Positioning and polishing device for aluminum profile production
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-14
- Publication Date
- 2026-08-11
AI Technical Summary
[0003]现有技术在对铝型材进行打磨时,两组打磨辊之间的间距一定,并不能根据铝型材的厚度去调整打磨辊之间的间距,使得在对铝型材打磨时,会造成操作的局限性,且对铝型材打磨时,需要手动对铝型材进行推动打磨,操作起来较为费时费力;
[0015] (1) According to the thickness of the aluminum profile, the spacing between the two grinding rollers is matched with the thickness of the aluminum profile by adjusting the component. The aluminum profile is placed on a set of active and passive pressure rollers on one side. By rotating the component, the aluminum profile moves along the active pressure roller and the passive pressure roller assists in moving the aluminum profile. The setting of a set of flanges enables the aluminum profile to move along a set of flanges, avoiding the aluminum profile from shifting. The grinding component makes the grinding rollers grind both sides of the aluminum profile, and the ground aluminum profile is moved out through the active and passive pressure rollers on the other side.
Smart Images

Figure CN224615938U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of aluminum profiles, and more specifically, to a positioning and grinding device for aluminum profile production. Background Technology
[0002] Most aluminum profiles on the market today have protrusions or grooves at different angles on their surface. In order to ensure that the surface of the aluminum profile is flat and smooth during the processing, it usually needs to go through a grinding process.
[0003] In the existing technology, when grinding aluminum profiles, the distance between the two sets of grinding rollers is fixed and cannot be adjusted according to the thickness of the aluminum profile. This results in operational limitations when grinding aluminum profiles, and the aluminum profiles need to be manually pushed and ground, which is time-consuming and labor-intensive.
[0004] Therefore, it is necessary to provide an aluminum profile production positioning and grinding device to solve the above-mentioned technical problems. Utility Model Content
[0005] The purpose of this utility model is to address the shortcomings of existing technologies by proposing a positioning and grinding device for aluminum profile production.
[0006] This utility model achieves its invention objective using the following technical solution:
[0007] A positioning and grinding device for aluminum profile production includes a base plate, and further includes a grinding component, a square frame, an adjustment component, a support plate, and a rotating component. The upper side of the base plate is fixedly connected to the symmetrical support plates, and the two support plates are fixedly connected to the square frame. The adjustment component, which adjusts the spacing according to the thickness of the aluminum profile, is connected to the square frame. The grinding component, which grinds the aluminum profile, is connected to the adjustment component. The rotating component, which conveys the aluminum profile, is connected to the adjustment component.
[0008] As a further limitation of this technical solution, the adjusting assembly includes two connecting plates. A pair of symmetrical ball bearing sliders are fixedly connected to both sides of each connecting plate. A corresponding pair of ball bearing sliders are slidably connected to corresponding linear guides. The two linear guides are fixedly connected to the inner walls of the square frame. A corresponding pair of linear bearings passes through and is fixedly connected to both ends of the corresponding connecting plates. A corresponding pair of linear bearings is threadedly connected to a corresponding bidirectional lead screw. Each of the two bidirectional lead screws has two sections with opposite thread directions. The two ends of the two bidirectional lead screws are movably connected to both sides of the square frame. The lower ends of the two bidirectional lead screws are fixedly connected to the worm gear ends of corresponding worm gear reducers. The housings of the two worm gear reducers are fixedly connected to the lower side of the square frame. The worm ends of the two worm gear reducers are fixedly connected to both ends of a round rod. The worm end of one worm gear reducer is fixedly connected to the output shaft of a motor. The motor is fixedly connected to one side of the housing of one worm gear reducer.
[0009] As a further limitation of this technical solution, the rotating assembly includes a pair of corresponding sprockets, the central shafts of the pair of corresponding sprockets are movably connected to the corresponding connecting plates, the pair of corresponding sprockets are connected to each other by corresponding chains, and the ends of the central shafts of the pair of corresponding sprockets are fixedly connected to the central shafts of the corresponding pair of driving force pressure rollers.
[0010] As a further limitation of this technical solution, the center shafts of corresponding bevel gears are fixedly connected to the centers of the two sprockets, the two bevel gears mesh with corresponding bevel gears, the center shafts of the two bevel gears are movably connected to corresponding square plates, the two square plates are fixedly connected to corresponding connecting plates, two spline shaft sleeves pass through and are fixedly connected to the centers of corresponding bevel gears, the two spline shaft sleeves are slidably connected to spline shafts, the center shafts at both ends of the spline shafts are movably connected to corresponding convex plates, the two convex plates are fixedly connected to the square frame, the end of the center shaft at one end of the spline shaft is fixedly connected to the output shaft of motor two, and motor two is fixedly connected to one of the convex plates.
[0011] As a further limitation of this technical solution, a set of driven pressure rollers are movably connected to the corresponding connecting plates at one end of their central shafts, and the two ends of the set of driving pressure rollers are fixedly connected to the two ends of the set of driven pressure rollers with corresponding flanges. The set of flanges is used to limit the aluminum profile and make the aluminum profile move along the set of flanges.
[0012] As a further limitation of this technical solution, the grinding assembly includes two grinding rollers, one end of the central shaft of each of the two grinding rollers is movably connected to the middle of the corresponding connecting plate, and the ends of the central shafts of each of the two grinding rollers are fixedly connected to the output shaft of the corresponding motor.
[0013] As a further limitation of this technical solution, the two motors are respectively fixedly connected to one side of the corresponding connecting plate.
[0014] Compared with related technologies, this utility model has the following beneficial effects:
[0015] (1) According to the thickness of the aluminum profile, the spacing between the two grinding rollers is matched with the thickness of the aluminum profile by adjusting the component. The aluminum profile is placed on a set of active and passive pressure rollers on one side. By rotating the component, the aluminum profile moves along the active pressure roller and the passive pressure roller assists in moving the aluminum profile. The setting of a set of flanges enables the aluminum profile to move along a set of flanges, avoiding the aluminum profile from shifting. The grinding component makes the grinding rollers grind both sides of the aluminum profile, and the ground aluminum profile is moved out through the active and passive pressure rollers on the other side.
[0016] (2) It can drive the rotating components, so that the main power pressure roller and the driven power pressure roller can move the aluminum profile, so that the aluminum profile can be polished, saving time and effort. Attached Figure Description
[0017] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0018] Figure 2 This is a three-dimensional structural diagram of the present invention.
[0019] Figure 3 This is a schematic diagram of the connection structure of some parts of this utility model.
[0020] Figure 4 This is a schematic diagram of the connection structure of some parts of this utility model.
[0021] In the picture:
[0022] 1: Grinding assembly, 11. Motor 3, 12. Grinding roller;
[0023] 2. Square frame;
[0024] 3: Adjustment components, 31. Round rod, 32. Worm gear reducer, 33. Motor 1, 34. Ball block slider, 35. Linear bearing, 36. Double-acting screw, 37. Connecting plate, 38. Linear guide rail;
[0025] 4. Support plate;
[0026] 5. Base plate;
[0027] 6: Rotating assembly; 61: Main power pressure roller; 62: Square plate; 63: Splined shaft; 64: Chain; 65: Sprocket; 66: Second bevel gear; 67: Second motor; 68: First bevel gear; 69: Driven power pressure roller; 610: Flange; 611: Protruding plate; 612: Splined shaft sleeve. Detailed Implementation
[0028] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0029] A positioning and grinding device for aluminum profile production includes a base plate 5, and further includes: a grinding component 1, a square frame 2, an adjustment component 3, a support plate 4, and a rotating component 6. The upper side of the base plate 5 is fixedly connected to the symmetrical support plates 4, and the two support plates 4 are respectively fixedly connected to the square frame 2. The adjustment component 3 is connected to the square frame 2 to adjust the spacing according to the thickness of the aluminum profile. The grinding component 1 for grinding the aluminum profile is connected to the adjustment component 3, and the rotating component 6 for conveying the aluminum profile is connected to the adjustment component 3.
[0030] The adjusting assembly 3 includes two connecting plates 37. A pair of symmetrical ball bearing sliders 34 are fixedly connected to both sides of each connecting plate 37. Each pair of ball bearing sliders 34 is slidably connected to a corresponding linear guide rail 38. The two linear guide rails 38 are fixedly connected to the inner wall of the square frame 2. A pair of corresponding linear bearings 35 pass through and are fixedly connected to both ends of the corresponding connecting plates 37. Each pair of linear bearings 35 is threadedly connected to a corresponding bidirectional lead screw 36. Each of the two bidirectional lead screws 36 has two sections of threads with opposite directions. The two ends of the two bidirectional lead screws 36 are respectively movably connected to the two sides of the square frame 2. The lower ends of the two bidirectional lead screws 36 are respectively fixedly connected to the worm wheel ends of the corresponding worm gear reducers 32. The housings of the two worm gear reducers 32 are respectively fixedly connected to the lower side of the square frame 2. The worm ends of the two worm gear reducers 32 are respectively fixedly connected to the two ends of the round rod 31. The worm end of one worm gear reducer 32 is fixedly connected to the output shaft of the motor 33. The motor 33 is fixedly connected to one side of the housing of one worm gear reducer 32.
[0031] The rotating assembly 6 includes a pair of corresponding sprockets 65, the central shafts of the pair of corresponding sprockets 65 are movably connected to the corresponding connecting plates 37, the pair of corresponding sprockets 65 are connected to each other by corresponding chains 64, and the ends of the central shafts of the pair of corresponding sprockets 65 are fixedly connected to the central shafts of the pair of corresponding driving force pressure rollers 61.
[0032] Two of the sprockets 65 are fixedly connected to the central shafts of corresponding bevel gears 68. The two bevel gears 68 mesh with corresponding bevel gears 66. The central shafts of the two bevel gears 66 are movably connected to corresponding square plates 62. The two square plates 62 are fixedly connected to corresponding connecting plates 37. Two spline shaft sleeves 612 pass through and are fixedly connected to the center of the corresponding bevel gears 66. The two spline shaft sleeves 612 are slidably connected to spline shafts 63. The central shafts at both ends of the spline shafts 63 are movably connected to corresponding convex plates 611. The two convex plates 611 are fixedly connected to the square frame 2. The end of the central shaft at one end of the spline shaft 63 is fixedly connected to the output shaft of a motor 67. The motor 67 is fixedly connected to one of the convex plates 611.
[0033] A set of driven rollers 69 are movably connected to the corresponding connecting plates 37 at one end of their central shafts. The two ends of the set of driven rollers 61 are fixedly connected to the two ends of the set of driven rollers 69 with corresponding flanges 610. The set of flanges 610 is used to limit the aluminum profile and make the aluminum profile move along the set of flanges 610.
[0034] The grinding assembly 1 includes two grinding rollers 12. The central shafts at one end of the two grinding rollers 12 are movably connected to the middle of the corresponding connecting plate 37, and the ends of the central shafts at one end of the two grinding rollers 12 are fixedly connected to the output shafts of the corresponding motors 31.
[0035] The two motors 311 are respectively fixedly connected to one side of the corresponding connecting plate 37.
[0036] The wiring diagrams of motor 311, motor 267 and motor 133 in this utility model are common knowledge in the field. Their working principle is a well-known technology. The appropriate model is selected according to actual use. Therefore, the control method and wiring layout of the wiring diagrams of motor 311, motor 267 and motor 133 will not be explained in detail.
[0037] The working principle is as follows: First, based on the thickness of the aluminum profile, start motor 1 33. Motor 1 33 drives a worm gear reducer 32 to work. One worm gear reducer 32 drives another worm gear reducer 32 through a round rod 31. The two worm gear reducers 32 drive the corresponding double-acting screws 36 to rotate. The two double-acting screws 36 drive the connecting plate 37 to move through linear bearings 35. The connecting plate 37 drives the ball slider 34 to slide along the linear guide rail 38. At the same time, the connecting plate 37 drives the spline shaft sleeve 612 to move along the spline shaft 63 through bevel gear 1 68, the main force pressure roller 61, bevel gear 2 66, etc., so that the distance between the two grinding rollers 12 matches the thickness between the aluminum profiles. At this time, motor 1 33 is turned off.
[0038] Next, the aluminum profile is placed on a set of active pressure rollers 61 and driven pressure rollers 69 on one side, and motor 67 is started. Motor 67 drives spline shaft 63 to rotate, and spline shaft 63 drives bevel gear 66 to rotate through spline shaft sleeve 612. The two bevel gears 66 mesh with corresponding bevel gears 68 to rotate, and the two bevel gears 68 drive a sprocket 65 to rotate. Each sprocket 65 drives another sprocket 65 to rotate through chain 64, thus rotating a pair of sprockets 66. 5. Drive the main force pressure roller 61 to rotate, so that the aluminum profile moves along the main force pressure roller 61. The auxiliary force pressure roller 69 assists in moving the aluminum profile. The set of flanges 610 can make the aluminum profile move along the set of flanges 610, so as to avoid the aluminum profile from deviating. At the same time, the motor 3 11 is started, and the motor 3 11 drives the grinding roller 12 to rotate, so that the grinding roller 12 grinds both sides of the aluminum profile. The ground aluminum profile can be moved out through the main force pressure roller 61 and the auxiliary force pressure roller 69 on the other side.
[0039] Compared with related technologies, this utility model has the following beneficial effects: According to the thickness of the aluminum profile, by adjusting the component 3, the distance between the two grinding rollers 12 is matched with the thickness of the aluminum profile. The aluminum profile is placed on a set of active pressure rollers 61 and driven pressure rollers 69 on one side. By rotating the component 6, the aluminum profile moves along the active pressure rollers 61. The driven pressure rollers 69 assist the aluminum profile in moving. The setting of a set of flanges 610 enables the aluminum profile to move along a set of flanges 610, avoiding the aluminum profile from shifting. Through the grinding component 1, the grinding rollers 12 grind both sides of the aluminum profile, and the ground aluminum profile is moved out through the active pressure rollers 61 and driven pressure rollers 69 on the other side.
[0040] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. A positioning and grinding device for aluminum profile production, comprising a base plate (5), characterized in that, The aluminum profile production positioning and grinding device also includes: The components include a grinding assembly (1), a square frame (2), an adjustment assembly (3), a support plate (4), and a rotating assembly (6). The upper side of the base plate (5) is fixedly connected to the symmetrical support plates (4). The two support plates (4) are fixedly connected to the square frame (2). The square frame (2) is connected to the adjustment assembly (3) for adjusting the spacing according to the thickness of the aluminum profile. The adjustment assembly (3) is connected to the grinding assembly (1) for grinding the aluminum profile. The adjustment assembly (3) is connected to the rotating assembly (6) for conveying the aluminum profile.
2. The aluminum profile production positioning and grinding device according to claim 1, characterized in that: The adjusting assembly (3) includes two connecting plates (37). A pair of symmetrical ball bearing sliders (34) are fixedly connected to both sides of the two connecting plates (37). The corresponding pair of ball bearing sliders (34) are slidably connected to the corresponding linear guide rails (38). The two linear guide rails (38) are fixedly connected to the inner wall of the square frame (2). A corresponding pair of linear bearings (35) pass through and are fixedly connected to the two ends of the corresponding connecting plates (37). The corresponding pair of linear bearings (35) are threadedly connected to the corresponding bidirectional lead screws (36). The two bidirectional lead screws (36) are respectively provided with two sections of threads with opposite directions. The two ends of the two bidirectional lead screws (36) are movably connected to the two sides of the square frame (2). The lower ends of the two bidirectional lead screws (36) are fixedly connected to the worm wheel ends of the corresponding worm gear reducers (32). The housings of the two worm gear reducers (32) are fixedly connected to the lower side of the square frame (2). The worm ends of the two worm gear reducers (32) are fixedly connected to the two ends of the round rod (31). The worm end of one worm gear reducer (32) is fixedly connected to the output shaft of motor one (33). Motor one (33) is fixedly connected to one side of the housing of one worm gear reducer (32).
3. The aluminum profile production positioning and grinding device according to claim 2, characterized in that: The rotating assembly (6) includes a pair of corresponding sprockets (65), the central shafts of the pair of sprockets (65) are movably connected to the corresponding connecting plates (37), the pair of sprockets (65) are connected to each other by corresponding chains (64), and the ends of the central shafts of the pair of sprockets (65) are fixedly connected to the central shafts of the corresponding pair of driving force pressure rollers (61).
4. The aluminum profile production positioning and grinding device according to claim 3, characterized in that: two of them... The center shaft of the corresponding bevel gear 1 (68) is fixedly connected to the center of the sprocket (65). The two bevel gears 1 (68) mesh with the corresponding bevel gear 2 (66). The center shafts of the two bevel gears 2 (66) are movably connected to the corresponding square plate (62). The two square plates (62) are fixedly connected to the corresponding connecting plate (37). The two spline shaft sleeves (612) pass through and are fixedly connected to the center of the corresponding bevel gear 2 (66). The two spline shaft sleeves (612) are slidably connected to the spline shaft (63). The center shafts at both ends of the spline shaft (63) are movably connected to the corresponding convex plate (611). The two convex plates (611) are fixedly connected to the square frame (2). The end of the center shaft at one end of the spline shaft (63) is fixedly connected to the output shaft of the motor 2 (67). The motor 2 (67) is fixedly connected to one of the convex plates (611).
5. The aluminum profile production positioning and grinding device according to claim 4, characterized in that: A set of driven rollers (69) are movably connected to the corresponding connecting plates (37) at one end of their central shafts. The two ends of the set of driven rollers (61) are fixedly connected to the two ends of the set of driven rollers (69) with corresponding flanges (610). The set of flanges (610) is used to limit the aluminum profile and make the aluminum profile move along the set of flanges (610).
6. The aluminum profile production positioning and grinding device according to claim 5, characterized in that: The grinding assembly (1) includes two grinding rollers (12), one end of the central shaft of each of the two grinding rollers (12) is movably connected to the middle of the corresponding connecting plate (37), and the ends of the central shafts of each of the two grinding rollers (12) are fixedly connected to the output shaft of the corresponding motor (11).
7. The aluminum profile production positioning and grinding device according to claim 6, characterized in that: The two motors (11) are respectively fixedly connected to one side of the corresponding connecting plate (37).