A chamfering device for processing microcrystalline board

By designing guide and positioning components, the problems of slippage and deflection of the microcrystalline plate during chamfering are solved, ensuring the accuracy and consistency of chamfering and improving the versatility of the equipment and the quality of chamfering.

CN121756191BActive Publication Date: 2026-04-24INNER MONGOLIA XINGGU TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
INNER MONGOLIA XINGGU TECH CO LTD
Filing Date
2026-03-05
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

During the chamfering process of the microcrystalline board, insufficient static friction between the microcrystalline board and the conveyor belt can cause the microcrystalline board to slip or deflect during transport, resulting in deviation of the chamfering path, incomplete grinding or over-grinding, and affecting the chamfering quality.

Method used

The system employs a combination of guide and positioning components. The top and side walls of the microcrystalline plate are positioned using guide and positioning plates. A sliding movable seat and detachable positioning components, combined with the design of rollers and cylinders, ensure that the microcrystalline plate moves along a preset path and reduces friction through rolling contact.

Benefits of technology

This technology enables stable conveying of microcrystalline boards, avoids slippage and deflection, ensures consistency in chamfer depth and width, and improves the versatility of the equipment and the quality of the chamfering.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a chamfering equipment for microcrystalline plate processing and relates to the technical field of microcrystalline plate chamfering, which comprises a machine body, a main conveying belt, a top conveying belt, a chamfering assembly, a guiding assembly and a positioning assembly are installed on the machine body. Through the cooperation of the guiding assembly and the positioning assembly, the top wall and the two side walls of the microcrystalline plate can be positioned at the same time, the microcrystalline plate is prevented from slipping, the microcrystalline plate is prevented from being affected by lateral friction force and impact force when being in contact with the grinding wheel, the microcrystalline plate can move along a preset constant chamfering path, the microcrystalline plate is prevented from being subjected to the conditions of missed grinding, excessive grinding and different chamfering depths, an accurate physical track reference is provided for the advancement of the plate, the relative position between the plate edge of the microcrystalline plate and the grinding wheel is ensured to be constant, and therefore, the consistency of the chamfering width and the depth is ensured.
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Description

Technical Field

[0001] This invention relates to the field of microcrystalline board chamfering technology, and more specifically, to a chamfering device for microcrystalline board processing. Background Technology

[0002] Microcrystalline board is a new type of inorganic non-metallic material made primarily of silicon dioxide and aluminum oxide through high-temperature melting, molding, and crystallization. It possesses excellent properties such as high hardness, high wear resistance, corrosion resistance, and high-temperature resistance, and is widely used in equipment linings, flooring, and parts manufacturing under various harsh working conditions. In the actual processing of microcrystalline boards, chamfering is a crucial step. Its purpose is to remove burrs and sharp edges, preventing damage to the board or injury to personnel during use, while also improving the assembly accuracy and appearance quality of the microcrystalline board.

[0003] In existing technologies, a conveyor belt is often used to continuously transport microcrystalline boards to a station where high-speed rotating grinding wheels are installed on both sides for side chamfering. However, in actual production, it has been found that when the right-angled edge of the microcrystalline board comes into rapid contact with the grinding wheel, significant lateral friction and impact forces are generated. Due to the limited static friction between the microcrystalline board and the conveyor belt, the microcrystalline board is prone to slippage or deflection on the conveyor belt. This causes the preset constant chamfering path of the microcrystalline board to deviate from the actual edge position, resulting in either under-grinding or over-grinding. Consequently, the chamfering depth of the microcrystalline board is inconsistent, affecting the chamfering quality. Summary of the Invention

[0004] To solve the above-mentioned technical problems, the present invention provides a chamfering device for processing microcrystalline plates.

[0005] The technical solution is as follows:

[0006] A chamfering device for processing microcrystalline panels includes a machine body with multiple main conveyor belts mounted on it. A support is mounted on the top of the machine body, and a top conveyor belt is mounted on the support. The top conveyor belt is parallel to the main conveyor belts and is located above them. A chamfering assembly is fixedly mounted on the support and is located above the main conveyor belts. A guide assembly for positioning one side wall and top wall of the microcrystalline panel is mounted on one side of the machine body, and a positioning assembly for positioning the other side wall and top wall of the microcrystalline panel is mounted on the other side of the machine body.

[0007] The positioning assembly includes a guide plate, one end of which has a fixed plate detachably connected to the bracket, and the other end of which has a base detachably connected to the body. A first movable seat is slidably mounted on the guide plate. A first positioning element that mates with one side wall and the top wall of the microcrystalline plate is detachably mounted on the first movable seat. A first fastener for locking the first movable seat is mounted on the first movable seat.

[0008] Furthermore, the chamfering assembly includes multiple motors tilted on a bracket, with a grinding wheel mounted on the output end of each motor.

[0009] Furthermore, the first positioning element includes a mounting plate detachably mounted on the first movable seat, a mounting base slidably mounted on the side wall of the mounting plate, a second roller rotatably mounted on the mounting base that cooperates with the top wall of the microcrystalline plate, a cylinder for driving the mounting base to rise and fall fixedly mounted on the mounting plate, and a first roller rotatably mounted on the bottom wall of the mounting plate that cooperates with one side wall of the microcrystalline plate.

[0010] Furthermore, the top wall of the guide plate is provided with a guide rail for the first movable seat to slide, the side wall of the guide plate is provided with a toothed groove along the length direction, the side of the first movable seat facing the toothed groove is provided with a groove, the first fastener includes a toothed row that is slidably disposed in the groove and cooperates with the toothed groove, and the outer wall of the first movable seat is threaded with a fastening bolt for driving the toothed row to contact or separate from the toothed groove.

[0011] Furthermore, the guide assembly includes a connecting plate detachably mounted on the side wall of the machine body. Both ends of the connecting plate are connected to second positioning members for engaging with the top and side walls of one side of the microcrystalline plate. Multiple second movable seats are slidably mounted on the connecting plate. Guide members that engage with the chamfer of the microcrystalline plate are detachably mounted on the second movable seats. The guide members are located between adjacent grinding wheels. Second fasteners for locking the second movable seats are mounted on the second movable seats.

[0012] Furthermore, the guide includes an inclined seat detachably mounted on the second movable seat. The inclined seat has the same inclination as the grinding wheel. An installation groove is provided on the inclined seat. A guide wheel that is chamfered and fitted with the microcrystalline plate is rotatably mounted in the installation groove. Sliding grooves are provided on both sides of the inner wall of the installation groove. The guide wheel has sliders at both ends that fit with the sliding grooves. A clamping member corresponding to the sliding groove is installed on the upward-facing side of the inclined seat.

[0013] Furthermore, the slider has a sliding cavity on the side facing the clamping member. The clamping member includes a fixed block fixedly mounted on the second movable seat. The inner wall of the fixed block is connected to a guide post that cooperates with the sliding cavity. The guide post is slidably disposed inside the sliding cavity. A threaded hole is opened at the center of the guide post. A through groove communicating with the threaded hole is opened on the side wall of the guide post. A sliding plate is slidably mounted on the outer wall of the guide post, and a part of the sliding plate extends through the through groove into the threaded hole. A spring is installed between the sliding plate and the slider. A circular hole corresponding to the threaded hole is opened at the center of the fixed block. A bolt can pass through the circular hole and lock into the threaded hole, and the bolt can abut against the sliding plate.

[0014] Furthermore, an auxiliary conveyor belt that mates with the sidewall of the microcrystalline plate is fixedly installed on the machine body, and the auxiliary conveyor belt is located at the input end of the main conveyor belt.

[0015] Based on the above, the beneficial effects of the chamfering device for microcrystalline board processing of the present invention are as follows:

[0016] By coordinating the guide and positioning components, the top and side walls of the microcrystalline board can be positioned simultaneously, preventing slippage and avoiding the influence of lateral friction and impact forces when the microcrystalline board contacts the grinding wheel. This allows the microcrystalline board to move along a preset, constant chamfering path, ensuring that there are no missed areas, over-grinding, or inconsistent chamfering depths. It provides a precise physical trajectory reference for the board's movement, ensuring that the edge of the microcrystalline board maintains a constant relative position with the grinding wheel, thereby guaranteeing the consistency of chamfering width and depth.

[0017] By setting a sliding first movable seat on the guide plate, along with a detachable first positioning component and a locking first fastener, a structural design is achieved that allows the first positioning component to be adjustable in position, detachable in installation, and lockable in position. In use, by moving the first movable seat, the first roller can first contact the side wall of the microcrystalline plate, and then the second roller on the mounting base can be adjusted by the cylinder to contact the top wall of the microcrystalline plate. This enables the positioning of microcrystalline plates of different sizes and thicknesses, improving the versatility of the equipment.

[0018] By replacing the traditional sliding contact with the microcrystalline board through the rolling contact of the first and second rollers, the friction during the positioning process is greatly reduced, avoiding obstruction of the normal transport of the microcrystalline board and preventing scratches on the board surface. By positioning the side and top walls of the microcrystalline board with bidirectional rollers, the smoothness of transport is ensured while limiting the slippage and deflection of the board, achieving the effect of positioning without obstruction. Attached Figure Description

[0019] Figure 1 This is a three-dimensional schematic diagram of the overall components of the present invention;

[0020] Figure 2 This is a side cross-sectional view from the first perspective of the present invention;

[0021] Figure 3 This is a side cross-section from the second perspective of the present invention;

[0022] Figure 4 This is a schematic diagram of the positioning component of the present invention;

[0023] Figure 5 This is a schematic diagram showing the disassembled positioning component of the present invention;

[0024] Figure 6 This is a cross-sectional schematic diagram of the first movable seat and the first fastener of the present invention;

[0025] Figure 7 This is a three-dimensional schematic diagram of the first positioning element of the present invention;

[0026] Figure 8 This is a cross-sectional view from the rear of the present invention;

[0027] Figure 9 This is a three-dimensional schematic diagram of the guiding component of the present invention;

[0028] Figure 10 This is a cross-sectional schematic diagram of the guide component of the present invention;

[0029] Figure 11 For the present invention Figure 10 A magnified view of a portion of point A in the middle.

[0030] The reference numerals in the accompanying drawings of this invention are as follows:

[0031] 100. Body;

[0032] 200. Main conveyor belt;

[0033] 300. Top conveyor belt;

[0034] 400. Auxiliary conveyor belt;

[0035] 500, Chamfering assembly; 510, Motor; 520, Grinding wheel;

[0036] 610. Guide plate; 611. Guide rail; 612. Gear groove; 620. Base; 621. Fixing plate; 630. First movable seat;

[0037] 640. First positioning component; 641. Mounting plate; 642. First roller; 643. Mounting base; 644. Second roller; 645. Cylinder;

[0038] 650. First fastener; 651. Toothed rack; 652. Fastening bolt;

[0039] 710. Connecting plate; 720. Second positioning component; 731. Second movable seat; 732. Inclined seat; 733. Guide wheel; 7331. Slider;

[0040] 734. Clamping component; 7341. Fixing block; 7342. Guide post; 7343. Threaded hole; 73431. Through groove; 7344. Slide plate; 7345. Spring; 7346. Bolt;

[0041] 735. Second fastener. Detailed Implementation

[0042] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.

[0043] The embodiments provided by the present invention will be described in detail below:

[0044] like Figures 1 to 11 As shown, a chamfering device for processing microcrystalline panels includes a body 100. Multiple parallel main conveyor belts 200 are mounted on the body 100. A support is mounted on the top of the body 100, and a top conveyor belt 300 is mounted on the support to cooperate with the outermost main conveyor belts 200. The top conveyor belt 300 is parallel to the main conveyor belts 200 and is located above them. The main conveyor belts 200 and the top conveyor belt 300 are used to synchronously drive the movement of the microcrystalline panel. The main conveyor belts 200 cooperate with the bottom wall of the microcrystalline panel, and the top conveyor belt 300 cooperates with the top wall of the microcrystalline panel. A chamfering assembly 500 for chamfering the sidewalls of the microcrystalline panel is fixedly mounted on the support, located above the outermost main conveyor belt 200 on one side. A guide assembly for positioning one sidewall and the top wall of the microcrystalline panel is fixedly mounted on the body 100, located near the chamfering assembly 500. A positioning component for positioning the other side wall and top wall of the microcrystalline plate is installed on the top wall of the body 100 away from the chamfering component 500.

[0045] The chamfering assembly 500 includes multiple motors 510 inclinedly mounted on a support, each of which has a grinding wheel 520 mounted on its output end.

[0046] The support is equipped with a cooling device for applying coolant when the grinding wheel 520 bevels the microcrystalline plate. This is existing technology and will not be described in detail here.

[0047] It should be noted that by setting up multiple motors 510, the grinding wheel 520 on the motor 510 can continuously grind the chamfered edge of the microcrystalline board, thus improving the grinding effect of the chamfer.

[0048] like Figure 1 As shown, an auxiliary conveyor belt 400 that cooperates with the side wall of the microcrystalline plate is fixedly installed on the body 100. The auxiliary conveyor belt 400 is located at the input end of the main conveyor belt 200 and is used to assist in driving the microcrystalline plate to move towards the chamfering assembly 500.

[0049] It should be noted that, through the setting of the auxiliary conveyor belt 400, when the microcrystalline board has just entered the equipment and has not yet been fully clamped and secured by the top conveyor belt 300 and the main conveyor belt 200, the auxiliary conveyor belt 400 applies a driving force from the side to the microcrystalline board, ensuring that the microcrystalline board can smoothly and easily enter the main processing area (i.e., the area between the top conveyor belt 300 and the main conveyor belt 200), eliminating the stagnation or jamming that may be caused by insufficient thrust of the main conveyor belt 200 at the entrance.

[0050] like Figures 4 to 7 As shown, the positioning assembly includes a guide plate 610. One end of the guide plate 610 has a fixing plate 621 that is detachably connected to the bracket, and the other end of the guide plate 610 has a base 620 that is detachably connected to the body 100. A first movable seat 630 is slidably mounted on the guide plate 610. A first positioning member 640 that cooperates with one side wall and the top wall of the microcrystalline plate is detachably mounted on the first movable seat 630. A first fastener 650 for locking the first movable seat 630 is mounted on the first movable seat 630.

[0051] The first positioning component 640 includes a mounting plate 641 mounted on the first movable seat 630 by hexagonal bolts. A mounting seat 643 is slidably mounted on the side wall of the mounting plate 641. A second roller 644 that mates with the top wall of the microcrystalline plate is rotatably mounted on the mounting seat 643. A cylinder 645 for driving the mounting seat 643 to rise and fall is fixedly mounted on the mounting plate 641. A first roller 642 that mates with one side wall of the microcrystalline plate is rotatably mounted on the bottom wall of the mounting plate 641.

[0052] The top wall of the guide plate 610 is provided with a guide rail 611 for the first movable seat 630 to slide. The side wall of the guide plate 610 is provided with a toothed portion 612 along the length direction. The first movable seat 630 has a groove on one side facing the toothed portion 612. The first fastener 650 includes a toothed row 651 that is slidably disposed in the groove and cooperates with the toothed portion 612. The outer wall of the first movable seat 630 is threaded with a fastening bolt 652 for driving the toothed row 651 to contact or separate from the toothed portion 612.

[0053] It should be noted that by setting a slidable first movable seat 630 on the guide plate 610, along with a detachable first positioning component 640 and a locking first fastener 650, the structural design of the first positioning component 640 is achieved, which allows for adjustable position, detachable installation, and lockable position. In use, by moving the first movable seat 630, the first roller 642 can first contact the side wall of the microcrystalline plate, and then the cylinder 645 adjusts the second roller 644 on the mounting base 643 to contact the top wall of the microcrystalline plate, thereby positioning microcrystalline plates of different sizes and thicknesses and improving the versatility of the equipment.

[0054] Furthermore, by replacing the traditional sliding contact with the microcrystalline plate through rolling contact between the first roller 642 and the second roller 644, friction during the positioning process is significantly reduced, avoiding obstruction of the normal transport of the microcrystalline plate and preventing scratches on the plate surface. The height of the second roller 644, driven by the cylinder 645, is adjustable to accommodate microcrystalline plates of different thicknesses, further enhancing the equipment's versatility. The bidirectional roller positioning on the side and top walls of the microcrystalline plate restricts slippage and deflection while ensuring stable transport.

[0055] Understandably, the detachable connection method facilitates the installation, maintenance, and replacement of the positioning components. The locking function of the first fastener 650 allows the first positioning component 640 to be locked after adjusting the positioning of the first positioning component 640 with microcrystalline plates of different sizes. This prevents the first positioning component 640 from shifting its position due to vibration or impact force of the plate during equipment operation, ensuring the stability of the positioning and further preventing the microcrystalline plate from slipping.

[0056] Please see Figures 8 to 11 The guiding assembly includes a connecting plate 710 detachably mounted on the side wall of the machine body 100. Both ends of the connecting plate 710 are connected to second positioning members 720 for engaging with the top and side walls of one side of the microcrystalline plate. The second positioning members 720 have the same structure as the first positioning member 640. Multiple second movable seats 731 are slidably mounted on the connecting plate 710, located between two second positioning members 720. A guide member for chamfering engagement with the microcrystalline plate is detachably mounted on the second movable seat 731, located between adjacent grinding wheels 520. A second fastener 735 for locking the second movable seat 731 is mounted on the second movable seat 731. The side wall of the connecting plate 710 also has a toothed portion 612 along its length. The second fastener 735 has the same structure as the first fastener 650.

[0057] The guide includes an inclined seat 732 detachably mounted on the second movable seat 731. The inclined seat 732 has the same inclination as the grinding wheel 520. An installation groove is provided on the inclined seat 732. A guide wheel 733 that is rotatably mounted in the installation groove and engages with the chamfer of the microcrystalline plate is mounted in the installation groove. Sliding grooves are provided on the inner walls of both sides of the installation groove. The guide wheel 733 has sliders 7331 at both ends that engage with the sliding grooves. A clamping member 734 corresponding to the sliding groove is mounted on the upward-facing side of the inclined seat 732. The clamping member 734 is used to maintain the tendency of the guide wheel 733 to press in the direction of the chamfer of the microcrystalline plate.

[0058] It should be noted that the coordinated arrangement of the guide and positioning components positions the top and side walls of the microcrystalline board, providing a precise physical trajectory reference for the board's movement. This ensures that the edge of the microcrystalline board maintains a constant relative position with the grinding wheel 520, thereby guaranteeing consistency in chamfer width and depth. Simultaneously, the second positioning components 720 located at both ends of the grinding wheel 520 and the guide components located between adjacent grinding wheels 520 allow the second positioning components 720 to form an inverted L-shaped support surface on one side of the microcrystalline board's top and side walls when it contacts the grinding wheel 520. Furthermore, the positioning components' coordinated positioning of the other side's top and side walls prevents slippage of the microcrystalline board, avoiding the influence of lateral friction and impact forces when the microcrystalline board contacts the grinding wheel 520. This allows the microcrystalline board to move along a preset, constant chamfer path, ensuring that the microcrystalline board does not experience missed grinding, over-grinding, or inconsistent chamfer depth.

[0059] Understandably, the guide can press and clamp the chamfered edge after it has been cut and chamfered by the 520 grinding wheel, further improving the stability of the microcrystalline board during the chamfering process.

[0060] like Figures 8 to 11 As shown, the slider 7331 has a sliding cavity on the side facing the clamping member 734. The clamping member 734 includes a fixing block 7341 fixedly mounted on the second movable seat 731. The inner wall of the fixing block 7341 is connected to a guide post 7342 that mates with the sliding cavity. The guide post 7342 is slidably disposed inside the sliding cavity. A threaded hole 7343 is provided at the axis of the guide post 7342. A through groove 73431 communicating with the threaded hole 7343 is provided on the side wall of the guide post 7342. The outer wall of the guide post 7342 slides... A slide plate 7344 is installed, and a portion of the slide plate 7344 extends through the through groove 73431 into the threaded hole 7343. A spring 7345 is installed between the slide plate 7344 and the slider 7331. The spring 7345 is used to provide elastic force to keep the slider 7331 pressed against the chamfer of the microcrystalline plate. The axis of the fixing block 7341 has a circular hole corresponding to the threaded hole 7343. The bolt 7346 can pass through the circular hole and be locked in the threaded hole 7343. The bolt 7346 can abut against the slide plate 7344.

[0061] It should be noted that, through the setting of the clamping component 734, when there is a very slight unevenness or fluctuation on the chamfered edge of the microcrystalline board, the extension and retraction of the spring 7345 can play a buffering role. The slider 7331 follows the rise and fall of the spring 7345, which in turn drives the guide wheel 733 to rise and fall, so as to realize the small floating tracking of the guide wheel 733, thereby adapting to the slight path changes and avoiding damage to the chamfered edge of the microcrystalline board by hard impact.

[0062] Understandably, by rotating the bolt 7346, the slide plate 7344 can be driven to move on the guide post 7342, thereby changing the initial compression of the spring 7345. This allows the operator to adjust the clamping force of the spring 7345 according to the thickness of different plates, avoiding excessive clamping that could damage the chamfered edge of the microcrystalline plate.

[0063] The working principle of this embodiment is as follows:

[0064] In use, the user places one side wall of the microcrystalline plate against the second positioning member 720, then moves the first moving seat 630 to place the first roller 642 of the first positioning member 640 against the side wall of the microcrystalline plate, thus positioning the side wall of the microcrystalline plate. Then, the user rotates the fastening bolt 652 so that the fastening bolt 652 pushes the toothed row 651 against the toothed groove 612, thus locking the first moving seat 630. Then, the user controls the cylinder 645 to drive the mounting seat 643 to descend. The descent of the mounting seat 643 causes the second roller 644 on the mounting seat 643 to descend until it contacts the top wall of the microcrystalline plate, thus completing the positioning of the two side walls and the top wall of the microcrystalline plate that need to be chamfered. Next, the microcrystalline board is conveyed to the chamfering assembly 500 via the main conveyor belt 200 and the top conveyor belt 300. After the grinding wheel 520 chamfers the microcrystalline board, the guide wheel 733 on the guide member located between the adjacent grinding wheels 520 presses and positions the chamfered edge of the microcrystalline board. The chamfered microcrystalline board is then sent out to the next process.

[0065] It is readily understood that those skilled in the art can combine, split, or reorganize the embodiments provided in this application to obtain other embodiments, all of which do not exceed the protection scope of this application.

[0066] The present invention and its embodiments have been described above illustratively. This description is not restrictive, and the embodiments shown are only a part of the embodiments of the present invention. The actual structure is not limited thereto. Therefore, if those skilled in the art are inspired by this description and design similar structures and embodiments without departing from the spirit of the present invention, they should all fall within the protection scope of the present invention.

Claims

1. A chamfering device for processing microcrystalline panels, characterized in that, Includes a body (100), on which multiple main conveyor belts (200) are installed. A bracket is installed on the top of the body (100), and a top conveyor belt (300) is installed on the bracket. The top conveyor belt (300) is parallel to the main conveyor belts (200) and is located above the main conveyor belts (200). A chamfering component (500) is fixedly installed on the bracket and is located above the main conveyor belts (200). A guide component for positioning one side wall and top wall of the microcrystalline plate is installed on one side of the body (100), and a positioning component for positioning the other side wall and top wall of the microcrystalline plate is installed on the other side of the body (100). The positioning assembly includes a guide plate (610), one end of which has a fixing plate (621) detachably connected to the bracket, and the other end of which has a base (620) detachably connected to the body (100). A first movable seat (630) is slidably mounted on the guide plate (610). A first positioning element (640) that cooperates with one side wall and the top wall of the microcrystalline plate is detachably mounted on the first movable seat (630). A first fastener (650) for locking the first movable seat (630) is mounted on the first movable seat (630). The first positioning member (640) includes a mounting plate (641) detachably mounted on the first movable seat (630), a mounting base (643) slidably mounted on the side wall of the mounting plate (641), a second roller (644) rotatably mounted on the mounting base (643) and cooperating with the top wall of the microcrystalline plate, a cylinder (645) for driving the mounting base (643) to rise and fall is fixedly mounted on the mounting plate (641), and a first roller (642) rotatably mounted on the bottom wall of the mounting plate (641) and cooperating with one side wall of the microcrystalline plate. The top wall of the guide plate (610) is provided with a guide rail (611) for the first movable seat (630) to slide. The side wall of the guide plate (610) is provided with a toothed portion (612) along the length direction. The first movable seat (630) has a groove on one side facing the toothed portion (612). The first fastener (650) includes a toothed row (651) that is slidably disposed in the groove and cooperates with the toothed portion (612). The outer wall of the first movable seat (630) is threaded with a fastening bolt (652) for driving the toothed row (651) to contact or separate from the toothed portion (612).

2. The chamfering equipment for microcrystalline board processing according to claim 1, characterized in that, The chamfering assembly (500) includes a plurality of motors (510) mounted at an angle on a bracket, and a grinding wheel (520) is mounted on the output end of each motor (510).

3. The chamfering equipment for microcrystalline board processing according to claim 2, characterized in that, The guide assembly includes a connecting plate (710) detachably mounted on the side wall of the body (100). Both ends of the connecting plate (710) are connected to a second positioning element (720) for engaging with the top and side walls of one side of the microcrystalline plate. A plurality of second movable seats (731) are slidably mounted on the connecting plate (710). A guide element for engaging with the chamfer of the microcrystalline plate is detachably mounted on the second movable seat (731). The guide element is located between adjacent grinding wheels (520). A second fastener (735) for locking the second movable seat (731) is mounted on the second movable seat (731).

4. The chamfering equipment for microcrystalline board processing according to claim 3, characterized in that, The guide includes an inclined seat (732) detachably mounted on the second movable seat (731). The inclined seat (732) has the same inclination as the grinding wheel (520). An installation groove is provided on the inclined seat (732). A guide wheel (733) that is chamfered and fitted with the microcrystalline plate is rotatably mounted in the installation groove. Sliding grooves are provided on the inner walls of both sides of the installation groove. The guide wheel (733) has sliders (7331) at both ends that fit with the sliding grooves. A clamping member (734) corresponding to the sliding groove is installed on the upward-facing side of the inclined seat (732).

5. The chamfering equipment for microcrystalline board processing according to claim 4, characterized in that, The slider (7331) has a sliding cavity on the side facing the clamping member (734). The clamping member (734) includes a fixing block (7341) fixedly mounted on the second movable seat (731). The inner wall of the fixing block (7341) is connected to a guide post (7342) that mates with the sliding cavity. The guide post (7342) is slidably disposed inside the sliding cavity. A threaded hole (7343) is provided at the axis of the guide post (7342). A through groove (73431) communicating with the threaded hole (7343) is provided on the side wall of the guide post (7342). A sliding plate (7344) is slidably mounted on the outer wall of the guide post (7342), and a part of the sliding plate (7344) extends through the through groove (73431) into the threaded hole (7343). A spring (7345) is installed between the sliding plate (7344) and the slider (7331). The axis of the fixing block (7341) is provided with a round hole corresponding to the threaded hole (7343). The bolt (7346) can pass through the round hole and be locked in the threaded hole (7343), and the bolt (7346) can abut against the sliding plate (7344).

6. The chamfering equipment for microcrystalline board processing according to claim 1, characterized in that, An auxiliary conveyor belt (400) that cooperates with the side wall of the microcrystalline plate is fixedly installed on the body (100), and the auxiliary conveyor belt (400) is located at the input end of the main conveyor belt (200).

Citation Information

Patent Citations

  • Monocrystalline silicon wafer chamfering device and method

    CN117245494A

  • BE838121A4