Process equipment for removing residual glue after cutter bar node is coated with silica gel
By designing a residual glue removal process equipment including upper mold and lower mold, and using a longitudinal blade to remove silicone residual glue at the node of the ultrasonic scalpel, the problem of low residual glue removal efficiency in the prior art is solved, and the residual glue removal effect with high efficiency and high quality is achieved.
Patent Information
- Application Number
- CN202510323613.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-19
- Publication Date
- 2025-06-24
AI Technical Summary
In the prior art, the residual silicone glue remaining at the stem node of the ultrasonic scalpel is difficult to remove efficiently, resulting in low use efficiency, high labor burden and difficult to control quality.
A process equipment for removing residual glue after the cutting rod node is designed, including an upper mold and a lower mold. A longitudinal blade is installed on the upper mold, and a rotating groove is provided on the lower mold. By pressing the lower mold, the longitudinal blade abuts the cutting rod. The longitudinal blade is rotated to cut off the residual glue around the cutting rod for one time.
The efficiency and quality of residual glue removal are improved, manual operation is reduced, and production efficiency is improved. The removal time of a single tool rod is shortened to 20S, the daily output is increased by 3 times, the cutout accuracy is increased to 0.1mm, and the pass rate reaches 90%.
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Figure CN120190942A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of auxiliary equipment for tool shank processing, and particularly to a process equipment for removing residual glue after silicone rubber is wrapped around tool shank nodes. Background Art
[0002] An ultrasonic scalpel is a high-frequency electrosurgical device mainly used for operations such as cutting biological tissues and closing blood vessels, and has characteristics such as less bleeding and fast postoperative recovery. After the ultrasonic scalpel is processed, silicone rubber is wrapped around the nodes that generate resonance on the tool shank through a rubber coating process to eliminate resonance during the use of the ultrasonic scalpel and reduce the situation of the ultrasonic scalpel breaking.
[0003] The rubber coating process is generally completed by mold injection. After injection, some flash residues (i.e., excess colloid, hereinafter simply referred to as residual glue) are likely to be generated at the position of the silicone rubber. The generation of residual glue will affect the use of the ultrasonic scalpel, such as parameters such as the vibration mode and resonance frequency of the ultrasonic scalpel tool shank. Therefore, it is necessary to process the residual glue. Usually, the residual glue is processed by a staff member holding a blade to process the residual glue. However, due to the large number of nodes on the ultrasonic tool shank and the vulcanization of the rubber, the adhesion between the residual glue and the tool shank is relatively tight, ultimately resulting in low work efficiency for removing the residual glue, a large labor burden on the staff, and difficult quality control for removing the flash. Summary of the Invention
[0004] In order to efficiently remove the residual glue of the silicone rubber at the tool shank nodes, this application provides a process equipment for removing residual glue after silicone rubber is wrapped around tool shank nodes.
[0005] The process equipment for removing residual glue after silicone rubber is wrapped around tool shank nodes provided by this application adopts the following technical solutions: The process equipment for removing residual glue after silicone rubber is wrapped around tool shank nodes includes a lower mold and an upper mold arranged above the lower mold. A longitudinal blade is installed on the upper mold. A rotating groove is opened on the lower mold. The side wall of the rotating groove is circular arc-shaped. The rotating groove is used to place the tool shank. The cutting edge of the longitudinal blade extends below the upper mold. After the tool shank is placed in the rotating groove, the longitudinal blade can be in contact with the tool shank, and the tool shank can rotate around its own axis.
[0006] By adopting the above technical solutions, when cleaning the residual glue on the tool shank, the tool shank is placed in the rotating groove, and then the upper mold is pressed above the lower mold. At this time, the longitudinal blade is in contact with the tool shank. Rotating the tool shank, the longitudinal blade can cut the residual glue around the tool shank for one week, improving the removal efficiency of the residual glue. At the same time, it avoids the use of tools manually and improves the effect of removing the residual glue.
[0007] Optionally, an installation component is provided on the upper die. The installation component includes a connecting rod and an upper cover plate. The connecting rod is inserted through the longitudinal blade. A connecting groove is provided on the upper die. The connecting rod can be placed horizontally into the connecting groove. The upper cover plate is arranged on the side of the longitudinal blade away from the lower die and is used to apply a force to the longitudinal blade to make it move in the direction close to the lower die.
[0008] By adopting the above technical solution, the connecting rod is inserted through the longitudinal blade and then placed in the connecting groove, so that the displacement of the blade in the vertical direction can be limited. The upper cover plate is arranged above the longitudinal blade and presses against the blade. The longitudinal blade is fixed under the action of the connecting block and the upper cover plate.
[0009] Optionally, a connecting block is provided between the upper die and the lower die. One side of the connecting block is fixed on the upper die, and the other side extends in the direction close to the lower die. An arc-shaped rotating surface is provided on the side of the connecting block close to the lower die. A matching groove is provided on the lower die corresponding to the rotating surface, and the rotating surface is rotationally matched in the matching groove.
[0010] By adopting the above technical solution, a certain distance is provided between the upper die and the lower die through the connecting block. At the same time, by using the rotational fit between the rotating surface and the mating surface, the upper die can tilt while being subjected to pressure, thereby driving the longitudinal blade close to the lower die and further pressing against the tool bar, improving the removal effect of the reserved flash.
[0011] Optionally, a floating degumming component is provided on the lower die. The floating degumming component includes a transverse blade. The cutting edge of the transverse blade is perpendicular to the longitudinal blade, and the cutting edge of the transverse blade can abut against the tool bar.
[0012] By adopting the above technical solution, the transverse blade cooperates with the longitudinal blade. On the one hand, it can clean the residual glue on the tool bar in a large area. On the other hand, it can make the cut neat after removing the residual glue and improve the removal effect of the residual glue.
[0013] Optionally, the floating degumming component further includes an elastic member. The transverse blade is slidably connected to the lower die along the radial direction of the rotating groove. The elastic member is installed on the lower die and is used to apply a force to the transverse blade to make it move in the direction close to the rotating groove.
[0014] By adopting the above technical solution, under the action of the elastic member, the transverse blade can always apply a certain force to the tool bar, improving the effect of removing residual glue.
[0015] Optionally, it further includes a hand wheel. A slot is provided on the hand wheel, and the end of the tool bar can be inserted into the slot.
[0016] By adopting the above technical solution, the tool shank is inserted into the slot to realize the connection between the handwheel and the tool shank, facilitating the operator to rotate the tool shank.
[0017] Optionally, a locking screw is provided on the handwheel. The locking screw is threadedly connected to the handwheel. Rotating the locking screw can make the locking screw abut against the tool shank.
[0018] By adopting the above technical solution, the locking screw abuts against the tool shank, and under the action of frictional force, the tool shank is fixed, preventing the tool shank from disengaging from the handwheel and improving the connection stability between the two.
[0019] Optionally, a clamping assembly is provided on the handwheel. The clamping assembly includes a locking ring. The locking ring includes a sliding ring and a locking piece. An annular groove is provided on the side wall of the slot. The sliding ring is slidably arranged in the annular groove. One side of the locking piece is connected to the sliding ring. A driving surface is provided on the side wall of the annular groove. The driving surface abuts against the locking piece. Sliding the sliding ring, the driving surface can drive the locking piece to bend towards the inside of the slot.
[0020] By adopting the above technical solution, sliding the sliding ring causes the locking piece to bend close to and abut against the tool shank, realizing the fixation of the tool shank.
[0021] Optionally, the clamping assembly further includes a driving ring. The driving ring is threadedly connected to the sliding ring and is rotatably connected to the handwheel. Rotating the driving ring can drive the sliding ring to move.
[0022] By adopting the above technical solution, the driving ring connected by threads is used to drive the sliding ring. At the same time, the self-locking property of the threads can be used to limit the sliding ring, improving the stability after the locking piece abuts against the tool shank.
[0023] Optionally, a plurality of locking pieces are evenly spaced along the axis of the sliding ring.
[0024] By adopting the above technical solution, multiple locking pieces fix the tool shank from different directions, improving the stability after the tool shank is fixed.
[0025] In summary, the present application has the following beneficial technical effects: The upper die and the lower die are provided, and a longitudinal blade is fixed on the upper die. A rotating groove for limiting the tool shank is opened on the lower die. After the upper die is pressed on the lower die, rotating the tool shank can quickly clean the residual glue on the tool shank, improving the efficiency of cleaning the residual glue and ensuring the effect of cleaning the residual glue; The efficiency improvement information after adopting the device in the present application is shown in the following table: Manual degumming Degumming by the degumming process equipment for residual glue Time required for degumming with a single tool shank 90S 20S Daily output 300 1200 Cutting accuracy 0.8mm 0.1mm Qualified rate 60% 90% Combined with the chart, it can be concluded that: the time required for a single tool shank to remove glue is shortened to 20S, up to 1200 per person per day, the daily output is increased by 3 times, at the same time, the incision accuracy is up to 0.1mm, and the qualified rate is increased to 90%. Overall, the efficiency is increased by about 5-6 times or more. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 is a schematic diagram of the overall structure of the first embodiment of the present application.
[0027] Figure 2 is a schematic diagram of the lower die structure of the first embodiment of the present application.
[0028] Figure 3 is a schematic diagram of the upper die structure of the first embodiment of the present application.
[0029] Figure 4 is a schematic diagram of the structure of the floating glue removal component of the first embodiment of the present application.
[0030] Figure 5 is a schematic diagram of the clamping component structure of the second embodiment of the present application.
[0031] Figure 6 is of the second embodiment of the present application Figure 5 enlarged view of part A.
[0032] Reference numerals: 1, upper die; 11, longitudinal blade; 12, connecting hole; 13, connecting groove; 2, lower die; 21, rotating groove; 22, mounting groove; 3, mounting component; 31, connecting rod; 32, upper cover plate; 33, pressing groove; 34, gasket; 4, connecting block; 41, rotating surface; 42, mating groove; 5, floating glue removal component; 51, transverse blade; 52, elastic member; 53, sliding groove; 54, elastic groove; 55, picking and placing groove; 56, lower cover plate; 6, handwheel; 61, slot; 62, locking screw; 7, clamping component; 71, clamping ring; 711, sliding ring; 712, locking piece; 72, driving surface; 73, annular groove; 74, driving ring. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0033] The following is a further detailed description of the present application in conjunction with the attached Figures 1 - 6 drawings.
[0034] The embodiment of the present application discloses a process equipment for removing residual glue after the knife bar node is wrapped with silica gel. Embodiment 1
[0035] Refer to Figure 1 and Figure 2, the process equipment for removing residual glue after the tool shank node is wrapped with silica gel includes an upper die 1 and a lower die 2. A longitudinal blade 11 is provided on the upper die 1. The upper die 1 is arranged above the lower die 2. A rotating groove 21 is provided on the side of the lower die 2 close to the upper die 1, and the side wall of the rotating groove 21 is an arc surface with an axis parallel to the horizontal. The tool shank can be placed in the rotating groove 21, and the side wall of the tool shank can be attached to the rotating groove 21. The longitudinal blade 11 corresponds to the position on the tool shank where the glue is to be removed (i.e., at the node on the tool shank, and this position is coated with silica gel), and the longitudinal blade 11 extends below the upper die 1 and can abut against the tool shank. During the glue removal process, pressure is applied to the upper die 1, so that the longitudinal blade 11 maintains a certain pressure on the tool shank. Under the pressure of the longitudinal blade 11, the tool shank can be blocked from disengaging from the rotating groove 21. At this time, the tool shank is rotated to rotate around its own axis, so that the longitudinal blade 11 can comprehensively scrape the residual glue on the tool shank in the circumferential direction, improving the efficiency of the staff in removing glue and ensuring the effect of removing residual glue at the same time.
[0036] Refer to Figure 1 and Figure 2 , multiple groups of longitudinal blades 11 are arranged at intervals along the axis direction of the rotating groove 21 to correspond to multiple positions on the tool shank where the glue is to be removed. It is convenient to simultaneously remove the glue at multiple positions on the tool shank synchronously, further improving the efficiency of removing glue from the tool shank.
[0037] Refer to Figure 1 and Figure 3 , an installation component 3 is provided on the upper die 1, and the installation component 3 is used to fix the longitudinal blade 11. An installation groove 22 corresponding to the longitudinal blade 11 is opened on the upper die 1. The installation groove 22 runs through in the vertical direction, and an opening is provided on the side wall perpendicular to the ground. The installation component 3 includes a connecting rod 31. A connecting hole 12 corresponding to the connecting rod 31 is opened on the longitudinal blade 11. The connecting rod 31 passes through the connecting holes 12 of multiple longitudinal blades 11 at one time. A connecting groove 13 is opened on the side wall of the upper die 1 corresponding to the opening of the installation groove 22. The connecting rod 31 is installed in the connecting groove 13, and the side wall of the connecting rod 31 abuts against the side wall of the connecting groove 13 parallel to the ground, so as to limit the displacement of multiple longitudinal blades 11 in the vertical direction.
[0038] Refer to Figure 1 and Figure 3, the installation component 3 further includes an upper cover plate 32. A pressing groove 33 is formed on the side of the upper die 1 facing away from the lower die 2. The pressing groove 33 communicates with the installation groove 22. The upper cover plate 32 is embedded in the pressing groove 33 and fixed to the upper die 1 by screws. A gasket 34 is arranged between the upper cover plate 32 and the longitudinal blade 11. Both sides of the gasket 34 are in abutment with the longitudinal blade 11 and the upper cover plate 32 respectively. The upper cover plate 32 applies pressure to the gasket 34, which is then transmitted to the longitudinal blade 11. At the same time, the connecting rod 31 can limit the displacement of the longitudinal blade 11 in the vertical direction. Under the action of the connecting rod 31 and the gasket 34, all-round limitation of the longitudinal blade 11 is achieved. At the same time, when the longitudinal blade 11 is disassembled, under the action of the connecting rod 31, multiple longitudinal blades 11 can be quickly disassembled, improving the replacement efficiency of the longitudinal blade 11.
[0039] To improve the stability of the gasket 34 during use, a pad groove corresponding to the gasket 34 is formed on the upper cover plate 32 to limit the gasket 34, thereby preventing the gasket 34 from moving during use.
[0040] Refer to Figure 2 and Figure 3 , a connecting block 4 is arranged between the upper die 1 and the lower die 2. One side of the connecting block 4 is welded to the upper die 1, and the connecting block 4 is located on one side of the longitudinal blade 11. An arc-shaped rotating surface 41 is arranged on the side of the connecting block 4 away from the upper die 1. The axis of the rotating surface 41 is parallel to the axis of the rotating groove 21. A mating groove 42 corresponding to the connecting block 4 is formed on the side wall of the lower die 2 close to the upper die 1. The side wall of the mating groove 42 is set as an arc-shaped surface that mates with the rotating surface 41. After the upper die 1 and the lower die 2 are in abutment, when pressure is applied to the upper die 1, the whole upper die 1 can rotate, thereby driving the longitudinal blade 11 to approach the tool bar.
[0041] In other embodiments, the connecting block 4 can also be welded to the lower die 2, and a mating groove 42 is correspondingly formed on the upper die 1.
[0042] Refer to Figure 3 and Figure 4 , a floating degumming component 5 is arranged on the lower die 2. The floating degumming component 5 includes a transverse blade 51 and an elastic member 52. A sliding groove 53 communicating with the rotating groove 21 is formed on the lower die 2. The transverse blade 51 is slidably connected to the lower die 2 along the radial direction of the rotating groove 21. An elastic groove 54 is arranged on the side wall of the sliding groove 53. The elastic member 52 is arranged in the elastic groove 54 and is used to apply a force to the transverse blade 51 to make it move in the direction close to the rotating groove 21. In this embodiment, the elastic member 52 is a spring. One end of the spring abuts against the transverse blade 51, and the other end abuts against the side wall of the elastic groove 54, so as to be able to apply a force to the transverse blade 51 to make it move in the direction close to the rotating groove 21.
[0043] Refer to Figure 3 and Figure 4, the transverse blade 51 is perpendicular to the longitudinal blade 11. In this embodiment, the transverse blade 51 is parallel to the axis of the rotating groove 21, and the longitudinal blade 11 is perpendicular to the axis of the rotating groove 21. During the rotation of the tool bar, the longitudinal blade 11 can disconnect the connection between the residual glue and the silicone layer, while the transverse blade 51 can scrape the residual glue on the surface of the tool bar along the surface of the tool bar.
[0044] In other embodiments, it is also possible that the transverse blade 51 is perpendicular to the axis of the rotating groove 21, while the longitudinal blade 11 is parallel to the axis of the rotating groove 21.
[0045] Refer to Figure 3 and Figure 4 , the floating degumming assembly 5 further includes a lower cover plate 56. Openings are provided on one side of the sliding groove 53 and the elastic groove 54 facing away from the ground. The lower cover plate 56 is covered on the openings of the sliding groove 53 and the elastic groove 54 to form a complete groove structure. The lower cover plate 56 is fixed to the lower mold 2 by screws. When the lower cover plate 56 is removed, the transverse blade 51 and the spring are exposed to the outside, facilitating the installation of the transverse blade 51 and the elastic member 52.
[0046] Refer to Figure 3 and Figure 4 , a placement groove 55 is formed on the lower mold 2. The placement groove 55 is located on the side of the lower mold 2 close to the upper mold 1 and communicates with the rotating groove 21. The radius of the placement groove 55 is larger than the radius of the rotating groove 21, enabling the operator to insert a finger into the placement groove 55 to grasp the tool bar, facilitating the removal of the tool bar from the lower mold 2.
[0047] Refer to Figure 2 and Figure 4 , the degumming process equipment for the tool bar node wrapped with silicone also includes a handwheel 6. A slot 61 corresponding to the tool bar is provided on one side of the handwheel 6. The end of the tool bar is inserted into the slot 61. A locking screw 62 with a length direction perpendicular to the tool bar is provided on the handwheel 6. The locking screw 62 is threadedly connected to the handwheel 6. Rotating the locking screw 62 can make the end of the locking screw 62 approach the tool bar and press against the tool bar, thereby realizing the fixation between the handwheel 6 and the tool bar. By shaking the handwheel 6, the tool bar can be driven to rotate, facilitating the operator to rotate the tool bar and further improving the degumming efficiency.
[0048] The processing technology of the degumming process equipment for the tool bar node wrapped with silicone in this embodiment includes the following steps: S1: Process the upper mold; Cut the blank, cut a blank with appropriate dimensions.
[0049] Numerical control machining, fix the blank in a turning and milling machining center through a fixture for turning and milling machining.
[0050] Grinding: Grind the side of the grooving to improve the fitting accuracy between the upper die and the upper cover plate by 0.02 mm. The feed rate in the grinding process is 0.1 mm / s, and the rotational speed is 3000 revolutions per second.
[0051] S2: Upper cover plate processing; Cut the blank and grind the side of the upper cover plate that fits with the grooving.
[0052] S3: Spacer processing; Cut the overall shape of the spacer by wire cutting, and then grind the spacer to improve the accuracy. In the wire cutting step, a fast wire cutting machine can be used for cutting.
[0053] S4: Processing of the transverse blade and the longitudinal blade; Select a hard plate and use wire cutting to cut the overall shape of the transverse blade and the longitudinal blade. Then grind the transverse blade and the longitudinal blade to improve the accuracy. Finally, cut the edges of the transverse blade and the longitudinal blade. A precision grinding machine is used in the process of cutting the edges.
[0054] S5: Lower die processing; Cut the material, and then machine the overall shape of the lower die through a turning and milling machining center. Then drill holes and machine threads through a drill.
[0055] S6: Purchase of standard parts; Springs (model: φ6*13.5) and connecting rods (model: φ8*75) in this embodiment are standard parts and can be directly purchased.
[0056] The sequence of the above steps can be adjusted.
[0057] The implementation principle of the residual glue removal process equipment for the tool bar node wrapped with silica gel in the embodiment of the present application is as follows: During the process of removing the residual glue from the tool bar, the tool bar is embedded in the rotating groove 21. Align the upper die 1 with the lower die 2. At this time, both the transverse blade 51 and the longitudinal blade 11 are in contact with the side wall of the tool bar. As the tool bar rotates, the transverse blade 51 and the longitudinal blade 11 scrape the residual glue on the tool bar comprehensively, realizing the rapid removal of the residual glue on the tool bar. Embodiment 2
[0058] Refer to Figure 5 and Figure 6, the difference between this embodiment and Embodiment 1 lies in the different fixing method between the tool shank and the handwheel 6. In this embodiment, a clamping assembly 7 is arranged in the slot 61, and the clamping assembly 7 includes a clamping ring 71. The clamping ring 71 is of an annular structure, and an annular groove 73 is formed on the side wall of the slot 61. The clamping ring 71 includes a sliding ring 711 and a locking piece 712. The sliding ring 711 is coaxially arranged in the annular groove 73 and can slide along the length direction of the slot 61. The locking piece 712 is of an arc-shaped plate structure and is made of an elastic material. The locking piece 712 is coaxial with the slot 61, and one side is welded to the sliding ring 711. A driving surface 72 is arranged on the side wall of the annular groove 73 close to the locking piece 712, and the diameter of the driving surface 72 gradually decreases from the side close to the sliding ring 711 to the side far from the sliding ring 711 along the axial direction of the annular groove 73. The outer side wall of the locking piece 712 abuts against the driving surface 72. Slide the sliding ring 711 to drive the locking piece 712 to approach the driving surface 72. Under the action of the driving surface 72, the locking piece 712 can be driven to bend towards the direction close to its own axis, so as to enable the locking piece 712 to tightly press the tool shank, realizing the connection between the handwheel 6 and the tool shank.
[0059] Refer to Figure 5 and Figure 6 , in order to improve the stability of fixing the tool shank, a plurality of locking pieces 712 are evenly spaced along the circumferential direction of the sliding ring 711, and 4 are set in this embodiment.
[0060] Refer to Figure 5 and Figure 6 , the clamping assembly 7 further includes a driving ring 74. The driving ring 74 is coaxially arranged with the sliding ring 711, and the driving ring 74 is rotatably connected to the handwheel 6 around its own axis. The driving ring 74 is threadedly connected to the sliding ring 711, and rotating the driving ring 74 can drive the sliding ring 711 to move.
[0061] Refer to Figure 5 and Figure 6 , the clamping assembly 7 further includes a driving member for driving the driving ring 74 to rotate. In this embodiment, the driving member is a motor. The housing of the motor is fixed on the handwheel 6, and a gear is sleeved on the output shaft of the motor. A tooth groove meshing with the gear is formed on the outer side wall of the driving ring 74 corresponding to the gear, so that the rotation of the output shaft of the motor can drive the driving ring 74 to rotate, realizing the automatic driving of the sliding ring 711.
[0062] The implementation principle of the residual glue removal process equipment for the tool shank node of the embodiment of the present application after wrapping with silica gel is as follows: The sliding ring 711 slides, and multiple locking pieces 712 on the sliding ring 711 can tightly press the tool shank from different positions, so as to fix the tool shank in all directions.
[0063] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereby. Therefore, all equivalent changes made according to the structure, shape, and principle of the present application shall be covered within the protection scope of the present application.
Claims
1. The equipment for removing residual glue after the knife bar node is coated with silica gel, characterized in that: The invention comprises a lower die (2) and an upper die (1) arranged above the lower die (2); a longitudinal blade (11) is mounted on the upper die (1); a rotation groove (21) is provided on the lower die (2); a side wall of the rotation groove (21) is in the shape of an arc; the rotation groove (21) is used to place a knife bar; the blade of the longitudinal blade (11) extends to below the upper die (1); after the knife bar is placed in the rotation groove (21), the longitudinal blade (11) can abut against the knife bar, and the knife bar can rotate around its own axis.
2. The equipment for removing residual glue after the knife bar node is coated with silica gel according to claim 1, characterized in that: The upper die (1) is provided with a mounting assembly (3), the mounting assembly (3) comprising a connecting rod (31) and an upper cover plate (32), the connecting rod (31) being inserted into the longitudinal blade (11), the upper die (1) being provided with a connecting groove (13), the connecting rod (31) being capable of being inserted into the connecting groove (13) in a horizontal direction, and the upper cover plate (32) being provided on a side of the longitudinal blade (11) away from the lower die (2), and being used for applying a force to the longitudinal blade (11) to cause it to move in a direction close to the lower die (2).
3. The equipment for removing residual glue after the knife bar node is coated with silica gel according to claim 2, characterized in that: A connecting block (4) is provided between the upper die (1) and the lower die (2); one side of the connecting block (4) is fixed on the upper die (1), and the other side extends in a direction close to the lower die (2); a circular arc-shaped rotating surface (41) is provided on the side surface of the connecting block (4) close to the lower die (2); a matching groove (42) is provided on the lower die (2) corresponding to the rotating surface (41); and the rotating surface (41) is rotatably matched in the matching groove (42).
4. The equipment for removing residual glue after the knife bar node is coated with silica gel according to claim 3, characterized in that: The lower mold (2) is provided with a floating glue removal component (5), the floating glue removal component (5) comprising a transverse blade (51), the blade of the transverse blade (51) being perpendicular to the longitudinal blade (11), and the blade of the transverse blade (51) being capable of abutting against a blade rod.
5. The equipment for removing residual glue after the knife bar node is coated with silica gel according to claim 4, characterized in that: The floating glue removal assembly (5) further comprises an elastic member (52), the transverse blade (51) is radially slidably connected to the lower die (2) along the rotation groove (21), and the elastic member (52) is mounted on the lower die (2) to apply a force to the transverse blade (51) to move it in a direction close to the rotation groove (21).
6. The equipment for removing residual glue after the knife bar node is coated with silica gel according to claim 3, characterized in that: It also comprises a hand wheel (6), wherein the hand wheel (6) is provided with a slot (61), and the end of the knife rod can be inserted into the slot (61).
7. The equipment for removing residual glue after the knife bar node is coated with silica gel according to claim 6, characterized in that: The hand wheel (6) is provided with a locking screw (62), the locking screw (62) being threadedly connected to the hand wheel (6), and the locking screw (62) can be rotated to make the locking screw (62) press against the knife rod.
8. The equipment for removing residual glue after the knife bar node is coated with silica gel according to claim 6, characterized in that: The hand wheel (6) is provided with a clamping assembly (7), the clamping assembly (7) comprising a locking ring, the locking ring comprising a sliding ring (711) and a locking plate (712), an annular groove (73) is provided on the side wall of the slot (61), the sliding ring (711) is slidably arranged in the annular groove (73), one side of the locking plate (712) is connected to the sliding ring (711), a driving surface (72) is provided on the side wall of the annular groove (73), the driving surface (72) is in contact with the locking plate (712), and the sliding ring (711) is slid, so that the driving surface (72) can drive the locking plate (712) to bend toward the inside of the slot (61).
9. The equipment for removing residual glue after the knife bar node is coated with silica gel according to claim 8, characterized in that: The clamping assembly (7) further comprises a driving ring (74), wherein the driving ring (74) is threadedly connected to the sliding ring (711), and the driving ring (74) is rotatably connected to the hand wheel (6), and rotating the driving ring (74) can drive the sliding ring (711) to move.
10. The equipment for removing residual glue after the knife bar node is coated with silica gel according to claim 9, characterized in that: A plurality of locking sheets (712) are evenly spaced along the axis of the sliding ring (711).