Automatic glass forming device
By adding a cooling housing body to the glass forming device, the problem of cumbersome adsorption and material collection process of convex lenses in the mold is solved, and the automatic mold release of convex lenses and the improvement of production efficiency is achieved.
Patent Information
- Application Number
- CN202421418455.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-20
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2034-06-20
AI Technical Summary
During the production process of existing convex lenses, the formed convex lens is easily adsorbed into the mold, and the material collection process is cumbersome and can easily cause the convex lens to fall and cause losses.
An automated glass forming device is designed to accelerate the cooling of the convex lens through the added cooling housing body, so that it will automatically fall off after being cold and shrink, simplifying the mold release process.
Automatic mold release of convex lenses is achieved, production efficiency is improved, and risks and losses of workers are reduced.
Smart Images

Figure CN222846616U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of convex lens processing, in particular to an automatic glass forming device. Background Art
[0002] The existing convex lens is often formed by pressing during the production process. The softened glass body is sent into the upper and lower molding molds for pressing. However, after each pressing is completed and the molds are separated, the convex lens will be adsorbed in the upper molding mold. At this time, the worker needs to hold the air gun in one hand and the tray in the other hand to take the material, which is very troublesome. In addition, since the worker holds the tray with one hand during the material taking process, if someone collides or other emergencies occur, the convex lens is easy to fall from the tray, thereby causing unnecessary losses. Therefore, in order to solve the above problems, it is particularly important to design an automatic glass forming device. Summary of the invention
[0003] In order to solve the above problems, the utility model designs an automatic glass forming device, which can accelerate the cooling of the convex lens after forming through the added cooling outer cover body, so that the convex lens automatically falls off after being cooled and contracted, which plays a role in facilitating demoulding.
[0004] In order to solve the above technical problems, the utility model provides an automatic glass forming device, characterized in that it includes a workbench, an upper support plate, a column, an upper forming mold, a lower forming mold, a storage seat and a cooling outer cover, the upper support plate is horizontally arranged and fixed to the top of the workbench by the column, the workbench is provided with a forming station and a feeding station, the storage seat is connected to the workbench by a translation mechanism, the storage seat is sequentially transported into the feeding station and the forming station by the action of the translation mechanism, a placement groove matching the lower forming mold is opened on the top of the storage seat, the lower forming mold is placed in the placement groove and connected to the storage seat through an elastic clamping mechanism, and the molding station is provided with a storage groove. A lifting hydraulic cylinder is installed on the workbench, and the output shaft end of the lifting hydraulic cylinder is connected to the lifting plate, and a through groove is opened at the bottom of the storage seat relative to the position of the lifting plate. Under the action of the lifting hydraulic cylinder, the lifting plate extends into the storage seat and contacts the bottom of the lower forming mold and pushes the lower forming mold out of the storage seat, and the upper end of the lower forming mold extends into the cooling outer cover body under the action of the lifting plate, and the cooling outer cover body is fixed to the column through a connecting plate mounted on its outer wall. The upper forming mold is located directly above the cooling outer cover body and is connected to the downward pressing hydraulic cylinder, and the downward pressing hydraulic cylinder is fixed on the upper supporting plate, and the lower end of the upper forming mold extends into the cooling outer cover body under the action of the downward pressing hydraulic cylinder and is connected to the lower forming mold.
[0005] Further, a plurality of lifting protrusions are arranged on the top of the lifting plate, and a positioning hole is opened at the bottom of the lower forming mold relative to the position of the lifting protrusions, and the lifting protrusions extend into the positioning holes driven by the lifting plate.
[0006] Furthermore: an infrared receiving sensor is installed at the bottom of the storage seat, and an infrared transmitting sensor is arranged in the molding station at a position relative to the infrared receiving sensor.
[0007] Furthermore: the elastic clamping mechanism includes a groove opened on the inner wall of the placement groove, a hemispherical clamping groove opened on the outer wall of the lower end of the lower molding mold, a spherical clamping head and a spring. The spherical clamping head is connected to the groove through the spring, and the spherical clamping head is clamped into the hemispherical clamping groove under the action of the spring.
[0008] Furthermore: the translation mechanism includes two slide rails, a slider and a translation drive electric cylinder fixed on the top of the workbench. The two slide rails are arranged parallel to each other and pass through the forming station and the feeding station in sequence. The storage seat is slidably connected to the two slide rails through a slider arranged at the bottom. The translation drive electric cylinder is installed on the workbench, and the output shaft end of the translation drive electric cylinder is connected to the storage seat. The storage seat slides along the slide rails under the action of the translation drive electric cylinder.
[0009] Furthermore: two rows of spray holes are provided on the inner wall of the cooling outer cover body, and both rows of spray holes are connected to the air guide channel provided in the side wall of the cooling outer cover body. The air guide channel is connected to the gas condenser fixed on the upper support plate through the air guide duct assembly, and an air intake pump is installed on the gas condenser.
[0010] After adopting the above structure, the beneficial effects of the utility model are as follows:
[0011] 1. The utility model can accelerate the cooling of the convex lens after molding by adding a cooling outer cover body, so that the convex lens automatically falls off after being cooled and contracted, which plays a role in facilitating demoulding.
[0012] 2. The utility model can automatically load materials by adopting the above structure, which greatly improves the processing efficiency.
[0013] 3. This design has the advantages of simple structure, easy manufacturing, practicality and high efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] The utility model is further described in detail below in conjunction with the accompanying drawings and specific implementation methods.
[0015] Figure 1 It is a structural schematic diagram of the utility model.
[0016] Figure 2This is a structural diagram of the connection between the lower molding die and the storage seat.
[0017] Figure 3 for Figure 2 A is an enlarged view of the middle image. DETAILED DESCRIPTION
[0018] like Figure 1 An automated glass forming device is shown, comprising a workbench 1, an upper support plate 3, a column 2, an upper forming mold 6, a lower forming mold 7, a storage seat 9 and a cooling outer cover 8, wherein the upper support plate is horizontally arranged and fixed to the top of the workbench by the column, a forming station and a feeding station are arranged on the workbench, the storage seat is connected to the workbench by a translation mechanism, the storage seat is sequentially transported to the feeding station and the forming station by the translation mechanism, a placement groove matching the lower forming mold is provided on the top of the storage seat, the lower forming mold is placed in the placement groove and connected to the storage seat by an elastic clamping mechanism, and a lifting mechanism is installed on the workbench in the forming station. Hydraulic cylinder, the output shaft end of the lifting hydraulic cylinder is connected to the lifting plate 13, and a through groove is provided at the bottom of the storage seat relative to the position of the lifting plate. Under the action of the lifting hydraulic cylinder, the lifting plate extends into the storage seat and contacts the bottom of the lower forming mold and pushes the lower forming mold out of the storage seat. The upper end of the lower forming mold extends into the cooling outer cover under the action of the lifting plate. The cooling outer cover is fixed to the column through a connecting plate 10 mounted on its outer wall. The upper forming mold is located directly above the cooling outer cover and is connected to the downward hydraulic cylinder 5. The downward hydraulic cylinder is fixed on the upper support plate. The lower end of the upper forming mold extends into the cooling outer cover under the action of the downward hydraulic cylinder and is connected to the lower forming mold. During operation, the softened glass body is placed in the lower molding die in the feeding station, the translation mechanism is started to transport the lower molding die and the glass body therein to the bottom of the upper molding die, the lifting hydraulic cylinder is started to extend the upper end of the lower molding die and the glass body into the cooling outer cover body by using the lifting plate, the lower pressing hydraulic cylinder is started to extend the lower end of the upper molding die into the cooling outer cover body and connected to the lower molding die, the glass body is pressed and molded by the cooperation of the upper molding die and the lower molding die, and the lifting hydraulic cylinder is reversely started to separate the mold after the convex lens is formed. At this time, the convex lens is adsorbed in the upper molding die, and cold air is blown to the convex lens and the upper molding die through the cooling outer cover body, and the convex lens will automatically fall off and demold after being cooled and shrunk. The utility model can accelerate the cooling of the convex lens after molding through the additional cooling outer cover body, so that the convex lens will automatically fall off after being cooled and shrunk, which plays a role in facilitating demolding. Moreover, when demolding, the worker can hold the tray with both hands, place the tray just below the cooling outer cover body and wait for demolding, so as to prevent the convex lens from falling due to accidents, thereby increasing practical performance.
[0019] like Figure 1The top of the lifting plate is provided with a plurality of lifting protrusions, and the bottom of the lower molding die is provided with positioning holes relative to the positions of the lifting protrusions. The lifting protrusions extend into the positioning holes driven by the lifting plate.
[0020] like Figure 1 and Figure 2 The bottom of the storage seat is equipped with an infrared receiving sensor 17, and an infrared transmitting sensor is arranged in the molding station at a position relative to the infrared receiving sensor. When the storage seat is transported to the molding station, the infrared receiving sensor receives the signal of the infrared transmitting sensor, and the lifting hydraulic cylinder can be started only after receiving the signal. This structure plays a role in precise positioning.
[0021] like Figure 2 and Figure 3 The elastic clamping mechanism shown includes a groove opened on the inner wall of the placement groove, a hemispherical clamping groove opened on the outer wall of the lower end of the lower molding die, a spherical clamping head 19 and a spring 18. The spherical clamping head is connected to the groove through the spring, and the spherical clamping head is clamped into the hemispherical clamping groove under the action of the spring.
[0022] like Figure 1 and Figure 2 The translation mechanism shown includes two slide rails 12 fixed on the top of the workbench, a slider 16 and a translation drive electric cylinder 14. The two slide rails are arranged parallel to each other and pass through the forming station and the feeding station in sequence. The storage seat is slidably connected to the two slide rails through a slider arranged at the bottom. The translation drive electric cylinder is installed on the workbench, and the output shaft end of the translation drive electric cylinder is connected to the storage seat. The storage seat slides along the slide rail under the action of the translation drive electric cylinder. The utility model can automatically load materials by adopting the above structure, which greatly improves the processing efficiency.
[0023] like Figure 1 The inner wall of the cooling outer cover is provided with two rows of spray holes, both of which are connected to an air guide channel provided in the side wall of the cooling outer cover. The air guide channel is connected to a gas condenser 4 fixed on an upper support plate through an air guide duct assembly 15, and an air intake pump is installed on the gas condenser.
[0024] 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. An automated glass forming device, characterized in that: The invention comprises a workbench (1), an upper support plate (3), a column (2), an upper molding die (6), a lower molding die (7), a storage seat (9) and a cooling outer cover (8), wherein the upper support plate is arranged horizontally and is fixed to the top of the workbench by the column, a molding station and a feeding station are arranged on the workbench, the storage seat is connected to the workbench by a translation mechanism, the storage seat is sequentially transported to the feeding station and the molding station by the translation mechanism, a placement groove matching the lower molding die is provided on the top of the storage seat, the lower molding die is placed in the placement groove and is connected to the storage seat by an elastic clamping mechanism, a lifting hydraulic cylinder is installed on the workbench in the molding station, The output shaft end of the lifting hydraulic cylinder is connected to the lifting plate (13), and a through groove is provided at the bottom of the storage seat relative to the position of the lifting plate. Under the action of the lifting hydraulic cylinder, the lifting plate extends into the storage seat and contacts the bottom of the lower molding die and pushes the lower molding die out of the storage seat. Under the action of the lifting plate, the upper end of the lower molding die extends into the cooling outer cover body. The cooling outer cover body is fixed to the column through a connecting plate (10) sleeved on its outer wall. The upper molding die is located directly above the cooling outer cover body and is connected to the downward hydraulic cylinder (5). The downward hydraulic cylinder is fixed on the upper support plate. Under the action of the downward hydraulic cylinder, the lower end of the upper molding die extends into the cooling outer cover body and is connected to the lower molding die.
2. The automatic glass forming device according to claim 1, characterized in that: The top of the jacking plate is provided with a plurality of jacking protrusions, and the bottom of the lower molding die is provided with positioning holes relative to the positions of the jacking protrusions, and the jacking protrusions extend into the positioning holes driven by the jacking plate.
3. The automated glass forming device according to claim 1, characterized in that: An infrared receiving sensor (17) is installed at the bottom of the storage seat, and an infrared transmitting sensor is arranged in the molding station at a position corresponding to the infrared receiving sensor.
4. The automated glass forming device according to claim 1, characterized in that: The elastic clamping mechanism comprises a groove formed on the inner wall of the placement groove, a hemispherical clamping groove formed on the outer wall of the lower end of the lower molding die, a spherical clamping head (19) and a spring (18). The spherical clamping head is connected to the groove through the spring, and the spherical clamping head is clamped into the hemispherical clamping groove under the action of the spring.
5. The automated glass forming device according to claim 1, characterized in that: The translation mechanism comprises two slide rails (12), a slider (16) and a translation drive electric cylinder (14) fixed on the top of the workbench. The two slide rails are arranged parallel to each other and pass through the molding station and the feeding station in sequence. The storage seat is slidably connected to the two slide rails through a slider arranged at the bottom. The translation drive electric cylinder is installed on the workbench, and the output shaft end of the translation drive electric cylinder is connected to the storage seat. The storage seat slides along the slide rails under the action of the translation drive electric cylinder.
6. The automated glass forming device according to claim 1, characterized in that: The inner wall of the cooling outer cover body is provided with two upper and lower rows of spray holes, both of which are connected to an air guide channel provided in the side wall of the cooling outer cover body. The air guide channel is connected to a gas condenser (4) fixed on the upper support plate through an air guide duct assembly (15), and an air intake pump is installed on the gas condenser.