Optical glass element compression molding device
By designing an optical glass element molding device that integrates transmission, cleaning, and conveying functions, the quality control problem in the optical glass element molding process was solved, and the production of optical glass elements with high efficiency and stable quality was achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-22
- Publication Date
- 2026-03-31
AI Technical Summary
In the existing technology, it is difficult to achieve real-time monitoring of the internal quality of optical glass during the molding process of optical glass components. There is a problem that debris inside the mold affects the quality, and there is a lack of effective real-time detection methods, resulting in production waste.
An optical glass element molding device was designed, which includes molding, cleaning and conveying components. The device uses a transmission mechanism to pressurize and clean the glass element, and a conveying mechanism to remove the molded element. It integrates transmission, cleaning and molding functions.
It achieves efficient molding and quality control of optical glass components, reduces production waste, improves molding effect and quality stability, and ensures complete collection and cleaning of molded components.
Smart Images

Figure CN121758052A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of optical glass element equipment technology, specifically to an optical glass element molding apparatus. Background Technology
[0002] Optical glass components have wide applications in many fields, including aerospace, automotive, and marine industries, using special tempered glass, laminated glass, microcrystalline glass, and foam glass. By using different types of optical glass components, the imaging, focusing, and beam splitting functions of optical systems can be achieved.
[0003] In the existing technology, it is difficult to monitor the quality of the optical glass inside the optical glass element in real time during the molding process of optical glass element. There may be debris in the mold, which will affect the quality of the optical glass. There is a lack of effective real-time detection means for the appearance, color difference and internal damage of the optical glass, and it is difficult to intervene in time, which can easily lead to production waste. Summary of the Invention
[0004] The purpose of this invention is to provide an optical glass element molding apparatus to solve the problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution: This invention relates to an optical glass element molding apparatus, comprising a base, a glass cover fixedly connected to the end face of the base, an inlet on the inner wall of the glass cover near the base, and an outlet on the inner wall of the glass cover away from the base, and further comprising: The molding component includes a connecting output rod, a top template is fixedly connected to the end face of the connecting output rod, and an external auxiliary lifting plate is fixedly connected to the surface of the top template near the connecting output rod. The cleaning component includes an output helical gear plate, a steering helical gear plate is meshed with the surface of the output helical gear plate, and an output rod is fixedly connected to the inner side of the steering helical gear plate away from the output helical gear plate. The conveying component includes a rotating vertical plate, a telescopic sleeve plate is slidably connected to the surface of the rotating vertical plate, and a receiving shell is fixedly connected to the end face of the telescopic sleeve plate away from the rotating vertical plate.
[0006] Furthermore, an inner shell is fixedly connected to the inner wall of the base, an engine is fixedly connected to the inner wall of the inner shell, a control lever is provided on the surface of the inner shell away from the engine, a control slider is slidably connected to the inner wall of the inner shell away from the control lever, a conveyor belt is fixedly connected to the surface of the inner shell near the feed port, and there are two feed ports, which are symmetrically distributed on the surface of the glass cover.
[0007] Furthermore, the molding component includes a pressure sensing plate, a lifting rod on the surface of the pressure sensing plate, an inner horizontal lifting plate fixedly connected to the surface of the lifting rod away from the pressure sensing plate, two top templates symmetrically distributed around the surface of the inner shell, two connecting output rods symmetrically distributed around the surface of the top template, a fixedly connected surface of the connecting output rod away from the top template to the surface of the control rotating rod, two inner horizontal lifting plates symmetrically distributed around the surface of the top template, a snap-fitted inner wall of the outer auxiliary lifting plate on the surface of the inner horizontal lifting plate, and a fixedly connected surface of the pressure sensing plate near the inner horizontal lifting plate to the surface of the outer auxiliary lifting plate.
[0008] Furthermore, an output shaft is provided on the end face of the engine near the connecting output rod. A threaded groove plate is fixedly connected to the surface of the output shaft. An internal threaded post is threadedly connected to the surface of the threaded groove plate away from the output shaft. A fixed column is rotatably connected to the inner wall of the threaded groove plate near the engine. An inner horizontal plate is fixedly connected to the surface of the internal threaded post away from the threaded groove plate. A bottom template is fixedly connected to the surface of the inner horizontal plate away from the fixed column. An inner sliding groove is provided on the inner wall of the inner shell near the bottom template. There are two internal threaded posts, which are symmetrically distributed on the surface of the inner horizontal plate. There are also two fixed columns, which are symmetrically distributed on the surface of the threaded groove plate. The end face of the fixed column away from the threaded groove plate is fixedly connected to the inner wall of the inner shell. The surface of the inner horizontal plate is slidably connected to the inner wall of the inner shell. There are also two bottom templates, which are symmetrically distributed on the surface of the inner horizontal plate. The surface of the inner horizontal plate is slidably connected to the inner wall of the inner sliding groove.
[0009] Furthermore, the cleaning component includes an inner slide, a sleeve is fixedly connected to the surface of the inner slide near the output rod, an output belt is drivenly connected to the surface of the output rod near the sleeve, two output helical gears are provided, the two output helical gears are symmetrically distributed with respect to the surface of the output shaft, the surface of the output rod away from the steering helical gear is rotatably connected to the inner wall of the sleeve, two sleeves are provided, the two sleeves are symmetrically distributed with respect to the surface of the inner slide, and the surface of the inner slide is slidably connected to the inner wall of the inner horizontal plate.
[0010] Furthermore, a guide rod is rotatably connected to the inner wall of the output belt on the side away from the output rod. An internally threaded toothed rod is meshed with the surface of the guide rod on the side away from the output belt. A threaded rotating rod is threadedly connected to the inner wall of the internally threaded toothed rod. A cleaning plate is fixedly connected to the end face of the threaded rotating rod near the end of the internally threaded toothed rod. A sliding rod is fixedly connected to the surface of the cleaning plate near the threaded rotating rod. The surface of the guide rod is rotatably connected to the inner wall of the inner shell. The surface of the internally threaded toothed rod on the side away from the guide rod is rotatably connected to the inner wall of the inner shell. The surface of the sliding rod penetrates the inner wall of the inner shell and is slidably connected to the inner wall of the inner shell.
[0011] Furthermore, a waste outlet is provided on the inner wall of the bottom template away from the slide bar. A waste collection box is fixedly connected to the inner wall of the inner shell near the waste outlet. A stand is fixedly connected to the surface of the waste collection box near the waste outlet. A guide fan is rotatably connected to the inner wall of the stand near the waste collection box. There are three waste outlets, which are equidistantly distributed on the surface of the bottom template. There are two waste collection boxes, which are symmetrically distributed on the inner wall of the inner shell.
[0012] Furthermore, the conveying component includes a receiving latch, an elastic plate fixedly connected to the inner wall of the receiving shell on the side away from the receiving latch, a picking latch provided on the inner wall of the receiving shell on the side near the receiving latch, two rotating vertical plates, the two rotating vertical plates controlling the symmetrical distribution of the slider surface, two telescopic sleeve plates, the two telescopic sleeve plates symmetrically distributed on the surface of the receiving shell, four receiving latches, the four receiving latches divided into two groups, with two in each group, the two groups of receiving latches symmetrically distributed on the surface of the receiving shell, and each group of receiving latches symmetrically distributed on the surface of the picking latch, and ten elastic plates, the ten elastic plates divided into two groups, with five in each group, the two groups of elastic plates symmetrically distributed on the surface of the receiving shell.
[0013] Furthermore, a positioning pin is provided on the inner wall of the receiving shell near the receiving pin. A locking post is fixedly connected to the surface of the bottom template near the positioning pin. A temperature control plate is slidably connected to the inner wall of the bottom template near the locking post. A telescopic push post is fixedly connected to the surface of the temperature control plate away from the bottom template. An auxiliary push post is fixedly connected to the inner wall of the inner horizontal plate near the telescopic push post. There are four positioning pins, which are divided into two groups, with two pins in each group. The two groups of positioning pins are symmetrically distributed on the surface of the receiving shell. There are two telescopic push posts, which are symmetrically distributed on the surface of the temperature control plate. The surface of the telescopic push post away from the temperature control plate is fixedly connected to the inner wall of the inner shell. The surface of the telescopic push post penetrates the inner wall of the inner horizontal plate and is slidably connected to the inner wall of the inner horizontal plate. The surface of the auxiliary push post away from the inner horizontal plate is fixedly connected to the inner wall of the inner shell.
[0014] The present invention has the following beneficial effects: When this invention is used, the material to be die-cast is placed on the conveyor belt inside the molding component and fed into the device. At this time, the control lever is activated, driving the connecting output rod to rotate. The connecting output rod then drives the top template to rotate, bringing it to a horizontal position. The top template then drives the outer auxiliary lifting plate and pressure sensing plate to move. Simultaneously, the engine starts, driving the output shaft to rotate. The output shaft drives the threaded groove plate to rotate along the surface of the fixed column. When the threaded groove plate rotates, through surface meshing, it drives the internal threaded column to move up and down. During operation, the inner horizontal plate slides up and down along the inner wall of the inner groove. The movement of the inner horizontal plate causes the bottom template to move up and down, eventually locking the bottom template and top template together. Then, the pressure sensing plate controls the lifting rod to apply pressure, allowing for better processing of the glass element between the top and bottom templates. At the same time, when the lifting rod is running, it drives the inner horizontal lifting plate and the outer auxiliary lifting plate to move up and down. The mutual locking of the outer auxiliary lifting plate and the inner horizontal lifting plate helps to stabilize the surface of the device, resulting in better forming effect when the glass element is pressed.
[0015] When this invention is used, before pressurizing the glass element, the internal components are cleaned. When the output shaft rotates, it drives the output helical gear plate to rotate. Through surface meshing, the output helical gear plate drives the steering helical gear plate to rotate. When the steering helical gear plate rotates, it drives the output rod to rotate along the inner wall of the sleeve. When the output rod rotates, it drives the output belt on the other side to drive. When the output belt drives, it drives the guide helical rod to rotate along the inner wall of the inner shell. When the guide helical rod rotates, through surface meshing, it drives the internal threaded rod to rotate along the inner wall of the inner shell. The inner wall of the shell rotates, and the internal threaded rod, connected by the thread on the inner wall, drives the threaded rotating rod to slide. As the threaded rotating rod slides, it drives the cleaning plate to slide. When the cleaning plate slides, it drives the sliding rod to slide along the inner wall of the inner shell. The cleaning plate cleans the inner walls of the top and bottom templates, pushing impurities in the device to the far end of the waste inlet of the bottom template. The impurities are then pushed out through the waste inlet into the waste collection box. At the same time, the guide fan is activated to guide the impurities in the waste collection box, making the impurities more completely collected.
[0016] When this invention is in use, after the glass element is completed, the control slider in the conveying component is activated, driving the rotating upright plate to rotate. The rotating upright plate then drives the telescopic sleeve plate to rotate, which in turn drives the receiving shell to rotate. When it rotates to the surface of the bottom template, the bottom template and the receiving shell are interlocked and fixed. Then, the telescopic push column operates, pushing the temperature control plate to slide along the inner wall of the bottom template. When the temperature control plate is running, it pushes the glass element formed in the bottom template upward, pushing the surface of the glass pressure element into the receiving pin and elastic plate, so that the surface of the glass element is engaged with the inner wall of the receiving shell, fixing the formed element in the receiving shell. Then, the control slider controls the rotating upright plate to rotate in the opposite direction, ultimately making the receiving shell longitudinal. Then, the control slider slides along the inner wall of the inner shell, eventually sliding it to the surface of the discharge port, and finally, the formed material is retrieved through the material retrieval pin in the receiving shell.
[0017] Of course, any product implementing this invention does not necessarily need to achieve all of the above advantages at the same time. Attached Figure Description
[0018] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0019] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a cross-sectional view of the overall structure of the present invention; Figure 3 This is a schematic diagram of the molded component structure of the present invention; Figure 4 For the present invention Figure 3 Enlarged view of part A in the image; Figure 5 This is a schematic diagram of the cleaning component structure of the present invention; Figure 6 This is a schematic diagram of the waste collection box structure of the present invention; Figure 7 This is a schematic diagram of the transmission component structure of the present invention; Figure 8 For the present invention Figure 7 Enlarged view of part B in the image.
[0020] The attached diagram lists the components represented by each number as follows: In the diagram: 1. Molding component; 2. Cleaning component; 3. Conveying component; 4. Engine; 5. Control lever; 6. Control slider; 7. Base; 8. Glass cover; 9. Feed inlet; 10. Discharge outlet; 11. Inner shell; 12. Conveyor belt; 21. Connecting output rod; 22. Top template; 23. External auxiliary lifting plate; 24. Pressure sensing plate; 25. Inner horizontal lifting plate; 26. Lifting pressure rod; 27. Output shaft; 28. Threaded groove plate; 29. Internal threaded column; 30. Fixed column; 31. Inner horizontal plate; 32. Inner slide; 33. Bottom template; 41. Conveyor... 42. Helical gear plate; 43. Steering helical gear plate; 44. Output rod; 45. Inner slide; 46. Sleeve column; 47. Output belt; 48. Guide helical rod; 49. Internal threaded gear rod; 50. Threaded rotating rod; 51. Cleaning plate; 52. Slide rod; 53. Waste outlet; 54. Waste collection box; 55. Stand; 66. Guide fan; 67. Rotating stand plate; 68. Telescopic sleeve plate; 69. Receiving shell; 60. Receiving pin; 61. Elastic plate; 62. Picking pin; 63. Positioning pin; 64. Locking column; 65. Temperature control plate; 76. Telescopic push column; 77. Auxiliary push column. Detailed Implementation
[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0022] Please see Figures 1-8 As shown, the present invention is an optical glass element molding apparatus, including a base 7, a glass cover 8 fixedly connected to the end face of the base 7, an inlet 9 on the inner wall of the glass cover 8 near the base 7, and an outlet 10 on the inner wall of the glass cover 8 away from the base 7, and further comprising: The molding component 1 includes a connecting output rod 21. When the control rotating rod 5 is started, it drives the connecting output rod 21 to rotate, which in turn drives the top template 22 to rotate to a horizontal position. The top template 22 is fixedly connected to the end face of the connecting output rod 21. The top template 22 drives the outer auxiliary lifting plate 23 and the pressure sensing plate 24 to run. The outer auxiliary lifting plate 23 is fixedly connected to the surface of the top template 22 near the connecting output rod 21. Cleaning component 2 includes an output helical gear plate 41. When the output shaft 27 rotates, it will drive the output helical gear plate 41 to rotate. The output helical gear plate 41 will drive the steering helical gear plate 42 to rotate through surface meshing. The surface of the output helical gear plate 41 is meshed with the steering helical gear plate 42. When the steering helical gear plate 42 rotates, it will drive the output rod 43 to rotate along the inner wall of the sleeve 45. The inner wall of the steering helical gear plate 42 away from the output helical gear plate 41 is fixedly connected to the output rod 43. When the output rod 43 rotates, it will drive the output belt 46 on the other side of the surface to perform transmission. The conveying component 3 includes a rotating upright plate 61. The control slider 6 is started, which drives the rotating upright plate 61 to rotate. The rotating upright plate 61 will drive the telescopic sleeve plate 62 to rotate. The telescopic sleeve plate 62 is slidably connected to the surface of the rotating upright plate 61. When the telescopic sleeve plate 62 rotates, it will drive the receiving shell 63 to rotate. The receiving shell 63 is fixedly connected to the end face of the telescopic sleeve plate 62 away from the rotating upright plate 61. When it rotates to the surface of the bottom template 33, the bottom template 33 and the receiving shell 63 are inserted and fixed to each other.
[0023] An inner shell 11 is fixedly connected to the inner wall of the base 7. An engine 4 is fixedly connected to the inner wall of the inner shell 11. A control lever 5 is provided on the surface of the inner shell 11 away from the engine 4. A control slider 6 is slidably connected to the inner wall of the inner shell 11 away from the control lever 5. A conveyor belt 12 is fixedly connected to the surface of the inner shell 11 near the feed port 9. There are two feed ports 9, which are symmetrically distributed on the surface of the glass cover 8.
[0024] The molding component 1 includes a pressure sensing plate 24, which controls the lifting rod 26 to apply pressure, thus better processing the glass element between the top template 22 and the bottom template 33. The lifting rod 26 is mounted on the surface of the pressure sensing plate 24. When the lifting rod 26 operates, it drives the inner horizontal lifting plate 25 and the outer auxiliary lifting plate 23 to move up and down. The interlocking of the outer auxiliary lifting plate 23 and the inner horizontal lifting plate 25 provides better stability to the surface of the device, resulting in better molding when pressurizing the glass element. The inner horizontal lifting plate 25 is fixedly connected to the surface of the lifting rod 26 away from the pressure sensing plate 24. There are two top templates 22, which are symmetrically distributed on the surface of the inner shell 11. There are two connecting output rods 21, which are symmetrically distributed on the surface of the top template 22. The surface of the connecting output rod 21 away from the top template 22 is fixedly connected to the surface of the control rod 5. There are two inner horizontal lifting plates 25, which are symmetrically distributed on the surface of the top template 22. The surface of the inner horizontal lifting plate 25 away from the pressure sensing plate 24 is engaged with the inner wall of the outer auxiliary lifting plate 23. The surface of the pressure sensing plate 24 near the inner horizontal lifting plate 25 is fixedly connected to the surface of the outer auxiliary lifting plate 23.
[0025] An output shaft 27 is provided on the end face of the engine 4 near the connecting output rod 21. When the engine 4 starts, it drives the output shaft 27 to rotate. The output shaft 27 then drives the threaded groove plate 28 to rotate along the surface of the fixed column 30. The threaded groove plate 28 is fixedly connected to the surface of the output shaft 27. When the threaded groove plate 28 rotates, it drives the internal threaded column 29 to move up and down through surface meshing. The internal threaded column 29 is threadedly connected to the surface of the threaded groove plate 28 away from the output shaft 27. When the internal threaded column 29 moves up and down, it drives the inner horizontal plate 31 to slide up and down along the inner wall of the inner slide groove 32. The fixed column 30 is rotatably connected to the inner wall of the threaded groove plate 28 near the engine 4. The inner horizontal plate 31 is fixedly connected to the surface of the internal threaded column 29 away from the threaded groove plate 28. When the inner horizontal plate 31 moves, it drives the internal threaded column 29 to move up and down. The bottom template 33 moves up and down, eventually engaging and fixing with the top template 22. The bottom template 33 is fixedly connected to the surface of the inner horizontal plate 31 away from the fixed column 30. An inner groove 32 is provided on the inner wall of the inner shell 11 near the bottom template 33. There are two internal threaded columns 29, which are symmetrically distributed on the surface of the inner horizontal plate 31. There are two fixed columns 30, which are symmetrically distributed on the surface of the threaded groove plate 28. The end face of the fixed column 30 away from the threaded groove plate 28 is fixedly connected to the inner wall of the inner shell 11. The surface of the inner horizontal plate 31 is slidably connected to the inner wall of the inner shell 11. There are two bottom templates 33, which are symmetrically distributed on the surface of the inner horizontal plate 31. The surface of the inner horizontal plate 31 is slidably connected to the inner wall of the inner groove 32.
[0026] The cleaning component 2 includes an inner slide 44. A sleeve 45 is fixedly connected to the surface of the inner slide 44 near the output rod 43. An output belt 46 is driven to the surface of the output rod 43 near the sleeve 45. When the output belt 46 is driven, it will drive the guide rod 47 to rotate along the inner wall of the inner shell 11. There are two output helical gear plates 41, which are symmetrically distributed with respect to the surface of the output shaft 27. The surface of the output rod 43 away from the steering helical gear plate 42 is rotatably connected to the inner wall of the sleeve 45. There are two sleeves 45, which are symmetrically distributed with respect to the surface of the inner slide 44. The surface of the inner slide 44 is slidably connected to the inner wall of the inner horizontal plate 31.
[0027] A guide rod 47 is rotatably connected to the inner wall of the output belt 46 on the side away from the output rod 43. When the guide rod 47 rotates, it will drive the internal threaded rack 48 to rotate along the inner wall of the inner shell 11 through surface meshing. The internal threaded rack 48 is meshed with the surface of the guide rod 47 on the side away from the output belt 46. The internal threaded rack 48 is connected to the threaded rod 49 through the threaded connection on the inner wall, which will drive the threaded rod 49 to slide. The threaded rod 49 is threadedly connected to the inner wall of the internal threaded rack 48. When the threaded rod 49 slides, it will drive the cleaning plate 50 to slide. The threaded rod 49 is close to the internal thread. A cleaning plate 50 is fixedly connected to one end face of the toothed rod 48. When the cleaning plate 50 slides, it will drive the slide rod 51 to slide along the inner wall of the inner shell 11. The cleaning plate 50 will clean the inner wall of the top template 22 and the inner wall of the bottom template 33. The slide rod 51 is fixedly connected to the surface of the cleaning plate 50 near the threaded rotating rod 49. The surface of the guide rod 47 is rotatably connected to the inner wall of the inner shell 11. The surface of the internal threaded rod 48 away from the guide rod 47 is rotatably connected to the inner wall of the inner shell 11. The surface of the slide rod 51 penetrates the inner wall of the inner shell 11 and is slidably connected to the inner wall of the inner shell 11.
[0028] Waste outlet 52 is provided on the inner wall of the bottom template 33 away from the slide bar 51. Impurities in the device are pushed into the waste outlet 52 at the far end of the bottom template 33, and then pushed out into the waste collection box 53 through the waste outlet 52. The waste collection box 53 is fixedly connected to the inner wall of the inner shell 11 near the waste outlet 52. The stand 54 is fixedly connected to the surface of the waste collection box 53 near the waste outlet 52. The guide fan 55 is rotatably connected to the inner wall of the stand 54 near the waste collection box 53. When the guide fan 55 is activated, it guides the impurities in the waste collection box 53 to make the impurities more completely collected. There are three waste outlets 52, which are equidistantly distributed on the surface of the bottom template 33. There are two waste collection boxes 53, which are symmetrically distributed on the inner wall of the inner shell 11.
[0029] The conveying component 3 includes a receiving pin 64. An elastic plate 65 is fixedly connected to the inner wall of the receiving shell 63 on the side away from the receiving pin 64. A picking pin 66 is provided on the inner wall of the receiving shell 63 on the side near the receiving pin 64. The control slider 6 controls the rotating vertical plate 61 to rotate in the opposite direction, ultimately making the receiving shell 63 longitudinal. Then, the control slider 6 slides along the inner wall of the inner shell 11, eventually sliding it to the surface of the discharge port 10. Finally, the picked-up material is retrieved through the picking pin 66 inside the receiving shell 63. Two rotating vertical plates 61 are provided, and the two rotating vertical plates 61 control... The surface of the slider 6 is symmetrically distributed. There are two telescopic sleeve plates 62, which are symmetrically distributed on the surface of the receiving shell 63. There are four receiving pins 64, which are divided into two groups of two. The two groups of receiving pins 64 are symmetrically distributed on the surface of the receiving shell 63. Each group of receiving pins 64 is symmetrically distributed on the surface of the picking pins 66. There are ten elastic plates 65, which are divided into two groups of five. The two groups of elastic plates 65 are symmetrically distributed on the surface of the receiving shell 63.
[0030] A positioning pin 67 is provided on the inner wall of the receiving shell 63 near the receiving pin 64. A locking post 68 is fixedly connected to the surface of the bottom template 33 near the positioning pin 67. A temperature control plate 69 is slidably connected to the inner wall of the bottom template 33 near the locking post 68. When the temperature control plate 69 is running, it pushes the glass element formed in the bottom template 33 upward, pushing the surface of the glass pressure element into the receiving pin 64 and the elastic plate 65, so that the surface of the glass element is engaged with the inner wall of the receiving shell 63, and the formed element is fixed in the receiving shell 63. A telescopic push post 70 is fixedly connected to the surface of the temperature control plate 69 away from the bottom template 33. When the telescopic push post 70 is running, it pushes the temperature control plate 69 along the bottom template. The inner wall of the receiving shell 63 slides. The inner wall of the inner horizontal plate 31 near the telescopic push column 70 is fixedly connected to the auxiliary push column 71. There are four positioning pins 67, which are divided into two groups, and each group has two. The two groups of positioning pins 67 are symmetrically distributed on the surface of the receiving shell 63. There are two telescopic push columns 70, which are symmetrically distributed on the surface of the temperature control plate 69. The surface of the telescopic push column 70 away from the temperature control plate 69 is fixedly connected to the inner wall of the inner shell 11. The surface of the telescopic push column 70 penetrates the inner wall of the inner horizontal plate 31 and slides with the inner wall of the inner horizontal plate 31. The surface of the auxiliary push column 71 away from the inner horizontal plate 31 is fixedly connected to the inner wall of the inner shell 11.
[0031] In use, the required die-casting material is placed on the conveyor belt 12 inside the forming component 1 and fed into the device via the conveyor belt 12. At this time, the control lever 5 is activated, driving the connecting output lever 21 to rotate. The connecting output lever 21 then drives the top template 22 to rotate, bringing the top template 22 to a horizontal position. Simultaneously, the engine 4 is activated, driving the output shaft 27 to rotate. The output shaft 27 then drives the threaded groove plate 28 to rotate along the surface of the fixed column 30. When the threaded groove plate 28 rotates, it drives the internal threaded column 29 to move up and down through surface meshing. When the internal threaded column 29 moves up and down, it drives the inner horizontal plate 31. The inner horizontal plate 31 slides up and down along the inner wall of the inner groove 32. When the inner horizontal plate 31 moves, it drives the bottom template 33 to move up and down, eventually locking the bottom template 33 and the top template 22 together. Then, the pressure sensing plate 24 controls the lifting rod 26 to apply pressure, so that the glass element between the top template 22 and the bottom template 33 can be better processed. At the same time, when the lifting rod 26 moves, it drives the inner horizontal lifting plate 25 and the outer auxiliary lifting plate 23 to move up and down. The mutual locking of the outer auxiliary lifting plate 23 and the inner horizontal lifting plate 25 helps to stabilize the surface of the device, resulting in better forming effect when the glass element is pressed. Before pressurizing the glass element, the interior of component 2 is cleaned. When the output shaft 27 rotates, it drives the output helical gear plate 41 to rotate. Through surface meshing, the output helical gear plate 41 drives the steering helical gear plate 42 to rotate. When the steering helical gear plate 42 rotates, it drives the output rod 43 to rotate along the inner wall of the sleeve 45. When the output rod 43 rotates, it drives the output belt 46 on the other side to drive. When the output belt 46 drives, it drives the guide helical rod 47 to rotate along the inner wall of the inner shell 11. When the guide helical rod 47 rotates, through surface meshing, it drives the internal threaded rod 48 to rotate along the inner wall of the inner shell 11. When the internal threaded toothed rod 48 rotates, it drives the threaded rotating rod 49 to slide through the threaded connection on the inner wall. When the threaded rotating rod 49 slides, it drives the cleaning plate 50 to slide. When the cleaning plate 50 slides, it drives the sliding rod 51 to slide along the inner wall of the inner shell 11. The cleaning plate 50 cleans the inner wall of the top template 22 and the inner wall of the bottom template 33, pushing the impurities in the device to the waste port 52 at the far end of the bottom template 33. The impurities are then pushed out through the waste port 52 into the waste collection box 53. At the same time, the guide fan 55 is activated to guide the impurities in the waste collection box 53, making the impurities more completely collected.Once the glass components are completed, the control slider 6 inside the conveying component 3 is activated, causing the rotating upright plate 61 to rotate. The rotating upright plate 61 then rotates the telescopic sleeve plate 62, which in turn rotates the receiving shell 63. When the sleeve rotates to the surface of the bottom template 33, the bottom template 33 and the receiving shell 63 are interlocked and fixed. Afterwards, the telescopic push column 70 operates, pushing the temperature control plate 69 to slide along the inner wall of the bottom template 33. As the temperature control plate 69 operates, it regulates the movement of the bottom template 33. The internally formed glass element is pushed upward, causing the surface of the glass pressure element to be pushed into the receiving pin 64 and the elastic plate 65, so that the surface of the glass element is engaged with the inner wall of the receiving shell 63, and the formed element is fixed in the receiving shell 63. Then, the control slider 6 controls the rotating plate 61 to rotate in the opposite direction, so that the receiving shell 63 is longitudinal. Then, the control slider 6 slides along the inner wall of the inner shell 11, and finally slides it to the surface of the discharge port 10. Finally, the formed material is picked up by the picking pin 66 in the receiving shell 63.
[0032] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to any specific implementation. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.
Claims
1. An optical glass element molding apparatus, comprising a base (7), wherein a glass cover (8) is fixedly connected to the end face of the base (7), an inlet (9) is provided on the inner wall of the glass cover (8) near the base (7), and an outlet (10) is provided on the inner wall of the glass cover (8) away from the base (7), characterized in that, Also includes: The molding component (1) includes a connecting output rod (21), a top template (22) is fixedly connected to the end face of the connecting output rod (21), and an external auxiliary lifting plate (23) is fixedly connected to the surface of the top template (22) near the connecting output rod (21). Cleaning component (2), the cleaning component (2) includes an output helical tooth plate (41), the surface of the output helical tooth plate (41) is meshed with a steering helical tooth plate (42), and an output rod (43) is fixedly connected to the inner side of the steering helical tooth plate (42) away from the output helical tooth plate (41). The conveying component (3) includes a rotating vertical plate (61), a telescopic sleeve plate (62) is slidably connected to the surface of the rotating vertical plate (61), and a receiving shell (63) is fixedly connected to the end face of the telescopic sleeve plate (62) away from the rotating vertical plate (61).
2. The optical glass element molding apparatus according to claim 1, characterized in that: The inner wall of the base (7) is fixedly connected to the inner shell (11), the inner wall of the inner shell (11) is fixedly connected to the engine (4), the surface of the inner shell (11) away from the engine (4) is provided with a control lever (5), the inner wall of the inner shell (11) away from the control lever (5) is slidably connected to a control slider (6), the surface of the inner shell (11) near the feed port (9) is fixedly connected to a conveyor belt (12), the number of feed ports (9) is set to two, and the two feed ports (9) are symmetrically distributed on the surface of the glass cover (8).
3. The optical glass element molding apparatus according to claim 2, characterized in that: The molding component (1) includes a pressure sensing plate (24), on the surface of the pressure sensing plate (24) are provided a lifting pressure rod (26), and an inner horizontal lifting plate (25) is fixedly connected to the surface of the lifting pressure rod (26) away from the pressure sensing plate (24). There are two top templates (22), symmetrically distributed around the surface of the inner shell (11). There are also two connecting output rods (21), symmetrically distributed around the surface of the top templates (22). The surface of the connecting output rod (21) away from the top template (22) is fixedly connected to the surface of the control rotating rod (5). There are two inner horizontal lifting plates (25), which are symmetrically distributed on the surface of the top template (22). The surface of the inner horizontal lifting plate (25) away from the pressure sensing plate (24) is engaged with the inner wall of the outer auxiliary lifting plate (23). The surface of the pressure sensing plate (24) near the inner horizontal lifting plate (25) is fixedly connected to the surface of the outer auxiliary lifting plate (23).
4. The optical glass element molding apparatus according to claim 3, characterized in that: An output shaft (27) is provided on the end face of the engine (4) near the connecting output rod (21). A threaded groove plate (28) is fixedly connected to the surface of the output shaft (27). An internal threaded column (29) is threadedly connected to the surface of the threaded groove plate (28) away from the output shaft (27). A fixed column (30) is rotatably connected to the inner wall of the threaded groove plate (28) near the engine (4). An inner horizontal plate (31) is fixedly connected to the surface of the internal threaded column (29) away from the threaded groove plate (28). A bottom template (33) is fixedly connected to the surface of the inner horizontal plate (31) away from the fixed column (30). An inner groove is provided on the inner wall of the inner shell (11) near the bottom template (33). 32), the number of internal threaded columns (29) is set to two, and the two internal threaded columns (29) are symmetrically distributed on the surface of the inner horizontal plate (31). The number of fixed columns (30) is set to two, and the two fixed columns (30) are symmetrically distributed on the surface of the threaded groove plate (28). The end face of the fixed column (30) away from the threaded groove plate (28) is fixedly connected to the inner wall of the inner shell (11). The surface of the inner horizontal plate (31) is slidably connected to the inner wall of the inner shell (11). The number of bottom templates (33) is set to two, and the two bottom templates (33) are symmetrically distributed on the surface of the inner horizontal plate (31). The surface of the inner horizontal plate (31) is slidably connected to the inner wall of the inner sliding groove (32).
5. The optical glass element molding apparatus according to claim 4, characterized in that: The cleaning component (2) includes an inner slide (44), on the surface of the inner slide (44) near the output rod (43) a sleeve (45) is fixedly connected, and on the surface of the output rod (43) near the sleeve (45) an output belt (46) is drivenly connected. There are two output helical gear plates (41), which are symmetrically distributed on the surface of the output shaft (27). The surface of the output rod (43) away from the steering helical gear plate (42) is rotatably connected to the inner wall of the sleeve (45). There are two sleeves (45), which are symmetrically distributed on the surface of the inner slide (44). The surface of the inner slide (44) is slidably connected to the inner wall of the inner horizontal plate (31).
6. The optical glass element molding apparatus according to claim 5, characterized in that: The inner wall of the output belt (46) away from the output rod (43) is rotatably connected to a guide rod (47). The surface of the guide rod (47) away from the output belt (46) is meshed with an internal threaded toothed rod (48). The inner wall of the internal threaded toothed rod (48) is threadedly connected to a threaded rotating rod (49). The end face of the threaded rotating rod (49) near the end of the internal threaded toothed rod (48) is fixedly connected to a cleaning plate (50). The surface of the cleaning plate (50) near the threaded rotating rod (49) is fixedly connected to a sliding rod (51). The surface of the guide rod (47) is rotatably connected to the inner wall of the inner shell (11). The surface of the internal threaded toothed rod (48) away from the guide rod (47) is rotatably connected to the inner wall of the inner shell (11). The surface of the sliding rod (51) penetrates the inner wall of the inner shell (11) and is slidably connected to the inner wall of the inner shell (11).
7. The optical glass element molding apparatus according to claim 6, characterized in that: The bottom template (33) has a waste inlet (52) on the inner wall away from the slide bar (51). The inner shell (11) is fixedly connected to a waste collection box (53) on the inner wall near the waste inlet (52). The waste collection box (53) is fixedly connected to a stand (54) on the surface near the waste inlet (52). The stand (54) is rotatably connected to a guide fan (55) on the inner wall near the waste collection box (53). There are three waste inlets (52), which are equidistantly distributed on the surface of the bottom template (33). There are two waste collection boxes (53), which are symmetrically distributed on the inner wall of the inner shell (11).
8. The optical glass element molding apparatus according to claim 7, characterized in that: The conveying component (3) includes a receiving pin (64). An elastic plate (65) is fixedly connected to the inner wall of the receiving shell (63) on the side away from the receiving pin (64). A picking pin (66) is provided on the inner wall of the receiving shell (63) on the side near the receiving pin (64). There are two rotating upright plates (61), which are symmetrically distributed on the surface of the slider (6). There are two telescopic sleeve plates (62), which are symmetrically distributed on the surface of the receiving shell (63). The receiving pins (64) are symmetrically distributed. There are four receiving pins (64), which are divided into two groups, and each group has two receiving pins (64). The two groups of receiving pins (64) are symmetrically distributed on the surface of the receiving shell (63). Each group of receiving pins (64) is symmetrically distributed on the surface of the taking pins (66). There are ten elastic plates (65), which are divided into two groups, and each group has five elastic plates (65). The two groups of elastic plates (65) are symmetrically distributed on the surface of the receiving shell (63).
9. The optical glass element molding apparatus according to claim 8, characterized in that: The receiving shell (63) has a positioning pin (67) on its inner wall near the receiving pin (64). A locking post (68) is fixedly connected to the surface of the bottom template (33) near the positioning pin (67). A temperature control plate (69) is slidably connected to the inner wall of the bottom template (33) near the locking post (68). A telescopic push post (70) is fixedly connected to the surface of the temperature control plate (69) away from the bottom template (33). An auxiliary push post (71) is fixedly connected to the inner wall of the inner horizontal plate (31) near the telescopic push post (70). There are four positioning pins (67). Divided into two groups, with two in each group, the positioning pins (67) of the two groups are symmetrically distributed on the surface of the receiving shell (63), and the telescopic push column (70) is set to two, with the two telescopic push columns (70) symmetrically distributed on the surface of the temperature control plate (69). The surface of the telescopic push column (70) away from the temperature control plate (69) is fixedly connected to the inner wall of the inner shell (11). The surface of the telescopic push column (70) penetrates the inner wall of the inner horizontal plate (31) and is slidably connected to the inner wall of the inner horizontal plate (31). The surface of the auxiliary push column (71) away from the inner horizontal plate (31) is fixedly connected to the inner wall of the inner shell (11).