A processing equipment for solving the misalignment of a new energy electric vehicle reducer shell
By introducing a combination of moving, positioning, clamping, and supporting components into the machining equipment for reducer housings of new energy electric vehicles, the problems of equipment vibration stability and support area adjustment were solved, enabling stable machining and adaptive clamping of the spindle boring bar, thus improving the machining effect and the overall stability of the equipment.
Patent Information
- Application Number
- CN202211388671.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-11-08
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2042-11-08
AI Technical Summary
Existing equipment for processing reducer housings for new energy electric vehicles suffers from poor vibration stability, difficulty in adjusting the support area, and inconvenient spindle boring bar positioning, all of which affect the processing results.
The system employs a combination of a moving component, a positioning component, a clamping component, an adjusting component, a base, a support block, and a support component. The moving component drives the spindle boring bar to the machining center for processing, while the positioning and clamping components limit and clamp the spindle boring bar. The adjusting component adapts to different sizes, and the support component increases the bottom support area to improve stability.
This achieves stability and applicability of the equipment during the processing, making the spindle boring bar more stable during processing, adapting to spindle boring bars of different sizes, and improving the processing effect and the overall support stability of the equipment.
Smart Images

Figure CN115635115B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of new energy electric vehicle technology, and in particular to a processing device for solving the misalignment of the reducer housing in new energy electric vehicles. Background Technology
[0002] New energy electric vehicles consist of: an electric drive and control system, mechanical systems such as drive transmission, and working devices to perform predetermined tasks. The electric drive and control system is the core of an electric vehicle and the biggest difference between it and an internal combustion engine vehicle. The electric drive and control system comprises a drive motor, a power supply, and a speed control device for the motor. Other components of an electric vehicle are basically the same as those of an internal combustion engine vehicle.
[0003] In the processing of reducer housings for new energy electric vehicles, new energy electric vehicle reducer housing processing equipment is often required. Existing new energy electric vehicle reducer housing processing equipment is prone to processing situations with different axes. However, during processing, the bottom of the processing device is usually supported and limited by support legs. The equipment has poor vibration stability during processing and it is inconvenient to adjust its support area, which may affect its support stability. In addition, it is inconvenient to adjust and limit the spindle boring bar during processing, which reduces the processing effect of the equipment. Summary of the Invention
[0004] The purpose of this invention is to solve the problems of poor vibration stability during processing of existing equipment, inconvenience in adjusting its support area, which may affect its support stability, and inconvenience in adjusting and limiting the main spindle boring bar during processing, which reduces the processing effect of the equipment. The invention proposes a processing equipment to solve the problem of misalignment of the reducer housing of new energy electric vehicles.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A machining device for resolving misalignment of reducer housings in new energy electric vehicles includes fixed plates. A spindle boring bar is positioned above the fixed plates, and a machining center is positioned between the two fixed plates. A moving component for moving the spindle boring bar is mounted on the fixed plates. A positioning component for limiting the spindle boring bar is linked to the moving component. A chuck is positioned above the spindle boring bar. A clamping component for holding the spindle boring bar is mounted on the positioning component. An adjusting component is positioned at the bottom of the clamping component. Support columns are fixed to the bottom surfaces of both fixed plates. A base is fixed to the bottom of each support column. A support block is positioned on one side of each base. A support component for increasing the support area of the base is mounted on the base. Protrusions for splicing and limiting are mounted on the two support blocks.
[0007] Preferably, the moving component includes a mounting plate fixed to one side surface of a fixed plate. A first motor is mounted on the surface of the mounting plate. Symmetrically distributed connecting seats are fixed to the bottom of the fixed plate. A threaded rod is fixed to the output end of the first motor through the connecting seat. One end of the threaded rod is rotatably connected to one of the connecting seats via a bearing. A threaded block is threadedly connected to the surface of the threaded rod. An opening is provided on the surface of the fixed plate. A first slider is fixed to the top of the threaded block. The end of the first slider is slidably fixed to the mounting seat through the opening. A second motor is mounted on the top of the mounting seat. The output end of the second motor is fixedly connected to a spindle boring bar.
[0008] Preferably, one end of the threaded rod is fixed with a driving wheel, the surface of the driving wheel is driven by a belt to a driven wheel, a connecting shaft is fixed at the axis of the driven wheel, one end of the connecting shaft is rotatably connected to a first fixed seat via a bearing, one end of the first fixed seat is fixedly connected to one side surface of the fixed plate, the other end of the connecting shaft is fixed with a rotating gear, the surface of the rotating gear is meshed with a rack, one side surface of the rack is fixed with a limit block, the limit block is slidably disposed in a first limit groove, the first limit groove is opened on one side surface of the side plate, and one end of the side plate is fixedly connected to the fixed plate.
[0009] Preferably, a crossbar is fixed to one end of the rack, a concave seat is fixed to the end of the crossbar, a guide rail is fixed to the bottom of the concave seat, a third motor is installed on the inner wall of the concave seat, a rotating rod is fixed to the output end of the third motor, a first arc-shaped rod is rotatable at one end of the rotating rod via a pin, a first slide block is rotatable at the end of the first arc-shaped rod via a pin, the first slide block is slidably connected to the surface of the guide rail, a second arc-shaped rod is rotatable at the other end of the rotating rod via a pin, a second slide block is rotatable at the end of the second arc-shaped rod via a pin, the second slide block is slidably connected to the guide rail, and a connecting part is installed at the bottom of both the second slide block and the first slide block, the bottom of the connecting part being fixedly connected to the adjustment assembly.
[0010] Preferably, a clamping plate is fixed to the bottom of both connecting parts, a telescopic rod is fixed to one side surface of the clamping plate, a limiting plate is fixed to the end of each of the multiple telescopic rods, one side surface of the limiting plate is fixedly connected to the clamp, and a telescopic spring is fixed between the limiting plate and the clamping plate, the telescopic spring being sleeved on the surface of the telescopic rod.
[0011] Preferably, the support assembly includes a second fixed seat fixed to the top of the base, an electric push rod mounted on the second fixed seat, a connecting block fixed to the output end of the electric push rod, a second limiting groove formed on the top surface of the base, a second slider fixed to the bottom of the connecting block, a slide plate fixed to the end of the second slider through the second limiting groove, the slide plate being slidably connected inside the base, and one end of the slide plate being fixedly connected to the support block.
[0012] Preferably, one of the support blocks has a slot on one side surface, a compression spring is fixed inside the slot, a locking block is fixed to the end of the compression spring, a moving block is fixed to one end of the locking block, a limiting opening is opened on the surface of the support block, and the end of the moving block slides through the limiting opening and is fixedly connected to the toggle block.
[0013] Preferably, a protrusion is fixed to one side surface of another support block, and a groove is formed on the surface of the protrusion.
[0014] Preferably, the machining center has a machining structure installed inside, and through holes are provided on both sides of the machining center.
[0015] Preferably, one end of each of the two fixing plates is fixed with a reinforcing rib, the end of the reinforcing rib is fixedly connected to the machining center, and the bottom of the support block and the base are both provided with anti-slip pads.
[0016] Compared with the prior art, the present invention provides a processing device for solving the misalignment of the reducer housing in new energy electric vehicles, which has the following beneficial effects:
[0017] 1. This is a processing equipment for solving the problem of misalignment of the reducer housing of new energy electric vehicles. By cooperating with the moving component and the positioning component set on the fixed plate, the main spindle boring bar is easily moved to the machining center for processing. At the same time, the main spindle boring bar is fixed and limited to make the equipment more stable during processing.
[0018] 2. This processing equipment for solving the problem of misalignment of the reducer housing in new energy electric vehicles uses a combination of positioning components, clamping components, and adjusting components to drive multiple chucks to wrap, clamp, and limit the spindle boring bar. At the same time, it can automatically adjust according to the size of the spindle boring bar, providing a good protective effect for the spindle boring bar.
[0019] 3. This processing equipment for solving the misalignment of reducer housings in new energy electric vehicles uses a base, support blocks, and support components set below the fixed plate to facilitate adjustment of the bottom support area of the fixed plate, thereby improving the support stability of the equipment. At the same time, the two support blocks are spliced together to form a whole, which improves the structural strength.
[0020] All parts of the device not described herein are the same as or can be implemented using existing technologies. This invention, through the cooperation of the moving component, positioning component, chuck, clamping component, adjusting component, base, support block and support component, enables the spindle boring bar to be supported and limited after movement, while providing good protection for the spindle boring bar. It also adapts and adjusts to spindle boring bars of different sizes, making it convenient for operators to use. The support surface at the bottom of the equipment can be adjusted after installation to ensure overall stability. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the structure of a processing equipment for solving the misalignment of the reducer housing in a new energy electric vehicle, as proposed in this invention.
[0022] Figure 2 This is a partial side view of a processing equipment for solving the misalignment of the reducer housing in new energy electric vehicles, as proposed in this invention.
[0023] Figure 3 The present invention proposes Figure 2 Enlarged view of region A in the middle;
[0024] Figure 4 This is a partial structural diagram of the clamping component proposed in this invention;
[0025] Figure 5 This is a partial structural diagram of the adjustment component proposed in this invention;
[0026] Figure 6 This is a partial structural diagram of the support component proposed in this invention;
[0027] Figure 7 This is a partial cross-sectional view of the adjustment component proposed in this invention;
[0028] Figure 8 This is a partial cross-sectional view of the support block structure proposed in this invention.
[0029] In the diagram: 1. Fixed plate; 2. Spindle boring bar; 3. Machining center; 4. Moving assembly; 401. Mounting plate; 402. First motor; 403. Connecting seat; 404. Threaded rod; 405. Threaded block; 406. Opening; 407. First slider; 408. Mounting seat; 409. Second motor; 5. Positioning assembly; 501. Driving wheel; 502. Driven wheel; 503. Connecting shaft; 504. First fixed seat; 505. Rotating gear; 506. Rack; 507. Limiting block; 508. First limiting groove; 509. Side plate; 6. Chuck; 7. Clamping assembly; 701. Crossbar; 702. Concave seat; 703. Guide rail; 704. Third motor; 705. Rotating rod; 706. First arc-shaped rod; 707. 708. First slide block; 709. Second arc-shaped rod; 710. Second slide block; 8. Connecting part; 8. Adjusting assembly; 801. Clamping plate; 802. Telescopic rod; 803. Limiting plate; 804. Telescopic spring; 9. Support column; 10. Base; 11. Support block; 12. Support assembly; 1201. Second fixed seat; 1202. Electric push rod; 1203. Connecting block; 1204. Second limiting groove; 1205. Second slider; 1206. Slide plate; 1207. Slot; 1208. Compression spring; 1209. Locking block; 1210. Moving block; 1211. Limiting port; 1212. Actuating block; 13. Protrusion; 14. Locking groove; 15. Machining structure; 16. Through hole; 17. Reinforcing rib; 18. Anti-slip pad. Detailed Implementation
[0030] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0031] In the description of this invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0032] Example 1:
[0033] Reference Figure 1-8A processing device for solving the misalignment of reducer housings in new energy electric vehicles includes a fixed plate 1, a spindle boring bar 2 disposed above the fixed plate 1, a machining center 3 disposed between the two fixed plates 1, a moving component 4 disposed on the fixed plate 1 for moving the spindle boring bar 2, a positioning component 5 for limiting the spindle boring bar 2 being linked to the moving component 4, a chuck 6 disposed above the spindle boring bar 2, a clamping component 7 for clamping the spindle boring bar 2 being mounted on the positioning component 5, an adjusting component 8 disposed at the bottom of the clamping component 7, support columns 9 being fixed to the bottom surfaces of the two fixed plates 1, a base 10 being fixed to the bottom of the support columns 9, a support block 11 disposed on one side of the base 10, a support component 12 for increasing the support area of the base 10 being mounted on the base 10, and protrusions 13 for splicing and limiting being mounted on the two support blocks 11.
[0034] In this invention, during use, the device is moved to the processing area. The support component 12 on the base 10 facilitates the relative movement of the support block 11, which is then engaged and spliced into a whole, thereby increasing the support area at the bottom of the device and making the device more stable during processing. After adjustment, during processing, the moving component 4 on the fixed plate 1 drives the spindle boring bar 2 to move relative to the machining center 3, allowing the spindle boring bar 2 to extend into it for processing. After adjusting the position, the moving component 4 drives the positioning component 5 to move together, causing the positioning component 5 to move the chuck 6, clamping component 7, and adjusting component 8 downward as a whole, thereby supporting and limiting the spindle boring bar 2, achieving a good positioning effect. When the clamping component 7 is running, multiple chucks 6 clamp and limit the spindle boring bar 2 from all sides, preventing shaking and facilitating processing operations. At the same time, the adjusting component 8 can be used to adapt to different sizes of spindle boring bars 2 for clamping and fixing operations, improving the applicability of the device.
[0035] Example 2:
[0036] Reference Figure 1-8 A processing device for solving the misalignment of reducer housings in new energy electric vehicles includes a fixed plate 1, a spindle boring bar 2 disposed above the fixed plate 1, a machining center 3 disposed between the two fixed plates 1, a moving component 4 disposed on the fixed plate 1 for moving the spindle boring bar 2, a positioning component 5 for limiting the spindle boring bar 2 being linked to the moving component 4, a chuck 6 disposed above the spindle boring bar 2, a clamping component 7 for clamping the spindle boring bar 2 being mounted on the positioning component 5, an adjusting component 8 disposed at the bottom of the clamping component 7, support columns 9 being fixed to the bottom surfaces of the two fixed plates 1, a base 10 being fixed to the bottom of the support columns 9, a support block 11 disposed on one side of the base 10, a support component 12 for increasing the support area of the base 10 being mounted on the base 10, and protrusions 13 for splicing and limiting being mounted on the two support blocks 11.
[0037] The moving component 4 includes a mounting plate 401 fixed to one side surface of the fixed plate 1. A first motor 402 is mounted on the surface of the mounting plate 401. Symmetrically distributed connecting seats 403 are fixed to the bottom of the fixed plate 1. A threaded rod 404 is fixed through the connecting seat 403 at the output end of the first motor 402. One end of the threaded rod 404 is rotatably connected to one of the connecting seats 403 via a bearing. A threaded block 405 is threadedly connected to the surface of the threaded rod 404. An opening 406 is provided on the surface of the fixed plate 1. A first slider 407 is fixed to the top of the threaded block 405. The end of the first slider 407 slides through the opening 406 and is fixedly connected to a mounting seat 408. A second motor 409 is mounted on the top of the mounting seat 408. The output end of the second motor 409 is fixedly connected to the spindle boring bar 2.
[0038] In this invention, the first motor 402 is started to drive the threaded rod 404 to rotate. The rotation of the threaded rod 404 drives the threaded block 405 to move, and the movement of the threaded block 405 drives the first slider 407 to move. This causes the mounting base 408 on the top of the first slider 407 to move synchronously, thereby moving the spindle boring bar 2 mounted on one side of the mounting base 408. The position of the spindle boring bar 2 is adjusted, allowing the equipment to perform machining operations better. The opening 406 allows the first slider 407 to slide inside, thereby limiting the movement of the threaded block 405 and making the structure operate more smoothly. When it is necessary to rotate the spindle boring bar 2, the second motor 409 can drive the spindle boring bar 2 to rotate, which is suitable for different machining needs. After machining is completed, the first motor 402 is started to reverse, which can retract the spindle boring bar 2 to its original position, making the operation convenient.
[0039] Example 3:
[0040] Reference Figure 1-8 A processing device for solving the misalignment of reducer housings in new energy electric vehicles includes a fixed plate 1, a spindle boring bar 2 disposed above the fixed plate 1, a machining center 3 disposed between the two fixed plates 1, a moving component 4 disposed on the fixed plate 1 for moving the spindle boring bar 2, a positioning component 5 for limiting the spindle boring bar 2 being linked to the moving component 4, a chuck 6 disposed above the spindle boring bar 2, a clamping component 7 for clamping the spindle boring bar 2 being mounted on the positioning component 5, an adjusting component 8 disposed at the bottom of the clamping component 7, support columns 9 being fixed to the bottom surfaces of the two fixed plates 1, a base 10 being fixed to the bottom of the support columns 9, a support block 11 disposed on one side of the base 10, a support component 12 for increasing the support area of the base 10 being mounted on the base 10, and protrusions 13 for splicing and limiting being mounted on the two support blocks 11.
[0041] One end of the threaded rod 404 is fixed with a drive wheel 501. The surface of the drive wheel 501 is driven by a belt to a driven wheel 502. A connecting shaft 503 is fixed at the shaft center of the driven wheel 502. One end of the connecting shaft 503 is rotatably connected to a first fixed seat 504 via a bearing. One end of the first fixed seat 504 is fixedly connected to one side surface of the fixed plate 1. The other end of the connecting shaft 503 is fixed with a rotating gear 505. A rack 506 meshes with the surface of the rotating gear 505. A limit block 507 is fixed to one side surface of the rack 506. The limit block 507 is slidably disposed in a first limit groove 508. The first limit groove 508 is opened on one side surface of a side plate 509. One end of the side plate 509 is fixedly connected to the fixed plate 1.
[0042] In this invention, when the threaded rod 404 rotates, it drives the driving wheel 501 to rotate. The driving wheel 501 drives the driven wheel 502 to rotate synchronously. When the driven wheel 502 rotates, it drives the connecting shaft 503 to rotate, causing the rotating gear 505 at one end of the connecting shaft 503 to rotate. The rotating gear 505 meshes with the rack 506, causing the rack 506 to move downward. This causes the chuck 6, clamping assembly 7, and adjusting assembly 8 to move downward as a whole. By utilizing the cooperation of the chuck 6, clamping assembly 7, and adjusting assembly 8, the spindle boring bar 2 is positioned and clamped, making the spindle boring bar 2 more stable during machining. When the rack 506 moves, the limiting block 507 slides inside the first limiting groove 508, which plays a role in limiting the movement of the rack 506 and improving the stability of the structure.
[0043] Example 4:
[0044] Reference Figure 1-8 A processing device for solving the misalignment of reducer housings in new energy electric vehicles includes a fixed plate 1, a spindle boring bar 2 disposed above the fixed plate 1, a machining center 3 disposed between the two fixed plates 1, a moving component 4 disposed on the fixed plate 1 for moving the spindle boring bar 2, a positioning component 5 for limiting the spindle boring bar 2 being linked to the moving component 4, a chuck 6 disposed above the spindle boring bar 2, a clamping component 7 for clamping the spindle boring bar 2 being mounted on the positioning component 5, an adjusting component 8 disposed at the bottom of the clamping component 7, support columns 9 being fixed to the bottom surfaces of the two fixed plates 1, a base 10 being fixed to the bottom of the support columns 9, a support block 11 disposed on one side of the base 10, a support component 12 for increasing the support area of the base 10 being mounted on the base 10, and protrusions 13 for splicing and limiting being mounted on the two support blocks 11.
[0045] A crossbar 701 is fixed to one end of the rack 506, a concave seat 702 is fixed to the end of the crossbar 701, a guide rail 703 is fixed to the bottom of the concave seat 702, a third motor 704 is installed on the inner wall of the concave seat 702, a rotating rod 705 is fixed to the output end of the third motor 704, a first arc-shaped rod 706 is rotatable at one end of the rotating rod 705 via a pin, a first slide block 707 is rotatable at the end of the first arc-shaped rod 706 via a pin, the first slide block 707 is slidably connected to the surface of the guide rail 703, a second arc-shaped rod 708 is rotatable at the other end of the rotating rod 705 via a pin, a second slide block 709 is rotatable at the end of the second arc-shaped rod 708 via a pin, the second slide block 709 is slidably connected to the guide rail 703, and a connecting part 710 is installed at the bottom of both the second slide block 709 and the first slide block 707, the bottom of the connecting part 710 is fixedly connected to the adjusting assembly 8.
[0046] In this invention, the third motor 704 is started to drive the rotating rod 705 to rotate. When the rotating rod 705 rotates, it drives the second arc rod 708 and the first arc rod 706 to make arc-shaped movements. During the movement of the second arc rod 708 and the first arc rod 706, the second slide block 709 and the first slide block 707 slide relative to each other on the guide rail 703. The bottom of the second slide block 709 and the first slide block 707 is equipped with a connecting part 710, which allows the chuck 6 set below to move relative to each other and clamp and fix the moved spindle boring bar 2. On the one hand, it supports and limits the spindle boring bar 2 to prevent shaking and improve the stability of the equipment processing.
[0047] Example 5:
[0048] Reference Figure 1-8 A processing device for solving the misalignment of reducer housings in new energy electric vehicles includes a fixed plate 1, a spindle boring bar 2 disposed above the fixed plate 1, a machining center 3 disposed between the two fixed plates 1, a moving component 4 disposed on the fixed plate 1 for moving the spindle boring bar 2, a positioning component 5 for limiting the spindle boring bar 2 being linked to the moving component 4, a chuck 6 disposed above the spindle boring bar 2, a clamping component 7 for clamping the spindle boring bar 2 being mounted on the positioning component 5, an adjusting component 8 disposed at the bottom of the clamping component 7, support columns 9 being fixed to the bottom surfaces of the two fixed plates 1, a base 10 being fixed to the bottom of the support columns 9, a support block 11 disposed on one side of the base 10, a support component 12 for increasing the support area of the base 10 being mounted on the base 10, and protrusions 13 for splicing and limiting being mounted on the two support blocks 11.
[0049] Both connecting parts 710 have a clamping plate 801 fixed at their bottom. A telescopic rod 802 is fixed on one side surface of the clamping plate 801. A limiting plate 803 is fixed at the end of each of the multiple telescopic rods 802. One side surface of the limiting plate 803 is fixedly connected to the clamp 6. A telescopic spring 804 is fixed between the limiting plate 803 and the clamping plate 801. The telescopic spring 804 is sleeved on the surface of the telescopic rod 802.
[0050] In this invention, when the two connecting parts 710 move relative to each other, they drive the clamping plate 801 to move synchronously, so that the chuck 6 wraps around and clamps the outer wall surface of the spindle boring bar 2. The chuck 6 drives the limiting plate 803 to move according to the force applied to the spindle boring bar 2 of different sizes, so that the limiting plate 803 compresses the telescopic spring 804 to adapt to the curved surface of the spindle boring bar 2, thereby achieving automatic adaptation and adjustment, good clamping and fixing effect, and the elastic clamping plays a good protective role for the spindle boring bar 2, effectively preventing the spindle boring bar 2 from being damaged by excessive clamping force. It should be noted that the chuck 6 can be made of rubber material, and one end of the chuck 6 is arc-shaped.
[0051] Example 6:
[0052] Reference Figure 1-8 A processing device for solving the misalignment of reducer housings in new energy electric vehicles includes a fixed plate 1, a spindle boring bar 2 disposed above the fixed plate 1, a machining center 3 disposed between the two fixed plates 1, a moving component 4 disposed on the fixed plate 1 for moving the spindle boring bar 2, a positioning component 5 for limiting the spindle boring bar 2 being linked to the moving component 4, a chuck 6 disposed above the spindle boring bar 2, a clamping component 7 for clamping the spindle boring bar 2 being mounted on the positioning component 5, an adjusting component 8 disposed at the bottom of the clamping component 7, support columns 9 being fixed to the bottom surfaces of the two fixed plates 1, a base 10 being fixed to the bottom of the support columns 9, a support block 11 disposed on one side of the base 10, a support component 12 for increasing the support area of the base 10 being mounted on the base 10, and protrusions 13 for splicing and limiting being mounted on the two support blocks 11.
[0053] The support assembly 12 includes a second fixing seat 1201 fixed to the top of the base 10. An electric push rod 1202 is mounted on the second fixing seat 1201. A connecting block 1203 is fixed to the output end of the electric push rod 1202. A second limiting groove 1204 is formed on the top surface of the base 10. A second slider 1205 is fixed to the bottom of the connecting block 1203. A slide plate 1206 is fixed to the end of the second slider 1205 through the second limiting groove 1204. The slide plate 1206 is slidably connected inside the base 10. One end of the slide plate 1206 is connected to the support block. 11. A fixed connection is provided. One of the support blocks 11 has a slot 1207 on one side surface. A compression spring 1208 is fixed inside the slot 1207. A locking block 1209 is fixed to the end of the compression spring 1208. A moving block 1210 is fixed to one end of the locking block 1209. A limiting port 1211 is provided on the surface of the support block 11. The end of the moving block 1210 slides through the limiting port 1211 and is fixedly connected to the toggle block 1212. A protrusion 13 is fixed on one side surface of the other support block 11. A slot 14 is provided on the surface of the protrusion 13.
[0054] In this invention, the electric push rod 1202 is activated to move the connecting block 1203. The movement of the connecting block 1203 causes the second slider 1205 to slide inside the second limiting groove 1204. The second limiting groove 1204 limits the movement of the second slider 1205, ensuring smooth operation of the structure. The end of the second slider 1205 is connected to the sliding plate 1206, causing the sliding plate 1206 to slide inside the base 10. This, in turn, causes the two support blocks 11 to move relative to each other, increasing the support area at the bottom of the equipment and making the equipment more stable. When the two support blocks 11 move relative to each other, one of the support blocks 11... The protrusion 13 on the side surface is inserted into the slot 1207. The elastic rebound of the compression spring 1208 compresses the locking block 1209, so that the locking block 1209 is locked and limited by the slot 14 opened on the surface of the protrusion 13, thereby fixing the two support blocks 11 together. When it is necessary to separate them, the toggle block 1212 is manually moved to move the moving block 1210. The moving block 1210 connects with the locking block 1209, so that the locking block 1209 is separated from the slot 14. Then the electric push rod 1202 is activated to pull the protrusion 13 out of the slot 1207, and the two support blocks 11 can be separated. The operation is convenient and quick for the staff.
[0055] Example 7:
[0056] Reference Figure 1-8A processing device for solving the misalignment of reducer housings in new energy electric vehicles includes a fixed plate 1, a spindle boring bar 2 disposed above the fixed plate 1, a machining center 3 disposed between the two fixed plates 1, a moving component 4 disposed on the fixed plate 1 for moving the spindle boring bar 2, a positioning component 5 for limiting the spindle boring bar 2 being linked to the moving component 4, a chuck 6 disposed above the spindle boring bar 2, a clamping component 7 for clamping the spindle boring bar 2 being mounted on the positioning component 5, an adjusting component 8 disposed at the bottom of the clamping component 7, support columns 9 being fixed to the bottom surfaces of the two fixed plates 1, a base 10 being fixed to the bottom of the support columns 9, a support block 11 disposed on one side of the base 10, a support component 12 for increasing the support area of the base 10 being mounted on the base 10, and protrusions 13 for splicing and limiting being mounted on the two support blocks 11.
[0057] The machining center 3 has a machining structure 15 installed inside. Both sides of the machining center 3 have through holes 16. One end of each of the two fixing plates 1 is fixed with a reinforcing rib 17. The end of the reinforcing rib 17 is fixedly connected to the machining center 3. The bottom of the support block 11 and the base 10 are both provided with anti-slip pads 18.
[0058] In this invention, the machining structure 15 installed inside the machining center 3 facilitates the machining of the reducer housing of the new energy electric vehicle. The through holes 16 on both sides of the machining center 3 facilitate the insertion of the spindle boring bar 2 into the interior of the machining center 3 for machining operations. The reinforcing ribs 17 connect and fix the machining center 3 to the two fixed plates 1, thereby strengthening the structure and making it more stable and robust. The anti-slip pads 18 support the bottom of the support block 11 and the base 10 and provide an anti-slip effect.
[0059] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A processing device for solving the misalignment of the reducer housing in new energy electric vehicles, comprising a fixing plate (1), characterized in that, A spindle boring bar (2) is disposed above the fixed plate (1), and a machining center (3) is disposed between the two fixed plates (1). A moving component (4) for moving the spindle boring bar (2) is disposed on the fixed plate (1), and a positioning component (5) for limiting the spindle boring bar (2) is linked to the moving component (4). A chuck (6) is disposed above the spindle boring bar (2), and a clamping component for clamping the spindle boring bar (2) is mounted on the positioning component (5). (7) An adjustment component (8) is provided at the bottom of the clamping component (7). Support columns (9) are fixed on the bottom surfaces of the two fixing plates (1). A base (10) is fixed at the bottom of the support column (9). A support block (11) is provided on one side of the base (10). A support component (12) for increasing the support area of the base (10) is installed on the base (10). A protrusion (13) for splicing and limiting is installed on the two support blocks (11). The moving component (4) includes a mounting plate (401) fixed to one side surface of a fixed plate (1). A first motor (402) is mounted on the surface of the mounting plate (401). A symmetrically distributed connecting seat (403) is fixed at the bottom of the fixed plate (1). A threaded rod (404) is fixed through the connecting seat (403) at the output end of the first motor (402). One end of the threaded rod (404) is rotatably connected to one of the connecting seats (403) via a bearing. A threaded block (405) is threadedly connected to the surface of the threaded rod (404). An opening (406) is provided on the surface of the fixed plate (1). A first slider (407) is fixed at the top of the threaded block (405). The end of the first slider (407) is slidably connected to a mounting seat (408) through the opening (406). A second motor (409) is mounted at the top of the mounting seat (408). The output end of the second motor (409) is fixedly connected to the spindle boring bar (2). One end of the threaded rod (404) is fixed with a drive wheel (501), and the surface of the drive wheel (501) is driven by a driven wheel (502) via a belt. A connecting shaft (503) is fixed at the center of the driven wheel (502). One end of the connecting shaft (503) is rotated by a bearing to a first fixed seat (504). One end of the first fixed seat (504) is fixedly connected to one side surface of the fixed plate (1). The other end of the connecting shaft (503) is fixed with a rotating gear (505). The surface of the rotating gear (505) is meshed with a rack (506). One side surface of the rack (506) is fixed with a limit block (507). The limit block (507) is slidably disposed in a first limit groove (508). The first limit groove (508) is opened on one side surface of a side plate (509). One end of the side plate (509) is fixedly connected to the fixed plate (1). One end of the rack (506) is fixed with a crossbar (701), and the end of the crossbar (701) is fixed with a concave seat (702). The bottom of the concave seat (702) is fixed with a guide rail (703). A third motor (704) is installed on the inner wall of the concave seat (702). A rotating rod (705) is fixed to the output end of the third motor (704). One end of the rotating rod (705) is rotatably connected to a first arc-shaped rod (706) via a pin. The end of the first arc-shaped rod (706) is rotatably connected to a first slide (705) via a pin. 07), the first slide (707) is slidably connected to the surface of the guide rail (703), the other end of the rotating rod (705) is rotatably connected to the second arc rod (708) via a pin, the end of the second arc rod (708) is rotatably connected to the second slide (709) via a pin, the second slide (709) is slidably connected to the guide rail (703), the bottom of the second slide (709) and the first slide (707) are both equipped with connecting parts (710), the bottom of the connecting parts (710) is fixedly connected to the adjusting component (8); The bottom of each of the two connecting parts (710) is fixed with a clamping plate (801), and a telescopic rod (802) is fixed on one side surface of the clamping plate (801). The ends of the multiple telescopic rods (802) are fixed with a limiting plate (803). One side surface of the limiting plate (803) is fixedly connected to the clamp (6). A telescopic spring (804) is fixed between the limiting plate (803) and the clamping plate (801). The telescopic spring (804) is sleeved on the surface of the telescopic rod (802). The support assembly (12) includes a second fixed seat (1201) fixed to the top of the base (10), an electric push rod (1202) is installed on the second fixed seat (1201), a connecting block (1203) is fixed to the output end of the electric push rod (1202), a second limiting groove (1204) is opened on the top surface of the base (10), a second slider (1205) is fixed to the bottom of the connecting block (1203), a slide plate (1206) is fixed to the end of the second slider (1205) through the second limiting groove (1204), the slide plate (1206) is slidably connected in the base (10), and one end of the slide plate (1206) is fixedly connected to the support block (11); Another support block (11) has a protrusion (13) fixed on one side surface, and the surface of the protrusion (13) has a slot (14). One of the support blocks (11) has a slot (1207) on one side surface. A compression spring (1208) is fixed inside the slot (1207). A locking block (1209) is fixed to the end of the compression spring (1208). A moving block (1210) is fixed to one end of the locking block (1209). A limiting port (1211) is opened on the surface of the support block (11). The end of the moving block (1210) slides through the limiting port (1211) and is fixedly connected to the toggle block (1212).
2. The processing equipment for solving the misalignment of the reducer housing in new energy electric vehicles according to claim 1, characterized in that, The machining center (3) has a machining structure (15) installed inside, and through holes (16) are opened on both sides of the machining center (3).
3. The processing equipment for solving the misalignment of the reducer housing in new energy electric vehicles according to claim 1, characterized in that, One end of each of the two fixed plates (1) is fixed with a reinforcing rib (17), and the end of the reinforcing rib (17) is fixedly connected to the machining center (3). The bottom of the support block (11) and the base (10) are both provided with anti-slip pads (18).
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