A large-scale wire processing center

By using a modular assembly and multiple sets of processing tools, the problem of limited tool configuration and the inability to process the entire base frame in large glass processing equipment has been solved, enabling rapid switching between multiple processes and improving the equipment's adaptability and efficiency.

CN224391536UActive Publication Date: 2026-06-23GUANGDONG SHANXIA INTELLIGENT EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG SHANXIA INTELLIGENT EQUIP CO LTD
Filing Date
2025-07-29
Publication Date
2026-06-23

AI Technical Summary

Technical Problem

Existing large-scale glass processing equipment suffers from low processing efficiency due to its limited tool configuration, making it difficult to meet the rapid switching requirements of various complex processes such as edge grinding, polishing, notching, and drilling. Furthermore, the equipment's base frame is limited, preventing overall processing.

Method used

The design adopts a modular assembly, which connects the first, second, and third base frames into a whole. Precise alignment is achieved through stepped positioning and keyways. Combined with multiple sets of machining tools and a protective cover body driven by a micro motor, it enables rapid tool changing and stable glass conveying.

Benefits of technology

It improves the equipment's adaptability to glass of different sizes, simplifies the tool changing process, increases processing efficiency, and reduces equipment maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a large -scale wiring processing center equipment, the utility model relates to glass processing equipment technical field. First underframe is provided with second underframe and third underframe through splicing component connection on the first underframe, be provided with the processing mechanism for wiring glass on the first underframe, and processing mechanism includes: sucking disc main part, set up in the top of first underframe, processing cutter is set up in one side of first underframe, and one side fixed plate is fixed with first underframe, the utility model combines first underframe, second underframe and third underframe through splicing component, and the reference is formed with the step leaning position in the up and down direction, and the accurate alignment is through the positioning key strip in the left and right direction, and the splicing is completed, and the problem that the integral processing of the super large equipment underframe cannot be realized because of the transportation limitation is solved to the split type design, and the underframe can be flexibly stacked according to the glass length demand simultaneously, realizes the extension of the processing range, and the adaptability of the equipment to different size glass is improved significantly.
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Description

Technical Field

[0001] This utility model relates to the technical field of glass processing equipment, specifically to a large-scale inline processing center. Background Technology

[0002] In the glass processing industry, with the booming development of industries such as construction, automobiles, and electronics, the demand for glass processing is becoming increasingly diversified, sophisticated, and large-scale. Large-scale glass processing equipment, as key equipment to meet these demands, directly impacts the efficiency and quality of glass processing products.

[0003] To achieve integrated production of extra-large glass products, including edge grinding, polishing, notching, and drilling, existing equipment requires processing equipment larger than the glass itself. However, due to processing and transportation limitations, the machine base cannot be made into a single unit. For extra-large equipment bases, the size of the processing machine tools often prevents them from being processed as a whole. Furthermore, as glass processing technology becomes increasingly complex, the requirements for processing tools are also becoming more demanding. Some existing large glass processing equipment has a single type of processing tool, and the tool changing process is cumbersome, making it difficult to meet the rapid switching requirements of multiple complex processes such as edge grinding, polishing, notching, and drilling. Therefore, this utility model provides a large-scale integrated processing center. Utility Model Content

[0004] To address the shortcomings of existing technologies, this utility model provides a large-scale inline processing center that solves the problem that as glass processing technology becomes increasingly complex, the requirements for processing tools also become higher. Some existing large-scale glass processing equipment has a single type of processing tool configuration, and the tool changing process is cumbersome, making it difficult to meet the rapid switching needs of various complex processes such as edge grinding, polishing, notching, and drilling.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a large-scale inline processing center equipment, comprising a first base frame, on which a second base frame and a third base frame are mounted via splicing components; the first base frame is equipped with a processing mechanism for inline glass, the processing mechanism comprising:

[0006] The suction cup body is positioned above the first base frame;

[0007] The machining tool is set on one side of the first base frame, and a fixing plate is fixed on one side of the first base frame. A vertical rod is fixed to the upper end of the fixing plate. A protective cover body connected to the upper end of the vertical rod is provided through a rotating assembly. A mounting platform is fixed to one side of the vertical rod. The machining tool is located on the upper surface of the mounting platform, and a hydraulic gripper for fixing the machining tool is provided on the mounting platform.

[0008] Preferably, the splicing assembly is composed of a first base frame, a second base frame, and a third base frame spliced ​​together. The two connected splicing base frames are provided with steps for support in the vertical direction, and the connected splicing base frames are provided with positioning key strips in the horizontal direction. One end of the first base frame is provided with a film inlet platform, and one end of the third base frame is provided with a film outlet platform.

[0009] Preferably, the rotating assembly includes a micro motor fixed to one end of a vertical rod, and the protective cover body is fixedly connected to the outer wall of the micro motor.

[0010] Preferably, a first electric push rod is provided on the upper end surface of the first base frame, and the suction cup body is fixedly connected to the telescopic end of the first electric push rod.

[0011] Preferably, one side of the first base frame is provided with the output end of the drive motor connected to the output shaft, and the outer wall of the output shaft is provided with a belt for glass conveying.

[0012] Preferably, a fixing rod is provided at the upper edge of the first base frame, a crossbar is fixed to the side wall of the fixing rod, a second electric push rod is provided at the vertically downward end of the crossbar, and a pressing roller is provided at the telescopic end of the second electric push rod.

[0013] Preferably, the processing mechanism is provided with crossbeam supports on both sides, the upper end of the crossbeam supports is slidably connected to a horizontal slide rail, the inside of the horizontal slide rail is slidably connected to a processing seat, a camera body is provided on one side of the processing seat, an installation interface is provided at the lower end of the processing seat, and a computer operating body is provided on one side of the processing mechanism.

[0014] Beneficial effects

[0015] This utility model provides a large-scale inline machining center. Compared with the prior art, it has the following advantages:

[0016] Firstly, this utility model combines the first, second, and third base frames using splicing components. The vertical direction uses stepped alignment to form a reference, and the horizontal direction uses positioning key strips for precise alignment, thus completing the splicing. The split design solves the problem that the base frame of ultra-large equipment cannot be processed as a whole due to transportation limitations. At the same time, the base frames can be flexibly stacked according to the glass length requirements, thereby expanding the processing range and significantly improving the equipment's adaptability to glass of different sizes.

[0017] Secondly, this utility model features multiple sets of processing tools that support rapid tool changing, meeting the needs of complex processes such as edge grinding, polishing, notching, and drilling. The micro motor drives the main body of the protective cover to rotate, effectively preventing glass powder from adhering to the tool holder, ensuring smooth automatic tool changing, and reducing equipment maintenance costs. Attached Figure Description

[0018] Figure 1This is a schematic diagram of the overall top view structure of this utility model;

[0019] Figure 2 This is a schematic diagram of the overall front view structure of this utility model;

[0020] Figure 3 This is a schematic diagram of the overall side view structure of this utility model;

[0021] Figure 4 This is a schematic diagram of the main structure of the protective cover of this utility model;

[0022] Figure 5 For the present utility model Figure 3 Enlarged structural diagram at point A in the middle.

[0023] In the diagram: 1. First base frame; 101. Second base frame; 102. Third base frame; 2. Crossbeam support; 201. Horizontal slide rail; 202. Machining base; 203. Mounting interface; 204. Camera body; 205. Computer operating body; 3. Fixing plate; 301. Vertical rod; 302. Micro motor; 303. Protective cover body; 304. Mounting platform; 305. Hydraulic gripper; 306. Machining tool; 4. Drive motor; 401. Output shaft; 402. Belt; 5. First electric push rod; 501. Suction cup body; 6. Fixing rod; 601. Crossbar; 602. Second electric push rod; 603. Pressing roller; 7. Film infeed platform; 8. Film outfeed platform. Detailed Implementation

[0024] 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.

[0025] Please see Figures 1-5 This utility model provides a technical solution: a large-scale inline processing center equipment, including a first base frame 1, on which a second base frame 101 and a third base frame 102 connected by splicing components are arranged. A processing mechanism for inline glass is arranged on the first base frame 1, the processing mechanism including:

[0026] The suction cup body 501 is positioned above the first base frame 1;

[0027] The machining tool 306 is disposed on one side of the first base frame 1, and a fixing plate 3 is fixed on one side of the first base frame 1. A vertical rod 301 is fixed on the upper end of the fixing plate 3. A protective cover body 303 connected by a rotating assembly is disposed on the upper end of the vertical rod 301. A mounting platform 304 is fixed on one side of the vertical rod 301. The machining tool 306 is located on the upper surface of the mounting platform 304, and a hydraulic gripper 305 for fixing the machining tool 306 is disposed on the mounting platform 304.

[0028] In a preferred embodiment, the splicing assembly comprises a first base frame 1, a second base frame 101, and a third base frame 102 spliced ​​together. The two connected splicing base frames are provided with steps for vertical positioning, and the connected splicing base frames are provided with positioning keys in the left and right directions. One end of the first base frame 1 is provided with an infeed platform 7, and one end of the third base frame 102 is provided with an outfeed platform 8. The first base frame 1 is connected to the second base frame 101 and the third base frame 102 through the splicing assembly. During splicing, the vertical positioning is based on the steps, and the left and right directions are precisely aligned through the positioning keys, thus completing rapid splicing. The split splicing design allows for flexible expansion to adapt to the processing needs of glass of different lengths.

[0029] During processing, the infeed stage 7 conveys the glass to the spliced ​​base frame area, and after processing, it is output by the outfeed stage 8.

[0030] In a preferred embodiment, the rotating assembly includes a micro motor 302 fixed to one end of a vertical rod 301. A protective cover body 303 is fixedly connected to the outer wall of the micro motor 302. The machining tool 306 is placed on the mounting table 304 and fixed by a hydraulic gripper 305 to prevent the tool from shaking during machining. During machining, the micro motor 302 drives the protective cover body 303 to flip to cover the machining tool 306 through the rotating assembly. After machining, it flips open to facilitate tool removal or replacement. The protective cover body 303 can effectively prevent glass powder generated during machining from sticking to the tool holder, ensuring the smoothness of automatic tool changing and reducing equipment maintenance costs.

[0031] The machining tool 306 is equipped with multiple sets that support quick tool changing to meet the needs of complex processes such as edge grinding, polishing, notching, and drilling.

[0032] In a preferred embodiment, a first electric push rod 5 is provided on the upper end face of the first base frame 1. The suction cup body 501 is fixedly connected to the telescopic end of the first electric push rod 5. An output shaft 401 is connected to the output end of the drive motor 4 on one side of the first base frame 1. A belt 402 for glass conveying is provided on the outer wall of the output shaft 401. When the drive motor 4 starts, it drives the belt 402 to rotate through the output shaft 401. The glass is conveyed from the infeed table 7 onto the belt 402. When the glass reaches the designated position, the first electric push rod 5 extends, pushes the suction cup body 501 to rise and sucks up the glass. After processing, the first electric push rod 5 retracts, the suction cup body 501 descends, and the glass is put back onto the belt 402. The belt 402 conveys the glass smoothly in conjunction with the drive motor 4, achieving a high degree of automation.

[0033] In a preferred embodiment, a fixing rod 6 is provided at the upper edge of the first base frame 1, and a crossbar 601 is fixed to the side wall of the fixing rod 6. A second electric push rod 602 is provided at the vertically downward end of the crossbar 601. A pressing roller 603 is provided at the telescopic end of the second electric push rod 602. When the glass is conveyed, the second electric push rod 602 extends and pushes the pressing roller 603 down to contact the glass surface. The pressing roller 603 rotates along with the glass during the movement of the glass, and plays a pressing and positioning role on the glass to prevent the glass from deviating.

[0034] The pressing roller 603 can be adjusted in height according to the glass thickness via the second electric push rod 602 to accommodate glass of different thicknesses.

[0035] In a preferred embodiment, crossbeam supports 2 are provided on both sides of the processing mechanism. A horizontal slide rail 201 is slidably connected to the upper end of the crossbeam supports 2. A processing seat 202 is slidably connected inside the horizontal slide rail 201. A camera body 204 is provided on one side of the processing seat 202. An installation interface 203 is provided at the lower end of the processing seat 202. A computer operating body 205 is provided on one side of the processing mechanism. The processing seat 202 slides along the horizontal slide rail 201 on the crossbeam supports 2, driving the camera body 204 to move above the glass. The camera body 204 takes a picture of the glass and positions it, transmitting the position information to the computer operating body 205. The computer controls the processing seat 202 to process the glass through the processing tools installed by the installation interface 203 according to the positioning information.

[0036] The computer reads the product information based on the photo location and moves to the processing tool 306 to select different grinding wheels or milling cutters to complete different processing processes such as edge grinding, polishing, notching, and drilling.

[0037] Furthermore, any content not described in detail in this specification is existing technology known to those skilled in the art.

[0038] During processing, the feeding table 7 conveys the glass to the base area after it is precisely aligned vertically with the first base frame 1, the second base frame 101, and the third base frame 102 by the splicing components, using the step as a reference and the positioning key strips in the left and right directions. The drive motor 4 starts and drives the belt 402 through the output shaft 401, and the glass is conveyed onto the belt 402. At the same time, the second electric push rod 602 at the lower end of the crossbar 601 on the fixed rod 6 at the upper edge of the first base frame 1 extends and pushes the pressing roller 603 down to contact the glass surface. It rotates with the glass during the movement to press and position it, preventing the glass from shifting.

[0039] When the glass reaches the designated position, the first electric push rod 5 on the upper surface of the first base frame 1 extends, pushing the suction cup body 501 to rise and suck up the glass. Subsequently, the processing seat 202 slides within the horizontal slide rail 201 on the upper end of the crossbeam support 2 on both sides of the processing mechanism, causing the camera body 204 to move above the glass, take pictures of the glass, and transmit the position information to the computer operation body 205. The computer controls the processing seat 202 to perform processing through the processing tools installed by the installation interface 203 according to the positioning information.

[0040] During processing, the micro motor 302 at one end of the vertical rod 301 drives the protective cover body 303 to flip onto the cover mounting table 304 and onto the processing tool 306 fixed by the hydraulic gripper 305. Multiple sets of processing tools 306 can be quickly changed to meet the needs of complex processes such as edge grinding and polishing, and the protective cover body 303 prevents glass powder from sticking to the tool holder. After processing, the micro motor 302 drives the protective cover body 303 to flip and open, the first electric push rod 5 retracts, the suction cup body 501 descends to put the glass back onto the belt 402, and finally output by the output table 8.

[0041] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0042] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A large-scale inline machining center, comprising a first base frame (1), characterized in that: The first base frame (1) is provided with a second base frame (101) and a third base frame (102) connected by splicing components. The first base frame (1) is provided with a processing mechanism for connecting glass, the processing mechanism including: The suction cup body (501) is positioned above the first base frame (1); A machining tool (306) is disposed on one side of a first base frame (1), and a fixing plate (3) is fixed on one side of the first base frame (1). A vertical rod (301) is fixed at the upper end of the fixing plate (3). A protective cover body (303) connected by a rotating assembly is disposed at the upper end of the vertical rod (301). A mounting platform (304) is fixed on one side of the vertical rod (301). The machining tool (306) is located on the upper surface of the mounting platform (304), and a hydraulic gripper (305) for fixing the machining tool (306) is disposed on the mounting platform (304).

2. The large-scale inline machining center equipment according to claim 1, characterized in that: The splicing assembly is composed of a first base frame (1), a second base frame (101) and a third base frame (102). The two connected splicing base frames are provided with steps for positioning in the vertical direction. The connected splicing base frames are provided with positioning key strips in the horizontal direction. One end of the first base frame (1) is provided with a film inlet platform (7), and one end of the third base frame (102) is provided with a film outlet platform (8).

3. The large-scale inline machining center equipment according to claim 1, characterized in that: The rotating assembly includes a vertical rod (301) with a micro motor (302) fixed at one end, and the protective cover body (303) is fixedly connected to the outer wall of the micro motor (302).

4. The large-scale inline machining center equipment according to claim 1, characterized in that: The upper end face of the first base frame (1) is provided with a first electric push rod (5), and the suction cup body (501) is fixedly connected to the telescopic end of the first electric push rod (5).

5. A large-scale inline machining center according to claim 1, characterized in that: The first base frame (1) has an output shaft (401) connected to the output end of a drive motor (4) on one side, and a belt (402) for glass conveying is provided on the outer wall of the output shaft (401).

6. The large-scale inline machining center equipment according to claim 1, characterized in that: A fixing rod (6) is provided at the edge of the upper end face of the first base frame (1). A crossbar (601) is fixed to the side wall of the fixing rod (6). A second electric push rod (602) is provided at the vertically downward end of the crossbar (601). A pressing roller (603) is provided at the telescopic end of the second electric push rod (602).

7. A large-scale inline machining center according to claim 1, characterized in that: The processing mechanism is provided with crossbeam supports (2) on both sides. A horizontal slide rail (201) is slidably connected to the upper end of the crossbeam supports (2). A processing seat (202) is slidably connected inside the horizontal slide rail (201). A camera body (204) is provided on one side of the processing seat (202). An installation interface (203) is provided at the lower end of the processing seat (202). A computer operating body (205) is provided on one side of the processing mechanism.