A double-sided milling device for processing automobile parts
By designing a parts clamping device and a waste material compression device, the problem of chip accumulation and scattering in the double-sided milling device was solved, realizing the centralized collection and rapid processing of chips, and improving processing efficiency and device stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- LAO HE KOU SHI SHENG LONG JI XIE YOU XIAN GONG SI
- Filing Date
- 2022-08-08
- Publication Date
- 2026-05-12
AI Technical Summary
When machining automotive parts, existing double-sided milling equipment suffers from chip accumulation and scattering, which affects the milling effect and may even enter the gaps in the equipment, causing interference.
A component clamping device was designed, which uses a clamping panel to fix automotive components. The debris falls directly into a processing waste recycling device, and is then collected and processed centrally by a waste compression device. This includes a Z-shaped connecting rod in the waste compression device driving a compression disc to rotate and crush the waste in a staggered manner.
It enables centralized collection and rapid processing of chips, reduces the impact of residual chips on milling results, and improves the stability and efficiency of the device.
Smart Images

Figure CN117564332B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of automotive parts processing technology, and in particular to a double-sided milling device for processing automotive parts. Background Technology
[0002] Milling is a mechanical processing method that uses milling cutters as cutting tools to process the surface of objects. Milling machines include horizontal milling machines, vertical milling machines, gantry milling machines, profile milling machines, universal milling machines, and lever milling machines.
[0003] However, in the existing technology, the existing double-sided milling device mainly mills from both sides of the part. Therefore, the speed and amount of chips generated are 1-2 times that of ordinary milling devices. When this device is milling automotive parts, the generated chips will accumulate in large quantities on the surface of the device. Since these chips are directly milled off the part, the surface is not smooth. At the same time, since the material of automotive parts is also metal, some chips that are not processed in time may remain on the surface of the part. These chips may affect the milled shape during subsequent milling. Furthermore, the waste material that accumulates on the surface of the device may enter the gaps of the device, thereby causing some interference to some structures that need to be moved or rotated. Summary of the Invention
[0004] The purpose of this invention is to overcome the shortcomings of the prior art. The part clamping device directly clamps and fixes the automotive parts to be processed through the clamping panel at the top, thereby ensuring that the debris generated by the bidirectional milling equipment on both sides when milling the automotive parts can fall directly into the processing waste recycling device below, so as to reduce the scattering range of the debris and achieve the purpose of collecting the processing debris in a concentrated manner.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: a double-sided milling device for processing automotive parts, comprising a worktable fixed base, a bidirectional milling device, a worktable body, and a parts clamping device. The bidirectional milling device is installed on both sides of the worktable fixed base. The worktable body is movably installed on the top of the worktable fixed base. The parts clamping device is movably installed on the top of the worktable body. The parts clamping device includes a waste collection box, a partition support panel, a waste compression device, an installation docking platform, a processing waste recycling device, and a clamping panel. The partition support panel is movably installed on the top of the waste collection box. The bottom of the waste compression device is movably connected to the inside of the waste collection box. The processing waste recycling device is movably installed on the top of the waste compression device. The installation docking platform is fixedly installed on both sides of the processing waste recycling device. The clamping panel is movably installed on both sides of the installation docking platform.
[0006] In a preferred embodiment, the waste compression device includes a processing pipe, a first motor, a drive motor, and a docking pipe. The docking pipe is movably mounted on top of the processing pipe. The first motor is located on one side of the processing pipe, and the terminals of the first motor are connected to the terminals of the drive motor. The drive motor is movably mounted on top of the processing pipe.
[0007] The beneficial effects of adopting the above-mentioned further solution are: the waste generated during the processing of parts is directly recycled by the waste recycling device, and after being processed by the waste compression device, it is stored in the waste collection box, thereby achieving the effect of quickly collecting waste and performing secondary processing, so as to reduce the impact of residual debris or waste on the milling effect.
[0008] In a preferred embodiment, a deflection panel is movably connected to the bottom of the processing pipe, a positioning shaft is movably mounted on the upper surface of the deflection panel, a limit slide is fixedly mounted on one end of the deflection panel, and a second motor is provided on the other side of the processing pipe, with the wiring terminal of the second motor connected to the wiring terminal of the positioning shaft.
[0009] The beneficial effect of adopting the above-mentioned further solution is that the deflection panel can rotate around the positioning axis, thereby forming a connected or closed space in the processing pipeline to achieve the purpose of collecting and discharging waste.
[0010] In a preferred embodiment, the processing pipeline includes a rotary connector, a Z-shaped connecting rod, a central positioning shaft, a mounting connecting plate, a pressing disc, and a sealing panel. One end of the Z-shaped connecting rod is movably connected to the inside of the rotary connector, and the other end of the Z-shaped connecting rod is rotatably connected to the inside of the central positioning shaft. The pressing disc is sleeved on the outer wall of the central positioning shaft. The mounting connecting plate is installed at the junction of the central positioning shaft and the pressing disc. The sealing panel is located at the bottom of the processing pipeline.
[0011] The beneficial effects of adopting the above-mentioned further solution are: the Z-shaped connecting rod can drive the extrusion disc to rotate and simultaneously perform circumferential motion, so as to fit against the inner wall of the processing pipe to extrude and crush the waste and debris. At the same time, since the rotation center of the extrusion disc is not at the center point, multiple extrusion discs will rotate in a staggered manner to compress and crush the collected debris and waste.
[0012] In a preferred embodiment, a central shaft is movably mounted inside the extrusion disc, and a docking shell is movably mounted on the outer wall of the central shaft, with a heat dissipation gap reserved between the docking shell and the extrusion disc.
[0013] The beneficial effects of adopting the above-mentioned further solution are: the mating shell and the central shaft are used to connect two misaligned extrusion discs, while the heat dissipation gap is used to discharge the heat generated by the friction of the extrusion discs.
[0014] In a preferred embodiment, the blocking panel is fixedly installed at the other end of the reversing panel, and the positioning pivot is movably installed on the lower surface of the partition support panel.
[0015] The beneficial effect of adopting the above-mentioned further solution is that it allows the sealing panel to rotate around the positioning axis, thereby opening or closing the treatment pipe according to the usage requirements.
[0016] In a preferred embodiment, the installation docking platform includes a docking platform body, with limiting grooves on both sides of the top of the docking platform body and receiving grooves on both sides of the bottom of the docking platform body. Limiting clips are fixedly installed inside the receiving grooves, and an extension bracket is fixedly installed inside the docking platform body. A reinforcing limiting ring is fixedly installed at the bottom of the extension bracket.
[0017] The beneficial effects of adopting the above-mentioned further solution are: the limiting groove is used to adapt to the shape of the clamping panel to improve the stability of the clamping panel, while the receiving groove is used to accommodate the clamping panel, thereby providing movement space for adjusting the clamping panel.
[0018] In a preferred embodiment, the processing waste recycling device includes a connecting pipe, an independent movable pipe, a widened receiving port, and a limiting platform. One end of the independent movable pipe is movably connected to the inside of the connecting pipe, the widened receiving port is fixedly installed at the top of the connecting pipe, and the limiting platform is fixedly installed on the outer wall of the connecting pipe.
[0019] The beneficial effect of adopting the above-mentioned further solution is that the processing waste recycling device uses the widened receiving port to simultaneously expand the receiving range, further reducing the range of debris falling.
[0020] Compared with the prior art, the advantages and positive effects of the present invention are as follows:
[0021] 1. In this invention, the part clamping device directly clamps and fixes the automotive parts to be processed through the clamping panel at the top, thereby ensuring that the debris generated by the bidirectional milling equipment on both sides during the milling of the automotive parts can fall directly into the processing waste recycling device below, so as to reduce the scattering range of the debris and achieve the purpose of collecting the processing debris in a concentrated manner. The distance between these clamping panels can be controlled by the docking platform body to obtain different fixing effects. At the same time, the processing waste recycling device uses a widened receiving port to simultaneously expand the receiving range, further reducing the range of debris falling.
[0022] 2. In this invention, the waste compression device uses a first motor to drive multiple extrusion discs to rotate via a Z-shaped connecting rod. The staggered rotation of the multiple extrusion discs at different positions compresses and crushes the collected debris and waste. Compared with ordinary solid crushing cylinders, this structure is lighter in overall weight and operates faster. It can compress and crush waste into smaller particles in a short time, so that the waste collection box can hold more waste. Attached Figure Description
[0023] Figure 1 A perspective view of a double-sided milling device for processing automotive parts provided by the present invention;
[0024] Figure 2 This invention provides a schematic diagram of the component clamping device structure for a double-sided milling apparatus used for processing automotive parts;
[0025] Figure 3 This invention provides a schematic diagram of the installation docking platform for a double-sided milling device used for processing automotive parts and a processing waste recycling device.
[0026] Figure 4 This invention provides a schematic diagram of the waste compression device structure of a double-sided milling apparatus for processing automotive parts;
[0027] Figure 5 This invention provides a schematic diagram of the internal structure of the processing pipe of a double-sided milling device for processing automotive parts;
[0028] Figure 6 This invention provides a schematic diagram of the extrusion disc structure of a double-sided milling device for processing automotive parts.
[0029] Legend:
[0030] 1. Worktable base; 2. Two-way milling machine; 3. Worktable body; 4. Accessory clamping device;
[0031] 41. Waste collection bin; 42. Divider support panel; 43. Waste compression device; 44. Installation docking platform; 45. Processing waste recycling device; 46. Clamping panel;
[0032] 431. Pipeline handling unit; 432. First motor; 433. Drive motor; 434. Pipeline docking unit; 435. Directional control panel; 436. Positioning shaft; 437. Limiting slide; 438. Second motor;
[0033] 4311. Rotary connector; 4312. Z-shaped connecting rod; 4313. Central positioning shaft; 4314. Mounting connecting plate; 4315. Extrusion disc; 4316. Sealing panel; 4317. Central shaft; 4318. Connecting housing; 4319. Heat dissipation gap;
[0034] 441. Main body of docking platform; 442. Limiting groove; 443. Receiving groove; 444. Limiting clip; 445. Extension bracket; 446. Reinforcing limiting ring;
[0035] 451. Connecting pipe; 452. Independent movable pipe; 453. Widened receiving port; 454. Limiting platform. Detailed Implementation
[0036] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0037] Example 1
[0038] like Figure 1 As shown, the present invention provides a technical solution: a double-sided milling device for processing automotive parts, comprising a worktable fixed base 1, a bidirectional milling device 2, a worktable body 3, and a parts clamping device 4. The bidirectional milling device 2 is installed on both sides of the worktable fixed base 1, the worktable body 3 is movably installed on the top of the worktable fixed base 1, and the parts clamping device 4 is movably installed on the top of the worktable body 3. The parts clamping device 4 includes a waste collection box 41, a partition support panel 42, a waste compression device 43, an installation docking platform 44, a processing waste recycling device 45, and a clamping panel 46. The partition support panel 42 is movably installed on the top of the waste collection box 41, the bottom of the waste compression device 43 is movably connected to the inside of the waste collection box 41, the processing waste recycling device 45 is movably installed on the top of the waste compression device 43, the installation docking platform 44 is fixedly installed on both sides of the processing waste recycling device 45, and the clamping panel 46 is movably installed on both sides of the installation docking platform 44.
[0039] In this embodiment, the workbench body 3 is installed on the upper surface of the workbench fixed base 1. When processing automotive parts, the workbench body 3 is fixed to the part clamping device 4 or the workbench body 3 according to the size of the part. When fixed to the part clamping device 4, the clamping panels 46 on both sides can be adjusted on the mounting docking platform 44 to assist in fixing the automotive parts. When the parts are milled later, the residue and debris falling from the parts will fall directly into the processing waste recycling device 45. After being compressed by the waste compression device 43, it will fall into the waste collection box 41. The waste collection box 41 and the waste compression device 43 are separated by a partition support panel 42, which also serves as the mounting support structure for the waste compression device 43.
[0040] Example 2
[0041] like Figure 4-6 As shown, the waste compression device 43 includes a processing pipe 431, a first motor 432, a drive motor 433, and a docking pipe 434. The docking pipe 434 is movably mounted on the top of the processing pipe 431. The first motor 432 is located on one side of the processing pipe 431, and its terminals are connected to those of the drive motor 433. The drive motor 433 is movably mounted on the top of the processing pipe 431. A deflector panel 435 is movably connected to the bottom of the processing pipe 431. A positioning shaft 436 is movably mounted on the upper surface of the deflector panel 435. A limit slide plate 437 is fixedly mounted on one end of the deflector panel 435. A second motor 438 is provided on the other side of the processing pipe 431, and its terminals are connected to those of the positioning shaft 436. The processing pipe 431 includes a rotary connector 4311, a Z-shaped connecting rod 4312, a central positioning shaft 4313, and a mounting... The system includes a connecting plate 4314, an extrusion disc 4315, and a sealing panel 4316. One end of a Z-shaped connecting rod 4312 is movably connected to the inside of a rotating connector 4311, and the other end of the Z-shaped connecting rod 4312 is rotatably connected to the inside of a central positioning shaft 4313. The extrusion disc 4315 is fitted onto the outer wall of the central positioning shaft 4313. The mounting connecting plate 4314 is installed at the junction of the central positioning shaft 4313 and the extrusion disc 4315. The sealing panel 4316 is located at the bottom of the processing pipe 431. A central shaft 4317 is movably installed inside the extrusion disc 4315. A docking housing 4318 is movably installed on the outer wall of the central shaft 4317. A heat dissipation gap 4319 is reserved between the docking housing 4318 and the extrusion disc 4315. The sealing panel 4316 is fixedly installed at the other end of the reversing panel 435. The positioning rotating shaft 436 is movably installed on the lower surface of the partition support panel 42.
[0042] In this embodiment, the extrusion discs 4315 are connected together via a mating housing 4318, and the extrusion discs 4315 are connected to the central positioning shaft 4313 via a central shaft 4317. During operation, the first motor 432 supplies power to the drive motor 433, enabling it to drive the Z-shaped connecting rod 4312 and the central positioning shaft 4313 to rotate simultaneously via the rotating connector 4311. The central positioning shaft 4313 is connected to the central positioning shaft 4313 via a mounting connecting plate 4314. The extrusion disc 4315 is positioned to prevent loosening. The Z-shaped connecting rod 4312 rotates around the rotating connector 4311, and due to its Z-shaped structure, it causes the extrusion disc 4315 to adhere to the inner wall of the processing pipe 431, crushing and extruding debris and waste. The extrusion disc 4315 itself rotates around the central axis 4317. Since the central axis 4317 is not at the center of the extrusion disc 4315, multiple extrusion discs... The discs 4315 rotate in a staggered manner to grind the debris between the two extrusion discs 4315. The heat generated by friction can be discharged through the heat dissipation gap 4319 located between the docking shell 4318 and the extrusion discs 4315. Compared with ordinary solid crushing cylinders, this structure is lighter in weight and operates faster. It can compress and crush waste into smaller particles in a short time, so that the waste collection box 41 can hold more waste. After the debris is processed, the second motor 438 drives the positioning shaft 436 to rotate. The positioning shaft 436 uses the deflection panel 435 to drive the sealing panel 4316 to separate from the bottom of the processing pipe 431, so that the debris inside the processing pipe 431 can fall into the waste collection box 41. The movement path of the sealing panel 4316 is determined by the limiting slide 437 at the other end of the deflection panel 435 to prevent misalignment of the movement path, which would prevent the processing pipe 431 from being resealed.
[0043] Example 3
[0044] like Figure 3 As shown, the installation docking platform 44 includes a docking platform body 441. Limiting grooves 442 are opened on both sides of the top of the docking platform body 441, and receiving grooves 443 are opened on both sides of the bottom of the docking platform body 441. Limiting clips 444 are fixedly installed inside the receiving grooves 443. An extension bracket 445 is fixedly installed inside the docking platform body 441, and a reinforcing limiting ring 446 is fixedly installed at the bottom of the extension bracket 445.
[0045] In this embodiment, the limiting grooves 442 on both sides of the docking platform body 441 are used to adapt to the shape of the clamping panel 46 to improve the stability of the clamping panel 46, while the receiving groove 443 is used to receive the clamping panel 46, thereby providing movement space for adjusting the clamping panel 46. The limiting clip 444 limits the maximum movement range of the clamping panel 46, and the reinforcing limiting ring 446 installed on the extension bracket 445 can provide secondary fixation for the processing waste recycling device 45 to prevent the pipe from shaking.
[0046] Example 4
[0047] like Figure 3 As shown, the processing waste recycling device 45 includes a connecting pipe 451, an independent movable pipe 452, a widened receiving port 453, and a limiting platform 454. One end of the independent movable pipe 452 is movably connected to the inside of the connecting pipe 451. The widened receiving port 453 is fixedly installed on the top of the connecting pipe 451, and the limiting platform 454 is fixedly installed on the outer wall of the connecting pipe 451.
[0048] In this embodiment, the waste generated during processing first falls into the connecting pipe 451. The connecting pipe 451 expands the receiving area by widening the receiving port 453, thereby reducing the range of debris falling. The limiting platform 454 is used to fix the connecting pipe 451 to the workbench body 3, thereby improving the overall stability. The independent movable pipe 452 is used to adapt to the waste compression device 43. The waste compression device 43 and the processing waste recycling device 45 are kept in communication through the connection with the docking pipe 434.
[0049] Working principle:
[0050] like Figure 1-6As shown, the workbench body 3 is mounted on the upper surface of the workbench fixed base 1. When processing automotive parts, the workbench body 3 is fixed to either the part clamping device 4 or the workbench body 3 depending on the size of the part. When fixed to the part clamping device 4, the clamping panels 46 on both sides can be adjusted on the mounting docking platform 44 to assist in fixing the automotive parts. The limiting grooves 442 on both sides of the docking platform body 441 are used to adapt to the shape of the clamping panels 46 to improve the stability of the clamping panels 46, while the receiving groove 443 is used to receive the clamping panels 46, thereby providing movement space for adjusting the clamping panels 46. The limiting clip 444 limits the maximum movement range of the clamping panels 46, while the reinforcing limiting ring 446 mounted on the extension bracket 445 can... The waste recycling device 45 is secondary fixed to prevent pipe shaking. Waste generated during processing first falls into the connecting pipe 451. The connecting pipe 451 expands the receiving area by widening the receiving port 453, reducing the range of debris falling. The limiting platform 454 is used to fix the connecting pipe 451 to the workbench body 3, improving overall stability. The independent movable pipe 452 is used to adapt to the waste compression device 43. The waste compression device 43 and the waste recycling device 45 are kept in communication through the connection with the docking pipe 434. The extrusion discs 4315 are connected to each other through the docking shell 4318, and the extrusion discs 4315 are connected by the central shaft. 4317 is connected to the central positioning shaft 4313. During operation, the first motor 432 supplies power to the drive motor 433, enabling it to drive the Z-shaped connecting rod 4312 and the central positioning shaft 4313 to rotate simultaneously via the rotating connector 4311. The central positioning shaft 4313 limits the extrusion disc 4315 through the mounting connecting plate 4314 to prevent it from becoming loose. The Z-shaped connecting rod 4312 rotates around the rotating connector 4311, and due to its Z-shaped structure, it causes the extrusion disc 4315 to adhere to the inner wall of the processing pipe 431, extruding and crushing debris and waste. The extrusion disc 4315 itself rotates around the central shaft 4317. Since the material is not centered on the extrusion disc 4315, multiple extrusion discs 4315 rotate in a staggered manner to grind the debris between two extrusion discs 4315. The heat generated by friction can be discharged through the heat dissipation gap 4319 located between the docking housing 4318 and the extrusion disc 4315. After the debris is processed, the second motor 438 drives the positioning shaft 436 to rotate. The positioning shaft 436 uses the reversing panel 435 to drive the sealing panel 4316 to separate from the bottom of the processing pipe 431, allowing the debris inside the processing pipe 431 to fall into the waste collection box 41. The movement path of the sealing panel 4316 is determined by the limiting slide 437 at the other end of the reversing panel 435.To prevent misalignment of the relocation route, which could prevent the subsequent re-sealing of treatment pipe 431.
[0051] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present invention without departing from the scope of the present invention shall still fall within the protection scope of the present invention.
Claims
1. A double-sided milling device for processing automotive parts, comprising a worktable fixed base (1), a bidirectional milling device (2), a worktable body (3), and a parts clamping device (4), wherein the bidirectional milling device (2) is installed on both sides of the worktable fixed base (1), the worktable body (3) is movably installed on the top of the worktable fixed base (1), and the parts clamping device (4) is movably installed on the top of the worktable body (3), characterized in that: The accessory clamping device (4) includes a waste collection box (41), a partition support panel (42), a waste compression device (43), an installation docking platform (44), a processing waste recycling device (45), and a clamping panel (46). The partition support panel (42) is movably installed on the top of the waste collection box (41). The bottom of the waste compression device (43) is movably connected to the inside of the waste collection box (41). The processing waste recycling device (45) is movably installed on the top of the waste compression device (43). The installation docking platform (44) is fixedly installed on both sides of the processing waste recycling device (45). The clamping panel (46) is movably installed on both sides of the installation docking platform (44). The waste compression device (43) includes a processing pipe (431), a first motor (432), a drive motor (433), and a docking pipe (434). The docking pipe (434) is movably installed on the top of the processing pipe (431). The first motor (432) is located on one side of the processing pipe (431). The terminals of the first motor (432) are connected to the terminals of the drive motor (433). The drive motor (433) is movably installed on the top of the processing pipe (431). A deflector panel (435) is movably connected to the bottom of the processing pipe (431). A positioning shaft (436) is movably mounted on the upper surface of the deflector panel (435). A limit slide (437) is fixedly mounted on one end of the deflector panel (435). A second motor (438) is provided on the other side of the processing pipe (431). The wiring terminal of the second motor (438) is connected to the wiring terminal of the positioning shaft (436). The processing pipe (431) includes a rotary connector (4311), a Z-shaped connecting rod (4312), a positioning shaft (4313), a mounting connecting plate (4314), an extrusion disc (4315), and a sealing panel (4316). One end of the Z-shaped connecting rod (4312) is movably connected to the inside of the rotary connector (4311), and the other end of the Z-shaped connecting rod (4312) is rotatably connected to the inside of the positioning shaft (4313). The extrusion disc (4315) is sleeved on the outer wall of the positioning shaft (4313). The mounting connecting plate (4314) is installed at the junction of the positioning shaft (4313) and the extrusion disc (4315). The sealing panel (4316) is located at the bottom of the processing pipe (431). A central shaft (4317) is movably installed inside the extrusion disc (4315), and a docking shell (4318) is movably installed on the outer wall of the central shaft (4317). A heat dissipation gap (4319) is reserved between the docking shell (4318) and the extrusion disc (4315).
2. The double-sided milling device for machining automotive parts according to claim 1, characterized in that: The sealing panel (4316) is fixedly installed at the other end of the reversing panel (435), and the positioning pivot (436) is movably installed on the lower surface of the partition support panel (42); The installation docking platform (44) includes a docking platform body (441). Limiting grooves (442) are provided on both sides of the top of the docking platform body (441). Receiving grooves (443) are provided on both sides of the bottom of the docking platform body (441). Limiting retainers (444) are fixedly installed inside the receiving grooves (443). An extension bracket (445) is fixedly installed inside the docking platform body (441). A reinforcing limiting ring (446) is fixedly installed at the bottom of the extension bracket (445). The processing waste recycling device (45) includes a connecting pipe (451), an independent movable pipe (452), a widened receiving port (453), and a limiting platform (454). One end of the independent movable pipe (452) is movably connected to the inside of the connecting pipe (451). The widened receiving port (453) is fixedly installed on the top of the connecting pipe (451), and the limiting platform (454) is fixedly installed on the outer wall of the connecting pipe (451).