Nickel alloy wire grinding groove

By setting a cleaning part and an ultrasonic dust cleaner at the wire outlet hole of the nickel alloy wire grinding groove, the problem of sand and gravel being brought out to pollute the environment is solved, the surface of the nickel alloy wire is efficiently cleaned, and the product quality is improved.

CN223477140UActive Publication Date: 2025-10-28JIANGSU QIDI ALLOY
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202423145951.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-19
Publication Date
2025-10-28
Estimated Expiration
2034-12-19

AI Technical Summary

Technical Problem

In the existing nickel alloy wire grinding trough, sand and gravel are easily pulled out by the nickel alloy wire during the grinding process, polluting the working environment and affecting the surface cleanliness of the nickel alloy wire.

Method used

A cleaning part is set in the installation ring at the wire outlet, and is sealed with an annular brush or an annular sponge. In combination with an ultrasonic cleaner and a vacuum cleaner, the cleaning part fits tightly to the surface of the nickel alloy wire, removes residual impurities through ultrasonic vibration, and the vacuum cleaner collects dust.

Benefits of technology

Effectively reduce the sand and gravel being carried out, improve the surface cleanliness of nickel alloy wire, and ensure the quality of nickel alloy wire and environmental hygiene.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223477140U_ABST
    Figure CN223477140U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of grinding devices, in particular to a nickel alloy wire grinding groove which comprises a storage shell filled with gravel, a wire inlet hole is formed in one end of the storage shell, a wire outlet hole is formed in the other end of the storage shell, a nickel alloy wire sequentially penetrates through the wire inlet hole and the wire outlet hole, and an installation ring is fixedly arranged on the outer side of the wire outlet hole. A cleaning part is arranged in the mounting ring, the nickel alloy wire penetrates through the cleaning part, the cleaning part is an annular brush or an annular sponge arranged in the mounting ring, a through hole allowing the nickel alloy wire to penetrate through is formed in the center of the annular brush or the annular sponge, and the diameter of the through hole is not larger than that of the nickel alloy wire; the cleaning part is an annular brush or an annular sponge arranged in the mounting ring, a through hole allowing the nickel alloy wire to penetrate through is formed in the center of the annular brush or the annular sponge, and the diameter of the through hole is not larger than that of the nickel alloy wire. According to the polishing groove, the plug composed of the mounting ring and the cleaning part is arranged at the wire outlet hole, so that the condition that gravel is brought out can be reduced, and the effect of removing impurities on the surface of the nickel alloy wire can be further improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of grinding equipment technology, and in particular to a grinding groove for nickel alloy wire. Background Technology

[0002] After the nickel alloy wire is produced, there will be impurities on its surface. To solve this problem, the wire grinding groove was developed. Its principle is to use the sand and gravel in the groove to grind the surface of the nickel alloy wire to remove the impurities.

[0003] However, when grinding nickel alloy wires in existing grinding tanks, the abrasive particles inside the tank are carried out as the nickel alloy wires pass through the grinding tank. This results in abrasive dust particles adhering to the surface of the nickel alloy wires after grinding, and the carried-out abrasive particles polluting the working environment. Utility Model Content

[0004] To address the problem that abrasive grains are easily carried out by the nickel alloy wires passing through the existing grinding grooves, this invention provides a nickel alloy wire grinding groove. By setting a plug consisting of an installation ring and a cleaning part at the wire outlet, not only can the amount of abrasive grains carried out be reduced, but the removal effect of impurities on the surface of the nickel alloy wire can also be further improved.

[0005] This utility model provides a nickel alloy wire grinding groove, including a storage shell filled with abrasive. The storage shell is a hollow shell with an opening on the top. One end of the storage shell has a wire inlet hole, and the other end has a wire outlet hole. The nickel alloy wire passes through the wire inlet hole and the wire outlet hole in sequence. A mounting ring is fixedly installed on the outside of the wire outlet hole, and a cleaning part is installed inside the mounting ring. The nickel alloy wire passes through the cleaning part. The cleaning part not only seals the gap between the wire outlet hole and the nickel alloy wire, reducing the abrasive that is expelled by the nickel alloy wire, but also cleans the surface of the polished nickel alloy wire, improving the quality of the nickel alloy wire.

[0006] Furthermore, the cleaning unit is an annular brush or annular sponge housed within the mounting ring. The annular brush or sponge has a through-hole at its center through which a nickel alloy wire can pass, the diameter of which is no larger than the diameter of the nickel alloy wire. This allows the nickel alloy wire to make close contact with the cleaning unit, improving surface cleaning efficiency.

[0007] Furthermore, a cleaning shell is provided at one end of the storage shell near the wire outlet, and the cleaning shell is fixedly connected to the storage shell via a bracket. The cleaning shell is used to further clean the surface of the polished nickel alloy wire.

[0008] Furthermore, the cleaning housing is equipped with several ultrasonic cleaners, which are distributed along the conveying direction of the nickel alloy wire. The ultrasonic vibrations cause residual impurities on the surface of the nickel alloy wire to fall off.

[0009] Furthermore, the cleaning housing is equipped with a pressure plate positioned along the conveying direction of the nickel alloy wire, and several ultrasonic cleaners are evenly distributed on the pressure plate. The pressure plate facilitates the installation of the ultrasonic cleaners.

[0010] Furthermore, an adjusting screw is screwed onto the cleaning shell. The adjusting screw passes through the cleaning shell and is rotatably connected to a pressure plate placed inside the cleaning shell. The distance between the pressure plate and the nickel alloy wire is adjusted by the adjusting screw screw on the cleaning shell, that is, the space under the pressure plate is adjusted, so that the ultrasonic waves can be concentrated to clean the nickel alloy wire inside the shell.

[0011] Furthermore, a vacuum cleaner is installed on the outside of the cleaning housing, and a U-shaped air guide box is installed inside the cleaning housing. The U-shaped air guide box has a hollow air guide cavity, and the vacuum cleaner is connected to the air guide cavity of the U-shaped air guide box through an air guide tube. The inner wall of the U-shaped air guide box has suction holes. Dust particles generated during the cleaning process are collected through the U-shaped air guide box and then adsorbed by the vacuum cleaner.

[0012] Furthermore, a pressure plate is placed above the U-shaped air guide box, and the pressure plate slides longitudinally along the U-shaped air guide box via an adjusting screw. Through the cooperation of the pressure plate and the U-shaped air guide box, the space containing the nickel alloy wire is adjusted.

[0013] The beneficial effects of this utility model are as follows:

[0014] This utility model provides a grinding groove for nickel alloy wire. By setting a plug composed of a cleaning part, it can not only seal the wire outlet hole and reduce the situation where sand and gravel are carried out from the storage shell, but also further clean the surface of the nickel alloy wire after sand and gravel grinding, thereby effectively ensuring the cleaning effect of the nickel alloy wire and improving the quality of the nickel alloy wire. Attached Figure Description

[0015] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0016] Figure 1 This is a schematic diagram of the external structure of the grinding groove;

[0017] Figure 2 This is a schematic diagram of the internal structure of the polishing groove;

[0018] Figure 3 This is a schematic diagram showing the fit between the U-shaped air guide box and the pressure plate;

[0019] In the diagram: 1. Storage shell, 2. Wire inlet hole, 3. Wire outlet hole, 4. Mounting ring, 5. Cleaning section, 6. Nickel alloy wire, 7. Through hole, 8. Cleaning shell, 9. Support, 10. Ultrasonic dust cleaner, 11. Pressure plate, 12. Vacuum cleaner, 13. Air guide tube, 14. U-shaped air guide box, 15. Air guide chamber, 16. Dust suction hole, 17. Adjusting screw. Detailed Implementation

[0020] The technical solution of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are some embodiments of this utility model, but not all embodiments.

[0021] To prevent sand and gravel from being carried out of the storage shell 1 by the moving nickel alloy wire 6, a nickel alloy wire grinding groove is designed, such as... Figure 1 As shown, the device includes a storage shell 1 filled with sand and gravel. The storage shell 1 is a hollow shell with an opening on the top. One end of the storage shell 1 has a wire inlet hole 2, and the other end has a wire outlet hole 3. A nickel alloy wire 6 passes through the wire inlet hole 2 and the wire outlet hole 3 in sequence. The nickel alloy wire 6 is inserted into the storage shell 1 through the wire inlet hole 2 and comes into contact with the sand and gravel. Then it exits through the wire outlet hole 3. As the nickel alloy wire 6 moves inside the storage shell 1, its surface is polished by friction with the sand and gravel.

[0022] like Figure 2 As shown, the core of this technical solution lies in the fact that an installation ring 4 is fixedly installed on the outside of the wire outlet hole 3, and a cleaning part 5 is installed inside the installation ring 4, through which the nickel alloy wire 6 passes. The cleaning part 5 is located outside the wire outlet hole 3 and is an annular brush or annular sponge installed inside the installation ring 4. The annular brush or annular sponge has a through hole 7 in the center for the nickel alloy wire 6 to pass through. The diameter of the through hole 7 is not greater than the diameter of the nickel alloy wire 6, so that the cleaning part 5 can fit tightly against the nickel alloy wire 6. When the nickel alloy wire 6 passes through the cleaning part 5, the sand and dust particles on the surface of the nickel alloy wire 6 can be cleaned by the cleaning part 5, reducing the sand and dust particles remaining on the surface of the nickel alloy wire 6 and reducing the sand and dust particles carried out by the nickel alloy wire 6 at the wire outlet hole 3.

[0023] To further clean impurities from the surface of the nickel alloy wire 6, a cleaning shell 8 is provided at one end of the storage shell 1 near the wire outlet 3. The cleaning shell 8 is fixedly connected to the storage shell 1 via a bracket 9. Specifically, the cleaning shell 8 contains several ultrasonic cleaners 10, which are distributed along the conveying direction of the nickel alloy wire 6. The ultrasonic cleaners 10 emit ultrasonic waves into the cleaning shell 8. Utilizing the propagation of ultrasonic waves in air or other media, the sand and dust particles on the surface of the nickel alloy wire 6 vibrate and fall off. Especially when cleaning nickel alloy wire 6 woven from multiple strands of wire, ultrasonic waves can effectively vibrate and clean the sand and dust particles remaining between the multiple strands of nickel alloy wire.

[0024] The cleaning housing 8 contains a pressure plate 11 positioned along the conveying direction of the nickel alloy wire 6, with several ultrasonic cleaners 10 evenly distributed on the pressure plate 11. An adjusting screw 17 is screwed onto the cleaning housing 8, passing through it and rotatably connected to the pressure plate 11 inside. Rotating the adjusting screw 17 adjusts the height of the pressure plate 11. When the height of the pressure plate 11 is adjusted, the space inside the cleaning housing 8 below the pressure plate 11 is adjusted accordingly, thereby concentrating the ultrasonic waves radiated inside the cleaning housing 8 to focus on cleaning the nickel alloy wire 6, thus improving the cleaning effect.

[0025] like Figure 2 and 3 As shown, a vacuum cleaner 12 is also installed on the outside of the cleaning housing 8, and a U-shaped air guide box 14 is installed inside the cleaning housing 8. The U-shaped air guide box 14 has a hollow air guide cavity 15. The vacuum cleaner 12 is connected to the air guide cavity 15 of the U-shaped air guide box 14 through the air guide tube 13. The inner wall of the U-shaped air guide box 14 has suction holes 16. When the vacuum cleaner 12 is turned on, a negative pressure is formed. Under the action of negative pressure, the sand and dust particles cleaned from inside the cleaning housing 8 will enter the interior of the U-shaped air guide box 14 through the suction holes 16, and then enter the vacuum cleaner 12 through the air guide tube 13, thereby reducing the residue of sand and dust particles inside the cleaning housing 8.

[0026] The pressure plate 11 is placed on top of the U-shaped air guide box 14, and the pressure plate 11 slides longitudinally along the U-shaped air guide box 14 via the adjusting screw 17. By adjusting the screw 17 to drive the pressure plate 11 to move vertically, the space formed between the pressure plate 11 and the U-shaped air guide box 14 can be adjusted, thereby concentrating the ultrasonic waves to clean the nickel alloy wire 6.

[0027] The above description is only illustrative and not restrictive of the present invention. Those skilled in the art will understand that many modifications, changes or equivalents may be made without departing from the spirit and scope defined by the appended claims, but all of them will fall within the scope of protection of the present invention.

Claims

1. A grinding groove for nickel alloy wire, characterized in that: The material includes a storage shell (1) filled with sand and gravel. The storage shell (1) is a hollow shell with an opening on the upper side. One end of the storage shell (1) is provided with a wire inlet hole (2) and the other end is provided with a wire outlet hole (3). A nickel alloy wire (6) passes through the wire inlet hole (2) and the wire outlet hole (3) in sequence. An installation ring (4) is fixedly provided on the outside of the wire outlet hole (3). A cleaning part (5) is provided inside the installation ring (4). The nickel alloy wire (6) passes through the cleaning part (5). The cleaning part (5) is an annular brush or annular sponge set in the mounting ring (4). The annular brush or annular sponge has a through hole (7) in the center through which the nickel alloy wire (6) can pass. The diameter of the through hole (7) is not greater than the diameter of the nickel alloy wire (6).

2. The nickel alloy wire grinding groove according to claim 1, characterized in that: The storage shell (1) is provided with a cleaning shell (8) at one end near the wire outlet (3), and the cleaning shell (8) is fixedly connected to the storage shell (1) by a bracket (9).

3. The nickel alloy wire grinding groove according to claim 2, characterized in that: The cleaning shell (8) is equipped with several ultrasonic cleaners (10), which are distributed along the conveying direction of the nickel alloy wire (6).

4. The nickel alloy wire grinding groove according to claim 3, characterized in that: The cleaning shell (8) is provided with a pressure plate (11) arranged along the conveying direction of the nickel alloy wire (6), and a number of ultrasonic cleaners (10) are evenly distributed on the pressure plate (11).

5. A nickel alloy wire grinding groove according to claim 4, characterized in that: An adjusting screw (17) is screwed onto the cleaning shell (8). The adjusting screw (17) passes through the cleaning shell (8) and is rotatably connected to the pressure plate (11) placed inside the cleaning shell (8).

6. A nickel alloy wire grinding groove according to claim 5, characterized in that: A vacuum cleaner (12) is also provided on the outside of the cleaning shell (8). A U-shaped air guide box (14) is provided inside the cleaning shell (8). The U-shaped air guide box (14) has a hollow air guide cavity (15). The vacuum cleaner (12) is connected to the air guide cavity (15) of the U-shaped air guide box (14) through an air guide pipe (13). A dust suction hole (16) is opened on the inner wall of the U-shaped air guide box (14).

7. A grinding groove for nickel alloy wire according to claim 6, characterized in that: The pressure plate (11) is placed on top of the U-shaped air guide box (14), and the pressure plate (11) slides longitudinally along the U-shaped air guide box (14) by adjusting the screw (17).