A moving mechanism of a glass edger
Patent Information
- Application Number
- CN202521804551.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-23
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-08-23
AI Technical Summary
[0004]为了解决现有玻璃磨边机中的技术缺陷,本实用新型提供一种移动稳定性好、可靠性高的玻璃磨边机的移动机构
[0015] 1. In this utility model, a lateral tension drive mechanism is provided between the base and the second processing unit. On the one hand, this mechanism provides power for the reciprocating movement of the second processing unit on the base, improving the stability of the position adjustment of the second processing unit when processing glass of different widths. On the other hand, this mechanism provides lateral external tension for the reciprocating movement of the second processing unit on the base. This external tension ensures that the weight of the second processing unit is always under lateral force when moving on the base, avoiding the influence of flexural stress caused by uneven force on the processing unit, completely solving the problem of jamming when the second processing unit moves on the base, and improving the reliability of the reciprocating movement of the second processing unit.
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Figure CN224658973U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a component of a glass edging machine, specifically a moving mechanism for a glass edging machine. Background Technology
[0002] Glass edging machines are commonly used post-processing equipment for glass sheets. Based on the number of edges processed, they are mainly divided into single-sided and double-sided grinding machines. Chinese patent document CN108838799A discloses a vertical double-sided glass edging machine, which uses a combination of slide rails and sliders on the frame to allow the grinding wheel motor to process the glass on two sides parallel to the conveying direction. Meanwhile, Chinese patent document CN102198618A discloses an irregularly shaped double-sided glass edging machine, which adjusts the gap between worktable two and worktable one to adapt to processing glass of different widths.
[0003] While the aforementioned two patent documents disclose the sliding combination of the slide rail and slider and the adjustment of the gap between the worktable, achieving bilateral grinding of glass within an adjustable width space to some extent, they still have significant technical shortcomings. Firstly, the grinding components of the edging machine have a large mass and strong inertia, and the glass itself has a long width, making it difficult to achieve complete synchronization in the movement of the grinding components on both sides of the glass. Secondly, during glass processing, the edges and irregularities on both sides of the glass are uneven. The grinding components experience varying reaction forces during grinding, with the direction of these forces perpendicular to the glass's travel direction. This causes uneven frictional stresses on the grinding components located on both sides of the frame, resulting in a flexing effect during movement, and in severe cases, jamming. Utility Model Content
[0004] In order to overcome the technical defects in existing glass edging machines, this utility model provides a moving mechanism for a glass edging machine with good moving stability and high reliability.
[0005] To achieve the aforementioned objectives, this utility model provides a moving mechanism for a glass edging machine, including a slide rail mounted on a machine base and a slider assembly located below a second processing section, with the slider and slide rail connected together. A transverse tension drive mechanism is provided on the machine base, symmetrically positioned on both sides below the second processing section and moving in the same direction as the slider assembly. This transverse tension drive mechanism can drive the second processing section to reciprocate on the machine base.
[0006] This application optimizes the above-mentioned structure, and the machine base is provided with a first processing part that is arranged opposite to the second processing part.
[0007] This application optimizes the above-mentioned structure. The transverse tension drive mechanism includes a drive plate located below the second processing section, a drive motor located on the drive plate, transverse drive gears located at both ends of the drive plate, and a transverse drive rack located on the machine base and meshing with the transverse drive gears. The drive motor is connected to one of the transverse drive gears, and the transverse drive rack is arranged in the same direction as the slide rail.
[0008] This application further refines the above structure, with slide rails located on both sides of the base and transverse drive racks positioned opposite each other on the inner side of the slide rails.
[0009] This application further refines the above structure, with a steering reduction gearbox provided between the drive motor and the lateral drive gear. The input end of the steering reduction gearbox is connected to the drive motor shaft, and the output end is connected to the lateral drive gear.
[0010] This application further refines the above structure, wherein the drive motor is a geared motor, and its shaft is coaxially and fixedly connected to the transverse drive gear.
[0011] This application further refines the above structure, with a base provided on the drive plate, a driven shaft extending out of the drive plate and coaxially connected to the transverse drive gear inside the base, and a driven bearing provided between the driven shaft and the inner wall of the base.
[0012] This application optimizes the above-mentioned structure, and the slider assembly includes a slider that is connected to the slide rail and a connecting plate that is connected to the slider and the second processing part respectively.
[0013] This application optimizes the above-mentioned structure, and the second processing part is provided with a receiving cavity that can accommodate the slider assembly and the lateral tension drive mechanism.
[0014] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0015] 1. In this utility model, a lateral tension drive mechanism is provided between the base and the second processing unit. On the one hand, this mechanism provides power for the reciprocating movement of the second processing unit on the base, improving the stability of the position adjustment of the second processing unit when processing glass of different widths. On the other hand, this mechanism provides lateral external tension for the reciprocating movement of the second processing unit on the base. This external tension ensures that the weight of the second processing unit is always under lateral force when moving on the base, avoiding the influence of flexural stress caused by uneven force on the processing unit, completely solving the problem of jamming when the second processing unit moves on the base, and improving the reliability of the reciprocating movement of the second processing unit.
[0016] 2. In this invention, a drive motor drives the movement of a transverse drive gear, and the meshing of the transverse drive gear and the transverse drive rack enables the movement of the second processing unit on the machine base. When the transverse drive gear meshes and moves on the transverse drive rack, it generates outward tension on the transverse drive rack and creates a transverse force between the machine base and the second processing unit. This action ensures the stability of the machine base and the second processing unit in the transverse direction, avoiding a flexural effect caused by uneven force during glass processing. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the installation of the machine base and the second processing unit of this utility model;
[0018] Figure 2 This is an exploded view of the machine base and the second processing part of this utility model;
[0019] Figure 3 This is a schematic diagram of the structure of the preferred embodiment of the present utility model;
[0020] Figure 4 This is an exploded view of the structure of the preferred embodiment of the present invention;
[0021] Figure 5 This is a schematic diagram of the transverse tension drive mechanism of this utility model;
[0022] Figure 6 This is an exploded view of the transverse tension drive mechanism of this utility model;
[0023] Figure 7 This is a schematic diagram of the installation of the drive motor and drive board of this utility model;
[0024] Figure 8 This is another installation diagram of the drive motor and drive board of this utility model;
[0025] Figure 9 This is an exploded view of the installation of the drive motor and drive board of this utility model;
[0026] Figure 10 This is a schematic diagram showing the installation of the base, second processing section, and transverse tension drive mechanism of this utility model.
[0027] The following components are marked in the diagram: base 1, first processing section 11, second processing section 12, accommodating cavity 13, slide rail 2, slider 21, connecting plate 22, drive plate 31, drive motor 32, transverse drive gear 33, transverse drive rack 34, steering reduction gearbox 35, driven bearing 36, seat 37, driven shaft 38. Detailed Implementation
[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. The applicant hereby emphasizes that the following embodiments are one or more examples of the novel technical solutions of the present utility model, achieving the corresponding technical effects and solving the corresponding technical problems, but do not mean that the protection scope of the technical solution only includes the following embodiments.
[0029] according to Figures 1 to 10 As shown, the moving mechanism of the glass edging machine of this utility model mainly includes a slide rail 2, a slider assembly, and a transverse tension drive mechanism. The slide rail 2 is mounted on and fixed to the machine base 1, and its mounting direction is perpendicular to the glass conveying direction on a horizontal plane. The slider assembly is located below the second processing section 12 and is fixed to it. The slider assembly is connected to the slide rail 2 on one side opposite to the second processing section 12 and can move back and forth on the slide rail 2, allowing the second processing section 12 to move along the vertical line of the glass conveying direction on the slide rail 2, thus enabling the second processing section 12 to process glass of different widths. The transverse tension drive mechanism is mounted on the machine base 1, symmetrically positioned on both sides below the second processing section 12. The transverse tension drive mechanism can drive the second processing section 12 to move back and forth on the machine base 1, and its driving direction is the same as the movement direction of the slider assembly.
[0030] In one embodiment of this utility model, a first processing unit 11 is further provided on the base 1. The first processing unit 11 can be fixed on the base 1 or movably connected to the base 1, and it is arranged opposite to the second processing unit 12. The first processing unit 11 and the second processing unit 12 are located on both sides of the glass conveying direction, so that they can process the edges of both sides of the glass simultaneously. In fact, the transmission mechanism of this utility model is applicable to glass edging machines that process on one or both sides, as long as the second processing unit 12 can slide back and forth on the base 1. Manufacturers can choose according to their needs.
[0031] In one embodiment of this utility model, the transverse tension driving mechanism includes a drive plate 31, a drive motor 32, a transverse drive gear 33, and a transverse drive rack 34. The drive plate 31 is disposed below and fixed to the second processing section 12, enabling the transverse tension driving mechanism and the second processing section 12 to move synchronously. The drive motor 32 is disposed on and fixed to the drive plate 31, providing power for the movement of the drive plate 31. The transverse drive gears 33 are disposed at both ends of the drive plate 31, with one transverse drive gear 33 connected to the output shaft of the drive motor 32, causing the drive motor 32 to rotate around its axis during operation. In this embodiment, the axis of the transverse drive gear 33 is vertically oriented, i.e., its axis is perpendicular to the plane of the glass conveying direction. The transverse drive rack 34 is disposed on the base 1 and fixed to the base 1. The transverse drive rack 34 is oriented in the same direction as the slide rail 2, and the cross-section of its teeth is parallel to the plane of the glass conveying direction, enabling the transverse drive rack 34 to mesh with the transverse drive gear 33. When the drive motor 32 drives the transverse drive gear 33 to rotate, the meshing connection between the transverse drive gear 33 and the transverse drive rack 34 causes the drive plate 31 to move back and forth in the direction of extension of the transverse drive rack 34. At the same time, the transverse drive gear 33 applies outward pressure to the transverse drive rack 34, so that the second processing part 12 always applies outward tension to the machine base 1 when it moves.
[0032] In another embodiment, the slide rails 2 are arranged on both sides of the base 1 to support the second processing section 12. The transverse drive racks 34 are arranged opposite each other on the inner side of the slide rails 2, that is, the teeth of the two transverse drive racks 34 are arranged facing each other on the inner side of the slide rails 2 to provide external tension in two directions under the action of the transverse drive gear 33, while preventing external processing dust and debris from entering the meshing connection structure of the transverse drive racks 34 and the transverse drive gear 33.
[0033] In another embodiment, a steering reduction gearbox 35 is further provided between the drive motor 32 and the lateral drive gear 33. The input end of the steering reduction gearbox 35 is connected to the shaft of the drive motor 32, and the output end is connected to the lateral drive gear 33. For the steering reduction gearbox 35 of this embodiment, those skilled in the art can refer to the specific structure of Chinese patent documents CN210618257U, CN210618257U, and CN208931415U, which will not be described in detail here.
[0034] In another embodiment, the drive motor 32 is a geared motor, and its shaft is coaxially and fixedly connected to the transverse drive gear 33. For the geared motor of this embodiment, those skilled in the art can refer to the specific structure of Chinese patent documents CN223109829U, CN120016758A, or CN120262788A, which will not be detailed here.
[0035] In another embodiment, the drive plate 31 is further provided with a seat 37, a driven shaft 38, and a driven bearing 36. The seat 37 is located on the drive plate 31 at a position corresponding to the transverse drive gear 33 and is fixedly connected to the drive plate 31. The driven shaft 38 is disposed inside the seat 37, with one end extending out of the drive plate 31 and coaxially fixed together with the transverse drive gear 33. The driven bearing 36 is disposed between the seat 37 and the driven shaft 38, with its outer side fixed to the inner wall of the seat 37 and its inner side fixed to the driven shaft 38.
[0036] In one embodiment of this utility model, the slider assembly includes a slider 21 and a connecting plate 22. The slider 21 is disposed on the slide rail 2, is connected to the slide rail 2, and can move back and forth in the direction in which the slide rail 2 extends. The connecting plate 22 is disposed between the slider 21 and the second processing part 12, and is fixedly connected to the slider 21 and the second processing part 12 respectively. The arrangement of the slider 21 and the connecting plate 22 can improve the stability and reliability of the slider assembly's sliding while reducing the sliding friction between the slider assembly and the slide rail 2, and prevent the slider assembly from getting stuck when sliding on the slide rail 2.
[0037] In one embodiment of this utility model, a receiving cavity 13 is further provided below the second processing part 12. The receiving cavity 13 can accommodate the slider assembly and the lateral tension drive mechanism to prevent dust and debris from external processing from entering the interior of the slider assembly and the lateral tension drive mechanism.
[0038] The first processing part 11 and the second processing part 12 of this utility model are both equipped with grinding mechanisms for processing glass. Those skilled in the art can refer to the grinding mechanism in Chinese patent document CN202225042U, the grinding head motor in Chinese patent document CN206425931U, and the edge grinding device in Chinese patent document CN110370145A for their settings or installation methods, which will not be described in detail here.
Claims
1. A moving mechanism for a glass edging machine, comprising a slide rail (2) disposed on a machine base (1) and a slider assembly disposed below a second processing section (12) and connected to the slide rail (2), characterized in that: The base (1) is provided with a transverse tension drive mechanism that can drive the second processing part (12) to move back and forth on the base (1) and move in the same direction as the slider assembly. The transverse tension drive mechanisms are equally arranged on both sides below the second processing part (12).
2. The moving mechanism of the glass edging machine according to claim 1, characterized in that: The base (1) is provided with a first processing section (11) which is disposed opposite to the second processing section (12).
3. The moving mechanism of the glass edging machine according to claim 1, characterized in that: The transverse tension drive mechanism includes a drive plate (31) located below the second processing section (12), a drive motor (32) located on the drive plate (31), transverse drive gears (33) located at both ends of the drive plate (31), and a transverse drive rack (34) located on the machine base (1) and meshing with the transverse drive gears (33). The drive motor (32) is connected to one of the transverse drive gears (33), and the transverse drive rack (34) is arranged in the same direction as the slide rail (2).
4. The moving mechanism of the glass edging machine according to claim 3, characterized in that: The slide rail (2) is located on both sides of the base (1), and the transverse drive rack (34) is located on the inner side of the slide rail (2).
5. The moving mechanism of the glass edging machine according to claim 3, characterized in that: A steering reduction gearbox (35) is provided between the drive motor (32) and the transverse drive gear (33). The input end of the steering reduction gearbox (35) is connected to the shaft of the drive motor (32), and the output end is connected to the transverse drive gear (33).
6. The moving mechanism of the glass edging machine according to claim 3, characterized in that: The drive motor (32) is a geared motor, and its shaft is coaxially and fixedly connected to the transverse drive gear (33).
7. The moving mechanism of the glass edging machine according to claim 3, characterized in that: The drive plate (31) is provided with a seat (37), and a driven shaft (38) is provided inside the seat (37) extending out of the drive plate (31) and coaxially connected with the transverse drive gear (33). A driven bearing (36) is provided between the driven shaft (38) and the inner wall of the seat (37).
8. The moving mechanism of the glass edging machine according to any one of claims 1 to 7, characterized in that: The slider assembly includes a slider (21) that is connected to the slide rail (2) and a connecting plate (22) that is connected to the slider (21) and the second processing unit (12).
9. The moving mechanism of the glass edging machine according to any one of claims 1 to 7, characterized in that: The second processing section (12) has a receiving cavity (13) below it that can accommodate the slider assembly and the transverse tension drive mechanism.
Citation Information
Patent Citations
Special-shaped double-edge glass edge grinding machine
CN102198618A
Vertical type double-sided glass edge milling machine
CN108838799A
High-speed glass bilateral edge grinding machine with full-automatic membrane removing mechanisms
CN110370145A
Gear motor
CN120016758A
Speed reduction motor with double-side heat dissipation function
CN120262788A