Steering transportation table for long glass edging machining
By arranging a liftable steering tray and edge grinders on both sides of the grinding platform on the transport platform of the glass edge grinding equipment, the problem that the existing equipment requires two transport platforms and edge grinders is solved, thereby achieving equipment reduction and improved production efficiency.
Patent Information
- Application Number
- CN202422802407.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-18
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-11-18
AI Technical Summary
Existing glass edging equipment requires two transport platforms and two edging machines to complete four-side edging, resulting in high equipment costs, large occupied area and low production efficiency.
A steering transport platform for edging long glass is designed. By arranging a liftable steering tray on the transport platform and edge grinders on both sides of the grinding platform, the glass can be turned on the transport platform and the four-side edging can be completed directly on the same transport platform.
The number of equipment and occupied area are reduced, the production line is shortened, and production efficiency is improved.
Smart Images

Figure CN223353800U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of glass processing, and in particular relates to a turning and transporting platform for edging long glass. Background Art
[0002] Glass is widely used in modern times and has always been a product with extremely high market demand. Glass edging is the process of processing the edges of glass to make them smooth, flat, and aesthetically pleasing. Glass edging is typically performed by hand, machine, or water-cooled methods. A glass edging machine is one of the earliest and most widely used glass processing equipment. Its primary function is to smooth glass and create special shapes. It is divided into single-arm special-shaped edging machines, linear edging machines, and template edging machines. Glass edging machines primarily utilize a grinding head motor and grinding wheel to achieve glass grinding and polishing.
[0003] Glass is typically rectangular, and a glass edger can simultaneously edge two sides of the glass. However, the glass needs to be turned to edge the other two sides. Current glass edger transport platforms are unable to achieve this. To address this issue, two edgers and two transport platforms are required, with the two platforms aligned at a 90-degree angle. The glass is first loaded onto one of the transport platforms and then transported to the edger. After the edger completes the edge grinding process on both sides, the glass is then transported to the next transport platform. The un-edged sides of the glass entering the next transport platform are aligned with the sides of the edger, and the remaining two sides of the glass are then edged by the next edger. Therefore, completing the edge grinding of all four sides of a piece of glass requires two transport platforms and two edgers. This undoubtedly increases equipment procurement costs and site space, and also lengthens the edge grinding process line, which reduces production efficiency. Utility Model Content
[0004] The utility model provides a steering transport platform for edging long glass. The discharge end of the transport platform docks with the grinding platform, and edging machines are provided on both sides of the grinding platform. The glass enters the grinding platform via the transport platform for edging. After the grinding of both sides is completed, it returns to the transport platform, and the steering tray structure on the transport platform completes the steering of the glass. The unpolished sides of the glass are facing the grinder, and then the glass enters the grinding platform again via the transport platform for edging. The steering of the glass is completed directly on the transport platform, without the need to set up two vertical transport platforms and grinders; the production line and the amount of equipment are shortened. The utility model solves the problem that the current glass edging steering process requires the cooperation of two transport platforms, and that two edging machines are also required to complete the edging of four sides, resulting in a long production line and increased equipment costs.
[0005] In order to achieve the above technical objectives, the present invention is implemented through the following technical solutions:
[0006] A steering transport platform for long glass edging processing comprises a grinding platform, a grinding machine, a transport platform, a steering tray, and a hydraulic lifting column.
[0007] A grinder is provided on each side of the grinding platform;
[0008] The feeding side of the polishing platform is connected to the discharging side of the transport platform; the transport platform is used to move and transport the glass;
[0009] A steering tray is arranged in the center of the transport platform;
[0010] The upper end of the hydraulic lifting column is arranged at the center position of the bottom surface of the steering tray;
[0011] The hydraulic lifting column is used to lift the steering tray and the glass; the steering tray is used to complete the steering of the glass.
[0012] Preferably, the steering tray comprises: a bottom support, a ball bearing and a support cover;
[0013] The center of the bottom surface of the base is arranged on the upper end of the hydraulic lifting column;
[0014] A plurality of ball grooves are provided on the upper surface of the base near the outer ring; a ball is movably arranged in each of the ball grooves;
[0015] The support cover is movably arranged above the bottom support; the inner top surface of the support cover contacts the ball surface.
[0016] Preferably, the steering tray comprises: a bottom support, a support cover, a motor, a driving gear, a driven gear and a toothed conveyor belt;
[0017] The center of the bottom surface of the base is arranged on the upper end of the hydraulic lifting column;
[0018] A driven gear is rotatably provided at the center of the upper surface of the base;
[0019] A driving gear is rotatably provided at a position close to one side of the base;
[0020] The motor is arranged at the position where the bottom surface of the base is opposite to the driving gear; the end of the rotor rod of the motor passes through the base and is arranged at the center of the bottom surface of the driving gear;
[0021] The driving gear and the driven gear are engaged with a toothed conveyor belt;
[0022] The center position of the upper surface inside the support cover is arranged on the upper end surface of the driven gear.
[0023] Preferably, an annular slide rail is provided on the outer side wall of the base;
[0024] An annular groove is provided on the inner side wall of the support cover;
[0025] The support cover is arranged on the base, and when the inner wall of the support cover contacts the outer wall of the base, the annular slide rail is embedded in the annular groove.
[0026] Preferably, four auxiliary support rods are arranged on the outer side wall of the support cover in a cross-symmetrical manner;
[0027] The auxiliary support rod is used to assist the support cover in supporting the glass to ensure balance and stability.
[0028] Preferably, the two opposite auxiliary supporting rods are configured as cylindrical rods, and auxiliary rollers are rotatably provided on the cylindrical rods;
[0029] The other two opposite auxiliary supporting rods are arranged as U-shaped rods; the open ends of the U-shaped rods are arranged on the outer side walls of the supporting cover; and auxiliary rollers are rotatably arranged inside the U-shaped rods.
[0030] Preferably, a plurality of transmission rollers arranged side by side are rotatably arranged on the transport platform;
[0031] Transmission mechanisms are provided at both ends of the transmission roller; the transmission mechanisms are used to drive the transmission roller to rotate;
[0032] A plurality of rollers are arranged on the transmission roller at equal intervals;
[0033] The transmission roller drives the roller to rotate, so as to drive the glass to move.
[0034] Preferably, the transmission mechanism comprises: a motor, a gear and a toothed belt;
[0035] The two ends of the transmission roller pass through the two sides of the transport platform;
[0036] A motor is provided at the end of the rightmost transmission roller;
[0037] A gear is provided near the end of each transmission roller;
[0038] The gear meshes with the toothed conveyor belt.
[0039] Preferably, the control system of the hydraulic lifting column is communicatively connected to a PLC;
[0040] The motor is connected to a travel switch, and the travel switch is connected to a PLC.
[0041] The beneficial effects of the utility model are:
[0042] The utility model provides a steering transport platform for edging processing of long glass, wherein a liftable steering tray is arranged on the table top of the transport platform; the glass is transported to an edging machine on the transport platform; after finishing the grinding of both sides, the glass is returned to the transport platform, and the steering tray on the transport platform is slightly lifted to be higher than the transport table top, and then the steering tray is rotated to directly drive the glass to rotate, thereby completing the steering operation of the glass; after the glass is turned, the unground both sides are facing the grinding machine, and the glass enters the grinding platform again for the edging operation.
[0043] Cross-symmetrical auxiliary support rods are set on the steering tray, and the auxiliary tray does not interfere with the transmission rollers and wheels on the transport platform. The auxiliary support rods can provide auxiliary support for the glass when the steering tray lifts up the glass and turns it, ensuring the stability of the glass.
[0044] Auxiliary rollers are set on the auxiliary support rods; when the steering tray does not need to be turned, the auxiliary rollers on the steering tray can be used as the rollers on the transport platform to assist the movement of the glass. BRIEF DESCRIPTION OF THE DRAWINGS
[0045] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0046] Figure 1 This is a schematic diagram of the overall structure of grinding and transportation of the utility model;
[0047] Figure 2 This is a schematic diagram of the transport platform structure of the utility model;
[0048] Figure 3 This is a schematic diagram of the structure of the steering tray, hydraulic lifting column, auxiliary support rod and auxiliary roller of the utility model;
[0049] Figure 4 This is a structural diagram of a manual steering tray of the utility model;
[0050] Figure 5 This is a schematic structural diagram of the electric steering tray of the utility model;
[0051] Figure 6 This is a schematic diagram of the installation structure of the motor and gears on the transmission mechanism of the utility model;
[0052] Figure 7 This is a schematic diagram of the installation structure of the upper toothed conveyor belt of the rotating mechanism of the utility model;
[0053] In the accompanying drawings, the structural names represented by the reference numerals are:
[0054] 1-grinding platform, 2-grinding machine, 3-transport platform, 301-transmission roller, 302-gear, 4-steering tray, 401-bottom support, 402-support cover, 403-ball, 404-annular slide rail, 405-driving gear, 406-driven gear, 5-hydraulic lifting column, 6-auxiliary support rod, 601-auxiliary roller, 7-motor, 8-tooth conveyor belt. DETAILED DESCRIPTION
[0055] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0056] Example 1
[0057] A steering transport platform for long glass edging processing comprises: a grinding platform 1, a grinding machine 2, a transport platform 3, a steering tray 4 and a hydraulic lifting column 5.
[0058] like Figure 1 As shown, the edging process is directed to the discharge side of the transport platform 3, where it docks with the polishing platform 1. The glass is loaded from the transport platform 3 onto the polishing platform 1, where it is placed and awaits polishing. A polishing machine 2 is located on each side of the polishing platform 1, each responsible for polishing one side of the glass. Therefore, the polishing machine 2 can polish both sides of the glass simultaneously. The polishing platform 1 is equipped with a transmission roller, which is equipped with a roller for transferring the glass. The polishing platform 1 and the polishing machine 2 are existing equipment and are not the main improved structure of the present invention. Therefore, the structures of the polishing platform 1 and the polishing machine 2 will not be described in detail here.
[0059] One side of the grinding platform 1 is docked with the transport platform 3, and a steering tray 4 is set at the center of the transport platform 3. A steering shaft structure is set inside the steering tray 4, which can make the support cover 402 of the steering tray 4 rotate relative to the bottom support 401; Figure 3 As shown, the center position of the bottom surface of the base 401 of the steering tray 4 is set at the upper end of the hydraulic lifting column 5; the hydraulic lifting column 5 can drive the steering tray 4 to rise and fall.
[0060] On the surface of the transport platform 3, except for the position covered by the turning tray 4, the rest of the positions are provided with transmission rollers 301 for transferring the glass and the rollers on the transmission rollers 301;
[0061] Several transmission rollers 301 are arranged side by side at equal intervals on the transport platform 3; on both sides of the area covered by the steering tray 4, the transmission rollers 301 are divided into two sections, which are respectively arranged on both sides of the steering tray 4 and have no contact with the steering tray 4.
[0062] The ends of the drive roller 301, near either side of the transport platform 3, extend out from either side. A transmission mechanism is installed at each end of the drive roller 301, which drives the drive roller 301 to rotate. A number of rollers are evenly spaced on the drive roller 301, which rotates with the drive roller 301. The two rollers work together to move the glass. The rollers are made of rubber, which prevents scratches on the glass surface while providing a high friction between the glass and the rubber. This facilitates glass movement and prevents the glass from easily shifting on the rollers when the drive roller 301 and the rollers are stationary.
[0063] The transmission mechanism in this embodiment specifically includes: a motor 7, a gear 302 and a toothed conveyor belt 8;
[0064] like Figure 6 As shown, both ends of the transmission roller 301 pass through both sides of the transport platform 3; a motor 7 is provided at the end of the rightmost transmission roller 301; the motor 7 here can be provided only at one end of the transmission roller 301, or motors 7 can be provided at both ends. When motors 7 are provided at both ends, the two motors 7 must achieve the same frequency of rotation after being connected to the travel switch.
[0065] Each transmission roller 301 is provided with a gear 302 near both ends; Figure 7 As shown, the toothed conveyor belt 8 is engaged with the gear 302. The motor 7 drives the rightmost transmission roller 301 to rotate, which in turn rotates the gear 302 on the transmission roller 301, driving the toothed conveyor belt 8. The toothed conveyor belt 8 drives the other gears 302 to rotate together. The rotation of the gear 302 drives the transmission roller 301, which in turn drives the roller to rotate, thereby moving the glass on the transport platform 3 that is in contact with the roller.
[0066] The control system of the hydraulic lifting column 5 in this embodiment is connected to the PLC; the motor 7 is connected to the travel switch, and the travel switch is connected to the PLC;
[0067] The rectangular glass is first loaded onto the transport platform 3 and then transferred to the polishing platform 1 via the transport platform 3. The polisher 2 polishes two of the side edges of the glass. After polishing these two sides, the glass is transferred back to the transport platform 3 by the polishing platform 1. The PLC sets a return limit for the glass. Under the control of the motor, travel switch, and PLC, the glass is returned to the center of the steering tray 4. The motor 7 controls the transmission roller 301 to stop rotating and the glass is stationary. The hydraulic lifting column 5 then drives the steering tray 4 and the glass to slightly rise above the surface of the transport platform 3. At this time, the operator assists the glass in making a 90° turn on the steering tray 4. After the turn is completed, the hydraulic lifting column 5 slowly descends until the glass is placed on the transport platform 3 again. The transport platform 3 then moves the glass to the polishing platform 1, and the polisher 2 polishes the other two sides of the glass.
[0068] Example 2
[0069] Based on Example 1, in Example 1, the tray and the glass on the tray are steered by the rotating shaft inside the steering tray 4; the glass has a certain weight, but relying on a rotating shaft, manual steering may be laborious.
[0070] like Figure 4 As shown, in this embodiment, the rotating core structure of the steering tray 4 is designed as a circle of balls 403, and the rotation of the support cover 402 is achieved through the balls 403; the coordinated rotation of several balls 403 can more easily steer the steering tray 4 supporting the glass; and during the steering process, the cooperation between the balls 403 and the ball grooves makes the steering more flexible and smooth.
[0071] The manual steering tray 4 in this embodiment includes: a ball 403 and a support cover 402; the center of the bottom surface of the base 401 is set on the upper end of the hydraulic lifting column 5, and the center of the bottom surface of the base 401 and the upper end of the hydraulic lifting column 5 are fixedly connected.
[0072] An annular groove structure is provided on the upper surface of the base 401 near the outer ring, and a plurality of ball grooves are separated in the groove structure. The ball grooves are spherical in structure, and the balls 403 can be inserted into the ball grooves and rotate freely in the ball grooves.
[0073] The support cover 402 is movably arranged above the base 401. The specific arrangement method is to buckle the support cover 402 on the base 401; the upper surface inside the support cover 402 contacts the ball 403; in this way, the support cover 402 can rotate on the base 401.
[0074] As a preferred embodiment, in the above structure, the support cover 402 is merely buckled onto the base 401, so that the top surface of the support cover 402 contacts the ball 403; during the rotation process, the support cover 402 has no limiting structure and may be slightly displaced, causing the center of rotation to shift.
[0075] So, if Figure 4 As shown, an annular slide rail 404 is provided on the outer side wall of the base 401; and an annular groove is correspondingly provided on the inner side wall of the support cover 402;
[0076] When the cover 402 is buckled onto the base 401, the inner wall of the cover 402 contacts the outer wall of the base 401, and the annular guide rail 404 is embedded in the annular groove. The cooperation between the annular guide rail 404 and the annular groove forms a rotation limit track for the cover 402, preventing the cover 402 from slightly shifting during rotation.
[0077] Example 3
[0078] Based on Example 1, in Example 1, the structure of the steering tray 4 requires manual steering; manual steering requires human participation; in addition, the operator may cause the position of the glass to move during the auxiliary steering process by holding the glass.
[0079] like Figure 5 As shown, in this embodiment, the steering tray 4 is set as an electronically controlled automatic steering tray 4, which does not require manual operation; the automatic rotation of the steering tray 4 is achieved. The specific structural design is:
[0080] The electrically controlled steering tray 4 includes: a base 401, a support cover 402, a motor 7, a driving gear 405, a driven gear 406, and a toothed conveyor belt 8; the center of the bottom surface of the base 401 is set on the upper end of the hydraulic lifting column 5, and the bottom surface of the base 401 and the upper end of the hydraulic lifting column 5 are fixedly connected;
[0081] A driven gear 406 is rotatably provided at the center of the upper surface of the base 401 , and the center of the lower end surface of the driven gear 406 is rotatably provided at the center position of the upper surface of the base 401 ;
[0082] The driving gear 405 is rotatably arranged at a position close to one side of the base 401. As long as the driving gear 405 is arranged at a position close to the outer periphery of the circular base 401, it falls within the protection scope of this solution.
[0083] The motor 7 is arranged at a position on the bottom surface of the base 401 facing the driving gear 405; the end of the rotor rod of the motor 7 passes through the base 401 and is arranged at the center of the bottom surface of the driving gear 405; the rotor rod of the motor 7 passes through the base 401 and has no contact with the base 401, and the rotor rod can rotate relative to the base 401; the rotation of the rotor rod can drive the driving gear 405 to rotate.
[0084] A toothed conveyor belt 8 is meshed between the driving gear 405 and the driven gear 406; the motor 7 drives the driving gear 405 to rotate, the driving gear 405 drives the toothed conveyor belt 8 to transmit, and the toothed conveyor belt 8 drives the driven gear 406 to rotate;
[0085] The center position of the inner top surface of the support cover 402 is arranged on the upper end surface of the driven gear 406. The rotation of the driven gear 406 can drive the support cover 402 to rotate, and can also drive the glass supported on the support cover 402 to turn.
[0086] As a preferred embodiment, an annular slide rail 404 is provided on the outer side wall of the base 401; and an annular groove is correspondingly provided on the inner side wall of the support cover 402;
[0087] When the cover 402 is buckled onto the base 401, the inner wall of the cover 402 contacts the outer wall of the base 401, and the annular guide rail 404 is embedded in the annular groove. The cooperation between the annular guide rail 404 and the annular groove forms a rotation limit track for the cover 402, preventing the cover 402 from slightly shifting during rotation.
[0088] Example 4
[0089] Based on the embodiment 2 or embodiment 3; in the embodiment 2 or embodiment 3, the support cover 402 plays a role in fully supporting the glass; in order to share the supporting force of the support cover 402, and also to make the support of the glass more stable when turning;
[0090] like Figure 3 As shown, in this embodiment, four auxiliary support rods 6 are symmetrically arranged on the outer wall of the support cover 402 in a cross shape; when the support cover 402 supports the glass, the four auxiliary support rods 6 can also contact the lower bottom surface of the glass to provide auxiliary support for the glass, ensuring the balance and stability of the glass during the supporting and turning process.
[0091] The auxiliary support rod 6 can be a cylindrical structure rod, and a sponge sleeve can be wrapped on the outside of the auxiliary support rod 6 to prevent the glass surface from being scratched.
[0092] On the transport platform 3, the transmission rollers 301 on both sides of the auxiliary support rod 6 are also set as two independent sections, and there is no contact between the transmission rollers 301 and the auxiliary support rod 6. When the steering tray 4 is raised and lowered together with the auxiliary support rod 6, there will be no interference with the transmission rollers 301 and the rollers on the transport platform 3.
[0093] Example 5
[0094] Based on Example 4, in Example 4, the auxiliary support rod 6 only plays an auxiliary supporting role for the glass when the glass is turned, and the auxiliary steering tray 4 plays an auxiliary supporting role for the glass; when the glass is on the transport platform 3, the steering tray 4 and the auxiliary support rod 6 have no effect.
[0095] like Figure 3 As shown, in this embodiment, the two opposite auxiliary support rods 6 on the support cover 402 are set as cylindrical rods, and auxiliary rollers 601 are rotatably set on the cylindrical rods;
[0096] The other two opposite auxiliary supporting rods 6 are configured as U-shaped rods; the open ends of the U-shaped rods are fixedly connected to the outer side wall of the supporting cover 402; and auxiliary rollers 601 are rotatably provided inside the U-shaped rods.
[0097] In this way, when the steering tray 4 is no longer needed to support and steer the glass, the steering tray 4 is lowered to slightly below the surface of the transport platform 3, so that the highest point of the auxiliary roller 601 on the auxiliary support rod 6 and the highest point of the roller on the transport platform 3 are on the same horizontal plane; at this time, the auxiliary roller 601 on the auxiliary support rod 6 can cooperate with the roller on the transport platform 3 to assist in moving the glass.
[0098] Throughout this specification, references to terms such as "one embodiment," "example," or "specific example" indicate that a specific feature, structure, material, or characteristic described in conjunction with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, schematic representations of these terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0099] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. The preferred embodiments do not describe all details in detail, nor do they limit the present invention to the specific embodiments described. Obviously, many modifications and variations are possible based on the contents of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.
Claims
1. A turning and transporting platform for long glass edging processing, characterized in that: include: Grinding platforms, grinding machines, transport platforms, steering pallets, hydraulic lifting columns; A grinder is provided on each side of the grinding platform; The feeding side of the polishing platform is connected to the discharging side of the transport platform; the transport platform is used to move and transport the glass; A steering tray is arranged in the center of the transport platform; The upper end of the hydraulic lifting column is arranged at the center position of the bottom surface of the steering tray; The hydraulic lifting column is used to lift the steering tray and the glass; the steering tray is used to complete the steering of the glass.
2. The turning and transporting platform for long glass edging processing according to claim 1, characterized in that: The steering tray comprises: a bottom support, a ball bearing and a support cover; The center of the bottom surface of the base is arranged on the upper end of the hydraulic lifting column; A plurality of ball grooves are provided on the upper surface of the base near the outer ring; a ball is movably arranged in each of the ball grooves; The support cover is movably arranged above the bottom support; the inner top surface of the support cover contacts the ball surface.
3. The turning and transporting platform for long glass edging processing according to claim 1, characterized in that: The steering tray comprises: a bottom support, a support cover, a motor, a driving gear, a driven gear and a toothed conveyor belt; The center of the bottom surface of the base is arranged on the upper end of the hydraulic lifting column; A driven gear is rotatably provided at the center of the upper surface of the base; A driving gear is rotatably provided at a position close to one side of the base; The motor is arranged at the position where the bottom surface of the base is opposite to the driving gear; the end of the rotor rod of the motor passes through the base and is arranged at the center of the bottom surface of the driving gear; The driving gear and the driven gear are engaged with a toothed conveyor belt; The center position of the upper surface inside the support cover is arranged on the upper end surface of the driven gear.
4. A turning and transporting platform for long glass edging processing according to claim 2 or 3, characterized in that: An annular slide rail is provided on the outer side wall of the base; An annular groove is provided on the inner side wall of the support cover; The support cover is arranged on the base, and when the inner wall of the support cover contacts the outer wall of the base, the annular slide rail is embedded in the annular groove.
5. The turning and transporting platform for long glass edging processing according to claim 2 or 3, characterized in that: Four auxiliary support rods are arranged in a cross-symmetrical pattern on the outer side wall of the support cover; The auxiliary support rod is used to assist the support cover in supporting the glass to ensure balance and stability.
6. The turning and transporting platform for long glass edging processing according to claim 5, characterized in that: The two opposite auxiliary supporting rods are set as cylindrical rods, and auxiliary rollers are rotatably set on the cylindrical rods; The other two opposite auxiliary supporting rods are arranged as U-shaped rods; the open ends of the U-shaped rods are arranged on the outer side walls of the supporting cover; and auxiliary rollers are rotatably arranged inside the U-shaped rods.
7. The turning and transporting platform for long glass edging processing according to claim 1, characterized in that: A plurality of transmission rollers arranged side by side are rotatably arranged on the transport platform; Transmission mechanisms are provided at both ends of the transmission roller; the transmission mechanisms are used to drive the transmission roller to rotate; A plurality of rollers are arranged on the transmission roller at equal intervals; The transmission roller drives the roller to rotate, so as to drive the glass to move.
8. The turning and transporting platform for long glass edging processing according to claim 7, characterized in that: The transmission mechanism includes: a motor, gears and a toothed belt; The two ends of the transmission roller pass through the two sides of the transport platform; A motor is provided at the end of the rightmost transmission roller; A gear is provided near the end of each transmission roller; The gear meshes with the toothed conveyor belt.
9. The turning and transporting platform for long glass edging processing according to claim 7, characterized in that: The control system of the hydraulic lifting column is communicatively connected to the PLC; The motor in the transmission mechanism is connected to a travel switch, and the travel switch is connected to a PLC.