Integrated glassware forming device
The automated control of the integrated glass forming device solves the problems of laborious and inefficient manual operation, and achieves efficient and low-cost glass forming.
Patent Information
- Application Number
- CN202510974424.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-15
- Publication Date
- 2025-11-07
AI Technical Summary
The existing glass blowing process is labor-intensive, inefficient, and lacks automation, which increases the difficulty and cost of forming.
An integrated glass forming device is used, which utilizes a motor, transmission gears, rotating gears, threaded air plugs, and one-way air inlet pipes to automatically control the blowing and rotational plasticity of the material bubble, reducing manual operation and improving efficiency and automation.
Automation reduces the intensity of manual labor, improves the efficiency of glassware forming, and lowers forming costs.
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Figure CN120903809A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of glass production equipment, more particularly to an integrated glassware forming device. BACKGROUND
[0002] Glass is an amorphous inorganic non-metallic material, generally made of various inorganic minerals (such as quartz sand, borax, boric acid, barium carbonate, limestone, feldspar, soda ash, etc.) as the main raw material, and a small amount of auxiliary raw materials are added. Glassware forming is the process of processing molten glass into a specific shape product, mainly including blowing, pressing forming, drawing and centrifugal forming processes, under manual or mechanical operation, the high-temperature softened glass is shaped through a mold, and then annealed to eliminate internal stress, finally forming cups, bottles, bowls and other vessels.
[0003] The existing technology, especially the asymmetric glassware blowing forming process, in order to ensure the flexibility of glassware forming and manufacturing, generally requires manual picking of an appropriate amount of glass liquid (called "material bubble") from the furnace, and then simple shaping through a rolling blowpipe or tool, and directly blowing air into the material bubble through the blowpipe by the craftsman, while shaping with tools (such as clamps, wooden boards);
[0004] However, the manual blowing method is labor-intensive, and manual work cannot be performed for a long time, which reduces the efficiency of glassware forming. At the same time, it is more challenging for the craftsman to rotate and shape while blowing air, which increases the difficulty of glassware forming. In addition, the traditional forming process lacks automation, and the labor intensity is high, which further increases the cost of glassware forming. SUMMARY
[0005] In order to overcome the above-mentioned defects of the prior art, the embodiments of the present application provide an integrated glassware forming device to solve the technical problems proposed in the background art.
[0006] To achieve the above-mentioned purpose, the present application provides the following technical scheme: an integrated glassware forming device, comprising a blowpipe, one end of the blowpipe is fixedly connected with a blowhead, a protective sleeve is movably sleeved on the surface of the blowpipe, a protective shell is fixedly connected to the bottom of the protective sleeve, a rotary motor is fixedly connected to one side of the protective shell, a sealing sleeve is fixedly connected to one end of the protective sleeve, the surface of the blowpipe away from the blowhead is movably sleeved inside the sealing sleeve, a circular sleeve shell is movably sleeved on one side of the surface of the blowpipe, the circular sleeve shell is fixedly connected inside the protective sleeve, and a plurality of one-way air inlet pipes are arranged regularly on the surface of the blowpipe around the sealing sleeve.
[0007] In a preferred implementation form, the surface of the blowing pipe and inside the sealing sleeve is fixedly connected with an arc-shaped shell, and the surface of the arc-shaped shell is fixedly connected with a motor.
[0008] In a preferred implementation form, the inside of the circular shell is provided with a circular cavity.
[0009] In a preferred implementation form, the inside of the protective shell is movably sleeved with a main gear, and the main gear is in transmission connection with the motor on the surface of the protective shell.
[0010] In a preferred implementation form, the inner wall of the protective sleeve and around the one-way air inlet pipe of the blowing pipe is provided with an arc-shaped groove.
[0011] In a preferred implementation form, the inside of the blowing pipe and close to the blowing head is provided with a one-way valve core.
[0012] In a preferred implementation form, the inside of the arc-shaped shell is movably sleeved with a transmission gear, the inside of the blowing pipe and close to one side of the sealing sleeve is movably sleeved with a threaded blowing plug, and the surface of the threaded blowing plug and inside the blowing pipe is movably sleeved with a rotating gear.
[0013] In a preferred implementation form, the telescopic gear is in meshing connection with the transmission gear, and one end of the threaded blowing plug is fixedly connected with a rubber plug.
[0014] In a preferred implementation form, the main gear inside the protective shell is in meshing connection.
[0015] In a preferred implementation form, the one-way air inlet pipe comprises a pipe body, the inside of the pipe body is movably sleeved with a valve core, and the inner wall of the pipe body and close to the bottom of the valve core is fixedly connected with an arc-shaped baffle.
[0016] By being provided with the motor, the transmission gear, the rotating gear, the threaded blowing plug, the one-way valve core and the one-way air inlet pipe, when the material bubble is blown, the motor drives the transmission gear to rotate, and then drives the telescopic gear to rotate, so that the threaded blowing plug is driven to stretch and shrink by the rotation of the telescopic gear, and the external air is blown to the blowing head through the blowing pipe by the one-way valve core and the one-way air inlet pipe, so as to blow the material bubble, reduce the manual blowing operation, and improve the work efficiency.
[0017] By being provided with the main gear and the rotating gear, the glassware forming device has the advantages that when the material bubble is rotated and plasticized by blowing, the main gear is driven by the rotating motor, and then the rotating gear drives the blowing pipe to rotate inside the protective sleeve, and then the material bubble is driven to rotate by blowing, so that the difficulty of glassware forming is reduced, the automation degree of the forming process is increased, and then the labor intensity and the expenditure cost of glassware forming are reduced.
[0018] Technical effects and advantages of the present application:
[0019] 1、The glassware forming device has the advantages that when the material bubble is blown, the transmission gear is driven to rotate by the motor, and then the telescopic gear is driven to rotate, so that the threaded blowing plug is driven to expand and contract by the rotation of the telescopic gear, and at the same time, the external air is blown to the blowing head position inside the blowing pipe through the one-way valve core and the one-way air inlet pipe, so that the material bubble is blown, the manual blowing operation is reduced, and the work efficiency is improved.
[0020] 2、The glassware forming device has the advantages that when the material bubble is rotated and plasticized by blowing, the main gear is driven by the rotating motor, and then the rotating gear drives the blowing pipe to rotate inside the protective sleeve, and then the material bubble is driven to rotate by blowing, so that the difficulty of glassware forming is reduced, the automation degree of the forming process is increased, and then the labor intensity and the expenditure cost of glassware forming are reduced. BRIEF DESCRIPTION OF DRAWINGS
[0021] Figure 1 It is a schematic diagram of the overall structure of the present application.
[0022] Figure 2 It is a schematic diagram of the overall structure of the present application.
[0023] Figure 3 It is a schematic diagram of the protective sleeve structure of the present application.
[0024] Figure 4 It is a schematic diagram of the blowing pipe structure of the present application.
[0025] Figure 5 It is a schematic diagram of the blowing pipe structure of the present application.
[0026] Figure 6 It is a schematic diagram of the one-way air inlet pipe structure of the present application.
[0027] The reference signs are: 1, blow pipe; 2, blow head; 3, protective sleeve; 301, arc-shaped groove; 4, protective shell; 5, rotary motor; 6, sealing sleeve; 7, circular sleeve shell; 701, circular inner cavity; 8, one-way air inlet pipe; 801, pipe body; 802, valve core; 803, arc-shaped baffle; 9, rotary gear; 10, arc-shaped shell; 11, motor; 12, one-way valve core; 13, threaded blow plug; 14, transmission gear; 15, main gear; 16, telescopic gear. DETAILED DESCRIPTION
[0028] The technical solutions in the application will be described clearly and completely below in combination with the drawings in the application, and in addition, the forms of each structure described in the following embodiments are only examples, and the one-piece glassware forming device involved in the application is not limited to each structure described in the following embodiments. All other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the application.
[0029] Reference Figures 1-6 As shown in the figure, the application provides a one-piece glassware forming device, which comprises a blow pipe 1, one end of the blow pipe 1 is fixedly connected with a blow head 2, a protective sleeve 3 is movably sleeved on the surface of the blow pipe 1, a protective shell 4 is fixedly connected to the bottom of the protective sleeve 3, a rotary motor 5 is fixedly connected to one side of the protective shell 4, a sealing sleeve 6 is fixedly connected to one end of the protective sleeve 3, the surface of the blow pipe 1 away from the blow head 2 is movably sleeved inside the sealing sleeve 6, a circular sleeve shell 7 is movably sleeved on one side of the surface of the blow pipe 1, the circular sleeve shell 7 is fixedly connected inside the protective sleeve 3, and a plurality of one-way air inlet pipes 8 arranged in an orderly manner are formed on the surface of the blow pipe 1 around the sealing sleeve 6.
[0030] Among them, the arc-shaped shell 10 is fixedly connected to one side of the surface of the blow pipe 1 inside the sealing sleeve 6, and the motor 11 is fixedly connected to one side of the surface of the arc-shaped shell 10.
[0031] Among them, the circular inner cavity 701 is formed in the inside of the circular sleeve shell 7.
[0032] Among them, the main gear 15 is movably sleeved inside the protective shell 4, and the main gear 15 is in transmission connection with the rotary motor 5 on one side of the surface of the protective shell 4.
[0033] Among them, the arc-shaped groove 301 is formed on the inner wall of the protective sleeve 3 around the one-way air inlet pipe 8 formed on the blow pipe 1.
[0034] Among them, the one-way valve core 12 is formed inside the blow pipe 1 close to the blow head 2.
[0035] The arc-shaped shell 10 is movably sleeved with a transmission gear 14 inside, the blowing pipe 1 is movably sleeved with a threaded blowing plug 13 inside and close to one side of the sealing sleeve 6, and the threaded blowing plug 13 is movably sleeved with a rotating gear 16 on the surface and inside the blowing pipe 1.
[0036] The telescopic gear 16 is meshed with the transmission gear 14, and the threaded blowing plug 13 is fixedly connected with a rubber plug at one end.
[0037] The 9 is meshed with the main gear 15 inside the protective shell 4.
[0038] The one-way air inlet pipe 8 comprises a pipe body 801, the pipe body 801 is movably sleeved with a valve core 802 inside, and the pipe body 801 is fixedly connected with an arc-shaped baffle 803 on the inner wall and at one side of the bottom of the valve core 802.
[0039] In the embodiment, the motor 11, the transmission gear 14, the rotating gear 16, the threaded blowing plug 13, the one-way valve core 12 and the one-way air inlet pipe 8 are arranged, which is beneficial to rotating the transmission gear 14 by the motor 11 when blowing the material bubble, driving the telescopic gear 16 to rotate, so that the threaded blowing plug 13 is driven to rotate and stretch by the telescopic gear 16, and the external air is blown to the blowing head 2 inside the blowing pipe 1 by the one-way valve core 12 and the one-way air inlet pipe 8, thereby blowing the material bubble inside and reducing the manual blowing operation and increasing the work efficiency.
[0040] The main gear 15 and the rotating gear 9 are arranged, which is beneficial to rotating the blowing material bubble when the blowing material bubble is rotated and plasticized, the main gear 15 is driven by the rotating motor 5, the rotating gear 9 drives the blowing pipe 1 to rotate inside the protective sleeve 3, and the blowing material bubble is driven to rotate, thereby reducing the difficulty of glassware forming, increasing the automation degree of the forming process, reducing the labor intensity and the cost of glassware forming.
[0041] The working principle of the present application is as follows: firstly, when the material bubble is blown and plasticized, the blow head 2 on one side of the blow pipe 1 is used to pick up the appropriate amount of glass liquid from the inside of the furnace, then the rotary motor 5 on one side of the protective shell 4 is started, so that the rotary motor 5 drives the main gear 15 inside the protective shell 4 to rotate, then the rotation of the main gear 15 drives 9 on the surface of the blow pipe 1 to rotate inside the circular inner cavity 701 of the circular sleeve 7, then 9 drives the blow pipe 1 to rotate inside the protective sleeve 3, at this time the blow head 2 is rotated to drive the material bubble to rotate and simply shape, then the rotary motor 5 is closed, at this time the motor 11 on one side of the arc-shaped shell 10 is started, so that the motor 11 drives the transmission gear 14 inside the arc-shaped shell 10 to rotate, then the rotation of the transmission gear 14 drives the rotary gear 16 to rotate, then the rotary gear 16 rotates to drive the threaded blow plug 13, at this time the threaded blow plug 13 is extended and retracted inside the blow pipe 1 due to the rotation of the rotary gear 16, then the rubber plug at one end of the threaded blow plug 13 drives the external air to enter the blow pipe 1 through the valve core piece 802 inside the pipeline body 801, then when the motor 11 drives the transmission gear 14 to rotate in the opposite direction, at this time the threaded blow plug 13 pushes the air inside the blow pipe 1 to the one-way valve core 12 position, then the position of the one-way air inlet pipe 8 is limited by the arc-shaped baffle 803 due to the extrusion of the air, so that the air cannot escape through the one-way air inlet pipe 8 position;
[0042] Then the air inside the blow pipe 1 reaches the blow head 2 position through the one-way valve core 12 position, then the air inside the blow head 2 enters the material bubble inside its surface, thereby completing the blowing of the material bubble, then when the material bubble is shaped, the rotary motor 5 is started again, so that the rotary motor 5 drives the main gear 15 and 9 to rotate according to the above operation, then the blow pipe 1 drives the blow head 2 and the material bubble to rotate, then the blow pipe 1 rotates to drive the arc-shaped shell 10 and the motor 11 to rotate inside the sealing sleeve 6, thereby reducing the operation steps of glassware forming, increasing the forming efficiency, and reducing the labor intensity.
[0043] Finally: the above only describes the preferred embodiments of the present application and is not used to limit the present application, any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.
Claims
1. An integrated glassware forming apparatus comprising a blowpipe (1), characterised in that: The blowing pipe (1) one end position fixed connection has the blowing head (2), the blowing pipe (1) surface position active sleeve connection has the protective sleeve (3), the protective sleeve (3) bottom position fixed connection has the protective shell (4), the protective shell (4) one side position fixed connection has the rotary motor (5), the protective sleeve (3) one end position fixed connection has the sealing sleeve (6), the blowing pipe (1) far from the blowing head (2) one side surface active sleeve connection is in the sealing sleeve (6) inside position, the blowing pipe (1) surface one side position active sleeve connection has the circular sleeve shell (7), the circular sleeve shell (7) fixed connection is in the protective sleeve (3) inside position, the blowing pipe (1) surface four around and close to the sealing sleeve (6) position is equipped with the neat one-way air inlet pipe (8).
2. An integrated glassware forming apparatus as claimed in claim 1, wherein: The blowing pipe (1) surface and located in the sealing sleeve (6) inside one side position fixed connection has the arc-shaped shell (10), the arc-shaped shell (10) surface one side position fixed connection has the motor (11).
3. An integrated glassware forming apparatus as claimed in claim 1, wherein: The circular sleeve shell (7) inside position is equipped with the circular inner cavity (701).
4. An integrated glassware forming apparatus as claimed in claim 1, wherein: The protective shell (4) inside position active sleeve connection has the main gear (15), the main gear (15) and the protective shell (4) surface one side rotary motor (5) transmission connection.
5. An integrated glassware forming apparatus as claimed in claim 1, wherein: The protective sleeve (3) inner wall and located in the blowing pipe (1) four around position of the one-way air inlet pipe (8) is equipped with the arc-shaped groove (301).
6. An integrated glassware forming apparatus as claimed in claim 1, wherein: The blowing pipe (1) inside and close to the blowing head (2) position is equipped with the one-way valve core (12).
7. An integrated glassware forming apparatus as claimed in claim 2, wherein: The arc-shaped shell (10) inside position active sleeve connection has the transmission gear (14), the blowing pipe (1) inside and close to the sealing sleeve (6) one side position active sleeve connection has the threaded air plug (13), the threaded air plug (13) surface and located in the blowing pipe (1) inside position active sleeve connection has the rotary gear (16).
8. An integrated glassware forming apparatus as claimed in claim 7, wherein: The telescopic gear (16) and transmission gear (14) are engaged with each other, and the threaded air plug (13) one end position fixed connection has the rubber plug.
9. An integrated glassware forming apparatus as in claim 1, wherein: The (9) and the main gear (15) in the protective shell (4) inside are engaged with each other.
10. An integrated glassware forming apparatus as in claim 1, wherein: The one-way air inlet pipe (8) includes a pipeline body (801), the pipeline body (801) inside active sleeve connection has the valve core piece (802), the pipeline body (801) inner wall and located in the valve core piece (802) bottom position one side fixed connection has the arc-shaped baffle (803).
Citation Information
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