A type of on-site cutting equipment for glass crystal ceramic panels
By designing a multi-functional on-site cutting device, the problems of dust, stains, corrosion, and cleanliness during the cutting of glass crystal ceramic slabs were solved, achieving stable and efficient cutting and cleaning results.
Patent Information
- Application Number
- CN202510815559.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-18
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2045-06-18
AI Technical Summary
When cutting glass crystal ceramic slabs on-site, the dust generated contains glass, ceramic particles, or metal shavings. When moistened, these particles form abrasive stains, affecting the cleanliness of the cut and potentially corroding the surface of the ceramic slab.
A field cutting device was designed, comprising a housing, a support plate assembly, a cutting assembly, an edge grinding assembly, and a cleaning assembly. The support plate assembly supports the glass crystal ceramic plate, the cutting assembly performs the cutting, the edge grinding assembly grinds the cutting burrs and scrapes off the stains, and the cleaning assembly scrapes off surface moisture and stains. Combined with a water spray dust suppression and dust extraction system, the cutting quality and surface cleanliness are ensured.
It effectively prevents stains from corroding the ceramic plate surface, keeps the cut clean, improves cutting stability and flexibility, reduces the impact of dust, and ensures cutting quality and surface cleanliness.
Smart Images

Figure CN120396145B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of ceramic plate processing technology, specifically a field cutting device for glass crystal sub-ceramic plates. Background Technology
[0002] Glass crystal ceramic slabs are a new type of decorative material with many excellent properties, widely used in the field of architectural decoration. The main component is vinyl ester, using natural marble powder to form a high-density, high-fiber mesh structure as the solid base layer. The resin surface is covered with a super-wear-resistant polymer layer; some are also made from a mixture of melamine resin and inorganic fillers. They can be cut, grooved, and bent to meet different design requirements. In terms of maintenance, due to their smooth and delicate surface, they are easy to clean; daily wiping with a damp cloth is sufficient to keep them clean and tidy.
[0003] A Chinese patent with announcement number CN222223098U discloses a glass crystal ceramic plate cutting machine. During operation, water is sprayed through an infusion pipe onto the ceramic plate cutting area. This allows the water to absorb dust, reducing dust dispersion and protecting the stability of the equipment's normal operation. Furthermore, by providing a guide plate and guide holes at the end of the infusion pipe, the water sprayed from the infusion pipe can be dispersed over a wider area as it passes through the guide plate and guide holes, thereby increasing the dust suppression area and improving the dust removal effect.
[0004] In current technologies, when using water spray to suppress dust generated during on-site cutting of glass crystal ceramic slabs, the cutting blade dissipates heat during cutting. The dust contains glass, ceramic particles, or metal shavings. The suppressed dust may form abrasive stains on the cut surface of the glass crystal ceramic slab due to the moisture and heat dissipation. If not cleaned in time, acidic or alkaline stains may corrode the glaze layer on the surface of the ceramic slab and also affect the cleanliness of the glass crystal ceramic slab surface.
[0005] Therefore, the present invention provides a field cutting device for glass crystal sub-ceramic plates. Summary of the Invention
[0006] In order to overcome the shortcomings of the prior art, at least one technical problem raised in the background art is solved.
[0007] The technical solution adopted by the present invention to solve its technical problem is as follows: The present invention provides a glass crystal ceramic tile on-site cutting device, including a box and a working box. The working box is set outside the box. Two sets of self-locking rollers are symmetrically arranged at the bottom of the box. A support plate assembly is set inside the box. The support plate assembly is used to support and position the glass crystal ceramic tile. The support plate assembly is placed below the working box. A cutting assembly is set inside the working box. The cutting assembly is used to cut the glass crystal ceramic tile. An edge grinding assembly is set inside the working box. The edge grinding assembly is placed on one side of the cutting assembly. The edge grinding assembly is used to grind and scrape the side edge of the glass crystal ceramic tile. A decontamination assembly is set inside the working box. The decontamination assembly is placed on one side of the edge grinding assembly. The decontamination assembly includes a slag pusher. The decontamination assembly is used to drive the slag pusher to scrape the surface of the glass crystal ceramic tile.
[0008] When on-site cutting of a glass-crystal ceramic tile is required, the box is moved around the site using two sets of self-locking rollers at the bottom. Compared to a fixed cutting device, this improves the mobility and flexibility of the device during on-site cutting. When the box moves to the designated cutting position, the self-locking rollers lock to prevent the box from shifting during cutting. Then, support plates are used to support the glass-crystal ceramic tile parallel to the ground. One end of the tile is placed above the support plate assembly inside the box, which supports the side of the tile to prevent it from warping due to excessive strain pressure during cutting. Once the support plate assembly has completed supporting the side of the tile, the tile is placed. The cutting assembly inside the box then cuts the tile, thus completing the cutting operation. Simultaneously, the edge grinding component scrapes the cut edges of the glass crystal ceramic tile, removing burrs and cleaning stains adhering to the cut edges. This prevents stains from remaining on the cut surfaces and affecting the adhesion between the two glass crystal ceramic tiles during the bonding process. It also prevents acidic or alkaline stains from corroding the internal structure of the glass crystal ceramic tile. Once the edge grinding component has finished scraping the cut edges, the cleaning component moves the slag pusher to scrape the surface of the glass crystal ceramic tile, removing any adhering substances. This ensures a clean cut surface and prevents moisture from adhering to the surface, thus avoiding potential corrosion of the glaze layer.
[0009] Preferably, the support plate assembly includes multiple support plate motors, each fixedly mounted on the inner wall of the housing. Support plates are fixedly mounted on the output ends of each motor, and the tops of these support plates are designed to fit against the bottom of the glass crystal ceramic tile. A counterweight is fixedly installed inside the housing. When the glass crystal ceramic tile is supported parallel to the ground using the support plate assembly, with the cut end of the tile placed inside the housing, the support plate motors will drive the support plates to support the cut end of the tile, preventing it from slipping during cutting. During cutting, excessive strain and cutting pressure can cause the glass crystal ceramic plate to warp, affecting the cutting effect. The counterweight is designed to ensure that the machine body is balanced during cutting of the glass crystal ceramic plate, preventing the machine body from shifting due to the cutting pressure and affecting the cutting operation. At the same time, multiple support plates driven by multiple support motors support the cutting end of the glass crystal ceramic plate, and multiple support plates support the bottom of the glass crystal ceramic plate. This allows the device to cut glass crystal ceramic plates of different thicknesses on-site.
[0010] Preferably, each of the four corners of the outer wall of the work box is fixedly equipped with a telescopic rod, and a connecting plate is fixedly installed at one end of each of the four telescopic rods. The outer wall of the connecting plate is slidably connected to the inner wall of the box. When the support plate motor drives the support plate to support the cutting end of the glass crystal ceramic plate, the telescopic rods on the connecting plate are driven to move the work box laterally, thereby moving the work box to the position where the glass crystal ceramic plate needs to be cut, and adjusting the cutting position. By moving the work box laterally with the telescopic rods to adjust the cutting position, this device can perform cutting operations at multiple different cutting positions on the glass crystal ceramic plate, thereby adjusting the cutting position. The connecting plate serves as a connection and support for the movement and operation of the work box.
[0011] Preferably, an electric slide rail is fixedly installed on the inner wall of the housing, and an electric slider is slidably mounted on the electric slide rail. One side of the electric slider is slidably connected to the outer wall of the connecting plate, and the outer wall of the connecting plate is slidably connected to the outer wall of the electric slide rail. When the telescopic rod drives the work box to move laterally and capture the cutting position, the cutting component inside the work box is controlled to perform the operation. When the cutting component rotates and cuts, the electric slider drives the work box to slide within the electric slide rail via the telescopic rod. The electric slider can then drive the cutting component to move on the cutting end face of the glass crystal ceramic plate, thereby enabling the electric slider to drive the cutting component to cut the glass crystal ceramic plate. Compared to traditional handheld cutting devices, the use of an electric slider to move and cut the glass crystal ceramic slab provides greater stability and avoids the misalignment that can occur with handheld cutting. It should be noted that initially, the electric slider positions the work box in the center. When placing the glass crystal ceramic slab, the electric slider moves the work box to the side of the electric guide rail, thus moving the work box to one side of the glass crystal ceramic slab, providing a placement position and a cutting path for subsequent cutting.
[0012] Preferably, the cutting assembly includes a cutting blade, a cutting motor is fixedly installed on the outer wall of the work box, a blade holder is fixedly installed on the output end of the cutting motor, and the cutting blade can be fixedly connected to the output end of the cutting motor through the blade holder. The cutting blade is placed inside the work box. When it is necessary to cut the glass crystal ceramic plate, the work box is moved within the electric slide rail by the electric slider, thereby causing the electric slider to move the cutting blade from one side of the glass crystal ceramic plate to the other side. At the same time, the cutting motor drives the cutting blade to rotate through the blade holder, and the cutting blade will cut the cutting end face of the glass crystal ceramic plate, thereby realizing the cutting operation of the glass crystal ceramic plate and playing the role of cutting the glass crystal ceramic plate.
[0013] Preferably, a water spraying device is fixedly installed on the inner wall of the work box. Two water spray nozzles are fixedly installed at the bottom of the water spraying device. Limited sliding rods are symmetrically fixedly installed at the bottom of the water spraying device. The bottom ends of the two limited sliding rods are slidably connected to a groove plate. An inclined plate is fixedly installed on the inner wall of the groove plate. One end of the inclined plate is placed on one side of the cutting blade. The bottom of the inclined plate can be slidably connected to the outer wall of the glass crystal ceramic plate. A pressure spring is symmetrically arranged between the top of the groove plate and the bottom of the water spraying device. The two pressure springs are respectively placed outside the two limited sliding rods. The two water spray nozzles are respectively placed in the middle position of the inclined plate. When the glass crystal ceramic plate is placed, the cutting side of the glass crystal ceramic plate is placed directly below the water spraying device, which is the side of the cutting blade. Then, the support plate is driven by the support plate motor to move upward. The support plate will push the glass crystal ceramic plate upward. During the upward movement, the top of the glass crystal ceramic plate will push the limit plate upward. When the limit plate moves upward, it will squeeze the bearing plate. The spring slides on the limiting rod. When the bottom of the glass crystal ceramic plate moves to a position flush with the lowest point of the cutting blade, the cutting and placement of the glass crystal ceramic plate is completed. Then, the cutting blade can be driven to cut the glass crystal ceramic plate. When the cutting blade cuts the glass crystal ceramic plate, the water spraying device sprays water through the spray nozzle. The water flows through the inclined plate between the groove plates towards the cutting edge, thus achieving the effect of spraying water to suppress dust at the cutting edge when the cutting blade cuts the glass crystal ceramic plate. The limiting plate is set to limit the water flow when it flows through the inclined plate towards the cutting edge, preventing the water from flowing away from both sides of the groove plate, reducing the phenomenon of insufficient water flow at the cutting edge and unsatisfactory dust suppression effect. It also prevents water from overflowing onto the surface of the glass crystal ceramic plate. Afterwards, the operator needs to wipe the surface to maintain the limiting effect.
[0014] Preferably, a smearing block is fixedly installed on one side of the groove plate. The outer wall of the smearing block is slidably connected to the inner wall of the working box. The outer wall of the smearing block can slidably connect to the surface of the glass crystal ceramic plate. When the electric slider drives the cutting blade to move through the working box to cut the glass crystal ceramic plate, the smearing block will scrape the surface of the glass crystal ceramic plate by the drive of the electric slider, thereby performing a surface treatment on the cut edge to prevent the presence of impurities or metal particles at the cut edge. This avoids impurities from embedding into the gaps in the cutting blade, accelerating the dulling of the cutting blade, and shortening the service life of the cutting blade. At the same time, it can also prevent the cutting blade from deviating when contacting the plate due to the presence of impurities or metal particles, which would cause the cutting line to be crooked, the size deviation, or the edge to break.
[0015] Preferably, the edge grinding assembly includes a grinding disc placed inside the work box. A driven wheel and a driving wheel are rotatably connected to the outer wall of the work box, with their teeth meshing. A tool holder is fixedly mounted on one end of the driven wheel, and the other end of the driven wheel is rotatably connected to the inner wall of the work box. The grinding disc is fixedly connected to one end of the driven wheel via the tool holder. A drive shaft is fixedly mounted on the outer wall of the other output end of the cutting motor and on the outer wall of one end of the driving wheel. A belt is provided between the two drive shafts. The center positions of the cutting blade and the grinding disc are on the same horizontal line, and the thickness of the grinding disc is the same as the thickness of the cutting blade. The outer wall of the work box rotates symmetrically. The device is connected to a door panel. When the cutting motor drives the cutting blade to rotate, the belt drives the drive wheel to rotate. The drive wheel rotates, which in turn drives the driven wheel to rotate. The driven wheel then drives the grinding disc to rotate synchronously with the cutting blade. As the cutting blade is cutting, the grinding disc rotates and grinds the cut edge. This process removes burrs generated during cutting and scrapes away dirt formed by the mixture of water and dust inside the cut edge, cleaning the inside of the cut edge. The door panel is designed to facilitate the replacement of the cutting blade and the grinding disc.
[0016] Preferably, a filter plate is fixedly installed on the inner wall of the work box, positioned between the cutting blade and the grinding disc. A dust extraction box is fixedly installed on the outer wall of the work box, with its interior communicating with the interior of the filter plate. Exhaust fans are fixedly installed on one end of the drive wheel and the other output end of the cutting motor. Airflow pipes are symmetrically fixedly installed on the outer wall of the dust extraction box, with two exhaust fans positioned inside the airflow pipes. When the cutting motor drives the drive wheel to rotate via a belt, the grinding disc and the cutting blade rotate inwards relative to each other due to the meshing of the driven wheel's teeth. Therefore, when the drive wheel and the cutting motor rotate, they drive the two exhaust fans to rotate, thus facilitating airflow. The airflow pipe draws air into the dust collection box. Since the dust collection box and the filter plate are connected, when the airflow passes through the airflow pipe to draw air into the dust collection box, the airflow will also pass through the filter plate to draw air from the cutting blade and the grinding disc. In conjunction with the relative inward rotation of the grinding disc and the cutting blade, the dust generated by the cutting blade that cannot be moistened by the water flow in time during cutting, as well as the burrs and dirt particles scraped by the grinding disc, are drawn into the dust collection box for storage, thereby increasing the dust suppression effect. The filter plate is designed to separate the grinding disc and the cutting blade when they rotate relative to each other, preventing interference between them during operation.
[0017] Preferably, the decontamination assembly also includes a hanging plate, which is fixedly installed on one side of the inner wall of the work box. The inner wall of the slag pusher is slidably connected to the outer wall of the hanging plate. A rectangular block is fixedly installed on the inner wall of the slag pusher. Shafts are symmetrically fixedly installed on the top of the rectangular block. The outer walls of the two shafts are slidably connected to the inner wall of the hanging plate, respectively. Return springs are symmetrically arranged between the top of the rectangular block and the bottom of the hanging plate. The two return springs are respectively placed outside the two shafts. An inclined sliding surface is opened on one side of the bottom of the slag pusher. Limiting plates are symmetrically fixedly installed on the outer wall of the trough plate. The outer wall of the slag pusher is slidably connected to the inner side of the two limiting plates. When the electric slider drives the cutting blade to move and cut the glass crystal ceramic plate, the movement of the electric slider... When the working box moves, it moves on the glass crystal ceramic plate, which in turn moves the slag pusher block onto the glass crystal ceramic plate. When the slag pusher block contacts the glass crystal ceramic plate, it is pushed by the side of the glass crystal ceramic plate by the electric slider, and then pushes the slag pusher block upward by squeezing the return spring on the hanging plate. When the slag pusher block moves to the top of the glass crystal ceramic plate, the elastic force of the return spring causes the bottom end of the slag pusher block to contact and adhere to the top of the glass crystal ceramic plate. With the limit plate limiting the side of the cutting edge, the bottom end of the slag pusher block will scrape and wipe away the water flow on the surface of the glass crystal ceramic plate, thereby cleaning the water stains on the surface of the glass crystal ceramic plate.
[0018] The beneficial effects of this invention are as follows:
[0019] 1. The on-site cutting equipment for glass crystal ceramic slabs of the present invention, wherein when the slag pusher moves onto the glass crystal ceramic slab, the slag pusher is pushed by the side of the glass crystal ceramic slab and presses against the return spring on the hanging plate to move upward. When the slag pusher moves to the top of the glass crystal ceramic slab, the bottom end of the slag pusher will contact and adhere to the top of the glass crystal ceramic slab through the elastic force of the return spring. With the limit plate limiting the side of the cutting opening, the bottom end of the slag pusher will perform a scraping operation on the cutting opening, thereby scraping and wiping away the water flow on the surface of the glass crystal ceramic slab, and playing the role of cleaning the water stains on the surface of the glass crystal ceramic slab.
[0020] 2. The on-site cutting equipment for glass crystal ceramic slabs described in this invention uses a drive wheel and a cutting motor to drive two exhaust fans to rotate and extract air from the dust collection box through an airflow pipe. The airflow then passes through a filter plate to extract air from the cutting blade and the grinding disc. In conjunction with the inward rotation of the grinding disc and the cutting blade, the dust generated when the water flow fails to wet the cutting blade in time, as well as the burrs and dirt particles scraped by the grinding disc, are extracted and finally drawn into the dust collection box, increasing the dust suppression effect.
[0021] 3. The on-site cutting equipment for glass crystal ceramic slabs described in this invention, when the cutting motor drives the cutting blade to rotate, the drive wheel rotates via a belt. The rotation of the drive wheel drives the driven wheel to rotate, which in turn drives the grinding disc to rotate synchronously with the cutting blade. As the cutting blade moves to cut the glass crystal ceramic slab, the grinding disc rotates and grinds the cut edge. This process removes burrs generated during the cutting operation and scrapes away dirt formed by the mixture of water and dust inside the cut edge, cleaning the inside of the cut edge.
[0022] 4. The on-site cutting equipment for glass crystal ceramic slabs described in this invention, when the cutting blade is driven to cut the glass crystal ceramic slab, the water spraying device sprays water through the spray nozzle. The water flow will flow towards the cutting edge through the inclined plate between the groove plates, thereby achieving the effect of spraying water to suppress dust at the cutting edge. The water flow is limited by the limiting plate to prevent the water flow from flowing away from both sides of the groove plate, reducing the phenomenon of insufficient water flow and unsatisfactory dust suppression effect at the cutting edge, and also preventing water from overflowing onto the surface of the glass crystal ceramic slab.
[0023] 5. The on-site cutting equipment for glass crystal ceramic slabs described in this invention places the cutting end of the glass crystal ceramic slab inside the housing. A support plate motor drives support plates to support the cutting end face of the glass crystal ceramic slab, preventing the glass crystal ceramic slab from warping due to excessive strain and cutting pressure during cutting, which would affect the cutting effect. Multiple support plate motors drive multiple support plates to support the cutting end of the glass crystal ceramic slab, and multiple support plate components support the bottom of the glass crystal ceramic slab. This allows the device to perform on-site cutting of glass crystal ceramic slabs of different thicknesses. Attached Figure Description
[0024] The invention will now be further described with reference to the accompanying drawings.
[0025] Figure 1 This is an overall diagram of the invention;
[0026] Figure 2 This is a main body diagram of the present invention;
[0027] Figure 3 This is the front view of the present invention;
[0028] Figure 4 This is a side view of the present invention;
[0029] Figure 5 This is a schematic diagram of the structure at the connecting plate in this invention;
[0030] Figure 6 This is a schematic diagram of the structure of the filter plate in this invention;
[0031] Figure 7 This is a schematic diagram of the structure of the airflow pipe in this invention;
[0032] Figure 8 This is a schematic diagram of the belt structure in this invention;
[0033] Figure 9 This is a schematic diagram of the structure of the groove plate in this invention;
[0034] Figure 10 This is a schematic diagram of the structure of the slag block in this invention;
[0035] Figure 11 This is a schematic diagram of the structure of the slag pusher block in this invention.
[0036] In the diagram: 1. Box body; 101. Counterweight; 2. Working box; 3. Support plate; 301. Support plate motor; 4. Electric slide rail; 401. Electric slider; 5. Telescopic rod; 501. Connecting plate; 6. Dust extraction box; 7. Water spray device; 701. Water spray nozzle; 8. Cutting blade; 9. Grinding disc; 10. Slag pusher; 1001. Rectangular block; 1002. Hanging plate; 1003. Return spring; 1004. Shaft; 11. Slag smearing block; 12. Cutting motor; 13. Airflow pipe; 1301. Exhaust fan; 14. Belt; 15. Drive wheel; 1501. Driven wheel; 16. Limiting plate; 17. Filter plate; 18. Trough plate; 1801. Inclined plate; 1802. Pressure spring; 1803. Limited sliding rod. Detailed Implementation
[0037] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.
[0038] like Figures 1 to 11 As shown in the embodiment of the present invention, a glass crystal ceramic slab on-site cutting device includes a housing 1 and a working box 2. The working box 2 is disposed outside the housing 1. Two sets of self-locking rollers are symmetrically arranged at the bottom of the housing 1. A support plate assembly is disposed inside the housing 1 to support and position the glass crystal ceramic slab. The support plate assembly is located below the working box 2. A cutting assembly is disposed inside the working box 2 to cut the glass crystal ceramic slab. An edge grinding assembly is disposed inside the working box 2 and is located on one side of the cutting assembly. The edge grinding assembly is used to grind and scrape the side edge of the glass crystal ceramic slab. A decontamination assembly is disposed inside the working box 2 and is located on one side of the edge grinding assembly. The decontamination assembly includes a slag pusher 10 and is used to drive the slag pusher 10 to scrape the surface of the glass crystal ceramic slab.
[0039] Because the cutting blade dissipates heat during cutting, the dust contains glass, ceramic particles, or metal shavings. The dust that is suppressed and blocked may form abrasive stains on the surface of the glass crystal ceramic plate due to moisture and the effect of heat dissipation. If not cleaned in time, acidic or alkaline stains may corrode the glaze layer on the surface of the ceramic plate and also affect the cleanliness of the glass crystal ceramic plate surface.
[0040] When on-site cutting of the glass crystal ceramic slab is required, the box 1 is moved on-site by pushing it. The box 1 moves via two sets of self-locking rollers at the bottom. Compared to a fixed cutting device, this improves the mobility and flexibility of the device during on-site cutting. When the box 1 moves to the designated cutting position, the self-locking rollers are locked to prevent the box 1 from shifting during cutting. Then, the glass crystal ceramic slab is supported parallel to the ground using a support plate. One end of the glass crystal ceramic slab is placed above the support plate assembly inside the box 1. The support plate assembly supports the side of the glass crystal ceramic slab to prevent it from warping due to excessive strain pressure during cutting. Once the support plate assembly has completed supporting the side of the glass crystal ceramic slab, the placement of the glass crystal ceramic slab is complete. Then, the cutting assembly inside the work box 2 is controlled to cut the glass crystal ceramic slab, thus realizing the cutting operation. At the same time, the edge grinding assembly grinds the glass crystal ceramic slab. The edges of the cut ceramic tile are ground and scraped, removing burrs and dirt adhering to the cut edges. This prevents dirt from sticking to the cut edges and affecting the adhesion between the two ceramic tiles during bonding. It also prevents acidic or alkaline dirt from corroding the internal structure of the ceramic tile. After the grinding component completes the grinding operation, the cleaning component drives the slag pusher 10 to scrape the surface of the ceramic tile, removing any adhering material. This ensures a clean cut surface and prevents moisture from adhering to the ceramic tile surface, thus avoiding corrosion of the glaze. It should be noted that the support plate can be an adjustable support leg.
[0041] like Figures 3 to 4 As shown, the support plate assembly includes a support plate motor 301. There are multiple support plate motors 301. All multiple support plate motors 301 are fixedly installed on the inner wall of the housing 1. Support plates 3 are fixedly installed at the output ends of the multiple support plate motors 301. The tops of the multiple support plates 3 can fit against the bottom of the glass crystal ceramic plate. A counterweight block 101 is fixedly installed inside the housing 1.
[0042] When the glass crystal ceramic plate is supported parallel to the ground using support plates, the cutting end of the glass crystal ceramic plate is placed inside the housing 1. The support plate motor 301 will drive the support plate 3 to support the cutting end of the glass crystal ceramic plate, preventing the glass crystal ceramic plate from tilting due to excessive strain and cutting pressure during cutting, which would affect the cutting effect. The counterweight 101 is set to ensure that the counterweight 101 provides counterweight to the machine body when cutting the glass crystal ceramic plate, preventing the machine body from shifting due to the cutting pressure during cutting, which would affect the cutting operation. At the same time, by using multiple support plate motors 301 to drive multiple support plates 3 to support the cutting end of the glass crystal ceramic plate, and with multiple support plates supporting the bottom of the glass crystal ceramic plate, this device can cut glass crystal ceramic plates of different thicknesses on site.
[0043] like Figure 5 As shown, telescopic rods 5 are fixedly installed at the four corners of the outer wall of the work box 2, and a connecting plate 501 is fixedly installed at one end of the four telescopic rods 5. The outer wall of the connecting plate 501 is slidably connected to the inner wall of the box body 1.
[0044] When the support plate motor 301 drives the support plate 3 to complete the support operation on the cutting end of the glass crystal ceramic plate, the telescopic rod 5 on the drive connecting plate 501 drives the working box 2 to move laterally, thereby moving the working box 2 to the position where the glass crystal ceramic plate needs to be cut, and adjusting the cutting position. By using the telescopic rod 5 to drive the working box 2 to move laterally and adjust the cutting position, this device can perform cutting operations on multiple different cutting positions of the glass crystal ceramic plate, and play the role of adjusting the cutting position. The connecting plate 501 is set to connect and support the movement and operation of the working box 2.
[0045] like Figure 5 As shown, an electric slide rail 4 is fixedly installed on the inner wall of the housing 1, and an electric slider 401 is slidably arranged on the electric slide rail 4. One side of the electric slider 401 is slidably connected to the outer wall of the connecting plate 501, and the outer wall of the connecting plate 501 is slidably connected to the outer wall of the electric slide rail 4.
[0046] When the telescopic rod 5 moves the work box 2 laterally to capture the cutting position, the cutting component inside the work box 2 is controlled to perform the operation. When the cutting component rotates and cuts, the electric slider 401 drives the work box 2 to slide within the electric slide rail 4 via the telescopic rod 5. The electric slider 401 can then drive the cutting component to move on the cutting end face of the glass crystal ceramic plate, thereby moving and cutting the glass crystal ceramic plate. Compared with the traditional handheld cutting device, using the electric slider 401 to drive the cutting component to move and cut the glass crystal ceramic plate makes the cutting more stable and avoids the phenomenon of cutting crookedly when handheld. It should be noted that in the initial state, the electric slider 401 drives the work box 2 to be in the middle position. When placing the glass crystal ceramic plate, the electric slider 401 drives the work box 2 to move to the side of the electric slide rail 4, thereby moving the work box 2 to one side of the glass crystal ceramic plate, providing a placement position for the glass crystal ceramic plate and also providing a cutting path for subsequent cutting.
[0047] like Figures 6 to 8 As shown, the cutting assembly includes a cutting blade 8, a cutting motor 12 is fixedly installed on the outer wall of the work box 2, a blade holder is fixedly installed on the output end of the cutting motor 12, the cutting blade 8 can be fixedly connected to the output end of the cutting motor 12 through the blade holder, and the cutting blade 8 is placed inside the work box 2;
[0048] When it is necessary to cut the glass crystal ceramic plate, the electric slider 401 drives the work box 2 to move within the electric slide rail 4, thereby causing the electric slider 401 to drive the cutting blade 8 to move from one side of the glass crystal ceramic plate to the other side. At the same time, the cutting motor 12 drives the cutting blade 8 to rotate through the blade holder. The cutting blade 8 will then cut the cutting end face of the glass crystal ceramic plate, thereby realizing the cutting operation of the glass crystal ceramic plate and achieving the function of cutting the glass crystal ceramic plate.
[0049] like Figures 9 to 10 As shown, a water spraying device 7 is fixedly installed on the inner wall of the work box 2. Two water spray nozzles 701 are fixedly installed at the bottom of the water spraying device 7. Limited sliding rods 1803 are symmetrically fixedly installed at the bottom of the water spraying device 7. The bottom ends of the two limited sliding rods 1803 are slidably connected to the groove plate 18. An inclined plate 1801 is fixedly installed on the inner wall of the groove plate 18. One end of the inclined plate 1801 is placed on one side of the cutting blade 8. The bottom of the inclined plate 1801 can be slidably connected to the outer wall of the glass crystal ceramic plate. A pressure spring 1802 is symmetrically arranged between the top of the groove plate 18 and the bottom of the water spraying device 7. The two pressure springs 1802 are respectively placed outside the two limited sliding rods 1803. The two water spray nozzles 701 are respectively placed in the middle position of the inclined plate 1801.
[0050] When placing the glass crystal ceramic plate, the cutting side of the plate is positioned directly below the water spray device 7, which is the side of the cutting blade 8. Then, the support plate motor 301 drives the support plate 3 upwards, which in turn pushes the glass crystal ceramic plate upwards. During this upward movement, the top of the glass crystal ceramic plate pushes the limiting plate 16 upwards. As the limiting plate 16 moves upwards, it compresses the pressure spring 1802, which slides on the sliding rod 1803. When the bottom of the glass crystal ceramic plate moves to a position flush with the lowest point of the cutting blade 8, the cutting and placement of the glass crystal ceramic plate is complete. The cutting blade 8 can then be driven to cut the glass crystal ceramic plate. During cutting, the water spraying device 7 sprays water through the spray nozzle 701. The water flows through the inclined plate 1801 between the groove plates 18 towards the cutting edge. This allows the water spraying device 7 to spray water at the cutting position when the cutting blade 8 cuts the glass crystal ceramic plate, thus suppressing dust at the cutting edge. The limiting plate 16 limits the water flow as it flows through the inclined plate 1801 towards the cutting edge, preventing the water from flowing away from both sides of the groove plate 18. This reduces the problem of insufficient water flow at the cutting edge and poor dust suppression effect. It also prevents water from overflowing onto the surface of the glass crystal ceramic plate, which would require subsequent wiping by the operator.
[0051] like Figure 10 As shown, a slag block 11 is fixedly installed on one side of the groove plate 18. The outer wall of the slag block 11 is slidably connected to the inner wall of the work box 2. The outer wall of the slag block 11 can be slidably connected to the surface of the glass crystal ceramic plate.
[0052] When the electric slider 401 moves the cutting blade 8 through the work box 2 to cut the glass crystal ceramic plate, the smearing block 11 will scrape the surface of the glass crystal ceramic plate through the electric slider 401, thereby performing a surface treatment on the cut edge to prevent the presence of impurities or metal particles at the cut edge, avoid impurities from embedding in the gaps of the cutting blade 8, accelerate the dulling of the cutting blade 8, and shorten the service life of the cutting blade 8. At the same time, it can also prevent the cutting blade 8 from deviating when contacting the plate due to the presence of impurities or metal particles, resulting in a non-straight cutting line, dimensional deviation, or edge chipping. It should be noted that the exterior of the smearing block 11 should be equipped with adhesive to prevent the smearing block 11 from scratching the surface of the glass crystal ceramic plate when scraping.
[0053] like Figure 8As shown, the edge grinding assembly includes a grinding disc 9, which is placed inside the work box 2. The outer wall of the work box 2 is rotatably connected to a driven wheel 1501 and a driving wheel 15. The teeth on the driven wheel 1501 and the driving wheel 15 mesh with each other. A tool holder is fixedly installed at one end of the driven wheel 1501. The driven wheel 1501 is rotatably connected to the inner wall of the work box 2. The grinding disc 9 is fixedly connected to one end of the driven wheel 1501 through the tool holder. A drive shaft is fixedly installed on the outer wall of the other output end of the cutting motor 12 and the outer wall of one end of the driving wheel 15. A belt 14 is provided between the two drive shafts. The center positions of the cutting blade 8 and the grinding disc 9 are placed on the same horizontal line and the thickness of the grinding disc 9 is the same as the thickness of the cutting blade 8. A door panel is symmetrically rotatably connected to the outer wall of the work box 2.
[0054] When the cutting motor 12 drives the cutting blade 8 to rotate, the belt 14 drives the drive wheel 15 to rotate. When the drive wheel 15 rotates, it drives the driven wheel 1501 to rotate. The driven wheel 1501 then drives the grinding disc 9 to rotate synchronously with the cutting blade 8. Thus, when the cutting blade 8 is cutting, the grinding disc 9 rotates and grinds the cut edge. On the one hand, it can grind the burrs generated by the cutting blade 8 during the cutting operation. On the other hand, it can also scrape the stains formed by the mixture of water and dust in the cut edge, scraping them out from the inside of the cut edge and cleaning the inside of the cut edge. The door panel is set to facilitate the replacement of the cutting blade 8 and the grinding disc 9.
[0055] like Figures 6 to 8 As shown, a filter plate 17 is fixedly installed on the inner wall of the work box 2. The filter plate 17 is placed between the cutting blade 8 and the grinding disc 9. A dust collection box 6 is fixedly installed on the outer wall of the work box 2. The interior of the dust collection box 6 is connected to the interior of the filter plate 17. An exhaust fan 1301 is fixedly installed on one end of the drive wheel 15 and the other output end of the cutting motor 12. Airflow pipes 13 are symmetrically fixedly installed on the outer wall of the dust collection box 6. The two exhaust fans 1301 are respectively placed inside the airflow pipes 13.
[0056] When the cutting motor 12 drives the drive wheel 15 to rotate via the belt 14, the grinding disc 9 and the cutting blade 8 will rotate inward relative to each other due to the meshing of the driven wheel 1501. Therefore, when the drive wheel 15 and the cutting motor 12 rotate, they drive the two exhaust fans 1301 to rotate. The two exhaust fans 1301 will then perform air extraction operations into the dust collection box 6 through the airflow pipe 13. Since the dust collection box 6 and the filter plate 17 are connected, when the airflow passes through the airflow pipe 13 to extract air from the dust collection box 6, the airflow... The filter plate 17 will draw air from the cutting blade 8 and the grinding disc 9. With the grinding disc 9 and the cutting blade 8 rotating inward relative to each other, the dust generated by the cutting blade 8 when the water flow fails to wet it in time, as well as the burrs and dirt particles scraped by the grinding disc 9, will be drawn into the dust collection box 6 for storage, thereby increasing the dust suppression effect. The filter plate 17 is designed to separate the grinding disc 9 and the cutting blade 8 when they rotate relative to each other, preventing them from interfering with each other during operation.
[0057] like Figures 9 to 11 As shown, the decontamination assembly also includes a hanging plate 1002, which is fixedly installed on one side of the inner wall of the work box 2. The inner wall of the slag pusher 10 is slidably connected to the outer wall of the hanging plate 1002. A rectangular block 1001 is fixedly installed on the inner wall of the slag pusher 10. A shaft 1004 is symmetrically fixedly installed on the top of the rectangular block 1001. The outer walls of the two shafts 1004 are slidably connected to the inner wall of the hanging plate 1002. A return spring 1003 is symmetrically arranged between the top of the rectangular block 1001 and the bottom of the hanging plate 1002. The two return springs 1003 are respectively placed outside the two shafts 1004. A sloping sliding surface is opened on one side of the bottom of the slag pusher 10. Limiting plates 16 are symmetrically fixedly installed on the outer wall of the trough plate 18. The outer wall of the slag pusher 10 is slidably connected to the inner side of the two limiting plates 16.
[0058] When the electric slider 401 drives the cutting blade 8 to move and cut the glass crystal ceramic plate, the movement of the electric slider 401 causes the work box 2 to move on the glass crystal ceramic plate. The work box 2 then drives the slag pusher 10 to move onto the glass crystal ceramic plate. When the slag pusher 10 contacts the glass crystal ceramic plate, driven by the electric slider 401, the slag pusher 10 is pushed by the side of the glass crystal ceramic plate and presses against the return spring 1003 on the hanging plate 1002, causing it to move upward. When the slag pusher 10 moves to the top of the glass crystal ceramic plate, the bottom end of the slag pusher 10 will contact and adhere to the top of the glass crystal ceramic plate by the elastic force of the return spring 1003. With the limit plate 16 limiting the side of the cut, the bottom end of the slag pusher 10 will scrape the cut, thereby scraping and wiping away the water flow on the surface of the glass crystal ceramic plate, thus cleaning the water stains on the surface of the glass crystal ceramic plate. It should be noted that the outer wall of the bottom end of the slag pusher 10 should be provided with a cotton pad.
[0059] Working Principle: When on-site cutting of a glass crystal ceramic slab is required, the box 1 is moved on-site by pushing it. The box 1 moves via two sets of self-locking rollers at the bottom. Compared to a fixed cutting device, this improves the mobility and flexibility of the device during on-site cutting. When the box 1 moves to the designated cutting position, the self-locking rollers are locked to prevent the box 1 from shifting during cutting. Then, a support plate is used to support the glass crystal ceramic slab parallel to the ground. One end of the glass crystal ceramic slab is placed above the support plate assembly inside the box 1. The support plate assembly supports the side of the glass crystal ceramic slab to prevent it from warping due to excessive strain pressure generated during cutting. When the support plate assembly has completed supporting the side of the glass crystal ceramic slab, the placement of the glass crystal ceramic slab is complete. Then, the cutting component inside the work box 2 is controlled to cut the glass crystal ceramic slab, thus realizing the cutting operation. During the cutting process, the edge grinding component scrapes the cut edges of the glass crystal ceramic plate, removing burrs and dirt adhering to the cut edges. This prevents dirt from adhering to the cut edge and affecting the bonding effect between the two glass crystal ceramic plates during the bonding process. It also prevents acidic or alkaline dirt from corroding the internal structure of the glass crystal ceramic plate. This achieves the effect of scraping the cut edges. When the edge grinding component completes the scraping operation on the cut edges of the glass crystal ceramic plate, the decontamination component drives the slag pusher 10 to scrape the surface of the glass crystal ceramic plate, thereby scraping and removing the adhering substances on the cut surface. This ensures that the cut surface of the glass crystal ceramic plate is clean after cutting and that the surface of the glass crystal ceramic plate is free of moisture, avoiding the possibility of dirt corroding the glaze layer of the ceramic plate.
[0060] When the glass crystal ceramic plate is supported parallel to the ground using support plates, the cutting end of the glass crystal ceramic plate is placed inside the housing 1. The support plate motor 301 will drive the support plate 3 to support the cutting end of the glass crystal ceramic plate, preventing the glass crystal ceramic plate from tilting due to excessive strain and cutting pressure during cutting, which would affect the cutting effect. The counterweight 101 is set to ensure that the counterweight 101 provides counterweight to the machine body when cutting the glass crystal ceramic plate, preventing the machine body from shifting due to the cutting pressure during cutting, which would affect the cutting operation. At the same time, by using multiple support plate motors 301 to drive multiple support plates 3 to support the cutting end of the glass crystal ceramic plate, and with multiple support plates supporting the bottom of the glass crystal ceramic plate, this device can cut glass crystal ceramic plates of different thicknesses on site.
[0061] When the support plate motor 301 drives the support plate 3 to complete the support operation on the cutting end of the glass crystal ceramic plate, the telescopic rod 5 on the drive connecting plate 501 drives the working box 2 to move laterally, thereby moving the working box 2 to the position where the glass crystal ceramic plate needs to be cut, and adjusting the cutting position. By driving the working box 2 to move laterally through the telescopic rod 5 to adjust the cutting position, this device can perform cutting operations on multiple different cutting positions of the glass crystal ceramic plate, and plays the role of adjusting the cutting position. The connecting plate 501 is set to connect and support the movement and operation of the working box 2.
[0062] When the telescopic rod 5 moves the work box 2 laterally to capture the cutting position, the cutting component inside the work box 2 is controlled to perform the operation. When the cutting component rotates and cuts, the electric slider 401 drives the work box 2 to slide within the electric slide rail 4 via the telescopic rod 5. The electric slider 401 can then drive the cutting component to move on the cutting end face of the glass crystal ceramic plate, thereby moving and cutting the glass crystal ceramic plate. Compared with the traditional handheld cutting device, using the electric slider 401 to drive the cutting component to move and cut the glass crystal ceramic plate makes the cutting more stable and avoids the phenomenon of cutting crookedly when handheld cutting. It should be noted that in the initial state, the electric slider 401 drives the work box 2 to be in the middle position of the electric slider 401. When placing the glass crystal ceramic plate, the electric slider 401 drives the work box 2 to move to the side of the electric slide rail 4, thereby moving the work box 2 to one side of the glass crystal ceramic plate, providing a placement position for the glass crystal ceramic plate and also providing a cutting path for subsequent cutting.
[0063] When it is necessary to cut the glass crystal ceramic plate, the working box 2 is moved within the electric slide rail 4 by the electric slider 401. This causes the electric slider 401 to move the cutting blade 8 from one side of the glass crystal ceramic plate to the other side. At the same time, the cutting motor 12 drives the cutting blade 8 to rotate through the blade holder. The cutting blade 8 will then cut the cutting end face of the glass crystal ceramic plate, thereby realizing the cutting operation of the glass crystal ceramic plate and playing the role of cutting the glass crystal ceramic plate.
[0064] When placing the glass crystal ceramic plate, the cutting side of the plate is positioned directly below the water spray device 7, which is the side of the cutting blade 8. Then, the support plate motor 301 drives the support plate 3 upwards, which in turn pushes the glass crystal ceramic plate upwards. During this upward movement, the top of the glass crystal ceramic plate pushes the limiting plate 16 upwards. As the limiting plate 16 moves upwards, it compresses the pressure spring 1802, which slides on the sliding rod 1803. When the bottom of the glass crystal ceramic plate moves to a position flush with the lowest point of the cutting blade 8, the cutting and placement of the glass crystal ceramic plate is complete. The cutting blade 8 can then be driven to cut the glass crystal ceramic plate. During cutting, the water spraying device 7 sprays water through the spray nozzle 701. The water flows through the inclined plate 1801 between the groove plates 18 towards the cutting edge. This allows the water spraying device 7 to spray water at the cutting position when the cutting blade 8 cuts the glass crystal ceramic plate, thus suppressing dust at the cutting edge. The limiting plate 16 limits the water flow when it flows through the inclined plate 1801 towards the cutting edge, preventing the water from flowing away from both sides of the groove plate 18. This reduces the phenomenon of insufficient water flow at the cutting edge and poor dust suppression effect. It also prevents water from overflowing onto the surface of the glass crystal ceramic plate, which requires subsequent wiping by the operator.
[0065] When the electric slider 401 moves the cutting blade 8 through the work box 2 to cut the glass crystal ceramic plate, the smearing block 11 will scrape the surface of the glass crystal ceramic plate through the electric slider 401, thereby performing a surface treatment on the cut edge to prevent the presence of impurities or metal particles at the cut edge, avoid impurities from embedding in the gaps of the cutting blade 8, accelerate the dulling of the cutting blade 8, shorten the service life of the cutting blade 8, and at the same time, it can also prevent the cutting blade 8 from deviating when contacting the plate due to the presence of impurities or metal particles, resulting in a non-straight cutting line, dimensional deviation or edge cracking.
[0066] When the cutting motor 12 drives the cutting blade 8 to rotate, the belt 14 drives the drive wheel 15 to rotate. When the drive wheel 15 rotates, it drives the driven wheel 1501 to rotate. The driven wheel 1501 then drives the grinding disc 9 to rotate synchronously with the cutting blade 8. Thus, when the cutting blade 8 is cutting, the grinding disc 9 rotates and grinds the cutting edge. On the one hand, it can grind the burrs generated by the cutting blade 8 during the cutting operation. On the other hand, it can also scrape the stains formed by the mixture of water and dust in the cutting edge, scraping them out from the inside of the cutting edge and cleaning the inside of the cutting edge. The door panel is set to facilitate the replacement of the cutting blade 8 and the grinding disc 9.
[0067] When the cutting motor 12 drives the drive wheel 15 to rotate via the belt 14, the grinding disc 9 and the cutting blade 8 will rotate inward relative to each other due to the meshing of the driven wheel 1501. Therefore, when the drive wheel 15 and the cutting motor 12 rotate, they drive the two exhaust fans 1301 to rotate. The two exhaust fans 1301 will then perform air extraction operations into the dust collection box 6 through the airflow pipe 13. Since the dust collection box 6 and the filter plate 17 are connected, when the airflow passes through the airflow pipe 13 to extract air from the dust collection box 6, the airflow... The filter plate 17 draws air from the cutting blade 8 and the grinding disc 9. This, combined with the inward rotation of the grinding disc 9 and the cutting blade 8, removes dust generated when the water flow fails to wet the cutting blade 8 during cutting, as well as burrs and dirt particles scraped by the grinding disc 9. All of this is then drawn into the dust collection box 6 for storage, enhancing the dust suppression effect. The filter plate 17 is designed to separate the grinding disc 9 and the cutting blade 8 during operation, preventing interference and any negative impact.
[0068] When the electric slider 401 drives the cutting blade 8 to move and cut the glass crystal ceramic plate, the working box 2 moves on the glass crystal ceramic plate due to the movement of the electric slider 401. The working box 2 then drives the slag pusher 10 to move onto the glass crystal ceramic plate. When the slag pusher 10 contacts the glass crystal ceramic plate, it is pushed by the side of the glass crystal ceramic plate by the electric slider 401 and presses the return spring 1003 on the hanging plate 1002 to move upward. When the slag pusher 10 moves to the top of the glass crystal ceramic plate, the bottom end of the slag pusher 10 will contact and adhere to the top of the glass crystal ceramic plate due to the elastic force of the return spring 1003. With the limit plate 16 limiting the side of the cut, the bottom end of the slag pusher 10 will scrape the cut, thereby scraping and wiping away the water on the surface of the glass crystal ceramic plate, thus cleaning the water stains on the surface of the glass crystal ceramic plate.
[0069] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. A field cutting device for glass crystal ceramic slabs, characterized in that: The system includes a housing and a work box. The work box is located outside the housing. Two sets of self-locking rollers are symmetrically arranged at the bottom of the housing. Inside the housing, there is a support plate assembly for supporting and positioning the glass crystal ceramic plate. The support plate assembly is located below the work box. Inside the work box, there is a cutting assembly for cutting the glass crystal ceramic plate. Inside the work box, there is an edge grinding assembly located to one side of the cutting assembly for grinding and scraping the side edges of the glass crystal ceramic plate. Inside the work box, there is a cleaning assembly located to one side of the edge grinding assembly. The cleaning assembly includes a slag pusher block for driving the slag pusher block to scrape the surface of the glass crystal ceramic plate. The decontamination assembly also includes a hanging plate, which is fixedly installed on one side of the inner wall of the work box. The inner wall of the slag pusher is slidably connected to the outer wall of the hanging plate. A rectangular block is fixedly installed on the inner wall of the slag pusher. Shafts are symmetrically fixedly installed on the top of the rectangular block. The outer walls of the two shafts are slidably connected to the inner wall of the hanging plate. Return springs are symmetrically arranged between the top of the rectangular block and the bottom of the hanging plate. The two return springs are respectively placed outside the two shafts. An inclined sliding surface is opened on one side of the bottom of the slag pusher. Limiting plates are symmetrically fixedly installed on the outer wall of the trough plate. The outer wall of the slag pusher is slidably connected to the inner side of the two limiting plates.
2. The on-site cutting equipment for glass crystal ceramic slabs according to claim 1, characterized in that: The support plate assembly includes a support plate motor, and there are multiple support plate motors. All the support plate motors are fixedly installed on the inner wall of the housing. Support plates are fixedly installed at the output ends of the multiple support plate motors. The top of the multiple support plates can fit against the bottom of the glass crystal ceramic plate. A counterweight is fixedly installed inside the housing.
3. The on-site cutting equipment for glass crystal ceramic slabs according to claim 2, characterized in that: Telescopic rods are fixedly installed at the four corners of the outer wall of the work box, and a connecting plate is fixedly installed at one end of each of the four telescopic rods. The outer wall of the connecting plate is slidably connected to the inner wall of the box.
4. The on-site cutting equipment for glass crystal ceramic slabs according to claim 3, characterized in that: An electric slide rail is fixedly installed on the inner wall of the box, and an electric slider is slidably mounted on the electric slide rail. One side of the electric slider is slidably connected to the outer wall of the connecting plate, and the outer wall of the connecting plate is slidably connected to the outer wall of the electric slide rail.
5. The on-site cutting equipment for glass crystal ceramic slabs according to claim 4, characterized in that: The cutting assembly includes a cutting blade, a cutting motor is fixedly installed on the outer wall of the work box, a blade holder is fixedly installed on the output end of the cutting motor, the cutting blade can be fixedly connected to the output end of the cutting motor through the blade holder, and the cutting blade is placed inside the work box.
6. The on-site cutting equipment for glass crystal ceramic slabs according to claim 5, characterized in that: A water spraying device is fixedly installed on the inner wall of the work box. Two water spray nozzles are fixedly installed at the bottom of the water spraying device. Limited sliding rods are symmetrically fixedly installed at the bottom of the water spraying device. The bottom ends of the two limited sliding rods are slidably connected to the groove plates. An inclined plate is fixedly installed on the inner wall of the groove plate. One end of the inclined plate is placed on one side of the cutting blade. The bottom of the inclined plate can be slidably connected to the outer wall of the glass crystal ceramic plate. A pressure spring is symmetrically arranged between the top of the groove plate and the bottom of the water spraying device. The two pressure springs are respectively placed outside the two limited sliding rods. The two water spray nozzles are respectively placed in the middle position of the inclined plate.
7. The on-site cutting equipment for glass crystal ceramic slabs according to claim 6, characterized in that: A slag-scraping block is fixedly installed on one side of the groove plate. The outer wall of the slag-scraping block is slidably connected to the inner wall of the work box, and the outer wall of the slag-scraping block can be slidably connected to the surface of the glass crystal ceramic plate.
8. The on-site cutting equipment for glass crystal ceramic slabs according to claim 7, characterized in that: The edge grinding assembly includes a grinding disc, which is placed inside the work box. A driven wheel and a driving wheel are rotatably connected to the outer wall of the work box. The teeth on the driven wheel and the driving wheel mesh with each other. A tool holder is fixedly installed at one end of the driven wheel, and the other end of the driven wheel is rotatably connected to the inner wall of the work box. The grinding disc is fixedly connected to one end of the driven wheel through the tool holder. A drive shaft is fixedly installed on the outer wall of the other output end of the cutting motor and the outer wall of one end of the driving wheel. A belt is installed between the two drive shafts. The center positions of the cutting blade and the grinding disc are placed on the same horizontal line, and the thickness of the grinding disc is the same as the thickness of the cutting blade. A door panel is symmetrically rotatably connected to the outer wall of the work box.
9. The on-site cutting equipment for glass crystal ceramic slabs according to claim 8, characterized in that: A filter plate is fixedly installed on the inner wall of the work box. The filter plate is placed between the cutting blade and the grinding disc. A dust collection box is fixedly installed on the outer wall of the work box. The interior of the dust collection box is connected to the interior of the filter plate. An exhaust fan is fixedly installed on one end of the drive wheel and the other output end of the cutting motor. Airflow pipes are symmetrically fixedly installed on the outer wall of the dust collection box. Two exhaust fans are placed inside the airflow pipes.
Citation Information
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