Glass softening device for convex lens processing
By designing a glass softening device for convex lens processing and using an automatic material inlet and discharge mechanism, the problems of inefficiency and scalding risks in the prior art are solved, and efficient automatic material inlet and discharge of glass storage seats are realized, improving processing efficiency and safety.
Patent Information
- Application Number
- CN202421444524.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-24
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2034-06-24
AI Technical Summary
Existing glass softening devices require manual loading and unloading and handling, which is inefficient and has a risk of scalding.
A glass softening device for convex lens processing is designed, using an automatic feeding and discharge mechanism, and the transfer seat is driven by a servo motor, combined with electric cylinders and slide rails to realize the automatic feeding and discharge of the glass storage seat.
The automatic material inlet and discharge of glass storage seats is realized, processing efficiency is improved, the risk of manual handling is reduced, and practical performance is increased.
Smart Images

Figure CN222846619U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of convex lens processing, in particular to a glass softening device used for convex lens processing. Background Art
[0002] At the beginning of the processing of the convex lens, the columnar glass body needs to be heated and softened, and then the softened columnar glass body is extruded into shape. However, the existing glass softening devices are often loaded and unloaded manually, and workers need to manually carry the columnar glass body. This method is very troublesome and inefficient. Moreover, if the softened columnar glass body is lost during the handling process, it is easy to cause burns. Therefore, in order to solve the above problems, it is particularly important to design a glass softening device for convex lens processing. Summary of the invention
[0003] In order to solve the above problems, the utility model designs a glass softening device for convex lens processing. The glass storage seat can be sent to the feeding station and the discharging station in turn through the automatic feeding and discharging mechanism, so as to achieve automatic feeding and discharging, play a role in improving processing efficiency and increasing practical performance.
[0004] In order to solve the above technical problems, the utility model provides a glass softening device for convex lens processing, comprising a workbench, a machine base and an outer shell, wherein the workbench is horizontally arranged on the top of the machine base, the workbench is circular and its top is rotatably connected to a rotating seat, the outer shell is fixed on the workbench around the rotating seat, the outer shell is cylindrical, and electric heating tubes are evenly and detachably installed on the inner wall of the outer shell, the upper end of the outer shell is rotatably connected to an upper support plate, the upper support plate is also circular, the upper support plate is connected to the rotating seat through a vertically arranged connecting rod and rotates together, and a servo motor is installed in the workbench. The motor and the swivel are connected to the output shaft of the servo motor and rotate under the drive of the servo motor. A feed port is provided at the right end of the outer shell, and a feed station is arranged on the workbench outside the feed port. A discharge port is provided on the front end face of the outer shell, and a discharge station is arranged on the workbench outside the discharge port. Eight heating stations are evenly arranged on the swivel, and the eight heating stations are arranged in a circle. A glass storage seat is provided in each heating station, and a storage groove is provided on the top of the glass storage seat. The glass storage seat in each heating station enters and exits the feed station from the feed port or enters and exits the discharge station from the discharge port under the action of the automatic feeding and discharging mechanism.
[0005] Further: the automatic feeding and unloading mechanism includes eight electric cylinders, slide rails and sliders arranged in the heating stations, each of the eight heating stations is provided with two slide rails, and the two slide rails in the same heating station are arranged parallel to each other, and the glass storage seat is slidably connected to the two slide rails in the same heating station through a slider arranged at the bottom, and the eight electric cylinders are respectively installed on the upper support plates directly above the eight heating stations, and the output shaft directions of the eight electric cylinders are respectively parallel to the slide rails in the eight heating stations, and the output shaft ends of the eight electric cylinders are respectively connected to the glass storage seats in the eight heating stations through a connecting piece, and the glass storage seat is provided with a connecting seat connected to the connecting piece, and eight through grooves for the connecting piece to extend into are provided on the upper support plate, and the connecting piece passes through the through groove and is detachably connected to the connecting seat, and the connecting piece can slide along the through groove under the drive of the electric cylinder, and the glass storage seat slides along the slide rail under the drive of the connecting piece, and one end of the slide rail in the eight heating stations extends to the edge of the rotating seat.
[0006] Furthermore: the feeding station is provided with two first guide rails matching the slide rails, and the discharging station is provided with two second guide rails matching the slide rails. The upper ends of the first guide rails and the second guide rails are parallel to the upper ends of the slide rails. The glass storage seat moves from the slide rail to the first guide rail or the second guide rail under the action of the electric cylinder.
[0007] Furthermore: eight support blocks are provided on the rotating seat relative to the positions of the glass storage seats in the eight heating stations. The eight support blocks are arranged in a circle and evenly arranged on the rotating seat. Each of the eight support blocks is connected to the eight glass storage seats through a spring.
[0008] After adopting the above structure, the beneficial effects of the utility model are as follows:
[0009] 1. The utility model can sequentially deliver the glass storage seat into the feeding station and the discharging station through the automatic feeding and discharging mechanism, thereby achieving automatic feeding and discharging, which plays a role in improving processing efficiency.
[0010] 2. The utility model adopts the above structure, which eliminates the need for manual handling, reduces the risk of scalding and increases practical performance.
[0011] 3. This design has the advantages of simple structure, easy use, practicality and high efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The utility model is further described in detail below in conjunction with the accompanying drawings and specific implementation methods.
[0013] Figure 1 It is a schematic diagram of the main structure of the utility model.
[0014] Figure 2It is a structural diagram of the utility model after the upper support plate is removed.
[0015] Figure 3 for Figure 2 A is an enlarged view of the middle image.
[0016] Figure 4 It is a schematic diagram of the top structure of the utility model. DETAILED DESCRIPTION
[0017] like Figure 1 and Figure 2 The glass softening device for convex lens processing shown in the figure comprises a workbench 1, a machine base 2 and an outer shell 3, wherein the workbench is horizontally arranged on the top of the machine base, the workbench is circular and the top thereof is rotatably connected to a swivel seat 4, the outer shell 3 is fixed to the workbench around the swivel seat, the outer shell is cylindrical, and electric heating tubes 14 are evenly and detachably installed on the inner wall of the outer shell, the upper end of the outer shell is rotatably connected to an upper support plate 12, the upper support plate is also circular, and the upper support plate is connected to the swivel seat through a vertically arranged connecting rod and rotates together, a servo motor is installed in the workbench, and the swivel seat and the servo motor are connected. The output shaft of the machine is connected and rotates under the drive thereof, a feed port 3-1 is provided at the right end of the outer shell, a feed station is provided on the workbench outside the feed port, a discharge port 3-2 is provided on the front face of the outer shell, a discharge station is provided on the workbench outside the discharge port, eight heating stations are evenly arranged on the rotating seat, and the eight heating stations are arranged in a circular shape, a glass storage seat 8 is provided in each heating station, a storage slot 8-1 is provided on the top of the glass storage seat, and the glass storage seat in each heating station enters and exits the feed station from the feed port or enters and exits the discharge station from the discharge port under the action of the automatic feed and discharge mechanism. The utility model can send the glass storage seat into the feed station and the discharge station in turn through the automatic feed and discharge mechanism, thereby achieving automatic feed and discharge, which plays a role in improving processing efficiency; and the utility model does not need manual handling after adopting the above structure, which reduces the risk of scalding and increases practical performance.
[0018] like Figure 2 , Figure 3 and Figure 4The automatic feeding and unloading mechanism shown includes eight electric cylinders 13, slide rails 7 and sliders arranged in the heating stations, each of the eight heating stations is provided with two slide rails, and the two slide rails in the same heating station are arranged parallel to each other, and the glass storage seat is slidably connected to the two slide rails in the same heating station through a slider arranged at the bottom, and the eight electric cylinders are respectively installed on the upper support plate directly above the eight heating stations, and the output shaft directions of the eight electric cylinders are respectively parallel to the slide rails in the eight heating stations, and the output shaft ends of the eight electric cylinders are respectively connected to the glass storage seats in the eight heating stations through a connecting piece, and the glass storage seat is provided with a connecting seat 11 connected to the connecting piece, and eight through grooves 12-1 for the connecting piece to extend into are opened on the upper support plate, and the connecting piece passes through the through groove and is detachably connected to the connecting seat, and the connecting piece can slide along the through groove under the drive of the electric cylinder, and the glass storage seat slides along the slide rail under the drive of the connecting piece, and one end of the slide rail in the eight heating stations extends to the edge of the rotating seat.
[0019] like Figure 2 The feeding station shown is provided with two first guide rails 5 matching the slide rails, and the discharging station is provided with two second guide rails 6 matching the slide rails. The upper ends of the first guide rails and the second guide rails are parallel to the upper ends of the slide rails. The glass storage seat moves from the slide rail to the first guide rail or the second guide rail under the action of the electric cylinder.
[0020] like Figure 4 The rotating seat shown is provided with eight support blocks 9 at positions corresponding to the glass storage seats in the eight heating stations. The eight support blocks are arranged in a circular shape and are evenly arranged on the rotating seat. Each of the eight support blocks is connected to the eight glass storage seats through a spring 10. This design has the advantages of simple structure, easy manufacture, practicality and high efficiency.
[0021] The above are only preferred implementations of the utility model. The protection scope of the utility model is not limited to the above embodiments. All technical solutions under the idea of the utility model belong to the protection scope of the utility model. It should be pointed out that for ordinary technicians in this technical field, some improvements and modifications without departing from the principle of the utility model should be regarded as the protection scope of the utility model.
Claims
1. A glass softening device for convex lens processing, characterized in that: The invention comprises a workbench (1), a machine base (2) and an outer shell (3), wherein the workbench is horizontally arranged on the top of the machine base, the workbench is circular and the top thereof is rotatably connected to a swivel seat (4), the outer shell (3) is fixed on the workbench around the swivel seat, the outer shell is cylindrical, an electric heating tube (14) is evenly and detachably installed on the inner wall of the outer shell, the upper end of the outer shell is rotatably connected to an upper support plate (12), the upper support plate is also circular, the upper support plate is connected to the swivel seat through a vertically arranged connecting rod and rotates together, a servo motor is installed in the workbench, and the swivel seat is connected to the output shaft of the servo motor The outer shell is driven to rotate, a feed port (3-1) is provided at the right end, a feed station is arranged on the workbench outside the feed port, a discharge port (3-2) is provided on the front end face of the outer shell, a discharge station is arranged on the workbench outside the discharge port, eight heating stations are evenly arranged on the rotating seat, the eight heating stations are arranged in a circular shape, a glass storage seat (8) is provided in each heating station, a storage slot (8-1) is provided on the top of the glass storage seat, and the glass storage seat in each heating station enters and exits the feed station from the feed port or enters and exits the discharge station from the discharge port under the action of the automatic feed and discharge mechanism.
2. A glass softening device for convex lens processing according to claim 1, characterized in that: The automatic feeding and unloading mechanism comprises eight electric cylinders (13), slide rails (7) and sliders arranged in the heating stations. Two slide rails are arranged in each of the eight heating stations. The two slide rails in the same heating station are arranged parallel to each other. The glass storage seat is slidably connected to the two slide rails in the same heating station through a slider arranged at the bottom. The eight electric cylinders are respectively installed on the upper support plate directly above the eight heating stations. The output shaft directions of the eight electric cylinders are respectively parallel to the slide rails in the eight heating stations. The output shaft ends of the eight electric cylinders are respectively connected to the glass storage seats in the eight heating stations through a connecting piece. The glass storage seat is provided with a connecting seat (11) connected to the connecting piece. The upper support plate is provided with eight through grooves (12-1) for the connecting piece to extend into. The connecting piece passes through the through groove and is detachably connected to the connecting seat. The connecting piece can slide along the through groove under the drive of the electric cylinder. The glass storage seat slides along the slide rail under the drive of the connecting piece. One end of the slide rail in the eight heating stations extends to the edge of the rotating seat.
3. A glass softening device for convex lens processing according to claim 2, characterized in that: The feeding station is provided with two first guide rails (5) matching the slide rails, and the discharging station is provided with two second guide rails (6) matching the slide rails. The upper ends of the first guide rails and the second guide rails are parallel to the upper ends of the slide rails. The glass storage seat moves from the slide rail to the first guide rail or the second guide rail under the action of the electric cylinder.
4. A glass softening device for convex lens processing according to claim 2, characterized in that: Eight support blocks (9) are arranged on the rotating seat relative to the glass storage seats in the eight heating stations. The eight support blocks are arranged in a circular shape and are evenly arranged on the rotating seat. Each of the eight support blocks is connected to the eight glass storage seats via a spring (10).