Double-head milling machine bare machine chip removal mechanism
By introducing a compacting assembly into the chip removal mechanism of the milling machine, the stuck and accumulation problems caused by different waste chip lengths are solved, and the complete collection of waste chips and the reduction of equipment failure rate is achieved.
Patent Information
- Application Number
- CN202421321427.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-12
- Publication Date
- 2025-05-02
- Estimated Expiration
- 2034-06-12
AI Technical Summary
The lengths of waste chips generated by the milling machine during the work process are different, which makes the chip removal device easily stuck and it is difficult to completely collect waste chips, resulting in high accumulation and equipment failure rates.
A double-head milling machine chip removal mechanism is designed, which includes a pressing assembly on the storage box, and the scrap chips are pressed through the pressing assembly so that they can be completely collected and compacted to prevent accumulation.
Effectively prevent waste chip accumulation, reduce equipment failure rate, and ensure smooth and efficient chip removal process.
Smart Images

Figure CN222818466U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of numerical control equipment, and more specifically, to an optical-mechanical chip removal mechanism of a double-head milling machine. Background Art
[0002] With the development of science and technology, automated production technology has become increasingly mature; among them, milling machine equipment is the most commonly used equipment in automated production; these machining centers often generate a large amount of waste chips during operation, and these waste chips are discharged through the chip removal mechanism, but the lengths of the generated waste chips are different. When the chip removal mechanism is discharging the waste chips, it is easy for the chip removal device to get stuck. At the same time, the waste chips are long and difficult to collect after being discharged, resulting in a large amount of accumulation, which increases the failure rate of the equipment.
[0003] Therefore, a new solution needs to be proposed to solve this problem. Utility Model Content
[0004] In view of the shortcomings of the prior art, the purpose of the utility model is to provide a double-head milling machine optical machine chip removal mechanism. A clamping assembly is provided on the storage box, and the clamping assembly presses the waste chips so that the waste chips can be completely collected, thereby preventing the accumulation of waste chips and reducing the failure rate of the equipment.
[0005] The above technical purpose of the utility model is achieved through the following technical scheme: a double-head milling machine optical machine chip removal mechanism, including a body, a material chute is arranged on the body, an inclined screen plate is arranged in the material chute, a crushing assembly is arranged at the bottom end of the screen plate, a feed pipe is installed at the bottom end of the material chute, a rotating feed rod is arranged in the feed pipe, a storage box is arranged at the end of the material pipe away from the material chute, and a clamping assembly is arranged in the storage box.
[0006] Preferably, the crushing assembly includes a vertically rotating rotating rod, a plurality of crushing groups are arranged in a circular array on the rotating rod, the crushing groups are provided with a plurality of arrays of crushing rods, a support frame is provided at the bottom end of the screen plate, a plurality of crushing plates are arranged in an array on the support frame and are parallel to the screen plate, and the plurality of crushing rods are respectively arranged between the plurality of crushing plates.
[0007] Preferably, the clamping assembly includes two symmetrically arranged clamping plates, two slideways are arranged on the inner wall of one side of the storage box, the two clamping plates are slidably arranged on the two slideways respectively, and a feeding surface corresponding to the feeding pipe is arranged at the end of the clamping plate, and the feeding surfaces on the two clamping plates form a V shape.
[0008] Preferably, the storage box is symmetrically provided with through slots, and the two clamping plates are each provided with a toggle rod corresponding to the through slots. A driving rod is rotatably provided on the storage box, and slot holes are provided on both sides of the driving rod. The toggle rod passes through the through slots and is established in the slot holes. A rotating driving disk is provided on the storage box, and a push rod is rotatably connected to the side of the driving disk away from the rotating shaft, and the end of the push rod away from the driving disk is rotatably connected to the driving rod, a driving gear is provided at the driving end of the driving motor, and a gear sleeve meshing with the driving gear is provided on the outer side of the driving disk.
[0009] Preferably, a material drop opening is provided at the bottom end of the storage box, and the storage box is movably connected to a sealing plate for blocking the material drop opening.
[0010] The utility model has the following beneficial effects:
[0011] When the waste chips on the milling machine are discharged into the blanking chute, the screen plate will screen the waste chips. The longer waste chips pass through the screen plate and fall on the crushing plate. The crushing rod cuts the waste chips into pieces, so that the waste chips are broken into the required size until the waste chips fall into the end of the feed pipe, and the waste chips are transported to the pressing plate through the feed chute and the feed rod. Since a feed surface is provided at the top of the blanking plate, the feed surfaces on the two pressing plates form a V shape, and then the driving motor drives the driving gear to rotate, and the driving gear drives the driving disc to rotate through the gear sleeve, so that the driving disc drives the driving rod to rotate through the push rod, and then the driving rod rotates through the toggle rod, so that the two pressing plates slide up and down along the slide, so that the two pressing plates slide up and down, and the waste chips fall into the storage box through the gap formed by the two pressing plates. After the waste chips fall into the storage box, the waste chips are compacted in the storage box by the pressing plate. When the waste chips are compacted in the storage box, the blanking port is opened by opening the sealing plate, and then the waste chips are collected and cleaned. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Figure 1 The structure of the utility model is shown in FIG. Figure 1 ;
[0013] Figure 2 The structure of the utility model is shown in FIG. Figure 2 ;
[0014] Figure 3 This is a schematic diagram of the structure of the crushing component of the utility model;
[0015] Figure 4 It is an exploded diagram of the crushing component of the utility model;
[0016] Figure 5 It is a structural schematic diagram of the clamping assembly of the utility model.
[0017] In the figure: 1. body; 2. feeding chute; 3. screen plate; 4. crushing assembly; 5. feeding pipe; 6. feeding rod; 7. storage box; 8. clamping assembly; 9. rotating rod; 10. crushing group; 11. crushing rod; 12. supporting frame; 13. crushing plate; 14. clamping plate; 15. slideway; 16. feeding surface; 17. toggle rod; 18. driving rod; 19. slot; 20. driving disk; 21. pushing rod; 22. driving gear; 23. gear sleeve; 24. feeding port; 25. sealing plate. DETAILED DESCRIPTION
[0018] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all of the embodiments.
[0019] A double-head milling machine optical chip removal mechanism, such as Figures 1 to 5 As shown, it includes an organic body 1, and a material drop chute 2, a screen plate 3, a crushing assembly 4, a material conveying pipe 5, a material conveying rod 6, a receiving box 7 and a pressing assembly 8 arranged on the organic body 1.
[0020] refer to Figure 1 and Figure 2 As shown: the material chute 2 is funnel-shaped, the material chute 2 is fixedly installed on the body 1 by bolts, the screen plate 3 is obliquely installed on the material chute 2 by bolts, the crushing assembly 4 is arranged at the bottom end of the screen plate 3 to crush the waste chips screened out by the screen plate 3, the feeding pipe 5 is fixedly installed with the bottom end of the material chute 2 by bolts, the axial hole of the feeding rod 6 is rotatably fitted in the feeding pipe 5, a storage box 7 is welded on one side of the body 1, the storage box 7 is correspondingly arranged at the end of the feeding pipe 5 away from the material chute 2, a clamping assembly 8 is arranged in the storage box 7 to collect waste chips, a material dropping port 24 is opened at the bottom end of the storage box 7, and the storage box 7 is movably connected to a sealing plate 25 for blocking the material dropping port 24.
[0021] In the above embodiment, when the waste chips on the milling machine are discharged into the blanking chute 2, the screen plate 3 screens the waste chips, and the longer waste chips pass through the screen plate 3 and fall on the crushing component 4, and then the waste chips are crushed, and the waste chips are transported to the storage box 7 through the feed chute and the feed rod 6, and then the waste chips are pressed in the storage box 7 by the clamping component 8. When the collected waste chips are compacted in the storage box 7, the blanking port 24 is opened by opening the sealing plate 25, and then the waste chips are collected and cleaned.
[0022] refer to Figure 3 and Figure 4As shown: the crushing assembly 4 includes a rotating rod 9 and a supporting frame 12, the crushing rod 11 is rotatably installed, and a plurality of crushing groups 10 are arranged in a circular array on the crushing rod 11, and the crushing group 10 is provided with a plurality of arrays of crushing rods 11, the supporting frame 12 is fixedly installed at the bottom of the screen by bolts, and a plurality of arrays of crushing plates 13 are welded on the supporting frame 12, and a plurality of the crushing rods 11 are respectively set between a plurality of crushing plates 13, and the crushing rods 11 are fitted with the side walls of the crushing plates 13, and a servo motor is installed on the body 1 by bolts, and the servo motor is used to drive the rotating rod 9 to rotate.
[0023] In the above embodiment, the servo motor drives the rotating rod 9 to rotate, so that the crushing rod 11 on the rotating rod 9 rotates between the crushing plates 13. When the waste chips are screened and fall on the crushing plates 13, the crushing rod 11 cuts the waste chips into pieces, so that the waste chips are broken into the required size until the waste chips fall into the end of the feed pipe 5.
[0024] refer to Figure 5 As shown: the clamping assembly 8 includes two symmetrically arranged clamping plates 14, and the inner wall of one side of the storage box 7 is integrally formed with two slideways 15 for installing the two clamping plates 14. The storage box 7 is provided with through grooves near the two slideways 15. The two clamping plates 14 are integrally formed with toggle rods 17, and the toggle rods 17 are set in the through grooves. The side wall of the storage box 7 is rotatably matched with a driving rod 18 through an axial hole, and slots 19 are provided on both sides of the driving rod 18. The toggle rod 17 passes through the through groove and is inserted into the slot 19. A driving disk 20 is rotatably connected to the storage box 7 through an axial hole, a push rod 21 is rotatably provided on the side of the driving disk 20 away from the axis, and the end of the push rod 21 away from the driving disk 20 is rotatably connected to the driving rod 18, a gear sleeve 23 is welded on the driving disk 20, a driving motor is installed on the side wall of the storage box 7 by bolts, a driving end of the driving motor is provided with a driving gear 22 meshing with the gear sleeve 23, and a feeding surface 16 corresponding to the feeding pipe 5 is provided at the end of the clamping plate 14, and the feeding surfaces 16 on the two clamping plates 14 form a V-shape.
[0025] In the above embodiment, when the waste chips are transported to the top of the storage box 7 through the feed pipe 5, the waste chips fall on the clamping plate 14. Since the feed surface 16 is provided at the top of the blanking plate, the feed surfaces 16 on the two clamping plates 14 form a V-shape, and then the driving motor drives the driving gear 22 to rotate, and the driving gear 22 drives the driving disk 20 to rotate through the gear sleeve 23, so that the driving disk 20 drives the driving rod 18 to rotate through the push rod 21, and then the driving rod 18 rotates through the toggle rod 17, so that the two clamping plates 14 slide up and down along the slide 15, so that the two clamping plates 14 slide up and down, and the waste chips fall into the storage box 7 through the gap formed by the two clamping plates 14. When the waste chips fall into the storage box 7, the waste chips are compacted in the storage box 7 by the clamping plates 14.
[0026] Working principle:
[0027] When the waste chips on the milling machine are discharged into the blanking chute 2, the screen plate 3 screens the waste chips, and the longer waste chips pass through the screen plate 3 and fall on the crushing plate 13. The crushing rod 11 cuts the waste chips into pieces, so that the waste chips are broken into the required size, until the waste chips fall into the end of the feed pipe 5, and the waste chips are transported to the pressing plate 14 through the feed chute and the feed rod 6. Since the top of the blanking plate is provided with a feed surface 16, the feed surfaces 16 on the two pressing plates 14 form a V shape, and then the drive motor drives the drive gear 22 to rotate, and the drive gear 22 drives the drive disc 20 through the gear sleeve 23. Rotate, so that the driving disk 20 drives the driving rod 18 to rotate through the pushing rod 21, and then the driving rod 18 rotates through the toggle rod 17, so that the two clamping plates 14 slide up and down along the slide 15, so that the two clamping plates 14 slide up and down, and the waste chips fall into the storage box 7 through the gaps formed by the two clamping plates 14. When the waste chips fall into the storage box 7, the clamping plates 14 compact the waste chips in the storage box 7. When the waste chips are compacted in the storage box 7, the material drop port 24 is opened by opening the sealing plate 25, and then the waste chips are collected and cleaned.
[0028] The above is only a preferred embodiment of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions under the concept of the present invention belong to the protection scope of the present invention. It should be pointed out that for ordinary technicians in this technical field, some improvements and modifications without departing from the principle of the present invention should also be regarded as the protection scope of the present invention.
Claims
1. A double-head milling machine optical chip removal mechanism, comprising a body (1), characterized in that: The machine body (1) is provided with a material chute (2), an inclined screen plate (3) is provided in the material chute (2), a crushing assembly (4) is provided at the bottom end of the screen plate (3), a feeding pipe (5) is installed at the bottom end of the material chute (2), a rotatable feeding rod (6) is provided in the feeding pipe (5), a storage box (7) is provided at one end of the material chute (5) away from the material chute (2), and a pressing assembly (8) is provided in the storage box (7).
2. The optical and mechanical chip removal mechanism of a double-head milling machine according to claim 1 is characterized in that: The crushing assembly (4) comprises a vertically rotating rotating rod (9), a plurality of crushing groups (10) are arranged in a circular array on the rotating rod (9), the crushing groups (10) are provided with a plurality of crushing rods (11) in an array, a support frame (12) is provided at the bottom end of the screen plate (3), a plurality of crushing plates (13) are arranged in an array on the support frame (12) and are parallel to the screen plate (3), and the plurality of crushing rods (11) are respectively arranged between the plurality of crushing plates (13).
3. The optical and mechanical chip removal mechanism of the double-head milling machine according to claim 2 is characterized in that: The clamping assembly (8) comprises two symmetrically arranged clamping plates (14), two slideways (15) are arranged on the inner wall of one side of the storage box (7), the two clamping plates (14) are slidably arranged on the two slideways (15), and the ends of the clamping plates (14) are provided with material conveying surfaces (16) corresponding to the material conveying pipe (5), and the material conveying surfaces (16) on the two clamping plates (14) form a V shape.
4. The optical and mechanical chip removal mechanism of a double-head milling machine according to claim 3 is characterized in that: The storage box (7) is symmetrically provided with through slots, and the two clamping plates (14) are each provided with a toggle rod (17) corresponding to the through slots. A driving rod (18) is rotatably provided on the storage box (7), and slot holes (19) are provided on both sides of the driving rod (18). The toggle rod (17) passes through the through slot and is set in the slot hole (19). A rotatable driving disk (20) is provided on the storage box (7), and a push rod (21) is rotatably connected to the side of the driving disk (20) away from the rotating shaft, and the end of the push rod (21) away from the driving disk (20) is rotatably connected to the driving rod (18). A driving motor is installed on the side wall of the storage box (7) by bolts, and a driving gear (22) is provided at the driving end of the driving motor, and a gear sleeve (23) meshing with the driving gear (22) is provided on the outer side of the driving disk (20).
5. The optical and mechanical chip removal mechanism of a double-head milling machine according to claim 4 is characterized in that: A material drop opening (24) is provided at the bottom end of the storage box (7), and a sealing plate (25) is movably connected to the storage box (7) for blocking the material drop opening (24).