Integrated metal radiator machining equipment
By designing an integrated metal radiator processing equipment, the vacuum holes and adjustment structures on the rotary mounting plate are used to firmly clamp and precisely process the workpiece, the problems of low efficiency and poor accuracy when processing complex workpieces are solved, and efficient and accurate metal radiator processing is achieved.
Patent Information
- Application Number
- CN202421849672.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-01
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-08-01
AI Technical Summary
When traditional five-axis machine tools are machining complex workpieces, only one of the workpieces and tools can move, resulting in reduced machining efficiency and difficulty in accurately fixing the workpieces by clamping devices, which can easily lead to direction errors and reduced machining accuracy.
An integrated metal radiator processing equipment is designed, by fixing the clamping assembly on the mounting base, and position adjustment is performed using the first rotary shaft adjustment structure and the second rotary shaft adjustment structure, vacuum adsorption is carried out in combination with the vacuum hole on the rotary mounting plate to ensure firm clamping and precise processing of the workpiece.
It realizes one-time molding and precise processing of the workpiece during the processing process, avoids offset and installation errors, and improves processing quality and accuracy.
Smart Images

Figure CN222903325U_ABST
Abstract
Description
Technical Field
[0001] The utility model specifically relates to the technical field of metal processing, and specifically is a processing device for an integrated metal radiator. Background Art
[0002] Five-axis machine tools can achieve multi-sided machining of complex workpieces and precise machining of complex curved surfaces, and are widely used in fields such as aerospace, automotive manufacturing, and mold processing. It allows the tool to perform cutting in a more flexible posture, improving machining accuracy, surface quality, and machining efficiency. At the same time, it can also machine shapes and structures that are difficult to complete by traditional three-axis machine tools.
[0003] However, when the traditional five-axis machine tool processes workpieces, it moves the tool or the workbench to achieve workpiece processing. Although this can process complex workpieces, when processing workpieces, only one of the workpiece and the tool can move, which will increase the tool travel, resulting in a decrease in the working efficiency of the processing equipment. Moreover, when the traditional clamping device clamps the workpiece, manual loading is used, and it is easy to cause the workpiece to be in the opposite direction. In this way, during processing, on the one hand, it will cause the workpiece to be scrapped, and on the other hand, during processing, due to different machining allowances, it may damage the tool of the machine tool;
[0004] After retrieval, Chinese Patent Publication No. CN202222101954.4 discloses a five-axis machine tool; it includes a machine frame, a three-axis machining device, and a BC-axis turntable. The three-axis machining device is installed on the machine frame, and the BC-axis turntable is rotatably installed on the machine frame. The BC-axis turntable includes a swing basket frame and a workbench. The swing basket frame is rotatably connected to the machine frame, the workbench is rotatably connected to the swing basket frame, and the rotation axis of the workbench is perpendicular to the rotation axis of the swing basket frame. A first permanent magnet drive mechanism for driving the workbench to rotate along the C axis is arranged in the BC-axis turntable, and a second permanent magnet drive mechanism for driving the swing basket frame to rotate along the B axis is also arranged in the BC-axis turntable. The structures of the first permanent magnet drive mechanism and the second permanent magnet drive mechanism are the same;
[0005] The BC-axis turntable in the machine tool in the above patent can only achieve the effect of swinging back and forth. When machining the two sides of the workpiece, the tool in the machine tool in the above patent cannot effectively reach, so other equipment is still needed for machining. In this way, it cannot effectively ensure that the workpiece product is formed in one step, and when repositioning and clamping, it will cause the structure to be non-coaxial or offset from the structure in the completed machining step, resulting in a decrease in the accuracy of the workpiece product;
[0006] In view of the above situation, we provide a processing device for an integrated metal radiator. In this device, the clamping component is fixedly installed on the mounting base, and the mounting base is adjusted in position through the first rotating shaft adjusting structure and the second rotating shaft adjusting structure. In this way, during processing, it is effectively ensured that the fixed workpiece is processed into a finished product by the machine tool at one time, ensuring the use accuracy of the workpiece. When clamping and fixing the workpiece, the vacuum groove and the vacuum adsorption holes are effectively evacuated through the vacuum pumping holes on the rotating mounting plate, so that the adsorption surface of the workpiece product fits and fixes with the vacuum adsorption fixture, effectively ensuring the clamping of the workpiece. Among them, the vacuum adsorption fixture is also provided with positioning bumps on the side far from the rotating mounting plate, which are the same as the edge contour of the product, effectively ensuring that the workpiece will not shift during the processing, ensuring the processing quality and processing accuracy of the workpiece. To prevent the situation of incorrect installation direction of the workpiece, anti-fooling holes are provided on both the rotating mounting plate and the vacuum adsorption fixture, and the number of anti-fooling holes on both sides is different, effectively ensuring the correct installation of the workpiece. Summary of the Utility Model
[0007] The purpose of the present utility model is to provide a processing device for an integrated metal radiator. When clamping and fixing the workpiece, the vacuum groove and the vacuum adsorption holes are effectively evacuated through the vacuum pumping holes on the rotating mounting plate, so that the adsorption surface of the workpiece product fits and fixes with the vacuum adsorption fixture, effectively ensuring the clamping of the workpiece. Among them, the vacuum adsorption fixture is also provided with positioning bumps on the side far from the rotating mounting plate, which are the same as the edge contour of the product, effectively ensuring that the workpiece will not shift during the processing, ensuring the processing quality and processing accuracy of the workpiece. To prevent the situation of incorrect installation direction of the workpiece, anti-fooling holes are provided on both the rotating mounting plate and the vacuum adsorption fixture, and the number of anti-fooling holes on both sides is different, effectively ensuring the correct installation of the workpiece, so as to solve the problems in the above background technology.
[0008] To achieve the above purpose, the present utility model provides the following technical solutions:
[0009] A processing device for an integrated metal radiator includes a Y-axis adjusting structure, and a first rotating shaft adjusting structure is cooperatively installed on the Y-axis adjusting structure; a second rotating shaft adjusting structure is cooperatively installed on the first rotating shaft adjusting structure; a mounting base is cooperatively installed on the rotating shaft of the second rotating shaft adjusting structure; the mounting base is cooperatively installed with a clamping component; the clamping component includes a rotating seat fixedly installed on the mounting base; a rotating mounting plate is arranged on the rotating seat, and the rotating mounting plate is fixedly installed on the rotating seat through a transverse locking hole; a vacuum pumping hole is opened at the center of the rotating mounting plate; the air inside the vacuum adsorption hole and the vacuum groove is extracted through the vacuum pumping hole to realize the fixation of the metal frame;
[0010] On one side of the rotating mounting plate, a plurality of locking holes corresponding to the fixture locking holes formed on the vacuum adsorption fixture are provided; among them, a first anti-fooling hole is arranged between the locking holes; through the anti-fooling holes arranged on the rotating mounting plate and the vacuum adsorption fixture, it is effectively avoided that the workpiece is installed in the wrong direction during workpiece loading; the processing quality of the workpiece is guaranteed;
[0011] As a further technical solution of the present invention, a vacuum groove is formed on one side of the vacuum adsorption fixture close to the rotating mounting plate; the outer shape of the vacuum groove matches the edge of the adsorption surface of the metal frame; in this way, it can effectively ensure that the metal frame is tightly attached to one side of the vacuum adsorption fixture through a plurality of vacuum adsorption holes inside the vacuum groove, realizing the effective fixation of the metal frame;
[0012] As a further technical solution of the present invention, a second anti-fooling hole is arranged on one side of the vacuum adsorption fixture close to the rotating mounting plate; the second anti-fooling hole corresponds to the first anti-fooling hole, so that when the metal frame is installed, the correct installation of the metal frame is effectively guaranteed;
[0013] As a further technical solution of the present invention, a positioning convex block is integrally arranged on one side of the vacuum adsorption fixture far from the vacuum groove; the positioning convex block is in fit connection with the metal frame; through the positioning convex block, it is effectively ensured that the metal frame will not shift during the processing process, ensuring the processing quality;
[0014] As a further technical solution of the present invention, a plurality of vacuum adsorption holes are arranged in the vacuum groove, and the vacuum adsorption holes penetrate through the vacuum adsorption fixture;
[0015] As a further technical solution of the present invention, the bottom of the Y-axis adjustment structure is cooperatively installed on the X-axis adjustment structure; the X-axis adjustment structure is movably installed with the support frame; a Z-axis adjustment structure is also cooperatively installed on the top of the support frame. After the raw material of the metal frame is placed, the distance between the Y-axis adjustment structure and the tool is adjusted through the X-axis adjustment structure, and then through the rotation of the first rotation axis adjustment structure and the second rotation axis adjustment structure, it is effectively ensured that when the metal frame is processed, the tool can process any surface of the metal frame, so that the metal frame is effectively processed into a finished product at one time, greatly ensuring the use accuracy of the metal frame;
[0016] Compared with the prior art, the beneficial effects of the present invention are:
[0017] In the present invention, during use, the metal frame to be processed is placed in the positioning convex block on one side of the vacuum adsorption fixture, and the vacuum adsorption holes and the vacuum groove are evacuated through the vacuum pumping holes on the rotating seat, realizing that the metal frame is firmly attached to one side of the vacuum adsorption fixture, effectively ensuring that the metal frame will not shift during the processing process, and ensuring the processing accuracy of the metal frame;
[0018] In the present utility model, when placing the metal frame and the vacuum adsorption fixture, in order to prevent the situation of reverse installation, the second anti-fooling holes provided on the side of the vacuum adsorption fixture close to the rotary mounting plate cooperate with the first anti-fooling holes on the rotary mounting plate. The numbers on both sides are different, effectively avoiding the situation of incorrect installation. Moreover, the outer shape of the vacuum groove on the vacuum adsorption fixture is the same as the outer shape of the adsorption surface of the metal frame, so as to effectively ensure that the vacuum adsorption holes on both sides inside the vacuum groove have a large adsorption force on the metal frame, effectively avoiding the situation that the metal frame shifts or falls during processing;
[0019] In the present utility model, during the processing, the rotary seat is fixedly installed on the mounting seat, and a second rotary shaft adjustment structure is provided at the bottom of the mounting seat. In this way, during processing, it is effectively ensured that the mounting seat drives the rotary seat to rotate effectively, ensuring that the cutting tool on the machine tool can effectively process any surface of the metal frame; realizing one-time processing and forming of the metal frame. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 is a three-dimensional structural schematic diagram of the present utility model.
[0021] Figure 2 is in the present utility model Figure 1 another perspective schematic diagram.
[0022] Figure 3 is in the present utility model Figure 1 side view.
[0023] Figure 4 is in the present utility model Figure 2 front view.
[0024] Figure 5 is in the present utility model Figure 4 assembly schematic diagram of the clamping assembly.
[0025] Figure 6 is in the present utility model Figure 4 front view.
[0026] Figure 7 is in the present utility model Figure 6 A-A cross-sectional view.
[0027] Figure 8 is in the present utility model Figure 5 disassembly schematic diagram.
[0028] Figure 9 is in the present utility model Figure 4 disassembly schematic diagram of the rotary mounting plate.
[0029] Figure 10 is in the present utility model Figure 8 schematic diagram of the vacuum adsorption fixture.
[0030] Figure 11 is the schematic diagram of the rear side structure in the present utility model Figure 10 .
[0031] Figure 12 is the schematic diagram of the rear side structure of the metal frame in the present utility model Figure 8 .
[0032] Figure 13 is the schematic diagram of another perspective structure in the present utility model Figure 12 .
[0033] In the figure: 1 - X-axis adjustment structure, 2 - Y-axis adjustment structure, 3 - first rotation axis adjustment structure, 4 - second rotation axis adjustment structure, 5 - Z-axis adjustment structure, 6 - mounting base, 7 - support frame, 8 - clamping assembly, 80 - rotating base, 81 - rotating mounting plate, 810 - vacuum pumping hole, 811 - horizontal locking hole, 812 - first anti-fooling hole, 82 - vacuum adsorption jig, 820 - jig locking hole, 821 - positioning convex block, 822 - vacuum adsorption hole, 823 - vacuum groove, 824 - second anti-fooling hole, 83 - metal frame. Specific embodiments
[0034] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0035] Please refer to Figure 1-13 , in the embodiment of the present utility model, an integrated metal radiator processing device includes a Y-axis adjustment structure 2, and a first rotation axis adjustment structure 3 is cooperatively installed on the Y-axis adjustment structure 2; a second rotation axis adjustment structure 4 is cooperatively installed on the first rotation axis adjustment structure 3; a mounting base 6 is cooperatively installed on the rotating shaft of the second rotation axis adjustment structure 4; the mounting base 6 is cooperatively installed with a clamping assembly 8; the clamping assembly 8 includes a rotating base 80 fixedly installed on the mounting base 6; a rotating mounting plate 81 is arranged on the rotating base 80, and the rotating mounting plate 81 is fixedly installed on the rotating base 80 through a horizontal locking hole 811; a vacuum pumping hole 810 is opened at the center of the rotating mounting plate 81.
[0036] One side of the rotating mounting plate 81 is provided with a plurality of locking holes corresponding to the jig locking holes 820 opened on the vacuum adsorption jig 82; a first anti-fooling hole 812 is arranged between the locking holes.
[0037] Specifically, a vacuum groove 823 is formed on one side of the vacuum adsorption fixture 82 close to the rotary mounting plate 81; the outer shape of the vacuum groove 823 matches the edge of the adsorption surface of the metal frame 83.
[0038] By adopting the above technical solution, during use, the metal frame 83 to be processed is placed in the positioning bump 821 on one side of the vacuum adsorption fixture 82, and the vacuum adsorption holes 822 and the vacuum groove 823 are evacuated through the vacuum hole 810 on the rotary base 80, so that the metal frame 83 is firmly attached to one side of the vacuum adsorption fixture 82, effectively ensuring that the metal frame 83 will not shift during processing and ensuring the processing accuracy of the metal frame 83.
[0039] A second anti-fooling hole 824 is provided on one side of the vacuum adsorption fixture 82 close to the rotary mounting plate 81.
[0040] In this embodiment, a positioning bump 821 is integrally provided on one side of the vacuum adsorption fixture 82 away from the vacuum groove 823; the positioning bump 821 is in fit connection with the metal frame 83.
[0041] By adopting the above technical solution, when placing the metal frame 83 and the vacuum adsorption fixture 82, to prevent the situation of reverse installation, the second anti-fooling hole 824 provided on one side of the vacuum adsorption fixture 82 close to the rotary mounting plate 81 cooperates with the first anti-fooling hole 812 on the rotary mounting plate 81, and the number on both sides is different, effectively avoiding the situation of incorrect installation. Then, it is fixed by the cooperation of the fixture locking hole 820 and the locking hole on the rotary mounting plate 81, and the outer shape of the vacuum groove 823 on the vacuum adsorption fixture 82 is the same as the outer shape of the adsorption surface of the metal frame 83, so that it effectively ensures that the vacuum adsorption holes 822 on both sides inside the vacuum groove 823 have a large adsorption force on the metal frame 83, effectively avoiding the situation of the metal frame 83 shifting or falling during processing.
[0042] In this embodiment, a plurality of vacuum adsorption holes 822 are provided in the vacuum groove 823, and the vacuum adsorption holes 822 penetrate through the vacuum adsorption fixture 82.
[0043] The bottom of the Y-axis adjustment structure 2 is fitted and installed on the X-axis adjustment structure 1; the X-axis adjustment structure 1 is movably installed with the support frame 7; the top of the support frame 7 is also fitted and installed with a Z-axis adjustment structure 5.
[0044] By adopting the above technical solution, during processing, the rotary base 80 is fixedly installed on the mounting base 6, and a second rotary shaft adjustment structure 4 is provided at the bottom of the mounting base 6. In this way, during processing, it effectively ensures that the mounting base 6 drives the rotary base 80 to rotate effectively, ensuring that the cutting tool on the machine tool can effectively process any surface of the metal frame 83, and realizing one-time processing and forming of the metal frame 83.
[0045] The working principle of the present utility model is as follows: during use, the metal frame 83 to be processed is placed in the positioning bump 821 on one side of the vacuum adsorption fixture 82. Vacuum pumping is performed on the vacuum adsorption holes 822 and the vacuum grooves 823 through the vacuum pumping holes 810 on the rotating base 80, so that the metal frame 83 firmly adheres to one side of the vacuum adsorption fixture 82, effectively ensuring that the metal frame 83 will not shift during the processing, and ensuring the processing accuracy of the metal frame 83.
[0046] When placing the metal frame 83 and the vacuum adsorption fixture 82, to prevent the situation of reverse installation, the second anti-fooling holes 824 provided on the side of the vacuum adsorption fixture 82 close to the rotating mounting plate 81 cooperate with the first anti-fooling holes 812 on the rotating mounting plate 81, and the quantities on both sides are different, effectively avoiding the situation of incorrect installation. Moreover, the outer shape of the vacuum groove 823 on the vacuum adsorption fixture 82 is the same as the outer shape of the adsorption surface of the metal frame 83, so as to effectively ensure that the vacuum adsorption holes 822 on both sides inside the vacuum groove 823 have a large adsorption force on the metal frame 83, effectively avoiding the situation of the metal frame 83 shifting or falling during processing.
[0047] During the processing, the rotating base 80 is fixedly installed on the mounting seat 6, and a second rotating shaft adjusting structure 4 is provided at the bottom of the mounting seat 6. In this way, during processing, it is effectively ensured that the mounting seat 6 drives the rotating base 80 to rotate effectively, ensuring that the cutting tool on the machine tool can effectively process any surface of the metal frame 83, and realizing the one-time processing and forming of the metal frame 83.
[0048] For those skilled in the art, it is obvious that the present utility model is not limited to the details of the above exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or basic characteristics of the present utility model. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present utility model is defined by the appended claims rather than the above description. Therefore, it is intended to include all changes falling within the meaning and scope of the equivalent elements of the claims in the present utility model. Any reference signs in the claims should not be regarded as limiting the claimed rights.
[0049] In addition, it should be understood that although this specification is described according to the embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An integrated metal radiator processing equipment, characterized in that: The invention comprises a Y-axis adjustment structure (2), on which a first rotating axis adjustment structure (3) is mounted; on the first rotating axis adjustment structure (3), a second rotating axis adjustment structure (4) is mounted; on the rotating axis of the second rotating axis adjustment structure (4), a mounting seat (6) is mounted; the mounting seat (6) is mounted in cooperation with a clamping assembly (8); the clamping assembly (8) comprises a rotating seat (80) fixedly mounted on the mounting seat (6); the rotating seat (80) is provided with a rotating mounting plate (81), and the rotating mounting plate (81) is fixedly mounted on the rotating seat (80) via a transverse locking hole (811); a vacuum hole (810) is provided at the center of the rotating mounting plate (81); A plurality of locking holes corresponding to the fixture locking holes (820) provided on the vacuum adsorption fixture (82) are provided on one side of the rotating mounting plate (81); wherein first fool-proof holes (812) are provided between the locking holes.
2. The integrated metal heat sink processing equipment according to claim 1, characterized in that: A vacuum groove (823) is provided on a side of the vacuum adsorption fixture (82) close to the rotating mounting plate (81); the shape of the vacuum groove (823) matches the edge of the adsorption surface of the metal frame (83).
3. The integrated metal heat sink processing equipment according to claim 2, characterized in that: A second fool-proof hole (824) is provided on a side of the vacuum adsorption fixture (82) close to the rotating mounting plate (81).
4. The integrated metal heat sink processing equipment according to claim 3, characterized in that: A positioning protrusion (821) is integrally provided on one side of the vacuum adsorption jig (82) away from the vacuum groove (823); the positioning protrusion (821) is fitted and connected to the metal frame (83).
5. The integrated metal heat sink processing equipment according to claim 4, characterized in that: A plurality of vacuum adsorption holes (822) are arranged in the vacuum groove (823), and the vacuum adsorption holes (822) penetrate the vacuum adsorption fixture (82).
6. The integrated metal heat sink processing equipment according to claim 1, characterized in that: The bottom of the Y-axis adjustment structure (2) is mounted on the X-axis adjustment structure (1); the X-axis adjustment structure (1) is movably mounted on the support frame (7); and the top of the support frame (7) is also mounted with a Z-axis adjustment structure (5).
Citation Information
Patent Citations
Five-axis machine tool
CN217800452U