Automatic forming production line for glass kettle body

By using a movable cylinder and discharge assembly in the glass pot body forming production line to control the flow speed and discharge volume of glass raw materials, the problem of inconsistent flow caused by the feeding device was solved, and uniform forming of glass products was achieved.

CN223509786UActive Publication Date: 2025-11-04CHONGQING JUNBO GLASS PROD CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202422510241.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-17
Publication Date
2025-11-04
Estimated Expiration
2034-10-17

AI Technical Summary

Technical Problem

The existing glass pot body forming production line uses the glass raw material to discharge through its own flow, which results in inconsistent flow speeds and affects the uniformity of the forming process.

Method used

The flow rate of the glass raw material is controlled by a moving cylinder driving the push rod and push plate. The discharge amount is controlled by the shrinkage component and the blocking ring in the discharge assembly. Combined with the motor-driven cutting tool, the material is cut and shaped to ensure consistent discharge.

Benefits of technology

By controlling the flow rate and output of glass raw materials, the forming quality and uniformity of glass products are improved.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223509786U_ABST
    Figure CN223509786U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of glass manufacturing, in particular to an automatic glass kettle body forming production line which comprises a shell and a discharging assembly, the discharging assembly comprises a movable air cylinder, a pushing rod, a pushing plate and a discharging hopper, the movable air cylinder is fixedly connected with the shell, the pushing rod is fixedly connected with the output end of the air cylinder, and the pushing plate is fixedly connected with the pushing rod. Raw materials of glass products are heated and then injected into the shell, the pushing rod is pushed to move downwards through the output end of the movable air cylinder, the movable air cylinder pushes the pushing rod to move at a constant speed, and the pushing rod moves to drive the pushing plate to slide downwards at a constant speed; the pushing plate slides to extrude and push the glass raw materials, the glass raw materials flow out of the discharging hopper, the pushing speed of the pushing plate is controlled through the air cylinder, and therefore the flowing speed of the glass raw materials is controlled to be kept consistent, and the quality of glass products is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of glass manufacturing technology, and in particular to an automatic glass pot body forming production line. Background Technology

[0002] The existing glass pot body forming production line mainly consists of a glass melting furnace box, a shearing device, a guiding device, a slab pressing and feeding device, and a glass pot body forming device. The existing slab pressing and feeding device uses a cylinder to drive the suction head assembly to swing, which often causes problems such as shaking and unstable positioning during the swinging process of the suction head assembly.

[0003] The existing technology (CN209702544U) discloses a glass kettle body forming production line including a feeding device, a shearing device, a guiding device, a glass kettle body slab forming feeding device, and a glass kettle body forming blow molding machine. The feeding device is located above the shearing device, and the outlet of the feeding device corresponds to the shearing opening of the shearing device. The shearing device is located above the guiding device, and the upper end of the guiding device is connected to the outlet of the feeding device and the shearing opening of the shearing device, while the lower end of the guiding device is connected to the inlet side of the glass kettle body slab forming feeding device. The outlet side of the glass kettle body slab forming feeding device is connected to the glass kettle body forming blow molding machine. A servo motor drives the suction head swing arm, which moves smoothly and has high positional accuracy, improving the pass rate of glass kettle body blowing.

[0004] However, in the above scheme, the feeding device discharges the glass raw material by its own flow and then cuts it. The amount of raw material will affect the flow speed, and the unevenness of the speed will lead to uneven forming. Utility Model Content

[0005] The purpose of this utility model is to provide an automatic glass teapot body forming production line, which aims to solve the problem that the feeding device of the existing glass teapot body forming production line discharges the raw glass material by its own flow and then cuts it. The amount of raw material affects the flow speed, and the unevenness of the flow speed leads to uneven forming.

[0006] To achieve the above objectives, this utility model provides an automatic glass pot body forming production line, including a housing and a discharge assembly. The discharge assembly includes a movable cylinder, a push rod, a push plate, and a discharge hopper. The movable cylinder is fixedly connected to the housing and located at the top of the housing. The push rod is fixedly connected to the output end of the movable cylinder and located on one side of the movable cylinder. The push plate is fixedly connected to the push rod and located on one side of the push rod. The discharge hopper is fixedly connected to the housing and located at the bottom of the housing.

[0007] The discharge assembly further includes a discharge component, a first support component, a fixed shaft, a second support component, a shrinking component, and a converging component. The discharge component is threadedly connected to the discharge hopper and is located at one end of the discharge hopper. The first support component is fixedly connected to the discharge component and is located on one side of the discharge component. The fixed shaft is fixedly connected to the first support component and is located on one side of the first support component. The first support component is fixedly connected to the fixed shaft and is located on one side of the fixed shaft. The shrinking component is slidably connected to the first support component and is located on one side of the first support component. The converging component is fixedly connected to the discharge component and is located at the bottom of the discharge component.

[0008] The discharge assembly further includes a drive rod and a blocking ring. The drive rod is fixedly connected to the shrinking member and located on one side of the shrinking member. The blocking ring is rotatably connected to the discharge member and located on one side of the discharge member.

[0009] The discharge assembly further includes a support plate, a motor, and a cutting tool. The support plate is fixedly connected to the housing and located on the side of the housing. The motor is fixedly connected to the support plate and located on one side of the support plate. The cutting tool is fixedly connected to the output end of the motor and located on one side of the motor.

[0010] The discharge assembly further includes a connecting rod and a scraper. The connecting rod is fixedly connected to the housing and located at the bottom of the housing. The scraper is fixedly connected to the connecting rod and located on one side of the connecting rod.

[0011] This utility model discloses an automatic glass pot body forming production line. After heating the raw material for the glass product, it is injected into the housing. The output end of a movable cylinder pushes a push rod downwards. The movable cylinder pushes the push rod at a constant speed, which in turn drives a push plate to slide downwards at a constant speed. The sliding of the push plate compresses and pushes the raw glass material, causing it to flow out from the discharge hopper. The speed of the push plate is controlled by the movable cylinder, thereby maintaining a consistent flow rate of the raw glass material and improving the quality of the glass product. Attached Figure Description

[0012] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.

[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model.

[0014] Figure 2 This is a structural schematic diagram of the entire utility model from another perspective.

[0015] Figure 3 This is a cross-sectional view of the entire utility model.

[0016] Figure 4 This is a structural schematic diagram of the fixed shaft, second support member, retractable member, drive rod, and barrier ring of this utility model.

[0017] 101-Housing, 102-Discharge assembly, 103-Moving cylinder, 104-Push rod, 105-Push plate, 106-Discharge hopper, 107-Discharge component, 108-First support component, 109-Fixed shaft, 110-Second support component, 111-Contraction component, 112-Contraction component, 113-Drive rod, 114-Barrier ring, 115-Support plate, 116-Motor, 117-Cutting tool, 118-Connecting rod, 119-Scraper. Detailed Implementation

[0018] Please see Figures 1-4 ,in, Figure 1 This is a schematic diagram of the overall structure of this utility model. Figure 2 This is a structural schematic diagram of the entire utility model from another perspective. Figure 3 This is a cross-sectional view of the entire utility model. Figure 4 This is a structural schematic diagram of the fixed shaft, second support member, retractable member, drive rod, and barrier ring of this utility model.

[0019] This utility model provides an automatic glass pot body forming production line, including a housing 101 and a discharge assembly 102. The discharge assembly 102 includes a movable cylinder 103, a push rod 104, a push plate 105, a discharge hopper 106, a discharge component 107, a first support component 108, a fixed shaft 109, a second support component 110, a shrinking component 111, a drive rod 113, a blocking ring 114, a support plate 115, a motor 116, a cutting tool 117, a connecting rod 118, and a scraper 119. The aforementioned solution solves the problem that in existing glass pot body forming production lines, the feeding device discharges the glass raw material by its own flow and then cuts it. The amount of raw material affects the flow speed, and the unevenness of the flow speed leads to uneven forming.

[0020] In this specific embodiment, the shell 101 serves as a container for confining and storing glass raw materials.

[0021] The movable cylinder 103 is fixedly connected to the housing 101 and located at the top of the housing 101. The push rod 104 is fixedly connected to the output end of the movable cylinder 103 and located on one side of the movable cylinder 103. The push plate 105 is fixedly connected to the push rod 104 and located on one side of the push rod 104. The discharge hopper 106 is fixedly connected to the housing 101 and located at the bottom of the housing 101. The raw materials for glass products are heated and injected into the housing 101, and then discharged through the movable cylinder 103. The output end of cylinder 03 pushes the push rod 104 downward, and the movable cylinder 103 pushes the push rod 104 at a constant speed. The movement of the push rod 104 will drive the push plate 105 to slide downward at a constant speed. The sliding of the push plate 105 will squeeze and push the glass raw material, so that the glass raw material flows out from the discharge hopper 106. The speed of the push plate 105 is controlled by the movable cylinder 103, thereby controlling the flow speed of the glass raw material to be consistent and improving the quality of the glass products.

[0022] Secondly, the discharge component 107 is threadedly connected to the discharge hopper 106 and located at one end of the discharge hopper 106. The first support component 108 is fixedly connected to the discharge component 107 and located on one side of the discharge component 107. The fixed shaft 109 is fixedly connected to the first support component 108 and located on one side of the first support component 108. The first support component 108 is fixedly connected to the fixed shaft 109 and located on one side of the fixed shaft 109. The shrinking component 111 is slidably connected to the first support component 108 and located on one side of the first support component 108. The converging component 112 is fixedly connected to the discharge component 107 and located at the bottom of the discharge component 107. The discharge component 107 is threadedly connected to the discharge hopper 106, as needed. The speed of the movable cylinder 103 is adjusted to change the discharge size. Inside the discharge component 107, one end of the shrinking component 111 is fixed between the first support component 108 and the second support component 110 via the fixed shaft 109. The other end of the shrinking component 111 can extend and retract within the discharge component 107. During discharge, the shrinking component 111 retracts to ensure the flow of glass raw material. It is then fused by the converging component 112 to form a stream of raw material before flowing out. When closed, the other end of the shrinking component 111 slides within the discharge component 107 and cooperates with the first support component 108 and the second support component 110 to form a sealed circular plate, preventing the continued flow of glass raw material and facilitating better control of the glass raw material.

[0023] Meanwhile, the drive rod 113 is fixedly connected to the shrink member 111 and located on one side of the shrink member 111. The blocking ring 114 is rotatably connected to the discharge member 107 and located on one side of the discharge member 107. The drive rod 113 is fixed to the shrink member 111. The rotation of the shrink member 111 is controlled by controlling the drive rod 113. To prevent leakage of glass raw materials, the blocking ring 114 is installed inside the discharge member 107 and is thinner than the wall of the discharge member 107. This ensures that the drive rod 113 rotates while preventing the glass raw materials from leaking out from the side.

[0024] In addition, the support plate 115 is fixedly connected to the housing 101 and located on the side of the housing 101. The motor 116 is fixedly connected to the support plate 115 and located on one side of the support plate 115. The cutting tool 117 is fixedly connected to the output end of the motor 116 and located on one side of the motor 116. After the material is discharged, the motor 116 rotates on the support plate 115. The output end of the motor 116 drives the cutting tool 117 to cut the glass raw material flowing out of the discharge part 107 to obtain the required size.

[0025] Secondly, the connecting rod 118 is fixedly connected to the housing 101 and located at the bottom of the housing 101. The scraper 119 is fixedly connected to the connecting rod 118 and located on one side of the connecting rod 118. After the cutting tool 117 cuts, the cutting tool 117 will pass through the scraper 119 supported by the connecting rod 118 to scrape off both sides of the cutting tool 117, preventing the glass material from sticking and causing unevenness in the next cut.

[0026] When using this invention, the raw material for glass products is heated and injected into the housing 101. The output end of the movable cylinder 103 pushes the push rod 104 downward. The movable cylinder 103 pushes the push rod 104 at a constant speed, which in turn drives the push plate 105 to slide downward at a constant speed. The sliding of the push plate 105 squeezes and pushes the raw glass material, causing it to flow out of the discharge hopper 106. The speed of the push plate 105 is controlled by the movable cylinder 103, thereby maintaining a consistent flow rate of the raw glass material. The drive rod 113 causes the shrinking member 111 to rotate on the fixed shaft 109, shrinking the shrinking member 111 into the space between the first support member 108 and the second support member 110, allowing the glass raw material to flow out. Then, the glass raw material is condensed into a single strand by the converging member 112 and discharged at a uniform speed from the discharge member 107. The motor 116 rotates on the support plate 115, and the output end of the motor 116 drives the cutting tool 117 to cut the glass raw material flowing out of the discharge member 107 to the required size. By controlling the flow rate, the uneven discharge during production is reduced, thereby improving the quality of production.

[0027] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.

Claims

1. An automated production line for forming glass teapot bodies, comprising a shell, characterized in that, It also includes the discharge assembly; The discharge assembly includes a movable cylinder, a push rod, a push plate, and a discharge hopper; The movable cylinder is fixedly connected to the housing and located at the top of the housing. The push rod is fixedly connected to the output end of the movable cylinder and located on one side of the movable cylinder. The push plate is fixedly connected to the push rod and located on one side of the push rod. The discharge hopper is fixedly connected to the housing and located at the bottom of the housing.

2. The automatic glass pot body forming production line as described in claim 1, characterized in that, The discharge assembly further includes a discharge component, a first support component, a fixed shaft, a second support component, a shrinking component, and a converging component. The discharge component is threadedly connected to the discharge hopper and is located at one end of the discharge hopper. The first support component is fixedly connected to the discharge component and is located on one side of the discharge component. The fixed shaft is fixedly connected to the first support component and is located on one side of the first support component. The first support component is fixedly connected to the fixed shaft and is located on one side of the fixed shaft. The shrinking component is slidably connected to the first support component and is located on one side of the first support component. The converging component is fixedly connected to the discharge component and is located at the bottom of the discharge component.

3. The automatic glass pot body forming production line as described in claim 2, characterized in that, The discharge assembly further includes a drive rod and a blocking ring. The drive rod is fixedly connected to the shrink member and located on one side of the shrink member. The blocking ring is rotatably connected to the discharge member and located on one side of the discharge member.

4. The automatic glass pot body forming production line as described in claim 1, characterized in that, The discharge assembly also includes a support plate, a motor, and a cutting tool. The support plate is fixedly connected to the housing and located on the side of the housing. The motor is fixedly connected to the support plate and located on one side of the support plate. The cutting tool is fixedly connected to the output end of the motor and located on one side of the motor.

5. The automatic glass pot body forming production line as described in claim 1, characterized in that, The discharge assembly also includes a connecting rod and a scraper. The connecting rod is fixedly connected to the housing and located at the bottom of the housing. The scraper is fixedly connected to the connecting rod and located on one side of the connecting rod.

Citation Information

Patent Citations

  • Glass kettle body forming production line

    CN209702544U