Equal-distance slitting device for high-precision aluminum plate machining

By setting a timer, electric telescopic rod and grinding stone in the isometric slitting device for high-precision aluminum plate processing, the automatic grinding of the saw blade is achieved, solving the equipment wear and material damage caused by the dullness of the saw blade, and improving the processing accuracy and equipment life.

CN223083924UActive Publication Date: 2025-07-11SUZHOU RONGREN ALUMINIUM IND CO LTD
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Patent Information

Application Number
CN202422346170.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-25
Publication Date
2025-07-11
Estimated Expiration
2034-09-25

AI Technical Summary

Technical Problem

Common isometric slitting devices for high-precision aluminum plate processing lack the function of automatic grinding of saw blades, which causes the saw blade to become dull during long working hours, increasing the risk of equipment wear and material damage.

Method used

A high-precision aluminum plate processing is designed. By setting up a timer, an electric telescopic rod and grinding stone, the electric telescopic rod is driven regularly to make the grinding stone fit to the saw knife, realizing the function of automatic grinding the saw knife.

Benefits of technology

Automatic grinding of saw blades is realized, reducing equipment wear and material damage, and improving the service life and processing accuracy of the equipment.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the technical field of equidistant slitting for high-precision aluminum plate machining, in particular to an equidistant slitting device for high-precision aluminum plate machining, which comprises a base. The polishing assembly is composed of a timer, an electric telescopic rod and a polishing stone; through cooperation of the timer, the electric telescopic rod and the polishing stone, the timer drives the electric telescopic rod in a timed mode, the polishing stone is pushed and attached to the saw blade through the electric telescopic rod, the saw blade is polished after cutting work is conducted by the saw blade, and the function of automatically polishing the saw blade is achieved; the problems that a common equal-distance slitting device for high-precision aluminum plate machining only has the equal-distance slitting function for high-precision aluminum plate machining and can conduct equal-distance slitting work on a high-precision aluminum plate, but the function of automatically polishing a saw blade is lacked, and when the saw blade works for a long time, generated heat causes the saw blade to be blunt, so that the saw blade is damaged are solved. And the risks of equipment abrasion and material damage are increased when the high-precision aluminum plate is subjected to equal-distance slitting.
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Description

Technical Field

[0001] The utility model relates to the technical field of equidistant cutting for high-precision aluminum plate processing, and particularly relates to an equidistant cutting device for high-precision aluminum plate processing. Background Art

[0002] Aluminum plate cutting is a common process in metal processing and is widely used in the fields of manufacturing mechanical equipment, automobile parts, building materials, etc. The methods of aluminum plate cutting include shearing method, knife cutting method, laser cutting method and plasma cutting method, and each method has its applicable scope and characteristics.

[0003] Common equidistant cutting devices for high-precision aluminum plate processing only include the function of equidistant cutting for high-precision aluminum plate processing, and can perform the work of equidistant cutting of high-precision aluminum plates. However, they lack the function of automatically grinding the saw blade. When the saw blade works for a long time, the heat generated causes the saw blade to become dull, resulting in an increased risk of equipment wear and material damage when equidistantly cutting high-precision aluminum plates.

[0004] Therefore, aiming at the above problem of lacking the function of automatically grinding the saw blade, an equidistant cutting device for high-precision aluminum plate processing can be designed. By setting the cooperation among a timer, an electric telescopic rod and a grinding stone, the timer drives the electric telescopic rod at regular intervals, and the electric telescopic rod pushes the grinding stone to fit against the saw blade, so that after the saw blade performs the cutting work, the saw blade is ground, realizing the function of automatically grinding the saw blade, in order to solve the problem that common equidistant cutting devices for high-precision aluminum plate processing only include the function of equidistant cutting for high-precision aluminum plate processing, can perform the work of equidistant cutting of high-precision aluminum plates, but lack the function of automatically grinding the saw blade. When the saw blade works for a long time, the heat generated causes the saw blade to become dull, resulting in an increased risk of equipment wear and material damage when equidistantly cutting high-precision aluminum plates. Summary of the Utility Model

[0005] In order to overcome the problem that common equidistant cutting devices for high-precision aluminum plate processing only include the function of equidistant cutting for high-precision aluminum plate processing, can perform the work of equidistant cutting of high-precision aluminum plates, but lack the function of automatically grinding the saw blade. When the saw blade works for a long time, the heat generated causes the saw blade to become dull, resulting in an increased risk of equipment wear and material damage when equidistantly cutting high-precision aluminum plates.

[0006] The technical solution of the present utility model is: an equidistant cutting device for high-precision aluminum plate processing, including a base; further including a grinding assembly, which consists of a timer, an electric telescopic rod and a grinding stone. A sticker wall is welded to the rear side of the top of the base. A support column is arranged at the rear side of the base. A rotating block is welded at the center of the front end of the support column. The rotating block is in contact with the sticker wall. A rotating shaft is arranged above the sticker wall corresponding to the top of the support column. The rotating shaft is rotatably connected with three blade shells. A timer is arranged at the inclined part of the rear end of the support column. An electric telescopic rod is arranged at the bottom end inside the blade shell. The timer is electrically connected to the electric telescopic rod. A grinding stone is arranged at the front end of the electric telescopic rod.

[0007] Preferably, through the cooperation among the timer, the electric telescopic rod and the grinding stone, the timer drives the electric telescopic rod regularly. The electric telescopic rod pushes the grinding stone to be in contact with the saw blade. After the saw blade performs the cutting work, the saw blade is ground, realizing the function of automatically grinding the saw blade. To solve the problem that the common equidistant cutting device for high-precision aluminum plate processing only includes the function of equidistant cutting of high-precision aluminum plate processing, which can perform the work of equidistant cutting of high-precision aluminum plate, but lacks the function of automatically grinding the saw blade. When the saw blade works for a long time, the heat generated causes the saw blade to become blunt, resulting in an increased risk of equipment wear and material damage when performing equidistant cutting of high-precision aluminum plate.

[0008] Preferably, a rotating groove is opened at the center of the top of the base. A cutting seat is movably connected inside the rotating groove. When the cutting angle needs to be adjusted, the cutting seat can be rotated to the required angle for cutting work.

[0009] Preferably, a cutting groove is opened at the center of the top of the cutting seat. When cutting the aluminum plate, it can avoid the saw blade from rubbing against the cutting seat, thus preventing damage to the saw blade and the device.

[0010] Preferably, a cutting seat is welded to the bottom of the front end of the support column. A blocking block is welded at the center of the front end of the cutting seat. A first handle is welded to the end of the blocking block away from the cutting seat. The blocking block limits the rotation angle of the cutting seat, and the first handle makes it more convenient to rotate the cutting seat.

[0011] Preferably, a first motor is arranged at the center of the right side of the blade shell. The output end of the first motor penetrates the blade shell and is connected to a rotating shaft. The rotating shaft is fixedly connected with three saw blades at equal intervals. The left side inside the blade shell is rotatably connected to the rotating shaft. Starting the first motor drives the rotating shaft through rotation, and the rotating shaft drives the saw blades to realize the function of equidistant cutting of the aluminum plate.

[0012] Preferably, a positioning block is arranged at the top of the support seat corresponding to the lower part of the rotating shaft. A second handle is arranged at the top of the left side of the blade shell. When it is necessary to stop the cutting work, the staff holds the handle and pushes the blade shell above the positioning block. Due to inertia, the blade shell will fall downward and then fit with the positioning block.

[0013] Preferably, a first fixing groove is provided at the left end of the front side of the attaching plate wall. A second motor is provided at the position corresponding to the first fixing groove at the left end of the attaching plate wall. The output end of the first motor penetrates through the attaching plate wall and is connected to a first screw rod. The left end of the first screw rod is threadedly connected to a first fixing strip. A second fixing groove is provided at the top end of the first fixing strip. A third motor is provided at the position corresponding to the second fixing groove at the front end of the first fixing strip. The output end of the first motor penetrates through the first fixing strip and is connected to a second screw rod. The front end of the second screw rod is threadedly connected to a second fixing strip. A third fixing groove is provided at the right side of the top end of the base. A torsion spring is welded to the rear end inside the third fixing groove. The front end of the torsion spring is fixedly connected to a fixing block. The right end of the fixing block penetrates through the right end of the base and is placed outside. According to the on-site cutting requirements, by starting the second motor and the third motor to rotate the first screw rod and the second screw rod, the first screw rod and the second screw rod drive the first fixing strip and the second fixing strip through rotation, and utilize the working principle of the torsion spring to contract towards the position of the aluminum plate, fitting the fixing block to the front end of the aluminum plate, and fixing the aluminum plate to the required position.

[0014] Advantages of the present utility model:

[0015] 1. Through the cooperation among the timer, the electric telescopic rod and the grinding stone, the timer drives the electric telescopic rod at a set time. The electric telescopic rod pushes the grinding stone to fit onto the saw blade. After the saw blade performs the cutting work, the saw blade is ground, realizing the function of automatically grinding the saw blade. To solve the problem of a common equidistant cutting device for high-precision aluminum plate processing, which only includes the function of equidistant cutting of high-precision aluminum plate processing, and can perform the work of equidistant cutting of high-precision aluminum plate, but lacks the function of automatically grinding the saw blade. When the saw blade works for a long time, the heat generated causes the saw blade to become dull, resulting in an increased risk of equipment wear and material damage when performing equidistant cutting of high-precision aluminum plate. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 Shown is a three-dimensional structural schematic diagram of an equidistant cutting device for high-precision aluminum plate processing according to the present utility model;

[0017] Figure 2 Shown is a three-dimensional structural schematic diagram of the back side of the exploded view of an equidistant cutting device for high-precision aluminum plate processing according to the present utility model;

[0018] Figure 3 Shown is a three-dimensional structural schematic diagram of the bottom view of an equidistant cutting device for high-precision aluminum plate processing according to the present utility model;

[0019] Figure 4 Shown is a three-dimensional structural schematic diagram of the front side of the exploded view of an equidistant cutting device for high-precision aluminum plate processing according to the present utility model.

[0020] Description of reference numerals: 1, base; 2, mounting plate wall; 3, rotating block; 4, support column; 5, rotating shaft; 6, blade housing; 7, timer; 8, electric telescopic rod; 9, grinding stone; 101, rotating groove; 102, cutting seat; 103, cutting groove; 104, blocking block; 105, first grip; 106, positioning block; 107, saw blade; 108, first motor; 109, first screw; 110, first fixing strip; 111, first fixing groove; 112, second fixing groove; 113, second screw; 114, second fixing strip; 115, second motor; 116, third motor; 117, second grip; 118, third fixing groove; 119, torsion spring; 120, fixing block. Detailed implementation mode

[0021] The present utility model will be further described below in conjunction with the drawings and embodiments.

[0022] Please refer to Figures 1-4 , the present utility model provides an embodiment: an equidistant cutting device for high-precision aluminum plate processing, including a base 1; further including a grinding assembly, the grinding assembly is composed of a timer 7, an electric telescopic rod 8 and a grinding stone 9. A mounting plate wall 2 is welded to the rear side of the top end of the base 1. A support column 4 is arranged at the rear side of the base 1. A rotating block 3 is welded to the center position of the front end of the support column 4. The rotating block 3 is in contact with the mounting plate wall 2. A rotating shaft 5 is arranged above the mounting plate wall 2 corresponding to the top end of the support column 4. The rotating shaft 5 is rotatably connected with three blade housings 6. A timer 7 is arranged at the inclined part of the rear end of the support column 4. An electric telescopic rod 8 is arranged at the bottom end inside the blade housing 6. The timer 7 is electrically connected to the electric telescopic rod 8. A grinding stone 9 is arranged at the front end of the electric telescopic rod 8. By setting the cooperation among the timer 7, the electric telescopic rod 8 and the grinding stone 9, the timer 7 is timed to drive the electric telescopic rod 8, and the electric telescopic rod 8 pushes the grinding stone 9 to be in contact with the saw blade 107. After the saw blade 107 performs the cutting work, the saw blade 107 is ground, realizing the function of automatically grinding the saw blade 107, so as to solve the problem that the common equidistant cutting device for high-precision aluminum plate processing only includes the function of equidistant cutting of high-precision aluminum plate processing, and can perform the work of equidistant cutting of high-precision aluminum plate, but lacks the function of automatically grinding the saw blade 107. When the saw blade 107 works for a long time, the heat generated causes the saw blade 107 to become blunt, resulting in an increased risk of equipment wear and material damage when performing equidistant cutting of high-precision aluminum plate.

[0023] Please refer to Figures 1-4, in this embodiment, a rotation groove 101 is provided at the center of the top end of the base 1. A cutting seat 102 is movably connected inside the rotation groove 101. When the cutting angle needs to be adjusted, the cutting seat 102 can be rotated to the required angle for cutting work. A cutting groove 103 is provided at the center of the top end of the cutting seat 102. When cutting the aluminum plate, the saw blade 107 is prevented from rubbing against the cutting seat 102 to damage the device. The cutting seat 102 is welded to the bottom of the front end of the support column 4. A blocking block 104 is welded to the center of the front end of the cutting seat 102. One end of the blocking block 104 away from the cutting seat 102 is welded with a first handle 105. The blocking block 104 limits the rotation angle of the cutting seat 102, and the first handle 105 makes it more convenient to rotate the cutting seat 102.

[0024] Please refer to Figures 1-4, in this embodiment, a first motor 108 is provided at the central position on the right side of the blade housing 6. The output end of the first motor 108 penetrates through the blade housing 6 and is connected to a rotating shaft 5. The rotating shaft 5 is fixedly connected with three saw blades 107 at equal intervals. The left side inside the blade housing 6 is rotationally connected to the rotating shaft 5. Starting the first motor 108 drives the rotating shaft 5 through rotation, and the rotating shaft 5 drives the saw blades 107 to achieve the function of cutting the aluminum plate. A positioning block 106 is provided at the top of the support column 4 corresponding to the lower side of the rotating shaft 5. A second grip 117 is provided at the top of the left side of the blade housing 6. When it is necessary to stop the cutting work, the staff holds the second grip 117 and pushes the blade housing 6 above the positioning block 106. Due to inertia, the blade housing 6 will fall downward and fit with the positioning block 106. A first fixing groove 111 is opened at the left end of the front side of the sticker wall 2. A second motor 115 is provided at the position of the left end of the sticker wall 2 corresponding to the first fixing groove 111. The output end of the first motor 108 penetrates through the sticker wall 2 and is connected to a first screw 109. The left end of the first screw 109 is threadedly connected to a first fixing strip 110. A second fixing groove 112 is opened at the top of the first fixing strip 110. A third motor 116 is provided at the position of the front end of the first fixing strip 110 corresponding to the second fixing groove 112. The output end of the first motor 108 penetrates through the first fixing strip 110 and is connected to a second screw 113. The front end of the second screw 113 is threadedly connected to a second fixing strip 114. According to the on-site cutting requirements, by starting the second motor 115 and the third motor 116 to rotate the first screw 109 and the second screw 113, the first screw 109 and the second screw 113 drive the first fixing strip 110 and the second fixing strip 114 through rotation. A third fixing groove 118 is opened at the right side of the top of the base 1. A torsion spring 119 is welded to the rear end inside the third fixing groove 118. The front end of the torsion spring 119 is fixedly connected to a fixing block 120. The right end of the fixing block 120 penetrates through the right end of the base 1 and is placed outside. According to the on-site cutting requirements, by starting the second motor 115 and the third motor 116 to rotate the first screw 109 and the second screw 113, the first screw 109 and the second screw 113 drive the first fixing strip 110 and the second fixing strip 114 through rotation. Using the working principle of the torsion spring 119, it contracts towards the position of the aluminum plate, and the fixing block 120 is fitted to the front end of the aluminum plate to fix the aluminum plate to the required position.

[0025] When working, by setting the cooperation among the timer 7, the electric telescopic rod 8 and the grinding stone 9, the timer 7 drives the electric telescopic rod 8 at a fixed time. The electric telescopic rod 8 pushes the grinding stone 9 to fit against the saw blade 107. After the saw blade 107 performs the cutting work, the saw blade 107 is ground, realizing the function of automatically grinding the saw blade 107. A rotating groove 101 is opened at the center position of the top end of the base 1. The cutting seat 102 is movably connected inside the rotating groove 101. When the cutting angle needs to be adjusted, the cutting seat 102 can be rotated to the required angle for cutting work. A cutting groove 103 is opened at the center position of the top end of the cutting seat 102. When cutting the aluminum plate, the saw blade 107 is prevented from rubbing against the cutting seat 102, so as to avoid damage to the saw blade 107 and the device. A blocking block 104 is welded at the center position of the front end of the cutting seat 102. A first handle 105 is welded at one end of the blocking block 104 away from the cutting seat 102. A support column 4 is welded at the center position of the rear end of the cutting seat 102. The blocking block 104 limits the rotation angle of the cutting seat 102, and the first handle 105 makes it more convenient to rotate the cutting seat 102. A first motor 108 is arranged at the center position of the right side of the blade housing 6. The output end of the first motor 108 penetrates through the blade housing 6 and is connected with a rotating shaft 5. The rotating shaft 5 is fixedly connected with three saw blades 107 at equal intervals. The left side inside the blade housing 6 is rotationally connected with the rotating shaft 5. By starting the first motor 108, the rotating shaft 5 is driven to rotate through rotation, and the rotating shaft 5 drives the saw blades 107, realizing the function of equidistant cutting of the aluminum plate. A positioning block 106 is arranged at the top end of the support column 4 corresponding to the lower part of the rotating shaft 5. A second handle 117 is arranged at the top of the left side of the blade housing 6. When the cutting work needs to be stopped, the staff holds the second handle 117 and pushes the blade housing 6 above the positioning block 106. Due to inertia, the blade housing 6 will fall downward and then fit against the positioning block 106. A first fixing groove 111 is opened at the left end of the front side of the sticker wall 2. A second motor 115 is arranged at the position of the left end of the sticker wall 2 corresponding to the first fixing groove 111. The output end of the first motor 108 penetrates through the sticker wall 2 and is connected with a first screw rod 109. The left end of the first screw rod 109 is threadedly connected with a first fixing strip 110. A second fixing groove 112 is opened at the top end of the first fixing strip 110. A third motor 116 is arranged at the position of the front end of the first fixing strip 110 corresponding to the second fixing groove 112. The output end of the first motor 108 penetrates through the first fixing strip 110 and is connected with a second screw rod 113. The front end of the second screw rod 113 is threadedly connected with a second fixing strip 114. According to the on-site cutting requirements, by starting the second motor 115 and the third motor 116 to rotate the first screw rod 109 and the second screw rod 113, the first screw rod 109 and the second screw rod 113 drive the first fixing strip 110 and the second fixing strip 114 through rotation. A third fixing groove 118 is opened at the right side of the top end of the base 1. A torsion spring 119 is welded at the rear end inside the third fixing groove 118. A fixing block 120 is fixedly connected to the front end of the torsion spring 119. The right end of the fixing block 120 penetrates through the right end of the base 1 and is placed outside to fix the aluminum plate to the required position.

[0026] Through the above steps, by setting the cooperation among the timer 7, the electric telescopic rod 8 and the grinding stone 9, the timer 7 drives the electric telescopic rod 8 at a fixed time. The electric telescopic rod 8 pushes the grinding stone 9 to fit against the saw blade 107. After the saw blade 107 performs the cutting work, the saw blade 107 is ground, realizing the function of automatically grinding the saw blade 107. To solve the problem that the common equidistant cutting device for high-precision aluminum plate processing only includes the function of equidistant cutting of high-precision aluminum plate processing, and can perform the work of equidistant cutting of high-precision aluminum plate, but lacks the function of automatically grinding the saw blade 107. When the saw blade 107 works for a long time, the heat generated causes the saw blade 107 to become dull, resulting in an increased risk of equipment wear and material damage when performing equidistant cutting of high-precision aluminum plate.

Claims

1. An equidistant cutting device for high-precision aluminum plate processing, comprising a base (1); characterized in that: It also includes a grinding assembly, which consists of a timer (7), an electric telescopic rod (8) and a grinding stone (9). A sticker wall (2) is welded to the rear side of the top end of the base (1). A support column (4) is arranged at the rear side of the base (1). A rotating block (3) is welded to the center position of the front end of the support column (4). The rotating block (3) is in contact with the sticker wall (2). A rotating shaft (5) is arranged above the sticker wall (2) corresponding to the top end of the support column (4). A blade shell (6) is rotatably connected to the rotating shaft (5). A timer (7) is arranged at the inclined position of the rear end of the support column (4). An electric telescopic rod (8) is arranged at the bottom end inside the blade shell (6). The timer (7) is electrically connected to the electric telescopic rod (8). A grinding stone (9) is arranged at the front end of the electric telescopic rod (8).

2. The equidistant cutting device for high-precision aluminum plate processing according to claim 1, characterized in that: A rotating groove (101) is opened at the center position of the top end of the base (1). A cutting seat (102) is movably connected inside the rotating groove (101).

3. The equidistant slitting device for high-precision aluminum plate processing according to claim 2, characterized in that: A cutting groove (103) is opened at the center position of the top end of the cutting seat (102).

4. An equidistant cutting device for high-precision aluminum plate processing according to claim 2, characterized in that: A cutting seat (102) is welded to the bottom of the front end of the support column (4). A blocking block (104) is welded to the center position of the front end of the cutting seat (102). A first grip (105) is welded to the end of the blocking block (104) away from the cutting seat (102).

5. An equidistant slitting device for high-precision aluminum plate processing according to claim 1, characterized in that: A first motor (108) is arranged at the center position on the right side of the blade shell (6). The output end of the first motor (108) penetrates through the blade shell (6) and is connected to a rotating shaft (5). Three saw blades (107) are fixedly connected to the rotating shaft (5) at equal intervals. The left side inside the blade shell (6) is rotatably connected to the rotating shaft (5).

6. The equidistant slitting device for high-precision aluminum plate processing according to claim 1, wherein: A positioning block (106) is arranged below the rotating shaft (5) corresponding to the top end of the support column (4). A second grip (117) is arranged at the top of the left side of the blade shell (6).

7. An equidistant cutting device for high-precision aluminum plate processing according to claim 1, characterized in that: A first fixing groove (111) is opened at the left end of the front side of the sticker wall (2). A second motor (115) is arranged at the position corresponding to the first fixing groove (111) at the left end of the sticker wall (2). The output end of the first motor (108) penetrates through the sticker wall (2) and is connected to a first screw rod (109). A first fixing strip (110) is threadedly connected to the left end of the first screw rod (109). A second fixing groove (112) is opened at the top end of the first fixing strip (110). A third motor (116) is arranged at the position corresponding to the second fixing groove (112) at the front end of the first fixing strip (110). The output end of the first motor (108) penetrates through the first fixing strip (110) and is connected to a second screw rod (113). A second fixing strip (114) is threadedly connected to the front end of the second screw rod (113). A third fixing groove (118) is opened at the right side of the top end of the base (1). A torsion spring (119) is welded to the rear end inside the third fixing groove (118). A fixing block (120) is fixedly connected to the front end of the torsion spring (119). The right end of the fixing block (120) penetrates through the right end of the base (1) and is placed outside.