Carrier plate glass cutting waste collecting device

By designing collection components and auxiliary recycling devices, the glass shards are cleaned up and the water flow is recycled, solving the problems of glass waste shard adhesion and water waste, and achieving normal operation and cost savings for the equipment.

CN223866536UActive Publication Date: 2026-02-03SICHUAN SHUWANG CHENSHENG NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202520474702.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-18
Publication Date
2026-02-03
Estimated Expiration
2035-03-18

AI Technical Summary

Technical Problem

Glass waste fragments adhere to the structural components of the collection device due to the presence of water droplets. Over time, this accumulation can cause the device to malfunction, and the large volume of water flow during operation results in water waste and increased production costs.

Method used

The design incorporates collection components and auxiliary recycling devices. By using a rotating brush and water spray system, glass shards are cleaned up and water is recycled to prevent shards from accumulating and to enable water reuse.

Benefits of technology

Effectively cleans up glass shards, ensures the normal operation of the collection device, saves water resources, and reduces production costs.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223866536U_ABST
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Abstract

The utility model belongs to the field of glass cutting waste collection, and relates to a carrier plate glass cutting waste collection device which comprises a cutting table, collection grooves are symmetrically formed in the two sides of the end face of the top of the cutting table, collection assemblies are installed on the outer sides of the two collection grooves, and a net plate is installed on each frame plate of a rotating frame. An auxiliary recovery device is installed on the cutting table and comprises a sliding frame, the vertical section of a table body of the cutting table is sleeved with the sliding frame in a sliding mode, water spraying pipes are symmetrically installed on the two sides of a transverse rod of the sliding frame, and nozzles are installed at the bottoms of the two water spraying pipes. Through the cooperation of the collecting assembly and the auxiliary recycling device, the situation that follow-up collecting operation is affected due to the fact that waste materials are accumulated on the surface of the collecting structural part is avoided, water flow used in operation can be recycled, and production cost is saved.
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Description

Technical Field

[0001] This utility model belongs to the field of glass cutting waste collection, and relates to a carrier plate glass cutting waste collection device. Background Technology

[0002] During the cutting of carrier glass, some cutting waste is generated. This waste not only affects the cleanliness of the work surface, but also interferes with subsequent cutting operations. It is necessary to use a collection device to collect this waste.

[0003] For example, patent publication number CN216609247U discloses a waste collection device for glass fiber production and cutting, which describes that "it includes a device body, a collection box and a crushing device. It can realize automated material discharge, and during material discharge, it will divide into two chambers. The upper chamber can continue to collect materials without stopping the collection work. After the material discharge is completed, the two chambers are connected again, and the material falls into the collection box. The overall sealing is good and can reduce waste splashing."

[0004] The existing technology has the following technical defects: Some existing glass cutting technologies use water flow for auxiliary operations. At this time, the glass waste and fragments generated will adhere to the structural components of the collection device due to the presence of water droplets. Over time, the accumulation will cause the subsequent collection device to malfunction. Moreover, using a large amount of water flow for a long time will waste water resources and increase production costs. Utility Model Content

[0005] The technical problem this utility model aims to solve is that glass waste fragments will adhere to the structural components of the collection device due to the presence of water droplets. Long-term accumulation will cause the subsequent collection device to malfunction. Furthermore, long-term operation using a large amount of water will waste water resources and increase production costs. To overcome the shortcomings of the existing technology, this utility model provides a collection device for glass cutting waste.

[0006] This utility model includes a cutting table, on both sides of the top end face of the cutting table, symmetrically provided with collection grooves, and collection components installed on the outer sides of each collection groove. Each collection component includes a collection box, and the interior of each collection box encloses a collection cavity. Rotating openings are provided through the inner walls of the two collection grooves near the corresponding collection boxes, and the rotating openings communicate with the corresponding collection cavities. Rotating shafts are installed in each of the two rotating openings, and rotating frames are installed on the shafts of the two rotating shafts. Each frame plate of the rotating frames is equipped with a mesh plate, and a filter plate is installed at a lower position inside the cavity of the collection cavity.

[0007] Preferably, an auxiliary recycling device is installed on the cutting table. The auxiliary recycling device includes a sliding frame. The sliding frame is slidably fitted on the outside of the vertical section of the cutting table body. Water spray pipes are symmetrically installed on both sides of the crossbar of the sliding frame, and nozzles are installed at the bottom of the two water spray pipes.

[0008] Preferably, drive motors are symmetrically mounted on the vertical structural surface of one end of the cutting table, and the output shaft of the drive motor is connected to the rotation shaft at the corresponding position.

[0009] Preferably, a fixing plate is fixedly attached to the outer surface of each of the two collection boxes, and a screw is installed between each pair of fixing plates. A movable frame is fitted on the outside of the cross section of each of the two screws. The frame of the movable frame is inserted into the collection cavity and a first motor is installed thereon. A rotating brush is installed at the end of the output shaft of the first motor. The rotating brush acts on the vertical mesh plate. A second motor is installed on one side of each pair of fixing plates, and the output shaft of each second motor is connected to the screw at the corresponding position.

[0010] Preferably, the same end of both water spray pipes is connected to a connecting pipe, a liquid pump is installed on the body of the connecting pipe, a connecting hose is installed at the bottom of the connecting pipe, and the two ends of the connecting hose are respectively connected to the collection tanks on both sides.

[0011] Preferably, a slot is provided at the center of the crossbar of the sliding frame, the two ends of the slot are open to the outside, and a scraper is installed inside the slot, the bottom end face of the scraper is tangent to the top end face of the cutting table.

[0012] Preferably, the cutting table has symmetrical grooves on its vertical surfaces at both ends, and sliders are symmetrically fixed to the inner walls of the frame at both ends of the sliding frame. The sliders slide along the grooves. A mounting frame is fixed to the bottom of the cutting table, and a lead screw is installed between the frames of the mounting frame. The bottom frame of the sliding frame is fitted outside the cross-section of the lead screw. A servo motor is installed on one side of the mounting frame, and the output shaft end of the servo motor is connected to the end of the lead screw.

[0013] Working process or working principle:

[0014] Through the structural design of the collection components and auxiliary recycling device, when a large amount of water-laden glass waste falls from the top of the cutting table, the servo motor on the mounting frame is activated. The lead screw rotates, and with the assistance of the slider and the chute, the sliding frame drives the water spray pipe and nozzle to move between the collection tank. The scraper moves back and forth accordingly, rinsing the table surface while pushing the waste and water from the table surface into the collection tank. Glass waste fragments fall onto the mesh plate, and after a period of time, the water drips and collects at the bottom of the collection tank. The drive motor then operates, and the rotating shaft drives the rotating frame and mesh plate to rotate. Most of the accumulated glass waste, after water control, is sent into the collection chamber through the rotating port, while some smaller pieces... Small pieces of glass waste will still adhere to the surface of the mesh plate. The second motor operates, and the screw rotates, causing the moving frame to drive the first motor along the collection chamber. Subsequently, the first motor drives the rotating brush to sweep the glass fragments off the vertically positioned mesh plate, preventing them from adhering to and accumulating on the surface of the collection structure, thus ensuring the normal operation of the collection assembly. Simultaneously, the pump on the connecting pipe operates, drawing water from the bottom of the collection tank through the connecting hose and pipe into the spray pipe, and then spraying it again onto the cutting table surface through nozzles. This achieves water reuse during operation, saving water resources, reducing production costs, and ensuring the cleanliness of the cutting table surface.

[0015] Compared with the prior art, the beneficial effects of this utility model are:

[0016] The collection component of this invention can sweep away and collect glass shards adhering to the surface of the collection device structure, preventing waste from accumulating on the surface of the collection structure and affecting subsequent collection operations. Furthermore, with the cooperation of the auxiliary recycling device, the water used in the operation can be recycled, saving production costs. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model.

[0018] Figure 2 This is a schematic diagram of the mounting component structure on the cutting table of this utility model.

[0019] Figure 3 This is a schematic diagram of the collection box structure of this utility model.

[0020] Figure 4 This is a schematic diagram of the sliding frame structure of this utility model.

[0021] Figure 5 This is the utility model Figure 4 A magnified structural diagram of point A in the middle.

[0022] In the diagram: 1. Cutting table; 2. Collection tank; 3. Collection assembly; 401. Collection box; 402. Collection chamber; 403. Rotating port; 404. Rotating shaft; 405. Rotating frame; 406. Mesh plate; 407. Drive motor; 408. Fixed plate; 409. Screw; 410. Moving frame; 411. First motor; 412. Rotating brush; 413. Second motor; 414. Filter plate; 501. Sliding frame; 502. Water spray pipe; 503. Nozzle; 504. Slide groove; 505. Slider; 506. Connecting pipe; 507. Liquid pump; 508. Connecting hose; 509. Slot; 510. Scraper; 511. Mounting bracket; 512. Lead screw; 513. Servo motor. Detailed Implementation

[0023] Example 1

[0024] like Figures 1-3 As shown, a waste collection device for cutting glass substrate includes a cutting table 1. Collection grooves 2 are symmetrically arranged on both sides of the top end face of the cutting table 1 to collect waste pushed onto the table. Collection components 3 are installed on the outer sides of each collection groove 2, each containing a collection box 401. The two collection boxes 401 enclose a collection cavity 402. Rotation ports 403 are provided through the inner walls of the corresponding collection boxes 401 in each of the two collection grooves 2 to ensure the rotation of a rotating frame 405 and prevent waste accumulation on any part of the rotating frame 405. The rotation ports 403 communicate with the corresponding collection cavities 402. Rotating shafts 404 are installed in each of the two rotation ports 403, and rotating frames 405 are installed on the shafts of each of the two rotating shafts 404. A mesh plate 406 is installed on each frame plate of the rotating frame 405 to control water in the waste. A filter plate 414 is installed at a lower position inside the collection cavity 402.

[0025] A drive motor 407 is symmetrically mounted on the vertical structural surface of one end of the cutting table 1. The output shaft of the drive motor 407 is connected to the rotating shaft 404 at the corresponding position to ensure that the rotating frame 405 can achieve the effect of periodic rotation.

[0026] Two collection boxes 401 are fixed with fixing plates 408 on their outer surfaces. Each pair of fixing plates 408 is connected to a screw 409. Each screw 409 has a movable frame 410 fitted around its cross-section. The frame of the movable frame 410 is inserted into the collection chamber 402 and is equipped with a first motor 411. A rotating brush 412 is installed at the end of the output shaft of the first motor 411. The rotating brush 412 acts on the vertical mesh plate 406. A second motor 413 is installed on one side of each pair of fixing plates 408. The output shaft of each second motor 413 is connected to the screw 409 at the corresponding position to provide driving force for the back-and-forth operation of the rotating brush 412.

[0027] Through the structural design of the collection component 3, when collecting the generated glass fragments, the glass waste fragments are pushed into the collection trough 2 and fall onto the mesh plate 406. After a period of time, the drive motor 407 operates, and the rotating shaft 404 drives the rotating frame 405 and the mesh plate 406 to rotate. Most of the accumulated glass waste is sent into the collection chamber 402 through the rotating port 403 after water control. However, some small-volume and light-weight glass waste will still adhere to the surface of the mesh plate 406. Subsequently, the second motor 413 operates, and the screw 409 rotates, causing the moving frame 410 to drive the first motor 411 to move along the collection chamber 402. At the same time, the first motor 411 drives the rotating brush 412 to rotate, thereby sweeping the glass fragments off the vertical mesh plate 406, avoiding the accumulation of glass fragments on the surface of the collection structure, and ensuring the normal operation of the collection component 3 in the future.

[0028] Example 2

[0029] like Figures 1-5 As shown, an auxiliary recycling device is installed on the cutting table 1. The auxiliary recycling device includes a sliding frame 501. The sliding frame 501 is slidably fitted on the outside of the vertical section of the cutting table 1. Water spray pipes 502 are symmetrically installed on both sides of the crossbar of the sliding frame 501. Nozzles 503 are installed at the bottom of the two water spray pipes 502. The sliding frame 501 can drive the water spray pipes 502 and nozzles 503 to move, thereby achieving auxiliary cleaning of the cutting table 1.

[0030] Both ends of the two water spray pipes 502 are connected to the connecting pipe 506. A liquid pump 507 is installed on the body of the connecting pipe 506. A connecting hose 508 is installed at the bottom of the connecting pipe 506. The two ends of the connecting hose 508 are connected to the collection tanks 2 on both sides, so as to realize the reuse of the water accumulated inside the collection tank 2 and achieve the effect of saving water resources.

[0031] A slot 509 is provided at the center of the crossbar of the sliding frame 501. Both ends of the slot 509 are open to the outside. A scraper 510 is installed inside the slot 509. The bottom end face of the scraper 510 is tangent to the top end face of the cutting table 1, so that the cutting table 1 can always be kept clean during the back and forth operation of the scraper 510, which facilitates the smooth progress of subsequent cutting operations.

[0032] The cutting table 1 has symmetrical grooves 504 on its vertical surfaces at both ends. Slider 505 is symmetrically fixed to the inner walls of the frame at both ends of the sliding frame 501. The slider 505 slides along the grooves 504. The bottom of the cutting table 1 is fixed to the mounting frame 511. A lead screw 512 is installed between the frames of the mounting frame 511. The bottom frame of the sliding frame 501 is fitted outside the cross section of the lead screw 512. A servo motor 513 is installed on one side of the mounting frame 511. The output shaft end of the servo motor 513 is connected to the end of the lead screw 512. The servo motor 513 drives the lead screw 512 to rotate, thereby providing driving force for the movement of the sliding frame 501.

[0033] Through the structural design of the auxiliary recycling device, when a large amount of water-containing glass waste falls from the top of the cutting table 1, the servo motor 513 on the mounting frame 511 is activated, and the lead screw 512 rotates. With the assistance of the slider 505 and the slide groove 504, the sliding frame 501 drives the water spray pipe 502 and the nozzle 503 to move between the collection tank 2. The scraper 510 moves back and forth accordingly, so that while rinsing the table surface, the waste and water flow on the table surface can be pushed into the collection tank 2. Under the effect of stillness, the water flow will gather at the bottom of the collection tank 2. At the same time, the liquid pump 507 on the connecting pipe 506 operates, so that the water flow at the bottom of the collection tank 2 is drawn into the water spray pipe 502 through the connecting hose 508 and the connecting pipe 506, and then sprayed back onto the table surface of the cutting table 1 through the nozzle 503. This realizes the reuse of water flow during operation, saves water resources, reduces production costs, and also ensures the cleanliness of the table surface of the cutting table 1.

[0034] The descriptions of the orientation and relative positional relationships of the structure in this utility model, such as descriptions of front, back, left, right, up, and down, do not constitute a limitation on this utility model, but are merely for the convenience of description.

Claims

1. A waste collection device for cutting glass substrates, characterized in that: The device includes a cutting table (1), on which collection slots (2) are symmetrically provided on both sides of the top end face of the cutting table (1). Collection components (3) are installed on the outer sides of the two collection slots (2). The collection components (3) include collection boxes (401). The two collection boxes (401) enclose a collection cavity (402). Rotation ports (403) are provided through the inner wall of the two collection slots (2) near the corresponding collection boxes (401). The rotation ports (403) are connected to the corresponding collection cavities (402). Rotation shafts (404) are installed in the two rotation ports (403). Rotation frames (405) are installed on the shafts of the two rotation shafts (404). A mesh plate (406) is installed on each frame plate of the rotation frame (405). A filter plate (414) is installed at a lower position inside the cavity of the collection cavity (402).

2. The glass cutting waste collection device according to claim 1, characterized in that: An auxiliary recycling device is installed on the cutting table (1). The auxiliary recycling device includes a sliding frame (501). The sliding frame (501) is slidably sleeved on the outside of the vertical section of the cutting table (1). Water spray pipes (502) are symmetrically installed on both sides of the crossbar of the sliding frame (501). A nozzle (503) is installed at the bottom of each of the two water spray pipes (502).

3. The waste collection device for glass cutting according to claim 2, characterized in that: A drive motor (407) is symmetrically mounted on the vertical structural surface of one end of the cutting table (1), and the output shaft of the drive motor (407) is connected to the rotating shaft (404) at the corresponding position.

4. The waste collection device for cutting glass substrates according to claim 1, characterized in that: A fixing plate (408) is fixedly attached to the outer surface of each of the two collection boxes (401). A screw (409) is installed between each pair of fixing plates (408). A movable frame (410) is sleeved on the outside of the cross section of each of the two screws (409). The frame of the movable frame (410) is inserted into the collection cavity (402) and a first motor (411) is installed thereon. A rotating brush (412) is installed at the end of the output shaft of the first motor (411). The rotating brush (412) acts on the vertical mesh plate (406). A second motor (413) is installed on one side of each pair of fixing plates (408). The output shaft of each second motor (413) is connected to the screw (409) at the corresponding position.

5. The waste collection device for glass cutting according to claim 2, characterized in that: Both ends of the two water spray pipes (502) are connected to the connecting pipe (506). A liquid pump (507) is installed on the body of the connecting pipe (506). A connecting hose (508) is installed at the bottom of the connecting pipe (506). The two ends of the connecting hose (508) are respectively connected to the collection tanks (2) on both sides.

6. The waste collection device for glass cutting according to claim 2, characterized in that: The sliding frame (501) has a slot (509) at the center of the crossbar. Both ends of the slot (509) are open to the outside. A scraper (510) is installed inside the slot (509). The bottom end face of the scraper (510) is tangent to the top end face of the cutting table (1).

7. The waste collection device for glass cutting according to claim 6, characterized in that: The cutting table (1) has symmetrical grooves (504) on its vertical surfaces at both ends. Sliders (505) are symmetrically fixed to the inner walls of the frame at both ends of the sliding frame (501). The sliders (505) slide along the grooves (504). The bottom of the cutting table (1) is fixed to a mounting frame (511). A lead screw (512) is installed between the frames of the mounting frame (511). The bottom frame of the sliding frame (501) is fitted outside the cross-section of the lead screw (512). A servo motor (513) is installed on one side of the mounting frame (511). The output shaft end of the servo motor (513) is connected to the end of the lead screw (512).