Multi-layer double-roller high-pressure laminating structure for amorphous strips

By sliding a movable plate on the bottom of the U-shaped groove and using an inclined slider to drive and adjust the distance between the upper and lower pressure rollers, combined with a servo motor driving the lead screw, the problem of inconvenient adjustment of the distance between the upper and lower pressure rollers was solved, achieving a high-precision amorphous strip pressing effect.

CN223972283UActive Publication Date: 2026-03-06林为闩
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-14
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

The existing equipment has inconvenient and insufficient adjustment accuracy for the spacing between the upper and lower pressure rollers, which cannot meet the requirements for the thickness of amorphous strip pressing.

Method used

By sliding a movable plate on the bottom surface of the U-shaped groove and using an inclined slider to drive the movable plate to slide up and down, the distance between the upper and lower pressure rollers can be adjusted, and fine adjustment can be achieved by combining a servo motor to drive the lead screw.

Benefits of technology

It enables convenient and high-precision adjustment of the gap between the upper and lower pressure rollers, ensuring the stability and accuracy of the amorphous strip pressing process.

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Abstract

The utility model discloses a multilayer double-roller high-pressure laminating structure for amorphous strips, which belongs to the technical field of amorphous strip laminating and comprises a pre-laminating roller, a lower compression roller and a movable upper compression roller which are mounted between two vertical plates of a double-vertical-plate frame. U-shaped grooves are symmetrically formed in one side ends of the two vertical plates, moving plates are slidably mounted on the bottom surfaces of the U-shaped grooves, and the upper pressing roller is rotatably mounted between the two moving plates; an inclined sliding surface at the top end of the inclined sliding block is in contact with the lower bottom surface of the movable plate; the inclined sliding block drives the moving plate to move up and down when moving left and right along the lower side face of the U-shaped groove. According to the utility model, the upper compression roller is rotatably mounted between the two moving plates, the moving plates are slidably mounted on the bottom surface of the U-shaped groove, and meanwhile, the inclined sliding block is slidably mounted on the lower side surface of the U-shaped groove; when the inclined sliding block slides left and right along the lower side face of the U-shaped groove, the movable plate is driven to slide up and down along the bottom face of the U-shaped groove, the distance between the lower pressing roller and the upper pressing roller is adjusted conveniently, and the adjusting precision is high.
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Description

Technical Field

[0001] This utility model relates to the field of sampling device technology, specifically to a multi-layer double-roller high-pressure bonding structure for amorphous ribbon. Background Technology

[0002] In the process of stacking and laminating amorphous ribbons, the thickness of the multi-layer amorphous ribbon is directly related to the distance between the upper and lower pressure rollers. Different requirements for the lamination thickness of the amorphous ribbon often necessitate controlling the distance between the upper and lower pressure rollers. Existing equipment makes adjusting the distance between the upper and lower pressure rollers inconvenient and the adjustment accuracy cannot meet the requirements. To solve these problems, this invention provides a multi-layer double-roller high-pressure lamination structure for amorphous ribbons. Utility Model Content

[0003] To address the aforementioned technical deficiencies, the purpose of this utility model is to provide a multi-layer double-roller high-pressure bonding structure for amorphous ribbon. This structure involves an upper pressure roller rotatably mounted between two movable plates, which are slidably mounted on the bottom surface of a U-shaped groove. Simultaneously, an inclined slider is slidably mounted on the lower side of the U-shaped groove. When the inclined slider slides left and right along the lower side of the U-shaped groove, it drives the movable plates to slide up and down along the bottom surface of the U-shaped groove, adjusting the distance between the lower and upper pressure rollers. This solves the technical problems mentioned in the background art.

[0004] To solve the above technical problems, the present invention adopts the following technical solution: The present invention provides a multi-layer double-roller high-pressure bonding structure for amorphous ribbon, including: a pre-bonding roller, a lower pressure roller and a movable upper pressure roller installed between the two vertical plates of a double vertical plate frame;

[0005] U-shaped grooves are symmetrically opened on one side of the two upright plates. A movable plate is slidably installed on the bottom surface of the U-shaped groove. The upper pressure roller is rotatably installed between the two movable plates. The pre-bonding roller and the lower pressure roller are both rotatably installed between the two upright plates. The lower pressure roller is located below the upper pressure roller and their positions are corresponding.

[0006] An inclined slider is slidably mounted on the lower side of the U-shaped groove, and the inclined sliding surface at the top of the inclined slider contacts the bottom surface of the moving plate; when the inclined slider moves left and right along the lower side of the U-shaped groove, it drives the moving plate to move up and down.

[0007] Preferably, the two sides of the U-shaped groove are horizontally inclined surfaces, and the bottom surface of the U-shaped groove is a vertically inclined surface.

[0008] Preferably, the tilting slider is connected to a driving mechanism, which includes a servo motor and a lead screw. The output end of the servo motor is connected to the lead screw, and the lead screw is threadedly connected to the tilting slider. The servo motor is fixedly mounted on the upright plate.

[0009] Preferably, a slide rail A is installed on the bottom surface of the U-shaped groove, and a movable slider A is slidably installed on the slide rail A, with the side of the movable plate connected to the movable slider A.

[0010] Preferably, a slide rail B is installed on the lower side of the U-shaped groove, and a movable slider B is integrally installed on the lower bottom surface of the inclined slider, and the movable slider B is slidably installed on the slide rail B.

[0011] Preferably, the two uprights are connected by a number of crossbars.

[0012] The beneficial effects of this utility model are as follows:

[0013] 1. This utility model uses an upper pressure roller that is rotated between two movable plates. The movable plates are slidably mounted on the bottom surface of the U-shaped groove, while an inclined slider is slidably mounted on the lower side of the U-shaped groove. When the inclined slider slides left and right along the lower side of the U-shaped groove, it drives the movable plates to slide up and down along the bottom surface of the U-shaped groove, adjusting the distance between the lower and upper pressure rollers. This is convenient, precise, and has high adjustment accuracy.

[0014] 2. This utility model uses a servo motor to drive the lead screw to rotate. The rotating lead screw can drive the inclined slider to slide left and right along the lower side of the U-shaped groove, thereby adjusting the distance between the lower pressure roller and the upper pressure roller, which is convenient and efficient. Attached Figure Description

[0015] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0016] Figure 1 This is a schematic diagram of the front view of a multi-layer double-roller high-pressure bonding structure for amorphous ribbon provided by this utility model.

[0017] Figure 2 This is a schematic diagram of the rear view of a multi-layer double-roller high-pressure bonding structure for amorphous ribbon provided by this utility model.

[0018] Figure 3 for Figure 1 The main view.

[0019] Figure 4 for Figure 3 A magnified view of A in the middle.

[0020] Figure 5 This is a schematic diagram showing the positions of the roller shaft centers O, P, and Q of the bonding roller 2, the lower pressure roller 3, and the guide roller 6 in this utility model.

[0021] Explanation of reference numerals in the attached drawings: 1-Double upright frame, 11-Upright plate, 111-Horizontal bar, 12-U-shaped groove, 121-Horizontal inclined surface, 122-Vertical inclined surface, 123-Slide rail A, 124-Moving slider A, 2-Pre-bonding roller, 3-Lower pressure roller, 4-Upper pressure roller, 41-Moving plate, 5-Inclined slider, 51-Slide rail B, 52-Moving slider B. Detailed Implementation

[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0023] Example 1:

[0024] like Figures 1 to 5 As shown, this embodiment provides a multi-layer double-roller high-pressure bonding structure for amorphous ribbon, including: a pre-bonding roller 2, a lower pressure roller 3, and a movable upper pressure roller 4 installed between two upright plates 11 of the double upright plate frame 1; specifically, the two upright plates 11 are connected by several crossbars 111 to ensure the stability of the entire double upright plate frame 1.

[0025] U-shaped grooves 12 are symmetrically formed on one side of the two upright plates 11. A movable plate 41 is slidably mounted on the bottom surface of the U-shaped groove 12. An upper pressure roller 4 is rotatably mounted between the two movable plates 41. A pre-bonding roller 2 and a lower pressure roller 3 are also rotatably mounted between the two upright plates 11, with the lower pressure roller 3 located below and corresponding to the upper pressure roller 4. Specifically, the two sides of the U-shaped groove 12 are horizontally inclined surfaces 121, and the bottom surface of the U-shaped groove 12 is a vertically inclined surface 122. (See also...) Figure 5 As shown, the multilayer amorphous ribbon after pressing enters the drying oven for drying. A guide roller 6 is provided at the entrance of the drying oven. The lower pressure roller 3 in the middle is higher than the pre-bonding roller 2 and the guide roller 6 on both sides. The height of the guide roller 6 is higher than the height of the pre-bonding roller 2. Let the roller shaft centers of the pre-bonding roller 2, the lower pressure roller 3 and the guide roller 6 be O, P and Q respectively. Draw a perpendicular line L from the axis P to the line segment OQ. The angle between the perpendicular line L and the vertical plane is α. The roller shaft center of the upper pressure roller 4 is R. The line segment PR is located on the perpendicular line L, that is, the angle between the line segment PR and the vertical plane is α. The horizontal inclined surface 121 and the vertical inclined surface 122 are perpendicular to each other. The angle between the horizontal inclined surface 121 and the horizontal plane is α, and the angle between the vertical inclined surface 122 and the vertical plane is α. When the upper pressure roller 4 slides along the vertical inclined surface 122, the angle between the line segment PR and the vertical plane is always α. The above settings ensure that the amorphous ribbon has good flatness, stability and is not easy to break during the pressing process.

[0026] An inclined slider 5 is slidably mounted on the lower side of the U-shaped groove 12, and the inclined sliding surface at the top of the inclined slider 5 contacts the bottom surface of the moving plate 41. When the inclined slider 5 moves left and right along the lower side of the U-shaped groove 12, it drives the moving plate 41 to move up and down. In actual use, the upper pressure roller 4 is rotatably mounted between the two moving plates 41, and the moving plates 41 are slidably mounted on the bottom surface of the U-shaped groove 12. At the same time, the inclined slider 5 is slidably mounted on the lower side of the U-shaped groove 12. When the inclined slider 5 slides left and right along the lower side of the U-shaped groove 12, it drives the moving plate 41 to slide up and down along the bottom surface of the U-shaped groove 12, adjusting the distance between the lower pressure roller 3 and the upper pressure roller 4. This is convenient, precise, and has high adjustment accuracy.

[0027] Example 2:

[0028] Please see Figures 1 to 4 While retaining all the technical features of Specific Embodiment 1, the tilting slider 5 is connected to a driving mechanism, which includes a servo motor and a lead screw. The output end of the servo motor is connected to the lead screw, and the lead screw is threadedly connected to the tilting slider 5. The servo motor is fixedly mounted on the vertical plate 11. The servo motor drives the lead screw to rotate, and the rotating lead screw can drive the tilting slider 5 to slide left and right along the lower side of the U-shaped groove 12, which is convenient and efficient. Specifically, a slide rail A123 is installed on the bottom surface of the U-shaped groove 12, and a movable slider A124 is slidably installed on the slide rail A123. The side of the movable plate 41 is connected to the movable slider A124. A necessary limiting structure is provided between the slide rail A123 and the movable slider A124 to ensure that the movable slider A124 does not fall off. This part belongs to the prior art and will not be described in detail here. More specifically, a slide rail B51 is installed on the lower side of the U-shaped groove 12, and a movable slider B52 is integrally installed on the lower bottom surface of the inclined slider 5. The movable slider B52 is slidably mounted on the slide rail B51. A necessary limiting structure is provided between the movable slider B52 and the slide rail B51 to ensure that the movable slider B52 does not fall off. This part is prior art and will not be elaborated further here. In this embodiment, a servo motor drives a lead screw to rotate. The rotating lead screw can drive the inclined slider 5 to slide left and right along the lower side of the U-shaped groove 12, thereby adjusting the distance between the lower pressure roller 3 and the upper pressure roller 4, which is convenient and efficient.

[0029] Obviously, those skilled in the art can make various modifications and variations to this utility model without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this utility model and their equivalents, this utility model also intends to include these modifications and variations.

Claims

1. A non-crystalline strip multi-layer twin roll high pressure bonding structure, characterized by, Include: Pre-pasted roller (2), lower roller (3) and movable upper roller (4) installed between two vertical plates (11) of double vertical plate frame (1); The U-shaped groove (12) is symmetrically arranged at one side end of the two vertical plates (11), the bottom surface of the U-shaped groove (12) is slidably installed with a moving plate (41), the upper roller (4) is rotatably installed between the two moving plates (41), the pre-pasted roller (2) and the lower roller (3) are rotatably installed between the two vertical plates (11), and the lower roller (3) is located below the upper roller (4) and corresponds in position; The lower side of the U-shaped groove (12) is slidably installed with an inclined sliding block (5), the top end of the inclined sliding block (5) is in contact with the lower bottom surface of the moving plate (41), and the inclined sliding block (5) drives the moving plate (41) to move up and down when moving left and right along the lower side of the U-shaped groove (12).

2. The non-crystalline strip multi-layer twin roll high pressure bonding structure of claim 1, wherein, The two side surfaces of the U-shaped groove (12) are horizontal inclined surfaces (121), and the bottom surface of the U-shaped groove (12) is a vertical inclined surface (122).

3. The non-crystalline strip multi-layer twin roll high pressure bonding structure of claim 2, wherein, The inclined sliding block (5) is connected with a driving mechanism, the driving mechanism comprises a servo motor and a lead screw, the output end of the servo motor is connected with the lead screw, the lead screw is threadedly connected with the inclined sliding block (5), and the servo motor is fixedly installed on the vertical plate (11).

4. The non-crystalline strip multi-layer twin roll high pressure bonding structure of claim 3, wherein, The bottom surface of the U-shaped groove (12) is provided with a slide rail A (123), the slide rail A (123) is slidably installed with a moving sliding block A (124), and the side surface of the moving plate (41) is connected with the moving sliding block A (124).

5. The non-crystalline strip multi-layer twin roll high pressure bonding structure of claim 4, wherein, The lower side of the U-shaped groove (12) is provided with a slide rail B (51), the moving sliding block B (52) is integrally installed on the lower bottom surface of the inclined sliding block (5), and the moving sliding block B (52) is slidably installed on the slide rail B (51).

6. The non-crystalline strip multi-layer twin roll high pressure bonding structure of claim 5, wherein, The two vertical plates (11) are connected through a plurality of horizontal rods (111).