Glass cutting workbench
By setting up a receiving space between the baffle and the cutting table on the side of the glass cutting table, and using a linear drive mechanism to drive the positive pressure air duct and the negative pressure suction pipe, combined with a blowing part, a slag suction part and a scraper, efficient cleaning of the glass cutting table is achieved, solving the problem of low efficiency in cleaning glass residues in the existing technology.
Patent Information
- Application Number
- CN202422602153.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-28
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-10-28
AI Technical Summary
The existing glass cutting workbench is inefficient in cleaning glass debris, manual cleaning is difficult, the debris can easily scratch the glass, and the flannel is difficult to clean the glass.
A receiving space is set between the baffle and the cutting table on the side of the cutting table, equipped with a linear drive mechanism to drive the positive pressure air duct and the negative pressure suction pipe, combined with a blowing part, a slag suction part and a scraper to realize automatic cleaning of glass residues.
It achieves efficient and high-intensity cleaning of the glass cutting table, avoids residual glass debris from damaging the glass, and simplifies the cleaning process.
Smart Images

Figure CN223316594U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of glass cutting, in particular to a glass cutting workbench. Background Art
[0002] Glass is an amorphous inorganic non-metallic material. It is generally made of a variety of inorganic minerals as the main raw materials, with a small amount of auxiliary raw materials added. It is widely used in buildings to block wind and transmit light. Due to the different specifications of glass, it needs to be cut and processed according to consumer needs.
[0003] The work surface for glass cutting is usually covered with a layer of velvet, which directly contacts the flat glass to be cut, providing cushioning and protection. However, after the cutter cuts the glass, glass debris will remain on the work surface. If the work surface is not cleaned before the next piece of glass is placed, the debris can easily scratch the glass, resulting in damage and unevenness on the glass surface. Cleaning is usually done manually with a broom, which is troublesome, and the glass easily adheres to the velvet, making it difficult to clean. Utility Model Content
[0004] In view of the above problems, the present invention is proposed to provide a glass cutting workbench that overcomes the above problems or at least partially solves the above problems.
[0005] In order to solve the above problems, the utility model discloses a glass cutting workbench, comprising a cutting table, the table top of which is covered with velvet, a baffle provided on the periphery of the cutting table, a receiving space for receiving glass residues between the baffle and the cutting table, and an opening on one side of the baffle; the top surface of the cutting table is lower than the top surface of the baffle;
[0006] A linear drive mechanism is provided on the top of the opposite sides of the baffle, and two positive-pressure air ducts and negative-pressure suction pipes are provided between the two linear drive mechanisms. A blowing part abutting against the cutting table is provided on the side of the positive-pressure air duct away from the negative-pressure suction pipe, and a slag suction part abutting against the cutting table is provided on the side of the negative-pressure suction pipe away from the positive-pressure suction pipe; scraping plates are also provided at the bottom of the positive-pressure air duct and the negative-pressure suction pipe near their two ends, and the scraping plates correspond to the receiving space and abut against its bottom.
[0007] Furthermore, the linear drive mechanism includes:
[0008] Base, two bases are provided, and the two bases are respectively arranged at the top ends of one side of the baffle;
[0009] A fixing seat, the fixing seat is arranged at the top of the baffle away from the opening end thereof and is spaced apart from the adjacent base;
[0010] A threaded rod, the threaded rod is rotatably provided on the two bases, and one end of the threaded rod is provided with a transmission wheel and is provided on the fixed seat; a transmission belt is provided on the two opposite transmission wheels;
[0011] A slider is threadedly connected to the threaded rod; the positive pressure air duct and the negative pressure suction pipe are fixedly connected to the slider.
[0012] Furthermore, one end of one of the threaded rods away from the fixing seat is connected to a driving motor, and the driving motor is fixed to the stop platform.
[0013] Furthermore, at least one end of the positive-pressure air duct is connected to an external air supply device through a connector, and at least one end of the negative-pressure suction pipe is connected to a negative-pressure slag collection device through a connector.
[0014] Furthermore, the diameter of the positive-pressure air duct is smaller than the diameter of the negative-pressure suction pipe.
[0015] Furthermore, the blowing member is a first hollow plate in an elongated shape, the length of the first hollow plate is the same as the length of the cutting table, the opposite sides of the first hollow plate in the width direction are connected, and one side thereof is connected to the positive pressure air duct.
[0016] Furthermore, the slag suction member is a second long hollow plate, the length of the second hollow plate is the same as the length of the cutting table, the opposite sides of the second hollow plate in the width direction are connected, and one side thereof is connected to the negative pressure suction pipe.
[0017] Furthermore, the thickness of the first hollow plate is smaller than the thickness of the second hollow plate.
[0018] Furthermore, the positive-pressure air duct is located closer to the opening of the baffle relative to the negative-pressure suction pipe.
[0019] Furthermore, the scraper plate is located between opposite sides of the positive-pressure air duct and the negative-pressure suction pipe, and the width of the scraper plate is adapted to the width of the receiving space.
[0020] In an embodiment of the present application, a baffle is provided on the peripheral side of the cutting table, and a receiving space for receiving glass residues is provided between the baffle and the cutting table, and one side of the baffle is open; the top surface of the cutting table is lower than the top surface of the baffle; linear drive mechanisms are provided on the tops of the opposite sides of the baffle, and two positive-pressure air ducts and negative-pressure suction pipes are provided between the two linear drive mechanisms, and a blowing part abutting the cutting table is provided on the side of the positive-pressure air duct away from the negative-pressure suction pipe, and a slag suction part abutting the cutting table is provided on the side of the negative-pressure suction pipe away from the positive-pressure suction pipe; scraping plates are provided at the bottom of the positive-pressure air duct and the negative-pressure suction pipe near their two ends, and the scraping plates correspond to the receiving space and abut their bottoms. A baffle is provided on the periphery of the cutting table, and a receiving space is provided at a certain distance therefrom. When the glass is cut, the debris falls onto the cutting table and the receiving space. A linear drive mechanism is provided on the baffle to drive the positive pressure air duct and the negative pressure suction pipe connected therebetween to move linearly along the cutting table. The blowing member is used to blow air from the cutting table surface to remove the debris, blowing the debris off the flannel and dropping it into the receiving spaces on both sides. The suction member is used to suction air from the cutting table surface to remove the debris, and the debris remaining on the flannel is sucked away. The scraping plates on both sides of the bottom of the positive pressure air duct and the negative pressure suction pipe can scrape the glass debris in the receiving space and scrape it to the side of the baffle opening for easy cleaning. The present application can clean the cutting table surface efficiently and intensively, and can clean the glass debris to the end for easy cleaning, thereby preventing the glass debris from remaining on the cutting table and damaging the glass. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the technical solution of the present application, the following is a brief introduction to the drawings required for the description of the present application. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0022] Figure 1 A schematic structural diagram of a glass cutting workbench provided in an embodiment of the present application;
[0023] Figure 2 A front view of a glass cutting workbench provided in an embodiment of the present application;
[0024] Figure 3 A side view of a glass cutting workbench provided in an embodiment of the present application.
[0025] Description of reference numerals:
[0026] 1-cutting table, 2-blocking table, 3-receiving space, 4-positive pressure air duct, 5-negative pressure suction pipe, 41-blowing part, 51-slag suction part, 6-slag scraper, 71-base, 72-fixed seat, 73-threaded rod, 74-transmission belt, 75-slider, 76-chute, 77-drive motor. DETAILED DESCRIPTION
[0027] To make the objectives, features, and advantages of this application more readily apparent, the present application is further described below in conjunction with the accompanying drawings and specific embodiments. It is apparent that the embodiments described are only a portion of the embodiments of this application, not all of them. All other embodiments derived by persons of ordinary skill in the art based on the embodiments in this application without inventive effort are also within the scope of protection of this application.
[0028] Reference Figure 1-Figure 3 , shows a structural schematic diagram of a glass cutting workbench, which may specifically include: a cutting table 1, the table top of the cutting table 1 is covered with velvet, characterized in that the cutting table 1 is provided with a baffle 2 on the periphery of the cutting table 1, a receiving space 3 for receiving glass residues is provided between the baffle 2 and the cutting table 1, and one side of the baffle 2 is open; the top surface of the cutting table 1 is lower than the top surface of the baffle 2; linear drive mechanisms are provided on the tops of the opposite two sides of the baffle 2, and two positive-pressure air ducts 4 and negative-pressure suction pipes 5 are provided between the two linear drive mechanisms. The positive-pressure air duct 4 is provided with a blowing member 41 abutting against the cutting table 1 on the side away from the negative-pressure suction pipe 5, and the negative-pressure suction pipe 5 is provided with a slag suction member 51 abutting against the cutting table 1 on the side away from the positive-pressure suction pipe; the bottom of the positive-pressure air duct 4 and the negative-pressure suction pipe 5 is also provided with a scraping plate 6 near both ends thereof, and the scraping plate 6 corresponds to the receiving space 3 and abuts against its bottom.
[0029] In an embodiment of the present application, a baffle 2 is provided on the side of the cutting table 1, and a receiving space 3 for receiving glass residues is provided between the baffle 2 and the cutting table 1, and one side of the baffle 2 is open; the top surface of the cutting table 1 is lower than the top surface of the baffle 2; linear drive mechanisms are provided on the tops of the opposite sides of the baffle 2, and two positive-pressure air ducts 4 and negative-pressure suction pipes 5 are provided between the two linear drive mechanisms. The positive-pressure air duct 4 is provided with a blowing part 41 abutting against the cutting table 1 on the side away from the negative-pressure suction pipe 5, and the negative-pressure suction pipe 5 is provided with a slag suction part 51 abutting against the cutting table 1 on the side away from the positive-pressure suction pipe; the bottom of the positive-pressure air duct 4 and the negative-pressure suction pipe 5 is also provided with a scraper 6 near their two ends, and the scraper 6 corresponds to the receiving space 3 and abuts against its bottom. A baffle 2 is provided on the peripheral side of the cutting table 1, and a receiving space 3 is provided at a certain distance therefrom. When the glass is cut, the debris falls into the cutting table 1 and the receiving space 3. A linear drive mechanism is provided on the baffle 2 to drive the positive pressure air duct 4 and the negative pressure suction pipe 5 connected therebetween to move linearly along the cutting table 1. The blowing member 41 is used to blow air to remove the debris from the table top of the cutting table 1, and the debris is blown off the flannel cloth and dropped into the receiving space 3 on both sides. The suction member 51 is used to suction the table top of the cutting table 1 to remove the debris, and the debris remaining on the flannel cloth is sucked away. The scraping plates 6 on both sides of the bottom of the positive pressure air duct 4 and the negative pressure suction pipe 5 can scrape the glass debris in the receiving space 3 and scrape it to the side of the opening of the baffle 2 for easy cleaning. The present application can clean the table top of the cutting table 1 with high efficiency and intensity, and can clean the glass debris to the end for easy cleaning, thereby preventing the glass debris from remaining on the cutting table 1 and damaging the glass.
[0030] Next, a glass cutting workbench in this exemplary embodiment will be further described.
[0031] In one embodiment of the present application, a baffle 2 is provided around the cutting table 1. A receiving space 3 for receiving glass debris is defined between the baffle 2 and the cutting table 1. Specifically, a certain distance is maintained between the inner side of the baffle 2 and the outer sidewall of the cutting table 1, allowing debris from the glass cutting process to fall into the receiving space 3. One side of the baffle 2 is open, facilitating the removal of glass debris that falls into the receiving space 3. The top surface of the cutting table 1 is lower than that of the baffle 2, allowing the sidewalls of the baffle 2 to block any flying glass debris.
[0032] The tops of the two opposite sides of the baffle 2 are provided with linear drive mechanisms. Two positive-pressure air ducts 4 and negative-pressure suction pipes 5 are provided adjacent to each other between the two linear drive mechanisms. The linear drive mechanisms drive the positive-pressure air ducts 4 and negative-pressure suction pipes 5 to move linearly along the cutting table 1 to clean the surface of the cutting table 1. The positive-pressure air duct 4 is provided with a blowing member 41 that abuts against the cutting table 1 on the side away from the negative-pressure suction pipe 5. The blowing member 41 is used to blow air to remove debris from the cutting table 1, blowing glass debris that falls onto the flannel during the cutting process into the receiving spaces 3 on both sides. The negative-pressure suction pipe 5 is provided with a slag suction member 51 that abuts against the cutting table 1 on the side away from the positive-pressure suction pipe. The slag suction member 51 is used to absorb and remove glass debris remaining on the flannel. The suction force of the negative pressure can further remove debris that cannot be blown off. Compared with traditional manual cleaning, it can remove glass debris efficiently and quickly. Scraper plates 6 are also provided near the bottom ends of the positive-pressure air duct 4 and the negative-pressure suction pipe 5. These plates correspond to the receiving space 3 and abut against its bottom. These plates are used to scrape away glass debris that falls into the receiving space 3. As the positive-pressure air duct 4 and the negative-pressure suction pipe 5 move, the plates 6 move synchronously, scraping the glass debris toward the opening of the platform 2 for easier cleaning. A slag bag can be installed below the opening. When the slag bag 6 pushes the debris toward this end, it can be pushed into the bag.
[0033] As an example, the linear drive mechanism includes: a base 71, two of which are provided, and the two bases 71 are respectively provided at the top ends of one side of the baffle 2; a fixed seat 72, the fixed seat 72 is provided at the top of the baffle 2 away from its open end and spaced apart from the adjacent base 71; a threaded rod 73, the threaded rod 73 is rotatably passed through the two bases 71, and one end of the threaded rod 73 is provided with a transmission wheel and passed through the fixed seat 72; a transmission belt 74 is provided on the two opposite transmission wheels; a slider 75, the slider 75 is threadedly connected to the threaded rod 73; the positive pressure air duct 4 and the negative pressure suction pipe 5 are fixedly connected to the slider 75.
[0034] By rotating the threaded rod 73, the slider 75 is driven to move linearly, and the slider 75 drives the positive-pressure air duct 4 and the negative-pressure suction pipe 5 to move linearly; by setting a transmission wheel and a transmission belt 74, only one of the threaded rods 73 needs to be driven to rotate, so that the two threaded rods 73 can rotate synchronously, thereby driving the positive-pressure air duct 4 and the negative-pressure suction pipe 5 to move stably.
[0035] As an example, a slide groove 76 can be set on the top of the baffle 2, and the slider 75 is limitedly slidably connected to the slide groove 76, which can improve the stability of the slider 75 and further improve the stability of the positive pressure air duct 4 and the negative pressure air duct.
[0036] As an example, one end of the threaded rod 73 away from the fixing seat 72 is connected to the driving motor 77, and the driving motor 77 is fixed to the stop platform 2. The driving motor 77 is used to drive the threaded rod 73 connected thereto to rotate.
[0037] As an example, at least one end of the positive-pressure air duct 4 is connected to an external air supply device through a connector, and at least one end of the negative-pressure suction pipe 5 is connected to a negative-pressure slag collection device through a connector.
[0038] In this embodiment, both ends of the positive-pressure air duct 4 are connected to external air supply equipment to increase the air supply force and, in turn, improve the removal of glass debris. Both ends of the negative-pressure suction pipe 5 are connected to negative-pressure debris collection equipment to increase the negative-pressure suction force and, in turn, improve the absorption of glass debris. The negative-pressure debris collection equipment can be a conventional negative-pressure dust bag, a negative-pressure debris suction bucket, or the like.
[0039] As an example, the diameter of the positive pressure air duct 4 is smaller than the diameter of the negative pressure suction pipe 5. Reducing the diameter of the positive pressure air duct 4 can increase its blowing force, and the larger diameter of the negative pressure suction pipe 5 is convenient for absorbing glass debris.
[0040] As an example, the blowing member 41 is a first, elongated hollow plate. The length of the first hollow plate is the same as that of the cutting table 1, allowing for full contact with the cutting table 1 and enhancing cleaning effectiveness. Opposite sides of the first hollow plate are connected in the width direction, and one side is connected to the positive-pressure air duct 4. With this design, an external air supply device transmits air from the first hollow plate to the flannel cloth via the positive-pressure air duct 4, removing glass debris.
[0041] As an example, the debris suction member 51 is a second, elongated hollow plate. The second hollow plate is the same length as the cutting table 1, allowing for full contact with the cutting table 1 and enhancing cleaning effectiveness. Opposite sides of the second hollow plate are connected in the width direction, and one side is connected to the negative pressure suction pipe 5. This design allows the external negative pressure receiving device to remove residual glass debris from the flannel through the second hollow plate.
[0042] As an example, the thickness of the first hollow plate is smaller than that of the second hollow plate, and their sizes are respectively adapted to the positive pressure air duct 4 and the negative pressure suction pipe 5. The principles are the same. The first hollow plate with a smaller thickness can increase the blowing wind force, and the second hollow plate with a larger thickness is convenient for adsorbing glass debris.
[0043] As an example, the positive-pressure air duct 4 is positioned closer to the opening of the platform 2 than the negative-pressure suction pipe 5. With this design, during operation, as the positive-pressure suction pipe and the negative-pressure suction pipe 5 move toward the opening of the platform 2, the positive-pressure air duct 4 blows away any debris that falls from the flannel cloth, while the negative-pressure suction pipe 5 further removes any remaining debris using negative pressure from the rear. After the positive-pressure air duct 4 drops the debris into the receiving spaces 3 on either side, the scrapers 6 on either side scrape and push the fallen debris toward the opening of the platform 2. The negative-pressure suction pipe 5 also absorbs any remaining debris in the receiving spaces 3. This structural design results in a more effective cleaning effect for glass debris.
[0044] As an example, the scraper plate 6 is located between the two opposite sides of the positive-pressure air duct 4 and the negative-pressure suction pipe 5 , and the width of the scraper plate 6 is adapted to the width of the receiving space 3 to improve the debris removal effect.
[0045] Finally, it should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or terminal device that includes a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or terminal device. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of additional identical elements in the process, method, article, or terminal device that includes the element.
[0046] The above is a detailed introduction to a glass cutting workbench provided by the present invention. Specific examples are used in this article to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only used to help understand the method and core idea of the present invention. At the same time, for general technical personnel in this field, according to the idea of the present invention, there will be changes in the specific implementation method and application scope. In summary, the content of this specification should not be understood as a limitation on the present invention.
Claims
1. A glass cutting workbench, comprising a cutting table, the table top of which is covered with velvet, characterized in that: A baffle is provided on the periphery of the cutting table, a receiving space for receiving glass residue is provided between the baffle and the cutting table, and one side of the baffle is open; the top surface of the cutting table is lower than the top surface of the baffle; A linear drive mechanism is provided on the top of the opposite sides of the baffle, and two positive-pressure air ducts and negative-pressure suction pipes are provided between the two linear drive mechanisms. A blowing part abutting against the cutting table is provided on the side of the positive-pressure air duct away from the negative-pressure suction pipe, and a slag suction part abutting against the cutting table is provided on the side of the negative-pressure suction pipe away from the positive-pressure air duct; scraping plates are also provided at the bottom of the positive-pressure air duct and the negative-pressure suction pipe near their two ends, and the scraping plates correspond to the receiving space and abut against its bottom.
2. The glass cutting workbench according to claim 1, characterized in that: The linear drive mechanism comprises: Base, two bases are provided, and the two bases are respectively arranged at the top ends of one side of the baffle; A fixing seat, the fixing seat is arranged at the top of the baffle away from the opening end thereof and is spaced apart from the adjacent base; A threaded rod, the threaded rod is rotatably provided on the two bases, and one end of the threaded rod is provided with a transmission wheel and is provided on the fixed seat; a transmission belt is provided on the two opposite transmission wheels; A slider is threadedly connected to the threaded rod; the positive pressure air duct and the negative pressure suction pipe are fixedly connected to the slider.
3. The glass cutting workbench according to claim 2, characterized in that: One end of one of the threaded rods away from the fixing seat is connected to a driving motor, and the driving motor is fixed to the stop platform.
4. The glass cutting workbench according to claim 1, characterized in that: At least one end of the positive pressure air duct is connected to an external air supply device through a connector, and at least one end of the negative pressure suction pipe is connected to a negative pressure slag collection device through a connector.
5. The glass cutting workbench according to claim 1, characterized in that: The diameter of the positive-pressure air duct is smaller than the diameter of the negative-pressure suction pipe.
6. The glass cutting workbench according to claim 1 or 5, characterized in that: The blowing member is a first hollow plate in an elongated shape. The length of the first hollow plate is the same as that of the cutting table. Two opposite sides of the first hollow plate in the width direction are connected, and one side thereof is connected to the positive pressure air duct.
7. The glass cutting workbench according to claim 6, characterized in that: The slag suction member is a second long hollow plate, the length of the second hollow plate is the same as the length of the cutting table, the opposite two sides of the second hollow plate in the width direction are connected, and one side thereof is connected to the negative pressure suction pipe.
8. The glass cutting workbench according to claim 7, characterized in that: The thickness of the first hollow plate is smaller than the thickness of the second hollow plate.
9. The glass cutting workbench according to claim 1, characterized in that: The positive pressure air duct is located at a side of the opening of the negative pressure suction pipe close to the baffle.
10. The glass cutting workbench according to claim 1 or 9, characterized in that: The scraper plate is located between two opposite sides of the positive-pressure air duct and the negative-pressure suction pipe, and the width of the scraper plate is adapted to the width of the receiving space.