Correction fluid transfer device
By designing a correction fluid transfer device, and utilizing the cooperation of multiple clamping and rotating components, the problem of low correction fluid transfer efficiency was solved, enabling the simultaneous transfer and orientation adjustment of multiple correction fluids, thus improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-20
- Publication Date
- 2026-03-17
AI Technical Summary
In existing technologies, the transfer efficiency of correction fluid is low. The single-gripper method can only transfer one item at a time, resulting in low production efficiency.
A correction fluid transfer device is designed, including a carrier, a first driving mechanism, a second driving mechanism, and a clamping mechanism. Through the cooperation of multiple clamping components and rotating components, multiple correction fluids can be transferred and their orientation adjusted simultaneously. The misalignment mechanism is used to place the correction fluids in a parallel position in the feeding and conveying channel of the labeling machine.
It enables the simultaneous transfer of two correction fluids to the labeling machine's feeding and conveying channel, significantly improving production efficiency.
Smart Images

Figure CN224000587U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of correction fluid production and manufacturing technology, specifically to a correction fluid transfer device. Background Technology
[0002] Correction fluid is widely accepted by primary and secondary school students in modern society, as they often make mistakes in their writing, and correction fluid provides them with convenience. In the manufacturing process of correction fluid, after the filling machine is assembled, the correction fluid needs to be discharged and labeled. Because the labeling machine's feeding and conveying channel is a single station, a single gripper is usually used to pick up the correction fluid after assembly and then place it into the labeling machine's feeding and conveying channel, thus connecting the two steps. However, using a single gripper method can only transfer one piece of correction fluid at a time, resulting in low efficiency. Utility Model Content
[0003] To address the shortcomings of existing technologies, a correction fluid transfer device is provided.
[0004] To achieve the above objectives, the present invention provides a device comprising a carrier, a first driving mechanism, a second driving mechanism, and a clamping mechanism. The carrier includes a support plate, two sets of bearing components and two sets of rotating components. The two sets of bearing components are spaced apart on the support plate, and the two sets of rotating components are located on the support plate, with each rotating component located at the end of a bearing component. The first driving mechanism is mounted on the support plate, and its driving end is connected to the second driving mechanism. The clamping mechanism includes a connecting plate, two sets of clamping components, a set of misalignment mechanisms, and at least one set of first cylinder grippers. At least two sets of clamping components are spaced apart on the connecting plate, and each clamping component corresponds to a bearing component. The connecting plate is connected to the second driving mechanism. The misalignment mechanism is connected to the connecting plate and is located at the end of a clamping component, corresponding to a rotating component. The first cylinder grippers are located on the connecting plate and correspond to another rotating component.
[0005] According to one embodiment of the present invention, the first driving mechanism includes a first driving motor and a support frame. The first driving motor is mounted on the lower surface of the support plate, the driving end of the first driving motor passes through the support plate and is connected to the support frame, and the end of the support frame away from the first driving motor is connected to a connecting plate.
[0006] According to one embodiment of the present invention, the first driving mechanism further includes a first guide assembly. The first guide assembly includes two guide frames, two first slide rails and two first sliders. The two guide frames are spaced apart on the upper surface of the support plate. Each first slide rail is arranged vertically on a guide frame. Each first slider is connected to one side of the support frame and is slidably connected to the first slide rail.
[0007] According to one embodiment of the present invention, the second driving mechanism includes a fixed plate, a second driving motor, and a second guide assembly. The fixed plate is disposed at the driving end of the first driving mechanism, the second driving motor is connected to one side of the fixed plate, and the driving end of the second driving motor is connected to a connecting plate. The second guide assembly includes a second slide rail and two second sliders. The second slide rail is connected to the upper surface of the fixed plate, and the two second sliders are spaced apart on the lower surface of the connecting plate. Each second slider is slidably connected to the second slide rail.
[0008] According to one embodiment of the present invention, each set of bearing components includes multiple first bearing seats, which are arranged at intervals along the horizontal direction on the support plate, and each first bearing seat is provided with a bearing groove.
[0009] According to one embodiment of the present invention, each clamping assembly includes a plurality of second cylinder grippers, which are arranged at intervals in the horizontal direction and connected to the side of the connecting plate facing the support plate.
[0010] According to one embodiment of the present invention, each set of rotating components includes a rotating cylinder and a second bearing seat. The second bearing seat is rotatably connected to the upper surface of the support plate and is located at the end of a bearing component. The rotating cylinder is located on the lower surface of the support plate. The driving end of the rotating cylinder passes through the support plate and is connected to the second bearing seat.
[0011] According to one embodiment of the present invention, the misalignment mechanism includes a fixed frame, a drive cylinder, a connecting block, a third slide rail, a third slider, and a third cylinder gripper. One end of the fixed frame is connected to a connecting plate. The drive cylinder is mounted on the fixed frame. The drive end of the drive cylinder is connected to the connecting block. The third cylinder gripper is connected to the connecting block and corresponds to a rotating component. The third slide rail is connected to the fixed frame. One end of the third slider is connected to the connecting block, and the third slider is slidably connected to the third slide rail.
[0012] According to one embodiment of the present invention, it further includes a support base, one end of which is connected to the lower surface of the support plate.
[0013] The beneficial effect of this utility model is that, through the cooperation of the first driving mechanism, the second driving mechanism and the two sets of clamping components, the discharge port of the correction fluid assembly machine is clamped in the carrier each time, and the correction fluid in the carrier is further moved so that the correction fluid is gradually moved into the two rotating components. The correction fluid is driven to turn by the two sets of rotating components, and then the correction fluid in the two sets of rotating components is clamped by the first cylinder gripper and the misalignment mechanism respectively, so that the two correction fluids are placed in an arranged posture on the feeding and conveying channel of the labeling machine. This realizes that two correction fluids can be transferred to the feeding and conveying channel of the labeling machine at the same time each time, which effectively improves the work efficiency. Attached Figure Description
[0014] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings:
[0015] Figure 1 This is a perspective view of the correction fluid transfer device in the embodiment;
[0016] Figure 2 This is another perspective view of the correction fluid transfer device in the embodiment;
[0017] Figure 3 This is a schematic diagram of the clamping mechanism in the embodiment;
[0018] Figure 4 This is an exploded view of the misalignment mechanism in the embodiment;
[0019] Figure 5 This is a schematic diagram of the first drive mechanism in the embodiment.
[0020] Explanation of reference numerals in the attached figures
[0021] 1. Carrier; 11. Support plate; 12. Bearing assembly; 121. First bearing seat; 1210. Bearing groove; 13. Rotating assembly; 131. Rotating cylinder; 132. Second bearing seat; 2. First drive mechanism; 21. First drive motor; 22. Support frame; 23. First guide assembly; 231. Guide frame; 232. First slide rail; 233. First slider; 3. Second drive mechanism; 31. Fixing plate; 32. Second drive motor; 33. Second guide assembly; 331. Second slide rail; 332. Second slider; 4. Clamping mechanism; 41. Connecting plate; 42. Clamping assembly; 421. Second cylinder gripper; 43. Misalignment mechanism; 431. Fixing frame; 432. Drive cylinder; 433. Connecting block; 434. Third slide rail; 435. Third slider; 436. Third cylinder gripper; 44. First cylinder gripper; 5. Support seat. Detailed Implementation
[0022] The following drawings will disclose several embodiments of this utility model. For clarity, many practical details will be described in the following description. However, it should be understood that these practical details should not be used to limit this utility model. That is, in some embodiments of this utility model, these practical details are not essential. In addition, for the sake of simplicity, some conventional structures and components will be shown in the drawings in a simple schematic manner.
[0023] Furthermore, in this utility model, the use of terms such as "first" and "second" is for descriptive purposes only and does not specifically refer to any order or sequence, nor is it intended to limit the utility model. They are merely used to distinguish components or operations described with the same technical terms and should not be construed as indicating or implying their relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the technical solutions of various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. If the combination of technical solutions is contradictory or impossible to implement, such a combination should be considered non-existent and not within the scope of protection claimed by this utility model.
[0024] Please refer to Figures 1-3 , Figure 1 This is a perspective view of the correction fluid transfer device. Figure 2 This is another perspective view of the correction fluid transfer device. Figure 3 This is a schematic diagram of the clamping mechanism. This example provides a correction fluid transfer device, which includes a carrier 1, a first drive mechanism 2, a second drive mechanism 3, and a clamping mechanism 4.
[0025] The carrier 1 includes a support plate 11, two sets of bearing assemblies 12, and two sets of rotating assemblies 13. The two sets of bearing assemblies 12 are spaced apart from each other on the support plate 11, and at least two sets of rotating assemblies 13 are located on the support plate 11, with each rotating assembly 13 located at the end of a bearing assembly 12. The rotating assemblies 13 are used to change the direction of the correction fluid. A first drive mechanism 2 is mounted on the support plate 11, and the drive end of the first drive mechanism 2 is connected to a second drive mechanism 3.
[0026] The carrier 1 is used to load correction fluid. The first drive mechanism 2 drives the second drive mechanism 3 and the clamping mechanism 4 to move along the Z-axis. The second drive mechanism 3 drives the clamping mechanism 4 to move along the X-axis. The clamping mechanism 4 is used to clamp the correction fluid located in the carrier 1. In use, the first drive mechanism 2 drives the second drive mechanism 3 and the clamping mechanism 4 to move along the negative Z-axis. Then, the clamping mechanism 4 picks up the correction fluid. Then, the first drive mechanism 2 drives the second drive mechanism 3 and the clamping mechanism 4 to move upward along the positive Z-axis, so that the correction fluid moves away from the carrier 1. Then, the second drive mechanism 3 drives the clamping mechanism 4 to move along the positive X-axis, so that the clamping mechanism 4 moves the correction fluid relative to the carrier 1 in a horizontal direction. Then, the first drive mechanism 2 drives the second drive mechanism 3 and the clamping mechanism 4 to move downward along the negative Z-axis, and the clamping mechanism 4 releases the correction fluid, so that the correction fluid is placed in the carrier 1. Then, the first drive mechanism 2 drives the second drive mechanism 3 and the clamping mechanism 4 to move upward along the positive Z-axis, and the second drive mechanism 3 drives the clamping mechanism 4 to move along the negative X-axis, causing the clamping mechanism 4 to return to its original position, and then repeating the above steps. This process is repeated multiple times, and through the cooperation of the first drive mechanism 2, the second drive mechanism 3, and the clamping assembly 42, the correction fluid is gradually moved, thereby changing the position of the correction fluid placed in the carrier 1. It should be noted that the positive Z-axis direction is the direction indicated by the Z-axis arrow in the figure, and the negative Z-axis direction is the opposite direction indicated by the Z-axis arrow; the positive X-axis direction is the direction indicated by the X-axis arrow in the figure, and the negative X-axis direction is the opposite direction indicated by the X-axis arrow.
[0027] Specifically, the clamping mechanism 4 includes a connecting plate 41, at least two sets of clamping components 42, at least one set of misalignment mechanisms 43, and at least one set of first cylinder grippers 44. The connecting plate 41 is connected to the second drive mechanism 3. The at least two sets of clamping components 42 are spaced apart on the connecting plate 41, and each set of clamping components 42 corresponds to a bearing component 12. Each set of clamping components 42 is used to clamp the correction fluid of the bearing component 12 it corresponds to. The misalignment mechanism 43 is connected to the connecting plate 41 and is located at the end of one set of clamping components 42. The misalignment mechanism 43 corresponds to a rotating component 13 and is used to clamp the correction fluid of the corresponding rotating component 13 and drive the correction fluid to move relative to the connecting plate 41 along the X-axis. The first cylinder grippers 44 are connected to the connecting plate 41 and are located at the end of another set of clamping components 42. The first cylinder grippers 44 correspond to another rotating component 13. The first clamping mechanism 4 is used to clamp the correction fluid of the corresponding rotating component 13.
[0028] Please refer to Figure 1Each set of support components 12 includes multiple first support seats 121, which are arranged at intervals in the horizontal direction. Each first support seat 121 has a support groove 1210, preferably with a shape that matches the shape of the correction fluid. Each first support seat 121 holds one piece of correction fluid and provides stable support for the correction fluid, allowing it to be placed stably. In actual use, the first drive mechanism 2, the second drive mechanism 3, and the clamping mechanism 4 drive the correction fluid to move sequentially along the multiple first support seats 121.
[0029] Please refer to Figure 1 and Figure 3 Each clamping assembly 42 includes multiple second cylinder grippers 421, which are horizontally spaced on the side of the connecting plate 41 facing the support plate 11. In actual use, the first second cylinder gripper 421 of each clamping assembly 42 corresponds to two stations at the outlet of the correction fluid assembly machine, and each remaining second cylinder gripper 421 corresponds to one first support seat 121. Each second cylinder gripper 421 grips one correction fluid. It should be noted that the number of second cylinder grippers 421 in each clamping assembly 42 is one more than the number of first support seats 121 in each support assembly 12. In this example, each support assembly 12 includes four first support seats 121, and each clamping assembly 42 includes five second cylinder grippers.
[0030] In practical applications, the correction fluid transfer device is placed between the discharge port of the correction fluid assembly machine and the feeding transmission channel of the labeling machine. During use, the second drive mechanism 3 drives the clamping mechanism 4 to move along the negative X-axis, bringing the clamping mechanism 4 closer to the discharge station of the correction fluid assembly machine. Then, the first drive mechanism 2 drives the second drive mechanism 3 and the clamping mechanism 4 to move along the negative Z-axis closer to the discharge station of the correction fluid assembly machine. Simultaneously, the two rotating components 13 rotate. Then, the first second cylinder gripper 421 of each clamping component 42 clamps a correction fluid at the discharge station of the correction fluid assembly machine, while the remaining second cylinder grippers 421 respectively clamp the correction fluid from the corresponding first carrier seat 121 in the carrier. The first cylinder gripper 44 and the misalignment mechanism 43 respectively clamp the correction fluid from a rotating component 13. Then, the first drive mechanism 2 drives the second drive mechanism 3 and the clamping assembly 42 away from the correction fluid assembly mechanism along the positive direction of the Z-axis. The second drive mechanism 3 drives the clamping assembly 42, the first cylinder jaw 44 and the misalignment mechanism 43 to move a distance of one first bearing seat 121 along the positive direction of the X-axis. At the same time, the misalignment mechanism 43 drives the correction fluid to move further along the positive direction of the X-axis, so that the correction fluid of the misalignment mechanism 43 and the correction fluid of the first cylinder jaw 44 are misaligned. Then, the first drive mechanism 2 drives the second drive mechanism 3 and the clamping assembly 42 to approach the carrier 1 along the negative direction of the Z-axis. Then, multiple second cylinder grippers 421, first cylinder grippers 44 and misalignment mechanism 43 simultaneously release the correction fluid they have gripped, so that the correction fluid gripped by the first second cylinder gripper 421 of each clamping assembly 42 is placed on a first support seat 121, and the correction fluid gripped by the remaining second cylinder grippers 421 is placed on the next first support seat 121. The correction fluid gripped by the first cylinder gripper 44 and misalignment mechanism 43 is placed on the feeding transmission channel of the labeling machine.
[0031] This process repeats itself, with the cooperation of the first drive mechanism 2, the second drive mechanism 3, and the clamping assembly 42, clamping the correction fluid from the correction fluid assembly mechanism into the first support seat 121 of the carrier 1. Simultaneously, the correction fluid in the first support seat 121 is sequentially moved to the next position. This process repeats, causing the correction fluid in each set of support assemblies 12 to gradually move to the rotating assembly 13. When the correction fluid on the two sets of support assemblies 12 is placed on the two rotating assemblies 13, the two rotating assemblies 13 drive the two correction fluids placed on them to rotate, causing the two correction fluids to change their orientation. Because the rotation of the rotating assembly 13 changes the orientation of the two correction fluids, and the misalignment mechanism 43 causes the two correction fluids to be misaligned, the two correction fluids change from being parallel to being placed side-by-side on the labeling machine's feeding conveyor channel. This allows for the simultaneous transfer of two correction fluids to the labeling machine's feeding conveyor channel each time, greatly improving operational efficiency.
[0032] Please refer to Figure 1Each set of rotating components 13 includes a rotary cylinder 131 and a second support seat 132. The second support seat 132 is rotatably connected to the upper surface of the support plate 11 and is located at the end of one set of support components 12. The rotary cylinder 131 is connected to the lower surface of the support plate 11, and the driving end of the rotary cylinder 131 passes through the support plate 11 and is connected to the second support seat 132. The rotary cylinder 131 is used to drive the second support seat 132 to rotate relative to the support plate 11. It should be noted that the second support seat 132 is the same as the first support seat 121. When the correction fluid of the two sets of support components 12 moves to the two second support seats 132 respectively, the two sets of rotary cylinders 131 simultaneously drive the two second support seats 132 to rotate along the horizontal plane, and the rotation angle of the two second support seats 132 is the same.
[0033] Please refer to Figure 4 , Figure 4 This is an exploded view of the misalignment mechanism. Further, the misalignment mechanism 43 includes a fixed frame 431, a drive cylinder 432, a connecting block 433, a third slide rail 434, a third slider 435, and a third cylinder gripper 436. One end of the fixed frame 431 is connected to the connecting plate 41, and the drive cylinder 432 is mounted on the fixed frame 431, keeping the drive cylinder 432 fixed relative to the connecting plate 41. The drive end of the drive cylinder 432 is connected to the connecting block 433, and one end of the third cylinder gripper 436 is connected to the connecting block 433, with the third cylinder gripper 436 also connected to the drive end of the drive cylinder 432. The third slide rail 434 is connected to the fixed frame 431, and one end of the third slider 435 is connected to the connecting block 433, with the third slider 435 slidably connected to the third slide rail 434. In use, the drive end of the drive cylinder 432 drives the connecting block 433 to move horizontally, and the connecting block 433 simultaneously moves the third cylinder gripper 436. At the same time, the third cylinder gripper 436 drives the third slider 435 to slide relative to the third slide rail 434, so that the third cylinder gripper 436 moves smoothly.
[0034] In actual use, when the first drive mechanism 2 drives the second drive mechanism 3 and the clamping mechanism 4 to move in the negative direction of the Z-axis, the third cylinder gripper 436 grabs the correction fluid located on the rotating assembly 13. Then, the first drive mechanism 2 drives the second drive mechanism 3 and the clamping mechanism 4 to move in a square direction along the Z-axis. After that, the second drive mechanism 3 drives the clamping mechanism 4 to move in the positive direction of the X-axis. At the same time, the drive cylinder 432 drives the connecting block 433 and the third cylinder gripper 436 to move in the positive direction of the X-axis, so that the third cylinder gripper 436 moves further in the positive direction of the X-axis relative to the connecting plate 41, thus causing the third cylinder gripper 436 to be misaligned with the first cylinder gripper 44. Then, the first drive mechanism 2 drives the second drive mechanism 3 and the clamping mechanism 4 to move along the negative Z-axis. The two sets of clamping components 42, the first cylinder jaw 44 and the third cylinder jaw 436 release the correction fluid. Then, the first drive mechanism 2 drives the second drive mechanism 3 and the clamping mechanism 4 to move along the positive Z-axis. At the same time, the second drive mechanism 3 drives the clamping mechanism 4 to move along the negative X-axis, while the drive cylinder 432 drives the connecting block 433 and the third cylinder jaw 436 to move and reset along the negative X-axis.
[0035] Please refer to Figure 1 and Figure 5 , Figure 5 This is a schematic diagram of the first drive mechanism. Further, the first drive mechanism 2 includes a first drive motor 21 and a support frame 22. The first drive motor 21 is mounted on the bottom of the support plate 11, and its drive end passes through the support plate 11 and is connected to the support frame 22. The end of the support frame 22 away from the first drive motor 21 is connected to the connecting plate 41 of the second drive mechanism 3. In use, the drive end of the first drive motor 21 drives the support frame 22 to move vertically up and down, while simultaneously, the support frame 22 drives the second drive mechanism 3 to move vertically up and down.
[0036] Furthermore, the first drive mechanism 2 also includes a first guide assembly 23, which includes two guide frames 231, two first slide rails 232, and two first sliders 233. The two first slide rails 232 are spaced apart on the upper surface of the support plate 11 and are located on one side of the two bearing components 12. Each first slide rail 232 is vertically connected to one guide frame 231, and the two first slide rails 232 are arranged opposite each other. Each first slider 233 is connected to one side of the support frame 22, and each first slider 233 is slidably connected to one first slide rail 232. In actual use, the first drive motor 21 drives the support frame 22 to move vertically, and the first sliders 233 located on both sides of the support frame 22 move relative to the first slide rails 232. The first slide rails 232 and the first sliders 233 provide guidance for the movement of the support frame 22, ensuring stable movement of the support frame 22.
[0037] Please refer to Figure 2 The second driving mechanism 3 includes a fixed plate 31, a second driving motor 32, and a second guide assembly 33. The fixed plate 31 is located at the driving end of the first driving mechanism 2, and the second driving motor 32 is connected to one side of the first driving mechanism 2. The driving end of the second driving motor 32 is connected to the connecting plate 41. The second guide assembly 33 includes a second slide rail 331 and two second sliders 332. The second slide rail 331 is connected to the upper surface of the fixed plate 31, and the two second sliders 332 are spaced apart on the lower surface of the connecting plate 41 and are slidably connected to the second slide rail 331. The second guide assembly 33 provides support and guidance for the clamping mechanism 4. In use, the driving end of the second driving motor 32 drives the connecting plate 41 to move horizontally, and the connecting plate 41 simultaneously drives the two sets of clamping assemblies 42, the misalignment mechanism 43, and the first cylinder gripper 44 to move. During movement, the two second sliders 332 follow the connecting plate 41 and move along the second slide rail 331.
[0038] Please refer to Figure 1 Furthermore, the correction fluid transfer device also includes a support base 5. In use, one end of the support base 5 is connected to the lower surface of the support plate 11, and the other end can be mounted on the machine base, so that the correction fluid transfer device is set on the machine base.
[0039] In summary, through the cooperation of the first drive mechanism 2, the second drive mechanism 3, and the two sets of clamping components 42, the correction fluid assembly machine outlet is clamped in the carrier 1 each time, and the correction fluid in the carrier 1 is further moved so that the correction fluid gradually moves to the two rotating components 13. The correction fluid is then driven to turn by the two sets of rotating components 13, and then the correction fluid in the two sets of rotating components 13 is clamped by the first cylinder gripper 44 and the misalignment mechanism 43 respectively, so that the two correction fluids are placed in an arranged position on the feeding transmission channel to the labeling machine. This achieves the simultaneous transfer of two correction fluids to the feeding transmission channel of the labeling machine each time, effectively improving the work efficiency.
[0040] The above description is merely an embodiment of this utility model and is not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principle of this utility model should be included within the scope of the claims of this utility model.
Claims
1. A correction fluid transfer device characterized by, Include: The carrier (1), first drive mechanism (2), second drive mechanism (3) and clamping mechanism (4), the carrier (1) includes support plate (11), two groups of bearing components (12) and two groups of rotating components (13), two groups of bearing components (12) are arranged on the support plate (11), two groups of rotating components (13) are arranged on the support plate (11), and each rotating component (13) is located at the end of a bearing component (12); the first drive mechanism (2) is installed on the support plate (11), the driving end of the first drive mechanism (2) is connected with the second drive mechanism (3), the clamping mechanism (4) includes a connecting plate (41), two groups of clamping components (42), a set of staggered mechanism (43) and a set of first cylinder clamping jaw (44), at least two groups of clamping components (42) are arranged on the connecting plate (41), and each clamping component (42) corresponds to a bearing component (12), the connecting plate (41) is connected with the second drive mechanism (3); the staggered mechanism (43) is connected to the connecting plate (41), and the staggered mechanism (43) is located at the end of a clamping component (42), the staggered mechanism (43) corresponds to a rotating component (13), the first cylinder clamping jaw (44) is arranged on the connecting plate (41), and the first cylinder clamping jaw (44) corresponds to another rotating component (13).
2. The correction fluid transfer device of claim 1, wherein The first drive mechanism (2) includes a first drive motor (21) and a support frame (22), the first drive motor (21) is installed on the lower surface of the support plate (11), the driving end of the first drive motor (21) passes through the support plate (11) and is connected with the support frame (22), and the end of the support frame (22) away from the first drive motor (21) is connected with the connecting plate (41).
3. The correction fluid transfer device of claim 2, wherein The first drive mechanism (2) further includes a first guide component (23), the first guide component (23) includes two guide frames (231), two first sliding rails (232) and two first sliding blocks (233), two guide frames (231) are arranged on the upper surface of the support plate (11), each first sliding rail (232) is arranged in a vertical direction on a guide frame (231), each first sliding block (233) is connected to one side of the support frame (22), and each first sliding block (233) is slidingly connected to the first sliding rail (232).
4. The correction fluid transfer device of claim 1, wherein The second driving mechanism (3) comprises a fixed plate (31), a second driving motor (32) and a second guide assembly (33), the fixed plate (31) is arranged at the driving end of the first driving mechanism (2), the second driving motor (32) is connected to one side of the fixed plate (31), the driving end of the second driving motor (32) is connected with the connecting plate (41), the second guide assembly (33) comprises a second sliding rail (331) and two second sliding blocks (332), the second sliding rail (331) is connected to the upper surface of the fixed plate (31), and the two second sliding blocks (332) are arranged on the lower surface of the connecting plate (41) in a spaced manner, and each second sliding block (332) is in sliding connection with the second sliding rail (331).
5. The correction fluid transfer device of claim 1, wherein Each set of the bearing assembly (12) comprises a plurality of first bearing seats (121), and the plurality of first bearing seats (121) are arranged on the support plate (11) in a spaced manner in the horizontal direction, and a bearing groove (1210) is formed in each first bearing seat (121).
6. The correction fluid transfer device of claim 5, wherein Each set of the clamping assembly (42) comprises a plurality of second cylinder clamping jaws (421), and the plurality of second cylinder clamping jaws (421) are arranged on one side of the connecting plate (41) in a spaced manner and face the support plate (11).
7. The correction fluid transfer device of claim 1, wherein Each set of the rotating assembly (13) comprises a rotating cylinder (131) and a second bearing seat (132), the second bearing seat (132) is rotationally connected to the upper surface of the support plate (11), and the second bearing seat (132) is located at the end of one bearing assembly (12), the rotating cylinder (131) is arranged on the lower surface of the support plate (11), the driving end of the rotating cylinder (131) penetrates through the support plate (11), and the driving end of the rotating cylinder (131) is connected with the second bearing seat (132).
8. The correction fluid transfer device of claim 1, wherein The dislocation mechanism (43) comprises a fixed frame (431), a driving cylinder (432), a connecting block (433), a third sliding rail (434), a third sliding block (435) and a third cylinder clamping jaw (436), one end of the fixed frame (431) is connected with the connecting plate (41), the driving cylinder (432) is mounted on the fixed frame (431), the driving end of the driving cylinder (432) is connected with the connecting block (433), the third cylinder clamping jaw (436) is connected with the connecting block (433), the third cylinder clamping jaw (436) corresponds to one rotating assembly (13), the third sliding rail (434) is connected to the fixed frame (431), one end of the third sliding block (435) is connected with the connecting block (433), and the third sliding block (435) is in sliding connection with the third sliding rail (434).
9. The correction fluid transfer device of claim 1, wherein, The support seat (5) is connected with the lower surface of the support plate (11).