Full-automatic tempered mirror production system
By designing a fully automatic tempered mirror production system, the problems of cumbersome operation and low efficiency of traditional inspection methods are solved, and the automatic collection and cleaning of tempered mirror fragments are realized, the efficiency of impact resistance testing is improved, and labor burden and cost are reduced.
Patent Information
- Application Number
- CN202510305271.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-14
- Publication Date
- 2025-05-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The traditional way of detecting the impact resistance and particle size of tempered mirrors has problems such as cumbersome operation, low efficiency, heavy labor burden, high cost and high operational risks.
A fully automatic tempered mirror production system is designed, including a cleaning mechanism and a drop mechanism on the processing table. The cleaning mechanism realizes automatic collection and cleaning of the crushed tempered mirror through the flip assembly and the cleaning assembly. The drop mechanism realizes automatic adjustment of the ball-falling platform height step by step and automatic continuous dropping of the steel ball through the adjustment assembly, the opening and closing assembly and the bottom assembly.
The efficiency of debris cleaning of tempered mirrors is improved, the burden of manual cleaning is reduced, and the risk of operators being scratched by debris is avoided. At the same time, the efficiency of impact resistance performance testing is improved, and labor costs are reduced.
Smart Images

Figure CN120039661A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of full-automatic tempered mirror production, and specifically to a full-automatic tempered mirror production system. Background Art
[0002] A tempered mirror is a reflective mirror made by plating silver or other metal materials and coating a protective layer on the basis of tempered glass. During the full-automatic production and processing of tempered mirrors, it is usually necessary to detect the impact resistance and particle size of the formed tempered mirrors. In the prior art, when testing the impact resistance of a tempered mirror, generally a steel ball of a certain weight is freely dropped from a specific height to impact the surface of the tempered mirror, so as to observe and obtain the impact resistance of the tempered mirror. If the tempered mirror remains intact under the specified impact conditions, it meets the actual impact resistance standard. At this time, the tempered mirror can be further impacted and broken by tools such as an impact hammer, and the particle size of the fragments after the tempered mirror is broken is detected according to the national standard, that is, within any 50mm*50mm area of the broken tempered mirror, there must be at least 40 fragments, and the mass of the largest single fragment shall not exceed a certain range.
[0003] However, the traditional methods for detecting the impact resistance and particle size of tempered mirrors have the following problems: 1. When performing the ball-drop impact test on a tempered mirror, it is usually necessary to gradually adjust the height of the ball-drop platform to accurately test the actual impact resistance of the tempered mirror. The existing test methods not only require manual adjustment of the position of the ball-drop platform step by step, but also require manual picking up and placing of the steel ball multiple times. If a large number of tempered mirrors are detected, it will not only make the overall test operation steps cumbersome and inefficient, but also result in a heavy overall operation burden on the operator and a high labor cost; 2. In the prior art, after the impact resistance test or particle size detection is completed, it is often necessary for manual cleaning and collection of the broken tempered mirrors. If the number of tempered mirrors to be detected is large, the above operation method is not only time-consuming and laborious and inefficient, but also the broken tempered mirrors pose a risk of scratching the operator, which will not only further increase the overall operation burden on the operator, but also affect the normal operation of the operator. Summary of the Invention
[0004] To achieve the above object, the present invention provides the following technical solution: A full-automatic tempered mirror production system for detecting the impact resistance and broken particle size of a tempered mirror, including a processing table, a cleaning mechanism and a feeding mechanism are arranged on the processing table, and a supporting mechanism is arranged on the cleaning mechanism.
[0005] The cleaning mechanism includes a flipping component arranged on the upper side of the processing table, and a cleaning component is arranged on the flipping component.
[0006] The supporting mechanism includes U-shaped fixing plates symmetrically arranged on the left and right on the flipping component, and a limiting component and a supporting component are jointly arranged between the U-shaped fixing plates symmetrically arranged on the left and right.
[0007] The feeding mechanism includes L-shaped brackets symmetrically fixed on the rear side of the processing table, an adjusting component is arranged on the L-shaped brackets, an opening and closing component is arranged on the adjusting component, and a bottom supporting component is arranged on the opening and closing component.
[0008] Preferably, the flipping component includes support columns symmetrically and fixedly arranged on the upper side of the processing table, support seats one are symmetrically and fixedly arranged on the upper side of the processing table and in front of the support columns, a slag collecting box located above the support columns is rotatably arranged between the support seats one symmetrically arranged on the left and right, a hydraulic cylinder located below the slag collecting box is rotatably arranged on the upper side of the processing table through a support seat two, the telescopic end of the hydraulic cylinder is rotatably connected to the rear side of the lower surface of the slag collecting box through a support seat three, a square slot penetrating through the front and rear is arranged on the front side of the slag collecting box, and an opening and closing plate is elastically rotatably arranged in the square slot through a torsion spring rotating shaft.
[0009] Preferably, the cleaning component includes a U-shaped frame fixedly arranged at the rear side of the slag collecting box and opening forward, an electric push rod is fixedly arranged at the rear side of the U-shaped frame, a cleaning push plate that moves forward and backward through the slag collecting box is fixedly arranged at the telescopic end of the electric push rod, and guide rods one slidably connected to the U-shaped frame are symmetrically and fixedly arranged on the rear side of the cleaning push plate.
[0010] Preferably, the limiting component includes a square limiting frame located above the slag collecting box fixedly arranged between the U-shaped fixing plates symmetrically arranged on the left and right, a square guiding frame is installed on the upper side of the square limiting frame, an opening one penetrating through the front and rear is arranged on the front side of the square guiding frame, the inner sides of the square guiding frame and on the left and right sides of the opening one are symmetrically inclined surfaces, a collecting box is jointly installed on the front sides of the square guiding frame and the square limiting frame, an opening two aligned and communicated with the opening one is arranged on the rear side of the collecting box, and the lower surface inside the collecting box is an inclined surface extending towards the lower left side.
[0011] Preferably, the supporting component includes a pneumatic cylinder one fixedly arranged on the vertical section of the U-shaped fixing plate on the side far from the square limiting frame, a supporting table that moves left and right and is located between the slag collecting box and the square limiting frame is fixedly arranged at the telescopic end of the pneumatic cylinder one, guide rods two slidably connected to the vertical section of the corresponding U-shaped fixing plate are symmetrically and fixedly arranged on the side of the supporting table close to the corresponding pneumatic cylinder one, connecting plates are symmetrically and fixedly arranged on the front and rear sides of the supporting table, sliding shafts are fixedly arranged on the upper sides of the connecting plates, a supporting plate that moves forward and backward and is located below the square limiting frame is jointly slidably arranged on the connecting plates symmetrically arranged on the left and right, and inclined straight grooves slidably connected to the corresponding sliding shafts are symmetrically arranged on the left and right sides of the supporting plate.
[0012] Preferably, the adjusting assembly includes a guide rail fixedly arranged on the front side of the vertical section of the L-shaped bracket. An electric slider that moves up and down is slidably arranged on the guide rail. The front sides of the symmetrically arranged electric sliders on the left and right are jointly fixedly provided with a U-shaped ball dropping table with an opening facing backward. A circular groove one that penetrates up and down is provided on the U-shaped ball dropping table.
[0013] Preferably, the opening and closing assembly includes a feeding pipe fixedly arranged on the upper side of the U-shaped ball dropping table. A circular groove two that penetrates up and down and is aligned with the circular groove one is provided on the feeding pipe. A plurality of steel balls are evenly placed up and down in the circular groove two. A through groove one that penetrates left and right is provided at the lower end of the feeding pipe. A through groove two that penetrates left and right is provided on the left side of the feeding pipe and above the through groove one. A pneumatic cylinder two is fixedly arranged on the upper side of the U-shaped ball dropping table through a support four located on the right side of the feeding pipe. The telescopic end of the pneumatic cylinder two is fixedly provided with an L-shaped support plate that moves left and right. The horizontal section of the L-shaped support plate is slidably inserted into the through groove one.
[0014] Preferably, the bottom supporting assembly includes a return-shaped linkage frame fixedly arranged on the upper side of the vertical section of the L-shaped support plate and outside the feeding pipe. Spring rods are symmetrically and elastically slidably arranged on the front and rear sides of the left side of the return-shaped linkage frame. The right ends of the symmetrically arranged spring rods on the front and rear sides are jointly fixedly provided with a bottom supporting plate that moves left and right and is slidably inserted into the through groove two.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0016] 1. Through the cooperation of the cleaning mechanism and the supporting mechanism, after the toughened mirror test is completed, the present invention can not only automatically and quickly collect the broken toughened mirror, but also automatically and centrally dump and clean the collected broken toughened mirror, thereby not only improving the cleaning efficiency of the toughened mirror fragments, but also reducing the overall manual cleaning burden, and at the same time avoiding the situation that the operator is scratched by the toughened mirror fragments during the cleaning process.
[0017] 2. Through the adjusting assembly in the feeding mechanism, the present invention can automatically and gradually adjust the feeding height of the ball dropping platform, and through the cooperation of the opening and closing assembly and the bottom supporting assembly in the feeding mechanism, it can automatically and continuously drop steel balls, thereby improving the continuity of the steel ball dropping at each level and the efficiency of the overall impact resistance performance test of the toughened mirror. At the same time, through the cooperation of the flipping assembly in the cleaning mechanism and the limiting assembly in the supporting mechanism, it can also centrally collect the steel balls falling on the toughened mirror, thereby reducing the overall manual operation burden of picking up and placing the steel balls and saving the overall labor cost. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic structural diagram of the present invention.
[0019] Figure 2 It is a partial sectional schematic diagram of a part of the structure of the present invention.
[0020] Figure 3 Schematic diagram of a partial cross-section of a part of the cleaning mechanism
[0021] Figure 4 Schematic diagram of a partial cross-section of a part of the supporting mechanism
[0022] Figure 5 Schematic diagram of a partial cross-section of a part of the feeding mechanism
[0023] In the figure: 1. Processing table; 2. Cleaning mechanism; 21. Flipping assembly; 211. Support column; 212. Slag collection box; 213. Hydraulic cylinder; 214. Opening and closing plate; 22. Cleaning assembly; 221. U-shaped frame; 222. Electric push rod; 223. Cleaning push plate; 3. Supporting mechanism; 31. U-shaped fixing plate; 32. Limiting assembly; 321. Square limiting frame; 322. Square guiding frame; 323. Collection box; 33. Supporting assembly; 331. Pneumatic cylinder 1; 332. Supporting table; 333. Sliding shaft; 334. Supporting plate; 335. Oblique straight groove; 4. Feeding mechanism; 41. L-shaped bracket; 42. Adjusting assembly; 421. Guide rail; 422. Electric slider; 423. U-shaped ball dropping table; 43. Opening and closing assembly; 431. Feeding pipe; 432. Steel ball; 433. Pneumatic cylinder 2; 434. L-shaped supporting plate; 44. Bottom supporting assembly; 441. Square linkage frame; 442. Spring rod; 443. Bottom supporting plate. Detailed implementation manners
[0024] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0025] Please refer to Figure 1 , a fully automatic tempered mirror production system for detecting the impact resistance and broken particle size of tempered mirrors, including a processing table 1, a cleaning mechanism 2 and a feeding mechanism 4 are arranged on the processing table 1, and a supporting mechanism 3 is arranged on the cleaning mechanism 2.
[0026] Please refer to Figure 1 and Figure 2 , the cleaning mechanism 2 includes a flipping assembly 21 arranged on the upper side of the processing table 1, and a cleaning assembly 22 is arranged on the flipping assembly 21.
[0027] Please refer to Figure 1 , Figure 2 and Figure 3, the flipping assembly 21 includes support columns 211 symmetrically and fixedly arranged on the upper side of the processing table 1 from left to right. On the upper side of the processing table 1 and in front of the support columns 211, there are first supports symmetrically and fixedly arranged from left to right. Between the symmetric first supports from left to right, there is a slag collection box 212 rotatably arranged on the upper side of the support columns 211. On the upper side of the processing table 1, there is a hydraulic cylinder 213 rotatably arranged through a second support on the lower side of the slag collection box 212. The telescopic end of the hydraulic cylinder 213 is rotatably connected to the rear side of the lower surface of the slag collection box 212 through a third support. A square slot penetrating through from front to back is opened on the front side of the slag collection box 212. An opening and closing plate 214 is elastically rotatably arranged in the square slot through a torsion spring rotating shaft.
[0028] By pushing the rear side of the slag collection box 212 upward through the hydraulic cylinder 213, the slag collection box 212 rotates upward and tilts around the first support, so that the broken tempered glass mirrors in the slag collection box 212 move forward obliquely downward. When the tilting angle of the slag collection box 212 is relatively small, the opening and closing plate 214 can stably close the square slot at the front end of the slag collection box 212 under the action of the torsion spring rotating shaft. However, when the tilting angle of the slag collection box 212 is relatively large, under the action of its own gravity and the broken tempered glass mirrors in the slag collection box 212, the opening and closing plate 214 rotates around the torsion spring rotating shaft accordingly, so that the square slot at the front end of the slag collection box 212 is opened and the broken tempered glass mirrors in the slag collection box 212 are concentrated and poured forward.
[0029] Please refer to Figure 2 and Figure 3 , the cleaning assembly 22 includes a U-shaped frame 221 fixedly arranged at the rear side of the slag collection box 212 and opening forward. An electric push rod 222 is fixedly arranged at the rear side of the U-shaped frame 221. The telescopic end of the electric push rod 222 is fixedly provided with a cleaning push plate 223 that moves forward and backward through the slag collection box 212. Guide rods 1 symmetrically and fixedly arranged on the rear side of the cleaning push plate 223 are slidably connected to the U-shaped frame 221.
[0030] When the slag collection box 212 rotates and tilts at a large angle to pour the broken tempered glass mirrors inside, the cleaning push plate 223 is driven to move forward through the electric push rod 222, so that the cleaning push plate 223 can cooperate with the slag collection box 212 to quickly and stably clean and pour the broken tempered glass mirrors inside forward and concentrate them.
[0031] Please refer to Figure 1 and Figure 2 , the supporting mechanism 3 includes U-shaped fixing plates 31 symmetrically and fixedly arranged on the slag collection box 212 from left to right. A limiting component 32 and a supporting component 33 are jointly arranged between the symmetric U-shaped fixing plates 31 from left to right.
[0032] Please refer to Figure 1 , Figure 2 and Figure 3, the limit assembly 32 includes a loop-shaped limit frame 321 fixed between the left and right symmetric U-shaped fixing plates 31 and located above the slag collection box 212. A loop-shaped guiding frame 322 is installed on the upper side of the loop-shaped limit frame 321. A first through-opening is formed in the front side of the loop-shaped guiding frame 322 and runs through from front to back. The inner sides of the loop-shaped guiding frame 322 on both sides of the first through-opening are symmetric inclined surfaces. A collection box 323 is jointly installed on the front sides of the loop-shaped guiding frame 322 and the loop-shaped limit frame 321. A second through-opening is formed in the rear side of the collection box 323 and is aligned and communicated with the first through-opening. The lower surface inside the collection box 323 is an inclined surface extending towards the lower left side.
[0033] Please refer to Figure 2 , Figure 3 and Figure 4 , the supporting assembly 33 includes a pneumatic cylinder 331 fixedly arranged on the vertical section of the U-shaped fixing plate 31 on the side far from the loop-shaped limit frame 321. A supporting platform 332 that moves left and right and is located between the slag collection box 212 and the loop-shaped limit frame 321 is fixedly arranged at the telescopic end of the pneumatic cylinder 331. Guide rods 332 are symmetrically and fixedly arranged on the front and rear sides of the supporting platform 332 near the corresponding pneumatic cylinder 331 and are slidably connected to the vertical sections of the corresponding U-shaped fixing plates 31. Connecting plates are symmetrically and fixedly arranged on the front and rear sides of the supporting platform 332. A sliding shaft 333 is fixedly arranged on the upper side of the connecting plate. A supporting plate 334 that moves back and forth and is located below the loop-shaped limit frame 321 is jointly slidably arranged on the left and right symmetric connecting plates. Oblique straight grooves 335 that are slidably connected to the corresponding sliding shafts 333 are symmetrically formed on the left and right sides of the supporting plate 334.
[0034] When the broken tempered glass mirror supported by the supporting platform 332 and the supporting plate 334 in the loop-shaped limit frame 321 is completed with detection, the pneumatic cylinder 331 drives the left and right symmetric supporting platforms 332 to move synchronously away from each other. The left and right symmetric sliding shafts 333 move synchronously away from each other accordingly, and drive the corresponding supporting plates 334 to move in a direction away from the supporting platform 332 through the sliding cooperation with the corresponding oblique straight grooves 335, so that the contact areas between the supporting platform 332 and the supporting plate 334 and the broken tempered glass mirror gradually decrease until the broken tempered glass mirror completely falls into the slag collection box 212 because it is no longer supported by the supporting platform 332 and the supporting plate 334. At this time, the broken tempered glass mirror falling into the slag collection box 212 can be swept forward and dumped through the cooperation of the hydraulic cylinder 213 and the cleaning push plate 223. The above operation method can not only realize the automatic and rapid collection of the broken tempered glass mirror, but also automatically and centrally dump and clean the collected broken tempered glass mirror, thereby not only improving the cleaning efficiency of the tempered glass mirror fragments, but also reducing the overall manual cleaning burden, and at the same time avoiding the situation that the operator is scratched by the tempered glass mirror fragments during the cleaning process.
[0035] Please refer to Figure 1, the feeding mechanism 4 includes L-shaped brackets 41 fixedly arranged symmetrically on the left and right at the rear side of the processing table 1. An adjusting component 42 is arranged on the L-shaped bracket 41, an opening and closing component 43 is arranged on the adjusting component 42, and a bottom supporting component 44 is arranged on the opening and closing component 43.
[0036] Please refer to Figure 1 and Figure 5 , the adjusting component 42 includes a guide rail 421 fixedly arranged on the front side of the vertical section of the L-shaped bracket 41. An electric slider 422 that moves up and down is slidably arranged on the guide rail 421. The front sides of the left and right symmetric electric sliders 422 are jointly fixedly provided with a U-shaped ball dropping table 423 with an opening facing backward. A circular groove one that penetrates up and down is opened on the U-shaped ball dropping table 423.
[0037] Please refer to Figure 1 and Figure 5 , the opening and closing component 43 includes a feeding pipe 431 fixedly arranged on the upper side of the U-shaped ball dropping table 423. A circular groove two that penetrates up and down and is aligned with the circular groove one is opened on the feeding pipe 431. A plurality of steel balls 432 are evenly placed up and down in the circular groove two. A through groove one that penetrates left and right is opened at the lower end of the feeding pipe 431. A through groove two that penetrates left and right is opened on the left side of the feeding pipe 431 and above the through groove one. A pneumatic cylinder two 433 is fixedly arranged on the upper side of the U-shaped ball dropping table 423 through a support four located on the right side of the feeding pipe 431. The telescopic end of the pneumatic cylinder two 433 is fixedly provided with an L-shaped support plate 434 that moves left and right. The horizontal section of the L-shaped support plate 434 is slidably inserted into the through groove one.
[0038] Please refer to Figure 1 and Figure 5 , the bottom supporting component 44 includes a return-shaped linkage frame 441 fixedly arranged on the upper side of the vertical section of the L-shaped support plate 434 and outside the feeding pipe 431. Spring rods 442 are elastically slidably arranged symmetrically before and after on the left side of the return-shaped linkage frame 441. The right ends of the front and rear symmetric spring rods 442 are jointly fixedly provided with a bottom supporting plate 443 that moves left and right and is slidably inserted into the through groove two.
[0039] When the steel balls 432 in the feeding pipe 431 need to be sequentially dropped downward, the air cylinder two 433 drives the L-shaped support plate 434 to move to the right. The horizontal section of the L-shaped support plate 434 then moves to the right along the through groove one and gradually opens the lower end of the circular groove two. At the same time, the vertical section of the L-shaped support plate 434 synchronously drives the spring rod 442 and the support bottom plate 443 to move to the right through the loop-shaped linkage frame 441. The support bottom plate 443 then docks and inserts into the through groove two. Before the L-shaped support plate 434 completely opens the lower end of the circular groove two, the support bottom plate 443 has stably supported the lower side of the second steel ball 432 from the bottom up and cannot move further to the right, that is, all the steel balls 432 above the lowermost steel ball 432 are stably supported. With the continuous drive of the air cylinder two 433, the left end of the loop-shaped linkage frame 441 continues to move to the right along the spring rod 442, and the horizontal section of the L-shaped support plate 434 also continues to move to the right until the lower end of the circular groove two is completely opened. The lowermost steel ball 432 in the circular groove two then freely falls downward through the circular groove one. Finally, the air cylinder two 433 drives the L-shaped support plate 434 and the support bottom plate 443 to move to the left until they are reset. All the remaining steel balls 432 then synchronously move downward at the moment when they are no longer supported and limited by the support bottom plate 443 until they are stably supported by the horizontal section of the L-shaped support plate 434. At this time, the above operations can be repeated to sequentially drop the steel balls 432 in the feeding pipe 431 downward.
[0040] When the steel balls 432 that have fallen on the toughened mirror need to be collected into the collection box 323, the hydraulic cylinder 213 drives the slag collection box 212 to rotate upward around the support one by a small angle, so as to ensure that the opening and closing plate 214 stably closes the square opening while making the steel balls 432 on the toughened mirror tilt forward. The steel balls 432 then roll forward and enter the collection box 323 sequentially through the opening one and the opening two under the guidance of the loop-shaped guiding frame 322, and roll stably along the inclined surface in the collection box 323 to the leftmost end, thus realizing the collection of the steel balls 432.
[0041] When conducting the impact resistance test on the tempered mirror, first place the tempered mirror with a specific size to be tested into the loop-shaped limiting frame 321, and stably support the tempered mirror through the supporting table 332 and the supporting plate 334. Then, drive the U-shaped ball dropping table 423 to move upward along the guide rail 421 to a specific test height at the first level by the electric slider 422. Next, drive the L-shaped supporting plate 434 to move to the right by the pneumatic cylinder II 433 until the steel ball 432 at the lowermost side in the second circular groove freely falls and impacts the surface of the tempered mirror. If the tempered mirror remains intact, the ball dropping height can be increased again by the electric slider 422. At the same time, make the steel ball 432 on the tempered mirror roll stably into the collection box 323 through the hydraulic cylinder 213 to complete the collection. After the collection of the steel ball 432 is completed, make the slag collection box 212 reset again and be supported by the support column 211. Then, make a new steel ball 432 freely fall at a specific test height at the second level through the L-shaped supporting plate 434 to impact the tempered mirror again. Repeat the above operations until the steel ball 432 freely falls from the maximum test height to impact the tempered mirror. If the tempered mirror remains intact under the specified impact conditions, the tempered mirror meets the actual impact resistance performance standard. At this time, the particle size detection of the tempered mirror can be carried out.
[0042] The above operation method can not only achieve automatic step-by-step adjustment of the dropping height of the ball dropping platform, but also achieve automatic continuous dropping of the steel balls 432, thereby improving the continuity of the dropping of the steel balls 432 at each level and the efficiency of the overall impact resistance performance test of the tempered mirror. At the same time, it can also achieve centralized collection of the steel balls 432 falling on the tempered mirror, thereby reducing the operation burden of manually picking up and placing the steel balls 432 as a whole and saving the overall labor cost.
[0043] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A fully automatic tempered mirror production system for testing the impact resistance and crushing particle size of tempered mirrors, including a processing table, characterized in that: The processing table is provided with a cleaning mechanism and a delivery mechanism, and the cleaning mechanism is provided with a supporting mechanism; The cleaning mechanism comprises a flip assembly arranged on the upper side of the processing table, and a cleaning assembly is arranged on the flip assembly; The supporting mechanism comprises a U-shaped fixing plate symmetrically arranged on the flip assembly, and a limit assembly and a supporting assembly are arranged between the U-shaped fixing plates symmetrically arranged on the flip assembly; The delivery mechanism comprises an L-shaped bracket fixedly arranged at the rear side of the processing table symmetrically, the L-shaped bracket is provided with an adjustment component, the adjustment component is provided with an opening and closing component, and the opening and closing component is provided with a bottom supporting component.
2. The fully automatic tempered mirror production system according to claim 1, characterized in that: The flip assembly includes a support column fixedly arranged on the upper side of the processing table symmetrically, a support one is fixedly arranged symmetrically on the upper side of the processing table and in front of the support column, a slag collecting box located on the upper side of the support column is rotatably arranged between the left and right symmetrical supports one, a hydraulic cylinder located on the lower side of the slag collecting box is rotatably arranged on the upper side of the processing table through a support two, the telescopic end of the hydraulic cylinder is rotatably connected to the rear side of the lower surface of the slag collecting box through a support three, a square slot that runs through the front and back is provided on the front side of the slag collecting box, and an opening and closing plate is elastically rotatably arranged in the square slot through a torsion spring rotating shaft.
3. The fully automatic tempered mirror production system according to claim 2, characterized in that: The cleaning assembly includes a U-shaped frame fixedly arranged on the rear side of the slag collecting box and opening forward, an electric push rod fixedly arranged on the rear side of the U-shaped frame, a cleaning push plate fixedly arranged on the telescopic end of the electric push rod and moving forward and backward and penetrating the slag collecting box, and a guide rod 1 slidably connected to the U-shaped frame fixedly arranged on the rear side of the cleaning push plate symmetrically.
4. The fully automatic tempered mirror production system according to claim 2, characterized in that: The limiting assembly includes a circular limiting frame fixedly arranged between left-right symmetrical U-shaped fixing plates and located above the slag collecting box, a circular guide frame is installed on the upper side of the circular limiting frame, an opening one penetrating from front to back is provided on the front side of the circular guide frame, symmetrical inclined surfaces are provided on the inner side of the circular guide frame and on the left and right sides of the opening one, a collecting box is installed together on the front side of the circular guide frame and the circular limiting frame, an opening two aligned with and connected to the opening one is provided on the rear side of the collecting box, and the lower surface inside the collecting box is an inclined surface extending to the lower left side.
5. The fully automatic tempered mirror production system according to claim 4, characterized in that: The supporting assembly includes a pneumatic cylinder 1 fixedly arranged on the vertical section of the U-shaped fixing plate away from the side of the return-shaped limit frame, the telescopic end of the pneumatic cylinder 1 is fixedly provided with a supporting platform that moves left and right and is located between the slag collecting box and the return-shaped limit frame, and a guide rod 2 that is slidably connected to the corresponding vertical section of the U-shaped fixing plate is symmetrically fixedly arranged on the supporting platform on the side close to the corresponding pneumatic cylinder 1, connecting plates are symmetrically fixedly arranged on the front and rear sides of the supporting platform, a sliding shaft is fixedly arranged on the upper side of the connecting plate, and a supporting plate that moves forward and backward and is located on the lower side of the return-shaped limit frame is slidably arranged on the left and right symmetrical connecting plates, and oblique straight grooves that are slidably connected to the corresponding sliding shaft are symmetrically opened on the supporting plate.
6. The fully automatic tempered mirror production system according to claim 1, characterized in that: The adjustment component includes a guide rail fixedly arranged on the front side of the vertical section of the L-shaped bracket, an electric slider that moves up and down is slidably arranged on the guide rail, and a U-shaped ball dropping platform with an opening facing backward is fixedly arranged on the front side of the left-right symmetrical electric slider, and a circular groove that runs through the upper and lower parts is opened on the U-shaped ball dropping platform.
7. The fully automatic tempered mirror production system according to claim 6, characterized in that: The opening and closing assembly includes a feeding pipe fixedly arranged on the upper side of the U-shaped ball dropping platform, a circular groove 2 is opened on the feeding pipe, which passes through the upper and lower parts and is aligned with the circular groove 1, and a plurality of steel balls are evenly placed in the circular groove 2. A through groove 1 which passes through the upper and lower parts is opened at the lower end of the feeding pipe, and a through groove 2 which passes through the upper and lower parts is opened on the left side of the feeding pipe and above the through groove 1. A pneumatic cylinder 2 is fixedly arranged on the upper side of the U-shaped ball dropping platform through a support 4 located on the right side of the feeding pipe, and an L-shaped support plate which moves left and right is fixedly arranged at the telescopic end of the pneumatic cylinder 2, and the horizontal section of the L-shaped support plate is slidably plugged into the through groove 1.
8. The fully automatic tempered mirror production system according to claim 7, characterized in that: The bottom support assembly includes a circular linkage frame fixedly arranged on the upper side of the vertical section of the L-shaped support plate and located outside the feeding pipe, a spring rod is symmetrically and elastically slidably arranged on the left side of the circular linkage frame, and a bottom support plate is fixedly arranged on the right end of the front-to-back symmetrical spring rod, which moves left and right and is slidably plugged into the second through groove.