A sealing element cutting and processing device and a processing method thereof

By designing the support barrel and cutting assembly on the rubber tube workpiece, the rotation of the compression roller and the support barrel can achieve uniform cutting of the rubber tube, solving the problem of different sealing ring thicknesses and improving the quality of the sealing ring.

CN119526499BActive Publication Date: 2025-05-13TAIZHOU LIANGHAO ELECTROMECHANICAL EQUIP CO LTD
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Patent Information

Application Number
CN202510104465.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-23
Publication Date
2025-05-13
Estimated Expiration
2045-01-23

AI Technical Summary

Technical Problem

When the rubber tube is cut and molded, the thickness of the sealing ring is different due to its own deformation, which affects the quality of the sealing ring.

Method used

A seal cutting and processing device is designed. By inserting the support barrel in one end of the rubber tube workpiece, and setting a cutting assembly and a pressing roller directly above the support barrel, the downward movement of the pressing roller and the rotation of the support barrel are used to drive the rubber tube workpiece to rotate to achieve uniform cutting.

Benefits of technology

Through this device, the uniformity of the sealing ring can be ensured, and the problem of different thicknesses can be avoided, thereby improving the quality of the sealing ring.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of cutting technology, and specifically to a sealing cutting processing device and a processing method thereof, comprising: a mounting plate, a rubber tube workpiece is arranged on the outer side of the front side of the mounting plate, a support tube is movably inserted into the inner cavity of one end of the rubber tube workpiece, and the inner diameter of the support tube is smaller than the diameter of the rubber tube workpiece, and a plurality of friction patterns distributed in a circular array around its axis are provided on the surface of the support tube; a driving component for driving the support tube to rotate is installed on the back side of the mounting plate; the beneficial effects are: a support tube is inserted into the inner cavity of one end of the rubber tube workpiece, a cutting component is arranged directly above the support tube, pressing rollers are arranged on both sides of the cutting component, and friction patterns are provided on the surface of the support tube to increase the friction between the inner wall of the rubber tube workpiece and the rubber tube workpiece, and the device utilizes the flexibility of the rubber tube workpiece to press the local position of the rubber tube workpiece tightly against the surface of the support tube to ensure that the sealing ring cut by the cutting component is uniform and consistent to avoid affecting the quality.
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Description

Technical Field

[0001] The invention relates to the field of cutting technology, and in particular to a sealing component cutting processing device and a processing method thereof. Background Art

[0002] Rubber seals are a type of rubber product widely used in sealing technology. Rubber is a valuable elastic polymer material with a wide temperature range. When given a small stress in different media, it will produce a large deformation, thereby providing contact pressure, compensating for leakage gaps, and achieving the purpose of sealing.

[0003] In the prior art, a Chinese utility model with a publication number of CN220741266U discloses a cutting device for producing rubber seals, which mainly changes the spacing between a plurality of cutters by adjusting components, thereby cutting rubber seals of different thicknesses.

[0004] However, since the rubber tube itself has a certain flexibility, when the traditional cutting equipment cuts and shapes it, the rubber tube itself will deform, resulting in different thicknesses of the sealing ring after cutting, which affects the quality of the sealing ring. Therefore, the present invention proposes a sealing cutting processing device and a processing method thereof to solve the above problem. Summary of the invention

[0005] The object of the present invention is to provide a sealing cutting and processing device and a processing method thereof, so as to solve the problem in the above background technology that the thickness of each position on the sealing ring after cutting is different due to the deformation of the rubber tube itself during cutting.

[0006] To achieve the above object, the present invention provides the following technical solution: a sealing cutting and processing device, comprising:

[0007] A mounting plate, a rubber tube workpiece is arranged on the outer side of the front side of the mounting plate, a support tube is movably inserted into the inner cavity of one end of the rubber tube workpiece, and the inner diameter of the support tube is smaller than the diameter of the rubber tube workpiece, the support tube is movably connected with the mounting plate, a cutting assembly driven up and down by a clamping cylinder is arranged directly above the support tube, clamping rollers are arranged on both sides of the cutting assembly, a clamping frame for positioning the clamping roller is installed on the outer side of the clamping roller, the clamping frame is fixedly connected to the movable end of the clamping cylinder through a crossbeam, a plurality of annular grooves equidistantly distributed along its axial direction are provided on the surface of the clamping roller, and a plurality of friction patterns distributed in an annular array around its axis are provided on the surface of the support tube;

[0008] A discharge cylinder is fixedly mounted on the back of a mounting plate via a stand, a movable end of the discharge cylinder is plugged into an inner cavity at one end of a support tube and is rotationally connected to the support tube via a bearing, and a driving assembly for driving the support tube to rotate is mounted on the back of the mounting plate.

[0009] Preferably, the driving assembly includes a sliding housing, and a notch is formed on the side surface of the sliding housing. A driving gear is rotatably installed in the inner cavity of the sliding housing. One end of the support cylinder is fixed with an external gear ring, and the diameter of the external gear ring is larger than that of the support cylinder. The external gear ring is attached to the back surface of the mounting plate and is meshed with the driving gear for transmission.

[0010] Preferably, a driving motor for driving the driving gear to rotate is fixed on the surface of the sliding housing. A guiding ring is fixed at the edge of the side surface of the driving gear away from the mounting plate, and the outer side wall of the guiding ring is inclined. A fixed seat is arranged outside the sliding housing, and the fixed seat is fixed to the back surface of the mounting plate. An elastic telescopic rod is fixedly installed on the fixed seat, and the length direction of the elastic telescopic rod is consistent with the diameter direction of the external gear ring, and the movable end of the elastic telescopic rod is fixedly connected to the sliding housing.

[0011] Preferably, the cutting assembly includes a mounting frame, and the mounting frame is in a "C" shape with the opening facing downwards. A scale shaft rod and a guiding shaft rod parallel to each other are fixed between the two ends of the mounting frame. A plurality of cutting knives are arranged below the mounting frame in an equally spaced linear distribution, and an adjusting plate is fixed at the upper end of the cutting knife. Circular holes are formed at both the upper and lower ends of the adjusting plate, and the scale shaft rod and the guiding shaft rod are respectively movably penetrated and connected through the two circular holes.

[0012] Preferably, a magnet block is fixedly installed in the middle of the adjusting plate, and the magnet blocks on two adjacent adjusting plates repel each other. A boss is fixed on the inner wall of one end of the mounting frame, and the boss is attached to one adjusting plate. The other end of the mounting frame is threadedly penetrated and connected with an adjusting member, and one end of the adjusting member abuts against the other adjusting plate.

[0013] Preferably, a connecting cross plate and a lower pressing plate are sequentially arranged above the scale shaft rod from top to bottom. Guide bumps are fixedly arranged at both ends of the connecting cross plate and the lower pressing plate. Guide vertical grooves are formed on the inner walls of both ends of the mounting frame, and the guide bumps are slidably installed in the inner cavity of the corresponding guide vertical grooves and are adapted to them. A pressing spring is fixedly installed between the connecting cross plate and the lower pressing plate, and the movable end of the pressing cylinder movably penetrates through the middle of the mounting frame and is fixedly connected to the connecting cross plate.

[0014] Preferably, guide columns are fixedly installed at both ends of the lower pressing plate, and the guide columns movably penetrate through the ends of the connecting cross plate. An anti-slip layer is bonded to the lower surface of the lower pressing plate. A plurality of tooth grooves are formed on the upper end surface of the adjusting plate in an equally spaced linear distribution along the length direction of the scale shaft rod. A flexible sleeve is sleeved outside the pressing spring.

[0015] Preferably, the other end of the support tube is provided with a chamfer, and a positioning retaining ring is fixed to the inner wall of the support tube. The positioning retaining rings are provided in groups of two, and the two positioning retaining rings in a group are respectively located on both sides of the bearing.

[0016] Preferably, a guide frame is provided on the front of the mounting plate, and the cross-section of the guide frame is in a "V" shape. The rubber tube workpiece is placed in the inner cavity of the guide frame from top to bottom, and a gap is left between the guide frame and the mounting plate. A bracket is fixed on the side of the guide frame, and one end of the bracket is fixed to the front of the mounting plate. A protective cover is provided directly above the rubber tube workpiece, and the cutting assembly and the clamping roller are both located in the inner cavity of the protective cover, a window is provided on the surface of the protective cover, and a through groove is opened on the front of the protective cover, the protective cover is fixed to the front of the mounting plate, a horizontal plate is fixedly installed on the upper surface of the protective cover, and the clamping cylinder is fixedly installed on the horizontal plate.

[0017] A processing method according to the above-mentioned sealing member cutting processing device specifically comprises the following steps:

[0018] Step 1: transport the rubber tube workpiece to a place close to the mounting plate, extend the unloading cylinder and drive the supporting cylinder to insert into the inner cavity of the rubber tube workpiece, start the pressing cylinder to move the cutting assembly and the pressing roller downward until the cutting assembly and the pressing roller are pressed on the surface of the rubber tube workpiece;

[0019] Step 2: The driving assembly drives the support cylinder to rotate, and the support cylinder drives the rubber tube workpiece to rotate through friction. At this time, the cutting assembly and the rubber tube workpiece rotate relative to each other, and the cutting assembly can cut the rubber tube workpiece;

[0020] Step 3: The cut and formed sealing ring is sleeved on the outside of the support tube, and the support tube is driven to separate from the rubber tube workpiece by contracting the unloading cylinder. The sealing ring is blocked by the mounting plate, and the sealing ring and the support tube are respectively located on both sides of the mounting plate. The sealing ring automatically falls under the action of gravity;

[0021] Step 4: Repeat steps 1 to 3 above.

[0022] Compared with the prior art, the present invention has the following beneficial effects:

[0023] The present invention has a support cylinder inserted into the inner cavity of one end of the rubber tube workpiece, a cutting assembly is arranged just above the support cylinder, and pressure rollers are arranged on both sides of the cutting assembly. The pressure rollers move downward to squeeze the rubber tube workpiece, deform it and fit it to the surface of the support cylinder. Friction grooves are provided on the surface of the support cylinder to increase the friction between the rubber tube workpiece and the inner wall of the rubber tube workpiece. When the support cylinder rotates, the rubber tube workpiece can be driven to rotate accordingly, so that the cutting assembly can cut the rubber tube workpiece. The pressure roller is parallel to the support cylinder, and a plurality of annular grooves distributed at equal intervals are provided on the surface of the pressure roller, so as to avoid the rubber tube workpiece from being offset in the axial direction of the support cylinder. The device uses the flexibility of the rubber tube workpiece to press the local position of the rubber tube workpiece tightly against the surface of the support cylinder, so as to ensure that the sealing ring cut and formed by the cutting assembly is uniform and consistent, so as to avoid affecting the quality. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a three-dimensional schematic diagram of the overall structure of the present invention;

[0025] Figure 2 It is a front schematic diagram of the overall structure of the present invention;

[0026] Figure 3 It is a three-dimensional schematic diagram of the overall structure of the present invention from another viewing angle;

[0027] Figure 4 It is a three-dimensional schematic diagram of the support tube structure of the present invention;

[0028] Figure 5 It is a three-dimensional schematic diagram of the structure of the pressure roller of the present invention;

[0029] Figure 6 A half-section schematic diagram of the support tube structure of the present invention;

[0030] Figure 7 It is a three-dimensional schematic diagram of the cutting assembly structure of the present invention;

[0031] Figure 8 This is an exploded schematic diagram of the adjustment plate structure of the present invention;

[0032] Fig. 9 For the present invention Figure 8 A schematic diagram of the structure enlargement in the middle;

[0033] Fig.10 This is a schematic diagram of the structure of connecting the horizontal plate and the lower pressing plate of the present invention;

[0034] Fig.11 It is a schematic diagram of the explosion of the sliding cover structure of the present invention.

[0035] In the figure: 1, mounting plate; 11, guide frame; 2, rubber tube workpiece; 3, support tube; 31, outer gear ring; 32, friction pattern; 33, chamfer; 34, positioning retaining ring; 4, cutting assembly; 41, mounting frame; 411, adjustment member; 412, boss; 413, guide vertical groove; 42, scale shaft; 43, guide shaft; 44, adjustment plate; 441, magnet block; 442, round hole; 443, tooth groove; 45, cutter; 46, connecting rod Connecting cross plate; 461, guide protrusion; 47, lower pressure plate; 471, anti-skid layer; 472, guide column; 48, clamping spring; 481, flexible sleeve; 5, clamping roller; 51, annular groove; 52, clamping frame; 6, unloading cylinder; 61, vertical frame; 62, bearing; 7, clamping cylinder; 8, protective cover; 9, sliding cover; 91, driving gear; 92, guide ring; 93, driving motor; 94, fixed seat; 95, elastic telescopic rod. DETAILED DESCRIPTION

[0036] In order to make the purpose and technical solution of the present invention clearly and completely described, and the advantages more clearly understood, the embodiments of the present invention are further described in detail with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are part of the embodiments of the present invention, rather than all of the embodiments, and are only used to explain the embodiments of the present invention, and are not used to limit the embodiments of the present invention. All other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0037] See also Figures 1 to 11 , the present invention provides a technical solution:

[0038] Embodiment 1, a sealing component cutting and processing device, includes: a mounting plate 1 and a discharge cylinder 6 .

[0039] Specifically, a rubber tube workpiece 2 is arranged outside the front of the mounting plate 1, and a support tube 3 is movably inserted into the inner cavity of one end of the rubber tube workpiece 2, and the inner diameter of the support tube 3 is smaller than the diameter of the rubber tube workpiece 2. Figure 2As shown, the support tube 3 is eccentric to the rubber tube workpiece 2, the upper surface of the support tube 3 is fitted with the upper inner wall of the rubber tube workpiece 2, the support tube 3 is movably connected with the mounting plate 1, and the support tube 3 and the mounting plate 1 can both rotate relative to each other and move relative to each other. When the support tube 3 slides along its own length direction, it can be inserted into the inner cavity of the rubber tube workpiece 2 or separated from the rubber tube workpiece 2. A cutting assembly 4 driven by a clamping cylinder 7 to move up and down is arranged directly above the support tube 3, and the lower end of the cutting assembly 4 is just opposite to the fitting connection between the rubber tube workpiece 2 and the support tube 3. The cutting assembly 4 is mainly used for cutting the rubber tube workpiece 2, and clamping rollers 5 are arranged on both sides of the cutting assembly 4. A clamping frame 52 for positioning the clamping roller 5 is installed on the outer side of the clamping roller 5. The clamping frame 52 is fixedly connected to the movable end of the clamping cylinder 7 through a crossbeam. When the clamping cylinder 7 extends downward, the cutting assembly 4 and the clamping roller 5 move simultaneously. The clamping roller 5 presses down the rubber tube workpiece 2 from both sides of the joint between the rubber tube workpiece 2 and the support tube 3. The rubber tube workpiece 2 itself is flexible and can undergo elastic deformation. Therefore, the rubber tube workpiece 2 can be deformed and increase the fitting area between the support tube 3. When the clamping roller 5 presses the rubber tube workpiece 2, the cutting assembly 4 contacts the rubber tube workpiece 2. At this time, the support tube 3 rotates and drives the rubber tube workpiece 2 to rotate through friction, and the cutting assembly 4 can realize the cutting of the rubber tube workpiece 2.

[0040] In addition, a plurality of annular grooves 51 are provided on the surface of the pressure roller 5 and are distributed at equal intervals along the axial direction thereof. When the pressure roller 5 presses the upper side of the rubber tube workpiece 2 against the surface of the support tube 3, the annular grooves 51 can limit the rubber tube workpiece 2 to prevent the rubber tube workpiece 2 from being displaced in its own axial direction. At the same time, the annular grooves 51 pre-press grooves on the surface of the rubber tube workpiece 2 to facilitate cutting by the cutting assembly 4. In addition, a plurality of friction patterns 32 are provided on the surface of the support tube 3 and are distributed in an annular array around its axis. The setting of the friction patterns 32 can increase the friction force between the support tube 3 and the rubber tube workpiece 2, and ensure that when the support tube 3 rotates, the support tube 3 can drive the rubber tube workpiece 2 to rotate through the friction force.

[0041] Furthermore, the unloading cylinder 6 is fixedly mounted on the back of the mounting plate 1 through a stand 61. The unloading cylinder 6 is concentric with the support tube 3. The movable end of the unloading cylinder 6 is inserted into the inner cavity at one end of the support tube 3 and is rotatably connected to the support tube 3 through a bearing 62. The setting of the unloading cylinder 6 enables the support tube 3 to only rotate around its own axis without positional displacement in its own radial direction. A driving component for driving the support tube 3 to rotate is installed on the back of the mounting plate 1. When the driving component is working, it drives the support tube 3 to rotate, thereby driving the rubber tube workpiece 2 to rotate. When the unloading cylinder 6 is closed, the support tube 3 is rotated. When contracted, the unloading cylinder 6 can drive the support tube 3 to move along its own axial direction through the bearing 62 until the support tube 3 moves to the outside of the back side of the mounting plate 1, and the support tube 3 can be separated from the rubber tube workpiece 2. After the cutting assembly 4 completes the cutting of the rubber tube workpiece 2, the rubber ring obtained by cutting will be sleeved on the outside of the support tube 3. Therefore, the sealing ring can be separated from the support tube 3 by contracting the unloading cylinder 6, and the sealing ring can fall naturally under the action of gravity. After that, the unloading cylinder 6 extends to drive the support tube 3 to reinsert into the inner cavity of the rubber tube workpiece 2, and then the next cutting work can be carried out.

[0042] In order to describe the structure of the driving component in detail, the driving component of the present application includes a sliding cover shell 9, and a notch is opened on the side of the sliding cover shell 9, and the notch is opposite to the support cylinder 3. A driving gear 91 is rotatably installed in the inner cavity of the sliding cover shell 9, and an outer gear ring 31 is fixed to one end of the support cylinder 3 and the diameter of the outer gear ring 31 is larger than the diameter of the support cylinder 3. The outer gear ring 31 fits the back of the mounting plate 1 and the outer gear ring 31 is meshed with the driving gear 91 for transmission. The setting of the outer gear ring 31 is used on the one hand to limit the sliding of the support cylinder 3 to prevent the support cylinder 3 from being separated from the front of the mounting plate 1, and on the other hand, it is meshed with the driving gear 91 and can be driven to rotate by the driving gear 91. Since the outer gear ring 31 and the driving gear 91 are on the public surface, when the unloading cylinder 6 contracts, the support cylinder 3 and the outer gear ring 31 can move synchronously, and the outer gear ring 31 can be separated from the driving gear 91. In other words, the driving gear 91 will not hinder or interfere with the sliding of the support cylinder 3.

[0043] To avoid the partial overlap between the driving gear 91 and the external gear ring 31, which may prevent them from meshing with each other, the present application further has a driving motor 93 fixed on the surface of the sliding housing 9 to drive the rotation of the driving gear 91. A guiding ring 92 is fixed at the edge of the side of the driving gear 91 away from the mounting plate 1. The outer side wall of the guiding ring 92 is inclined. A fixed seat 94 is arranged outside the sliding housing 9, and the fixed seat 94 is fixed to the back of the mounting plate 1. An elastic telescopic rod 95 is fixedly installed on the fixed seat 94. The length direction of the elastic telescopic rod 95 is consistent with the diameter direction of the external gear ring 31, and the movable end of the elastic telescopic rod 95 is fixedly connected to the sliding housing 9. The elastic telescopic rod 95 is internally provided with a spring, and the elastic telescopic rod 95 is always in an extended state, which can be used to press the driving gear 91 outside the external gear ring 31 to ensure that the two are always in a tightly fitting state. When the unloading cylinder 6 contracts to drive the external gear ring 31 to move and错开 from the driving gear 91, the driving gear 91 will move slightly towards the direction close to the support cylinder 3 under the action of the elastic telescopic rod 95. At this time, when the unloading cylinder 6 extends to drive the support cylinder 3 and the external gear ring 31 to reset, there will be a partially overlapping area between the external gear ring 31 and the driving gear 91. The setting of the guiding ring 92 can make the guiding ring 92 contact the external gear ring 31 before the driving gear 91. At this time, the external gear ring 31 contacts the guiding ring 92 and exerts extrusion on its outer side wall, causing the driving gear 91 to move away from the support cylinder 3, and the elastic telescopic rod 95 can be compressed, thereby avoiding the partial overlap between the driving gear 91 and the external gear ring 31 from affecting the movement of the external gear ring 31 close to the mounting plate 1. When the external gear ring 31 moves to fit the back of the mounting plate 1, the external gear ring 31 can be re-engaged with the driving gear 91.

[0044] To perform cutting processing on the rubber tube workpiece 2, the cutting assembly 4 of the present application includes a mounting frame 41. The mounting frame 41 is in a "C" shape with the opening facing downwards. A scale shaft rod 42 and a guiding shaft rod 43 parallel to each other are fixed between the two ends of the mounting frame 41. A plurality of cutting knives 45 are arranged below the mounting frame 41 in an equally spaced linear distribution, and an adjusting plate 44 is fixed to the upper end of the cutting knife 45. Circular holes 442 are opened at both the upper and lower ends of the adjusting plate 44, and the scale shaft rod 42 and the guiding shaft rod 43 respectively pass through and are movably connected to the two circular holes 442. Figure 7 、 Figure 8 和 Fig. 9 As can be seen from the figures shown, the adjusting plate 44 can slide along the length directions of the scale shaft rod 42 and the guiding shaft rod 43, and the scale shaft rod 42 and the guiding shaft rod 43 cooperate to position the adjusting plate 44, so that the adjusting plate 44 can always be kept vertically arranged without tilting and deflection. Therefore, the cutting knives 45 can always coincide with the radial direction of the support cylinder 3. When the support cylinder 3 rotates, the cutting knives 45 can cut the rubber tube workpiece 2, and a plurality of cutting knives 45 can simultaneously cut and form a plurality of sealing rings, thereby improving the cutting processing efficiency.

[0045] In order to adjust the distance between two adjacent adjustment plates 44, the present application also has a magnet block 441 fixedly installed in the middle of the adjustment plate 44, and the magnet blocks 441 on the two adjacent adjustment plates 44 repel each other. Figure 8 and Fig. 9 As shown, two adjacent magnet blocks 441 repel each other, so that the two adjacent adjustment plates 44 always have a tendency to move away from each other, and because the models and performances of the multiple magnet blocks 441 are completely consistent, the spacing between the multiple adjustment plates 44 can be kept consistent. Since the spacing between two adjacent cutters 45 is small, the present device uses a non-contact magnet block 441 to control the spacing between the two adjacent adjustment plates 44. Compared with traditional springs or "X"-shaped frames and other structures, the occupied volume is smaller. A boss 412 is fixed to the inner wall of one end of the mounting frame 41, and the boss 412 is attached to an adjustment plate 44, such as Figure 8 As shown, the boss 412 abuts against the surface of the rightmost adjusting plate 44 to limit its position. An adjusting member 411 is connected to the other end of the mounting frame 41 through a thread. One end of the adjusting member 411 abuts against another adjusting plate 44. The staff can change the position of the leftmost adjusting plate 44 by adjusting the position of the adjusting member 411. With the repulsive force of the magnet block 441, the positions of multiple adjusting plates 44 other than the rightmost adjusting plate 44 can be changed synchronously. The spacing between adjacent multiple adjusting plates 44 is consistent. The adjusting member 411 can be as follows Figure 8 The screw rod and knob shown may also be existing known structures with telescopic functions such as air cylinders and oil cylinders.

[0046] In order to drive the cutter 45 to move downward, the present application also has a connecting horizontal plate 46 and a lower pressure plate 47 arranged in sequence from top to bottom above the scale shaft 42, and both ends of the connecting horizontal plate 46 and the lower pressure plate 47 are fixedly provided with guide protrusions 461, and the inner walls of both ends of the mounting frame 41 are provided with guide vertical grooves 413, and the guide protrusions 461 are slidably installed in the inner cavity of the guide vertical grooves 413 at the corresponding position and adapted thereto, combined with Figure 7 , Figure 8 and Fig.10As shown, the connecting cross plate 46 and the lower pressure plate 47 can only slide up and down along the vertical direction inside the mounting frame 41. A compression spring 48 is fixedly installed between the connecting cross plate 46 and the lower pressure plate 47. The compression spring 48 provides a thrust to push the connecting cross plate 46 and the lower pressure plate 47 away from each other, and the movable end of the compression cylinder 7 moves through the middle of the mounting frame 41 and is fixedly connected to the connecting cross plate 46. The compression cylinder 7 can limit the mounting frame 41 on the one hand to prevent the mounting frame 41 from tilting, and on the other hand, it can push the connecting cross plate 46 downward; when the cutting assembly 4 of the device is in the initial position, the mounting frame 41 will move downward under the action of gravity, so that the scale The shaft rod 42 and the guide shaft rod 43 will move away from the connecting cross plate 46. When the clamping cylinder 7 extends and drives the cutting assembly 4 to move downward as a whole, the cutter 45 first contacts the rubber tube workpiece 2 and is blocked by the support tube 3. At this time, the position of the mounting frame 41 is stable, and the clamping cylinder 7 continues to move downward and drives the connecting cross plate 46 and the lower pressure plate 47 to move downward until the lower pressure plate 47 is pressed on the upper end of the adjusting plate 44 to maintain a stable position, while the connecting cross plate 46 continues to move downward and increases the compression degree of the clamping spring 48. The thrust of the clamping spring 48 on the lower pressure plate 47 acts on the adjusting plate 44, thereby realizing the downward pressure of the cutter 45, so that the cutter 45 can cut the rubber tube workpiece 2.

[0047] In order to prevent the adjustment plate 44 from shifting in position, the present application also has guide posts 472 fixedly installed at both ends of the lower pressure plate 47, and the guide posts 472 movably penetrate the ends of the connecting cross plates 46, and the setting of the guide posts 472 is used to limit the distance between the connecting cross plates 46 and the lower pressure plate 47, and an anti-skid layer 471 is bonded to the lower surface of the lower pressure plate 47, and a plurality of tooth grooves 443 are linearly distributed at equal intervals along the length direction of the scale shaft 42 on the upper end surface of the adjustment plate 44, which are used to increase the contact friction between the lower pressure plate 47 and the adjustment plate 44. After being pressed, the two can remain relatively fixed, avoiding the position displacement of the adjustment plate 44 in the length direction of the scale shaft 42, thereby ensuring that the sizes of the multiple sealing rings obtained by the cutter 45 are more consistent, and when the clamping cylinder 7 contracts and drives the connecting cross plate 46 and the lower pressure plate 47 to move upward, the adjustment plate 44 will be in a state of being away from the lower pressure plate 47 and separated from the lower pressure plate 47 under the action of gravity, so it is easy to adjust its own position. The outer side of the clamping spring 48 is provided with a flexible sleeve 481 which is mainly used to protect the clamping spring 48 to avoid rusting due to long-term use and affecting its service life.

[0048] In order to improve the connection stability between the unloading cylinder 6 and the support tube 3, the present application also has a chamfer 33 provided at the other end of the support tube 3, which can facilitate the support tube 3 to be inserted into the inner cavity of the rubber tube workpiece 2, and a positioning retaining ring 34 is fixed on the inner wall of the support tube 3. The positioning retaining ring 34 is set in two groups, and the two positioning retaining rings 34 of a group are respectively located on both sides of the bearing 62, such as Figure 6 As shown, the positioning retaining ring 34 can be used to position the bearing 62, on the one hand to avoid tilting between the unloading cylinder 6 and the supporting tube 3, and on the other hand to avoid relative displacement between the two.

[0049] In order to transport the rubber tube workpiece 2, the present application also has a guide frame 11 arranged on the front side of the mounting plate 1, and the cross-section of the guide frame 11 is in a "V" shape. The rubber tube workpiece 2 is placed in the inner cavity of the guide frame 11 from top to bottom, and the rubber tube workpiece 2 is transported by an external conveying device and moved in the inner cavity of the guide frame 11. A gap is left between the guide frame 11 and the mounting plate 1. When the rubber tube workpiece 2 is cut, the formed sealing ring is sleeved on the outside of the support tube 3, and the unloading cylinder 6 contracts to drive the support tube 3 to move to the back side of the mounting plate 1. The sealing ring is larger than the support tube 3 in size, so the sealing ring will be blocked by the mounting plate 1 and remain on the front side of the mounting plate 1 until the support tube 3 is completely separated from the sealing ring. The sealing ring can fall from the gap between the guide frame 11 and the mounting plate 1 under the action of gravity. A bracket is fixed on the side of the guide frame 11, and one end of the bracket is fixed to the front side of the mounting plate 1. The bracket is used to fix the guide frame 11.

[0050] In order to protect the cutting assembly 4 and the pressing roller 5, the present application also has a protective cover 8 arranged directly above the rubber tube workpiece 2. The cutting assembly 4 and the pressing roller 5 are both located in the inner cavity of the protective cover 8. The protective cover 8 is used to provide dust protection for the cutting assembly 4 and the pressing roller 5. A window is provided on the surface of the protective cover 8, and a through groove is opened on the front of the protective cover 8. The window allows the staff to observe the inner cavity condition of the protective cover 8. The position of the through groove corresponds to the adjusting member 411. When the adjusting member 411 needs to be manually adjusted, the staff can extend their hands into the inner cavity of the protective cover 8. The protective cover 8 is fixed to the front of the mounting plate 1. A horizontal plate is fixedly installed on the upper surface of the protective cover 8, and the pressing cylinder 7 is fixedly installed on the horizontal plate.

[0051] The present invention also discloses a processing method according to the above-mentioned sealing member cutting processing device, which specifically comprises the following steps:

[0052] Step 1: transport the rubber tube workpiece 2 to the vicinity of the mounting plate 1, extend the unloading cylinder 6 and drive the supporting cylinder 3 to insert into the inner cavity of the rubber tube workpiece 2, start the pressing cylinder 7 to move the cutting assembly 4 and the pressing roller 5 downward until the cutting assembly 4 and the pressing roller 5 are pressed on the surface of the rubber tube workpiece 2;

[0053] Step 2: The support cylinder 3 is driven to rotate by the driving assembly, and the support cylinder 3 drives the rubber tube workpiece 2 to rotate by friction. At this time, the cutting assembly 4 and the rubber tube workpiece 2 rotate relative to each other, and the cutting assembly 4 can cut the rubber tube workpiece 2;

[0054] Step 3: The cut and formed sealing ring is sleeved on the outside of the support tube 3, and the support tube 3 is driven to separate from the rubber tube workpiece 2 by contracting the unloading cylinder 6. The sealing ring is blocked by the mounting plate 1, and the sealing ring and the support tube 3 are respectively located on both sides of the mounting plate 1. The sealing ring automatically falls under the action of gravity;

[0055] Step 4: Repeat steps 1 to 3 above.

[0056] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A sealing cutting and processing device, characterized in that: include: A mounting plate (1), a rubber tube workpiece (2) is provided on the outside of the front of the mounting plate (1), a support cylinder (3) is movably inserted into the inner cavity of one end of the rubber tube workpiece (2), and the inner diameter of the support cylinder (3) is smaller than the diameter of the rubber tube workpiece (2), the support cylinder (3) is movably connected to the mounting plate (1), a cutting assembly (4) driven up and down by a pressing cylinder (7) is provided directly above the support cylinder (3), pressing rollers (5) are provided on both sides of the cutting assembly (4), a pressing frame (52) for positioning the pressing roller (5) is installed on the outside of the pressing roller (5), the pressing frame (52) is fixedly connected to the movable end of the pressing cylinder (7) through a crossbeam, a plurality of annular grooves (51) distributed at equal intervals along its axial direction are provided on the surface of the pressing roller (5), and a plurality of friction patterns (32) distributed in an annular array around its axis are provided on the surface of the support cylinder (3); A discharge cylinder (6), wherein the discharge cylinder (6) is fixedly mounted on the back of the mounting plate (1) via a stand (61), a movable end of the discharge cylinder (6) is plugged into an inner cavity at one end of the support cylinder (3) and is rotatably connected to the support cylinder (3) via a bearing (62), and a drive assembly for driving the support cylinder (3) to rotate is mounted on the back of the mounting plate (1); The support tube (3) is eccentric to the rubber tube workpiece (2), and the upper surface of the support tube (3) is in contact with the upper inner wall of the rubber tube workpiece (2); The pressing roller (5) presses down the rubber tube workpiece (2) from both sides of the joint between the rubber tube workpiece (2) and the support tube (3). The rubber tube workpiece (2) itself is flexible and can undergo elastic deformation, so the rubber tube workpiece (2) can deform and increase the joint area between the rubber tube workpiece (2) and the support tube (3). The driving assembly includes a sliding cover (9), and a notch is provided on the side of the sliding cover (9); a driving gear (91) is rotatably mounted in the inner cavity of the sliding cover (9); an outer gear ring (31) is fixed to one end of the support cylinder (3); the diameter of the outer gear ring (31) is larger than the diameter of the support cylinder (3); the outer gear ring (31) is attached to the back of the mounting plate (1), and the outer gear ring (31) is meshed with the driving gear (91) for transmission; A driving motor (93) for driving the driving gear (91) to rotate is fixed on the surface of the sliding cover (9), a guide ring (92) is fixed on the edge of a side of the driving gear (91) away from the mounting plate (1), and the outer wall of the guide ring (92) is inclined. A fixing seat (94) is provided on the outer side of the sliding cover (9), and the fixing seat (94) is fixed to the back side of the mounting plate (1). An elastic telescopic rod (95) is fixedly mounted on the fixing seat (94), and the length direction of the elastic telescopic rod (95) is consistent with the diameter direction of the outer gear ring (31), and the movable end of the elastic telescopic rod (95) is fixedly connected to the sliding cover (9); The setting of the guiding ring (92) enables it to contact the external gear ring (31) before the driving gear (91). At this time, the external gear ring (31) contacts the guiding ring (92) and exerts extrusion on its outer side wall, causing the driving gear (91) to move away from the support cylinder (3).

2. The seal cutting device according to claim 1, characterized in that: The cutting assembly (4) includes a mounting frame (41). The mounting frame (41) is in a "U" shape with an opening facing downwards. Between the two ends of the mounting frame (41), there are fixed a scale shaft rod (42) and a guiding shaft rod (43) that are parallel to each other. Below the mounting frame (41), there are provided a plurality of cutting blades (45) linearly distributed at equal intervals, and the upper end of the cutting blade (45) is fixed with an adjusting plate (44). Round holes (442) are opened at both the upper and lower ends of the adjusting plate (44), and the scale shaft rod (42) and the guiding shaft rod (43) are respectively movably penetrated and connected through the two round holes (442).

3. The seal cutting device according to claim 2, characterized in that: A magnet block (441) is fixedly installed in the middle of the adjusting plate (44), and the magnet blocks (441) on adjacent two adjusting plates (44) repel each other. A boss (412) is fixed on the inner wall of one end of the mounting frame (41), and the boss (412) is in contact with one adjusting plate (44). The other end of the mounting frame (41) is threadedly penetrated and connected with an adjusting member (411), and one end of the adjusting member (411) abuts against the other adjusting plate (44).

4. The seal cutting device according to claim 3, characterized in that: Above the scale shaft rod (42), a connecting cross plate (46) and a lower pressing plate (47) are sequentially arranged from top to bottom. Guide protrusions (461) are fixedly arranged at both ends of the connecting cross plate (46) and the lower pressing plate (47). Guide vertical grooves (413) are opened on the inner walls of both ends of the mounting frame (41). The guide protrusions (461) are slidably installed in the inner cavity of the corresponding guide vertical grooves (413) and are adapted to them. A pressing spring (48) is fixedly installed between the connecting cross plate (46) and the lower pressing plate (47). The movable end of the pressing cylinder (7) movably penetrates through the middle of the mounting frame (41) and is fixedly connected with the connecting cross plate (46).

5. The sealing member cutting and processing device according to claim 4, characterized in that: Guide columns (472) are fixedly installed at both ends of the lower pressing plate (47), and the guide columns (472) movably penetrate through the ends of the connecting cross plate (46). An anti-slip layer (471) is bonded to the lower surface of the lower pressing plate (47). A plurality of tooth grooves (443) linearly distributed at equal intervals along the length direction of the scale shaft rod (42) are opened on the upper end surface of the adjusting plate (44). A flexible sleeve (481) is sleeved outside the pressing spring (48).

6. The seal cutting device according to claim 1, characterized in that: At the other end of the support cylinder (3), there is provided a chamfer (33). A positioning retaining ring (34) is fixed on the inner wall of the support cylinder (3). Two positioning retaining rings (34) are provided as a group, and the two positioning retaining rings (34) in a group are respectively located on both sides of the bearing (62).

7. The seal cutting device according to claim 1, characterized in that: A guide frame (11) is provided on the front of the mounting plate (1), and the cross section of the guide frame (11) is in a "V" shape. The rubber tube workpiece (2) is placed in the inner cavity of the guide frame (11) from top to bottom, and a gap is left between the guide frame (11) and the mounting plate (1). A bracket is fixed on the side of the guide frame (11), and one end of the bracket is fixed to the front of the mounting plate (1). A protective cover (8) is provided directly above the rubber tube workpiece (2), and the cutting assembly (4) and the pressing roller (5) are both located in the inner cavity of the protective cover (8). A window is provided on the surface of the protective cover (8), and a through groove is opened on the front of the protective cover (8). The protective cover (8) is fixed to the front of the mounting plate (1), and a horizontal plate is fixedly installed on the upper surface of the protective cover (8), and the pressing cylinder (7) is fixedly installed on the horizontal plate.

8. A processing method of the seal cutting device according to any one of claims 1 to 7, characterized in that: The specific steps include: Step 1: transport the rubber tube workpiece (2) to a position close to the mounting plate (1), extend the unloading cylinder (6) and drive the support cylinder (3) to insert into the inner cavity of the rubber tube workpiece (2), start the pressing cylinder (7) to move the cutting assembly (4) and the pressing roller (5) downward until the cutting assembly (4) and the pressing roller (5) are both pressed on the surface of the rubber tube workpiece (2); Step 2: The support cylinder (3) is driven to rotate by the driving assembly, and the support cylinder (3) drives the rubber tube workpiece (2) to rotate by friction, and at this time, the cutting assembly (4) and the rubber tube workpiece (2) rotate relative to each other, and the cutting assembly (4) can cut the rubber tube workpiece (2); Step 3: The cut and formed sealing ring is placed on the outside of the support tube (3), and the support tube (3) is driven to separate from the rubber tube workpiece (2) by the contraction of the unloading cylinder (6). The sealing ring is blocked by the mounting plate (1), and the sealing ring and the support tube (3) are respectively located on both sides of the mounting plate (1). The sealing ring automatically falls under the action of gravity; Step 4. Repeat steps 1 to 3 above.

Citation Information

Patent Citations

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