Corrugating machine tooth shape corrector

By setting a matching structure of tapered shaft and fixed sleeve on the corrugated roll, and using motor drive and precision bearings to achieve coaxial positioning and tooth profile correction of the corrugated roll, the problem of difficult tooth profile correction during corrugated roll installation is solved, thereby improving the forming quality and installation efficiency of corrugated paper.

CN224060609UActive Publication Date: 2026-03-31QINGDAO JINHONGRI PACKAGING MASCH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

In the existing technology, it is difficult to correct the tooth profile of the corrugated roller during installation, which leads to a decline in the quality of corrugated paper forming.

Method used

The system employs a tapered shaft and a fixed sleeve, combined with a motor drive and precision bearings, to achieve coaxial positioning and tooth profile correction of the corrugated rollers. Automatic correction is achieved by monitoring the meshing degree with a detector.

Benefits of technology

It effectively solves the problem of tooth profile alignment during the installation of corrugated rolls, ensuring that the outer teeth of the corrugated rolls are parallel, thereby improving the forming quality and installation efficiency of corrugated paper.

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Abstract

The utility model discloses a corrugating machine tooth shape corrector, and belongs to the technical field of corrugating machines. Comprising a bottom plate, and a supporting plate A is fixedly arranged at the top end of the bottom plate; the two corrugating rollers are arranged up and down, and conical shafts are arranged at the two ends of each corrugating roller; the top plate is fixedly arranged at the top of the bottom plate through a supporting plate A; due to the fact that the conical shafts are arranged at the two ends of the corrugated rollers, when the corrugated rollers are installed, the conical shafts at the two ends are matched with the fixing sleeve A and the fixing sleeve B correspondingly, the shaft ends of the corrugated rollers are horizontally positioned through the fixing sleeve A and the fixing sleeve B, and tooth profiles on the outer sides of the two corrugated rollers are kept parallel after the two corrugated rollers are assembled; the problem that it is difficult to correct the tooth shape during corrugated installation is effectively solved, the shaft ends of the corrugated rollers are positioned during installation, and the effect that the tooth shapes between the two corrugated rollers are conveniently corrected to keep parallel is achieved.
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Description

Technical Field

[0001] This application relates to the field of corrugating machine technology, and more specifically, to a corrugating machine tooth profile corrector. Background Technology

[0002] Corrugating machines press multiple layers of paper into a corrugated shape, forming corrugated cardboard with cushioning properties and compressive strength. This unique structure makes it an ideal packaging material to replace traditional wooden and plastic boxes.

[0003] In related technologies, to solve the problem of inconvenient disassembly and installation of corrugated rollers during use, for example, the prior art patent with publication number CN222610626U provides a corrugating machine for quick roller changing. This device uses an external crane to lift the corrugated roller and align it with the clamping cylinder. After alignment, a motor drives a screw to rotate inside a slide plate, and a linkage slider slides inside the slide plate to push it forward towards the clamping cylinder. This causes one end of the clamping cylinder to contact the circular limiting block, and the clamping block to engage with the clamping groove and the toothed clamping block to engage with the toothed anti-slip groove. This effectively prevents slippage between the corrugated roller and the clamping cylinder, facilitating quick disassembly and installation of the corrugated roller for roller changing, thereby improving the efficiency of roller changing and saving manual labor.

[0004] Although the existing technical solutions described above can achieve the effect of quick disassembly and installation of corrugated rolls by interlocking the toothed locking blocks with the mounting grooves, the toothed locking blocks at both ends of the corrugated rolls will wear during actual use due to the assembly gap between the toothed locking blocks and the locking cylinders. After long-term use, the coaxiality of the corrugated rolls and the locking cylinders will decrease due to the loosening of the ends of the corrugated rolls. If the shaft ends of the two corrugated rolls are not corrected, the tooth profiles on the outer sides of the two corrugated rolls will be misaligned, affecting the corrugated paper forming quality.

[0005] In view of this, we propose a corrugated machine tooth profile corrector. Utility Model Content

[0006] The purpose of this application is to provide a corrugating machine tooth profile corrector that can effectively solve the problem in the prior art that it is difficult to correct the tooth profile of the corrugating roller during installation.

[0007] This application provides a corrugated machine tooth profile corrector, comprising:

[0008] The base plate has a support plate A fixedly installed at its top.

[0009] There are two corrugated rollers, one above the other, and each of the two ends of the corrugated rollers is provided with a tapered shaft;

[0010] A top plate, which is fixedly mounted on top of the bottom plate by a support plate A;

[0011] A fixed plate is slidably disposed at the bottom end of the top plate and at the top of the bottom plate. The fixed plate is driven by an external force to move horizontally to correct and position the two ends of the corrugated roller.

[0012] Slide plates A are slidably provided on the inner sides of both the support plate A and the fixed plate. A corrugated roller is detachably provided between the two slide plates A, and another corrugated roller is detachably provided between the support plate A and the fixed plate.

[0013] Fixed sleeve A and fixed sleeve B are respectively provided on the outer side of the tapered shaft at both ends of the corrugated roller. Fixed sleeve A is rotatably disposed on the inner side of the support plate A and the corresponding slide plate A, and fixed sleeve B is rotatably disposed on the inner side of the fixed plate and the corresponding slide plate A.

[0014] As an optional solution to the technical solution of this application, motor A and motor B are respectively fixedly installed on the outer side of the support plate A and the corresponding slide plate A, respectively for driving two corrugated rollers; motor A is fixedly connected to the outer side of slide plate A through L-shaped plate B, and motor B is fixedly connected to the outer side of support plate A through L-shaped plate A.

[0015] As an optional solution to the technical solution of this application, the bottom of the top plate is provided with two adjustment components corresponding to the two slide plates A. The adjustment components include a lead screw A and a slide rod A. The lead screw A is threadedly connected to the inner side of the slide plate A, and the slide rod A is slidably disposed on the inner side of the slide plate A.

[0016] The bottom ends of the two lead screws A are respectively rotatably mounted inside the support plate A and the fixed plate. The top end of one lead screw A is rotatably mounted inside the top plate, and the top end of the other lead screw A is rotatably mounted with a sliding plate B. The sliding plate B is fixedly mounted on the top of the fixed plate and slides horizontally along the sliding rod C inside the top plate. The top end of the top plate and the top end of the sliding plate B are respectively fixedly mounted with a motor C and a motor D, which are used to drive the two lead screws A to rotate synchronously.

[0017] As an optional solution to the technical solution of this application, a sliding plate C is fixedly provided at the bottom end of the fixed plate, a sliding rod B is slidably provided on the inner side of the sliding plate C, a lead screw B is threadedly connected to the inner side of the sliding plate C, and the sliding rod B is fixedly provided in the sliding groove of the base plate, and a rotating handle is fixed at the end of the lead screw B.

[0018] As an optional solution to the technical solution of this application, it also includes two fixed disks, each with a coupling sleeve fixedly installed on both sides. One of the fixed disks is fixedly connected to the drive end of motor A through the coupling sleeve on one side, and the other fixed disk is fixedly connected to the drive end of motor B through the coupling sleeve on one side. Both coupling sleeves are engaged with the shaft end of the corrugated roller through the coupling sleeve on the other side.

[0019] As an optional solution to the technical solution of this application, it also includes two sets of precision bearings, with two precision bearings in each set. The inner sides of the two precision bearings in each set are respectively fixedly mounted with a fixing sleeve A and a fixing sleeve B on the same axis. The two precision bearings in one set are respectively fixedly mounted on the inner sides of the two slide plates A, and the two precision bearings in the other set are respectively fixedly mounted on the inner sides of the support plate A and the fixing plate.

[0020] As an optional solution to the technical solution of this application, a detector is fixedly installed on the outer side of the slide plate A to monitor the meshing degree of the two corrugated rollers based on the visual detection principle. The detector is connected to an external detection controller to control the automatic operation and correction of motors A, B, C and D. A corrugated ring is fixedly installed on the outer side of the corrugated roller.

[0021] One or more technical solutions provided in the embodiments of this application have at least the following technical effects or advantages:

[0022] (1) This application adopts a tapered shaft at both ends of the corrugated roller. When installing the corrugated roller, the tapered shaft at both ends cooperates with the fixed sleeve A and the fixed sleeve B respectively, so that the shaft end of the corrugated roller is horizontally positioned by the fixed sleeve A and the fixed sleeve B. After the two corrugated rollers are assembled, their outer teeth are kept parallel. This effectively solves the problem that it is difficult to correct the tooth shape of the corrugated roller during installation. It realizes the positioning of the shaft end of the corrugated roller during installation, which facilitates the correction of the parallel tooth shape between the two corrugated rollers.

[0023] (2) This application provides a sliding plate A on both sides of the corrugated roller, so that the corrugated roller slides up and down through the screw A and slide bar A inside the sliding plate A under the drive of external force, thereby adjusting the distance between the corrugated rollers so as to correct the distance between the two corrugated rollers. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the overall structure of the corrugating machine tooth profile corrector disclosed in a preferred embodiment of this application;

[0025] Figure 2 This is a schematic diagram of one side of the corrugated machine tooth profile corrector disclosed in a preferred embodiment of this application;

[0026] Figure 3 This is a schematic diagram of the assembly structure of the base plate and the fixing plate in the corrugated machine tooth profile corrector disclosed in a preferred embodiment of this application;

[0027] Figure 4 This is a schematic diagram of the assembly structure of the conical shaft with fixed sleeve A and fixed sleeve B in the corrugated machine tooth profile corrector disclosed in a preferred embodiment of this application;

[0028] Figure 5 This is a schematic diagram of the assembly structure of the precision bearing and the end of the corrugated roller shaft in a corrugating machine tooth profile corrector disclosed in a preferred embodiment of this application;

[0029] Figure 6 This is a schematic diagram of the assembly structure of the tapered shaft and coupling sleeve in the corrugated machine tooth profile corrector disclosed in a preferred embodiment of this application;

[0030] The following are the labels in the diagram: 100, Motor A; 200, Motor B; 300, Motor C; 400, Motor D; 1, Base Plate; 11, Support Plate A; 12, L-shaped Plate A; 2, Corrugated Roller; 21, Tapered Shaft; 22, Fixing Sleeve A; 23, Fixing Disc; 24, Coupling Sleeve; 25, Corrugated Ring; 26, Fixing Sleeve B; 3, Top Plate; 31, Lead Screw A; 32, Slide Rod A; 33, Slide Plate A; 34, L-shaped Plate B; 35, Detector; 4, Fixing Plate; 41, Lead Screw B; 42, Slide Rod B; 43, Rotating Handle; 44, Slide Plate B; 45, Slide Rod C; 46, Slide Plate C; 5, Precision Bearing. Detailed Implementation

[0031] The present application will be further described in detail below with reference to the accompanying drawings.

[0032] Reference Figure 1 , Figure 2 and Figure 4This application discloses a corrugated machine tooth profile corrector, including a base plate 1, corrugated rollers 2, a top plate 3, and a fixed plate 4. A support plate A11 is fixedly mounted on the top of the base plate 1. Two corrugated rollers 2 are arranged vertically, each with a tapered shaft 21 at both ends. The top plate 3 is fixedly mounted on the top of the base plate 1 via the support plate A11. The fixed plate 4 is slidably mounted on the bottom end of the top plate 3 and also slidably mounted on the top of the base plate 1. The fixed plate 4 is driven by an external force to move horizontally to correct and position the two ends of the corrugated rollers 2. Slide plates A33 are slidably disposed on the inner sides of both the support plate A11 and the fixed plate 4. One corrugated roller 2 is detachably disposed between the two slide plates A33, and the other corrugated roller 2 is detachably disposed between the support plate A11 and the fixed plate 4. Fixing sleeves A22 and B26 are respectively disposed on the outer sides of the tapered shafts 21 at both ends of the corrugated roller 2. Fixing sleeve A22 is rotatably disposed on the inner side of the support plate A11 and the corresponding slide plate A33, and fixing sleeve B26 is rotatably disposed on the inner side of the fixed plate 4 and the corresponding slide plate A33. When installing the corrugated rollers 2, insert one end of each of the two corrugated rollers 2 into the inner side of the support plate A11 and its corresponding slide plate A33, so that the tapered shaft 21 at one end of the corrugated roller 2 cooperates with the fixing sleeve A22 on the outer side of the support plate A11 and the slide plate A33. Then, by using external driving force, push the fixing plate 4 to slide on the top of the base plate 1, so that the fixing plate 4 drives the inner slide plate A33 to move closer to the other end of the corrugated roller 2. When the tapered shaft 21 at the other end of the corrugated roller 2 is inserted into the inner side of the fixing plate 4 and its corresponding slide plate A33, the horizontal extrusion of the fixing plate 4... Under pressure, the fixing sleeves B26 on the outside of the fixing plate 4 and the sliding plate A33 cooperate with the tapered shaft 21 at the other end of the corrugated roller 2, and the tapered structure is used for coaxial positioning. The two fixing sleeves A22 on one side and the two fixing sleeves B26 on the other side are parallel to each other in the vertical direction, which can keep the two corrugated rollers 2 parallel after installation. This allows for parallel correction of the tooth profile on the outside of the corrugated roller 2. Furthermore, the two vertically sliding sliding plates A33 drive one of the corrugated rollers 2 to move up and down, so as to correct the distance between the two corrugated rollers 2.

[0033] Reference Figure 1 and Figure 2Motors A100 and B200 are fixedly mounted on the outer sides of support plate A11 and corresponding slide plate A33, respectively, to drive the two corrugated rollers 2. Motor A100 is fixedly connected to the outer side of slide plate A33 via L-shaped plate B34, and motor B200 is fixedly connected to the outer side of support plate A11 via L-shaped plate A12. Motors A100 and B200 are fixedly assembled with slide plate A33 and support plate A11 via L-shaped plates B34 and A12 to ensure the stability of motors A100 and B200. After the two ends of the corrugated rollers 2 are positioned and installed, starting motors A100 and B200 can drive the two corrugated rollers 2 to rotate, serving as a power source to drive the corrugated rollers 2 to process corrugated paper. Furthermore, motors A100 and B200 can drive the corrugated rollers 2 to perform micro-rotation, thereby adjusting the meshing degree of the teeth on the outer sides of the two corrugated rollers 2.

[0034] Reference Figure 1 and Figure 2 The bottom of the top plate 3 is equipped with two adjusting components corresponding to the two sliding plates A33. The adjusting components include a lead screw A31 and a slide rod A32. The lead screw A31 is threaded to the inside of the sliding plate A33, and the slide rod A32 is slidably disposed on the inside of the sliding plate A33. The bottom ends of the two lead screws A31 are respectively rotatably disposed on the inside of the support plate A11 and the fixed plate 4. The top end of one lead screw A31 is rotatably disposed on the inside of the top plate 3, and the top end of the other lead screw A31 is rotatably disposed on the sliding plate B44. The sliding plate B44 is fixedly disposed on the top of the fixed plate 4 and slides horizontally along the slide rod C45 on the inside of the top plate 3. The top ends of the top plate 3 and the sliding plate B44 are respectively fixedly disposed on the top end of the motor C300 and the motor D400, which are used to drive the two lead screws A31 to rotate synchronously. When adjusting the gap between the two corrugated rollers 2 to correct the tooth profile, the motor C300 on the top of the top plate 3 and the motor D400 on the top of the slide plate B44 are started at the same time. The motors C300 and D400 drive the lead screw A31 at their output ends to rotate. The two lead screws A31 drive the support plate A11 and the slide plate A33 on the inner side of the fixed plate 4 to slide along the slide rod A32. The two slide plates A33 drive the corrugated rollers 2 to adjust the tooth profile gap.

[0035] Furthermore, a detector 35 is fixedly installed on the outer side of the slide plate A33. Based on the principle of visual inspection, it monitors the meshing degree of the two corrugated rollers 2. The detector 35 is connected to an external detection controller to control motors A100, B200, C300, and D400 to automatically operate and correct the operation. A corrugated ring 25 is fixedly installed on the outer side of the corrugated roller 2. The detector 35 detects the tooth profile on the outer side of the corrugated ring 25 along the axial direction of the corrugated roller 2. Based on the detection result of the detector 35, motors A100 and B200 can be controlled to drive the two corrugated rollers 2 to rotate slightly, so as to adjust the meshing of the tooth profile. Then, based on this, the distance between the two corrugated rollers 2 is adjusted so that the tooth profile on the outer side of the corrugated ring 25 meets the correction requirements, thereby facilitating the tooth profile correction of the installed corrugated rollers 2. The detection principle of the detector 35 is existing technology and will not be described in detail here.

[0036] Reference Figure 1 and Figure 2 A sliding plate C46 is fixedly mounted on the bottom end of the fixed plate 4. A sliding rod B42 is slidably mounted on the inner side of the sliding plate C46. A lead screw B41 is threadedly connected to the inner side of the sliding plate C46, ​​and the sliding rod B42 is fixedly mounted in the groove of the base plate 1. A rotating handle 43 is fixed to the end of the lead screw B41. When it is necessary to horizontally push the fixed plate 4 to position the two ends of the corrugated roller 2, the lead screw B41 on the inner side of the base plate 1 can be rotated by rotating the rotating handle 43. This causes the lead screw B41 to drive the sliding plate C46 to slide along the sliding rod B42, so that the fixed plate 4 drives the inner sliding plate A33 to move closer to the shaft end of the corrugated roller 2. Finally, the outer fixed sleeve B26 and the tapered shaft 21 at the end of the corrugated roller 2 cooperate with each other to achieve the coaxial positioning effect of the corrugated roller 2.

[0037] Reference Figure 4 , Figure 5 and Figure 6 It also includes two fixed disks 23, each with a coupling sleeve 24 fixedly installed on both sides. One fixed disk 23 is fixedly connected to the drive end of motor A100 through the coupling sleeve 24 on one side, and the other fixed disk 23 is fixedly connected to the drive end of motor B200 through the coupling sleeve 24 on one side. Both coupling sleeves 24 are engaged with the shaft end of corrugated roller 2 through the coupling sleeve 24 on the other side. When one end of the corrugated roller 2 is inserted into the support plate A11 and its corresponding slide plate A33, the corrugated roller 2 directly engages with the insertion hole inside the coupling sleeve 24 through the flat shaft at the end of the tapered shaft 21, so that the tapered shaft 21 and the coupling sleeve 24 can be engaged with each other when rotating in the circumferential direction, which facilitates the quick assembly of the drive ends of the motors A100 and B200 with the corrugated roller 2. Since both ends of the corrugated roller 2 are engaged with the fixed sleeves A22 and B26 through the tapered shaft 21, even if there is an assembly gap after the shaft end of the tapered shaft 21 is connected to the coupling sleeve 24, it will not affect the coaxiality of the corrugated roller 2 relative to the base plate 1, the fixed plate 4 and the slide plate A33.

[0038] Refer to Figure 1 , Figure 4 and Figure 5 It also includes two sets of precision bearings 5, with two bearings in each set. The inner sides of the two bearings in each set are coaxially fixed with fixing sleeves A22 and B26, respectively. In one set, the two bearings are fixedly mounted inside the two sliding plates A33, while in the other set, they are fixedly mounted inside the support plate A11 and the fixing plate 4. The fixing sleeves A22 and B26 are rotated and assembled with the support plate A11, sliding plates A33, and fixing plate 4 using the precision bearings 5, ensuring the coaxiality of the fixing sleeves A22 and B26. Based on this, the corrugated roller 2 is positioned and assembled, ensuring coaxial installation during disassembly and assembly, and achieving automatic alignment of the roller 2's shaft end.

[0039] In summary, when using the corrugating machine tooth profile corrector disclosed in this application, first rotate the rotating handle 43 to drive the slide plate C46 to slide away from the support plate A11 on the inner side of the base plate 1, thereby driving the fixed plate 4 and its inner slide plate A33 away from the support plate A11. This causes the fixed plate 4 and the slide plate A33 to drive the outer fixing sleeve B26 away from the outer side of the tapered shaft 21 until they are disengaged. Then, the two corrugating rollers 2 can be pulled out horizontally to achieve quick disassembly. When installing the corrugating rollers 2, insert one end of each of the two corrugating rollers 2 into the inner side of the support plate A11 and its corresponding slide plate A33, so that the tapered shaft 21 at one end of the corrugating roller 2 cooperates with the fixing sleeve A22 on the outer side of the support plate A11 and the slide plate A33. When one end of the corrugating roller 2 is inserted into the support plate A11 and its corresponding slide plate A33, the two corrugating rollers 2 are inserted into the inner side of the support plate A11 and its corresponding slide plate A33. 3. After the inner side, the corrugated roller 2 directly engages with the insertion hole on the inner side of the coupling sleeve 24 through the flat shaft at the end of the tapered shaft 21, so that the tapered shaft 21 and the coupling sleeve 24 can be engaged with each other when rotating in the circumferential direction, which facilitates the quick assembly of the drive ends of motor A100 and motor B200 with the corrugated roller 2; then, by rotating the rotating handle 43, the lead screw B41 on the inner side of the base plate 1 is rotated, so that the lead screw B41 drives the slide plate C46 to slide along the slide bar B42, so that the fixing plate 4 drives the inner slide plate A33 to approach the shaft end of the corrugated roller 2, and finally drives the outer fixing sleeve B26 to engage with the tapered shaft 21 at the end of the corrugated roller 2. Under the horizontal squeezing action of the fixing plate 4, the fixing plate 4 and the outer fixing sleeve B26 of the slide plate A33 engage with the tapered shaft 21 at the other end of the corrugated roller 2.

[0040] After the corrugated roller 2 is coaxially installed and aligned, the tooth profile of the outer side of the corrugated ring 25 is detected by the detector 35 along the axial direction of the corrugated roller 2. Based on the detection results of the detector 35, the motors A100 and B200 are controlled to drive the two corrugated rollers 2 to rotate slightly, so as to adjust the meshing of the tooth profile. Then, the distance between the two corrugated rollers 2 is adjusted so that the tooth profile of the outer side of the corrugated ring 25 meets the alignment requirements. When adjusting the distance, the motor C300 on the top of the top plate 3 and the motor D400 on the top of the slide plate B44 are started. The motors C300 and D400 simultaneously drive the lead screw A31 at their output ends to rotate. The two lead screws A31 simultaneously drive the slide plate A33 on the inner side of the support plate A11 and the fixed plate 4 to slide along the slide rod A32. The two slide plates A33 drive the corrugated roller 2 to adjust the tooth profile distance.

Claims

1. A tooth shape corrector of a corrugator, characterized by, The utility model relates to a corrugated roller positioning device, including: The bottom plate (1) top end fixedly arranged with support plate A (11); Corrugated roller (2), set up two, the both ends of corrugated roller (2) are provided with conical shaft (21); Top plate (3), top plate (3) is fixedly arranged in the top of bottom plate (1) through support plate A (11); Fixed plate (4), slidingly arranged in the bottom end of top plate (3), and the fixed plate (4) is slidingly arranged in the top of bottom plate (1), the fixed plate (4) is driven horizontally by external force and is positioned to the both ends of corrugated roller (2); Wherein, the inner side of support plate A (11) and fixed plate (4) is slidingly arranged with slide plate A (33), and one corrugated roller (2) is detachably arranged between the two slide plate A (33), and the other corrugated roller (2) is detachably arranged between support plate A (11) and fixed plate (4); The outer side of the conical shaft (21) of the both ends of corrugated roller (2) is respectively matched with fixed sleeve A (22) and fixed sleeve B (26), the fixed sleeve A (22) is rotatably arranged in the inner side of support plate A (11) and corresponding slide plate A (33), and the fixed sleeve B (26) is rotatably arranged in the inner side of fixed plate (4) and corresponding slide plate A (33).

2. The corrugator tooth profile corrector of claim 1, wherein: The outer side of support plate A (11) and corresponding slide plate A (33) is respectively fixedly provided with motor A (100) and motor B (200), respectively used for driving two corrugated rollers (2);The motor A (100) is fixedly connected on the outer side of slide plate A (33) through L-shaped plate B (34), and the motor B (200) is fixedly connected on the outer side of support plate A (11) through L-shaped plate A (12).

3. The corrugator tooth profile corrector of claim 2, wherein: The bottom of top plate (3) is provided with two adjusting assemblies corresponding to two slide plate A (33), the adjusting assembly includes screw rod A (31) and slide rod A (32), the inner side of slide plate A (33) is threadedly connected with screw rod A (31), and the inner side of slide plate A (33) is slidingly provided with slide rod A (32); The bottom end of two screw rod A (31) is rotatably arranged in the inner side of support plate A (11) and fixed plate (4), one screw rod A (31) is rotatably arranged in the inner side of top plate (3) at the top, and the top of the other screw rod A (31) is rotatably provided with slide plate B (44), the slide plate B (44) is fixedly arranged on the top of fixed plate (4), the slide plate B (44) is slidingly arranged on the inner side of top plate (3) along slide rod C (45), and the top of top plate (3) and slide plate B (44) is respectively fixedly provided with motor C (300) and motor D (400), respectively used for driving two screw rod A (31) synchronous rotation.

4. The corrugator tooth profile corrector of claim 3, wherein: The bottom end of fixed plate (4) is fixedly provided with slide plate C (46), the inner side of slide plate C (46) is slidingly provided with slide rod B (42), the inner side of slide plate C (46) is threadedly connected with screw rod B (41), and the slide rod B (42) is fixedly arranged in the sliding slot of bottom plate (1), and the end of screw rod B (41) is fixedly provided with rotary handle (43).

5. The corrugator tooth shape corrector of claim 1, wherein: Two fixed discs (23) are further included, both of which are fixedly provided with shaft sleeves (24) on both sides, one of the fixed discs (23) is fixedly connected with the driving end of the motor A (100) through the shaft sleeve (24) on one side, the other fixed disc (23) is fixedly connected with the driving end of the motor B (200) through the shaft sleeve (24) on one side, and both of the shaft sleeves (24) are clamped and connected with the shaft end of the corrugated roller (2) through the shaft sleeve (24) on the other side.

6. The corrugator tooth shape corrector of claim 2, wherein: Two groups of precision bearings (5) are further included, each group is provided with two precision bearings (5), the inner sides of the two precision bearings (5) in each group are respectively coaxially fixedly installed with fixed sleeves A (22) and fixed sleeves B (26), the two precision bearings (5) in one group are respectively fixedly arranged on the inner sides of two slide plates A (33), and the two precision bearings (5) in the other group are respectively fixedly arranged on the inner sides of the support plate A (11) and the fixed plate (4).

7. The corrugator tooth shape corrector of claim 3, wherein: The outer side of the slide plate A (33) is fixedly provided with a detector (35), which monitors the meshing degree of the two corrugated rollers (2) based on the visual detection principle, the detector (35) is connected with an external detection controller, and is used for controlling the automatic operation correction of the motor A (100), the motor B (200), the motor C (300) and the motor D (400), and the outer side of the corrugated roller (2) is fixedly provided with a corrugated ring (25).

Citation Information

Patent Citations

  • Corrugating machine capable of rapidly changing rollers

    CN222610626U