Cutting device for material strip machining

By designing a cutting device for material strip processing, and utilizing the positioning and coordination of the baffle and push plate, combined with the collaborative work of the drive and cutting components, the problem of low material strip processing efficiency was solved, and efficient material strip processing was achieved.

CN121608220APending Publication Date: 2026-03-06GURIT WIND POWER TECHNOLOGY (YANCHENG DAFENG) CO LTD
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Patent Information

Application Number
CN202512018380.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-30
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

The processing efficiency of material strips in the existing technology is low, mainly because the posture of the tool and the material strip needs to be adjusted and positioned multiple times when cutting the two chamfered sides, which makes the processing steps cumbersome.

Method used

A cutting device for processing material strips is designed, including a bearing component, a positioning component, and a cutting component. The material block is positioned by the cooperation of a baffle and a first push plate. The first chamfer side is cut by the cooperation of a third driving component and a first cutting component. The second chamfer side is cut by the cooperation of a fourth driving component and a second cutting component, thereby realizing the simultaneous completion of all processing steps of the material strip.

Benefits of technology

It improves the processing efficiency of material strips by completing all processing steps of the material strip in one go, reducing the number of steps to adjust the tool and the posture of the material strip, thus improving production efficiency.

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Abstract

The cutting device for material strip machining comprises a bearing assembly, a bearing seat is slidably connected with a base, a first driving part can drive the bearing seat to move, and a baffle is arranged on the edge of the bearing seat; a second driving piece can drive a first push plate to move, the moving path of the first push plate is parallel to the plane where the baffle is located, and a positioning space is formed between the first push plate and the baffle; the cutting assembly and the first movable seat are slidably connected with the supporting frame, the output end of the third driving part is connected with the first movable seat, the first cutting part is slidably connected with the first movable seat and can move along an arc-shaped path, the second movable seat is slidably connected with the supporting frame, and the moving path of the second movable seat is perpendicular to the moving path of the first movable seat. The output end of the fourth driving part is connected with the second movable seat, and the second cutting part is slidably connected with the second movable seat and can move along an arc-shaped path. According to the cutting device for material strip machining, the machining efficiency of the material strips can be improved.
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Description

Technical Field

[0001] This invention relates to the field of cutting device technology, and in particular to a cutting device for processing material strips. Background Technology

[0002] When packing the foam core material after processing, material strips are needed to fill the gaps around the core material to ensure its stability. To accommodate the structure of the foam core material, the material strips include at least one chamfered side. (Refer to...) Figure 13 The material strip shown includes two inclined chamfered sides. Currently, the material strip is processed using a five-axis CNC machining method. First, the first chamfered side of the material strip is cut by a tool. Then, the second chamfered side of the material strip is cut by rotating the material strip and cooperating with the tool. Finally, both ends of the material strip are cut in sequence to complete the processing of the material strip. Because the posture and positioning of the tool and the material strip need to be adjusted and positioned when cutting the two first chamfered sides, and the processing steps of the material strip are numerous, the processing efficiency of the material strip is low. Summary of the Invention

[0003] Therefore, the technical problem to be solved by the present invention is to provide a cutting device for processing material strips, which can improve the processing efficiency of material strips.

[0004] To solve the above technical problems, the present invention provides a cutting device for processing material strips, comprising: a bearing assembly, the bearing assembly including a base, a bearing seat, and a first driving member, the bearing seat being slidably connected to the base, the first driving member being capable of driving the bearing seat to move, and a baffle being provided on the edge of the bearing seat; a positioning assembly including a second driving member and a first push plate, the second driving member being capable of driving the first push plate to move, the movement path of the first push plate being parallel to the plane where the baffle is located, and a positioning space being formed between the first push plate and the baffle; and a cutting assembly including a support frame, a first cutting mechanism, and a second cutting mechanism, the first cutting mechanism being... The mechanism includes a third driving member, a first movable seat, and a first cutting member. The first movable seat is slidably connected to the support frame. The output end of the third driving member is connected to the first movable seat. The first cutting member is slidably connected to the first movable seat and can move along an arc-shaped path. The second cutting mechanism includes a fourth driving member, a second movable seat, and a second cutting member. The second movable seat is slidably connected to the support frame. The movement path of the second movable seat is perpendicular to the movement path of the first movable seat. The output end of the fourth driving member is connected to the second movable seat. The second cutting member is slidably connected to the second movable seat and can move along an arc-shaped path.

[0005] In one embodiment of the present invention, the bearing assembly further includes a first connecting seat, the base is connected to a first slide rail, a rack and a blocking member, the bearing seat is connected to the first connecting seat, the first connecting seat is slidably connected to the first slide rail, the rack extends along the moving direction of the first connecting seat, the first driving member is connected to the first connecting seat, the output end of the first driving member is connected to a gear, the gear meshes with the rack, and the blocking member is located at the end of the moving path of the first connecting seat.

[0006] In one embodiment of the present invention, the support seat is provided with a plurality of adsorption holes, and the support seat is also provided with a first guide groove, wherein the first push plate is slidably connected to the first guide groove.

[0007] In one embodiment of the present invention, the bearing component includes a pushing mechanism, the pushing mechanism includes a fifth driving member and a second pushing plate, the fifth driving member is capable of driving the second pushing plate to rotate, and the pushing end of the second pushing plate is capable of moving towards or away from the baffle.

[0008] In one embodiment of the present invention, the pushing mechanism further includes a mounting plate, a second slide rail, a second connecting seat, and a sixth driving member. The mounting plate is connected to the side of the bearing seat away from the baffle. The second slide rail and the sixth driving member are both connected to the mounting plate. The second connecting seat is slidably connected to the second slide rail. The output end of the sixth driving member is connected to the second connecting seat. The second connecting seat is capable of moving towards or away from the bearing seat. The fifth driving member is connected to the second connecting seat.

[0009] In one embodiment of the present invention, the positioning component further includes a movable frame, the movable frame being connected to the output end of the second drive member, and the first push plate being connected to the movable frame.

[0010] In one embodiment of the present invention, the positioning component further includes a seventh driving member and a pressure plate. The seventh driving member is connected to the movable frame and can drive the pressure plate to rotate. The pressing end of the pressure plate can be located within the positioning space.

[0011] In one embodiment of the present invention, the first cutting mechanism further includes a third movable seat, an eighth driving member, and a third slide rail. The eighth driving member is connected to the first movable seat, the guide path of the third slide rail is arc-shaped and connected to the first movable seat, the third movable seat is slidably connected to the third slide rail, the eighth driving member can drive the third movable seat to move, and the first cutting member is connected to the third movable seat.

[0012] In one embodiment of the present invention, the first cutting mechanism further includes a first transmission member, a fourth slide rail, a first slider, and a first connecting rod. The first transmission member is connected to the output end of the eighth driving member. The first slider is connected to the first transmission member. The fourth slide rail extends along the transmission direction of the first transmission member and is connected to the first movable seat. The first slider is slidably connected to the fourth slide rail. The two ends of the first connecting rod are respectively connected to the first slider and the third movable seat.

[0013] In one embodiment of the present invention, a feeding assembly is further included. The feeding assembly includes a guide frame, a ninth driving member, a second transmission member, and a first guide plate. The second transmission member is connected to the output end of the ninth driving member. The first guide plate is connected to the second transmission member. The first guide plate is located on one side of the moving path of the support seat. The guide frame includes a plurality of second guide plates. The first guide plate can be located at one end of the second guide plate.

[0014] The technical solution of the present invention has the following advantages compared with the prior art:

[0015] The material strip processing cutting device of the present invention positions the material block by means of the cooperation between the baffle and the first push plate, and the first cutting component is able to complete the cutting of the first chamfer side and give the material strip a set thickness by means of the cooperation between the third driving component and the first cutting component, and the second cutting component is able to complete the cutting of the second chamfer side and give the material strip a set width by means of the cooperation between the fourth driving component and the second cutting component, thereby completing all processing steps of the material strip at the same time and improving the processing efficiency of the material strip. Attached Figure Description

[0016] To make the content of this invention easier to understand, the invention will be further described in detail below with reference to specific embodiments and accompanying drawings.

[0017] Figure 1 This is a schematic diagram of the structure of a cutting device for processing material strips according to the present invention;

[0018] Figure 2 This is a schematic diagram of the assembly structure of the base;

[0019] Figure 3 yes Figure 2 A magnified view of a portion of position A in the middle;

[0020] Figure 4 This is a schematic diagram of the assembly structure of the first connecting seat;

[0021] Figure 5 This is a structural schematic diagram of the support base;

[0022] Figure 6This is a schematic diagram of the feeding mechanism;

[0023] Figure 7 This is a structural diagram of the positioning component;

[0024] Figure 8 This is a partial structural diagram of the cutting component;

[0025] Figure 9 This is a partial structural diagram of the first cutting mechanism;

[0026] Figure 10 This is a partial structural diagram of the second cutting mechanism;

[0027] Figure 11 This is a structural diagram of the feeding assembly;

[0028] Figure 12 This is a schematic diagram of the assembly structure of the distribution box and protective netting;

[0029] Figure 13 This is a schematic diagram of the material strip structure.

[0030] Explanation of reference numerals in the accompanying drawings: 1. Bearing component; 2. Bearing base; 3. Positioning component; 4. First cutting mechanism; 5. Second cutting mechanism; 6. Dust removal component; 7. Feeding component; 8. Power distribution box; 9. Material strip; 11. Base; 12. First slide rail; 13. Rack; 14. Blocking component; 15. Sensing component; 16. First connecting seat; 17. First driving component; 18. Mounting seat; 21. Material block; 22. Baffle; 23. First guide groove; 24. Mounting plate; 25. Sixth drive component; 26. Second connecting seat; 27. Second slide rail; 28. Fifth drive component; 29. ​​Second push plate; 31. Second drive component; 32. Movable frame; 33. First connecting frame; 34. First push plate; 35. Seventh drive component; 36. Pressure plate; 37. Second connecting frame; 41. Third drive component; 42. First movable seat; 43. Eighth drive component; 44. First slider; 45. First connecting rod; 46. Third movable seat; 47. 48. First cutting drive component; 49. First cutting blade; 50. First dust cover; 51. Fourth drive component; 52. Second movable seat; 53. Tenth drive component; 54. Second slider; 55. Second connecting rod; 56. Fifth movable seat; 57. Second cutting drive component; 58. Second cutting blade; 59. Second dust cover; 71. Fixed frame; 72. Ninth drive component; 73. Second transmission component; 74. Third connecting frame; 75. First guide plate; 76. Guide frame; 77. Second guide plate; 81. Protective net; 91. First chamfered side; 92. Second chamfered side; 261. Bracket; 411. First connecting plate; 412. Fifth slide rail; 422. Third slide rail; 413. Support frame; 421. Fourth slide rail; 431. First transmission component; 432. Limiting block; 433. Movable nut; 491. Connector; 511. Second connecting plate; 512. Sixth slide rail; 521. Seventh slide rail; 531. Third transmission component. Detailed Implementation

[0031] The present invention will be further described below with reference to the accompanying drawings and specific embodiments, so that those skilled in the art can better understand and implement the present invention. However, the embodiments described are not intended to limit the present invention.

[0032] Reference Figures 1 to 10As shown, a cutting device for processing material strips according to the present invention includes: a bearing assembly 1, which includes a base 11, a bearing seat 2, and a first driving member 17. The bearing seat 2 is slidably connected to the base 11, and the first driving member 17 can drive the bearing seat 2 to move. A baffle 22 is provided on the edge of the bearing seat 2; a positioning assembly 3, which includes a second driving member 31 and a first push plate 34. The second driving member 31 can drive the first push plate 34 to move. The moving path of the first push plate 34 is parallel to the plane where the baffle 22 is located, and a positioning space is formed between the first push plate 34 and the baffle 22; and a cutting assembly, which includes a support frame 413, a first cutting mechanism 4, and a second cutting mechanism 5. The first cutting mechanism 4 includes... The second cutting mechanism 5 includes a third driving member 41, a first movable seat 42, and a first cutting member. The first movable seat 42 is slidably connected to the support frame 413. The output end of the third driving member 41 is connected to the first movable seat 42. The first cutting member is slidably connected to the first movable seat 42 and can move along an arc-shaped path. The second cutting mechanism 5 includes a fourth driving member 51, a second movable seat 52, and a second cutting member. The second movable seat 52 is slidably connected to the support frame 413. The movement path of the second movable seat 52 is perpendicular to the movement path of the first movable seat 42. The output end of the fourth driving member 51 is connected to the second movable seat 52. The second cutting member is slidably connected to the second movable seat 52 and can move along an arc-shaped path.

[0033] This embodiment of a material strip processing cutting device cuts a material block 21 into material strips 9. First, the material block 21 is placed on the support seat 2, so that one side of the material block 21 abuts against the baffle 22. At this time, the material block 21 is located in the positioning space. Then, the second driving member 31 drives the first push plate 34 to move, so that the first push plate 34 abuts against the material block 21 and moves the material block 21 to the processing position. At the same time, the first cutting member and the second cutting member move to the required processing angle. Then, the first driving member 17 drives the support seat 2 to move, so that the first cutting member and the second cutting member cut the material block 21 to form material strips 9. When the first cutting member is cutting, the third driving member 41 drives the first cutting member to move, so that the first cutting member can complete the cutting of the first chamfer side 91 and make the material strip 9 have a set thickness. Before the second cutting member is cutting, the fourth driving member 51 drives the second cutting member to move, so that the second cutting member can complete the cutting of the second chamfer side 92 and make the material strip 9 have a set width. The material block 21 is positioned by the cooperation of the baffle 22 and the first push plate 34. The material block 21 is positioned by the cooperation of the third drive member 41 and the first cutter. The material block 9 is cut to the first chamfer side 91 and has a set thickness by the cooperation of the fourth drive member 51 and the second cutter. The material block 9 is cut to the second chamfer side 92 and has a set width by the cooperation of the fourth drive member 51. Thus, all processing steps of the material block 9 can be completed at the same time, improving the processing efficiency of the material block 9.

[0034] Reference Figures 2 to 4 As shown, the support assembly 1 includes a base 11, a support seat 2, and a first driving member 17. The support seat 2 is slidably connected to the base 11, and the first driving member 17 can drive the support seat 2 to move. A baffle 22 is provided on the edge of the support seat 2. Specifically, the support assembly 1 also includes a first connecting seat 16. The base 11 is connected to a first slide rail 12, a rack 13, and a blocking member 14. The two first slide rails 12 are located on the top of the base 11 and extend along the length direction of the base 11. A mounting seat 18 is connected to the top side of the first connecting seat 16, and the support seat 2 is connected to the first connecting seat 16 through the mounting seat 18. The first connecting seat 16 is slidably connected to the first slide rail 12, and the two racks 13 are connected to the base 11 and extend along the moving direction of the first connecting seat 16, that is, the racks 13 are arranged along the first slide rail 12. The first driving member 17 is a rotary driving member. The first driving member 17 is connected to the first connecting seat 16. The output end of the first driving member 17 is connected to a gear. The gear meshes with the rack 13. The first driving member 17 drives the gear to rotate, thereby enabling the first connecting seat 16 to move along the first slide rail 12, and thus enabling the bearing seat 2 to move.

[0035] The blocking members 14 are located at the ends of the moving path of the first connecting seat 16. Specifically, four blocking members 14 are located at the two ends of the two first slide rails 12 respectively. The blocking members 14 are connected to the base 11. The blocking members 14 are used to limit the extreme moving positions of the first connecting seat 16 and prevent the first connecting seat 16 from disengaging from the first slide rail 12. The base 11 is also connected to two sensing members 15. The sensing members 15 can be regarded as sensors and are connected to the controller. The sensing end of the sensing member 15 faces the moving path of the first connecting seat 16. The positions of the two sensing members 15 correspond to the feeding position and the processing position respectively, thereby positioning the position of the first connecting seat 16.

[0036] Reference Figure 5 As shown, the support base 2 supports the material block 21. Two baffles 22 are connected to the edge of the support base 2 near the cutting assembly. The baffles 22 abut against the side wall of the material block 21 to position it. The gap between the two baffles 22 corresponds to the cutting path of the second cutting element, thus preventing interference between the movement path of the second cutting element and the baffles 22. Multiple adsorption holes are arranged in an array on the top side of the support base 2. These adsorption holes are connected to a vacuum source, enabling the adsorption of the material block 21 and ensuring stability during the movement of the material block 21 by the support base 2 and during the processing of the material block 21.

[0037] Reference Figure 6 As shown, the supporting component 1 also includes a pushing mechanism, which includes a fifth driving member 28 and a second pushing plate 29. The fifth driving member 28 can drive the second pushing plate 29 to rotate. Specifically, the fifth driving member 28 is a linear driving member, and its output end is connected to the second pushing plate 29 via a hinge, thereby enabling the fifth driving member 28 to drive the second pushing plate 29 to rotate. The second pushing plate 29 is composed of two connecting parts, and the included angle formed by the two connecting parts is an obtuse angle. The width of the second pushing plate 29 gradually decreases away from the fifth driving member 28. The pushing mechanism is arranged opposite to the baffle 22, so that the fifth driving member 28 drives the second pushing plate 29 to rotate, allowing the pushing end of the second pushing plate 29 to move towards or away from the baffle 22. When the material block 21 is located on the support seat 2 and abuts against the baffle 22, the second push plate 29 is driven to rotate by the fifth drive member 28, so that the pushing end of the second push plate 29 can abut against the material block 21. At this time, the material block 21 is clamped between the second push plate 29 and the baffle 22, thereby keeping the material block 21 stable. In another embodiment, the fifth drive member 28 is a rotary drive member, and the output end of the fifth drive member 28 is connected to the end of the second push plate 29.

[0038] The pushing mechanism also includes a mounting plate 24, a second slide rail 27, a second connecting seat 26, and a sixth driving member 25. The mounting plate 24 is connected to the side of the support seat 2 away from the baffle 22. The second slide rail 27 and the sixth driving member 25 are both connected to the mounting plate 24. The second connecting seat 26 is slidably connected to the second slide rail 27. The sixth driving member 25 is a linear driving member, and its output end is connected to the second connecting seat 26. The sixth driving member 25 can drive the second connecting seat 26 to move towards or away from the support seat 2. A bracket 261 is connected to the second connecting seat 26. Two fifth driving members 28 are connected to the second connecting seat 26 through the two brackets 261, so that the output end of the fifth driving member 28 is located above the top side of the support seat 2. The setting of the sixth driving member 25 allows the second push plate 29 to move a greater distance, enabling it to clamp larger material blocks 21.

[0039] Reference Figure 7 As shown, the positioning component 3 includes a second driving member 31 and a first push plate 34. The second driving member 31 can drive the first push plate 34 to move. The movement path of the first push plate 34 is parallel to the plane where the baffle 22 is located, and a positioning space is formed between the first push plate 34 and the baffle 22. Specifically, the positioning component 3 also includes a movable frame 32. The second driving member 31 is a linear driving member and is fixedly connected to the outside. The movable frame 32 is connected to the output end of the second driving member 31. The two first push plates 34 are connected to the movable frame 32 through a first connecting frame 33. A positioning space is formed between the first push plate 34 and the baffle 22. The second driving member 31 can drive the first push plate 34 to move. The pushing end of the first push plate 34 can abut against the material block 21 located on the support seat 2. The side of the material block 21 that abuts against the first push plate 34 and the side of the material block 21 that abuts against the baffle 22 are perpendicular. Thus, the material block 21 can be positioned by the first push plate 34 driving the material block 21 to move. To ensure more accurate positioning of the material block 21, a visual positioning device located above the support seat can be used to position the material block 21. The support seat 2 is also provided with a first guide groove 23, and the first push plate 34 is slidably connected to the first guide groove 23. The first guide groove 23 is used to guide the movement of the first push plate 34.

[0040] The positioning assembly 3 also includes a seventh drive member 35 and a pressure plate 36. The seventh drive member 35 is connected to the movable frame 32 via a second connecting frame 37. The driving principle of the seventh drive member 35 is the same as that of the fifth drive member 28, and will not be described again. The seventh drive member 35 can drive the pressure plate 36 to rotate, thereby allowing the pressing end of the pressure plate 36 to move towards or away from the positioning space, and the pressing end of the pressure plate 36 to be located within the positioning space. When there is a material block 21 in the positioning space on the support 2, the seventh drive member 35 can drive the pressing end of the pressure plate 36 to abut against the top side of the material block 21, thereby further stabilizing the material block 21 during movement and processing.

[0041] Reference Figure 8 and Figure 9 As shown, the cutting assembly includes a support frame 413, a first cutting mechanism 4, and a second cutting mechanism 5. The first cutting mechanism 4 includes a third driving member 41, a first movable seat 42, and a first cutting member. The first movable seat 42 is slidably connected to the support frame 413. The output end of the third driving member 41 is connected to the first movable seat 42. The first cutting member is slidably connected to the first movable seat 42 and can move along an arc-shaped path. The second cutting mechanism 5 includes a fourth driving member 51, a second movable seat 52, and a second cutting member. The second movable seat 52 is slidably connected to the support frame 413. The movement path of the second movable seat 52 is perpendicular to the movement path of the first movable seat 42. The output end of the fourth driving member 51 is connected to the second movable seat 52. The second cutting member is slidably connected to the second movable seat 52 and can move along an arc-shaped path.

[0042] Specifically, the first cutting mechanism 4 further includes a third movable seat 46, an eighth driving member 43, a third slide rail 422, a fifth slide rail 412, and a first connecting plate 411. The first connecting plate 411 is connected to the support frame 413, and the fifth slide rail 412 is connected to the first connecting plate 411 and extends vertically. The third driving member 41 is a linear driving member and is connected to the first connecting plate 411. The first movable seat 42 is slidably connected to the fifth slide rail 412, so that the third driving member 41 can drive the first movable seat 42 to rise and fall, thereby enabling the first cutting member to complete the cutting of the first chamfer side 91 and give the material strip 9 a set thickness.

[0043] The eighth driving member 43 is connected to the first movable seat 42. The guide path of the third slide rail 422 is arc-shaped and connected to the first movable seat 42. The eighth driving member 43 can drive the third movable seat 46 to move. The third movable seat 46 is slidably connected to the third slide rail 422. The first cutting member is connected to the third movable seat 46. Specifically, the first cutting mechanism 4 also includes a first transmission member 431, a fourth slide rail 421, a first slider 44, and a first connecting rod 45. The first transmission member 431 can be regarded as a lead screw and is connected to the output end of the eighth driving member 43. The first transmission member 431 is rotatably connected to the first movable seat 42. The eighth driving member 43 is a rotary driving member. The first slider 44 is connected to the movable nut 433 on the first transmission member 431, so that the eighth driving member 43 can drive the first slider 44 to move in a straight line. The fourth slide rail 421 extends along the transmission direction of the first transmission member 431 and is connected to the first movable seat 42. The first slider 44 is slidably connected to the fourth slide rail 421. The two ends of the first connecting rod 45 are respectively connected to the first slider 44 and the third movable seat 46, so that the eighth driving member 43 can drive the third movable seat 46 to move along the third slide rail 422, thereby adjusting the cutting angle of the first cutting member. The end of the first transmission member 431 away from the eighth driving member 43 is connected to a limit block 432. The limit block 432 is used to limit the extreme movement position of the first slider 44 to prevent the first slider 44 from disengaging from the first transmission member 431. The first cutting member includes a first cutting driving member 47, a first cutting blade 48, and a first dust cover 49. The first cutting driving member 47 is connected to the third movable seat 46, and the output end of the first cutting driving member 47 is connected to the first cutting blade 48. The first cutting driving member 47 can drive the first cutting blade 48 to rotate, thereby cutting the material block 21. The material strip processing cutting device also includes a dust removal component 6 connected to a vacuum source. A first dust cover 49 is connected to a first cutting drive component 47. The first dust cover 49 is provided with a connector 491 that communicates with the cutting position of the first cutting blade 48. The connector 491 is connected to the dust removal component 6, so that the dust removal component 6 can remove the debris cut by the first cutting blade 48, reducing debris splashing. The cutting end point of the first cutting blade 48 corresponds to the center position of the arc where the third slide rail 422 is located, so that the cutting end point position of the first cutting blade 48 remains stationary during the movement of the first cutting component along the third slide rail 422.

[0044] Reference Figure 8 and Figure 10As shown, the second cutting mechanism 5 also includes a sixth slide rail 512 and a second connecting plate 511. The second connecting plate 511 is connected to the support frame 413, and the sixth slide rail 512 is connected to the second connecting plate 511 and extends horizontally. The fourth driving member 51 is a linear driving member and is connected to the second connecting plate 511. The second movable seat 52 is slidably connected to the sixth slide rail 512. The fourth driving member 51 can drive the second movable seat 52 to move horizontally, so that the second cutting member can complete the cutting of the second chamfer side 92 and make the material strip 9 have a set width. The second cutting mechanism 5 also includes a tenth driving member 53, a third transmission member 531, a fifth movable seat 56, a second slider 54, a second connecting rod 55, and a seventh slide rail 521. The tenth driving member 53 and the seventh slide rail 521 are both connected to the second movable seat 52. The second slider 54 is slidably connected to the second movable seat 52. The seventh slide rail 521 is arc-shaped, and the fifth movable seat 56 is slidably connected to the seventh slide rail 521. The second cutting component includes a second cutting drive 57, a second cutting blade 58, and a second dust cover 59. The second cutting drive 57 is connected to the fifth movable seat 56 and can drive the second cutting blade 58 to rotate. The second dust cover 59 is connected to the second cutting drive 57 and communicates with the dust removal component 6. The two ends of the second connecting rod 55 are respectively connected to the fifth movable seat 56 and the second slider 54. The tenth drive 53 can drive the second slider 54 to move linearly through the third transmission component 531, thereby driving the fifth movable seat 56 to move along the seventh slide rail 521, and thus adjusting the cutting angle of the second cutting component. The working principle of the second cutting mechanism 5 is the same as that of the first cutting mechanism 4, and will not be described again.

[0045] Reference Figure 11As shown, the material strip processing cutting device also includes a feeding assembly 7. The feeding assembly 7 includes a guide frame 76, a ninth driving member 72, a second transmission member 73, a first guide plate 75, and a fixed frame 71. The second transmission member 73 can be regarded as a lead screw. The fixed frame 71 is fixedly connected to the outside. The ninth driving member 72 is connected to the fixed frame 71 and is a rotary driving member. The second transmission member 73 is rotatably connected to the fixed frame 71. One end of the second transmission member 73 is connected to the output end of the ninth driving member 72. The second transmission member 73 is connected to a third connecting frame 74. The first guide plate 75 is connected to the second transmission member 73 through the third connecting frame 74. The ninth driving member 72 can drive the third connecting frame 74 to rise and fall through the second transmission member 73, thereby driving the first guide plate 75 to rise and fall. The first guide plate 75 is located on one side of the moving path of the support seat 2, and the first guide plate 75 is located between the support assembly 1 and the guide frame 76. The guide frame 76 includes a plurality of second guide plates 77 arranged in the vertical direction. The ninth driving member 72 can drive the first guide plate 75 to move so that the first guide plate 75 is located at one end of different second guide plates 77. After the material strip 9 is cut, the second driving member 31 drives the first push plate 34 to move, so that the material strip 9 moves from the support seat 2 to the first guide plate 75. Then the material strip 9 moves along the first guide plate 75 to the second guide plate 77. Then the material strip 9 moves along the second guide plate 77 to the external storage position.

[0046] Reference Figure 12 As shown, the material strip processing cutting device also includes a power distribution box 8 and a protective net 81. The power distribution box 8 is used to house electrical components, thereby rationally allocating and controlling the power supply to the material strip processing cutting device. The protective net 81 is located at the edge of the material strip processing cutting device, thereby preventing employees from entering the working area of ​​the material strip processing cutting device and causing injury.

[0047] In use, the material block 21 is first placed on the support seat 2, so that one side of the material block 21 abuts against the baffle 22. Then, the second driving member 31 drives the first push plate 34 to move, so that the first push plate 34 abuts against the material block 21 and moves the material block 21 to the processing position. Next, the fifth driving member 28 drives the second push plate 29 to rotate, so that the pushing end of the second push plate 29 abuts against the material block 21. At this time, the material block 21 is clamped between the second push plate 29 and the baffle 22. Then, the seventh driving member 35 drives... The movable pressure plate 36 rotates, causing its pressing end to abut against the top side of the material block 21. Simultaneously, the eighth driving member 43 drives the third movable seat 46 to move along the third slide rail 422, adjusting the cutting angle of the first cutting member to the required angle. The tenth driving member 53 drives the fifth movable seat 56 to move along the seventh slide rail 521, adjusting the cutting angle of the second cutting member to the required angle. Then, the first driving member 17 drives the bearing seat 2 to move, causing the first and second cutting members to cut the material block 21 to form... Figure 13When the first cutting component cuts the material strip 9, the third driving component 41 drives the first cutting component to move, enabling the first cutting component to complete the cutting of the first chamfer side 91 and give the material strip 9 a set thickness. Before the second cutting component cuts, the fourth driving component 51 drives the second cutting component to move, enabling the second cutting component to complete the cutting of the second chamfer side 92 and give the material strip 9 a set width. When the material block 21 can be cut into multiple material strips 9, the first push plate 34 drives the material block 21 to move multiple times, and the first driving component 17 drives the bearing seat 2 to reciprocate, so that the cutting assembly can quickly cut the material block 21 multiple times.

[0048] The present invention discloses a cutting device for processing material strips. By cooperating with a baffle 22 and a first push plate 34, the material block 21 is positioned. By cooperating with a third drive member 41 and a first cutter, the first cutter can complete the cutting of the first chamfer side 91 and give the material strip 9 a set thickness. By cooperating with a fourth drive member 51 and a second cutter, the second cutter can complete the cutting of the second chamfer side 92 and give the material strip 9 a set width. Thus, all processing steps of the material strip 9 can be completed simultaneously, improving the processing efficiency of the material strip 9.

[0049] Obviously, the above embodiments are merely illustrative examples for clear explanation and are not intended to limit the implementation. Those skilled in the art will recognize that other variations or modifications can be made based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the scope of protection of this invention.

Claims

1. A cutting device for processing material strips, characterized in that, The utility model relates to a cutting device for cutting glass, comprising: a bearing assembly, which comprises a base, a bearing seat and a first driving member, the bearing seat is in sliding connection with the base, the first driving member can drive the bearing seat to move, and the edge of the bearing seat is provided with a baffle; a positioning assembly, which comprises a second driving member and a first push plate, the second driving member can drive the first push plate to move, the moving path of the first push plate is parallel to the plane where the baffle is located, and a positioning space is formed between the first push plate and the baffle; a cutting assembly, which comprises a support frame, a first cutting mechanism and a second cutting mechanism, the first cutting mechanism comprises a third driving member, a first movable seat and a first cutting member, the first movable seat is in sliding connection with the support frame, the output end of the third driving member is connected with the first movable seat, the first cutting member is in sliding connection with the first movable seat and can move along an arc-shaped path, the second cutting mechanism comprises a fourth driving member, a second movable seat and a second cutting member, the second movable seat is in sliding connection with the support frame, the moving path of the second movable seat is perpendicular to the moving path of the first movable seat, the output end of the fourth driving member is connected with the second movable seat, and the second cutting member is in sliding connection with the second movable seat and can move along an arc-shaped path.

2. The apparatus of claim 1 wherein: The bearing assembly further comprises a first connecting seat, the base is connected with a first sliding rail, a rack and a blocking member, the bearing seat is connected with the first connecting seat, the first connecting seat is in sliding connection with the first sliding rail, the rack extends along the moving direction of the first connecting seat, the first driving member is connected with the first connecting seat, the output end of the first driving member is connected with a gear, the gear is in meshing connection with the rack, and the blocking member is located at the end of the moving path of the first connecting seat.

3. The apparatus of claim 1 wherein: A plurality of adsorption holes are arranged on the bearing seat, and a first guide groove is further arranged on the bearing seat, the first push plate is in sliding connection with the first guide groove.

4. The apparatus of claim 1 wherein: The bearing assembly comprises a pushing mechanism, the pushing mechanism comprises a fifth driving member and a second push plate, the fifth driving member can drive the second push plate to rotate, and the pushing end of the second push plate can move towards or away from the baffle.

5. The apparatus of claim 4, wherein: The pushing mechanism further comprises a mounting plate, a second sliding rail, a second connecting seat and a sixth driving member, the mounting plate is connected with the side of the bearing seat which is away from the baffle, the second sliding rail and the sixth driving member are both connected with the mounting plate, the second connecting seat is in sliding connection with the second sliding rail, the output end of the sixth driving member is connected with the second connecting seat, the second connecting seat can move towards or away from the bearing seat, and the fifth driving member is connected with the second connecting seat.

6. The apparatus of claim 1 wherein: The positioning assembly further comprises a movable frame, the movable frame is connected with the output end of the second driving member, and the first push plate is connected with the movable frame.

7. The apparatus of claim 6, wherein: The positioning assembly further comprises a seventh driving member and a pressing plate, the seventh driving member is connected with the movable frame, the seventh driving member can drive the pressing plate to rotate, and the pressing end of the pressing plate can be located in the positioning space.

8. The apparatus of claim 1 wherein: The first cutting mechanism further comprises a third movable seat, an eighth driving member and a third sliding rail, the eighth driving member is connected with the first movable seat, the guiding path of the third sliding rail is arc-shaped and connected with the first movable seat, the third movable seat is slidingly connected with the third sliding rail, the eighth driving member can drive the third movable seat to move, and the first cutting member is connected with the third movable seat.

9. The cutting apparatus for processing a material strip according to claim 8, characterized by: The first cutting mechanism further comprises a first transmission member, a fourth sliding rail, a first sliding block and a first connecting rod, the first transmission member is connected with the output end of the eighth driving member, the first sliding block is connected with the first transmission member in a matched mode, the fourth sliding rail extends along the transmission direction of the first transmission member and is connected with the first movable seat, the first sliding block is slidingly connected with the fourth sliding rail, and the two ends of the first connecting rod are respectively connected with the first sliding block and the third movable seat.

10. The apparatus of claim 1 wherein: Further comprising a blanking assembly, the blanking assembly comprises a guide frame, a ninth driving member, a second transmission member and a first guide plate, the second transmission member is connected with the output end of the ninth driving member, the first guide plate is connected with the second transmission member in a matched mode, the first guide plate is located on one side of the moving path of the bearing seat, the guide frame comprises a plurality of second guide plates, and the first guide plate can be located at one end of the second guide plates.