Aquadag shunt tube

By designing a Y-shaped graphite emulsion distribution tube, the problem of unstable graphite emulsion supply was solved, ensuring uniform lubrication of the titanium wire surface and improving the quality of the hot-drawn titanium wire and the durability of the pump.

CN223795081UActive Publication Date: 2026-01-13BAOJI YIBAITE NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202520250814.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-17
Publication Date
2026-01-13
Estimated Expiration
2035-02-17

AI Technical Summary

Technical Problem

Existing graphite emulsion distribution devices are prone to clogging, leading to unstable graphite emulsion supply, affecting the surface treatment effect of titanium wires, and causing defects such as scratches.

Method used

A graphite emulsion distribution pipe is designed, which adopts a Y-shaped main pipeline and bypass pipeline, combined with a threaded sleeve and a wire-threading tube, to ensure that the graphite emulsion is evenly coated on the surface of the titanium wire and flows back into the tank when the graphite pump stops working, thus avoiding resistance.

Benefits of technology

This achieved a stable supply of graphite emulsion, improved the lubrication effect on the titanium wire surface, ensured product quality, and reduced the wear risk of the graphite pump.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of hot drawing titanium wires, in particular to an aquadag flow dividing pipe which comprises a main pipeline and two bypass pipelines, the main pipeline and the two bypass pipelines integrally form a Y-shaped structure, wire penetrating pipes are arranged at the upper ends of the two bypass pipelines respectively, threaded pipe sleeves are arranged on the side portions of the wire penetrating pipes, and the threaded pipe sleeves are connected with the Y-shaped structure. A thread head is arranged at the upper end of the bypass pipeline, the threaded pipe sleeve is connected with the thread head, and the main pipeline, the bypass pipeline, the threaded pipe sleeve and the threading pipe are communicated. The graphite pump is convenient to manufacture and durable, when the graphite pump works, aquadag is pushed up by the graphite pump from the pipeline to flow onto the titanium wire, when the graphite pump stops working, the aquadag flows back into the aquadag groove below the graphite pump, and the aquadag remaining in the pipeline does not have resistance when the graphite pump works next time, so that the aquadag can smoothly reach the titanium wire.
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Description

Technical Field

[0001] This utility model relates to the field of hot-drawn titanium wire technology, and in particular to a graphite emulsion distribution tube. Background Technology

[0002] In the hot drawing process of titanium wire, graphite emulsion, as a highly efficient lubricant, plays a crucial role in improving production efficiency and ensuring product quality. During hot drawing, graphite emulsion not only effectively lubricates and improves drawing efficiency, but also forms a protective film covering the surface of the blank, preventing oxidation at high temperatures and ensuring the smoothness of the titanium wire surface while reducing defects. Furthermore, graphite emulsion exhibits excellent high-temperature resistance, ensuring its stability and lubrication effect under high-temperature environments.

[0003] However, in practical applications, existing graphite emulsion distribution devices have certain limitations. The main problem is that the devices are prone to clogging, which makes the supply of graphite emulsion unstable, thus affecting the surface treatment effect of titanium wires. When graphite emulsion cannot adhere evenly to the surface of titanium wires, it can lead to insufficient lubrication in some areas, causing defects such as scratches on the surface of titanium wires and reducing the product yield. Utility Model Content

[0004] To overcome the shortcomings of the existing technology, the technical problem to be solved is to provide a graphite emulsion distribution tube that allows the graphite emulsion to flow smoothly onto the titanium wire, thereby improving the quality of the hot-drawn titanium wire.

[0005] The technical solution is as follows: a graphite emulsion diversion pipe, including a main pipe and two bypass pipes, the main pipe and the two bypass pipes forming a Y-shaped structure, the upper ends of the two bypass pipes are respectively provided with threaded tubes, the side of the threaded tubes is provided with threaded sleeves, the upper end of the bypass pipes is provided with threads, the threaded sleeves are connected to the threads, and the main pipe, bypass pipes, threaded sleeves and threaded tubes are connected.

[0006] Furthermore, the angle between the bypass pipeline and the main pipeline is less than or equal to 120 degrees.

[0007] Furthermore, the main pipeline is directly connected to the outlet of the graphite pump.

[0008] Furthermore, it also includes a graphite emulsion tank, which includes an upper collecting tank and a lower storage tank. The upper collecting tank and the lower storage tank are connected by a circular hole. The graphite pump is installed in the lower storage tank, and the suction end of the graphite pump is connected to the lower storage tank. The main pipeline is installed in the upper collecting tank, and the lower end of the main pipeline passes through the upper collecting tank and is connected to the outlet end of the graphite pump.

[0009] Furthermore, the upper edge of the upper collecting trough is provided with a feed guide tube and a metal wire for constraining the titanium wire.

[0010] The beneficial effects of this utility model are: This utility model is easy to manufacture and durable. When the graphite pump is working, the graphite emulsion is pushed up from the pipeline by the graphite pump and flows onto the titanium wire. When the pump stops working, the graphite emulsion flows back into the graphite emulsion tank below. Moreover, the graphite emulsion remaining in the pipeline will not encounter any resistance when working again, and the graphite emulsion can smoothly reach the titanium wire.

[0011] In addition, the use of this invention effectively ensures the quality of the titanium wire and makes it less likely to burn out the graphite pump. Attached Figure Description

[0012] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0013] Figure 2 This is a schematic diagram of the graphite emulsion groove of this utility model.

[0014] Figure 3 This is a schematic diagram of the internal structure of the graphite emulsion groove of this utility model.

[0015] Reference numerals: 1_Main pipe, 2a, 2b_Bypass pipe, 3_Threaded pipe, 31_Threaded sleeve, 41_Upper manifold, 42_Lower liquid storage tank, 5_Round hole, 6_Graphite pump, 7_Feed guide pipe, 8_Metal wire. Detailed Implementation

[0016] The technical solution will be further described below with reference to specific embodiments. It should be noted that the terms "up," "down," "left," and "right" used herein refer only to the position of the illustrated structure in the corresponding drawings. The component numbers used herein, such as "first," "second," etc., are merely for distinguishing the described objects and have no sequential or technical meaning. Furthermore, terms such as "connection" and "linkage," unless otherwise specified, include both direct and indirect connections.

[0017] like Figure 1-3As shown, the graphite emulsion distribution pipe includes a main pipe 1 and two bypass pipes 2a and 2b. The main pipe 1 and the two bypass pipes 2a and 2b together form a Y-shaped structure. A threaded tube 3 is installed at the upper end of each of the two bypass pipes 2a and 2b. A threaded sleeve 31 is provided on the side of each threaded tube 3. A threaded end is provided at the upper end of each bypass pipe 2a and 2b, and the threaded sleeve 31 is connected to the threaded end. The main pipe 1, bypass pipes 2a and 2b, threaded sleeve 31, and threaded tube 3 are interconnected. The graphite pump draws the graphite emulsion and sends it to the main pipe 1. After passing through the two bypass pipes 2a and 2b, it is ejected from the two threaded tubes 3. As the titanium wire passes through the threaded tubes 3, its surface is evenly coated with graphite emulsion. When the graphite pump stops working, the graphite emulsion flows back into the pipes. Thus, when the graphite pump is restarted, the operation is very smooth and without resistance.

[0018] In a further preferred embodiment, the main pipeline 1 is directly connected to the outlet of the graphite pump 6 to ensure the smooth flow of the graphite emulsion.

[0019] In one specific embodiment, the manufacturing process is as follows: It mainly uses 25mm welded pipes and 25mm threaded ends. First, the threaded ends are welded to the welded pipes (bypass pipes 2a and 2b), cut to a length of 6-8cm. Then, a cut is made on each side of the cut, with the angle controlled at approximately 25-30°. The same steps are repeated on the other end. Finally, the two welded pipes are welded to the main pipe to obtain the final product. Figure 1 The branch pipe in the middle.

[0020] Furthermore, the angle between the bypass pipes 2a and 2b and the main pipe 1 is less than or equal to 120 degrees.

[0021] In a preferred embodiment, it further includes a graphite emulsion tank, which comprises an upper collecting tank 41 and a lower storage tank 42, connected by a circular hole 5. A graphite pump 6 is installed in the lower storage tank 42, with its suction end connected to the lower storage tank 42. A main pipeline 1 is installed in the upper collecting tank 41, with its lower end passing through the upper collecting tank 41 and connected to the outlet end of the graphite pump 6. The upper edge of the upper collecting tank 41 is provided with a feed guide pipe 7 and a metal wire 8 for constraining the titanium wire. After the graphite emulsion is ejected from both ends of the wire-threading pipe 3, it enters the upper collecting tank 41, then flows down to the lower storage tank 42 along the circular hole 5, and is then re-drawn from the graphite pump, thus circulating the graphite emulsion. In addition, by setting the guide pipe 7 and the metal wire 8, a certain constraint can be formed on the titanium wire to prevent large swings during the feeding process.

[0022] The embodiments described above are merely preferred embodiments of the present invention, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that those skilled in the art can make various modifications, improvements, and substitutions without departing from the inventive concept, and these all fall within the protection scope of the present invention. Therefore, the protection scope of this patent should be determined by the appended claims.

Claims

1. A graphite emulsion distributor, characterized in that, It includes a main pipeline (1) and two bypass pipelines (2a, 2b). The main pipeline (1) and the two bypass pipelines (2a, 2b) form a Y-shaped structure. The upper ends of the two bypass pipelines (2a, 2b) are respectively provided with threaded tubes (3). The side of the threaded tubes (3) is provided with threaded sleeves (31). The upper ends of the bypass pipelines (2a, 2b) are provided with threads. The threaded sleeves (31) are connected to the threads. The main pipeline (1), bypass pipelines (2a, 2b), threaded sleeves (31) and threaded tubes (3) are connected.

2. The graphite emulsion distributor according to claim 1, characterized in that, The angle between the bypass pipelines (2a, 2b) and the main pipeline (1) is less than or equal to 120 degrees.

3. The graphite emulsion distributor according to claim 1, characterized in that, The main pipeline (1) is directly connected to the outlet of the graphite pump (6).

4. The graphite emulsion distributor according to claim 3, characterized in that, It also includes a graphite emulsion tank, which includes an upper collecting tank (41) and a lower storage tank (42). The upper collecting tank (41) and the lower storage tank (42) are connected by a round hole (5). The graphite pump (6) is installed in the lower storage tank (42). The suction end of the graphite pump (6) is connected to the lower storage tank (42). The main pipeline (1) is installed in the upper collecting tank (41). The lower end of the main pipeline (1) passes through the upper collecting tank (41) and is connected to the outlet end of the graphite pump (6).

5. The graphite emulsion distributor according to claim 4, characterized in that, The upper edge of the upper collecting trough (41) is provided with a feed guide tube (7) and a metal wire (8) for constraining the titanium wire.