Branch chute structure for melting glass blank

By using a mounting frame, a dual-shaft motor, and a stirring rod in combination, the problem of cumbersome cleaning caused by the simple structure of the distribution channel is solved, and the activity and flowability of the glass solution are controlled, thereby improving the efficiency and ease of cleaning in glass product manufacturing.

CN223592584UActive Publication Date: 2025-11-25林州市林河玻璃科技有限公司
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Patent Information

Application Number
CN202423244318.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-27
Publication Date
2025-11-25
Estimated Expiration
2034-12-27

AI Technical Summary

Technical Problem

The existing channel structure is relatively simple in glass manufacturing, which leads to cumbersome cleaning and makes it difficult to control the activity and flowability of the glass solution.

Method used

The combination of a mounting bracket, a dual-shaft motor, a first main shaft, and a stirring rod ensures that the glass solution is stirred during diversion. The design of the connecting cap, internal thread, and threaded connecting ring facilitates quick disassembly and cleaning of the secondary diversion channel and the main channel.

Benefits of technology

This ensures the activity and fluidity of the glass solution, simplifies subsequent diversion operations, and makes cleaning of the secondary diversion channels easier, thereby improving the efficiency of glass product manufacturing.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides a branch chute structure for melting glass blanks, which comprises a main runner body, a mounting frame is mounted at one end of the top of the main runner body, a connecting rod is vertically mounted on the surface of the bottom end of the mounting frame, a double-shaft motor is arranged at the bottom end of the connecting rod, a first main shaft is arranged at one end of the double-shaft motor, and a second main shaft is arranged at the other end of the double-shaft motor. And one end of the first main shaft extends into the main runner body, and a stirring rod is arranged on the outer side surface of the first main shaft and located in the main runner body. According to the utility model, the connecting cap, the internal thread and the threaded connecting ring are matched for use, so that the auxiliary branch chute and the main runner body can be quickly disassembled and assembled, and the auxiliary branch chute can be screwed out from the inside of the connecting cap through the threaded connecting ring by rotating the auxiliary branch chute during disassembly, and the mode is simple to operate and convenient to operate. And the auxiliary branch chute can be conveniently and quickly cleaned.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a branch runner technical field especially relates to a kind of branch runner structures for molten glass embryo. BACKGROUND

[0002] Glass products are widely used in construction, daily use, medical treatment, chemistry, home, electronics, instrument, nuclear engineering and other fields.

[0003] Glass products are the collective term of life supplies and industrial supplies processed by using glass as main raw material.

[0004] In the manufacture of glass products, glass is usually melted into liquid state, and then injected into designated mold through branch runner for cooling and forming. However, the existing branch runner structure is relatively simple and cleaning is relatively cumbersome.

[0005] Therefore, it is necessary to provide a kind of branch runner structures for molten glass embryo to solve the above technical problems. INVENTION CONTENTS

[0006] The utility model provides a kind of branch runner structures for molten glass embryo, solve the problem in background art.

[0007] To solve the above technical problems, the utility model provides a kind of branch runner structures for molten glass embryo, including main runner body, the main runner body top one end is equipped with mounting bracket, the mounting bracket bottom end surface is vertically equipped with connecting rod, the connecting rod bottom end is provided with double-shaft motor, the double-shaft motor one end is provided with first spindle, the first spindle one end extends to main runner body interior, the first spindle outer side surface is located in main runner body interior and is provided with stirring rod, by the cooperation of mounting bracket, double-shaft motor, first spindle, stirring rod, when main runner body is shunted to glass solution, glass solution enters into main runner body interior by feed pipe, then double-shaft motor is started, then double-shaft motor drives stirring rod to rotate by first spindle, so that stirring rod stirs the glass solution in main runner body interior, guarantees its activity and fluidity, facilitate subsequent normal shunting, this mode is simple to operate, and it is convenient for the manufacture of glass product.

[0008] Preferably, the other end of the double-shaft motor is provided with a second spindle, and the second spindle is provided with a brush at the end portion. By the cooperation of the second spindle and the brush, the cleaning of the auxiliary branch runner is facilitated. When cleaning, the auxiliary branch runner is detached from the main runner body, and then the auxiliary branch runner is sleeved outside the brush. Then the double-shaft motor is started, and the double-shaft motor drives the brush to clean the inner wall of the auxiliary branch runner through the second spindle. This mode is simple to operate and convenient for subsequent normal use.

[0009] Preferably, the main flow channel body bottom end surface is provided with a connecting cap, the inside of the connecting cap is spirally connected with a secondary branch channel, the top end of the secondary branch channel is provided with a threaded connection ring, and the inner wall of the connecting cap is provided with an internal thread.

[0010] Preferably, the main flow channel body top surface is provided with a feeding pipe.

[0011] Preferably, the stirring rod is provided with a plurality of stirring rods, and the plurality of stirring rods are equidistantly installed on the outer side surface of the first main shaft. By providing a plurality of stirring rods, the glass solution entering the main flow channel body can be stirred, so as to ensure the activity and flow in the main flow channel body.

[0012] Preferably, the secondary branch channel is provided with a plurality of secondary branch channels, and the plurality of secondary branch channels are equidistantly installed on the main flow channel body bottom end surface. By providing a plurality of secondary branch channels, the glass solution can be branched, and the subsequent manufacturing of glass products is facilitated.

[0013] Preferably, the main flow channel body is provided with a first sealing cover and a second sealing cover at both ends. By providing the first sealing cover and the second sealing cover, the main flow channel body can be sealed, and the subsequent cleaning of the inside of the main flow channel body is facilitated.

[0014] Compared with the related art, the secondary branch channel structure for molten glass embryo has the following beneficial effects:

[0015] 1. Compared with the prior art, the secondary branch channel structure for molten glass embryo is provided with a mounting frame, a double-shaft motor, a first main shaft, and a stirring rod. When the main flow channel body branches the glass solution, the glass solution enters the inside of the main flow channel body through the feeding pipe, then the double-shaft motor is started, and then the double-shaft motor drives the stirring rod to rotate through the first main shaft, so that the stirring rod stirs the glass solution in the inside of the main flow channel body, ensures the activity and flowability, and facilitates the subsequent normal branching. This method is simple in operation and facilitates the manufacturing of glass products. By cooperating the connecting cap, the internal thread, and the threaded connection ring, the secondary branch channel can be quickly disassembled from the main flow channel body. When disassembled, only the secondary branch channel needs to be rotated, and the secondary branch channel can be spirally out of the inside of the connecting cap through the threaded connection ring. This method is simple in operation and facilitates the quick cleaning of the secondary branch channel.

[0016] The parts not involved in the device are the same as or can be realized by the prior art. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 The utility model provides a structure schematic diagram of a separate runner structure for molten glass embryo is provided;

[0018] Figure 2 The utility model provides an internal structure schematic diagram of a separate runner structure for molten glass embryo is provided;

[0019] Figure 3 The utility model provides a connecting cap structure schematic diagram of a separate runner structure for molten glass embryo is provided;

[0020] Figure 4 The utility model provides a vice separate runner structure schematic diagram of a separate runner structure for molten glass embryo is provided.

[0021] Mark in drawing:

[0022] 1, main runner body, 2, feed pipe, 3, mounting bracket, 4, connecting rod, 5, first main shaft, 6, brush, 7, second main shaft, 8, double shaft motor, 9, first sealing cover, 10, vice separate runner, 11, second sealing cover, 12, stirring rod, 13, connecting cap, 14, internal thread, 15, threaded connecting ring. Specific implementation

[0023] The utility model is further explained below in combination with the drawings and implementation.

[0024] First embodiment

[0025] Please combine with reference Figures 1-4 A separate runner structure for molten glass embryo, including main runner body 1, the main runner body 1 top one end is installed with mounting bracket 3, the mounting bracket 3 bottom end surface is installed with connecting rod 4 perpendicularly, the connecting rod 4 bottom end is provided with double shaft motor 8, and one end of the double shaft motor 8 is provided with first main shaft 5, and one end of the first main shaft 5 extends to the inside of main runner body 1, and the outside surface of the first main shaft 5 is provided with stirring rod 12 in the inside of main runner body 1, by the cooperation of mounting bracket 3, double shaft motor 8, first main shaft 5 and stirring rod 12, when the main runner body 1 is shunted to glass solution, glass solution enters the inside of main runner body 1 through feed pipe 2, then double shaft motor 8 is started, then double shaft motor 8 drives stirring rod 12 to rotate through first main shaft 5, so that stirring rod 12 stirs the glass solution in the inside of main runner body 1, guarantees its activity and fluidity, and is convenient for subsequent normal shunting, and this mode is simple to operate and is convenient for the manufacture of glass products.

[0026] The working principle of the separate runner structure for molten glass embryo provided by the utility model is as follows:

[0027] The glass melt embryo is used for the sub-channel structure, when the main flow channel body 1 is divided into glass solution, the glass solution enters the main flow channel body 1 inside through the feed pipe 2, then the double-shaft motor 8 is started, then the double-shaft motor 8 drives the stirring rod 12 to rotate through the first main shaft 5, so that the stirring rod 12 stirs the glass solution in the main flow channel body 1, ensures the activity and fluidity, and facilitates subsequent normal sub-flow, the operation is simple, and the glass product is manufactured conveniently.

[0028] Compared with the related art, the glass melt embryo sub-channel structure has the following beneficial effects:

[0029] The installation frame 3, the double-shaft motor 8, the first main shaft 5 and the stirring rod 12 are used in cooperation, so that when the main flow channel body 1 is divided into glass solution, the glass solution enters the main flow channel body 1 inside through the feed pipe 2, then the double-shaft motor 8 is started, then the double-shaft motor 8 drives the stirring rod 12 to rotate through the first main shaft 5, so that the stirring rod 12 stirs the glass solution in the main flow channel body 1, ensures the activity and fluidity, and facilitates subsequent normal sub-flow, the operation is simple, and the glass product is manufactured conveniently.

[0030] Second embodiment

[0031] Please refer to Figures 1-4 Based on the first embodiment of the application, the second embodiment of the application provides another glass melt embryo sub-channel structure. The second embodiment is only a preferred way of the first embodiment, and the implementation of the second embodiment does not affect the separate implementation of the first embodiment.

[0032] Specifically, the second embodiment of the present application provides a different structure of a sub-chute for a molten glass blank, which is characterized in that the other end of the double-shaft motor 8 is provided with a second main shaft 7, and the end of the second main shaft 7 is provided with a brush 6. By using the second main shaft 7 and the brush 6 together, the cleaning of the sub-chute 10 is facilitated. When cleaning, the worker detaches the sub-chute 10 from the main flow channel body 1, then puts the sub-chute 10 outside the brush 6, and then starts the double-shaft motor 8 to drive the brush 6 to clean the inner wall of the sub-chute 10 through the second main shaft 7. This way is simple to operate and facilitates subsequent normal use.

[0033] By adopting the technical scheme, the bottom end surface of the main flow channel body 1 is provided with a connecting cap 13, the inside of the connecting cap 13 is spirally connected with a sub-chute 10, the top end of the sub-chute 10 is provided with a threaded connecting ring 15, and the inner wall of the connecting cap 13 is provided with an internal thread 14. By using the connecting cap 13, the internal thread 14, and the threaded connecting ring 15 together, the sub-chute 10 and the main flow channel body 1 are quickly detachable. When detaching, the sub-chute 10 is only needed to be rotated to be spirally out of the inside of the connecting cap 13 through the threaded connecting ring 15. This way is simple to operate and facilitates quick cleaning of the sub-chute 10.

[0034] By adopting the technical scheme, the top surface of the main flow channel body 1 is provided with a feeding pipe 2.

[0035] By adopting the technical scheme, the stirring rod 12 is provided with a plurality of stirring rods 12, and the plurality of stirring rods 12 are equidistantly installed outside the surface of the first main shaft 5. By providing the plurality of stirring rods 12, the glass solution entering the inside of the main flow channel body 1 is stirred to ensure its activity and facilitate the flow in the inside of the main flow channel body 1.

[0036] By adopting the technical scheme, the sub-chute 10 is provided with a plurality of sub-chutes 10, and the plurality of sub-chutes 10 are equidistantly installed at the bottom end surface of the main flow channel body 1. By providing the plurality of sub-chutes 10, the glass solution is branched, and the subsequent manufacturing of glass products is facilitated.

[0037] By adopting the technical scheme, the main flow channel body 1 is provided with a first sealing cover 9 and a second sealing cover 11 at both ends, respectively. By providing the first sealing cover 9 and the second sealing cover 11, the main flow channel body 1 is sealed, and the inside of the main flow channel body 1 is facilitated to be cleaned.

[0038] It should be noted that all kinds of components used in the present application are standard components and can be purchased from the market, the specific connection mode of each part adopts the conventional means such as bolt, rivet and welding in the prior art, the mechanical, parts and electrical equipment adopt the conventional type in the prior art, the circuit connection adopts the conventional connection mode in the prior art, and the electrical equipment is in communication with the external safe power supply, which will not be described in detail here.

[0039] The above is only an embodiment of the present application, and does not limit the patent range of the present application, and any equivalent structure or equivalent process transformation using the content of the present application specification and drawings, or direct or indirect application in other related technical fields, are also included in the patent protection range of the present application.

Claims

1. A channel structure for molten glass preforms, comprising a main channel body (1), characterized in that, A mounting bracket (3) is installed at one end of the top of the main channel body (1). A connecting rod (4) is vertically installed on the bottom surface of the mounting bracket (3). A dual-axis motor (8) is provided at the bottom of the connecting rod (4). A first main shaft (5) is provided at one end of the dual-axis motor (8). One end of the first main shaft (5) extends into the interior of the main channel body (1). A stirring rod (12) is provided on the outer surface of the first main shaft (5) inside the main channel body (1).

2. The channel structure for molten glass preform according to claim 1, characterized in that, The other end of the dual-axis motor (8) is provided with a second main shaft (7), and a brush (6) is provided at the end of the second main shaft (7).

3. The channel structure for molten glass preform according to claim 1, characterized in that, A connecting cap (13) is provided through the bottom surface of the main channel body (1). A secondary channel (10) is spirally connected inside the connecting cap (13). A threaded connecting ring (15) is provided at the top of the secondary channel (10). An internal thread (14) is provided on the inner wall of the connecting cap (13).

4. The channel structure for molten glass preform according to claim 1, characterized in that, A feed pipe (2) is provided through the middle of the top surface of the main channel body (1).

5. The channel structure for molten glass preform according to claim 1, characterized in that, Multiple stirring rods (12) are provided, and multiple stirring rods (12) are installed at equal intervals on the outer surface of the first main shaft (5).

6. The channel structure for molten glass preform according to claim 3, characterized in that, Multiple secondary chutes (10) are provided, and the multiple secondary chutes (10) are installed at equal intervals on the bottom surface of the main channel body (1).

7. The channel structure for molten glass preform according to claim 1, characterized in that, The main channel body (1) is provided with a first sealing cover (9) and a second sealing cover (11) at both ends.