Turnover device for part machining

By designing a parts processing flipping device that includes a base, a placement platform, a telescopic cylinder, and a flipping mechanism, the problems of unstable parts fixation and incomplete flipping are solved, realizing automatic flipping and multi-directional fixation, thus improving processing efficiency and results.

CN224027617UActive Publication Date: 2026-03-24GUANGZHOU ZHUHUI MOLD MACHINERY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-26
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

Existing processing equipment cannot fix parts stably, making it difficult to achieve full-range rotation. It requires manual operation, resulting in high labor intensity and low processing efficiency.

Method used

A parts processing and flipping device was designed, which includes a base, a placement platform, a telescopic cylinder, a rotating mechanism, and a flipping mechanism. Through the cooperation of the telescopic cylinder and the hydraulic push rod, the automatic flipping and multi-directional fixation of the parts are achieved by using a drive motor and worm gear transmission.

Benefits of technology

It enables automatic rotation of parts, reduces manual operation, lowers labor intensity, and improves processing efficiency and results.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of part processing, and discloses a turnover device for part processing, which comprises a base and a placing table which is arranged on the upper surface of the base and is fixed through a supporting column, telescopic air cylinders symmetrically arranged and a mounting plate fixed to the output ends of the telescopic air cylinders are arranged above the containing table, an extrusion plate is arranged on one side of the mounting plate, and a rotating mechanism capable of driving the telescopic air cylinders to horizontally rotate in multiple directions is mounted on the base. According to the turnover device for part machining, the parts do not need to be turned over manually, so that the labor intensity of workers is relieved, a large amount of manpower and time are not needed, meanwhile, all-directional face turnover of the parts can be achieved, the turnover efficiency is improved, and the turnover device for part machining is suitable for large-scale popularization and application. And the part machining effect is improved, and the actual use requirement is met.
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Description

Technical Field

[0001] This utility model relates to the field of parts processing technology, specifically to a parts processing flipping device. Background Technology

[0002] With the rapid development of my country's national economy, the requirements for the processing of various mechanical parts have also increased. The processing of mechanical parts is divided into many types, such as grinding. Most of the existing mechanical parts are too heavy, and the original fixtures cannot hold the parts stably enough. Therefore, it is necessary to design a part processing flipping device.

[0003] Current processing equipment has a relatively simple method of fixing parts, which is not conducive to the rotation of parts. Rotation requires manual operation, which requires a lot of manpower and time. Moreover, it is difficult to achieve full rotation operation, which reduces the processing effect of parts. Therefore, we propose a rotation device for parts processing to solve the above-mentioned problems. Utility Model Content

[0004] In view of the shortcomings of the existing technology, this utility model provides a flipping device for parts processing, which solves the problems of the current processing device having a simple fixation of parts, which is not conducive to the flipping of parts, requiring manual flipping, requiring a lot of manpower and time, and making it difficult to achieve full-range flipping operation, thus reducing the processing effect of parts.

[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: a flipping device for processing parts, including a base and a placement platform fixed on the upper surface of the base by a support column, wherein telescopic cylinders arranged symmetrically and a mounting plate fixed to the output end of the telescopic cylinders are provided above the placement platform, and a pressing plate is provided on one side of the mounting plate;

[0006] The base is equipped with a rotating mechanism that can drive telescopic cylinders to rotate horizontally in multiple directions. The rotating mechanism enables two sets of telescopic cylinders to clamp and fix different surfaces of the part.

[0007] The rotating mechanism is equipped with a flipping mechanism that can flip the telescopic cylinders. The flipping mechanism can drive two sets of telescopic cylinders to flip the clamped parts.

[0008] Preferably, the rotating mechanism includes an annular slide rail fixedly mounted on the upper surface of the base by bolts, a sliding seat that slides on the annular slide rail by a sliding sleeve, and threaded pins disposed at both ends of the sliding seat;

[0009] The sliding seat is rotatably connected by bearings and support columns, and the upper surface of the base is provided with multiple sets of equidistant locking grooves that are adapted to the threaded pins along the trajectory of an annular slide rail.

[0010] Preferably, the two ends of the sliding seat are threadedly connected by threaded holes and threaded pins, and the threaded pins are screwed into the locking grooves, which can be used to lock the position of the sliding seat and the annular slide rail.

[0011] Preferably, the flipping mechanism includes hydraulic push rods bolted to the top of both ends of the sliding seat, an L-shaped plate fixed to the output end of the hydraulic push rods, and a drive motor fixed to the surface of the L-shaped plate;

[0012] The telescopic cylinder surface is fixed with a rotating shaft via a connecting plate. The rotating shaft is rotatably connected to an L-shaped plate via a bearing. One end of the rotating shaft is fixed with a worm gear via screws. The output end of the drive motor is fixed with a worm gear that meshes with the worm gear.

[0013] Preferably, the surface of the L-shaped plate near the worm is fixed with symmetrically arranged strip plates, and the two ends of the worm are rotatably connected to the two sets of strip plates respectively through bearings.

[0014] Preferably, one side of the mounting plate is fixed with symmetrically arranged side plates, and the extrusion plate is rotatably connected between the two sets of side plates via a rotating shaft. A V-groove is provided on one side of the extrusion plate, and an adjusting bolt is threadedly connected to the inside of the mounting plate through a threaded hole. One end of the adjusting bolt is rotatably connected to a limiting contact plate that abuts against and limits the extrusion plate via a bearing.

[0015] Preferably, a symmetrically arranged limiting rod is fixed on the side of the limiting contact plate away from the extrusion plate, and two sliding holes are provided on the mounting plate, through which the limiting rod and the mounting plate are slidably connected.

[0016] Beneficial effects

[0017] This invention provides a flipping device for parts processing. Compared with the prior art, it has the following advantages:

[0018] This parts-turning device eliminates the need for manual parts turning, reducing the workload of workers and saving a lot of manpower and time. It can also turn parts from all directions, improving the processing effect and meeting practical needs. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0020] Figure 2 This is a partial view of the overall structure of this utility model;

[0021] Figure 3 This is a top view of the overall structure of this utility model;

[0022] Figure 4 This utility model Figure 3 A magnified structural diagram at point A.

[0023] In the diagram: 101, base; 102, placement platform; 103, telescopic cylinder; 104, mounting plate; 105, extrusion plate; 106, side plate; 107, limit contact plate; 108, limit rod; 109, adjusting bolt; 2. flipping mechanism; 201, drive motor; 202, L-shaped plate; 203, worm gear; 204, worm; 205, rotating shaft; 206, hydraulic push rod; 3. rotating mechanism; 301, annular slide rail; 302, locking groove; 303, sliding seat; 304, threaded pin. Detailed Implementation

[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0025] like Figure 1 As shown:

[0026] A flipping device for parts processing includes a base 101 and a placement platform 102 disposed on the upper surface of the base 101 and fixed by a support column.

[0027] In this implementation plan: In order to solve the technical problems existing in the prior art, such as the above-disclosed background technology, "the existing processing device is relatively simple in fixing the parts, which is not conducive to the rotation of the parts. It requires manual rotation, which requires a lot of manpower and time, and it is difficult to achieve full rotation operation, which reduces the processing effect of the parts." In combination, this problem is obviously a real and difficult problem to solve. All electrical equipment involved in this product is powered by an external power source.

[0028] Furthermore:

[0029] like Figures 1-4 As shown:

[0030] Based on the above: above the placement platform 102, there are symmetrically arranged telescopic cylinders 103 and a mounting plate 104 fixed to the output end of the telescopic cylinders 103. A pressing plate 105 is provided on one side of the mounting plate 104.

[0031] A rotating mechanism 3 is installed on the base 101, which can drive the telescopic cylinder 103 to rotate horizontally in multiple directions. The rotating mechanism 3 can realize the clamping and fixing of different surfaces of the part by two sets of telescopic cylinders 103.

[0032] The rotating mechanism 3 includes an annular slide rail 301 fixedly mounted on the upper surface of the base 101 by bolts, a sliding seat 303 that slides on the annular slide rail 301 by a sliding sleeve, and threaded pins 304 provided at both ends of the sliding seat 303.

[0033] The sliding seat 303 is rotatably connected by bearings and support columns. The upper surface of the base 101 has multiple sets of equidistant locking grooves 302 that are adapted to the threaded pins 304, arranged along the trajectory of the annular slide rail 301.

[0034] The two ends of the sliding seat 303 are connected by threaded holes and threaded pins 304. The threaded pins 304 are screwed into the locking groove 302 and can be used to lock the position of the sliding seat 303 and the annular slide rail 301.

[0035] The rotating mechanism 3 is equipped with a flipping mechanism 2 that can flip the telescopic cylinder 103. The flipping mechanism 2 can drive the two sets of telescopic cylinders 103 to flip the clamped parts.

[0036] The flipping mechanism 2 includes hydraulic push rods 206 bolted to the top of both ends of the sliding seat 303, an L-shaped plate 202 fixed to the output end of the hydraulic push rods 206, and a drive motor 201 fixed to the surface of the L-shaped plate 202.

[0037] A rotating shaft 205 is fixed to the surface of the telescopic cylinder 103 via a connecting plate. The rotating shaft 205 is rotatably connected to the L-shaped plate 202 via a bearing. One end of the rotating shaft 205 is fixed to a worm gear 203 via screws. A worm 204 that meshes with the worm gear 203 is fixed to the output end of the drive motor 201.

[0038] On the surface of the L-shaped plate 202, near the worm 204, there are symmetrically arranged strip plates, and the two ends of the worm 204 are rotatably connected to the two sets of strip plates through bearings.

[0039] In this embodiment: the parts processing flipping device, when in use, activates the telescopic cylinder 103 to drive the extrusion plate 105 to clamp and fix the parts on the placement table 102;

[0040] When it is necessary to flip the clamped part, the hydraulic push rod 206 is activated, which drives the L-shaped plate 202, the telescopic cylinder 103 and the part to move up to a certain height simultaneously. Then, the drive motor 201 is activated, which drives the worm gear 204 to rotate. Since the worm gear 204 and the worm wheel 203 are meshed, the worm wheel 203 is driven to rotate. The worm wheel 203 drives the rotating shaft 205 to rotate, which in turn drives the telescopic cylinder 103 to rotate synchronously. This allows the telescopic cylinder 103 to flip the clamped part synchronously, thereby realizing the flipping operation of the part.

[0041] After the part has been flipped, the hydraulic push rod 206 can be activated to place the clamped part on the placement table 102. The telescopic cylinder 103 is then activated to drive the pressing plate 105 to separate from the clamped part. Subsequently, the threaded pin 304 is rotated to disengage from the locking groove 302, thereby releasing the fixed connection between the sliding seat 303 and the annular slide rail 301. The sliding seat 303 then moves along the annular slide rail 301. As the sliding seat 303 continues to move along the annular slide rail 301, it in turn drives the hydraulic push rod 206 and the telescopic cylinder. 103 moves synchronously to a suitable position, and then rotates the threaded pin 304 in the opposite direction, so that the threaded pin 304 is inserted into the matching locking groove 302, thereby adjusting the clamping plate 105 to clamp different surfaces of the part. When the clamping plate 105 clamps different surfaces of the part, the flipped surfaces of the part can be different. Through this operation, there is no need to manually flip the part, thereby reducing the labor intensity of the workers and eliminating the need for a large amount of manpower and time. At the same time, it can also achieve the flipping of all surfaces of the part, improve the processing effect of the part, and meet the actual use requirements.

[0042] Furthermore;

[0043] In an optional embodiment, a symmetrically arranged side plate 106 is fixed on one side of the mounting plate 104, and an extrusion plate 105 is rotatably connected between the two sets of side plates 106 via a rotating shaft. A V-groove is provided on one side of the extrusion plate 105, and an adjusting bolt 109 is threadedly connected to the inside of the mounting plate 104 through a threaded hole. One end of the adjusting bolt 109 is rotatably connected to a limiting contact plate 107 that abuts against and limits the extrusion plate 105 via a bearing.

[0044] A symmetrically arranged limiting rod 108 is fixed on the side of the limiting contact plate 107 away from the extrusion plate 105. Two sliding holes are opened on the mounting plate 104, through which the limiting rod 108 and the mounting plate 104 are slidably connected.

[0045] In this embodiment: the part is placed on the placement platform 102. When the part is a tubular structure, the adjusting bolt 109 is rotated, which in turn moves the limiting contact plate 107. At this time, the limiting contact plate 107 drives the limiting rod 108 to slide on the mounting plate 104. The setting of the limiting rod 108 makes the movement of the limiting contact plate 107 more stable until the limiting contact plate 107 separates from the pressing plate 105, thereby releasing the obstruction to the pressing plate 105. Then, the pressing plate 105 is flipped and rotated between the two sets of side plates 106. This allows the V-groove surfaces of the two sets of extrusion plates 105 to correspond. Then, the adjusting bolt 109 is rotated in the opposite direction, and the limiting contact plate 107 is moved again to make contact with the surface of the extrusion plate 105. This limits the extrusion plate 105 and prevents it from rotating. The two sides of the extrusion plate 105 are a V-groove surface and a horizontal surface, respectively. By adjusting the rotation of the extrusion plate 105, it is possible to clamp and fix parts of various sizes, thereby improving the flexibility and practicality of this structure.

[0046] The working principle and usage process of this utility model are as follows: This parts processing flipping device, in use, places the parts on the placement table 102. When the parts are tubular structures, rotating the adjusting bolt 109 moves the limiting contact plate 107. At this time, the limiting contact plate 107 drives the limiting rod 108 to slide on the mounting plate 104. The limiting rod 108 makes the movement of the limiting contact plate 107 more stable until the limiting contact plate 107 separates from the pressing plate 105, thus releasing the obstruction to the pressing plate 105. Then, the pressing plate 105 is flipped and rotated between the two sets of side plates 106, so that the V-shaped grooves of the two sets of pressing plates 105 correspond. Then, the adjusting bolt 109 is rotated in the opposite direction to move the limiting contact plate again. The contact plate 107 moves, bringing it into contact with the surface of the extrusion plate 105 to limit its movement and prevent rotation. The extrusion plate 105 has a V-groove on one side and a horizontal surface on the other, allowing for the clamping and fixing of various sized parts by adjusting its rotation. This improves the flexibility and practicality of the structure. The telescopic cylinder 103 is then activated to move the extrusion plate 105 to clamp and fix the parts on the placement table 102. When the clamped parts need to be flipped, the hydraulic push rod 206 is activated, causing the L-shaped plate 202, the telescopic cylinder 103, and the parts to move synchronously to a certain height. The drive motor 201 is then activated. This drives the worm gear 204 to rotate. Since the worm gear 204 and worm wheel 203 are meshed, the worm wheel 203 rotates, which in turn drives the rotating shaft 205 to rotate. The rotating shaft 205 then drives the telescopic cylinder 103 to rotate synchronously, thus causing the telescopic cylinder 103 to synchronously flip the clamped part, thereby achieving the part flipping operation. After the part is flipped, the hydraulic push rod 206 can be activated to place the clamped part on the placement table 102, and the telescopic cylinder 103 can be activated to drive the pressing plate 105 to separate from the clamped part. Then, the threaded pin 304 is rotated to disengage the threaded pin 304 from the locking groove 302, thereby releasing the fixed connection between the sliding seat 303 and the annular slide rail 301. The rotating sliding seat 303 moves on the annular slide rail 301. As the sliding seat 303 moves continuously on the annular slide rail 301, it drives the hydraulic push rod 206 and the telescopic cylinder 103 to move synchronously to the appropriate position. Then, the threaded pin 304 is rotated in the opposite direction, so that the threaded pin 304 is inserted into the matching locking groove 302. This allows the extrusion plate 105 to clamp different surfaces of the part. When the extrusion plate 105 clamps different surfaces of the part, the flipped surfaces of the part can be different. Through this operation, the part does not need to be flipped manually, thereby reducing the labor intensity of the workers and eliminating the need for a large amount of manpower and time. At the same time, it can also achieve the flipping of all surfaces of the part, improving the processing effect of the part and meeting the actual use requirements.

[0047] Furthermore, any content not described in detail in this specification is existing technology known to those skilled in the art.

Claims

1. A flipping device for parts processing, comprising a base (101) and a placement platform (102) disposed on the upper surface of the base (101) and fixed by a support column, characterized in that, Above the placement platform (102) are symmetrically arranged telescopic cylinders (103) and a mounting plate (104) fixed to the output end of the telescopic cylinders (103). A pressing plate (105) is provided on one side of the mounting plate (104). The base (101) is equipped with a rotating mechanism (3) that can drive the telescopic cylinder (103) to rotate horizontally in multiple directions. The rotating mechanism (3) can enable two sets of telescopic cylinders (103) to clamp and fix different surfaces of the part. The rotating mechanism (3) is equipped with a flipping mechanism (2) that can flip the telescopic cylinder (103). The flipping mechanism (2) can drive two sets of telescopic cylinders (103) to flip the clamped parts.

2. The flipping device for parts processing according to claim 1, characterized in that: The rotating mechanism (3) includes an annular slide rail (301) fixedly mounted on the upper surface of the base (101) by bolts, a sliding seat (303) that slides on the annular slide rail (301) by a sliding sleeve, and threaded pins (304) provided at both ends of the sliding seat (303). The sliding seat (303) is rotatably connected by bearings and support columns. The upper surface of the base (101) is provided with multiple sets of equidistant locking grooves (302) that are adapted to the threaded pins (304) along the trajectory of the annular slide rail (301).

3. The flipping device for parts processing according to claim 2, characterized in that: The two ends of the sliding seat (303) are threadedly connected by threaded holes and threaded pins (304). The threaded pins (304) are screwed into the locking groove (302) and can be used to lock the position of the sliding seat (303) and the annular slide rail (301).

4. A flipping device for parts processing according to claim 3, characterized in that: The flipping mechanism (2) includes a hydraulic push rod (206) bolted to the top of both ends of the sliding seat (303), an L-shaped plate (202) fixed to the output end of the hydraulic push rod (206), and a drive motor (201) fixed to the surface of the L-shaped plate (202). The telescopic cylinder (103) has a rotating shaft (205) fixed to its surface by a connecting plate. The rotating shaft (205) is rotatably connected to the L-shaped plate (202) by a bearing. One end of the rotating shaft (205) is fixed with a worm gear (203) by a screw. The output end of the drive motor (201) is fixed with a worm (204) that meshes with the worm gear (203).

5. A flipping device for parts processing according to claim 4, characterized in that: The L-shaped plate (202) has symmetrically arranged strip plates fixed on the side of the surface near the worm (204), and the two ends of the worm (204) are rotatably connected to the two sets of strip plates respectively through bearings.

6. The flipping device for parts processing according to claim 1, characterized in that: The mounting plate (104) has symmetrically arranged side plates (106) fixed on one side. The extrusion plate (105) is rotatably connected between the two sets of side plates (106) via a rotating shaft. A V-groove is provided on one side of the extrusion plate (105). An adjusting bolt (109) is threadedly connected to the inside of the mounting plate (104) through a threaded hole. One end of the adjusting bolt (109) is rotatably connected to a limiting contact plate (107) that abuts against and limits the extrusion plate (105) via a bearing.

7. A flipping device for parts processing according to claim 6, characterized in that: On the side of the limiting contact plate (107) away from the extrusion plate (105), there are symmetrically arranged limiting rods (108). Two sliding holes are opened on the mounting plate (104), and the limiting rods (108) and the mounting plate (104) are slidably connected through these sliding holes.