Feeding device for ship plate processing
By adjusting the distance between the support frame and the height of the drive assembly, the problem of the conveyor belt being unable to adapt to the feeding of ship plates of different widths was solved, enabling flexible conveying and adaptive feeding of plates of different widths and thicknesses, and improving the applicability of the processing equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-31
- Publication Date
- 2026-03-06
AI Technical Summary
In existing technologies, the width of the conveyor belt is fixed, which makes it difficult to adapt to the feeding of ship plates of different widths, thus affecting processing flexibility.
By adjusting the distance between the support frames through the extension components, and utilizing the rotation of the extension components and fixed cylinders, the feeding device can transport ship plates of different widths and thicknesses, thus expanding its applicability. Furthermore, the height can be adjusted through the drive components to accommodate different types of processing equipment.
It enables flexible feeding of ship plates of different widths and thicknesses, expands the applicability of the feeding device, and improves the adaptability and flexibility of the processing equipment.
Smart Images

Figure CN121609024A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of sheet metal processing, and more particularly to a feeding device for processing ship sheet metal. Background Technology
[0002] Ship plate is a core material in shipbuilding, and its performance determines the ship's strength, corrosion resistance, lifespan, and operating costs. Structural steel for ship hulls is classified into strength grades based on its minimum yield point: general strength structural steel and high strength structural steel. Ship plate refers to hot-rolled steel plates produced according to the construction specifications of classification societies and used for manufacturing ship hull structures.
[0003] Shipbuilding requires various processing steps on ship plates, such as cutting, shaping, assembly, and welding. These processes necessitate a feeding device to transport the plates to the processing equipment for handling. In the Chinese utility model patent "Announcement No.: CN222063352U, Title: A Plate Processing Feeding Device," a conveyor belt is used to move the plates for feeding. However, in the aforementioned application and existing technologies, the conveyor belt has a fixed width and is obstructed by side plates, making it difficult to move and feed plates of different widths. This limits the applicability of the feeding device and hinders the flexible processing of ship plate materials. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to overcome the shortcomings of the prior art in that it is difficult to feed ship plates of different widths, and to provide a feeding device for ship plate processing.
[0005] The present invention solves the above-mentioned technical problems through the following technical solution:
[0006] This invention provides a feeding device for ship plate processing, including a fixed frame.
[0007] An extension component and a support frame shell are provided. Two symmetrically distributed support frame shells are provided above the fixed frame shell. The extension component is installed at the fixed frame shell and is pulsatorically connected to the two support frame shells. The extension component is used to adjust the distance between the two support frame shells.
[0008] A fixed cylinder assembly is provided between the two support frame shells, and an extension component is slidably provided at both ends of the fixed cylinder assembly;
[0009] A power assembly, wherein the extension assembly on one side is connected to the power assembly in a transmission manner, and the power assembly is installed in the inner cavity of one of the support frames.
[0010] In this technical solution, the distance between the two supporting frames can be adjusted using the extension component. When the supporting frames move, the extension component moves, causing it to extend. At this time, the rotation of the fixed cylinder assembly and the extension component moves the sand feeder and feeds the ship plates. This ensures that the movement of the supporting frames does not affect the conveying of the ship plates by the fixed cylinder assembly. Furthermore, due to the adjustment of the distance between the two supporting frames, the feeding device can convey ship plates of different widths and thicknesses, expanding the applicability of the feeding device. It can feed ship plates to different processing equipment to facilitate the feeding and processing of ship plates.
[0011] Preferably, the expansion component includes an expansion drive source connected to the outside of the fixed frame, and the output end of the expansion drive source is connected to a bidirectional threaded shaft. One end of the bidirectional threaded shaft is rotatably connected to one side of the expansion drive source, and the other end of the bidirectional threaded shaft is rotatably connected to the inner wall of the other side of the expansion drive source.
[0012] The top of the bidirectional threaded shaft is connected to multiple connecting brackets, and the top side of the connecting brackets is connected to the bottom of the fixed frame.
[0013] In this technical solution, the position of the supporting frame is adjusted by extending the components.
[0014] Preferably, the inner wall of the fixed frame is connected to a plurality of anti-deviation rails, and the surface of the anti-deviation rails is slidably connected through the support column.
[0015] In this technical solution, the movement trajectory of the moving plate is limited by an anti-deviation track.
[0016] Preferably, the fixed cylinder assembly includes a fixed cylinder body and filling strips. The fixed cylinder body has two sets of symmetrically distributed filling components connected to its side. Each set of filling components consists of multiple filling strips arranged in a ring array. The filling strips are connected to the surface of the fixed cylinder body.
[0017] The outer surface of the fixed cylinder and the surface at the center of the fixed cylinder are on the same straight line.
[0018] In this technical solution, ship plates are moved and loaded using fixed cylinder assemblies and extension components.
[0019] Preferably, the extension component includes an anti-detachment rotating shaft, and both ends of the fixed cylinder are provided with anti-detachment rotating shafts, and the surfaces of the two anti-detachment rotating shafts are respectively rotatably connected to the sides of the two support frame shells.
[0020] The anti-detachment rotating shaft is connected to a plurality of support bars arranged in a ring array on the side away from the support frame.
[0021] The anti-detachment rotating shaft is connected to a pulling column on the side away from the support frame, and the surface of the pulling column is slidably connected through the end face of the fixed cylinder.
[0022] In this technical solution, the extension component moves with the support frame, allowing the extension component to be extended or retracted, preventing the movement of the support frame from affecting the feeding device's conveying of ship plates.
[0023] Preferably, an anti-detachment plate is connected to the end of the pulling column away from the anti-detachment rotation axis, and the anti-detachment plate is slidably disposed in the inner cavity of the fixed cylinder;
[0024] The anti-detachment plate has multiple sliding grooves arranged in a ring array on its side, and the inner wall of the fixed cylinder is connected to multiple limiting bars arranged in a ring array. The limiting bars are slidably connected to the anti-detachment plate through the sliding grooves.
[0025] In this technical solution, the limiting bar allows the fixed cylinder assembly to rotate along with the anti-detachment plate.
[0026] Preferably, the power assembly includes a drive gear, and multiple drive gears are provided in the inner cavity of the support frame, with each drive gear connected to one end of a multiple anti-detachment rotating shaft.
[0027] A transmission gear is provided between two adjacent driving gears, and the transmission gear meshes with the driving gear;
[0028] One of the drive gears is connected to the output end of a power source, which is connected to the inner cavity of the support frame.
[0029] In this technical solution, the power component can drive the extension component and the fixed cylinder assembly to rotate, thereby moving and conveying the ship's steel plates.
[0030] Preferably, a support unit is provided at the bottom of the fixed frame shell, the support unit includes a support base, and a drive component is provided in the inner cavity of the support base;
[0031] An execution component is provided above the support base. The upper end of the execution component is connected to the bottom of the fixed frame shell, and the lower end of the execution component is connected to the drive component.
[0032] The support base is equipped with multiple sets of wheels.
[0033] In this technical solution, the support unit can support, move, and raise / lower structures such as fixed frames.
[0034] Preferably, the execution component includes a movable cross frame, and multiple movable cross frames are provided between the support base and the fixed frame shell, with rotating connecting seats rotatably connected to both ends of the movable cross frame;
[0035] The upper rotating connecting seat is connected to the bottom of the upper sliding plate, and the lower rotating connecting seat is connected to the top of the lower mounting plate. The lower mounting plate is connected to the moving wheel assembly via a transmission.
[0036] The upper sliding plate is slidably connected to the surface of the fixed shaft, and fixed side plates are respectively connected to both ends of the fixed shaft. The top of the fixed side plate is connected to the bottom of the fixed frame.
[0037] In this technical solution, the height of structures such as the fixed frame, fixed cylinder assembly, and extension assembly can be adjusted through the drive component and the execution component.
[0038] Preferably, the drive assembly includes a telescopic device and a positioning rail, and two symmetrically distributed lower mounting plates are provided in the inner cavity of the support base. The two lower mounting plates are respectively connected to the two output ends of the telescopic device, and the telescopic device is connected to the inner wall of the support base.
[0039] The inner wall of the support base is connected to multiple positioning rails, and the surface of the positioning rails is slidably connected through the surface of the lower mounting plate.
[0040] In this technical solution, the execution component is driven by the driver component.
[0041] Based on common knowledge in the field, the above-mentioned preferred conditions can be combined arbitrarily to obtain various preferred embodiments of the present invention.
[0042] The positive and progressive effects of this invention are as follows:
[0043] This invention utilizes an adjustable extension component to control the distance between the two supporting frames. When the supporting frames move, they drive the extension component to move, allowing it to extend. At this time, the rotation of the fixed cylinder assembly and the extension component moves the sand feeder and feeds the ship plates. This ensures that the movement of the supporting frames does not affect the conveying of the ship plates by the fixed cylinder assembly. Furthermore, due to the adjustable distance between the two supporting frames, the feeding device can convey ship plates of different widths and thicknesses, expanding the applicability of the feeding device. It can feed ship plates to different processing equipment to facilitate the feeding and processing of ship plates.
[0044] Furthermore, by driving the execution components through the drive components, the height of structures such as the fixed frame, fixed cylinder assembly, and extension components can be adjusted using the execution components. This allows the feeding device to feed materials to processing equipment with different inlets, making it suitable for different types of processing equipment and improving the flexibility of the feeding device during use. Attached Figure Description
[0045] Figure 1 This is a schematic diagram of the structure of a feeding device for processing ship plate according to an embodiment of the present invention.
[0046] Figure 2 for Figure 1 The diagram shows the overall front cross-sectional structure of the feeding device for ship plate processing.
[0047] Figure 3 for Figure 1 The diagram shows the structure of the extended component of the feeding device for ship plate processing in its stowed state.
[0048] Figure 4 for Figure 3 The diagram shows a side cross-sectional view of a single fixed cylinder assembly and a single extension component of a feeding device for ship plate processing.
[0049] Figure 5 for Figure 3 The diagram shows a front cross-sectional view of a single fixed cylinder assembly and a single extension component of a feeding device for ship plate processing.
[0050] Figure 6 for Figure 1 The diagram shows a three-dimensional structural representation of the extended components of a feeding device for processing ship plates, in their unfolded state.
[0051] Figure 7 for Figure 1 The diagram shows a cross-sectional view of a single extended component of a feeding device for ship plate processing in its unfolded state.
[0052] Figure 8 for Figure 1 The diagram shows a three-dimensional structural schematic of the expansion component of the feeding device for ship plate processing.
[0053] Figure 9 for Figure 1 The schematic diagram shows the three-dimensional structure of the actuator and drive components of the feeding device for ship plate processing. Figure 1 .
[0054] Figure 10 for Figure 1 The schematic diagram shows the three-dimensional structure of the actuator and drive components of the feeding device for ship plate processing. Figure 2 .
[0055] Explanation of reference numerals in the attached figures
[0056] 1. Fix the frame;
[0057] 2. Expansion components; 21. Expansion drive source; 22. Bidirectional threaded shaft; 23. Moving plate; 24. Connecting frame; 25. Anti-deviation track; 26. Reinforcing rib;
[0058] 3. Support frame;
[0059] 4. Fixed cylinder assembly; 41. Fixed cylinder body; 42. Filler strip column;
[0060] 5. Extension assembly; 51. Anti-detachment rotating shaft; 52. Pulling column; 53. Supporting column; 54. Anti-detachment plate; 55. Limiting column;
[0061] 6. Power assembly; 61. Drive gear; 62. Transmission gear; 63. Power source; 64. Rotary support shaft;
[0062] 7. Support base;
[0063] 8. Drive components; 81. Telescopic devices; 82. Positioning tracks;
[0064] 9. Actuating components; 91. Movable cross rack; 92. Rotary connecting seat; 93. Upper sliding plate; 94. Lower mounting plate; 95. Fixed shaft; 96. Fixed side plate;
[0065] 10. Moving wheel set. Detailed Implementation
[0066] The present invention will be further illustrated by way of embodiments below, but the present invention is not limited to the scope of the embodiments described herein.
[0067] Figures 1 to 10 The diagram shown is a structural schematic of an embodiment of the feeding device for ship plate processing of the present invention.
[0068] Example 1
[0069] like Figures 1 to 8 As shown, the feeding device for ship plate processing includes a fixed frame 1.
[0070] The expansion component 2 and the support frame shell 3 are provided. Two symmetrically distributed support frame shells 3 are provided above the fixed frame shell 1. The expansion component 2 is installed at the fixed frame shell 1 and is connected to the two support frame shells 3 in a transmission manner. The expansion component 2 is used to adjust the distance between the two support frame shells 3.
[0071] Fixed cylinder assembly 4, multiple fixed cylinder assemblies 4 are provided between the two support frame shells 3, and extension components 5 are slidably provided at both ends of the fixed cylinder assembly 4;
[0072] The power assembly 6, wherein the extension assembly 5 on one side is connected to the power assembly 6 in a transmission manner, and the power assembly 6 is installed in the inner cavity of one of the support frame shells 3.
[0073] In this technical solution, the distance between the two supporting frame shells 3 can be adjusted by using the extension component 2. When the supporting frame shell 3 moves, it drives the extension component 5 to move, so that the extension component 5 extends. At this time, the rotation of the fixed cylinder group 4 and the extension component 5 is used to move the sand feeder and feed the ship plate. The movement of the supporting frame shell 3 does not affect the conveying of the ship plate by the fixed cylinder group 4. Moreover, due to the adjustment of the distance between the two supporting frame shells 3, the feeding device can convey ship plates of different widths and thicknesses, expanding the applicability of the feeding device. The ship plates can be fed to different processing equipment to facilitate the feeding and processing of ship plates.
[0074] The expansion component 2 includes an expansion drive source 21, which is connected to the outside of the fixed frame 1. The output end of the expansion drive source 21 is connected to a bidirectional threaded shaft 22. One end of the bidirectional threaded shaft 22 is rotatably connected to one side of the expansion drive source 21, and the other end of the bidirectional threaded shaft 22 is rotatably connected to the inner wall of the other side of the expansion drive source 21.
[0075] The top of the bidirectional threaded shaft 22 is connected to a plurality of connecting brackets 24, and the top side of the connecting brackets 24 is connected to the bottom of the fixed frame shell 1.
[0076] In this technical solution, the position of the support frame 3 is adjusted by the extension component 2.
[0077] The inner wall of the fixed frame 1 is connected to a plurality of anti-deviation rails 25, and the surface of the anti-deviation rails 25 is slidably connected to the support column 53.
[0078] In this technical solution, the movement trajectory of the moving plate 23 is limited by the anti-deviation track 25.
[0079] The top surface of the fixed frame 1 is provided with multiple movable openings, and one end of the connecting frame 24 extends to the outside of the fixed frame 1 through the movable openings.
[0080] The connecting frame 24 has a Z-shaped cross-section, and reinforcing ribs 26 are connected to the inner sides of the corners of the connecting frame 24.
[0081] The overall stability of the connecting frame 24 is increased by using reinforcing ribs 26.
[0082] In use, depending on the size of the ship's plates, the bidirectional threaded shaft 22 is rotated by the extended drive source 21. When the bidirectional threaded shaft 22 rotates, it drives the moving plates 23 on both sides to move towards or away from each other along the anti-deviation track 25, thereby driving the connecting frame 24 to move in the same direction. When the connecting frame 24 moves, it drives the corresponding support frame 3 to move in the same direction, so that the support frame 3 on both sides can move towards or away from each other, and the distance between the two support frame 3 can be adjusted.
[0083] The fixed cylinder assembly 4 includes a fixed cylinder body 41 and filling strips 42. The fixed cylinder body 41 has two sets of symmetrically distributed filling components connected to its side. Each set of filling components consists of multiple filling strips 42 arranged in a ring array. The filling strips 42 are connected to the surface of the fixed cylinder body 41.
[0084] The outer surface of the fixed cylinder 41 and the surface at the center of the fixed cylinder 41 are on the same straight line.
[0085] In this technical solution, the ship's steel plates are moved and loaded using the fixed cylinder assembly 4 and the extension assembly 5.
[0086] The extension component 5 includes an anti-detachment rotating shaft 51. Both ends of the fixed cylinder group 4 are provided with anti-detachment rotating shafts 51. The surfaces of the two anti-detachment rotating shafts 51 are rotatably connected to the sides of the two support frame shells 3.
[0087] The anti-detachment rotating shaft 51 is connected to a plurality of support bars 53 arranged in a ring array on the side away from the support frame shell 3.
[0088] The anti-detachment rotating shaft 51 is connected to a pulling column 52 on the side away from the support frame 3, and the surface of the pulling column 52 is slidably connected through the end face of the fixed cylinder 41.
[0089] In this technical solution, the extension component 5 moves with the support frame 3, allowing the extension component 5 to be extended or retracted, preventing the movement of the support frame 3 from affecting the feeding device's conveying of ship plates.
[0090] The end of the pulling column 52 away from the anti-detachment rotating shaft 51 is connected to an anti-detachment plate 54, and the anti-detachment plate 54 is slidably disposed in the inner cavity of the fixed cylinder 41.
[0091] The anti-detachment plate 54 has multiple sliding grooves arranged in a ring array on its side, and the inner wall of the fixed cylinder 41 is connected to multiple limiting posts 55 arranged in a ring array. The limiting posts 55 are slidably connected to the anti-detachment plate 54 through the sliding grooves.
[0092] In this technical solution, the limiting bar 55 allows the fixed cylinder assembly 4 to rotate along with the rotation of the anti-detachment plate 54.
[0093] When the support frame 3 moves, it drives the corresponding anti-detachment rotating shaft 51 to move in the same direction, thereby driving the corresponding pulling column 52 and support bar column 53 to move in the same direction, so that the extension component 5 can be expanded or retracted as the support frame 3 moves.
[0094] When the pull column 52 is moved, it causes the anti-detachment plate 54 to move in the same direction as the limit bar column 55.
[0095] The power assembly 6 includes a drive gear 61, and multiple drive gears 61 are provided in the inner cavity of the support frame 3. The multiple drive gears 61 are respectively connected to one end of multiple anti-detachment rotating shafts 51.
[0096] A transmission gear 62 is provided between two adjacent driving gears 61, and the transmission gear 62 is meshed with the driving gear 61.
[0097] One of the drive gears 61 is connected to the output end of the power source 63, which is connected to the inner cavity of the support frame 3.
[0098] One side of the transmission gear 62 is connected to one end of the rotating support shaft 64, and the end of the rotating support shaft 64 away from the transmission gear 62 is rotatably connected to the inner wall of the support frame 3.
[0099] In this technical solution, the power component 6 can drive the extension component 5 and the fixed cylinder group 4 to rotate, thereby moving and conveying the ship's steel plates.
[0100] During loading, the ship plate is placed on the surface of the fixed cylinder 41, the filling bar column 42 and the support bar column 53. Then, the power source 63 drives the corresponding drive gear 61 to rotate, thereby driving the transmission gear 62 to rotate, which in turn drives the other drive gears 61 and transmission gears 62 to rotate.
[0101] When the drive gear 61 rotates, it can drive the corresponding anti-detachment rotating shaft 51, pulling column 52, support bar column 53 and anti-detachment plate 54 to rotate. When the anti-detachment plate 54 rotates, it drives the limiting bar column 55 to rotate, which in turn drives the fixed cylinder 41 and filling bar column 42 to rotate, thereby moving and conveying the ship plate to realize the feeding of the processing equipment.
[0102] Example 2
[0103] As one embodiment of this application, its difference from Embodiment 1 is that, Figure 1 , Figure 2 , Figure 9 and Figure 10 As shown, a support unit is provided at the bottom of the fixed frame shell 1. The support unit includes a support base 7, and a drive assembly 8 is provided in the inner cavity of the support base 7.
[0104] An execution component 9 is provided above the support base 7. The upper end of the execution component 9 is connected to the bottom of the fixed frame shell 1, and the lower end of the execution component 9 is connected to the drive component 8.
[0105] The bottom of the support base 7 is equipped with multiple sets of movable wheels 10.
[0106] The use of the movable wheel set 10 makes it easy to move the feeding device, making the feeding device more flexible and convenient to use.
[0107] In this technical solution, the support unit can support, move, and lift the fixed frame shell 1 and other structures.
[0108] The execution component 9 includes a movable cross frame 91. Multiple movable cross frames 91 are arranged between the support base 7 and the fixed frame 1. Both ends of the movable cross frame 91 are rotatably connected to a rotating connecting seat 92.
[0109] The upper rotating connecting seat 92 is connected to the bottom of the upper sliding plate 93, and the lower rotating connecting seat 92 is connected to the top of the lower mounting plate 94. The lower mounting plate 94 is connected to the moving wheel set 10 in a transmission connection.
[0110] The upper sliding plate 93 is slidably connected to the surface of the fixed shaft 95, and fixed side plates 96 are respectively connected to both ends of the fixed shaft 95. The top of the fixed side plate 96 is connected to the bottom of the fixed frame shell 1.
[0111] In this technical solution, the height of structures such as the fixed frame 1, the fixed cylinder group 4, and the extension component 5 can be adjusted by the drive component 8 and the execution component 9.
[0112] The drive assembly 8 includes a telescopic device 81 and a positioning rail 82. Two symmetrically distributed lower mounting plates 94 are provided in the inner cavity of the support base 7. The two lower mounting plates 94 are respectively connected to the two output ends of the telescopic device 81. The telescopic device 81 is connected to the inner wall of the support base 7.
[0113] The inner wall of the support base 7 is connected to multiple positioning rails 82, and the surface of the positioning rails 82 is slidably connected through the surface of the lower mounting plate 94.
[0114] In this technical solution, the execution component 9 is driven by the driver component 8.
[0115] In use, depending on the height of the feed inlet of the processing equipment, the telescopic device 81 drives the lower mounting plates 94 on both sides to move towards or away from each other along the positioning track 82. At this time, under the action of the rotating connecting seat 92, the movable cross frame 91 can rotate crosswise, thereby driving the upper sliding plates 93 on both sides to move towards or away from each other along the fixed shaft 95, thereby adjusting the height of the fixed side plate 96 and the fixed frame 1, and further adjusting the height of the fixed cylinder group 4 and the extension component 5, so as to facilitate feeding of processing equipment with different feed inlet heights.
[0116] The movable cross frame 91 consists of two long strips that are intersected and rotatably connected to a pin at their center.
[0117] The rotating connecting seat 92 is composed of a central column and side plates. Both ends of the central column are connected to side plates. The surface of the central column is rotatably connected to the movable cross frame 91. The side plates are respectively connected to the corresponding upper sliding plate 93 and lower mounting plate 94.
[0118] The extended drive source 21 and power source 63 are motor sets or other devices that can output rotational kinetic energy.
[0119] The telescopic device 81 is an electric push rod assembly, a lifting cylinder assembly, a hydraulic lifting assembly, or other equipment with autonomous telescopic function.
[0120] While specific embodiments of the present invention have been described above, those skilled in the art should understand that these are merely illustrative examples, and the scope of protection of the present invention is defined by the appended claims. Those skilled in the art can make various changes or modifications to these embodiments without departing from the principles and essence of the present invention, but all such changes and modifications fall within the scope of protection of the present invention.
Claims
1. A feeding device for processing of shipboard materials, comprising a fixed frame (1), characterized in that, The ship plate processing feeding device further comprises an expansion assembly (2) and a support frame shell (3), two symmetrical support frame shells (3) are arranged above the fixed frame shell (1), the expansion assembly (2) is installed at the fixed frame shell (1), and the expansion assembly (2) is in transmission connection with the two support frame shells (3); the expansion assembly (2) is used for adjusting the distance between the two support frame shells (3); A plurality of fixed cylinder groups (4) are arranged between the two support frame shells (3), and the two ends of each fixed cylinder group (4) are slidably provided with an extension assembly (5); A power assembly (6) is in transmission connection with one of the extension assemblies (5) on one side, and the power assembly (6) is installed in the inner cavity of one of the support frame shells (3).
2. The feeding device for processing of shipboard materials according to claim 1, characterized in that: The expansion assembly (2) comprises an expansion drive source (21), the expansion drive source (21) is connected to the outer side of the fixed frame shell (1), the output end of the expansion drive source (21) is connected with a bidirectional threaded shaft (22), one end of the bidirectional threaded shaft (22) is rotatably connected with one side of the expansion drive source (21), and the other end of the bidirectional threaded shaft (22) is rotatably connected with the inner wall of the other side of the expansion drive source (21). A plurality of connecting frames (24) are connected to the top of the bidirectional threaded shaft (22), and the top side of the connecting frame (24) is connected with the bottom of the fixed frame shell (1).
3. The feeding device for processing of shipboard materials as claimed in claim 2, characterized in that: A plurality of anti-deviation tracks (25) are connected to the inner wall of the fixed frame shell (1), and the surface of the anti-deviation track (25) is slidably connected with the support column (53).
4. The feeding device for processing of shipboard panels as claimed in claim 1, characterized in that: The fixed cylinder group (4) comprises a fixed cylinder body (41) and a filling column (42), the side surface of the fixed cylinder body (41) is connected with two groups of symmetrically distributed filling components, each group of filling components is composed of a plurality of filling columns (42) arranged in an annular array, and the filling column (42) is connected to the surface of the fixed cylinder body (41). The outer surface of the fixed cylinder body (41) and the surface at the center of the fixed cylinder body (41) are on the same straight line.
5. The feeding device for processing of shipboard panels as claimed in claim 1, characterized in that: The extension assembly (5) comprises an anti-falling rotating shaft (51), the two ends of the fixed cylinder group (4) are provided with the anti-falling rotating shaft (51), and the surfaces of the two anti-falling rotating shafts (51) are rotatably connected with the side surfaces of the two support frame shells (3), respectively. A plurality of support columns (53) arranged in an annular array are connected to the side, away from the support frame shell (3), of the anti-falling rotating shaft (51). A pulling column (52) is connected to the side, away from the support frame shell (3), of the anti-falling rotating shaft (51), and the surface of the pulling column (52) is slidably connected with the end surface of the fixed cylinder body (41).
6. The feeding device for processing of shipboard materials as claimed in claim 5, characterized in that: One end of the pulling column (52), away from the anti-falling rotating shaft (51), is connected with an anti-falling plate (54), and the anti-falling plate (54) is slidably arranged in the inner cavity of the fixed cylinder body (41). A plurality of sliding grooves arranged in an annular array are formed in the side surface of the anti-falling plate (54), a plurality of limiting columns (55) arranged in an annular array are connected to the inner wall of the fixed cylinder body (41), and the limiting column (55) is slidably connected with the anti-falling plate (54) through the sliding groove.
7. The feeding device for processing of shipboard panels as claimed in claim 1, characterized in that: The power assembly (6) comprises a driving gear (61), a plurality of driving gears (61) are arranged at the inner cavity of the support frame shell (3), and one end of each of the plurality of driving gears (61) is connected with a rotation prevention shaft (51). A transmission gear (62) is arranged between two adjacent driving gears (61), and the transmission gear (62) is in meshing connection with the driving gears (61). One of the driving gears (61) is connected with the output end of a power source (63), and the power source (63) is connected at the inner cavity of the support frame shell (3).
8. The feeding device for processing of shipboard panels as claimed in claim 1, characterized in that: The bottom of the fixed frame shell (1) is provided with a support unit, the support unit comprises a support base (7), and the inner cavity of the support base (7) is provided with a driving assembly (8). An execution assembly (9) is arranged above the support base (7), the upper end of the execution assembly (9) is in transmission connection with the bottom of the fixed frame shell (1), and the lower end of the execution assembly (9) is in transmission connection with the driving assembly (8). A plurality of moving wheel groups (10) are mounted at the bottom of the support base (7).
9. The feeding device for processing of shipboard panels as claimed in claim 8, characterized in that: The execution assembly (9) comprises a movable cross frame (91), a plurality of movable cross frames (91) are arranged between the support base (7) and the fixed frame shell (1), and rotating connecting seats (92) are rotatably connected to both ends of the movable cross frame (91). The rotating connecting seat (92) located at the upper side is connected with the bottom of an upper sliding plate (93), the rotating connecting seat (92) located at the lower side is connected with the top of a lower mounting plate (94), and the lower mounting plate (94) is in transmission connection with the moving wheel group (10). The upper sliding plate (93) is in sliding connection with the surface of a fixed shaft (95), the fixed shaft (95) is connected with fixed side plates (96) at both ends, and the top of the fixed side plate (96) is connected with the bottom of the fixed frame shell (1).
10. The feeding device for processing of shipboard panels as claimed in claim 9, characterized in that: The driving assembly (8) comprises a telescopic device (81) and a positioning track (82), two symmetrically distributed lower mounting plates (94) are arranged at the inner cavity of the support base (7), the two lower mounting plates (94) are respectively connected with two output ends of the telescopic device (81), and the telescopic device (81) is connected with the inner wall of the support base (7). A plurality of positioning tracks (82) are connected with the inner wall of the support base (7), and the surface of the positioning track (82) is in slidable through connection with the surface of the lower mounting plate (94).
Citation Information
Patent Citations
Plate processing feeding device
CN222063352U