Glass processing equipment and glass processing center
Through the combination of the guide device and the spray assembly, precise cooling and stability of the glass processing center are achieved, solving the problems of functional dispersion and poor cooling effect in the existing technology, and improving the quality and efficiency of glass processing.
Patent Information
- Application Number
- CN202110867488.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-07-29
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2041-07-29
AI Technical Summary
The existing glass processing centers have scattered functions, cannot achieve one-time clamping, and the cooling effect is imprecise, making it difficult to meet the various processing needs of high-end glass. In addition, the sizes of processing tools vary greatly, resulting in poor cooling effects.
A guide device is used to fix the glass and accurately cool the spray assembly. Combined with the split front and rear guide blocks and nozzle design, efficient spray cooling of the processing equipment is achieved. The spindle feed assembly and guide cylinder ensure processing accuracy and equipment stability.
It improves the stability and cooling effect of glass processing, reduces the glass breakage rate, meets the needs of different processing technologies, and improves processing efficiency and quality.
Smart Images

Figure CN113386268B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of glass production, and in particular to glass processing equipment and a glass processing center. Background Art
[0002] The glass market has an increasing demand for different products, and a single glass straight edge machine used for glass straight edge grinding cannot meet the existing personalized needs.
[0003] On this basis, glass processing centers that integrate the functions of various glass processing equipment are receiving more and more attention. Glass processing centers can independently complete glass drilling, milling, grinding and polishing operations, and can meet the processing needs of specific special-shaped glass.
[0004] However, the existing glass processing centers have relatively scattered functions and cannot complete the clamping of glass in one go, and cannot meet the various processing needs of high-end glass.
[0005] In addition, different glass processing technologies have different requirements for water spraying, because different processing technologies require different processing tools, and the sizes of processing tools vary greatly. This requires targeted cooling during processing to achieve better processing results.
[0006] In the prior art, the water spray cooling system of the glass processing center sprays water to cool the entire structure, but cannot achieve precise cooling, and the cooling effect is difficult to guarantee. Summary of the Invention
[0007] The object of the present invention is to provide a glass processing device that effectively enhances the vibration reduction effect of glass in various processing techniques and can accurately cool the processing tools during glass processing.
[0008] Another object of the present invention is to provide a glass processing center including the above-mentioned glass guiding device, which can improve the processing quality of glass and effectively reduce the breakage rate of glass processing.
[0009] The glass processing equipment provided by the present invention comprises: a machine base, on which a processing tool and a guiding device are installed;
[0010] The processing tool is used for processing glass, and the guiding device includes a fixing component for fixing the glass and a spraying component for cooling the processing tool during glass processing.
[0011] The beneficial effects of the present invention are mainly that: by means of the guiding device installed on the machine base, the stability of the glass during processing and the direct and efficient spraying effect on the processing machine are effectively guaranteed.
[0012] The fixing component can effectively fix the glass during processing, which has a good shock-absorbing effect; the spray component can directly spray the running processing tools, effectively ensuring the cooling effect of the processing tools.
[0013] The guiding device of the present invention can fix the glass and cool down different processing machines under different processing conditions such as glass drilling, milling, grinding and polishing.
[0014] In a further embodiment, a main shaft for mounting the processing machine is provided inside the machine base, and the processing machine includes a drilling and milling cutter head and a grinding wheel spaced apart along the axial direction of the main shaft.
[0015] The spaced-apart drilling and milling heads and grinding wheels broaden the application scope of glass processing, allowing the glass processing functions on the same equipment to be integrated and capable of performing glass drilling, milling, grinding and polishing operations, meeting the processing needs of different types of glass.
[0016] In a further embodiment, the guiding device includes a front guiding block and a rear guiding block that are separately connected, and the fixing assembly is installed on the front guiding block and the rear guiding block.
[0017] The front guide block and the rear guide block are connected separately to form the main structure of the guide device. The fixing components are respectively installed on the front guide block and the rear guide block to effectively fix the glass.
[0018] In a further embodiment, the fixing assembly includes clamping wheels respectively connected to the front guide block and the rear guide block, which can clamp and fix the planes on both sides of the glass, and a clamping plate connected to the end face of the front guide block, which can press and fix the glass plane.
[0019] By installing the clamping wheels on the front guide block and the rear guide block respectively, the two side surfaces of the glass can be clamped and fixed during glass edging and polishing, thus avoiding the vibration of the glass during edging, effectively ensuring the processing quality of the glass, and minimizing the breakage of the glass during production and processing.
[0020] During the drilling process, the flat surface of the glass can be pressed by the pressing plate connected to the end face of the front guide block, thereby fixing the glass during drilling.
[0021] In a further embodiment, the spray assembly includes a nozzle disposed between the front guide block and the rear guide block and capable of spraying the grinding wheel to cool it down.
[0022] By setting the nozzle between the front guide block and the rear guide block, the grinding wheel can be directly sprayed, which improves the accuracy of cooling the grinding wheel, effectively reduces the loss of the grinding wheel while reducing the amount of spraying water, and effectively extends the service life of the processing equipment.
[0023] In a further embodiment, the spray assembly further includes a water jacket disposed on the front guide block and capable of spraying and cooling the drilling and milling cutter head.
[0024] During the glass drilling process, by controlling the operating position of the main spindle, the drilling and milling cutter head can be moved to the radial inner side of the front guide block for drilling operations. Combined with the compression of the glass by the clamping plate, the drilling and milling cutter head can be sprayed and cooled through the water jacket on the front guide block, so that the intersection of the spray water in the water jacket is concentrated on the drilling and milling cutter head, effectively improving the accuracy of cooling the drilling and milling cutter head.
[0025] In a further embodiment, the lower part of the machine base is connected to a spindle feed assembly, which includes a servo motor and a lead screw. A nut is connected between the lead screw and the spindle, and the spindle can be driven to move back and forth along the extension direction of the lead screw through the nut.
[0026] Through the spindle feed assembly, the spindle can be controlled to move back and forth along the extension direction of the screw, thereby driving the processing equipment connected to the spindle to move, so that the drilling and milling heads or grinding wheels can be controlled at different operating positions, effectively realizing different processing processes on the same equipment.
[0027] In a further embodiment, guide cylinders capable of driving the guide device to move back and forth are installed on both sides of the machine base, and the guide cylinders are flat cylinders.
[0028] The guiding device in the present invention includes three different operating positions, specifically covering the positions of the glass during drilling, milling, polishing and edge grinding, and tool grabbing. The guiding device can be driven to move to the corresponding operating position by the guiding cylinder connected to the machine base. By symmetrically arranging the guide cylinders on both sides of the machine base, the deviation of the guiding device during movement is effectively avoided, and the misalignment of the fixed components and the spraying components is prevented.
[0029] In a further embodiment, a waterproof cover capable of shielding the spraying water is provided on the outside of the machine base, and a waterproof cover cylinder capable of driving the waterproof cover to move back and forth is connected to the machine base.
[0030] The waterproof cover provided on the outside of the machine base can effectively prevent the spray water from splashing to the outside during glass processing, thus providing good protection for other components of the equipment.
[0031] The waterproof cover cylinder connected to the machine base can control the position of the waterproof cover on the machine base, especially when performing glass polishing and edging processing, to achieve a good protection effect on the electrical circuit of the equipment.
[0032] The present invention also provides a glass processing center including the above-mentioned glass processing equipment. The glass processing center of the present invention can effectively improve glass processing efficiency, ensure glass processing quality, and reduce glass breakage rate during production. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the present invention and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying any creative work.
[0034] Figure 1 Schematic diagram of the structure of the glass processing equipment in the present invention;
[0035] Figure 2 for Figure 1 Schematic diagram of the top view structure;
[0036] Figure 3 for Figure 1 A side structural diagram of
[0037] Figure 4 for Figure 1 AA-axis cross-sectional structural diagram;
[0038] Figure 5 for Figure 3 Schematic diagram of the cross-sectional structure in the middle BB direction.
[0039] In the picture:
[0040] 1-machine base, 11-spindle, 2-guide device, 21-front guide block, 22-rear guide block, 23-clamping wheel, 24-pressure plate, 25-nozzle, 26-water jacket, 27-water spray hole, 28-guide cylinder, 3-processing machine, 31-drilling and milling head, 32-grinding wheel, 4-spindle feed assembly, 41-servo motor, 42-screw, 43-nut, 5-waterproof cover, 51-waterproof cover cylinder, 7-guide device guide rail, 8-spindle guide rail, 9-slider. DETAILED DESCRIPTION
[0041] To make the objectives, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Generally, the components of the embodiments of the present invention described and shown in the drawings herein can be arranged and designed in various different configurations.
[0042] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the invention as claimed, but rather merely represents selected embodiments of the present invention. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without creative effort shall fall within the scope of protection of the present invention.
[0043] It should be noted that similar reference numerals and letters denote similar items in the following drawings, and therefore, once an item is defined in one drawing, it does not need to be further defined or explained in subsequent drawings.
[0044] In the description of the present invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer" and the like indicate positions or locations based on the positions shown in the accompanying drawings, or the positions or locations in which the inventive product is typically placed when in use. These terms are intended solely to facilitate the description of the present invention and to simplify the description, and are not intended to indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on the present invention. Furthermore, the terms "first," "second," and "third," etc., are used solely to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0045] Furthermore, terms such as "horizontal," "vertical," and "overhanging" do not necessarily imply that a component must be absolutely horizontal or overhanging, but rather that it can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," and does not mean that the structure must be completely horizontal, but rather that it can be slightly tilted.
[0046] In the description of the present invention, it should also be noted that, unless otherwise expressly specified or limited, the terms "disposed," "installed," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integral connections; they may refer to mechanical connections or electrical connections; they may refer to direct connections or indirect connections through an intermediate medium; and they may refer to internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on the specific circumstances.
[0047] The following embodiments of the present invention are described in detail with reference to the accompanying drawings. In the absence of conflict, the following embodiments and features in the embodiments may be combined with each other.
[0048] First embodiment
[0049] Please refer to Figure 1-Figure 5 A glass processing device provided in this embodiment includes: a machine base 1, on which a processing tool 3 and a guiding device 2 are installed; the processing tool 3 is used for processing glass, and the guiding device 2 includes a fixing component for fixing the glass, and a spray component for cooling the processing tool 3 during glass processing.
[0050] The glass processing equipment in the present invention mainly performs processing operations such as drilling, milling, grinding and polishing on glass. The different process processing of the above-mentioned glass is completed by the processing tool 3 installed on the machine base 1. During the processing, a large amount of heat will be generated due to the friction between the processing tool 3 and the glass. In order to ensure the normal progress of the processing, the processing tool 3 needs to be sprayed to cool down; in addition, when the glass is drilling, grinding and polishing, the glass needs to be reliably fixed, and the glass needs to be shock-absorbing to avoid breakage during processing.
[0051] By connecting the guide device 2 on the machine base 1 and close to the processing machine 3, the fixing components included in it can effectively fix the glass during glass processing, thereby achieving a good shock-absorbing effect and effectively avoiding the breakage phenomenon that is very easy to occur during glass processing.
[0052] At the same time, the spraying component can be used to directly spray the processing tool 3 in operation, thereby effectively ensuring the cooling effect of the processing tool 3.
[0053] Combine Figure 4 In this embodiment, a spindle 11 for installing a processing tool 3 is provided inside the machine base 1, wherein the processing tool 3 includes a drilling and milling cutter head 31 and a grinding wheel 32 arranged at intervals along the axial direction of the spindle 11. The drilling and milling cutter head 31 specifically performs drilling and milling operations on the glass, and the grinding wheel 32 mainly performs edge grinding and polishing operations on the glass.
[0054] The drilling and milling cutter head 31 is mounted at the front end of the spindle 11, and the grinding wheel 32 is connected to the spindle 11 at intervals. When drilling and milling glass, the spindle 11 is controlled to move along its axial direction, enabling the drilling and milling cutter head 31 to perform drilling and milling operations on the glass surface. When edging and polishing the glass, the spindle 11 is similarly controlled to align the rim of the grinding wheel 32 with the edge of the glass, allowing the grinding wheel 32 to perform edging and polishing operations on the glass.
[0055] By setting the drilling and milling heads 31 and the grinding wheels 32 at intervals on the main shaft 11, a variety of processing tools 3 with different functions are integrated on the same device, meeting the processing needs of different types of glass. Different operations can be completed without replacing the tools during the processing, effectively improving the processing efficiency of the glass.
[0056] See also Figure 2-Figure 3 The main structure of the guide device 2 consists of a front guide block 21 and a rear guide block 22, which are connected separately. The gap between the front guide block 21 and the rear guide block 22 is fixed and greater than the thickness of the glass. The fixed assembly consists of two parts, corresponding to the glass processing during drilling and milling, and edge grinding and polishing. Specifically, the fixed assembly includes a clamping wheel 23 connected to the front guide block 21 and the rear guide block 22, respectively, and a pressure plate 24 connected to the front guide block 21.
[0057] During glass edge grinding and polishing, once the glass reaches the processing station, the spindle 11 is first controlled to move, aligning the grinding wheel 32 connected to the spindle 11 with the edge of the glass. The guide device 2 is then controlled to move, causing the front guide block 21 and the rear guide block 22 to move to either side of the grinding wheel 32, respectively, and forcing the glass into the gap between the two clamping wheels 23. The glass is then processed between the front and rear guide blocks 21, 22, with the edge of the glass aligned with the rims of the grinding wheel 32. The clamping wheels 23, connected to the two guide blocks, simultaneously clamp and secure the two sides of the glass, achieving a vibration-absorbing effect during processing. This securement effectively protects the glass and minimizes breakage during edge grinding and polishing.
[0058] When drilling glass, after the glass reaches the processing station, the spindle 11 is first controlled to move so that the drilling and milling head 31 connected to the front end of the spindle 11 contacts the plane of the glass. Then, by controlling the movement of the guide device 2, the pressure plate 24 is attached to the surface of the glass to press and fix the glass. At the same time, the front guide block 21 is controlled to move to the radial outside of the drilling and milling head 31, so that the drilling and milling head 31 connected to the front end of the spindle 11 is surrounded by the front guide block 21.
[0059] During the glass processing process, the grinding wheel 32 or the drilling and milling cutter head 31 is sprayed and cooled by the spray assembly. The spray assembly specifically includes a nozzle 25 disposed between the front guide block 21 and the rear guide block 22, and a water jacket 26 disposed on the front guide block 21 that can spray the drilling and milling cutter head 31 located inside the front guide block 21.
[0060] Specifically, during the edging and polishing process, the guide device 2 is controlled to move so that the spraying position of the nozzle 25 corresponds to the grinding wheel 32. Two nozzles 25 are mounted at the ends of the water inlet pipes, which are bendable bellows that can adjust the curvature to control the spraying direction of the nozzles 25. Both water inlet pipes have a specific curvature and are curved in the same plane, forming a semi-enclosed structure with an opening at the top of the grinding wheel 32. This arrangement allows for precise spraying of the grinding wheel 32's processing position, i.e., its rim, resulting in a direct and efficient cooling effect on the grinding wheel 32.
[0061] During glass drilling, the guide device 2 is controlled to move so that the water jacket 26 in the front guide block 21 aligns with the drilling and milling cutter head 31. The water jacket 26 is specifically an annular water jacket 26 disposed on the radially inner sidewall of the front guide block 21. Multiple water spray holes 27 are evenly distributed around the annular water jacket 26. These circumferentially evenly distributed water holes 27 allow the water sprayed from each of the spray holes 27 to converge on the operating drilling and milling cutter head 31, ensuring a spray cooling effect on the drilling and milling cutter head 31.
[0062] When the glass is being milled, the guide device 2 is controlled to move so that the front guide block 21 is at a certain distance from the glass surface, and the drilling and milling head 31 protrudes a portion of the front guide block 21. When the drilling and milling head 31 is running, the annular water jacket 26 in the front guide block 21 is used to spray and cool the drilling and milling head 31 to ensure normal milling of the glass.
[0063] It should be noted that when the glass is undergoing different processing, it is mainly fixed by adsorption through other auxiliary facilities such as suction cups. When the glass is drilled, edged and polished, the glass body is more affected and needs to be further fixed by a fixing component. When the edge milling operation is performed, the glass body is subjected to less force and is effectively fixed by the adsorption force of the suction cup, so it does not need to be further fixed. However, the annular water jacket 26 on the front guide block 21 is also required to spray and cool the drill and milling cutter.
[0064] The fixing assembly and the spraying assembly in the present invention can meet the requirements of different glass processing processes such as drilling, milling, grinding and polishing. At the same time, the functions of fixing the glass and spraying and cooling the processing tools are combined together, which can effectively improve the processing efficiency of the glass and ensure the processing quality of the glass.
[0065] Second embodiment
[0066] In the present invention, the processing station where the glass is transferred to the processing equipment is fixed during processing. The operating positions of the spindle 11 and the guide device 2 need to be adjusted during processing to ensure the normal execution of different glass processing operations. During processing, the glass is first transported to the processing station of the processing equipment through the production line. Then, the movement of the spindle 11 is controlled to ensure that the processing tool 3 reaches the processing station. Finally, the guide device 2 is controlled to make the fixed assembly and the spray assembly reach the corresponding position of the processing tool 3, and the glass is processed normally.
[0067] See also Figure 4 The movement of the spindle 11 along its axial direction is completed by the spindle feed assembly 4. The spindle feed assembly 4 is connected to the lower part of the machine base 1, and includes a servo motor 41 and a screw 42. A nut 43 is connected between the screw 42 and the spindle 11, and the nut 43 can drive the spindle 11 to move back and forth along the extension direction of the screw 42.
[0068] During operation, the servo motor 41 drives the lead screw 42 to rotate, while the nut 43 converts the rotational output of the lead screw 42 into a linear motion output of the nut 43 along the lead screw 42, causing the nut 43 to drive the spindle 11 to move back and forth in a straight line along the extension direction of the lead screw 42, thereby driving the processing tool 3 connected to the spindle 11 to move. Through the cooperation between the lead screw 42 and the nut 43, the drilling and milling head 31 or the grinding wheel 32 can be controlled at different operating positions, and the reciprocating motion along the straight line ensures the accuracy of the drilling and milling head 31 or the grinding wheel 32 during movement, preventing the processing tool 3 from deflecting during movement.
[0069] It should be pointed out that the rotational movement of the processing tool 3 is completed by a driving assembly connected to the main shaft 11. The driving assembly includes a motor and a reducer connected to the main shaft 11. The main shaft 11 and the processing tool 3 are driven to rotate by the power output of the motor and the reducer, which will not be repeated here.
[0070] In addition, it is important to note that based on the glass production line to transfer the glass to a fixed processing station, the glass processing equipment of the present invention can also be moved as a whole, including flipping the entire equipment around the main axis, and overall displacement along the edge of the glass, so that a glass plane with a certain thickness can relatively enter the gap between the two clamping wheels.
[0071] The guiding device 2 in this embodiment includes three different operating positions, specifically covering the positions of the glass during drilling, milling, polishing and edge grinding, and tool grabbing. The movement of the guiding device 2 in different operating positions is completed by the guide cylinders 28 connected to both sides of the machine base 1. The guide cylinders 28 are symmetrically arranged on both sides of the machine base 1. The cylinder body of the guide cylinder 28 is connected to the machine base 1, and the end of the telescopic rod is connected to the rear guide block 22.
[0072] The guide cylinders 28 mounted on the base 1 drive the guide device 2 to the corresponding operating position. The symmetrical placement of the guide cylinders 28 on either side of the base 1 effectively prevents the guide device 2 from shifting during movement, preventing misalignment of the fixed and spray components. To minimize the footprint of the guide cylinders 28, the present embodiment utilizes a flat-plate design. This design improves the integration of various components, reduces the overall equipment footprint, and enhances the flexibility of processing equipment installation.
[0073] See also Figure 5 In order to further ensure that the guide device 2 and the main shaft 11 move in a straight line during movement, a guide device guide rail 7 and a main shaft guide rail 8 are respectively installed in the machine base 1. The guide device guide rail 7 and the main shaft guide rail 8 cooperate with the slider 9 connected to the guide cylinder 28 and the main shaft 11 respectively, which can further improve the movement accuracy of the main shaft 11, the processing tool 3 and the guide device 2, and ensure the normal operation of the equipment to the greatest extent.
[0074] In order to prevent the spray water from splashing randomly on the machine base 1 and protect the electrical components of the processing equipment, a waterproof cover 5 that can block the spray water is provided on the outside of the machine base 1, and a waterproof cover cylinder 51 that can drive the waterproof cover 5 to move back and forth is connected to the machine base 1.
[0075] Combine Figure 2 The waterproof cover 5, installed on the outside of the machine base 1, effectively prevents spray water from splashing out during glass processing, providing excellent protection for other components of the equipment. A waterproof cover cylinder 51 connected to the machine base 1 controls the position of the waterproof cover 5 on the machine base 1, effectively protecting the equipment's electrical components and circuits, especially during glass polishing and edging operations.
[0076] The spindle feed assembly 4 and guide cylinder 28 of the present invention ensure the precision of the movement of the spindle 11, processing tool 3, and guide device 2, effectively guaranteeing the processing quality of glass in various processing techniques. The linear reciprocating movement of the spindle 11 and guide device 2 improves the processing efficiency of the glass processing equipment while ensuring control accuracy. The waterproof cover 5 connected to the machine base 1 effectively prevents the impact of spraying on electrical circuits, providing excellent protection for the entire equipment.
[0077] Third embodiment
[0078] The present invention also provides a glass processing center, including the above-mentioned glass processing equipment, which can effectively improve the processing efficiency of glass, ensure the processing quality of glass, reduce the breakage rate of glass in production, and greatly reduce the risk of failure during equipment operation.
[0079] It should be pointed out that the glass processing equipment of the present invention effectively improves the fixed working conditions of the glass during the production process, as well as the cooling effect of the processing tool 3, ensuring the normal processing of the glass in different processing techniques.
[0080] The foregoing description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that various modifications and variations of the present invention are possible. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention are intended to be within the scope of protection of the present invention.
Claims
1. A glass processing equipment, characterized in that, It includes: a machine base, on which a processing machine and a guiding device are installed; The processing tool is used for processing glass, and the guiding device includes a fixing component for fixing the glass, and a spraying component for cooling the processing tool during glass processing; A main shaft for mounting the processing tool is provided inside the machine base, and the processing tool includes a drilling and milling cutter head and a grinding wheel spaced apart along the axial direction of the main shaft; The guide device includes a front guide block and a rear guide block that are separately connected, and the fixing assembly is installed on the front guide block and the rear guide block; The spray assembly includes a water jacket provided on the front guide block and capable of spraying and cooling the drilling and milling cutter head; The fixing assembly includes a clamping wheel connected to the front guide block and the rear guide block respectively, which can clamp and fix the two side surfaces of the glass, and a pressing plate connected to the end surface of the front guide block, which can press and fix the glass surface; The lower part of the machine base is connected to a spindle feeding assembly, which includes a servo motor and a lead screw. A nut is connected between the lead screw and the spindle, and the spindle can be driven to move back and forth along the extension direction of the lead screw through the nut. Guide cylinders capable of driving the guide device to move back and forth are installed on both sides of the machine base, and the guide cylinders are flat cylinders; When drilling and milling the glass, the spindle is controlled to move along its axial direction so that the drilling and milling cutter head can drill and mill the glass surface; when grinding and polishing the glass, the spindle is also controlled to align the rim of the grinding wheel with the edge of the glass so that the grinding wheel can grind and polish the edge of the glass.
2. The glass processing equipment according to claim 1, characterized in that The spray assembly further includes a nozzle arranged between the front guide block and the rear guide block and capable of spraying and cooling the grinding wheel.
3. The glass processing equipment according to claim 1, characterized in that A waterproof cover capable of shielding the spraying water is provided on the outside of the machine base, and a waterproof cover cylinder capable of driving the waterproof cover to move back and forth is connected to the machine base.
4. A glass processing center, characterized in that: The glass processing equipment comprises the glass processing equipment according to any one of claims 1 to 3.
Citation Information
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