Glass fiber cloth correcting mechanism

By introducing a steering mechanism and a translation drive mechanism into the fiberglass cloth correction mechanism, automatic correction of the width of both sides of the fiberglass cloth is achieved, solving the problems of high labor intensity and low efficiency caused by manual edge changing in the prior art, and improving the correction efficiency.

CN223951470UActive Publication Date: 2026-02-27JIANGSU AOKHAN TEXTILE TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520358981.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-04
Publication Date
2026-02-27
Estimated Expiration
2035-03-04

AI Technical Summary

Technical Problem

Existing fiberglass cloth correction mechanisms require manual switching of the side when correcting the width of the other side, resulting in high labor intensity and low efficiency.

Method used

A fiberglass cloth correction mechanism was designed, which includes a crossbeam, a concave sliding seat, a steering mechanism, and a translation drive mechanism. The correction blade is driven by a servo motor to adjust its position on both sides below the crossbeam. Combined with the steering mechanism, automatic switching is achieved, reducing the intensity of manual operation.

Benefits of technology

The automation of width correction on both sides of the fiberglass cloth has been achieved, reducing the intensity of manual operation and improving work efficiency.

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Abstract

The utility model discloses a glass fiber cloth correcting mechanism, which relates to the technical field of glass fiber cloth production, and comprises a cross beam, and the bottom of the cross beam is connected with a concave sliding seat in a sliding manner; the correction blade is arranged below the cross beam; the steering mechanism is arranged between the concave sliding seat and the correction blade, and the steering mechanism is used for adjusting the positions of the correction blade on the two sides below the cross beam; and the translation driving mechanism is arranged in the cross beam, and the translation driving mechanism is used for driving the concave sliding seat to move in the axial direction of the cross beam. The steering mechanism is arranged between the concave sliding seat and the correction blade, so that the correction blade can be adjusted on the two sides below the concave sliding seat, the breadth of the two sides of glass fiber cloth can be corrected by adjusting the position of the correction blade, the adjustment operation is more convenient, the manual operation intensity is reduced, and the production efficiency is improved. And meanwhile, the working efficiency can be improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to glass fiber cloth production technical field, especially in kind glass fiber cloth correction mechanism. BACKGROUND

[0002] Glass fiber cloth needs to be cut into specific width after production, so that it can be used for processing of different products, therefore, according to actual demand width, the excess edge of glass fiber cloth is corrected.

[0003] In the prior art, the utility model discloses a kind of glass fiber cloth production width correction mechanism with the authorization announcement No.CN220846831U, can be rotated by servo motor control screw rod, then the threaded block connected with screw rod thread will control correction knife reciprocate in horizontal direction, it is convenient to cut off the excess width of glass fiber cloth automatically, so as to improve the width correction efficiency of glass fiber cloth;

[0004] But in actual use, the correction blade of the above-mentioned correction mechanism can only correct the width of the same side of glass fiber cloth, when the other side width correction of glass fiber cloth is needed, glass fiber cloth also needs to be manually changed, and the overall weight of glass fiber cloth is large, manual handling is time-consuming and laborious, and the positioning of glass fiber cloth also needs to be adjusted again, which affects the working efficiency of glass fiber cloth correction operation, therefore, a kind of glass fiber cloth correction mechanism is presented. UTILITY MODEL CONTENTS

[0005] The utility model aims at providing a kind of glass fiber cloth correction mechanism to solve the problems presented in the above background.

[0006] To achieve the above object, the utility model provides the following technical scheme: a kind of glass fiber cloth correction mechanism, comprising:

[0007] Crossbeam, the concave sliding seat is slidably connected to the bottom of the crossbeam;

[0008] Correction blade, the correction blade is arranged below the crossbeam, and the correction blade is used for the width correction of glass fiber cloth;

[0009] Steering mechanism, the steering mechanism is arranged between the concave sliding seat and the correction blade, and the steering mechanism is used to adjust the position of the correction blade on the two sides below the crossbeam;

[0010] Translation driving mechanism, the translation driving mechanism is arranged inside the crossbeam, and the translation driving mechanism is used to drive the concave sliding seat to move along the crossbeam axis.

[0011] Preferably, the bottom of the outer wall of the crossbeam is provided with a side protrusion, and the inner wall bottom of the concave sliding seat is provided with a straight line sliding groove matched with the side protrusion.

[0012] Preferably, the translation driving mechanism comprises:

[0013] A driving slider is slidingly connected to the inner cavity of the crossbeam, and the bottom of the driving slider extends to the bottom end of the crossbeam and is fixed with the concave sliding seat;

[0014] A translation screw is rotationally connected to the inner cavity of the crossbeam, and the outer wall of the translation screw is screwedly connected to the middle part of the driving slider;

[0015] A servo motor is fixedly connected to one end of the crossbeam, and the servo motor is in transmission connection with one end of the translation screw.

[0016] Preferably, the steering mechanism comprises:

[0017] A bearing strut is rotationally connected to the middle part of the bottom end of the concave sliding seat, and one end of the bearing strut extends to the outside of the concave sliding seat and is fixedly arranged with the correction blade;

[0018] An annular slot is arranged in the bottom of the concave sliding seat and is in communication with the bottom end of the concave sliding seat;

[0019] A connecting slide rod passes through the bottom end of the bearing strut and extends into the annular slot, and the top end of the connecting slide rod is fixedly connected with a limiting sliding block.

[0020] Preferably, a cross slot is arranged in the corresponding position of the bearing strut and the connecting slide rod, an elastic seat is slidingly connected in the cross slot, a return spring is fixedly connected between the elastic seat and the bottom of the cross slot, the elastic seat is fixedly connected with the outer wall of the connecting slide rod, and two positioning grooves are symmetrically arranged in the top inner wall of the annular slot.

[0021] Preferably, an electric push rod is fixedly arranged at the top end of the correction blade, and the top of the electric push rod is fixedly connected with one end of the bearing strut.

[0022] Compared with the prior art, the technical effects of the utility model are:

[0023] The utility model discloses a steering mechanism is arranged between the concave sliding seat and the correction blade, so that the correction blade can be adjusted at the positions of both sides below the concave sliding seat, so that the width of the glass fiber cloth on both sides can be corrected by adjusting the position of the correction blade, the operation is more convenient, the labor intensity is reduced, and the working efficiency is improved. BRIEF DESCRIPTION OF DRAWINGS

[0024] Figure 1 It is partial three-dimensional sectional structure schematic view of the utility model crossbeam.

[0025] Figure 2 A place of the utility model Figure 1 Partial enlarged structure schematic view of A place.

[0026] Figure 3 The utility model provides a bearing support rod's three-dimensional structure schematic view.

[0027] In the figure: 100, the correction blade; 101, the electric push rod; 200, the crossbeam; 201, the concave sliding seat; 202, the drive sliding block; 203, the translation screw; 204, the side convex part; 205, the bearing support rod; 206, the annular slot; 207, the positioning recess; 208, the limit sliding block; 209, the connecting sliding rod; 210, the cross slot; 211, the elastic seat; 212, the reset spring; 213, the servo motor. Specific embodiments

[0028] The technical scheme in the embodiments of the utility model will be apparently and completely described in combination with the drawings in the embodiments of the utility model, and obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the person skilled in the art without making creative efforts belong to the protection scope of the utility model.

[0029] The utility model provides a bearing support rod's three-dimensional structure schematic view. Figures 1-3The shown one kind of glass fiber cloth correction mechanism includes beam 200, correction blade 100, steering mechanism and translation driving mechanism, the bottom of beam 200 is slidably connected with concave sliding seat 201, the bottom of the outer wall of both sides of beam 200 is provided with side convex part 204, the inner wall bottom of concave sliding seat 201 is provided with straight line sliding groove matched with side convex part 204, by setting side convex part 204 and straight line sliding groove between beam 200 and concave sliding seat 201, not only can the guiding effect of concave sliding seat 201 be provided during the movement of the outer wall of beam 200, but also the force point of the position of the bottom of concave sliding seat 201 in beam 200 is provided, the auxiliary limiting of concave sliding seat 201 is achieved, and the movement of concave sliding seat 201 in the position of the bottom of beam 200 is more stable; correction blade 100 is arranged below beam 200, correction blade 100 is used for width correction of glass fiber cloth, steering mechanism is arranged between concave sliding seat 201 and correction blade 100, steering mechanism is used for adjusting the position of correction blade 100 on both sides below beam 200, translation driving mechanism is arranged inside beam 200, and translation driving mechanism is used to drive concave sliding seat 201 to move along the axial direction of beam 200; by driving concave sliding seat 201 to move along the axial direction of beam 200 through translation driving mechanism, correction blade 100 can be driven to move linearly, so that correction blade 100 can correct the side of glass fiber cloth; after the width correction work on one side of glass fiber cloth is completed, correction blade 100 can be adjusted to the position of the other side below concave sliding seat 201 through steering mechanism, so that correction blade 100 can correct the width of the other side of glass fiber cloth, the width correction adjustment operation on glass fiber cloth is more convenient, the labor intensity is reduced, and the work efficiency is improved.

[0030] Among them, the translation driving mechanism includes driving slider 202, translation screw 203 and servo motor 213, the driving slider 202 is slidably connected in the inner cavity of the beam 200, the bottom of the driving slider 202 extends to the bottom end of the beam 200 and is fixed with the concave sliding seat 201, the translation screw 203 is rotatably connected in the inner cavity of the beam 200, the outer wall of the translation screw 203 is threadedly connected with the middle part of the driving slider 202, the servo motor 213 is fixedly connected with one end of the beam 200, and the servo motor 213 is drivingly connected with one end of the translation screw 203; by controlling the forward and reverse rotation of the servo motor 213 through the controller after energization, and cooperating with the guiding effect of the driving slider 202 in the inner cavity of the beam 200, the driving slider 202 can be driven to move axially along the outer wall thereof by the screwing pressure during the rotation of the translation screw 203, so as to provide driving force for the movement of the concave sliding seat 201 along the outer wall of the beam 200, and the concave sliding seat 201 can drive the correction blade 100 to move linearly, and the width of the side of the glass fiber cloth is corrected.

[0031] The turning mechanism comprises a bearing support rod 205, an annular slot 206 and a connecting slide rod 209. The end of the bearing support rod 205 is rotationally connected to the middle of the bottom end of the concave sliding seat 201. One end of the bearing support rod 205 extends to the outside of the concave sliding seat 201 and is fixedly arranged with the correction blade 100. The top end of the correction blade 100 is fixedly installed with an electric push rod 101. The top of the electric push rod 101 is fixedly connected to one end of the bearing support rod 205. The annular slot 206 is arranged at the bottom of the concave sliding seat 201 and is in communication with the bottom end of the concave sliding seat 201. The connecting slide rod 209 extends to the annular slot 206 from the bottom end of the bearing support rod 205. The top end of the connecting slide rod 209 is fixedly connected with a limiting slide block 208. The end of the bearing support rod 205 is rotationally connected to the middle of the bottom end of the concave sliding seat 201, so that the end of the bearing support rod 205 connected with the correction blade 100 can be adjusted by 180°, so that the correction blade 100 can be adjusted from one side of the cross beam 200 to the other side. Thus, the width of the glass fiber cloth can be adjusted without a large range of adjustment, so that the adjustment operation is more convenient. The annular slot 206 is matched with the limiting slide block 208, which not only guides the rotation of the bearing support rod 205, but also assists in supporting the bearing support rod 205, so that the bearing support rod 205 supports the correction blade 100 more stably.

[0032] Further, a cross slot 210 is arranged at the position corresponding to the connecting slide rod 209 on the bearing support rod 205. An elastic seat 211 is slidably connected in the cross slot 210. A return spring 212 is fixedly connected between the elastic seat 211 and the bottom of the cross slot 210. The elastic seat 211 is fixedly connected with the outer wall of the connecting slide rod 209. Two positioning grooves 207 are symmetrically arranged in the top inner wall of the annular slot 206. The limiting slide block 208 is matched with the size of the positioning groove 207. When the bearing support rod 205 is rotated to the correction position, the limiting slide block 208 moves to the position below the positioning groove 207. At this time, the limiting slide block 208 is automatically inserted into the positioning groove 207 by the elastic pushing force provided by the return spring 212, so that the radial limiting locking of the bearing support rod 205 is realized, the position of the correction blade 100 after adjustment is stable, and when the unlocking is needed, the limiting slide block 208 is separated from the positioning groove 207 by manually pulling down the connecting slide rod 209 to drive the limiting slide block 208, so that the operation is simple and convenient.

[0033] Finally, it should be noted that: the above only for the preferred embodiments of the present application, and is not intended to limit the present application, although the foregoing embodiments of the present application has been described in detail, for the skilled in the art, it still can be modified, or for part of the technical features of the equivalent replacement, the spirit and principles of the present application, made any modification, equivalent replacement, improvement, etc., should be included within the scope of the present application.

Claims

1. A glass fiber cloth correction mechanism, characterized in that, include: A crossbeam (200) has a concave sliding seat (201) slidably connected to its bottom. A correction blade (100) is disposed below the crossbeam (200) and is used for width correction of the fiberglass cloth; A steering mechanism is disposed between a concave sliding seat (201) and a correction blade (100), the steering mechanism being used to adjust the position of the correction blade (100) on both sides below the crossbeam (200); A translation drive mechanism is provided inside the crossbeam (200) and is used to drive the concave sliding seat (201) to move axially along the crossbeam (200).

2. The glass fiber cloth correction mechanism according to claim 1, characterized in that, The bottom of the outer walls on both sides of the crossbeam (200) is provided with a side protrusion (204), and the bottom of the inner wall of the concave sliding seat (201) is provided with a straight sliding groove that matches the side protrusion (204).

3. The glass fiber cloth correction mechanism according to claim 2, characterized in that, The translation drive mechanism includes: A drive slider (202) is slidably connected to the inner cavity of the crossbeam (200), and the bottom of the drive slider (202) extends to the bottom end of the crossbeam (200) and is fixed to the concave sliding seat (201); Translation screw (203) is rotatably connected to the inner cavity of crossbeam (200), and the outer wall of translation screw (203) is threadedly connected to the middle part of drive slider (202); A servo motor (213) is fixedly connected to one end of a crossbeam (200), and the servo motor (213) is connected to one end of a translation screw (203) via a transmission connection.

4. The glass fiber cloth correction mechanism according to claim 3, characterized in that, The steering mechanism includes: The support rod (205) is rotatably connected to the middle of the bottom end of the concave sliding seat (201) at one end, and one end of the support rod (205) extends to the outside of the concave sliding seat (201) and is fixedly set with the correction blade (100). An annular slot (206) is formed at the bottom of the concave sliding seat (201) and is connected to the bottom end of the concave sliding seat (201); A connecting slide rod (209) is provided, the top of which passes through the bottom end of the supporting rod (205) and extends into the annular slot (206). A limit slider (208) is fixedly connected to the top of the connecting slide rod (209).

5. The glass fiber cloth correction mechanism according to claim 4, characterized in that, A cross groove (210) is provided on the bearing support rod (205) at the position corresponding to the connecting slide rod (209). An elastic seat (211) is slidably connected in the cross groove (210). A return spring (212) is fixedly connected between the elastic seat (211) and the bottom of the cross groove (210). The elastic seat (211) is fixedly connected to the outer wall of the connecting slide rod (209). Two positioning grooves (207) are symmetrically provided on the inner wall of the top of the annular groove (206).

6. The glass fiber cloth correction mechanism according to claim 5, characterized in that, An electric push rod (101) is fixedly installed at the top of the correction blade (100), and the top of the electric push rod (101) is fixedly connected to one end of the support rod (205).

Citation Information

Patent Citations

  • Glass fiber cloth production breadth correction mechanism

    CN220846831U