Side edge grinding device for glass processing
By designing a side grinding device for glass processing with a supporting base plate, a rotating component and a movable offset component, the problems of poor adaptability and inconvenient angle adjustment of the existing device are solved, and automatic adaptation and flexible grinding of different glass panels are achieved.
Patent Information
- Application Number
- CN202422180365.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-05
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2034-09-05
AI Technical Summary
Existing grinding devices are difficult to adapt to glass panels of different sizes or side lengths, and it is not convenient to adjust the angle of the grinding disc to meet the requirements of chamfering or rounding corners.
A side grinding device for glass processing is designed, which includes a supporting base plate, a rotating assembly, a movable offset assembly and a fixed bracket. The glass panel is fixed and the angle is adjusted by a motor-driven threaded rod and a limit rod, and the position and angle of the grinding disc can be flexibly adjusted.
It can automatically adapt to glass panels of different sizes and side lengths without manual position adjustment, and can easily perform chamfering or rounding to meet customer needs.
Smart Images

Figure CN223419150U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of glass processing, in particular to a side grinding device for glass processing. Background Art
[0002] Glass is an amorphous solid that can maintain a certain shape. It is a material obtained by gradually cooling the glass paste melt and increasing its density. In today's society, glass has become popular in people's lives, and glass products can be seen everywhere. When processing glass, workers usually need to use a grinding device to grind the sides of the glass to prevent it from being scratched.
[0003] However, in the prior art, when using a grinding device to grind the side of a glass panel, the existing grinding device cannot adapt well to glass panels of different sizes or different side lengths, and the staff needs to constantly adjust the position of the glass panel, which is relatively inconvenient; secondly, when grinding the side of a glass panel, due to different customer requirements, chamfering or rounding is sometimes required, and the existing grinding machine is not convenient for adjusting the angle of the grinding disc, which is not convenient for use.
[0004] Therefore, a side grinding device for glass processing is proposed to solve the above problems. Utility Model Content
[0005] The purpose of the utility model is to solve the problems existing in the prior art.
[0006] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme: a side grinding device for glass processing, comprising: a supporting base plate, the four ends of the bottom of the supporting base plate are fixedly installed with supporting legs, and the two ends of the top surface of the supporting base plate are provided with grooves, and the two ends of one of the grooves are fixedly connected to a limiting rod, and the two ends of the other groove are embedded with a bidirectional threaded rod through a bearing, one end of the side surface of the supporting base plate is fixedly installed with a forward and reverse motor, a rotating assembly is provided at the center of the top of the supporting base plate, the top of the rotating assembly is fixedly connected with a connecting circular plate, an L-shaped connecting frame is fixedly installed on the one side surface of the supporting base plate, and the two ends of the limiting rod and the bidirectional threaded rod are both provided with fixed brackets, and the surfaces of the two fixed brackets are provided with moving offset components.
[0007] As a preferred embodiment, the output end of the forward and reverse motor one passes through one end of the side surface of the supporting base plate and is fixedly connected to one end of the bidirectional threaded rod, the top of the connecting circular plate is fixedly connected to a fixed suction cup one, and one end of the top of the L-shaped connecting frame is fixedly embedded with an electric telescopic rod, and the bottom of the electric telescopic rod is provided with a fixed suction cup two through a bearing sleeve, and the tops of the opposite side surfaces of the two fixed brackets are fixedly connected to a U-shaped long plywood, and limiting rod two are fixedly installed on both sides of the two ends of the two U-shaped long plywood, and threaded rod one is embedded with a bearing at both ends of the two U-shaped long plywood, and one end of the two U-shaped long plywood is fixedly connected to the forward and reverse motor three, and the output ends of the two forward and reverse motors three respectively pass through one side surface of the two U-shaped long plywood and are connected to one end of the corresponding threaded rod one.
[0008] As a preferred embodiment, the rotating assembly includes two curved limit plates and a forward and reverse motor 2, the output end of the forward and reverse motor 2 is fixedly connected to a rotating shaft, the top of the rotating shaft is fixedly sleeved with a gear 1, the surface of the gear 1 is meshed with a gear ring, the bottom of the gear ring is provided with an annular groove, the annular groove is movably embedded in the top of the two curved limit plates, the bottom of the forward and reverse motor 2 is fixedly connected to the top of the supporting base plate, the top of the gear ring is fixedly connected to the bottom of the connecting circular plate, and the bottoms of the two curved limit plates are fixedly mounted on the top of the supporting base plate.
[0009] As a preferred embodiment, the moving offset assembly includes a T-shaped connecting block, and both sides of one end of the T-shaped connecting block are movably sleeved with a limit rod three, and a threaded rod two is threadedly embedded in the center of one end of the T-shaped connecting block, and the bottom of the threaded rod two is fixedly connected to a forward and reverse motor four, and both ends of the two limit rods three are fixedly installed with a protective shell, the bottom of the inner cavity of the protective shell is fixedly connected to a motor bracket, and the top of the motor bracket is fixedly installed with a double-output shaft forward and reverse motor, and the output ends of both sides of the double-output shaft forward and reverse motor are fixedly connected to a connecting shaft one, and one end surface of the two connecting shafts one are fixedly sleeved with a gear two, and the surfaces of the two gears two are meshed with gear three, and the surfaces of the two gears three are movably embedded with a connecting shaft two, and one end of the two connecting shafts two are fixedly connected to a connecting plate one.
[0010] As a preferred embodiment, the opposite side surfaces of the two connecting plates are fixedly connected with a hollow connecting frame, one end of the two connecting plates are embedded with a connecting shaft three through a bearing, the surfaces of the two connecting shafts three are fixedly sleeved with a gear four, and one end surface of the two connecting shafts three are fixedly sleeved with a connecting plate two, one end of the opposite side surfaces of the two connecting plates two are fixedly connected with a curved embedded limiting plate, and the opposite side surfaces of the two curved embedded limiting plates are movably sleeved with a hollow limiting ring, one end of the hollow limiting ring is fixedly connected with a connecting disk, one end of the connecting disk is connected to a grinding disk, and a transmission shaft one is fixedly installed at the center of the other end surface of the connecting disk, one end of the surface of the transmission shaft one is fixedly sleeved with a universal joint, one end of the universal joint is fixedly embedded with a transmission shaft two, and one end of the transmission shaft two is fixedly connected to a forward and reverse motor five.
[0011] As a preferred embodiment, the top of the forward and reverse motor four is fixedly connected to the bottom of one side surface of the protective shell, the output end of the forward and reverse motor four passes through one side of the protective shell and is connected to one end of the threaded rod two, one end of the two connecting shafts one is respectively embedded in one end of the two side surfaces of the protective shell through bearings, one end of the two connecting shafts two is respectively fixedly embedded in the other end of the two side surfaces of the protective shell, the surfaces of the two gears three and the two gears four are meshed with each other, the surface of the transmission shaft two is embedded in the interior of the hollow connecting frame through bearings, one end of the forward and reverse motor five is fixedly connected to one side surface of the hollow connecting frame, and one end of the T-shaped connecting block is correspondingly movably sleeved on the surface of the threaded rod one and the two limit rods two.
[0012] Compared with the prior art, the advantages and positive effects of the present invention are:
[0013] 1. The utility model connects the device to an external power supply through a circuit and is started by an external controller. When the staff needs to process and polish the side of the glass panel, the center of the bottom of the glass panel is placed on the top of the fixed suction cup 1, and then the electric telescopic rod is controlled to descend by the external controller, and the fixed suction cup 2 is stopped when it is pressed down to the top center of the glass panel to fix the glass panel. Then, the positive and negative motor 1 is started by the external controller, and the output end of the positive and negative motor 1 rotates to drive the two fixed brackets at both ends thereof to move toward the opposite side directions. At the same time, the two fixed brackets are limited by the limit rod 1 embedded at the other end of the two fixed brackets. After the two movable offset assemblies connected to the surfaces of the two fixed brackets both contact the side of the glass panel, the two positive and negative motors 5 are started by the external controller, so that they both drive the corresponding grinding discs to rotate to polish the side of the glass panel, and at the same time, the two positive and negative motors 3 are started. The rotation of the output end of the two positive and negative motors 3 drives the threaded rod 1 connected thereto to rotate. The rotation of the two threaded rods 1 respectively drives the two movable offset assemblies to move, and the four The two limit rods limit the two movable offset components, and the movable offset components are used to adapt to glass panels of different lengths. When the two sides of the glass panel are polished, the fixed brackets are controlled to reset to the two sides and disengage from the glass panel. The forward and reverse motors can be started by an external controller. The output ends of the forward and reverse motors drive the rotating shaft connected to them to rotate. The rotation of the rotating shaft drives the gear one connected to it to rotate. The rotation of the gear one drives the gear ring engaged with it to rotate. The two curved limit plates are embedded with annular grooves to limit the gear ring. The rotation of the gear ring drives the connecting circular plate at its top and the fixed suction cup one to rotate. At this time, the angle of the glass panel can be adjusted so that the other side edges can also be polished. Since the glass panels are usually of different lengths and widths, the distance between the two fixed brackets can be adjusted by the forward and reverse motors when the glass panel rotates to prevent the two movable offset components from touching the sides of the glass panel. In this way, when using the polishing device to polish the sides of the glass panel, it can well adapt to glass panels of different sizes or different side lengths, and there is no need for the staff to constantly adjust the position of the glass panel.
[0014] 2. In the present invention, during the process of polishing the glass, if the glass panel has a requirement for chamfering and rounding corners, the forward and reverse motor four can be started by an external controller. The rotation of the forward and reverse motor four drives the threaded rod two connected thereto to rotate. Since the T-shaped connecting block is fixed, the rotation of the threaded rod two will cause it to move upward or downward, and drive the protective shell connected thereto to move together. The movement of the protective shell will drive the entire moving offset assembly except the T-shaped connecting block to move, so that the polishing disc is higher or lower than the glass panel. Subsequently, the double-output shaft forward and reverse motor is started by an external controller. The rotation of the output ends on both sides of the double-output shaft forward and reverse motor respectively drives the two connecting shafts one to rotate. The rotation of the two connecting shafts one drives the gear two fixedly mounted on the surface thereof to rotate. The rotation of the two gears two drives the gear three meshing therewith to rotate. The rotation of the two gears three drives the gear four meshing therewith to rotate, and the two connecting shafts two and three are supported by the protective shell. The two connecting shafts two to The two gears three are supported, and the gear four is supported by two connecting shafts three, and the two connecting plates one are used to connect the two connecting shafts two and the connecting shaft three to keep them stable, and the hollow connecting frame is fixed by the two connecting plates one. The rotation of the two gears four drives the connecting shaft three and the connecting plate two fixedly embedded in the surface thereof to rotate accordingly, so that their angles are offset. The angle offset of the two connecting plates two drives the hollow limit rings, connecting plates and grinding plates connected thereto to offset synchronously, and the transmission shaft one and the transmission shaft two are connected by a universal joint, so that when the angle is offset, it will not affect the rotational power provided by the five-direction grinding plates of the forward and reverse motors. After the angle adjustment of the grinding plates is completed, the glass panel can be chamfered or rounded, and the above operation can be reversed at any time, so that the upper and lower ends of the side of the glass panel can be chamfered or rounded. In this way, the angle of the grinding plate can be adjusted at any time to meet the needs of chamfering or rounding the side of the glass panel, which is convenient for meeting customer needs. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 This is a schematic diagram of the three-dimensional structure of a side grinding device for glass processing provided by the utility model;
[0016] Figure 2 This is a three-dimensional structural exploded view of a side grinding device for glass processing provided by the utility model;
[0017] Figure 3 A diagram showing the assembly of a fixed bracket for a side grinding device for glass processing provided by the present invention;
[0018] Figure 4 This is a disassembled diagram of a fixed bracket of a side grinding device for glass processing provided by the utility model;
[0019] Figure 5 This is a disassembled diagram of the rotating assembly of a side grinding device for glass processing provided by the utility model;
[0020] Figure 6 The moving offset component of the side edge polishing device for glass processing is provided with a split drawing;
[0021] Figure 7 The moving offset component of the side edge polishing device for glass processing is provided with a split drawing;
[0022] Figure 8 The moving offset component of the side edge polishing device for glass processing is provided with a split drawing;
[0023] Figure 9 The moving offset component of the side edge polishing device for glass processing is provided with a split drawing.
[0024] Legend:
[0025] 1, support bottom plate; 101, support leg; 102, groove; 103, limit rod one; 104, two-way threaded rod; 105, forward and reverse motor one; 2, rotating assembly; 201, curved limit plate; 202, forward and reverse motor two; 203, rotating shaft; 204, gear one; 205, gear ring; 206, ring cutting groove; 3, connecting round plate; 301, fixed suction cup one; 4, L-shaped connecting frame; 401, electric telescopic rod; 402, fixed suction cup two; 5, fixed support; 501, U-shaped long clamping plate; 502, limit rod two; 503, threaded rod one; 504, forward and reverse motor three; 6, moving offset component; 601, T-shaped connecting block; 602, limit rod three; 603, threaded rod two; 604, forward and reverse motor four; 605, protective shell; 606, motor support; 607, double-output shaft forward and reverse motor; 608, connecting shaft one; 609, gear two; 610, gear three; 611, connecting shaft two; 612, connecting plate one; 613, hollow connecting frame; 614, connecting shaft three; 615, gear four; 616, connecting plate two; 617, curved embedded limit plate; 618, hollow limit ring; 619, polishing disc; 620, transmission shaft one; 621, universal joint; 622, transmission shaft two; 623, forward and reverse motor five; 624, connecting disc. DETAILED DESCRIPTION
[0026] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application.
[0027] Please refer to Figure 1-9The utility model provides a kind of technical scheme: a side polishing device for glass processing, comprising: support base plate 1, the bottom four ends of support base plate 1 are fixedly installed with support leg 101, the both ends of the top surface of support base plate 1 are all provided with recess 102, the both ends of one recess 102 are fixedly connected with limit rod one 103, the both ends of another recess 102 are embedded with bidirectional threaded rod 104 by bearing, one end of the side surface of support base plate 1 is fixedly installed with positive and negative motor one 105, the center of the top of support base plate 1 is provided with rotating assembly 2, the top of rotating assembly 2 is fixedly connected with connecting round plate 3, the side surface of support base plate 1 is fixedly installed with L-shaped connecting frame 4, the both ends of limit rod one 103 and bidirectional threaded rod 104 are all sleeved with fixed bracket 5, the surface of two fixed brackets 5 is all provided with mobile offset component 6.
[0028] Specifically: support the overall device by support leg 101, accommodate limit rod one 103 and bidirectional threaded rod 104 by recess 102, drive bidirectional threaded rod 104 by positive and negative motor one 105, adjust the angle of glass panel by rotating assembly 2, connect rotating assembly 2 and fixed suction cup one 301 by connecting round plate 3, carry two mobile offset components 6 by two fixed brackets 5, polish the chamfer and round angle of glass panel side by two mobile offset components 6, and can be started by positive and negative motor one 105, the two fixed brackets 5 of the both ends of the output end rotation of positive and negative motor one 105 are moved to opposite side direction, and the limit rod one 103 of the other end embedded by two fixed brackets 5 is used to limit two fixed brackets 5, so that the two mobile offset components 6 connected to the surface of two fixed brackets 5 can contact the both side surfaces of glass panel.
[0029] In one embodiment, the output end of positive and negative motor one 105 is fixedly connected to one end of bidirectional threaded rod 104 by penetrating one end of the side surface of support base plate 1, the top of connecting round plate 3 is fixedly connected with fixed suction cup one 301, one end of the top of L-shaped connecting frame 4 is fixedly embedded with electric telescopic rod 401, the bottom of electric telescopic rod 401 is sleeved with fixed suction cup two 402 by bearing, the top of the opposite side surface of two fixed brackets 5 is all fixedly connected with U-shaped long clamping plate 501, the both sides of the both ends inside two U-shaped long clamping plates 501 are all fixedly installed with limit rod two 502, the both ends inside two U-shaped long clamping plates 501 are all embedded with threaded rod one 503 by bearing, one end of two U-shaped long clamping plates 501 is all fixedly connected with positive and negative motor three 504, the output end of two positive and negative motor threes 504 is respectively connected to one end of corresponding threaded rod one 503 by penetrating the side surface of two U-shaped long clamping plates 501.
[0030] Specifically: the glass panel is supported by the fixed suction cup 1 301, the electric telescopic rod 401 is used to control the fixed suction cup 2 402 to descend to fix the glass panel, the U-shaped long clamp 501 is used to fix the threaded rod 1 503 and the two limit rods 2 502, and the forward and reverse motor 3 504 is used to drive the threaded rod 1 503.
[0031] In one embodiment, the rotating component 2 includes two curved limit plates 201 and a forward and reverse motor 202. The output end of the forward and reverse motor 202 is fixedly connected to a rotating shaft 203. The top of the rotating shaft 203 is fixedly sleeved with a gear 1 204. The surface of the gear 1 204 is meshed with a gear ring 205. The bottom of the gear ring 205 is provided with an annular groove 206. The annular groove 206 is movably embedded in the top of the two curved limit plates 201. The bottom of the forward and reverse motor 202 is fixedly connected to the top of the supporting base plate 1. The top of the gear ring 205 is fixedly connected to the bottom of the connecting circular plate 3. The bottoms of the two curved limit plates 201 are fixedly installed on the top of the supporting base plate 1.
[0032] Specifically: by starting the forward and reverse motor 202, the output end of the forward and reverse motor 202 drives the rotating shaft 203 connected to it to rotate, the rotation of the rotating shaft 203 drives the gear 1 204 connected to it to rotate, the rotation of the gear 1 204 drives the gear ring 205 engaged with it to rotate, and the two curved limiting plates 201 are embedded with annular grooves 206 to limit the gear ring 205. The rotation of the gear ring 205 drives the connecting circular plate 3 and the fixed suction cup 1 301 on its top to rotate. At this time, the angle of the glass panel can be adjusted.
[0033] In one embodiment, the mobile offset assembly 6 includes a T-shaped connecting block 601, and both sides of one end of the T-shaped connecting block 601 are movably sleeved with a limit rod three 602, and a threaded rod two 603 is threadedly embedded in the center of one end of the T-shaped connecting block 601, and the bottom of the threaded rod two 603 is fixedly connected to the forward and reverse motor four 604, and the two ends of the two limit rods three 602 are fixedly installed with a protective shell 605, and the bottom of the inner cavity of the protective shell 605 is fixedly connected to the motor bracket 606, and the top of the motor bracket 606 is fixedly installed with a double-output shaft forward and reverse motor 607, and the output ends of the double-output shaft forward and reverse motor 607 are fixedly connected to the connecting shaft one 608, and one end surface of the two connecting shaft ones 608 are fixedly sleeved with gear two 609, and the surfaces of the two gear twos 609 are meshed with gear three 610, and the surfaces of the two gear threes 610 are movably embedded with connecting shaft two 611, and one end of the two connecting shaft twos 611 is fixedly connected to the connecting plate one 612.
[0034] Specifically: by starting the forward and reverse motor four 604, the forward and reverse motor four 604 rotates and drives the threaded rod two 603 connected to it to rotate. Since the T-shaped connecting block 601 is fixed, the rotation of the threaded rod two 603 will cause itself to move upward or downward, and drive the protective shell 605 connected to it to move together. The movement of the protective shell 605 will drive the moving offset component 6 except the T-shaped connecting block 601 to move as a whole, so that the grinding disk 619 is higher or lower than the glass panel. Then, the double-output shaft forward and reverse motor 607 is started by an external controller, and the output ends on both sides of the double-output shaft forward and reverse motor 607 rotate to respectively drive the two connecting shafts one 608 to rotate. The rotation of the two connecting shafts one 608 drives the gear two 609 fixed on its surface to rotate. The rotation of the two gears two 609 drives the gear three 610 meshing with it to rotate. The rotation of the two gears three 610 drives the gear four 615 meshing with it to rotate.
[0035] In one embodiment, the opposite side surfaces of the two connecting plates 1 612 are fixedly connected to a hollow connecting frame 613, one end of each of the two connecting plates 1 612 is embedded with a connecting shaft 3 614 through a bearing, the surfaces of the two connecting shafts 3 614 are fixedly sleeved with a gear 4 615, one end surface of each of the two connecting shafts 3 614 is fixedly sleeved with a connecting plate 2 616, one end of the opposite side surfaces of the two connecting plates 2 616 is fixedly connected to a curved embedded limiting plate 617, and the two curved embedded limiting plates 61 7. A hollow limiting ring 618 is movably provided on the opposite side surface of the shaft 7. One end of the hollow limiting ring 618 is fixedly connected to a connecting disk 624. One end of the connecting disk 624 is connected to a grinding disk 619. A transmission shaft 1 620 is fixedly installed at the center of the other end surface of the connecting disk 624. A universal joint 621 is fixedly provided on one end of the surface of the transmission shaft 1 620. A transmission shaft 2 622 is fixedly embedded on one end of the universal joint 621. One end of the transmission shaft 2 622 is fixedly connected to a forward and reverse motor 5 623.
[0036] Specifically: when the two gears four 615 rotate, they drive the connecting shaft three 614 and the connecting plate two 616 fixedly embedded on their surfaces to rotate along with them, causing their angles to shift. The angle shift of the two connecting plates two 616 drives the hollow limit ring 618, the connecting plate 624 and the grinding plate 619 connected to them to shift synchronously, and the universal joint 621 is used to connect the transmission shaft one 620 and the transmission shaft two 622, so that when the angle shifts, it will not affect the forward and reverse motor five 623 from providing rotational power to the grinding plate 619.
[0037] In one embodiment, the top of the forward and reverse motor four 604 is fixedly connected to the bottom of one side surface of the protective shell 605, the output end of the forward and reverse motor four 604 passes through one side of the protective shell 605 and is connected to one end of the threaded rod two 603, one end of the connecting shaft one 608 on both sides is respectively embedded in one end of the two side surfaces of the protective shell 605 through bearings, one end of the connecting shaft two 611 on both sides is respectively fixedly embedded in the other end of the two side surfaces of the protective shell 605, the two gears three 610 and the surfaces of the two gears four 615 are engaged with each other, the surface of the transmission shaft two 622 is embedded in the interior of the hollow connecting frame 613 through bearings, one end of the forward and reverse motor five 623 is fixedly connected to one side surface of the hollow connecting frame 613, and one end of the T-shaped connecting block 601 is correspondingly movably sleeved on the surface of the threaded rod one 503 and the two limit rods two 502.
[0038] Specifically: the motor bracket 606 and the connecting shaft 1 608 are fixed by the protective shell 605, and the two connecting shafts 2 611 and the connecting shaft 3 614 are supported by the protective shell 605, and the two gears 3 610 are used to drive the two gears 4 615 to rotate, and the hollow connecting frame 613 is used to provide support for the transmission shaft 2 622, and the forward and reverse motor 5 623 is fixed by the hollow connecting frame 613, and the threaded rod 1 503 is rotated to drive the T-shaped connecting block 601 to move left and right.
[0039] Working principle: The device is connected to an external power supply through a circuit and started by an external controller. When the staff needs to process and polish the side of the glass panel, the center of the bottom of the glass panel is placed on the top of the fixed suction cup 301, and then the electric telescopic rod 401 is controlled to descend by the external controller, and the fixed suction cup 402 is stopped when it is pressed down to the top center of the glass panel to fix the glass panel. Then the forward and reverse motor 105 is started by the external controller, and the output end of the forward and reverse motor 105 rotates to drive the two fixed brackets 5 at both ends of it to move toward the opposite side. At the same time, The limiting rod 103 embedded at the other end of the two fixed brackets 5 is used to limit the two fixed brackets 5. After the two movable offset components 6 connected to the surfaces of the two fixed brackets 5 both contact the side of the glass panel, the two forward and reverse motors 5 623 are started by the external controller, so that they both drive the corresponding grinding discs 619 to rotate to grind the side of the glass panel. At the same time, the two forward and reverse motors 3 504 are started. The rotation of the output ends of the two forward and reverse motors 3 504 drives the threaded rod 1 503 connected thereto to rotate. The rotation of the two threaded rods 1 503 respectively drives the two movable offset components 6 to move, and the four limiting rods 2 502 limits the two moving offset components 6, and the moving offset components 6 are used to adapt to glass panels of different lengths. When both sides of the glass panel are polished, the fixed bracket 5 is controlled to reset to both sides to break away from the contact with the glass panel. The forward and reverse motor 202 can be started by an external controller. The output end of the forward and reverse motor 202 drives the rotating shaft 203 connected to it to rotate. The rotation of the rotating shaft 203 drives the gear 1 204 connected to it to rotate. The rotation of the gear 1 204 drives the gear ring 205 engaged with it to rotate. The two curved limiting plates 201 are embedded with annular grooves 206 to limit the gear ring 20 5. The rotation of the gear ring 205 drives the connecting circular plate 3 and the fixed suction cup 301 on its top to rotate. At this time, the angle of the glass panel can be adjusted so that the other side edges can also be polished. Since glass panels usually have different lengths and widths, the distance between the two fixed brackets 5 can be adjusted by the forward and reverse motor 105 when the glass panel rotates to prevent the two moving offset components 6 from touching the side edges of the glass panel. In this way, when using the polishing device to polish the side edges of the glass panel, it can well adapt to glass panels of different sizes or different side lengths, without the need for staff to constantly adjust the position of the glass panel.During the process of polishing the glass, if the glass panel has a requirement for chamfering and rounding, the forward and reverse motor 4 604 can be started by an external controller. The forward and reverse motor 4 604 rotates to drive the threaded rod 2 603 connected thereto to rotate. Since the T-shaped connecting block 601 is fixed, the threaded rod 2 603 rotates to move itself upward or downward, and drives the protective shell 605 connected thereto to move together. The movement of the protective shell 605 drives the entire movable offset component 6 except the T-shaped connecting block 601 to move, so that the polishing disc 619 is higher or lower than the glass. The glass panel is then activated by an external controller using a double-output shaft forward and reverse motor 607. The output ends of the double-output shaft forward and reverse motor 607 rotate and respectively drive the two connecting shafts 1 608 to rotate. The rotation of the two connecting shafts 1 608 drives the rotation of the gear 2 609 fixed on its surface. The rotation of the two gears 2 609 drives the gear 3 610 meshing with it to rotate. The rotation of the two gears 3 610 drives the gear 4 615 meshing with it to rotate. The two connecting shafts 2 611 and 3 614 are supported by the protective housing 605. The two connecting shafts 2 611 support the The two gears 3 610 are supported by two connecting shafts 3 614 to support gear 4 615, and two connecting plates 1 612 are used to connect the two connecting shafts 2 611 and the connecting shaft 3 614 to maintain stability. The hollow connecting frame 613 is fixed by the two connecting plates 1 612. The rotation of the two gears 4 615 drives the connecting shaft 3 614 and the connecting plate 2 616 fixed on the surface to rotate with them, causing their angles to deviate. The angle deviation of the two connecting plates 2 616 drives the hollow limit ring 618, the connecting plate 624 and the grinding plate 619 connected thereto to deviate synchronously, and the hollow limit ring 618, the connecting plate 624 and the grinding plate 619 connected thereto to deviate synchronously. Universal joint 621 connects drive shaft 1 620 and drive shaft 2 622, ensuring that even when the angle shifts, forward and reverse motor 5 623 will not affect the rotational power provided to grinding disc 619. After the angle of grinding disc 619 is adjusted, the glass panel can be chamfered or rounded. This operation can be reversed at any time, allowing both the upper and lower ends of the glass panel to be chamfered or rounded. In this way, the angle of the grinding disc can be adjusted at any time to meet the needs of chamfering or rounding the side of the glass panel, conveniently meeting customer needs.
[0040] The above description is only a preferred embodiment of the present invention and does not limit the present invention in any other form. Any technician familiar with the profession may use the technical content disclosed above to change or modify it into an equivalent embodiment with equivalent changes for application in other fields. However, any simple modification, equivalent change and modification of the above embodiment made according to the technical essence of the present invention without departing from the content of the technical solution of the present invention shall still fall within the scope of protection of the technical solution of the present invention.
Claims
1. A side grinding device for glass processing, characterized in that: include: A support base plate (1), wherein the four ends of the bottom of the support base plate (1) are fixedly installed with support legs (101), and grooves (102) are provided at both ends of the top surface of the support base plate (1), wherein the two ends of one of the grooves (102) are fixedly connected to a limit rod (103), and the two ends of the other groove (102) are embedded with a bidirectional threaded rod (104) through a bearing, and a forward and reverse motor (105) is fixedly installed at one end of the surface of one side of the support base plate (1), and a rotating assembly (2) is provided at the center of the top of the support base plate (1), and the top of the rotating assembly (2) is fixedly connected to a connecting circular plate (3), and an L-shaped connecting frame (4) is fixedly installed on the surface of one side of the support base plate (1), and the two ends of the limit rod (103) and the bidirectional threaded rod (104) are both sleeved with fixed brackets (5), and the surfaces of the two fixed brackets (5) are both provided with a moving offset assembly (6); The rotating assembly (2) comprises two curved limiting plates (201) and a forward and reverse motor (202); the output end of the forward and reverse motor (202) is fixedly connected to a rotating shaft (203); a gear (204) is fixedly sleeved on the top of the rotating shaft (203); a gear ring (205) is meshed on the surface of the gear (204); a ring groove (206) is provided at the bottom of the gear ring (205); and the ring groove (206) is movably embedded in the tops of the two curved limiting plates (201).
2. A side grinding device for glass processing according to claim 1, characterized in that: The output end of the forward and reverse motor (105) passes through one end of the surface of one side of the supporting base plate (1) and is fixedly connected to one end of the bidirectional threaded rod (104); the top of the connecting circular plate (3) is fixedly connected to a fixed suction cup (301); one end of the top of the L-shaped connecting frame (4) is fixedly embedded with an electric telescopic rod (401); the bottom of the electric telescopic rod (401) is provided with a fixed suction cup (402) through a bearing sleeve; the tops of the opposite side surfaces of the two fixed brackets (5) are fixedly connected to U-shaped long clamps The two ends of the two U-shaped long clamps (501) are fixedly installed with a limiting rod 2 (502) on both sides of the two ends of the interior of the two U-shaped long clamps (501), and the two ends of the interior of the two U-shaped long clamps (501) are embedded with a threaded rod 1 (503) through a bearing. One end of the two U-shaped long clamps (501) is fixedly connected with a forward and reverse motor 3 (504), and the output ends of the two forward and reverse motors 3 (504) respectively pass through one side surface of the two U-shaped long clamps (501) and are connected to one end of the corresponding threaded rod 1 (503).
3. The side grinding device for glass processing according to claim 1, characterized in that: The bottom of the second forward and reverse motor (202) is fixedly connected to the top of the supporting base plate (1), the top of the gear ring (205) is fixedly connected to the bottom of the connecting circular plate (3), and the bottoms of the two curved limiting plates (201) are both fixedly mounted on the top of the supporting base plate (1).
4. A side grinding device for glass processing according to claim 1, characterized in that: The moving offset assembly (6) includes a T-shaped connecting block (601), and both sides of one end of the T-shaped connecting block (601) are movably provided with a limiting rod three (602), and a threaded rod two (603) is threadedly embedded at the center of one end of the T-shaped connecting block (601), and the bottom of the threaded rod two (603) is fixedly connected to a forward and reverse motor four (604), and the two ends of the two limiting rods three (602) are fixedly installed with a protective shell (605), and the bottom of the inner cavity of the protective shell (605) is fixedly connected to a motor bracket (606), and the motor bracket A double-output shaft forward and reverse motor (607) is fixedly installed on the top of the frame (606), and the output ends on both sides of the double-output shaft forward and reverse motor (607) are fixedly connected to the connecting shaft 1 (608), and the one end surface of the two connecting shafts 1 (608) is fixedly sleeved with a gear 2 (609), and the surfaces of the two gears 2 (609) are meshed with a gear 3 (610), and the surfaces of the two gears 3 (610) are movably embedded with a connecting shaft 2 (611), and one end of the two connecting shafts 2 (611) is fixedly connected to a connecting plate 1 (612).
5. A side grinding device for glass processing according to claim 4, characterized in that: The opposite side surfaces of the two connecting plates (612) are fixedly connected with a hollow connecting frame (613), one end of the two connecting plates (612) is embedded with a connecting shaft (614) through a bearing, the surfaces of the two connecting shafts (614) are fixedly sleeved with a gear (615), one end surface of the two connecting shafts (614) is fixedly sleeved with a connecting plate (616), one end of the opposite side surface of the two connecting plates (616) is fixedly connected with a curved embedded limiting plate (617), the opposite side of the two curved embedded limiting plates (617) is fixedly sleeved with a gear (615), and the one end surface of the two connecting shafts (614) is fixedly sleeved with a connecting plate (616). A hollow limiting ring (618) is provided on the surface movable sleeve, one end of the hollow limiting ring (618) is fixedly connected to a connecting disk (624), one end of the connecting disk (624) is connected to a grinding disk (619), a transmission shaft 1 (620) is fixedly installed at the center of the other end surface of the connecting disk (624), one end of the surface of the transmission shaft 1 (620) is fixedly sleeved with a universal joint (621), one end of the universal joint (621) is fixedly embedded with a transmission shaft 2 (622), and one end of the transmission shaft 2 (622) is fixedly connected to a forward and reverse motor 5 (623).
6. A side grinding device for glass processing according to claim 5, characterized in that: The top of the forward and reverse motor four (604) is fixedly connected to the bottom of one side surface of the protective shell (605), the output end of the forward and reverse motor four (604) passes through one side of the protective shell (605) and is connected to one end of the threaded rod two (603), one end of the two connecting shafts one (608) is respectively embedded in one end of the two side surfaces of the protective shell (605) through bearings, one end of the two connecting shafts two (611) is respectively fixedly embedded in the other end of the two side surfaces of the protective shell (605), the two gears three (610) and the surfaces of the two gears four (615) are meshed with each other, the surface of the transmission shaft two (622) is embedded in the interior of the hollow connecting frame (613) through a bearing, one end of the forward and reverse motor five (623) is fixedly connected to one side surface of the hollow connecting frame (613), and one end of the T-shaped connecting block (601) is correspondingly movably sleeved on the surfaces of the threaded rod one (503) and the two limiting rods two (502).