Cutting equipment for metal product production and processing

By adopting a worm gear driven linkage system in metal product cutting equipment, dust collection and chip compression are achieved simultaneously, solving the problems of low dust handling efficiency and inconvenient chip handling, reducing equipment costs and energy consumption, and improving production continuity and safety.

CN121607696AInactive Publication Date: 2026-03-06NANJING MINGCHENG INTELLIGENT EQUIP CO LTD
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Patent Information

Application Number
CN202610015591.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-07
Publication Date
2026-03-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing metal product cutting equipment has low efficiency in handling dust and debris generated during the cutting process, and the equipment cost and energy consumption are high. Furthermore, debris handling is inconvenient, which affects production efficiency and safety.

Method used

A mechanical linkage system is adopted, which uses the power source of the main cutting motor to synchronously drive the cutting blade, centrifugal dust collector impeller and debris compaction mechanism through worm gear, so as to realize the instantaneous suction of dust and online compression of debris. It is integrated into the protective box, eliminating the need for a separate dust collector motor and compaction power device.

Benefits of technology

It achieves efficient synchronous collection of dust and instant compression of debris, reducing equipment costs and energy consumption, improving production continuity and safety, and simplifying the maintenance process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides cutting equipment for metal product production and machining, and belongs to the technical field of metal machining machinery. The equipment comprises a machining table, a moving mechanism and a clamping mechanism which are arranged on the machining table, and a core cutting dust removal mechanism. The cutting dust removal mechanism drives a vertical worm to rotate through a first servo motor, and then a driving turbine and a horizontal driving shaft are meshed to drive a cutting blade to complete cutting. The innovation is that the bottom end of the same worm directly drives the centrifugal impeller to rotate to generate negative pressure, cutting dust is synchronously sucked into the dust collection box through the dust suction port and the pipeline, and power homology and action synchronization of cutting and dust removal are achieved. The technical problems that in the prior art, an independent dust removal system is high in energy consumption and cost and poor in synchronism, collected chippings are fluffy, and frequent shutdown cleaning is needed are effectively solved.
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Description

Technical Field

[0001] This invention relates to the field of metal processing machinery technology, and in particular to a cutting device for the production and processing of metal products. Background Technology

[0002] In the metal product manufacturing and processing industry, cutting materials such as pipes and profiles is a common process. Currently, common cutting equipment on the market typically includes a processing table, a moving mechanism, a positioning component, and a cutting mechanism. During operation, the workpiece is first fixed by the positioning component, and then the moving mechanism delivers the part to be cut to the cutting blade for cutting.

[0003] However, the cutting process generates a large amount of metal dust and debris, which not only pollutes the working environment and endangers the health of operators, but may also affect the accuracy and lifespan of the equipment. To solve this problem, existing technologies typically add an independent dust removal device to the cutting equipment. There are two common approaches: one is to equip the equipment with an independent dust removal motor driving the suction fan, and the other is to connect a central dust removal system externally to the equipment. While these solutions can achieve a certain dust removal effect, they have significant drawbacks: firstly, an independent dust removal motor or external system increases the equipment's manufacturing cost, energy consumption, structural complexity, and space occupation; secondly, its power is separated from the main cutting motion, posing a risk of forgetting to turn it on or failing to start and stop synchronously, leading to unstable dust removal efficiency or energy waste.

[0004] Furthermore, the collected metal shavings (especially steel and aluminum shavings) are typically fluffy, curled, or flaky, with large volume and low density, quickly filling the dust collection box. This necessitates very frequent machine shutdowns for cleaning, severely disrupting continuous workflows and reducing overall production efficiency. Current technologies lack effective online processing methods for collected shavings, typically relying on subsequent centralized removal or the addition of separate compression devices, which further increases processing costs and process complexity. Summary of the Invention

[0005] The purpose of this section is to outline some aspects of embodiments of the present invention and to briefly describe some preferred embodiments. Simplifications or omissions may be made in this section, as well as in the abstract and title of this application, to avoid obscuring the purpose of these documents; however, such simplifications or omissions should not be construed as limiting the scope of the invention.

[0006] In view of the problems existing in the above and / or prior art, the present invention is proposed.

[0007] Therefore, the technical problem to be solved by the present invention is: how to achieve efficient and synchronous collection of cutting dust without adding an independent drive source, and at the same time compress the collected debris in real time, so as to reduce equipment cost, energy consumption and maintenance frequency.

[0008] To solve the above technical problems, the present invention provides the following technical solution: a cutting device for metal product manufacturing and processing, including a processing table, a moving mechanism is provided on the left side of the processing table surface, a clamping mechanism is provided above the moving mechanism, and a cutting and dust removal mechanism is provided on the right side of the processing table surface; The cutting and dust removal mechanism includes a fixed frame fixedly installed at the right rear of the processing table surface. A lifting assembly is provided inside the fixed frame. The lifting assembly includes a lifting plate slidably connected to the front end of the fixed frame. A protective box is fixedly installed at the front end of the lifting plate. A first servo motor is fixedly installed at the top of the protective box. The output end of the first servo motor is driven by a worm gear through a coupling. The bottom end of the worm gear extends into the protective box and is engaged with a turbine. A drive shaft is fixedly installed at the center of the turbine. The left end of the drive shaft penetrates the inner wall of the protective box and extends to its outside, where a cutting blade is fixedly connected. A dust collection assembly and a centrifugal assembly are also driven by the outside of the worm gear. A pressing assembly is also driven by one end of the centrifugal assembly.

[0009] In a preferred embodiment of the cutting equipment for metal product manufacturing and processing according to the present invention, the moving mechanism includes a guide rail fixedly installed on the left end of the upper surface of the processing table, a second servo motor fixedly installed on the left end of the guide rail, a lead screw being driven to the output end of the second servo motor through a coupling, a moving seat being threadedly connected to the outer surface of the lead screw, and the moving seat being slidably connected to the top end of the guide rail.

[0010] In a preferred embodiment of the cutting equipment for metal product manufacturing and processing according to the present invention, the clamping mechanism includes a fixed frame fixedly installed on the top of the movable seat, a clamping seat fixedly installed on the inner bottom wall of the fixed frame, a first electric cylinder fixedly installed on the outer top wall of the fixed frame, a first telescopic rod movably connected inside the first electric cylinder, the bottom end of the first telescopic rod extending into the interior of the fixed frame and fixedly connected to a clamping plate, and the clamping plate being positioned directly above the clamping seat.

[0011] As a preferred embodiment of the cutting equipment for metal product manufacturing and processing according to the present invention, wherein: a positioning seat is provided at the right end of the clamping seat, and the cutting blade is positioned directly above the positioning seat; a guide roller is fixedly installed at the top of the left side of the guide rail; the upper surfaces of the guide roller, the clamping seat, and the positioning seat are all on the same plane; and the material to be cut is placed on the upper surfaces of the three and fixed by the clamping plate.

[0012] As a preferred embodiment of the cutting equipment for metal product manufacturing and processing according to the present invention, the lifting assembly further includes a second electric cylinder fixedly installed on the top wall outside the fixed frame. The second electric cylinder is movably connected to a second telescopic rod. The bottom end of the second telescopic rod extends into the interior of the fixed frame and is fixedly connected to a connecting block. The front end of the connecting block is fixedly connected to the rear wall of the lifting plate.

[0013] As a preferred embodiment of the cutting equipment for metal product manufacturing and processing according to the present invention, the dust collection component includes a centrifugal impeller fixedly installed at the bottom end of the worm gear, and the centrifugal impeller is disposed at the bottom end outside the protective box. A dust collection hood is provided outside the centrifugal impeller. A dust collection port is opened on the left side of the bottom of the dust collection hood, and the air inlet end of the dust collection port is located near the connection between the cutting blade and the positioning seat. A dust discharge port is opened at the connection between the rear end of the dust collection hood and the protective box. The right end of the dust discharge port is connected to a dust collection box through a dust discharge pipe. Both the dust discharge pipe and the dust collection box are disposed inside the protective box, and the dust collection box is slidably connected inside the protective box. The other end of the dust collection box extends to the outside of the protective box and is fixedly connected to a handle. The top of the dust collection box is open, and a sealing plate is provided on the top of the dust collection box. The right end of the sealing plate is fixedly connected to the inner wall of the protective box.

[0014] In a preferred embodiment of the cutting equipment for metal product manufacturing and processing according to the present invention, the centrifugal assembly includes a hinge seat fixedly installed on the upper side of the outer surface of the worm gear and a rotating ring rotatably connected to the lower side of the outer surface. Eccentric rods are hinged to both ends of the hinge seat, and centrifugal balls are fixedly installed at the bottom ends of both eccentric rods. Pull rods are hinged to the outer surfaces of both eccentric rods, and the bottom ends of both pull rods are hinged to the top end of the rotating ring. A lifting ring is sleeved on the outer surface of the rotating ring, and the lifting ring is rotatably connected to a groove on the outer surface of the rotating ring. A lower toothed plate is fixedly connected to the right end of the lifting ring via a connecting plate. A gear is meshed with the rear side of the lower toothed plate, and an upper toothed plate is meshed with the rear side of the gear.

[0015] In a preferred embodiment of the cutting equipment for metal product manufacturing and processing according to the present invention, the pressing assembly includes a fixed cylinder fixedly installed on the top wall of the protective box and located directly above the sealing plate. A pressure rod is slidably connected inside the fixed cylinder. A pressure plate is fixedly connected to the bottom end of the pressure rod, and the pressure plate is slidably connected inside the sealing plate and located directly above the opening of the dust collection box. The front end of the pressure rod is fixedly connected to the rear wall of the upper toothed plate through a connecting rod.

[0016] In a preferred embodiment of the cutting equipment for metal product manufacturing and processing according to the present invention, the gear is fixedly installed inside the protective box by a mounting bracket, a limit rod is fixedly installed on the inner top wall of the protective box, and the connecting plate is slidably sleeved on the outside of the limit rod.

[0017] In a preferred embodiment of the cutting equipment for metal product manufacturing and processing according to the present invention, a receiving frame is fixedly installed on the right end of the processing table, a guide plate is fixedly installed on the left side of the top of the receiving frame, and the left end of the guide plate is connected to the positioning seat.

[0018] The beneficial effects of this invention are: 1. Achieves highly efficient integrated operation, significantly saving energy and reducing costs. This invention creatively utilizes a single power source—the main cutting motor—to synchronously drive the cutting blade, centrifugal dust collector impeller, and debris compaction mechanism via the same rotating worm gear. This eliminates the need for a separate dust collector motor and an additional compaction power unit, fundamentally reducing the equipment's manufacturing cost, operating energy consumption, and structural complexity, and achieving natural synchronization and efficient synergy among the three process steps of cutting, dust collection, and compaction.

[0019] 2. Improved automation and reliability of dust removal and waste treatment. Dust generated during cutting is instantly sucked in and collected by the negative pressure created by the high-speed rotating centrifugal impeller, achieving closed-loop processing from generation to collection point with zero delay in dust removal response. Simultaneously, the centrifugal mechanical transmission transforms the rotation of the worm gear into the periodic reciprocating compaction action of the pressure plate, automatically compressing the collected loose metal shavings, significantly increasing the effective capacity of the dust collection box, reducing the frequency of downtime for cleaning, and improving the equipment's continuous operation capability.

[0020] 3. The overall structure has been optimized, enhancing practicality and ease of maintenance. All newly added functional components are compactly arranged around the main shaft and integrated within the protective housing, resulting in a compact structure that does not occupy additional working space. The dust collection and compaction functions are mechanically coupled with the main cutting action, without independent circuit control, resulting in a low failure rate and reliable operation. The dust collection box adopts a sliding pull-out design, making it easier to handle the compacted chips and simplifying maintenance and cleaning.

[0021] 4. Improved working environment and safety. Instant and effective source dust removal significantly reduces dust concentration in the work area, protecting operator health. Mechanical automatic compaction avoids the risk of scratches from manual handling of loose burrs and sharp chips, and all moving parts are housed in protective enclosures, further enhancing the safety of equipment operation. Attached Figure Description

[0022] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Wherein: Figure 1 This is a perspective view of the overall structure of the present invention; Figure 2 This is an enlarged perspective view of the connection between the clamping mechanism, the cutting and dust removal mechanism and the processing table of the present invention; Figure 3 This is a three-dimensional enlarged front view of the clamping mechanism and the cutting and dust removal mechanism of the present invention; Figure 4 This is a three-dimensional rear enlarged view of the clamping mechanism and the cutting and dust removal mechanism of the present invention; Figure 5 This is a three-dimensional enlarged view of the internal structure of the protective box of the present invention; Figure 6 This is an enlarged three-dimensional front sectional view of the protective box of the present invention; Figure 7 This is an enlarged perspective side sectional view of the connection between the protective box and the worm gear in this invention; Figure 8 This is a three-dimensional top sectional enlarged view of the protective box of the present invention; Figure 9 This is an enlarged perspective side sectional view of the connection between the protective box and the pressing component of the present invention; Figure 10 This is a three-dimensional enlarged view of the connection between the worm gear and a portion of the centrifugal assembly of the present invention. Detailed Implementation

[0023] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.

[0024] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and those skilled in the art can make similar extensions without departing from the spirit of the invention. Therefore, the invention is not limited to the specific embodiments disclosed below.

[0025] Secondly, the term "one embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that is mutually exclusive with other embodiments.

[0026] Example Reference Figures 1-10 This embodiment provides a cutting device for metal product manufacturing, including a processing table 100 that serves as the basic support platform for the entire device. On the left side of the processing table surface, a moving mechanism 200 for precisely controlling the workpiece feed position is provided. This moving mechanism includes a guide rail 201 fixedly mounted on the upper surface of the processing table. A second servo motor 202, providing power, is mounted on the left end of the guide rail, and its output end is connected to a precision lead screw 203 via a coupling. A movable seat 204 is threaded onto the surface of the lead screw, and this movable seat simultaneously slides and engages with the top of the guide rail. When the second servo motor 202 is started, it drives the lead screw 203 to rotate precisely, thereby causing the movable seat 204 to slide smoothly left and right along the guide rail 201, achieving precise positioning of the part of the workpiece to be cut.

[0027] At the top of the movable seat 204, a clamping mechanism 300 for holding the workpiece is securely installed. This mechanism consists of a portal frame 301 fixed to the movable seat. The inner bottom wall of the frame is fixed with a clamping seat 302 for supporting the workpiece, and the outer top wall is equipped with a first electric cylinder 303. The movable end of the first electric cylinder 303 is connected to a first telescopic rod 304. The bottom end of the first telescopic rod extends into the interior of the frame and is fixedly connected to a pressure plate 305, which is located directly above the clamping seat 302. When the first electric cylinder 303 is activated, it drives the first telescopic rod 304 to vertically raise and lower the pressure plate 305, thereby firmly pressing or releasing the workpiece placed on the clamping seat 302, ensuring the workpiece is absolutely stable during the cutting process.

[0028] To support long metal profiles, a freely rotatable guide roller 600 is installed at the top left side of the guide rail 201, allowing the workpiece to slide easily. The right end of the workpiece is successively placed across the guide roller 600, the clamping seat 302, and an independent positioning seat 500 located to the right of the clamping seat. The upper surfaces of these three components are precisely adjusted to be on the same ideal horizontal plane, providing a stable and level support reference for the workpiece. When cutting is required, the part of the workpiece to be cut is moved by the moving mechanism 200 to be directly above the positioning seat 500.

[0029] On the right side of the processing table 100, the core functional module of this equipment—the cutting and dust removal mechanism 400—is located. This mechanism uses a three-dimensional fixed frame 401, firmly installed at the rear right side of the table, as its main skeleton. Inside the fixed frame 401 is a lifting assembly 402 that controls the height of the cutting components. The lifting assembly mainly includes a lifting plate 402a slidably connected to the front end of the fixed frame, and a second electric cylinder 402b as the drive source. The second electric cylinder 402b is vertically installed on the outer top wall of the fixed frame. Its movable end is connected to a connecting block 402d via a second telescopic rod 402c, and the front end of the connecting block is rigidly connected to the rear wall of the lifting plate 402a. When the second electric cylinder 402b is activated, it drives the second telescopic rod 402c to extend or retract, thereby causing the entire lifting plate 402a and all its components to move vertically up and down via the connecting block 402d, to accommodate workpieces of different thicknesses or adjust the cutting depth.

[0030] A sealed protective box 403 is fixedly installed on the front end of the lifting plate 402a, which integrates the main transmission and actuator mechanisms. The first servo motor 404 is fixedly installed on the top of the protective box 403, which is the sole power source for all cutting and linkage functions. The output shaft of the first servo motor 404 is directly connected to a vertically mounted worm gear 405 through a high-rigidity coupling.

[0031] The rotational motion of the worm gear 405 is the core of the entire system's linkage. It extends downwards, passing through the top wall of the protective housing 403, and its bottom end extends to the outside of the protective housing. Inside the protective housing, a turbine 406 is precisely meshed on a section of the worm gear. A horizontal drive shaft 407 is fixedly mounted at the center of the turbine 406. The left end of the drive shaft 407 passes through the left side wall of the protective housing 403 via a high-performance bearing and extends to the outside, where a cutting blade 408 for cutting is fixedly mounted.

[0032] The core linkage process is as follows: When the first servo motor 404 starts, it can directly drive the worm gear 405 to rotate at high speed. The rotation of the worm gear 405 will mesh and drive the turbine 406 to rotate, and the turbine 406 will drive the coaxial drive shaft 407 to rotate together. Finally, the drive shaft 407 drives the cutting blade 408 at its end to rotate at high speed, thereby enabling the cutting operation of the metal product that moves directly below it.

[0033] Simultaneously, the same rotating worm gear 405 also synchronously drives the dust collection assembly 409 and the centrifugal assembly 410, achieving functional integration. The dust collection assembly 409 is responsible for collecting cutting dust: a centrifugal impeller 409a is fixedly mounted at the bottom of the worm gear 405, and this impeller is surrounded by a specially designed dust collection hood 409b. A dust collection port 409c is opened on the bottom left side of the dust collection hood 409b, and its position is precisely adjusted to be very close to the contact point between the cutting blade 408 and the workpiece (on the positioning seat 500). The rear end of the dust collection hood 409b is connected to a dust discharge pipe 409e through a dust discharge port 409d, and the other end of the dust discharge pipe 409e leads to a removable dust collection box 409f. When the worm gear 405 rotates, it synchronously drives the centrifugal impeller 409a at its bottom to rotate at high speed. When the centrifugal impeller 409a rotates, it generates a powerful centrifugal airflow within the dust collection hood 409b, creating a localized negative pressure zone at the dust collection port 409c, which instantly draws in the metal dust generated during cutting. The drawn-in dust is then blown into the dust collection box 409f by the airflow through the dust discharge pipe 409e for temporary storage, achieving complete synchronization between cutting and dust removal without the need for an independent motor drive.

[0034] More ingeniously, the rotation of the worm 405 is also used to drive a chip compaction mechanism to solve the problem of loose metal chips. This is achieved through a centrifugal assembly 410 mounted on the worm and a pressing assembly 411 linked to it. The core of the centrifugal assembly 410 is to convert rotational motion into reciprocating motion: a hinge 410a is fixedly mounted on the upper section of the outer surface of the worm 405; a freely rotatable ring 410b is fitted on the lower section of the outer surface of the worm. An eccentric rod 410c is hinged to each of the left and right ends of the hinge 410a, and a centrifugal ball 410d made of heavy metal is fixed to the bottom end of each eccentric rod. In addition, the middle of each eccentric rod 410c is also hinged to the top of the ring 410b below it through a shorter tie rod 410e. The outer ring of the swivel ring 410b is fitted with a lifting ring 410f. The lifting ring 410f is engaged in the annular groove on the outer surface of the swivel ring by its internal protrusion, so that the lifting ring can rotate relative to the swivel ring, but is restricted in the axial direction.

[0035] When the worm gear 405 rotates at high speed, it drives the hinge seat 410a to rotate as well. When the hinge seat 410a rotates, it drives the two eccentric rods 410c hinged to it and the centrifugal balls 410d at their ends to perform circular motion. Due to the centrifugal force, the two centrifugal balls 410d tend to fly outwards. This periodic change in centrifugal force is transmitted through the eccentric rods 410c and the pull rod 410e, forcing the rotating ring 410b and the lifting ring 410f fitted on it to produce periodic, small-amplitude axial up-and-down vibrations. The right end of the lifting ring 410f is fixedly connected to a vertical lower toothed plate 410h via a connecting plate 410g. The connecting plate 410g is simultaneously slidably fitted onto a limiting rod 413 fixed to the top wall of the protective box, ensuring stable motion trajectory. The tooth surface of the lower toothed plate 410h meshes with the front tooth surface of a gear 410i, which is fixed by a mounting bracket 410k. The rear tooth surface of gear 410i meshes with a vertical upper tooth plate 410j, thereby changing the direction of the reciprocating motion of the lower tooth plate 410h and transmitting it to the upper tooth plate 410j.

[0036] The pressing component 411 performs the final compaction action: it includes a fixed cylinder 411a vertically fixed to the top wall of the protective box 403, positioned directly above the opening of the dust collection box 409f. A pressure rod 411b slides within the fixed cylinder 411a, and a pressure plate 411c, matching the size of the dust collection box opening, is fixedly mounted at the bottom of the pressure rod 411b. The front end of the pressure rod 411b is fixedly connected to the rear wall of the aforementioned upper toothed plate 410j via a connecting rod 411d. Therefore, when the upper toothed plate 410j reciprocates up and down, it drives the pressure rod 411b and pressure plate 411c to move synchronously via the connecting rod 411d. The pressure plate 411c periodically presses downwards into the dust collection box 409f, compacting the loose metal debris that has just been sucked in, significantly reducing its volume, thereby extending the cleaning interval of the dust collection box 409f and greatly improving the efficiency of continuous equipment operation.

[0037] At the right end of the processing table 100, a receiving frame 700 is fixedly installed to collect the cut short pieces. An inclined guide plate 800 is fixedly connected to the left side of the top of the receiving frame 700. The left end of the guide plate 800 smoothly connects to the right side of the positioning seat 500, ensuring that the cut workpiece segments can slide smoothly into the receiving frame 700 along the guide plate 800, keeping the work area clean and safe.

[0038] In summary, this equipment, through a sophisticated purely mechanical linkage system driven by only one first servo motor 404, simultaneously achieves three major functions: metal cutting, dust collection, and debris compaction. It has a compact structure, high efficiency, and reliable operation.

[0039] It is important to note that the constructions and arrangements of this application shown in several different exemplary embodiments are merely illustrative. Although only a few embodiments are described in detail in this disclosure, those who consult this disclosure will readily understand that many modifications are possible (e.g., changes in the size, dimensions, structure, shape, and proportions of various elements, as well as parameter values ​​(e.g., temperature, pressure, etc.), mounting arrangements, use of materials, color, orientation, etc.) without substantially departing from the novel teachings and advantages of the subject matter described in this application). For example, an element shown as integrally formed may be composed of multiple parts or elements, the position of elements may be inverted or otherwise altered, and the nature or number or position of discrete elements may be changed or altered. Therefore, all such modifications are intended to be included within the scope of the invention. The order or sequence of any process or method steps may be changed or rearranged according to alternative embodiments. In the claims, any "device plus function" clause is intended to cover the structure described herein that performs the function, and not only structurally equivalent but also equivalent in structure. Other substitutions, modifications, alterations, and omissions may be made in the design, operation, and arrangement of the exemplary embodiments without departing from the scope of the invention. Therefore, the present invention is not limited to the specific embodiments, but extends to various modifications that still fall within the scope of the appended claims.

[0040] Furthermore, in order to provide a concise description of exemplary embodiments, not all features of actual embodiments (i.e., those features that are not relevant to the best mode of carrying out the invention as currently considered, or those features that are not relevant to implementing the invention) may be omitted.

[0041] It should be understood that numerous specific implementation decisions can be made during the development of any practical implementation, such as in any engineering or design project. Such development efforts may be complex and time-consuming, but for those skilled in the art who benefit from this disclosure, the development effort will be a routine work of design, manufacturing, and production without requiring much experimentation.

[0042] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.

Claims

1. A cutting apparatus for metal product manufacturing, characterized by, The utility model relates to a cutting dust removal mechanism (400) is arranged on the right side of the processing platform (100) table top, and the cutting dust removal mechanism (400) includes the fixed frame (401) of fixed installation in the right rear of the processing platform (100) table top, the inside of fixed frame (401) is provided with lifting assembly (402), lifting assembly (402) includes the lifting plate (402a) of sliding connection in the front end of fixed frame (401), the front end fixed mounting of lifting plate (402a) has the protection box (403), the top of protection box (403) is fixedly installed first servo motor (404), the output of first servo motor (404) is connected with the worm (405) through the shaft coupling drive, the bottom of worm (405) extends into the protection box (403) and is meshed with turbine (406), the center of turbine (406) is fixedly installed driving shaft (407), the left end of driving shaft (407) penetrates the inner wall of protection box (403) and extends to its outside and is fixedly connected with cutting blade (408), the outside of worm (405) is also drive connected with dust collection assembly (409) and centrifugal component (410), one end of centrifugal component (410) is also drive connected with pressing assembly (411). The utility model relates to a cutting dust removal mechanism (400) is arranged on the right side of the processing platform (100) table top, and the cutting dust removal mechanism (400) includes the fixed frame (401) of fixed installation in the right rear of the processing platform (100) table top, the inside of fixed frame (401) is provided with lifting assembly (402), lifting assembly (402) includes the lifting plate (402a) of sliding connection in the front end of fixed frame (401), the front end fixed mounting of lifting plate (402a) has the protection box (403), the top of protection box (403) is fixedly installed first servo motor (404), the output of first servo motor (404) is connected with the worm (405) through the shaft coupling drive, the bottom of worm (405) extends into the protection box (403) and is meshed with turbine (406), the center of turbine (406) is fixedly installed driving shaft (407), the left end of driving shaft (407) penetrates the inner wall of protection box (403) and extends to its outside and is fixedly connected with cutting blade (408), the outside of worm (405) is also drive connected with dust collection assembly (409) and centrifugal component (410), one end of centrifugal component (410) is also drive connected with pressing assembly (411). The utility model relates to a cutting dust removal mechanism (400) is arranged on the right side of the processing platform (100) table top, and the cutting dust removal mechanism (400) includes the fixed frame (401) of fixed installation in the right rear of the processing platform (100) table top, the inside of fixed frame (401) is provided with lifting assembly (402), lifting assembly (402) includes the lifting plate (402a) of sliding connection in the front end of fixed frame (401), the front end fixed mounting of lifting plate (402a) has the protection box (403), the top of protection box (403) is fixedly installed first servo motor (404), the output of first servo motor (404) is connected with the worm (405) through the shaft coupling drive, the bottom of worm (405) extends into the protection box (403) and is meshed with turbine (406), the center of turbine (406) is fixedly installed driving shaft (407), the left end of driving shaft (407) penetrates the inner wall of protection box (403) and extends to its outside and is fixedly connected with cutting blade (408), the outside of worm (405) is also drive connected with dust collection assembly (409) and centrifugal component (410), one end of centrifugal component (410) is also drive connected with pressing assembly (411).

2. The cutting apparatus for metal product manufacturing process as claimed in claim 1, wherein: ​ 3. The cutting apparatus for metal product manufacturing process as claimed in claim 2, wherein: ​ 4. The cutting apparatus for producing metal products according to claim 3, wherein: The right end of the clamping seat (302) is provided with a positioning seat (500), and the cutting blade (408) is arranged directly above the positioning seat (500); the top end of the left side of the guide rail (201) is fixedly installed with a guide roller (600); the upper surfaces of the guide roller (600), the clamping seat (302) and the positioning seat (500) are in the same plane, and the to-be-cut material is placed on the upper surfaces of the three and fixed through the clamping plate (305).

5. The cutting apparatus for metal product manufacturing process as claimed in claim 4, wherein: The lifting assembly (402) further comprises a second electric cylinder (402b) fixedly installed on the outer top wall of the fixed frame (401), and a second telescopic rod (402c) movably connected in the second electric cylinder (402b); the bottom end of the second telescopic rod (402c) extends into the fixed frame (401) and is fixedly connected with a connecting block (402d), and the front end of the connecting block (402d) is fixedly connected with the rear wall of the lifting plate (402a).

6. The cutting apparatus for metal product manufacturing process as claimed in claim 5, wherein: The dust suction assembly (409) comprises a centrifugal impeller (409a) fixedly installed at the bottom end of the worm (405), and the centrifugal impeller (409a) is arranged at the bottom end outside the protection box (403); a dust suction cover (409b) is arranged outside the centrifugal impeller (409a); a dust suction port (409c) is formed in the left side of the bottom of the dust suction cover (409b), and the air inlet end of the dust suction port (409c) is arranged close to the connecting position of the cutting blade (408) and the positioning seat (500); a dust discharge port (409d) is formed in the rear end of the dust suction cover (409b) and the connecting position of the protection box (403); a dust discharge pipe (409e) is in communication with a dust collecting box (409f) at the right end of the dust discharge port (409d); the dust discharge pipe (409e) and the dust collecting box (409f) are arranged in the protection box (403); the dust collecting box (409f) is slidably connected in the protection box (403), and the other end of the dust collecting box (409f) extends out of the protection box (403) and is fixedly connected with a handle. The top end of the dust collecting box (409f) is open, and a sealing plate (412) is arranged on the top end of the dust collecting box (409f); and the right end of the sealing plate (412) is fixedly connected with the inner wall of the protection box (403).

7. The cutting apparatus for producing metal products according to claim 6, wherein: The centrifugal assembly (410) comprises a hinge base (410a) fixedly installed on the outer surface of the worm (405) on the upside and a rotating ring (410b) rotatably connected to the outer surface on the downside, both left and right ends of the hinge base (410a) are hingedly connected with eccentric rods (410c), the bottom ends of the two eccentric rods (410c) are fixedly installed with centrifugal balls (410d), the outer surfaces of the two eccentric rods (410c) are hingedly connected with pull rods (410e), the bottom ends of the two pull rods (410e) are hingedly connected with the top end of the rotating ring (410b), the outer surface of the rotating ring (410b) is sleeved with a lifting ring (410f), the lifting ring (410f) is rotatably connected in the groove on the outer surface of the rotating ring (410b), the right end of the lifting ring (410f) is fixedly connected with a lower toothed plate (410h) through a connecting plate (410g), the rear side of the lower toothed plate (410h) is meshingly connected with a gear (410i), the rear side of the gear (410i) is meshingly connected with an upper toothed plate (410j).

8. The cutting apparatus for metal product manufacturing process as claimed in claim 7, wherein: The pressing assembly (411) comprises a fixed cylinder (411a) fixedly installed on the inner top wall of the protection box (403) and located above the sealing plate (412), the inside of the fixed cylinder (411a) is slidably connected with a pressing rod (411b), the bottom end of the pressing rod (411b) is fixedly connected with a pressing plate (411c), the pressing plate (411c) is slidably connected inside the sealing plate (412) and located above the opening of the dust collecting box (409f), the front end of the pressing rod (411b) is fixedly connected with the rear wall of the upper toothed plate (410j) through a connecting rod (411d).

9. The cutting apparatus for metal product manufacturing process as claimed in claim 8, wherein: The gear (410i) is fixedly installed inside the protection box (403) through a mounting frame (410k), the inner top wall of the protection box (403) is fixedly installed with a limiting rod (413), the connecting plate (410g) is slidably sleeved outside the limiting rod (413).

10. The cutting apparatus for metal product manufacturing process as claimed in claim 9, wherein: The right end of the processing table (100) is fixedly installed with a material receiving frame (700), the left side of the top end of the material receiving frame (700) is fixedly installed with a material guide plate (800), and the left end of the material guide plate (800) is connected with the positioning seat (500).