Cutting device with synchronous pressing and fixing structure
By designing a synchronous pressurized fixed structure in the aluminum cutting device and using the damping sliding design of the slide chute and linkage cylinder, the problems of displacement and shaking of aluminum during the cutting process are solved, achieving higher cutting accuracy and production efficiency.
Patent Information
- Application Number
- CN202422325273.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-24
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing aluminum cutting devices lack a synchronous pressing fixing structure, which causes the aluminum to easily displace and shake during the cutting process, affecting the cutting accuracy, and may lead to damage to the aluminum surface and reduced production efficiency.
A cutting device equipped with a synchronous pressurized fixing structure is designed, including a base assembly, a cutting assembly and a fixing assembly. The fixing assembly realizes a damping sliding design through the chute and the linked cylinder, ensuring that the pressure plate is accurately pressed against the aluminum material and providing accurate fixation.
Through the synchronous pressing fixing structure of the device, it can effectively prevent aluminum displacement and shaking, improve cutting accuracy, reduce surface damage of aluminum, improve production efficiency, and adapt to aluminum processing of various sizes and shapes.
Smart Images

Figure CN222830950U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of cutting equipment, in particular to a cutting device equipped with a synchronous pressing and fixing structure. Background Art
[0002] Aluminum cutting device is a device specially used for cutting, cutting or trimming aluminum materials. The current aluminum cutting device has many disadvantages without a synchronous pressing and fixing structure. First, due to the lack of synchronous pressing and fixing, aluminum materials are prone to displacement and shaking during the cutting process. This is mainly because the impact force and vibration generated during cutting cause the aluminum materials to be not firmly fixed. To deal with this problem, the conventional method is to use a simple clamp or single-point fixation, but this method often cannot provide uniform fixing force, so that the various parts of the aluminum material are unevenly stressed, thereby affecting the cutting accuracy. Moreover, single-point fixation or simple clamps are difficult to adapt to aluminum materials of different shapes and sizes, and the fixing effect of aluminum materials with complex shapes is not good. In addition, conventional methods may also cause damage to the surface of aluminum materials, affecting product quality. In addition, due to the unsatisfactory fixing effect, operators often need to frequently check and adjust the position of aluminum materials, which increases the operation time and labor intensity and reduces production efficiency. At the same time, frequent adjustments may also introduce human errors, further affecting the cutting quality. Moreover, these conventional methods often cannot provide sufficient stability when dealing with larger or thinner aluminum materials, which can easily lead to cutting deviations and increased scrap rates, so a new structure is needed to solve the above technical problems. Utility Model Content
[0003] In view of the shortcomings of the prior art, the utility model aims to provide a cutting device equipped with a synchronous pressing and fixing structure to solve the problems raised in the above-mentioned background technology.
[0004] The utility model is realized through the following technical scheme: a cutting device equipped with a synchronous pressing and fixing structure, comprising: a base assembly, a cutting assembly and a fixing assembly, the base assembly comprising: a base body, a bottom plate and a slide groove, the bottom plate is installed inside the base body, the upper surface of the bottom plate is provided with a slide groove, a fixing assembly is installed with damping sliding inside the slide groove, the fixing assembly comprises: a slide plate, a pressing plate and a linkage cylinder, the upper surface of the slide plate is installed with a linkage cylinder, the pressing plate is installed under the slide plate through the linkage cylinder, the cutting assembly is slidably installed between the bottom plate and the base body through a screw motor 1, the cutting assembly comprises: a connecting plate, a vertical plate, a back plate, a limiting rod, a screw motor 2 and a laser cutting part, the connecting plate and the back plate are installed between the two vertical plates, and the front surface of the back plate is slidably installed with a laser cutting part through a limiting rod and a screw motor 2.
[0005] As a preferred embodiment, the cross-section of the base body is a U-shaped structure, and a bottom plate is installed on the front inner wall and the rear inner wall inside the base body. A gap is arranged between the lower surface of the bottom plate and the upper surface of the base body, and a lead screw motor is installed at the center position of the front surface of the base body. The user can flexibly adjust the position of the cutting component according to different aluminum cutting requirements to adapt to the processing of aluminum materials of various sizes and shapes.
[0006] As a preferred embodiment, two sliding grooves are symmetrically opened on the front edge and the rear edge of the upper surface of the base plate, and two slides are damped and symmetrically slidably installed inside each of the sliding grooves. The cross-section of the slide is an L-shaped structure, and a linkage cylinder is installed at the center position of the upper surface of the slide.
[0007] As a preferred embodiment, the telescopic rod of the linkage cylinder passes through the skateboard, the lower end of the telescopic rod of the linkage cylinder is connected to the center of the upper surface of the pressure plate, the lower surface of the pressure plate is glued with a rubber pad, and a plurality of the linkage cylinders are connected in parallel. The damping sliding design of the fixed component enables the skateboard to move stably and stop accurately in the slide groove, thereby ensuring that the pressure plate is accurately pressed against the predetermined position of the aluminum material, achieving precise fixation, and improving cutting accuracy.
[0008] As a preferred embodiment, a connecting plate is slidably installed between the base body and the bottom plate through a screw motor, two vertical plates are symmetrically installed on the left and right surfaces of the connecting plate, and a back plate is installed on the rear edge between the two vertical plates.
[0009] As a preferred embodiment, two limit rods are symmetrically installed between the two vertical plates, a screw motor 2 is installed between the two limit rods through the vertical plates, and the laser cutting part is slidably installed on the outer surface of the limit rod and the screw motor 2.
[0010] After adopting the above technical scheme, the beneficial effect of the utility model is as follows: by setting a base assembly, the base assembly includes: a base body, a bottom plate and a slide groove, the bottom plate is installed inside the base body, the upper surface of the bottom plate is provided with a slide groove, and a cutting assembly is slidably installed between the base body and the bottom plate through a screw motor. When in use, the user can flexibly adjust the position of the cutting assembly according to different aluminum cutting requirements to adapt to aluminum processing of various sizes and shapes.
[0011] By setting a fixing component, a damping sliding fixing component is installed inside the slide groove, and the fixing component includes: a slide plate, a pressure plate and a linkage cylinder. The linkage cylinder is installed on the upper surface of the slide plate, and the pressure plate is installed under the slide plate through the linkage cylinder. A cutting component is slidably installed between the bottom plate and the base body through a screw motor 1. The cutting component includes: a connecting plate, a vertical plate, a back plate, a limit rod, a screw motor 2 and a laser cutting part. When in use, the damping sliding design of the fixing component enables the slide plate to move stably and stop accurately in the slide groove, thereby ensuring that the pressure plate is accurately pressed against the predetermined position of the aluminum material, achieving precise fixation, and improving cutting accuracy. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] In order to more clearly illustrate the embodiments of the utility model or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.
[0013] Figure 1 It is a schematic diagram of the overall structure of a cutting device equipped with a synchronous pressing and fixing structure of the utility model.
[0014] Figure 2 It is a schematic diagram of a cutting assembly of a cutting device equipped with a synchronous pressing and fixing structure according to the utility model.
[0015] In the figure, 100-base body, 101-screw motor 1, 110-bottom plate, 111-slideway;
[0016] 200-slide plate, 210-linked cylinder, 220-pressure plate;
[0017] 300-cutting assembly, 310-vertical plate, 320-connecting plate, 330-back plate, 340-limiting rod, 350-screw motor 2, 360-laser cutting parts. DETAILED DESCRIPTION
[0018] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0019] See also Figure 1 to Figure 2, the present utility model provides a technical solution: a cutting device equipped with a synchronous pressing and fixing structure, including: a base assembly, a cutting assembly 300, and a fixing assembly. The base assembly includes: a base body 100, a bottom plate 110, and a sliding groove 111. A bottom plate 110 is installed inside the base body 100, and a sliding groove 111 is provided on the upper side surface of the bottom plate 110. A fixing assembly is damping slidably installed inside the sliding groove 111. The fixing assembly includes: a sliding plate 200, a pressing plate 220, and a linkage cylinder 210. A linkage cylinder 210 is installed on the upper side surface of the sliding plate 200, and a pressing plate 220 is installed below the sliding plate 200 through the linkage cylinder 210. A cutting assembly 300 is slidably installed between the bottom plate 110 and the base body 100 through a lead screw motor 101. The cutting assembly 300 includes: a connecting plate 320, a vertical plate 310, a back plate 330, a limiting rod 340, a lead screw motor 350, and a laser cutting member 360. A connecting plate 320 and a back plate 330 are installed between two vertical plates 310, and a laser cutting member 360 is slidably installed on the front side surface of the back plate 330 through a limiting rod 340 and a lead screw motor 350.
[0020] Please refer to Figure 1 , Figure 2 , as the first embodiment of the present utility model: the cross-section of the base body 100 is in a U-shaped structure. The front inner wall and the rear inner wall inside the base body 100 are installed with a bottom plate 110. A gap is provided between the lower side surface of the bottom plate 110 and the upper side surface of the base body 100. A lead screw motor 101 is installed at the center position of the front side surface of the base body 100;
[0021] Two sliding grooves 111 are symmetrically provided at the front side edge and the rear side edge of the upper side surface of the bottom plate 110. Two sliding plates 200 are damping symmetrically slidably installed inside each sliding groove 111. The cross-section of the sliding plate 200 is in an L-shaped structure. A linkage cylinder 210 is installed at the center position of the upper side surface of the sliding plate 200;
[0022] When in use, the user first places the aluminum product to be cut on the upper surface of the bottom plate 110, and then starts the screw motor 101 to move the cutting assembly 300 back and forth between the bottom plate 110 and the base body 100, so as to adjust the cutting assembly 300 to a suitable cutting position. Before the position adjustment of the cutting assembly 300 is completed, the user needs to synchronously slide the two slides 200 according to the width of the aluminum product, so that the two slides 200 move toward or away from each other (the width of the aluminum product must not be greater than the width of the bottom plate 110). After the position adjustment of the slide 200 according to the width of the aluminum product is completed, the pressure plate 220 will Located above the aluminum product, the user can start the linkage cylinder 210 on the upper surface of the slide plate 200. At this time, multiple linkage cylinders 210 are started synchronously due to parallel connection, thereby synchronously conveying the pressure plate 220 downward, so that the lower surface of the pressure plate 220 is abutted against the upper surface of the aluminum product to press and fix it. Then the user can cut the aluminum product through the cutting component 300. When removing the aluminum product, only the above steps need to be performed in reverse. Since the user can flexibly adjust the position of the cutting component 300 according to different aluminum cutting needs, it can adapt to the processing of aluminum materials of various sizes and shapes, which is convenient for users to use.
[0023] See also Figure 1 , Figure 2 As a second embodiment of the utility model: the telescopic rod of the linkage cylinder 210 penetrates the slide plate 200, the lower end of the telescopic rod of the linkage cylinder 210 is connected to the center of the upper surface of the pressure plate 220, the lower surface of the pressure plate 220 is glued with a rubber pad, and multiple linkage cylinders 210 are connected in parallel;
[0024] A connecting plate 320 is slidably installed between the base body 100 and the bottom plate 110 via a screw motor 101, two vertical plates 310 are symmetrically installed on the left and right surfaces of the connecting plate 320, and a back plate 330 is installed on the rear edge between the two vertical plates 310;
[0025] Two limit rods 340 are symmetrically installed between the two vertical plates 310, and a second screw motor 350 is installed between the two limit rods 340 through the vertical plates 310. The laser cutting member 360 is slidably installed on the outer surfaces of the limit rods 340 and the second screw motor 350;
[0026] When in use, after the aluminum product is fixed and the cutting assembly 300 is adjusted through the screw motor 101 and the position is adjusted, the user can start the screw motor 2 350 to move the laser cutting member 360 slidably connected to the screw motor 2 350, and move the laser cutting member 360 to the left edge or the rear edge through the screw motor 2 350. Then, after the movement is completed, turn off the screw motor 2 350. When cutting the aluminum product, it is only necessary to start the screw motor 2 350 and the laser cutting member 360 (screw motor 101, screw motor 2 350) synchronously. 50 and the laser cutting component 360 are both existing technologies, and their models can be selected from existing market models. Their working principle and structure are not described in detail here). At this time, the laser cutting component 360 will perform laser cutting on the fixed aluminum product through the screw motor 2 350 (the specific cutting steps, cutting data and cutting process need to be selected according to the actual situation and are not described in detail here). Due to the damping sliding design of the fixed component, the slide plate 200 can move stably and stop accurately in the slide groove 111, thereby ensuring that the pressure plate 220 is accurately pressed at the predetermined position of the aluminum material, achieving precise fixation and improving the cutting accuracy.
[0027] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. A cutting device equipped with a synchronous pressing and fixing structure, comprising: A base assembly, a cutting assembly (300), and a fixing assembly, characterized in that the base assembly includes: a base body (100), a bottom plate (110), and a chute (111), the bottom plate (110) is installed inside the base body (100), and a chute (111) is provided on the upper surface of the bottom plate (110); A fixing assembly is damping slidably installed inside the chute (111), and the fixing assembly includes: a sliding plate (200), a pressing plate (220), and a linkage cylinder (210), the linkage cylinder (210) is installed on the upper surface of the sliding plate (200), and the pressing plate (220) is installed below the sliding plate (200) through the linkage cylinder (210); The cutting assembly (300) is slidably installed between the bottom plate (110) and the base body (100) through a lead screw motor one (101), and the cutting assembly (300) includes: a connecting plate (320), a vertical plate (310), a back plate (330), a limiting rod (340), a lead screw motor two (350), and a laser cutting part (360), the connecting plate (320) and the back plate (330) are installed between the two vertical plates (310), and the laser cutting part (360) is slidably installed on the front surface of the back plate (330) through the limiting rod (340) and the lead screw motor two (350).
2. A cutting device with a synchronous pressing and fixing structure as claimed in claim 1, characterized in that: The cross-section of the base body (100) is in a U-shaped structure, the front inner wall and the rear inner wall inside the base body (100) are installed with the bottom plate (110), a gap is provided between the lower surface of the bottom plate (110) and the upper surface of the base body (100), and a lead screw motor one (101) is installed at the center position of the front surface of the base body (100).
3. A cutting device with a synchronous pressing and fixing structure as claimed in claim 2, characterized in that: Two chutes (111) are symmetrically provided at the front edge and the rear edge of the upper surface of the bottom plate (110), and two sliding plates (200) are damping symmetrically slidably installed inside each chute (111), the cross-section of the sliding plate (200) is in an L-shaped structure, and the linkage cylinder (210) is installed at the center position of the upper surface of the sliding plate (200).
4. A cutting device with a synchronous pressing and fixing structure as claimed in claim 3, characterized in that: The telescopic rod of the linkage cylinder (210) penetrates through the sliding plate (200), the lower end of the telescopic rod of the linkage cylinder (210) is connected to the center of the upper surface of the pressing plate (220), a rubber pad is bonded to the lower surface of the pressing plate (220), and a plurality of linkage cylinders (210) are connected in parallel.
5. A cutting device with a synchronous pressing and fixing structure as claimed in claim 4, characterized in that: The connecting plate (320) is slidably installed between the base body (100) and the bottom plate (110) through the lead screw motor one (101), two vertical plates (310) are symmetrically installed on the left surface and the right surface of the connecting plate (320), and the back plate (330) is installed at the rear edge between the two vertical plates (310).
6. A cutting device with a synchronous pressing and fixing structure as claimed in claim 1, characterized in that: Two limit rods (340) are symmetrically installed between the two vertical plates (310), a second screw motor (350) is installed between the two limit rods (340) through the vertical plates (310), and the laser cutting component (360) is slidably installed on the outer surfaces of the limit rods (340) and the second screw motor (350).