Rapid cooling and shaping device for glass tube processing

By combining a motor-driven gear system with an atomizing nozzle, the problem of low cooling efficiency in traditional glass tubes is solved, achieving rapid and uniform cooling of the glass tubes and ensuring the shaping quality of the glass tubes.

CN224151275UActive Publication Date: 2026-04-21TAIXING ZHICHENG GLASS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TAIXING ZHICHENG GLASS CO LTD
Filing Date
2025-05-29
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Traditional glass tube cooling methods are inefficient and prone to deformation or cracking, and existing devices cannot achieve rapid and uniform cooling.

Method used

A gear system driven by a motor controls the rotation of the cooling cylinder. Combined with atomizing nozzles and adjustment components, this ensures that the coolant is sprayed evenly onto the glass tube's annular wall. The nozzle position is adjusted using an adjusting rod and a limit ring, and the direction of movement is limited by a guide rod, thus achieving uniform cooling of the glass tube.

Benefits of technology

This technology enables rapid and uniform cooling of the glass tube, improves cooling efficiency, avoids deformation and cracking, and ensures the shaping quality of the glass tube.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of glass tube processing, in particular to a rapid cooling and shaping device for glass tube processing, which is characterized in that a positioning ring is fixedly arranged on the bottom surface by a support rod, and a motor is fixedly arranged on the positioning ring and is connected with an external power supply; the cooling cylinder is rotationally connected into the positioning ring through a bearing, a tooth groove is formed in the outer ring wall of the cooling cylinder, and a cooling groove is formed in the cooling cylinder in a penetrating mode; the gear is fixedly arranged at the output end of the motor, and the gear is engaged with the tooth groove in the cooling cylinder. The plurality of atomizing nozzles are respectively arranged on the inner wall of the cooling cylinder by utilizing adjusting assemblies; the conveying pipe is arranged at the bottom end of the cooling cylinder, the top end of the conveying pipe is communicated with the cooling tank, and the bottom end of the conveying pipe is connected with an external water pump through a rotary joint; and the motor is matched with the gear to control the rotation of the cooling cylinder, so that the plurality of atomizing nozzles rotate at a uniform speed, cooling liquid is conveniently and uniformly sprayed on the annular wall of the glass tube, the glass tube is conveniently and uniformly cooled, and the cooling efficiency is improved.
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Description

Technical Field

[0001] This utility model relates to the field of glass tube processing technology, specifically to a rapid cooling and shaping device for glass tube processing. Background Technology

[0002] Traditional methods for cooling glass tubes include natural cooling, air cooling, and water cooling. However, natural cooling is inefficient and can easily lead to deformation. Water cooling or air cooling can cause the glass tubes to crack due to excessive temperature differences. Therefore, there is an urgent need for a rapid cooling and shaping device for glass tube processing to solve these problems. Utility Model Content

[0003] The purpose of this invention is to address the deficiencies and shortcomings of existing technologies by providing a rapid cooling and shaping device for glass tube processing, the technical features of which can solve the aforementioned problems.

[0004] To achieve the above objectives, the present invention adopts the following technical solution: It comprises:

[0005] The positioning ring is fixedly mounted on the bottom surface by a support rod, and a motor is fixedly mounted on the positioning ring, which is connected to an external power source.

[0006] The cooling cylinder is a hollow cylindrical structure with openings at both the top and bottom ends. The cooling cylinder is screwed into the positioning ring by bearings. The outer ring wall of the cooling cylinder is provided with toothed grooves, and a cooling groove is provided through the inside of the cooling cylinder.

[0007] The gear is fixedly mounted on the output end of the motor and meshes with the tooth grooves on the cooling cylinder.

[0008] Atomizing nozzles, wherein there are several atomizing nozzles, and the several atomizing nozzles are respectively set on the inner wall of the cooling cylinder by adjusting components;

[0009] The conveying pipe is located at the bottom of the cooling cylinder, and its top end is connected to the cooling tank. The bottom end of the conveying pipe is connected to an external water pump via a rotary joint.

[0010] Furthermore, the adjustment component includes:

[0011] The telescopic tube is a plurality of tubes, which are respectively installed on the inner wall of the cooling cylinder. One end of the telescopic tube is connected to the cooling groove, and the other end of the telescopic tube is connected to the atomizing nozzle.

[0012] The movable rings are multiple in number, and each movable ring is movably disposed inside the cooling cylinder, with the ring wall of the movable ring engaging and abutting against the inner wall of the cooling cylinder.

[0013] The connecting rods are of several kinds, and the top ends of the connecting rods are screwed onto the moving ring at equal angles using hinge seats. The bottom ends of the connecting rods are screwed onto the ends of the corresponding telescopic tubes using rotating rods.

[0014] The adjusting rod is movably inserted into several movable rings, and the top end of the adjusting rod is threadedly connected to the adjusting block on the inner wall of the cooling cylinder. A limiting ring is fixed on the adjusting rod, and the limiting ring and the movable ring are set to cooperate and abut against each other.

[0015] Furthermore, several guide rods are fixedly provided on the inner wall of the cooling cylinder, and the guide rods are movably inserted into the guide blocks on the side wall of the telescopic tube.

[0016] Furthermore, a ceramic protective plate is fixedly provided on the inner wall of the cooling cylinder, and the moving ring is configured to abut against the ceramic protective plate.

[0017] Furthermore, clamping rods are symmetrically fixed on the top surface of the positioning ring, and clamping plates are bolted to the top of the clamping rods.

[0018] Furthermore, a temperature sensor is fixedly installed on the positioning ring, and the sensing end of the temperature sensor is located at the top of the cooling cylinder.

[0019] Compared with the prior art, the beneficial effects of this utility model are: This utility model provides a rapid cooling and shaping device for glass tube processing, which uses a motor and gears to control the atomizing nozzle to rotate at a uniform speed, thereby uniformly heating the annular wall of the glass tube and improving the cooling efficiency. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the structure of this utility model.

[0021] Figure 2 This is a schematic diagram of the cooling cylinder and the conveying pipe in this utility model.

[0022] Figure 3 This is a schematic diagram of the internal structure of the cooling cylinder in this utility model.

[0023] Figure 4 yes Figure 3 Enlarged view of section A.

[0024] Figure 5 This is a schematic diagram of the moving ring and the limiting ring in this utility model.

[0025] Explanation of reference numerals in the attached figures:

[0026] Positioning ring 1, motor 2, cooling cylinder 3, cooling groove 4, gear 5, atomizing nozzle 6, adjusting assembly 7, conveying pipe 8, telescopic pipe 9, moving ring 10, connecting rod 11, adjusting rod 12, adjusting block 13, limiting ring 14, guide rod 15, guide block 16, ceramic protective plate 17, clamping rod 18, clamping plate 19, temperature measuring device 20. Detailed Implementation

[0027] The technical solutions of this utility model will be clearly and completely described below with reference to the accompanying drawings. The preferred embodiments described are only examples. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0028] like Figures 1-5 As shown, this specific embodiment adopts the following technical solution: It includes:

[0029] Positioning ring 1, the positioning ring 1 is fixedly set on the bottom surface by a support rod, and a motor 2 is fixedly set on the positioning ring 1. The motor 2 is connected to an external power supply. The positioning ring 1 plays a positioning role. Clamping rods 18 are symmetrically fixed on the top surface of the positioning ring 1. Clamping plates 19 are set on the top of the clamping rods 18 by bolts. The clamping plates 19 are used to fix the end of the glass tube.

[0030] The cooling cylinder 3 is a hollow cylindrical structure with openings at both the top and bottom. The cooling cylinder 3 is screwed into the positioning ring 1 using bearings. The outer ring wall of the cooling cylinder 3 is provided with toothed grooves. A cooling groove 4 is provided through the cooling cylinder 3. The cooling cylinder 3 rotates in the positioning ring 1 to facilitate uniform cooling of the ring wall of the glass tube. A thermometer 20 is fixed on the positioning ring 1. The sensing end of the thermometer 20 is located at the top of the cooling cylinder 3 to facilitate the detection of the temperature of the glass tube.

[0031] Gear 5 is fixedly mounted on the output end of motor 2, and gear 5 meshes with the tooth groove on cooling cylinder 3. Gear 5 is used to control the uniform speed rotation of cooling cylinder 3.

[0032] Atomizing nozzle 6, wherein there are several atomizing nozzles 6, and the several atomizing nozzles 6 are respectively set on the inner wall of the cooling cylinder 3 by adjusting components 7, so as to spray the coolant, such as water-based coolant, onto the annular wall of the glass tube.

[0033] The conveying pipe 8 is located at the bottom of the cooling cylinder 3, and the top of the conveying pipe 8 is connected to the cooling tank 4. The bottom of the conveying pipe 8 is connected to an external water pump through a rotary joint. The conveying pipe 8 facilitates the delivery of coolant to the cooling tank 4, and then sprays it out through the atomizing nozzle 6.

[0034] Adjustment component 7 includes:

[0035] Telescopic tube 9, there are several telescopic tubes 9, which are respectively set on the inner wall of the cooling cylinder 3. One end of the telescopic tube 9 is connected to the cooling groove 4 and the other end of the telescopic tube 9 is connected to the atomizing nozzle 6. The position of the atomizing nozzle 6 is controlled by the telescopic length of the telescopic tube 9, so that the atomizing nozzle 6 can be adjusted to a position close to the glass tube. Several guide rods 15 are fixed on the inner wall of the cooling cylinder 3, and the guide rods 15 are movably inserted into the guide block 16 on the side wall of the telescopic tube 9 to restrict the movement direction of the telescopic tube 9.

[0036] The movable ring 10, which consists of several movable rings, is movably disposed inside the cooling cylinder 3. The ring wall of the movable ring 10 is in contact with the inner wall of the cooling cylinder 3. The movable ring 10 is used to adjust the movement of the telescopic tube 9. A ceramic protective plate 17 is fixedly disposed on the inner wall of the cooling cylinder 3. The movable ring 10 and the ceramic protective plate 17 are in contact with each other. The ceramic protective plate 17 is used to improve the high temperature resistance of the cooling cylinder 3.

[0037] Connecting rod 11, there are several connecting rods 11, the top ends of several connecting rods 11 are screwed onto the moving ring 10 at equal angles using hinge seats, and the bottom ends of the connecting rods 11 are screwed onto the ends of the corresponding telescopic tubes 9 using rotating rods, and the extension and retraction of the telescopic tubes 9 are controlled by the connecting rods 11.

[0038] The adjusting rod 12 is movably inserted into several moving rings 10, and the top end of the adjusting rod 12 is threadedly connected to the adjusting block 13 on the inner wall of the cooling cylinder 3. A limiting ring 14 is fixedly provided on the adjusting rod 12. The limiting ring 14 and the moving rings 10 are set to cooperate and abut against each other. By rotating the adjusting rod 12, the several moving rings 10 are driven to move synchronously, thereby controlling the length of several telescopic tubes 9 to be adjusted synchronously in the same direction.

[0039] When using this utility model, the operator first uses bolts to fix the clamping plate 19 to the clamping rod 18, and uses the clamping plate 19 to fix the glass tube, so that the glass tube is movably inserted into the cooling cylinder 3. Then, an external water pump is used to transport the coolant to the cooling tank 4 through the delivery pipe 8, and then the coolant is sprayed onto the ring wall of the glass tube through the atomizing nozzle 6. Then, the motor 2 is started, the motor 2 drives the gear 5 to rotate, the gear 5 controls the rotation speed of the cooling cylinder 3, and the cooling cylinder 3 drives several atomizing nozzles 6 to rotate synchronously, so that the coolant is evenly sprayed onto the glass tube, so that the ring wall of the glass tube is evenly cooled.

[0040] Simultaneously, the operator rotates the adjusting rod 12 according to the diameter of the glass tube, causing the adjusting rod 12 to move on the adjusting block 13. The adjusting rod 12 drives the limiting ring 14 to move, and the limiting ring 14 drives the moving ring 10 to move synchronously. The moving ring 10 drives the connecting rod 11 to rotate, causing the telescopic tube 9 to move along the direction of the guide rod 15, thereby adjusting the position of the atomizing nozzle 6 so that the atomizing nozzle 6 is placed close to the annular wall of the glass tube, which facilitates better spraying of coolant onto the annular wall of the glass tube and improves the cooling efficiency.

[0041] Compared with the prior art, the beneficial effects of this utility model are:

[0042] 1. By using the cooperation of motor 2 and gear 5, the rotation of cooling cylinder 3 is controlled, so that several atomizing nozzles 6 rotate at a uniform speed, which makes it easy to spray coolant evenly on the ring wall of the glass tube, so as to facilitate uniform cooling of the glass tube and improve cooling efficiency.

[0043] 2. Set up adjustment component 7, use adjustment rod 12 and limit ring 14 to control the position of moving ring 10, and then use connecting rod 11 to control the movement of telescopic tube 9 to adjust the position of atomizing nozzle 6 so that atomizing nozzle 6 is located close to the glass tube ring wall, so that coolant can be sprayed on the glass tube ring wall to improve cooling efficiency.

[0044] 3. Set guide rod 15 to restrict the movement direction of telescopic tube 9;

[0045] 4. Set up a thermometer 20 to facilitate monitoring the temperature on the glass tube and remove the glass tube in a timely manner.

[0046] For those skilled in the art, modifications can be made to the technical solutions described in the foregoing embodiments, and equivalent substitutions can be made to some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A rapid cooling and sizing device for glass tubing processing, characterized by, It contains: Positioning ring (1), the positioning ring (1) is fixedly mounted on the bottom surface by means of a support rod, and a motor (2) is fixedly mounted on the positioning ring (1), the motor (2) is connected to an external power source; Cooling cylinder (3) is a hollow cylindrical structure with openings at both ends. The cooling cylinder (3) is screwed into the positioning ring (1) by bearings. The outer ring wall of the cooling cylinder (3) is provided with toothed grooves, and a cooling groove (4) is provided through the cooling cylinder (3). Gear (5), the gear (5) is fixedly installed on the output end of the motor (2), and the gear (5) is meshed with the tooth groove on the cooling cylinder (3); Atomizing nozzle (6), there are several atomizing nozzles (6), and the several atomizing nozzles (6) are respectively set on the inner wall of the cooling cylinder (3) by adjusting components (7); The conveying pipe (8) is located at the bottom of the cooling cylinder (3), and the top of the conveying pipe (8) is connected to the cooling tank (4). The bottom of the conveying pipe (8) is connected to an external water pump via a rotary joint.

2. A rapid cooling and sizing device for glass tubing processing as claimed in claim 1, wherein: The adjustment component (7) includes: Telescopic tube (9), there are several telescopic tubes (9), and several telescopic tubes (9) are respectively set on the inner wall of the cooling cylinder (3), and one end of the telescopic tube (9) is connected to the cooling groove (4), and the other end of the telescopic tube (9) is connected to the atomizing nozzle (6). The movable ring (10) is a plurality of movable rings (10), which are respectively movably disposed in the cooling cylinder (3), and the ring wall of the movable ring (10) is in contact with the inner wall of the cooling cylinder (3). Connecting rod (11), there are several connecting rods (11), the top ends of several connecting rods (11) are screwed onto the moving ring (10) at equal angles using hinge seats, and the bottom ends of the connecting rods (11) are screwed onto the end of the corresponding telescopic tube (9) using rotating rods; Adjusting rod (12), the adjusting rod (12) is movably inserted on several moving rings (10), and the top end of the adjusting rod (12) is threaded onto the adjusting block (13) on the inner wall of the cooling cylinder (3), and a limiting ring (14) is fixedly provided on the adjusting rod (12), the limiting ring (14) and the moving ring (10) are engaged in abutment.

3. A rapid cooling and sizing device for glass tubing as claimed in claim 2, wherein: Several guide rods (15) are fixedly provided on the inner wall of the cooling cylinder (3), and the guide rods (15) are movably inserted into the guide block (16) on the side wall of the telescopic tube (9).

4. A rapid cooling and sizing device for glass tubing as claimed in claim 2, wherein: A ceramic protective plate (17) is fixedly provided on the inner wall of the cooling cylinder (3), and the moving ring (10) is set in contact with the ceramic protective plate (17).

5. A rapid cooling and sizing device for glass tubing processing as claimed in claim 1, wherein: The positioning ring (1) is symmetrically fixed with clamping rods (18) on its top surface, and clamping plates (19) are bolted to the top of the clamping rods (18).

6. A rapid cooling and sizing device for glass tubing processing as claimed in claim 1, wherein: A thermometer (20) is fixedly installed on the positioning ring (1), and the sensing end of the thermometer (20) is set at the top of the cooling cylinder (3).