Titanium alloy part machining device

By designing an automated titanium alloy processing device and adopting adaptive fit design of limiting mechanism and polishing components, the problems of low efficiency and uneven quality of traditional polishing equipment are solved, and efficient and uniform polishing effect is achieved, improving the corrosion resistance, wear resistance and appearance quality of the product.

CN223172683UActive Publication Date: 2025-08-01BAOJI YINGZHIBO METAL MATERIALS CO LTD
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Patent Information

Application Number
CN202422456799.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-11
Publication Date
2025-08-01
Estimated Expiration
2034-10-11

AI Technical Summary

Technical Problem

During the processing of existing titanium alloys, the polishing equipment is inefficient, the polishing quality is uneven, and manual operation leads to poor consistency, which affects the product's corrosion resistance, wear resistance and appearance quality.

Method used

A titanium alloy processing device including a frame body, baffle conveyor, limiting mechanism and polishing components is designed. It adopts automatic polishing processing and calibrates the workpiece position through the limiting mechanism. The polishing components adopt a sliding table structure and adaptive fit design, combined with environmentally friendly dust removal function to achieve continuous, uniform and efficient processing of the workpiece.

Benefits of technology

It realizes automatic polishing of titanium alloy parts, improves processing efficiency and polishing quality, ensures the consistency and uniformity of workpiece positions, reduces environmental pollution, and improves the overall performance and appearance quality of the product.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a titanium alloy part machining device which comprises a frame body, a baffle conveyor and a limiting mechanism are arranged at the top of the frame body, the limiting mechanism is located at the top of the baffle conveyor, the conveying direction of the limiting mechanism is consistent with that of the baffle conveyor, and the limiting mechanism is used for calibrating the position of a workpiece. The two sides of the baffle conveyor are each provided with at least one polishing assembly, and each polishing assembly comprises a horizontal sliding table arranged on the frame body, a vertical sliding table arranged on the horizontal sliding table and a polishing machine arranged on the vertical sliding table. According to the titanium alloy part machining device, through the integrated design, automatic polishing treatment on a titanium alloy support is achieved, the baffle conveyor and the limiting mechanism are used in cooperation, the workpiece can be conveyed accurately and stably, the position of the workpiece can be calibrated, and continuity and consistency of the polishing process are guaranteed. Meanwhile, the polishing assemblies arranged on the two sides are of a sliding table structure, the polishing position can be flexibly adjusted, and the polishing efficiency is improved.
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Description

Technical Field

[0001] The utility model relates to the field of titanium alloy processing machinery and equipment, and particularly relates to a processing device for titanium alloy parts. Background Art

[0002] In the field of titanium alloy part processing, especially for parts with structures such as T-shaped or L-shaped brackets, their processing accuracy and surface quality are crucial for improving the overall performance and aesthetics of the product. In the traditional titanium alloy part processing process, polishing the welded bracket is a key step, which not only affects the corrosion resistance and wear resistance of the part, but also directly relates to the appearance quality of the product. However, most of the existing polishing equipment has problems such as low efficiency and uneven polishing quality.

[0003] Specifically, traditional polishing methods often use manual or semi-automatic equipment to polish parts one by one. This method not only has a large labor intensity and low efficiency, but also due to the existence of human factors, it is difficult to ensure the consistency and uniformity of polishing, thus affecting the polishing quality. Summary of the Utility Model

[0004] In order to overcome the shortcomings existing in the above background art, the utility model provides a processing device for titanium alloy parts, which can ensure the consistency and uniformity of processing and improve the processing efficiency.

[0005] The technical solution is: a processing device for titanium alloy parts, including a frame body. A baffle conveyor and a limiting mechanism are arranged at the top of the frame body. The limiting mechanism is located at the top of the baffle conveyor and is in the same direction as the conveying direction of the baffle conveyor, and is used to calibrate the position of the workpiece. At least one polishing component is respectively arranged on both sides of the baffle conveyor. The polishing component includes a horizontal slide table arranged on the frame body, a vertical slide table arranged on the horizontal slide table, and a polishing machine arranged on the vertical slide table.

[0006] Further, the limiting mechanism includes two symmetrically arranged retaining pieces, and a plurality of lifting frames for installing the retaining pieces, including: a vertical shaft arranged on the frame body, a horizontal shaft sleeved on the vertical shaft, one end of the horizontal shaft is fixedly connected with the retaining piece, and the vertical shaft and the horizontal shaft are fastened by a screw.

[0007] Further, one end of the retaining piece close to the feeding direction of the baffle conveyor is flared and opens to both sides.

[0008] Further, the polishing machine includes a motor, a sleeve rod, a shaft rod and a polishing wheel. One end of the sleeve rod is connected with the motor shaft, and the other end is sleeved with the shaft rod. A spring is arranged between the bottom of the shaft rod and the sleeve rod. A through key hole is arranged radially on the sleeve rod, and a key pin is slidably arranged in the key hole. The key pin is fixedly connected with the shaft rod, and the polishing wheel is arranged on the shaft rod.

[0009] Furthermore, the upper end face of the frame body is a hollow structure, and a blower with an air suction port facing its upper end face is provided at the bottom of the frame body.

[0010] Furthermore, it further includes a dust collection part, including: an inclined plate provided at the bottom of the frame body, and an integrated box provided at the bottom of the inclined plate.

[0011] Furthermore, it further includes a material transfer part, including: an inclined platform provided at the discharge end of the baffle conveyor, and a belt conveyor provided at the lower end of the inclined platform.

[0012] The beneficial effects of the present utility model are as follows:

[0013] 1. The titanium alloy part processing device proposed by the present utility model realizes the automatic polishing treatment of titanium alloy brackets through an integrated design. The combined use of the baffle conveyor and the limiting mechanism can accurately and stably convey and calibrate the position of the workpiece, ensuring the continuity and consistency of the polishing process. At the same time, the polishing components arranged on both sides adopt a sliding table structure, which can flexibly adjust the polishing position and improve the polishing efficiency.

[0014] 2. The limiting mechanism of the present utility model adopts a symmetrically arranged baffle design, which, in combination with the lifting frame and the screw fastening structure, can be quickly adjusted according to workpieces of different sizes, ensuring that the workpiece is always in the best position during the polishing process. In addition, the design of the front end of the baffle being flared is conducive to guiding the workpiece to smoothly enter the polishing area, reducing the polishing quality problems caused by position deviation.

[0015] 3. The design of the polishing machine part of the present utility model fully considers the dynamic changes during the polishing process. Through the spring connection and the pin key fixing structure between the sleeve rod and the shaft rod, the polishing wheel can adaptively fit the surface of the workpiece, effectively improving the polishing quality and uniformity. At the same time, this design also reduces the influence of workpiece shape changes on the polishing effect during the polishing process.

[0016] 4. The present utility model has an environmental protection dust removal function. The hollow design at the upper end of the frame body and the air suction port of the blower at the bottom, in combination with the design of the dust collection part and the inclined plate, can effectively collect and process the dust and debris generated during the polishing process, improving the working environment and reducing environmental pollution.

[0017] 5. The design of the material transfer part of the present utility model enables the workpiece after polishing to automatically slide down to the inclined platform and be conveyed to the next process through the belt conveyor, reducing manual intervention and improving the smoothness and efficiency of the overall processing flow. Description of the Drawings

[0018] Figure 1 It is a three-dimensional structural schematic diagram of the present utility model.

[0019] Figure 2This is a three-dimensional structural schematic diagram of the rear view angle of the present utility model.

[0020] Figure 3 This is a three-dimensional structural schematic diagram of the baffle and the lifting frame of the present utility model.

[0021] Figure 4 This is a structural schematic diagram of two polishing components of the present utility model, with a T-shaped workpiece between them.

[0022] Figure 5 This is a structural schematic diagram of the polishing machine of the present utility model, and the sleeve rod is cut along its axis.

[0023] Figure 6 This is a schematic diagram showing the inclined plate and the integrated box after one of the side plates of the hidden frame body of the present utility model is removed.

[0024] Names and serial numbers of components in the figure: 1 - frame body, 2 - baffle conveyor, 3 - limiting mechanism, 31 - baffle, 32 - lifting frame, 321 - vertical shaft, 322 - horizontal shaft, 323 - screw rod, 4 - polishing component, 41 - horizontal slide table, 42 - vertical slide table, 43 - polishing machine, 431 - motor, 432 - sleeve rod, 433 - shaft rod, 434 - polishing wheel, 435 - keyhole, 436 - pin key, 437 - spring, 5 - dust collection part, 51 - inclined plate, 52 - integrated box, 7 - material transfer part, 71 - inclined platform, 72 - belt conveyor, 6 - fan. Specific embodiments

[0025] The technical solution of the present utility model will be further described below with reference to the accompanying drawings.

[0026] As Figure 1-2 shown in the titanium alloy part processing device, specifically including a frame body 1, a baffle conveyor 2 and a limiting mechanism 3 are provided on the top of the frame body 1. In this embodiment, a notch that can accommodate the baffle conveyor 2 is opened along the length direction of the upper end surface of the frame body 1, so that after the baffle conveyor 2 is placed, the upper end surface of the baffle conveyor 2 is flush with or slightly higher than the upper end surface of the frame body 1. The length of the baffle conveyor 2 is not less than the length of the frame body 1. The limiting mechanism 3 is located on the top of the baffle conveyor 2 and is in the same direction as the conveying direction of the baffle conveyor 2 for calibrating the position of the workpiece. Preferably, the limiting mechanism 3 is arranged directly above the baffle conveyor 2, and at least one polishing component 4 is arranged on each side of the baffle conveyor 2. Among them, the polishing component 4 includes a horizontal slide table 41 arranged on the frame body 1, a vertical slide table 42 arranged on the horizontal slide table 41, and a polishing machine 43 arranged on the vertical slide table 42. As Figure 4As shown in the figure, the horizontal slide table 41 includes a horizontal slide table body and a horizontal air cylinder for driving the horizontal slide table body to slide. Similarly, the vertical slide table 42 includes a vertical slide table 42 body and a vertical air cylinder for driving the vertical slide table 42 body. Through the driving of the horizontal slide table 41 and the vertical slide table 42, the polishing machine 43 can move in the horizontal and vertical directions.

[0027] Place the welded T-shaped or L-shaped titanium alloy workpieces on the baffle conveyor 2, with one placed between two baffles. As the baffle conveyor 2 moves forward, the workpieces are accurately and stably conveyed and their positions calibrated in cooperation with the limiting mechanism 3, ensuring the continuity and consistency of the polishing process. When the workpieces pass by the polishing assemblies 4 on both sides, they are polished by the polishing machine 43. The polishing machine 43 moves in the horizontal and vertical directions. On the one hand, it can approach the workpieces, and on the other hand, it can improve the polishing quality of the polished surface through reciprocating movement. Due to the mutual cooperation of the baffle conveyor 2 and the limiting mechanism 3, the relative positions of the polished workpieces and the polishing machine 43 are basically the same. Therefore, the processing quality of workpieces in the same batch is quite comparable. Finally, the polished workpieces are conveyed out of the frame 1 by the baffle conveyor 2.

[0028] For the specific structure of the limiting mechanism 3 of this device, refer to Figure 3 As shown in the figure, it includes two symmetrically arranged baffles 31 and a plurality of lifting frames 32 for installing the baffles 31. Among them, the lifting frames 32 are arranged along the length direction of the baffles 31. In a specific embodiment, it includes a vertical shaft 321 and a horizontal shaft 322. The vertical shaft 321 is fixed on the upper end surface of the frame 1 and is perpendicular to it. One end of the horizontal shaft 322 is sleeved on the vertical shaft 321, and the other end is fixedly connected to the baffle 31. The sleeved vertical shaft 321 and horizontal shaft 322 are fastened by a screw 323. By adjusting the height of the horizontal shaft 322 on the vertical shaft 321, the height of the baffle 31 can be adjusted, aiming to quickly adjust according to workpieces of different sizes to ensure that the workpieces are always in the best position during the polishing process, improving the adaptability of this device.

[0029] In addition, it should also be noted that one end of the baffle 31 close to the feeding direction of the baffle conveyor 2 is flared and opens to both sides. This design is beneficial to guiding the workpieces to smoothly enter the polishing area and reducing polishing quality problems caused by position deviation.

[0030] As Figure 5The specific structure of the polishing machine 43 of the present device is shown, which includes a motor 431, a sleeve rod 432, a shaft rod 433 and a polishing wheel 434. Specifically, in this embodiment, one end of the sleeve rod 432 is connected to the motor 431 by shaft transmission, and the other end of the sleeve rod 432 is sleeved with the shaft rod 433. The diameter of the shaft rod 433 is smaller than that of the sleeve rod 432, and the two form a telescopic rod structure. A spring 437 is provided between the inner bottom of the sleeve rod 432 and the shaft rod 433, and the polishing wheel 434 is arranged on the shaft rod 433. In addition, a through key hole 435 is provided radially on the sleeve rod 432. The key hole 435 extends to both vertical sides. A key 436 is provided in the key hole 435. The key 436 can slide up and down in the key hole 435. The key 436 is fixed on the shaft rod 433, and the two slide or rotate synchronously. A hole for inserting the key 436 is provided radially on the shaft rod 433, and the hole and the key 436 are connected by a plug-in and unplugging method. Through the connection of the spring 437 between the sleeve rod 432 and the shaft rod 433 and the fixing structure of the key 436, the adaptive fitting of the polishing wheel to the surface of the workpiece is realized, effectively improving the polishing quality and uniformity. In addition, the plug-in and unplugging connection of the key 436 facilitates the disassembly of the shaft rod 433 and the replacement of the spring 437 and the polishing wheel 434.

[0031] As Figure 6 shown, in a preferred embodiment, the upper end surface of the frame 1 is designed as a hollow structure. The overall structure of the frame 1 is box-shaped. A blower 6 is provided at the bottom of the frame 1. The suction port of the blower 6 faces the upper end surface of the frame 1, and is used to suck the dust and debris generated by polishing into the interior of the frame 1 for collection. In addition, a sloping plate 51 is also provided at the bottom of the frame 1 of the present device, and an integrated box 52 is provided at the bottom of the sloping plate 51. After the dust and debris are sucked in, they fall into the integrated box 52 along the sloping plate 51 for collection.

[0032] As Figure 2 shown, the present device further includes a material transfer part 7. The material transfer part 7 includes a sloping platform 71 provided at the discharge end of the baffle conveyor 2, and a belt conveyor 72 provided at the lower end of the sloping platform 71. Such a design can enable the workpiece after polishing to automatically slide down to the sloping platform 71 and be conveyed to the next process through the belt conveyor 72, reducing manual intervention and improving the smoothness and efficiency of the overall processing flow.

[0033] The above embodiments only represent the preferred embodiments of the present invention, and the description thereof is relatively specific and detailed, but it should not be construed as a limitation to the scope of the patent of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present invention, several deformations, improvements and substitutions can be made, and these all belong to the protection scope of the present invention. Therefore, the protection scope of the patent of the present invention should be subject to the appended claims.

Claims

1. A titanium alloy part processing device, characterized in that, It includes a frame body (1). At the top of the frame body (1), there is a baffle conveyor (2) and a limiting mechanism (3). The limiting mechanism (3) is located at the top of the baffle conveyor (2) and is in the same conveying direction as the baffle conveyor (2), and is used to calibrate the position of the workpiece. At least one polishing assembly (4) is respectively arranged on both sides of the baffle conveyor (2). The polishing assembly (4) includes a horizontal slide (41) arranged on the frame body (1), a vertical slide (42) arranged on the horizontal slide (41), and a polishing machine (43) arranged on the vertical slide (42).

2. The titanium alloy part processing device according to claim 1, characterized in that, The limiting mechanism (3) includes two symmetrically arranged retaining pieces (31), and a plurality of lifting frames (32) for installing the retaining pieces (31), including: A vertical shaft (321) arranged on the frame body (1), a horizontal shaft (322) sleeved on the vertical shaft (321). One end of the horizontal shaft (322) is fixedly connected to the retaining piece (31), and the vertical shaft (321) and the horizontal shaft (322) are fastened by a screw (323).

3. The titanium alloy part processing device according to claim 2, characterized in that, One end of the retaining piece (31) close to the feeding direction of the baffle conveyor (2) is flared and opens to both sides.

4. The titanium alloy part processing device according to claim 1, characterized in that, The polishing machine (43) includes a motor (431), a sleeve rod (432), a shaft rod (433), and a polishing wheel (434). One end of the sleeve rod (432) is axially connected to the motor (431), and the other end is sleeved with the shaft rod (433). A spring (437) is arranged between the bottom of the shaft rod (433) and the sleeve rod (432). A through key hole (435) is arranged radially on the sleeve rod (432). A key pin (436) is slidably arranged in the key hole (435), and the key pin (436) is fixedly connected to the shaft rod (433). The polishing wheel (434) is arranged on the shaft rod (433).

5. The titanium alloy part processing device according to any one of claims 1-4, characterized in that, The upper end surface of the frame body (1) is a hollow structure, and a blower (6) with an air suction port facing its upper end surface is arranged at the bottom of the frame body (1).

6. The titanium alloy part processing device according to claim 5, characterized in that, It also includes a dust collection part (5), including: An inclined plate (51) arranged at the bottom of the frame body (1), and an integrated box (52) is arranged at the bottom of the inclined plate (51).

7. The titanium alloy part processing device according to claim 1, characterized in that, It also includes a material transfer part (7), including: An inclined platform (71) arranged at the discharge end of the baffle conveyor (2), and a belt conveyor (72) arranged at the lower end of the inclined platform (71).