360-degree bridge plate machining device of efficient full-automatic machining center four-axis tool
By designing a 360° bridge plate processing device with efficient and fully automatic machining center four-axis tooling, the clamping and fixing of the bridge plate is achieved by using the clamping and rotary structure, the problem of existing equipment being unable to rotate 360° is solved, the processing accuracy and working efficiency are improved, and the production cost is reduced.
Patent Information
- Application Number
- CN202422386819.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-29
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-09-29
AI Technical Summary
The existing bridge plate processing equipment of fully automatic machining centers cannot achieve 360° rotation, resulting in low machining accuracy, increasing manual operation and material waste, and increasing production costs.
A 360° bridge processing device with efficient and fully automatic machining center four-axis tooling is designed, using clamping and rotary structures to realize clamping, fixing and rotating of bridge plates, and combining the driving of motors and cylinders to realize multi-angle processing of bridge plates.
Improve processing accuracy, reduce manual operations, save manpower and material resources, improve work efficiency and reduce production costs.
Smart Images

Figure CN223147327U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of plate processing, in particular to a 360° bridge plate processing device for a four-axis tooling of a high-efficiency full-automatic processing center. Background Technique
[0002] In the prior art, the bridge plate of a full-automatic processing center is used to clamp and fix workpieces. Therefore, operations such as drilling and sanding need to be performed on the bridge plate to form the bridge plate. However, due to production cost reasons, the processing accuracy of the mechanical equipment for plate production and processing is generally not high. Therefore, when producing wooden boards, a wooden board sander is needed to plane and sand the surface of the wooden board to make the surface of the wooden board flat, so as to facilitate the processing of the wooden board by users or downstream enterprises. In the later processing of solid wood boards, processes such as scribing, edge trimming, and angle cutting are involved, which requires a large amount of manual scribing, feeding, and calibration. If the accuracy of the product is not high, it is easy to cause large processing dimension deviations during the cutting process according to the marking line in the subsequent cutting processing, resulting in a large number of reworks and scraps, wasting a lot of manpower, consuming wood, and increasing the manufacturing cost. It can be seen that most of the mechanical equipment for plate processing in reality can only adjust the working state of the plate in the front-back or up-down direction, and cannot perform angle transformation and flipping of the wood. Summary of the Invention
[0003] In view of this, the purpose of the utility model is to provide a 360° bridge plate processing device for a four-axis tooling of a high-efficiency full-automatic processing center, which can realize the clamping and fixing of the bridge plate and the rotation of the bridge plate, so as to facilitate the processing of the bridge plate.
[0004] The utility model adopts the following method to achieve: A 360° bridge plate processing device for a four-axis tooling of a high-efficiency full-automatic processing center, including a support plate, a first motor is embedded in the middle of the left side surface of the support plate, a first turntable is arranged at the end of the output shaft of the first motor, a rotating seat is arranged on the left side surface of the first turntable, and a clamping member for realizing the clamping of the bridge plate is arranged on the left side surface of the rotating seat.
[0005] Further, the clamping member includes a clamping seat. A first strip-shaped groove is formed on the left side surface of the rotating seat. A dual-output motor is arranged in the middle of the first strip-shaped groove. The output ends of the dual-output motor are connected to a first screw rod. A moving block is spirally sleeved on the first screw rod. The clamping seat is hinged to the moving block. A second motor for driving the clamping seat to swing up and down is arranged on the moving block. A third motor is embedded in the middle of the lower surface of the clamping seat. The end of the output shaft of the third motor is provided with a second turntable. A fixed seat is arranged on the inner side surface of the second turntable. A second strip-shaped groove is formed on the inner side surface of the fixed seat. A fourth motor is arranged on the left side surface of the fixed seat. The output end of the fourth motor is connected to a second screw rod. A clamping block is spirally sleeved on the second screw rod. The left half of the second screw rod has a left-handed thread, and the right half of the second screw rod has a right-handed thread. A telescopic cylinder is arranged on the left side surface of the dual-output motor. The end of the telescopic rod of the telescopic cylinder is provided with a fixing plate. A plurality of electric suction cups are arranged on the fixing plate at equal intervals.
[0006] The beneficial effects of the present utility model are as follows: The clamping member and the first turntable are added to the device of the present utility model, which can realize the clamping and fixing of the bridge plate and can rotate the bridge plate after clamping, so as to facilitate the processing operation of the bridge plate and realize the forming of the bridge plate; The structure of the present utility model is simple and the operation is convenient, which can effectively save manpower and material resources and improve work efficiency. Description of the Drawings
[0007] Figure 1 It is a schematic structural diagram of the first state of the present utility model.
[0008] Figure 2 It is a schematic structural diagram of the second state of the present utility model. Detailed Embodiment
[0009] The following further describes the present utility model with reference to the drawings.
[0010] Please refer to Figure 1 and Figure 2 As shown, the present utility model provides an embodiment: A 360° bridge plate processing device for a high-efficiency fully automatic machining center four-axis tooling, including a support plate 1. A first motor (not shown) is embedded in the middle of the left side surface of the support plate 1. The end of the output shaft of the first motor is provided with a first turntable 2. A rotating seat 3 is arranged on the left side surface of the first turntable 2. A clamping member 4 for realizing the clamping of the bridge plate is arranged on the left side surface of the rotating seat 3. By means of the first motor, the first turntable 2 can be driven to rotate, and the rotation of the bridge plate can be realized, so as to facilitate the 360° processing operation of the bridge plate. Through the action of the clamping member 4, the clamping and fixing of the bridge plate can be realized, which is convenient for the processing of the bridge plate.
[0011] Please continue to refer to Figure 1 andFigure 2 As shown in the figure, in an embodiment of the present utility model, the clamping member 4 includes a clamping seat 41. A first strip-shaped groove 42 is formed in the left side surface of the rotating seat 3. A dual-output motor 43 is arranged in the middle of the first strip-shaped groove 42. The output end of the dual-output motor 43 is connected to a first screw rod 44. A moving block 45 is spirally sleeved on the first screw rod 44. The clamping seat 41 is hinged on the moving block 45. A second motor (not shown) for driving the clamping seat 41 to swing up and down is arranged on the moving block 45. A third motor (not shown) is embedded in the middle of the lower surface of the clamping seat 41. The end of the output shaft of the third motor is provided with a second turntable 46. A fixing seat 47 is arranged on the inner side surface of the second turntable 46. A second strip-shaped groove 48 is formed in the inner side surface of the fixing seat 47. A fourth motor 49 is arranged on the left side surface of the fixing seat 47. The output end of the fourth motor 49 is connected to a second screw rod 5. A clamping block 51 is spirally sleeved on the second screw rod 5. The left half of the second screw rod 5 has a left-handed thread, and the right half of the second screw rod 5 has a right-handed thread. A telescopic cylinder 6 is arranged on the left side surface of the dual-output motor 43. The end of the telescopic rod of the telescopic cylinder 6 is provided with a fixing plate 61. A plurality of electric suction cups 62 are arranged on the fixing plate 61 at equal intervals. By driving the first screw rod 44 to rotate through the dual-output motor 43, the up and down movement of the moving block 45 can be realized by the rotation of the first screw rod 44, so that the clamping of the bridge plate can be realized. By driving the clamping seat 41 to swing through the second motor, the taking of the bridge plate can be facilitated. By driving the second turntable 46 to rotate through the third motor, the rotation of the clamped bridge plate can be realized. By driving the second screw rod 5 to rotate through the fourth motor 49, the clamping effect of the bridge plate can be realized through the clamping block 51. After the bridge plate is processed, the fixing plate 61 is driven to move left and right through the telescopic cylinder 6, so that the adsorption and fixation of the bridge plate can be realized. Then, the clamping seat 41 is opened to realize the processing of the upper and lower surfaces of the bridge plate.
[0012] The dual-output motor, motor, electric suction cup and telescopic cylinder in the present utility model are all prior arts, and those skilled in the art have been able to clearly understand them, so no detailed description will be given here.
[0013] The above are only the preferred embodiments of the present utility model. All equivalent changes and modifications made according to the scope of the patent application of the present utility model shall fall within the scope covered by the present utility model.
Claims
1. A 360° bridge plate machining device for a four-axis tooling of a high-efficiency full-automatic machining center, characterized in that: It includes a support plate, in the middle of the left side surface of the support plate is embedded with a first motor, at the end of the output shaft of the first motor is provided with a first turntable, on the left side surface of the first turntable is provided with a rotating seat, and on the left side surface of the rotating seat is provided with a clamping member for clamping the bridge plate.
2. The 360° bridge plate processing device of the four-axis tooling for an efficient full-automatic machining center according to claim 1, characterized in that: The clamping member includes a clamping seat, a first strip-shaped groove is opened on the left side surface of the rotating seat, in the middle of the first strip-shaped groove is provided with a double-output motor, the output ends of the double-output motor are connected with first screws, on the first screws are spirally sleeved with moving blocks, on the moving blocks is hingedly arranged the clamping seat, on the moving blocks is provided with a second motor for driving the clamping seat to swing up and down, in the middle of the lower surface of the clamping seat is embedded with a third motor, at the end of the output shaft of the third motor is provided with a second turntable, on the inner side surface of the second turntable is provided with a fixed seat, in the inner side surface of the fixed seat is opened a second strip-shaped groove, on the left side surface of the fixed seat is provided with a fourth motor, the output end of the fourth motor is connected with a second screw, on the second screw is spirally sleeved with a clamping block, the left half part of the second screw is a left-handed thread, the right half part of the second screw is a right-handed thread, on the left side surface of the double-output motor is provided with a telescopic cylinder, at the end of the telescopic rod of the telescopic cylinder is provided with a fixing plate, and on the fixing plate are equidistantly arranged a plurality of electric suction cups.