the clearance groove of grid plate 3 72. Drive source 5 86 is fixedly installed on the shelf 71. The output end of drive source 5 86 is fixedly connected to support plate 3 83 to drive support plate 3 83 to move up and down.
[0048] During the transfer of the roll 11, support plates 1-81, 2-82, and 3-83 are first controlled to move away from grid plates 1-41, 2-51, and 3-72 respectively, so that grid plate 2-51 can enter the relief grooves of grid plates 1-41 and 3-72 respectively. When the transfer is completed, support plates 1-81 and 2-82 are controlled to return to their original positions so that the surfaces of support plates 1-81, 2-82, and 3-83 overlap with the surfaces of grid plates 1-41, 2-51, and 3-72 respectively. This prevents indentations from appearing on the lower surface of the roll 11 during the transfer and storage process because the relief grooves of grid plates 1-41, 2-51, and 3-72 do not provide support for the roll 11, thus affecting the quality of the roll 11.
[0049] In this embodiment, two sets of transmission belts, flipping components 2, transfer components 4 and shelves 71 are provided, respectively distributed on both sides of track 31. By controlling the grid plate 51 to move on the bearing plate 32 through the drive source 35, the roll material 11 on both sides of transfer components 4 can be transferred to the grid plate 41. Similarly, two positioning plates 62 and protrusions 64 are also provided on the connecting plate 61, respectively corresponding to the two roll materials 11, to fix the two roll materials 11.
[0050] Reference Figure 5 An adjusting cylinder is fixedly installed on the side of the flip plate 22 away from the V-groove. The output end of the adjusting cylinder is fixedly connected to the sliding plate 42. The adjusting cylinder drives the sliding plate 42 and the grid plate 41 to move.
[0051] When the conveyor belt 1 transports the roll 11 to the flipping assembly 2, the roll 11 first falls onto the flipping plate 22. At this time, the roll 11 does not contact the surface of the grid plate 41. When the flipping plate 22 flips, the roll 11 is subjected to gravity and slides along the V-groove 221 toward the grid plate 41. At this time, the roll 11 rubs against the flipping plate 22. When the roll 11 comes into contact with the grid plate 41, an impact will occur, which will affect the surface quality of the roll 11.
[0052] By adjusting the cylinder, when the roll 11 falls onto the flipping plate 22, the cylinder drives the sliding plate 42, which in turn drives the grid plate 41 to move towards the roll 11, so that the grid plate 41 abuts against the side of the roll 11 in the axial direction. Then, the output end of the cylinder is fixed so that when the flipping plate 22 flips, the grid plate 41 and the flipping plate 22 support the roll 11. At this time, the position of the roll 11 and the flipping plate 22 is relatively fixed. The flipping plate 22 is flipped to a vertical state, and the main support surface for the roll 11 is replaced by the grid plate 41. Then, the grid plate 51 extends into the relief groove of the grid plate 41 to transfer the roll 11 onto the grid plate 51, thus completing the transfer of the roll 11.
[0053] A method for using a roll material conveying device in a smart warehouse for car covers, which utilizes the aforementioned roll material conveying device.
[0054] The implementation principle of this invention is as follows: The horizontally placed roll 11 is moved to the flipping device by the conveyor belt 1. Then, the flipping device rotates 90 degrees to erect the roll 11 on the first grating plate 41. Then, the second grating plate 51 is moved to the corresponding position of the first grating plate 41 by the conveyor trolley 33. The second grating plate 51 is controlled to extend into the relief groove in the first grating plate 41. Then, the second grating plate 51 is controlled to rise to transfer the roll 11 onto the second grating plate 51. Finally, the roll 11 on the second grating plate 51 is fixed by the fixing component 6. To prevent it from falling, the second grating plate 51 is moved to the corresponding third grating plate 72 by the transport trolley and the carrier plate 32. The second grating plate 51 is then controlled to extend into the relief groove on the third grating plate 72, and then the second grating plate 51 is controlled to move downward to transfer the roll 11 onto the third grating plate 72. The second grating plate 51 is then reset to transfer the next roll 11. The surface of the third support plate 83 is then controlled to coincide with the surface of the third grating plate 72 by the drive source 86 to provide sufficient support for the bottom of the roll 11 and prevent indentations.
[0055] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention.
Claims
1. A roll material conveying device, comprising a conveyor belt for conveying rolls of car cover material, characterized in that, It also includes a flipping component, a transport component, a transfer component one, and a transfer component two; The flipping assembly is used to flip the horizontally placed roll material conveyed by the conveyor belt onto the flipping assembly into a vertical state; Transport components are used to deliver rolls of material to designated storage locations; Transfer component one and transfer component two are respectively installed on the flipping component and the transport component. When the flipping component flips, the roll material is placed vertically on transfer component one. Through the cooperation of transfer component one and transfer component two, the vertically placed roll material is moved to transfer component two, and the roll material on transfer component two is transported to the storage position by the transport component.
2. The roll material conveying device according to claim 1, characterized in that, The flipping assembly includes a flipping bracket, a flipping plate, and a flipping motor for driving the flipping plate to rotate. The flipping bracket is fixedly installed at one end of the conveyor belt, and the flipping plate is rotatably installed on the flipping bracket. When the flipping plate is in a horizontal state, the upper surface of the flipping plate is lower than the upper surface of the conveyor belt so that the roll material can be moved onto the flipping plate. The flipping motor is fixedly installed on the flipping bracket. A V-shaped groove perpendicular to the conveying direction of the conveyor belt is opened on the flipping plate. The roll material moving onto the flipping plate is restricted in position by the action of the V-shaped groove.
3. The roll material conveying device according to claim 1, characterized in that, The transfer component includes a grid plate and a sliding plate. The grid plate and the sliding plate are vertically fixedly connected. A groove is provided at the center of the flip plate along the extension direction of the V-shaped groove. The sliding plate slides in the groove, and the sliding direction of the sliding plate is the same as the extension direction of the V-shaped groove. Several clearance grooves are provided on the grid plate.
4. The roll material conveying device according to claim 1, characterized in that, The transport component includes a track, a support plate, a conveyor trolley, and a column. The track is fixed on the ground, and the conveyor trolley moves on the track. The column is fixed on the conveyor trolley and extends vertically. The support plate is slidably mounted on the column to drive the second transfer component to move vertically on the column. The transport component moves the roll material to the designated position through the conveyor trolley and the support plate.
5. A roll material conveying device according to claim 4, characterized in that, The second transfer component is slidably mounted on the support plate, and the sliding direction of the second transfer component is perpendicular to the conveying direction of the conveyor belt. The second transfer component includes a second grid plate and a connecting block. The connecting block is fixedly mounted on the second grid plate and is located on the side of the grid plate along the conveying direction of the conveyor belt. The second grid plate has the same specifications and shape as the first grid plate. A lead screw is rotatably mounted on the support plate. The axial direction of the lead screw is the same as the sliding direction of the second transfer component. The connecting block is screw-fitted with the lead screw. A first drive source is provided on the support plate to drive the lead screw to rotate, so that when the first drive source drives the lead screw to rotate, it drives the connecting block to move along the axial direction of the lead screw.
6. A roll material conveying device according to claim 5, characterized in that, The second grid plate is provided with a fixing component, which includes a connecting plate, a positioning plate and a second drive source. A limiting plate with a cavity in the center is fixedly installed on the second grid plate. The second drive source is fixedly installed in the cavity in the center of the limiting plate. The output end of the second drive source is fixedly connected to the connecting plate to drive the connecting plate to move up and down. The positioning plate is installed on the connecting plate and extends along the sliding direction of the second transfer component.
7. A roll material conveying device according to claim 6, characterized in that, A protrusion is fixedly installed below the positioning plate. The protrusion is frustoconical, and the cross-sectional area of the side away from the positioning plate is smaller than that of the side closer to the positioning plate. A rigid paper tube is installed at the center of the roll material. A cavity is opened in the center of the rigid paper tube. When the second drive source moves the positioning plate and the connecting plate up and down, the protrusion extends into the cavity in the center of the rigid paper tube to restrict the position of the roll material.
8. A roll material conveying device according to claim 5, characterized in that, Shelves for storing roll materials are set on both sides of the track. The shelves are divided into multiple areas for storing roll materials separately. Each area is equipped with a grid plate three. The grid plate three has the same specifications and shape as the grid plate two and the grid plate one.
9. A roll material conveying device according to claim 8, characterized in that, Support plates are provided on the flipping assembly, the bearing plate, and the shelf. The support plates are adapted to grating plate one, grating plate two, and grating plate three to fill the clearance grooves on grating plate one, grating plate two, and grating plate three, thereby supporting the roll material placed on grating plate one, grating plate two, and grating plate three.
10. A method for using a roll material conveying device in intelligent warehouse storage for car covers, characterized in that, A roll material conveying device as described in any one of claims 1-9 was used.