A mobile type gumming machine
By designing a mobile glue-applying machine and employing glue-receiving and drive components, precise positioning and glue application are achieved for boards of different sizes. This solves the problems of glue waste and low positioning accuracy in existing equipment, and improves the flexibility and environmental friendliness of the glue-applying equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FOSHAN HENGLIHAO MASCH CO LTD
- Filing Date
- 2025-08-28
- Publication Date
- 2026-07-21
AI Technical Summary
Existing mechanized glue-applying equipment cannot meet the glue-applying needs of boards of different sizes, resulting in serious glue waste, low positioning accuracy, and complex operation.
Design a mobile glue-applying machine that uses a sliding connection between a mobile frame and a fixed frame. It is equipped with a glue-receiving assembly and a glue-receiving tray to collect overflowing glue. The drive assembly is used to achieve precise positioning and glue application of the board. The assembly includes components such as a fixed glue-receiving plate, a mobile glue-receiving plate, and a blocking strip. Together with the conveying mechanism and glue-applying assembly, it can achieve multi-directional positioning and glue application.
It effectively reduces glue waste, improves glue application accuracy, is suitable for boards of different sizes, simplifies the operation process, and reduces environmental pollution.
Smart Images

Figure CN224527496U_ABST
Abstract
Description
Technical Field
[0001] This application relates primarily to the field of sheet metal processing technology, and in particular to a mobile glue-applying machine. Background Technology
[0002] Currently, the surface coating technology for boards is widely used in woodworking, furniture manufacturing and other fields. With the development of automation technology, the traditional manual coating method has been gradually replaced by mechanized equipment. The industry generally uses fixed coating machines or cantilever coating machines, but they still cannot meet the coating needs of boards of different sizes, and the coating accuracy is difficult to guarantee. In recent years, with the expansion of the customized furniture market, higher requirements have been put forward for the flexibility, accuracy and environmental protection of coating equipment. However, the existing mechanized coating equipment still has problems such as serious glue waste, low positioning accuracy and complicated operation. Therefore, the structure of the device needs to be further improved. Summary of the Invention
[0003] The technical problem to be solved by this utility model is to provide a mobile glue applicator that can recycle glue, prevent glue from contaminating the conveying mechanism, and is suitable for precise positioning of material boards of different specifications, in order to address the above-mentioned deficiencies of the prior art.
[0004] This application provides a mobile glue-applying machine, which adopts the following technical solution: A mobile glue-applying machine includes a mobile frame and a fixed frame, the fixed frame being slidably connected to the mobile frame. A glue-applying assembly is installed on the mobile frame, and a base and a conveying mechanism are provided on the fixed frame. The base is connected to the conveying mechanism, and a glue-receiving assembly is provided on the base. The distribution direction of the glue-receiving assembly is perpendicular to the conveying direction of the conveying mechanism, and a glue-receiving tray is also provided at the end of the base along the conveying direction of the conveying mechanism.
[0005] By adopting the above technical solution, adhesive receiving components or adhesive receiving trays are distributed on at least two sides of the board. When applying adhesive to the board, the adhesive receiving components or adhesive receiving trays can catch the adhesive overflowing from different directions, recycle the adhesive, and reduce the waste of adhesive.
[0006] Optionally, the adhesive receiving assembly includes a fixed adhesive receiving plate and a movable adhesive receiving plate. The top of the fixed adhesive receiving plate has a fixed adhesive receiving groove, and the top of the movable adhesive receiving plate has a movable adhesive receiving groove. The fixed adhesive receiving plate is fixed on the base, and the movable adhesive receiving plate is slidably connected to the base. The base is provided with a first driving assembly, and the movable adhesive receiving plate is fixedly connected to the first driving assembly. The first driving assembly is used to drive the movable adhesive receiving plate to move closer to or away from the fixed adhesive receiving plate.
[0007] By adopting the above technical solution, after the sheet enters the conveying mechanism, the first driving component drives the moving glue receiving plate to approach the fixed glue receiving plate. After the moving glue receiving plate moves to abut against the sheet, the moving glue receiving plate is pushed by the first driving component until the sheet abuts against the fixed glue receiving plate, so that the sheet is limited to the moving glue receiving plate and the fixed glue receiving plate, thereby achieving positioning of sheets of different sizes in one direction and improving glue application accuracy.
[0008] Optionally, the fixed glue receiving plate is located above the conveying mechanism and is close to the conveying mechanism. The movable glue receiving plate is arranged parallel to the fixed glue receiving plate. The glue receiving tray covers the conveying mechanism and the length direction of the glue receiving tray is perpendicular to the conveying direction of the conveying mechanism. The movable frame is also fixedly equipped with a glue receiving box, which is located below the initial position of the glue application assembly.
[0009] By adopting the above technical solution, the two ends of the glue receiving tray extend outward to the outside of the fixed glue receiving plate and the movable glue receiving plate, so that the coverage area of the glue receiving component intersects with the coverage area of the glue receiving tray. At least three sides of the board are close to the glue receiving component or glue receiving tray, and the glue receiving component and glue receiving tray are also close to each other. When glue is applied, the glue flows into the glue receiving component or glue receiving tray, preventing glue from contaminating the conveying mechanism and reducing the impact on subsequent boards. After the glue application is completed, the glue application component returns to its initial position, but there is still residual glue dripping in the pipe. The glue receiving box can collect the residual glue in the pipe, reducing glue waste.
[0010] Optionally, the first drive assembly includes a first rack, a first drive member, and a first drive gear. The first rack is fixed on the base, the first drive gear is connected to the output end of the first drive member, the first drive gear meshes with the first rack, and the movable connecting plate is fixedly connected to the first drive member.
[0011] By adopting the above technical solution, the first driving component can drive the movable adhesive receiving plate to reciprocate along the first rack, thereby realizing the controllable translation of the movable adhesive receiving plate.
[0012] Optionally, a blocking drive component is also fixedly provided on the base. A blocking strip is fixedly connected to the output end of the blocking drive component. The blocking drive component is used to drive the blocking strip to extend out of the upper surface of the conveying mechanism or retract below the conveying mechanism. The blocking strip is located below the glue receiving tray.
[0013] By adopting the above technical solution, when a new sheet is conveyed to the conveying mechanism, the blocking drive drives the blocking strip to extend out of the upper surface of the conveying mechanism. The conveying mechanism then conveys the sheet to abut against the blocking strip, further limiting the position of the sheet and improving the positioning accuracy for sheets of different sizes. This makes the glue coating machine suitable for a variety of sheets of different sizes. After the sheet has been glued, the blocking drive drives the blocking strip to retract to the upper surface of the conveying mechanism, allowing the conveying mechanism to further convey the sheet to the next process device. The operation is simple.
[0014] Optionally, the conveying mechanism includes a conveying roller, a third driving member, a third driving sprocket, a drive shaft, and a driven belt. The third driving member is fixed to the inner side of the base. The third driving sprocket is connected to the output end of the third driving member. The drive shaft is rotatably connected to the inner wall of the base. The third driving sprocket is driven by the drive shaft. One end of the driven belt is sleeved on the drive shaft, and the other end is sleeved on the transmission roller. The drive shaft and the transmission roller are driven by the driven belt.
[0015] By adopting the above technical solution, the conveyor roller is driven by the operation of the third driving component, thereby controlling the conveying mechanism to convey the plate.
[0016] Optionally, the fixed frame is provided with I-shaped slide rails on both sides, and the bottom of the movable frame is provided with a slider corresponding to the I-shaped slide rail. The slider slides in cooperation with the I-shaped slide rail. The inner side of the movable frame is also provided with a second driving member, which is used to drive the movable frame to reciprocate along the I-shaped slide rail.
[0017] By adopting the above technical solution, the mobile frame slides and cooperates with the I-shaped slide rail, so that the mobile frame is limited by the I-shaped slide rail and moves back and forth. By controlling the operation of the second driving component, the movement of the mobile frame is controlled. The mobile frame drives the glue application assembly to move, so that the glue application assembly can achieve glue application along the conveying direction of the conveying mechanism.
[0018] Optionally, the adhesive coating assembly includes a fourth driving component, several synchronous pulleys, a synchronous belt, a horizontal slide rail, and a horizontal slider. The number of synchronous pulleys is at least two and they are respectively located at both ends of the movable frame. The synchronous belt is sleeved with the synchronous pulleys. The fourth driving component is fixedly installed on the inner wall of the movable frame. The output end of the fourth driving component is connected to one of the synchronous pulleys. The horizontal slide rail is fixed to the movable frame. The horizontal slider is slidably connected to the horizontal slide rail. The horizontal slider is fixedly connected to the synchronous belt.
[0019] By adopting the above technical solution, the glue coating assembly can achieve glue coating operation along the conveying direction perpendicular to the conveying mechanism.
[0020] Optionally, the glue-applying assembly further includes a glue-applying head, a vertical support, a vertical cylinder, a vertical slide rail, and a vertical slider. The vertical support and the horizontal slider are fixed to each other. The vertical cylinder is fixed on the vertical support, and its output end is fixed to the glue-applying head. The vertical cylinder is used to drive the glue-applying head closer to or further away from the conveying mechanism. The vertical slide rail is fixed to the vertical support and is perpendicular to the conveying mechanism. The vertical slider is slidably connected to the vertical slide rail, and the glue-applying head is fixed to the vertical slider.
[0021] By adopting the above technical solution, the position of the glue-applying head can be changed in the vertical direction to adjust the glue dispensing height of the glue-applying component, thereby adapting to glue application on boards of different thicknesses.
[0022] Optionally, the mobile frame is also equipped with a glue storage tank for storing glue, and the glue dispensing head is connected to the glue storage tank via a pipe.
[0023] By adopting the above technical solution, the glue flows from the storage tank through the pipeline to the glue application head, and the glue can be applied to the board.
[0024] In summary, this application includes at least one of the following beneficial technical effects: 1. The conveying mechanism is equipped with a glue receiving component and a glue receiving tray on its periphery. When the glue is applied, the overflowing glue can flow into the glue receiving component or the glue receiving tray, which effectively recycles the overflowing glue and reduces glue waste and environmental pollution. 2. The conveying mechanism has a fixed glue receiving plate on one side and a movable glue receiving plate on the other side. By moving the movable glue receiving plate towards the fixed glue receiving plate, the two sides of the board are respectively abutted against the glue receiving plate, thereby achieving the positioning of boards of different sizes and improving the glue application accuracy. 3. A blocking bar is provided at the end of the conveying mechanism. The conveying assembly moves the sheet material to abut against the blocking bar, thereby achieving further positioning of sheet materials of different sizes and improving the glue application accuracy. 4. The mobile frame is equipped with a second drive component, a horizontal drive component, and a vertical drive component, which respectively drive the glue applicator head to move in three mutually perpendicular directions, so as to achieve precise glue applicator application to boards of different sizes. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the overall structure in an embodiment of this application.
[0026] Figure 2 This is a schematic diagram of the overall structure from another angle in the embodiments of this application.
[0027] Figure 3 This application Figure 2 A magnified view of a section at point B.
[0028] Figure 4This is a schematic diagram of the overall structure from another angle in the embodiments of this application.
[0029] Figure 5 This application Figure 4 A magnified view of a section at point C.
[0030] Figure 6 This application Figure 4 A magnified view of a section at point D.
[0031] Figure 7 This is a schematic diagram of the installation structure of the blocking strip in an embodiment of this application.
[0032] Figure 8 This application Figure 1 A magnified view of a portion of point A in the middle.
[0033] Figure 9 This is an exploded view of the adhesive coating assembly in the embodiments of this application.
[0034] Explanation of reference numerals in the attached figures: 11. Fixed frame; 12. Base; 13. Movable frame; 21. Fixed receiving plate; 22. Movable receiving plate; 23. First driving component; 24. First driving gear; 25. First rack; 26. First slider; 27. First guide rail; 3. Receiving tray; 41. Blocking bar; 42. Blocking driving component; 43. Limiting rail; 44. Limiting block; 50. Conveyor roller; 51. Third driving component; 52. Third driving sprocket; 53. Drive shaft; 54. Driven sprocket; 55. Driven belt 56. Chain; 61. Second drive component; 62. Second drive gear; 63. Second rack; 64. Slider; 65. I-beam slide rail; 66. Stop seat; 7. Glue application assembly; 70. Glue application head; 71. Horizontal slide rail; 72. Horizontal slider; 73. Fourth drive component; 74. Synchronous pulley; 75. Synchronous belt; 76. Vertical bracket; 77. Vertical cylinder; 78. Vertical slide rail; 79. Vertical slider; 81. Glue receiving box; 82. Operating table; 83. Glue storage tank; 84. Ladder. Detailed Implementation
[0035] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments.
[0036] This application discloses a mobile glue coating machine.
[0037] Reference Figure 1A mobile glue-applying machine includes a mobile frame 13 and a fixed frame 11. The fixed frame 11 is slidably connected to the mobile frame 13. A glue-applying assembly 7 is installed on the mobile frame 13. The mobile frame 13 drives the glue-applying assembly 7 to slide along the fixed frame 11. A base 12 and a conveying mechanism are provided on the fixed frame 11. The base 12 is connected to the conveying mechanism and is located on the base 12. A glue-receiving assembly is provided on the base 12. The distribution direction of the glue-receiving assembly is perpendicular to the conveying direction of the conveying mechanism. The two ends of the glue-receiving assembly are located at the two ends of the base 12 corresponding to the two ends of the conveying mechanism. In this embodiment, the glue-receiving assembly includes two glue-receiving plates with glue-receiving grooves. A glue-receiving tray 3 is also provided at the end of the base 12 along the conveying direction of the conveying mechanism. When the overflowing glue flows onto the glue-receiving plate or glue-receiving tray 3, the glue can be stored in the glue-receiving groove or glue-receiving tray 3, reducing glue waste. The glue-receiving assembly, glue-receiving tray 3 and the driving device of the conveying mechanism are connected to the base 12.
[0038] Reference Figure 1 and Figure 2 The adhesive application assembly includes a fixed adhesive application plate 21 and a movable adhesive application plate 22. The fixed adhesive application plate 21 has a fixed adhesive application groove on its top, and the movable adhesive application plate 22 has a movable adhesive application groove on its top. The initial positions of the fixed adhesive application plate 21 and the movable adhesive application plate 22 are distributed on both sides of the conveying mechanism. The fixed adhesive application plate 21 is fixed to the base 12, and the movable adhesive application plate 22 is slidably connected to the base 12. The base 12 is provided with a first driving assembly. In this embodiment, the first driving assembly is a motor. The movable adhesive application plate 22 is fixedly connected to the first driving assembly. The first driving assembly is used to drive the movable adhesive application plate 22 closer to or further away from the fixed adhesive application plate 21. Before adhesive application, when the sheet material enters the conveyor... After the structure is completed, the first drive component drives the movable glue receiving plate 22, causing the movable glue receiving plate 22 to abut against one side of the board and push the board. The board moves horizontally until it abuts against the fixed glue receiving plate 21. At this time, both sides of the board abut against the fixed glue receiving plate 21 and the movable glue receiving plate 22 respectively, so that the board is limited between the movable glue receiving plate 22 and the fixed glue receiving plate 21. This achieves positioning of boards of different sizes in one direction, improves glue application accuracy, and after the glue overflows to both sides on the board, it flows downward into the fixed glue receiving trough or the movable glue receiving trough under the action of gravity. The fixed glue receiving trough and the movable glue receiving trough collect the overflowing glue, so as to prevent glue from contaminating the conveying mechanism as much as possible and reduce the impact on subsequent boards.
[0039] Reference Figure 1The fixed glue receiving plate 21 is located above the conveying mechanism and is close to the conveying mechanism. The movable glue receiving plate 22 is arranged parallel to the fixed glue receiving plate 21. The distribution direction of the fixed glue receiving plate 21 and the movable glue receiving plate 22 is perpendicular to the conveying direction of the conveying mechanism. The glue receiving tray 3 covers the conveying mechanism. The length direction of the glue receiving tray 3 is perpendicular to the conveying direction of the conveying mechanism. The two ends of the glue receiving tray 3 extend outward to the outside of the fixed glue receiving plate 21 and the movable glue receiving plate 22, so that the coverage area of the glue receiving assembly intersects with the coverage area of the glue receiving tray 3, preventing glue from flowing from between the glue receiving plate and the glue receiving assembly to the conveying mechanism. The movable frame 13 is also fixedly equipped with a glue receiving box 81. The glue receiving box 81 is located below the initial position of the glue spraying assembly 7. After the glue spraying work is completed, the glue spraying assembly 7 returns to the initial position, but there is still residual glue dripping in the pipe. The glue receiving box 81 can collect the residual glue in the pipe and reduce glue waste.
[0040] Reference Figure 2 and Figure 3 The first drive assembly includes a first rack 25, a first drive member 23, and a first drive gear 24. The first rack 25 is fixed on the base 12 and is perpendicular to the adhesive receiving assembly. Both ends of the first rack 25 extend to both sides of the conveying mechanism. The first drive gear 24 is connected to the output end of the first drive member 23, and the first drive gear 24 meshes with the first rack 25. The movable adhesive receiving plate 22 is fixedly connected to the first drive member 23. When the first drive member 23 is activated, its output end drives the first drive gear 24 to rotate. The first drive gear 24 rotates on its own axis. Simultaneously, the first driving member 23 drives the movable adhesive receiving plate 22 to translate along the first rack 25. The first driving component also includes a first guide rail 27 and a first slider 26. The first guide rail 27 is fixed on the base 12 and is arranged parallel to the first rack 25. The first slider 26 is fixed to the first driving member 23 and is slidably connected to the first guide rail 27. The first guide rail 27 is used to limit the movement path of the movable adhesive receiving plate 22, so that the movable adhesive receiving plate 22 can move closer to or away from the fixed adhesive receiving plate 21. In this embodiment, the first driving member 23 is a motor.
[0041] Reference Figure 1 , 4 5 and Figure 7A blocking drive component 42 is also fixedly provided on the base 12. In this embodiment, the blocking drive component 42 is a cylinder. The blocking drive component 42 is vertically arranged. A blocking strip 41 is fixedly connected to the output end of the blocking drive component 42. A limiting block 44 is also fixedly provided on the base 12. There are two limiting blocks 44, which are distributed on both sides of the blocking drive component 42 and are parallel to each other. A limiting rail 43 is also fixed below the blocking strip 41. The limiting rail 43 slides with the limiting block 44. The limiting block 44 limits the movement trajectory of the blocking strip 41. The blocking strip 41 is distributed between the two transmission rollers. The blocking drive component 42 is used to drive the blocking strip 41 to extend out of the upper surface of the conveying mechanism or retract below the conveying mechanism. The glue receiving tray 3 is located above the glue receiving assembly. The glue receiving tray 3 partially covers the fixed glue receiving groove and the movable glue receiving groove. The glue receiving tray 3 is suspended above the conveying mechanism. The upper part of the conveying mechanism provides space for the setting of the blocking strip 41. The blocking strip 41 is located below the glue receiving tray 3, with the side of the blocking strip 41 facing the glue application area close to the side of the glue receiving tray 3 facing the glue application area. When a new board is conveyed to the conveying mechanism, the blocking drive 42 drives the blocking strip 41 to extend out of the upper surface of the conveying mechanism. The conveying mechanism conveys the board to abut against the blocking strip 41, further limiting the position of the board and improving the positioning accuracy of boards of different sizes. This makes the glue application machine suitable for boards of various sizes. During glue application, the glue can be collected when the glue application component 7 moves outside the board, and the board can be prevented from being blocked by the glue receiving tray 3 as much as possible. After the board has finished applying glue, the blocking drive 42 drives the blocking strip 41 to retract to the upper surface of the conveying mechanism, so that the conveying mechanism can further convey the board to the next process device. The operation is simple.
[0042] Reference Figure 4 and Figure 6 The conveying mechanism includes a conveyor roller 50, a third drive member 51, a third drive sprocket 52, a drive shaft 53, and a driven belt 55. In this embodiment, the third drive member 51 is a motor, which is fixed to the inner side of the base 12. The third drive sprocket 52 is connected to the output end of the third drive member 51. The drive shaft 53 is rotatably connected to the inner wall of the base 12. A driven sprocket 54 is also fixed on the drive shaft 53, and the driven sprocket 54 rotates coaxially with the drive shaft 53. A chain 56 is sleeved on the third drive sprocket 52 and the driven sprocket. The third drive sprocket 52 and the drive shaft 53 are connected by a chain. The transmission is connected by a drive shaft 53, which extends along the conveying direction of the conveying mechanism. The drive shaft 53 is located below the conveyor roller 50, and both ends of the drive shaft 53 extend to both ends of the conveying mechanism. The conveyor roller 50 is set perpendicular to the conveying direction of the conveying mechanism. The drive shaft 53 and the conveyor roller 50 are perpendicular to each other. One end of the driven belt 55 is sleeved on the drive shaft 53. After the driven belt 55 is twisted 90 degrees, the other end is sleeved on the transmission roller. The drive shaft 53 and the transmission roller are connected by the driven belt 55. The conveyor roller 50 is driven by the operation of the third drive member 51 to realize the conveying mechanism to transport the plate.
[0043] Reference Figures 1 to 2 The fixed frame 11 has I-shaped slide rails 65 on both sides, which extend along the conveying direction of the conveying mechanism. The fixed frame 11 also has stop seats 66, which are distributed at the ends of the I-shaped slide rails 65. The bottom of the movable frame 13 has a slider 64 corresponding to the I-shaped slide rails 65. The slider 64 slides and engages with the I-shaped slide rails 65 to limit the movement direction of the movable frame 13. The inner side of the movable frame 13 also has a second driving member 61, which is used to drive the movable frame 13 along the I-shaped slide rails 65. The moving frame 13 is a bridge frame that is mounted on the fixed frame 11 in a U-shape. The second drive unit 61 is a motor and the output end of the second drive unit 61 is also provided with a second drive gear 62. The inner side of the fixed frame 11 is also provided with a second rack 63. The second rack 63 and the second drive gear 62 mesh with each other. By controlling the operation of the second drive unit 61, the moving frame 13 is driven to move horizontally. The moving frame 13 drives the glue application assembly 7 to achieve glue application along the conveying direction of the conveying mechanism.
[0044] Reference Figure 1 , 8 and Figure 9 The glue application assembly 7 includes a fourth drive component 73, several synchronous pulleys 74, a synchronous belt 75, a horizontal slide rail 71, and a horizontal slider 72. The number of synchronous pulleys 74 is at least two. In this embodiment, there are two synchronous pulleys 74, each located at one end of the movable frame 13. The synchronous belt 75 is sleeved with the synchronous pulleys 74, and the synchronous pulleys 74 and the synchronous belt 75 are connected in a transmission manner. The fourth drive component 73 is fixedly mounted on the inner wall of the movable frame 13. The fourth drive component 73 is a motor, and its output end is connected to one of the synchronous pulleys 74. The horizontal slide rail 71 is fixedly mounted on the movable frame 13. In this embodiment, there are two horizontal slide rails 71, distributed on the upper and lower sides of the synchronous belt 75. The horizontal slider 72 is slidably connected to the horizontal slide rail 71, limiting the movement of the glue application head 70. The horizontal slider 72 is fixedly connected to the synchronous belt 75, and the synchronous belt 75 drives the movement of the horizontal slider 72.
[0045] Reference Figure 1 and Figure 9The glue-applying assembly 7 also includes a glue-applying head 70, a vertical support 76, a vertical cylinder 77, a vertical slide rail 78, and a vertical slider 79. The vertical support 76 is fixed to the horizontal slider 72. The vertical cylinder 77 is fixed on the vertical support 76 and is vertically arranged. The output end of the vertical cylinder 77 is fixed to the glue-applying head 70. The vertical cylinder 77 is used to drive the glue-applying head 70 closer to or further away from the conveying mechanism. The vertical slide rail 78 is fixed to the vertical support 76. In this embodiment, there are two vertical slide rails 78, which are distributed on the left and right sides of the glue-applying head 70 respectively. The vertical slide rails 78 are set perpendicular to the conveying mechanism. The vertical slider 79 is slidably connected to the vertical slide rail 78. The glue-applying head 70 and the vertical slider 79 are fixed to each other. The vertical cylinder 77 drives the glue-applying head 70 to change its vertical position to adjust the glue dispensing height of the glue-applying assembly 7, thereby adapting to glue application on boards of different thicknesses.
[0046] Reference Figure 1 The mobile frame 13 is also equipped with a glue storage tank 83 for storing glue. The glue dispensing head 70 is connected to the glue storage tank 83 by a pipe. The mobile frame 13 is also equipped with an operating table 82. A ladder 84 is also provided on one side of the mobile frame 13. The ladder 84 is used to climb the mobile frame 13 to add glue to the glue storage tank 83 or to operate the operating table 82.
[0047] The above are all preferred embodiments of this application. These embodiments are only explanations of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A mobile glue-applying machine, characterized in that: It includes a mobile frame (13) and a fixed frame (11), the fixed frame (11) being slidably connected to the mobile frame (13), the mobile frame (13) being equipped with a glue-applying assembly (7), the fixed frame (11) being provided with a base (12) and a conveying mechanism, the base (12) being connected to the conveying mechanism, the base (12) being provided with a glue-receiving assembly, the distribution direction of the glue-receiving assembly being perpendicular to the conveying direction of the conveying mechanism, and the end of the base (12) along the conveying direction of the conveying mechanism being provided with a glue-receiving tray (3).
2. The mobile glue-coating machine according to claim 1, characterized in that: The adhesive receiving assembly includes a fixed adhesive receiving plate (21) and a movable adhesive receiving plate (22). The fixed adhesive receiving plate (21) has a fixed adhesive receiving groove on its top, and the movable adhesive receiving plate (22) has a movable adhesive receiving groove on its top. The fixed adhesive receiving plate (21) is fixed on the base (12), and the movable adhesive receiving plate (22) is slidably connected to the base (12). The base (12) is provided with a first driving assembly, and the movable adhesive receiving plate (22) is fixedly connected to the first driving assembly. The first driving assembly is used to drive the movable adhesive receiving plate (22) to move closer to or away from the fixed adhesive receiving plate (21).
3. A mobile glue-coating machine according to claim 2, characterized in that: The fixed glue receiving plate (21) is located above the conveying mechanism and is close to the conveying mechanism. The movable glue receiving plate (22) is arranged parallel to the fixed glue receiving plate (21). The glue receiving tray (3) covers the conveying mechanism. The length direction of the glue receiving tray (3) is perpendicular to the conveying direction of the conveying mechanism. The movable frame (13) is also fixedly provided with a glue receiving box (81). The glue receiving box (81) is located below the initial position of the glue application assembly (7).
4. A mobile glue-coating machine according to claim 2, characterized in that: The first drive assembly includes a first rack (25), a first drive member (23), and a first drive gear (24). The first rack (25) is fixed on the base (12). The first drive gear (24) is connected to the output end of the first drive member (23). The first drive gear (24) meshes with the first rack (25). The movable adhesive plate (22) is fixedly connected to the first drive member (23).
5. A mobile glue-coating machine according to claim 1, characterized in that: The base (12) is also fixedly provided with a blocking drive (42), and the output end of the blocking drive (42) is fixedly connected with a blocking strip (41). The blocking drive (42) is used to drive the blocking strip (41) to extend out of the upper surface of the conveying mechanism or retract below the conveying mechanism. The blocking strip (41) is located below the glue receiving tray (3).
6. A mobile glue-coating machine according to claim 1, characterized in that: The conveying mechanism includes a conveying roller (50), a third driving member (51), a third driving sprocket (52), a driving shaft (53), and a driven belt (55). The third driving member (51) is fixed to the inner side of the base (12). The third driving sprocket (52) is connected to the output end of the third driving member (51). The driving shaft (53) is rotatably connected to the inner wall of the base (12). The third driving sprocket (52) is connected to the driving shaft (53) in a transmission connection. One end of the driven belt (55) is sleeved on the driving shaft (53), and the other end is sleeved on the conveying roller. The driving shaft (53) and the conveying roller are connected in a transmission connection through the driven belt (55).
7. A mobile glue-coating machine according to claim 1, characterized in that: The fixed frame (11) is provided with I-shaped slide rails (65) on both sides. The bottom of the mobile frame (13) is provided with a slider (64) corresponding to the I-shaped slide rails (65). The slider (64) slides and cooperates with the I-shaped slide rails (65). The inner side of the mobile frame (13) is also provided with a second driving member (61). The second driving member (61) is used to drive the mobile frame (13) to reciprocate and translate along the I-shaped slide rails (65).
8. A mobile glue-coating machine according to claim 1, characterized in that: The adhesive coating assembly (7) includes a fourth drive component (73), several synchronous pulleys (74), a synchronous belt (75), a horizontal slide rail (71), and a horizontal slider (72). The number of synchronous pulleys (74) is at least two and they are respectively located at both ends of the mobile frame (13). The synchronous belt (75) is sleeved with the synchronous pulleys (74). The fourth drive component (73) is fixedly installed on the inner wall of the mobile frame (13). The output end of the fourth drive component (73) is connected to one end of the synchronous pulley (74). The horizontal slide rail (71) is fixed to the mobile frame (13). The horizontal slider (72) is slidably connected to the horizontal slide rail (71). The horizontal slider (72) is fixedly connected to the synchronous belt (75).
9. A mobile glue-coating machine according to claim 8, characterized in that: The glue application assembly (7) further includes a glue application head (70), a vertical support (76), a vertical cylinder (77), a vertical slide rail (78), and a vertical slider (79). The vertical support (76) is fixed to the horizontal slider (72). The vertical cylinder (77) is fixed on the vertical support (76). The output end of the vertical cylinder (77) is fixed to the glue application head (70). The vertical cylinder (77) is used to drive the glue application head (70) to move closer to or away from the conveying mechanism. The vertical slide rail (78) is fixed to the vertical support (76). The vertical slide rail (78) is set perpendicular to the conveying mechanism. The vertical slider (79) is slidably connected to the vertical slide rail (78). The glue application head (70) and the vertical slider (79) are fixed to each other.
10. A mobile glue-coating machine according to claim 9, characterized in that: The mobile frame (13) is also equipped with a glue storage tank (83) for storing glue, and the glue spraying head (70) is connected to the glue storage tank (83) by a pipe.