Clothing processing and cutting device
By designing the cutting and air intake components, the problems of low cutting efficiency and low precision in existing garment processing cutting devices have been solved, achieving stable fabric adsorption and precise cutting, thereby improving the efficiency and quality of garment processing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NANCHANG WEIPAN IND CO LTD
- Filing Date
- 2025-05-26
- Publication Date
- 2026-05-15
AI Technical Summary
Existing garment processing and cutting devices suffer from low cutting efficiency, difficulty in guaranteeing accuracy, complex structure and high cost, and the fabric is prone to displacement during the cutting process, affecting the cutting quality.
The cutting assembly consists of a lateral translation mechanism, a longitudinal adjustment mechanism, and a cutting mechanism. Combined with an air intake assembly and an exhaust mechanism, it forms an adsorption system through a confluence plate, an annular connecting pipe, and a small-diameter partition. This ensures that the fabric is stably adsorbed on the cutting table surface, avoiding movement and wrinkles, and improving cutting accuracy and efficiency.
It achieves stable fabric adsorption, reduces manual positioning steps, improves cutting efficiency, reduces defect rate, meets the high efficiency and precision requirements of industrial garment processing, and improves the stability and reliability of equipment structure.
Smart Images

Figure CN224243534U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of garment processing technology, and in particular to a garment processing and cutting device. Background Technology
[0002] In the garment manufacturing industry, cutting is a crucial step in garment production, and its quality and efficiency directly affect the production cycle and the quality of the finished garment.
[0003] Traditional garment cutting methods largely rely on manual operation, resulting in low efficiency, difficulty in guaranteeing cutting accuracy, and high labor intensity, which can easily lead to fatigue and affect the consistency of cutting quality. Although some existing cutting devices use automated equipment, which can improve cutting efficiency to some extent, these devices are usually complex in structure, expensive, and have shortcomings in fabric fixation and cutting path planning. This can cause fabric displacement during the cutting process, affecting cutting accuracy and failing to meet the needs of high-quality garment processing.
[0004] Therefore, this utility model proposes a garment processing and cutting device. Utility Model Content
[0005] The purpose of this invention is to address the shortcomings of existing technologies and to propose a garment processing and cutting device.
[0006] To achieve the above objectives, this utility model adopts the following technical solution: a garment processing and cutting device, comprising a cutting assembly, which is composed of a lateral translation mechanism, a longitudinal adjustment mechanism, and a cutting mechanism. The longitudinal adjustment mechanism is slidably connected to two of the lateral translation mechanisms, and the cutting mechanism is slidably connected to the longitudinal adjustment mechanism. The device further includes:
[0007] The air intake assembly consists of a confluence plate disposed below two lateral translation mechanisms. The confluence plate has air intake slots that are rectangularly distributed and have equal spacing between adjacent slots. A small-diameter baffle is embedded above the air intake slots on the confluence plate.
[0008] Furthermore, an air intake sleeve is embedded in the air intake groove, and the diameter of the air intake sleeve is adapted to the diameter of the air intake groove.
[0009] The beneficial effects of adopting the above-mentioned further solution are as follows: an air inlet sleeve is embedded in the air inlet slot, and the diameters of the two are precisely matched. This not only effectively avoids the air leakage problem caused by installation gaps, but also enhances structural stability. The close fit reduces airflow resistance, improves air intake efficiency, and ensures smooth gas delivery. At the same time, it facilitates disassembly and maintenance, extends service life, and can significantly optimize equipment performance and ensure stable system operation in practical applications.
[0010] Furthermore, the base assembly consists of a base bracket disposed below the confluence plate, with support legs provided on both sides of the bottom of the base bracket.
[0011] The beneficial effects of adopting the above-mentioned further solution are as follows: the base assembly is composed of a base bracket located below the confluence plate, with support legs on both sides of its bottom. This design greatly enhances the overall stability, effectively distributes the weight of the equipment, and avoids tilting or damage due to uneven local stress. The support legs can also increase the friction with the ground, reduce the risk of sliding, and are easy to install and maintain. They can effectively ensure the stable operation of the equipment and improve the safety and reliability of the equipment.
[0012] Furthermore, the merging assembly is composed of an annular connecting pipe disposed between the base support and the small-diameter partition. An air intake pipe communicating with the air intake slot is disposed above the annular connecting pipe. The air intake pipe is connected to the air intake sleeve and the small hole on the small-diameter partition.
[0013] The beneficial effects of adopting the above-mentioned further solution are as follows: The merging assembly is composed of an annular connecting pipe, located between the base support and the small-diameter partition. The air inlet pipe connects the air inlet slot, the air inlet sleeve, and the small holes of the small-diameter partition, forming a highly efficient gas passage and ensuring orderly gas merging and delivery. This structure can optimize the gas flow path, reduce eddy current losses, and improve merging efficiency. At the same time, the standardized connection design facilitates installation and disassembly, enhancing the practicality and maintainability of the equipment.
[0014] Furthermore, a merging pipe is fixedly connected to one side of the annular connecting pipe, and multiple annular connecting pipes are provided, with each annular connecting pipe connected to the merging pipe.
[0015] The advantages of adopting the above-mentioned further solution are: the ring connecting pipe is fixed to the merging pipe on one side, and multiple ring connecting pipes are connected to the merging pipe. This design can effectively collect the gas in multiple ring connecting pipes, improve the gas merging efficiency, and at the same time, the air intake of different ring connecting pipes can be flexibly adjusted to meet the needs of different working conditions. Moreover, the structure is compact and reasonable, reducing the space occupied, facilitating the installation and layout of equipment, and reducing energy loss in the gas transportation process.
[0016] Furthermore, an exhaust pipe is fixedly connected to the side of the merging pipe away from the annular connecting pipe, and the exhaust pipe is installed through the base support.
[0017] The beneficial effects of adopting the above-mentioned further solution are: the side of the merging pipe away from the annular connecting pipe is fixedly connected to the outlet pipe, and the outlet pipe passes through the base support. This design allows the merged gas to be discharged smoothly through the outlet pipe, efficiently guiding the airflow direction. The setting of passing through the base support enhances the overall structural stability, ensures the fixed position of the outlet pipe, and facilitates the delivery of the discharged gas to the subsequent processing stage, optimizing the gas delivery process of the equipment and improving operating efficiency and reliability.
[0018] Furthermore, a ventilation mechanism is provided at the bottom of the base bracket between the two support legs. The input end of the ventilation mechanism is fixedly connected to a connecting pipe, and the other end of the connecting pipe is fixedly connected to an air outlet pipe.
[0019] The beneficial effects of adopting the above-mentioned further solution are as follows: an exhaust mechanism is installed between the two support legs at the bottom of the base bracket. Its input end is connected to the exhaust pipe via a connecting pipe. This design can utilize the exhaust mechanism to generate suction, accelerate the flow speed of gas in the entire system, improve the efficiency of air intake, merging and exhaust, effectively prevent gas from stagnating in the pipe, reduce the risk of blockage, and place the exhaust mechanism at the bottom, utilizing the space between the support legs, without taking up extra space, making the equipment layout more compact and reasonable.
[0020] Compared with the prior art, the advantages and positive effects of this utility model are as follows:
[0021] In this invention, the use of a blower to draw air during the cutting of garment fabric produces the following beneficial effects: the blower mechanism is connected to a connecting pipe, an outlet pipe, a merging pipe, an annular connecting pipe, an inlet pipe, an inlet sleeve, and a small-diameter partition to form an adsorption system. The rectangularly distributed, equally spaced inlet slots on the merging plate, combined with the small-diameter partition, allow airflow to evenly pass through the small holes and act on the fabric, stably adsorbing it onto the cutting table surface. This prevents the fabric from moving or wrinkling during cutting, thus affecting accuracy. The even distribution of adsorption force ensures that multiple layers of fabric fit flat and together, reducing manual positioning steps and improving cutting efficiency. At the same time, the structure is rationally laid out, with the blower mechanism located at the bottom of the base support, not occupying the cutting work space. Furthermore, the smooth connection of each component ensures stable air intake, providing reliable support for precise cutting, reducing the defect rate, and meeting the high efficiency and precision requirements of industrial garment processing. Attached Figure Description
[0022] Figure 1 This is a front view of a garment processing and cutting device according to the present invention;
[0023] Figure 2 This is an exploded view of a garment processing and cutting device according to the present invention;
[0024] Figure 3 This is a structural diagram of the base assembly in a garment processing and cutting device according to the present invention;
[0025] Figure 4 This is a structural diagram of the confluence component in a garment processing and cutting device according to this utility model;
[0026] Figure 5 This is an enlarged view of the air intake component in a garment processing and cutting device according to this utility model.
[0027] Attached Figure
[0028] 1. Cutting assembly; 11. Lateral translation mechanism; 12. Vertical adjustment mechanism; 13. Cutting mechanism;
[0029] 2. Small-aperture baffle;
[0030] 3. Base assembly; 31. Base bracket; 311. Support leg; 32. Exhaust mechanism; 33. Connecting pipe;
[0031] 4. Intake assembly; 41. Converging plate; 42. Intake slot; 43. Intake sleeve;
[0032] 5. Combination assembly; 51. Annular connecting pipe; 511. Inlet pipe; 52. Merging pipe; 53. Outlet pipe. Detailed Implementation
[0033] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0034] like Figure 1-5 As shown, this utility model provides a technical solution: a garment processing and cutting device, including a cutting component 1, which is composed of a transverse translation mechanism 11, a longitudinal adjustment mechanism 12, and a cutting mechanism 13. The longitudinal adjustment mechanism 12 is slidably connected to two transverse translation mechanisms 11, and the cutting mechanism 13 is slidably connected to the longitudinal adjustment mechanism 12. It also includes:
[0035] The air intake assembly 4 consists of a confluence plate 41 positioned below the two transverse translation mechanisms 11. The confluence plate 41 has air intake slots 42 arranged in a rectangular pattern, with equal spacing between adjacent slots. A small-aperture partition 2 is embedded above the air intake slots 42 on the confluence plate 41. During the fabric cutting process, the suction of air by the exhaust fan produces the following beneficial effects: the exhaust mechanism 32 is connected to the annular connecting pipe 51, air intake pipe 511, air intake sleeve 43, and small-aperture partition 2 via the connecting pipe 33, air outlet pipe 53, and merging pipe 52, forming an adsorption system. The rectangularly distributed, equally spaced air inlet slots 42 on the flow plate 41, together with the small-diameter baffle 2, allow airflow to evenly pass through the small holes and act on the fabric, stably adsorbing it onto the cutting table surface. This prevents the fabric from moving or wrinkling during cutting, thus avoiding affecting the accuracy. The even distribution of adsorption force ensures that multiple layers of fabric fit flat and together, reducing manual positioning steps and improving cutting efficiency. At the same time, the structure is reasonably laid out, with the exhaust mechanism 32 located at the bottom of the base support 31, which does not occupy the cutting work space. Moreover, all components are smoothly connected, and the air intake effect is stable, providing reliable support for precise cutting, reducing the defect rate, and meeting the high efficiency and precision requirements of industrial garment processing.
[0036] An air inlet sleeve 43 is embedded in the air inlet slot 42. The diameter of the air inlet sleeve 43 is matched with the diameter of the air inlet slot 42. The precise matching of the diameters of the two not only effectively avoids air leakage caused by installation gaps, but also enhances structural stability. The tight fit reduces airflow resistance, improves air intake efficiency, and ensures smooth gas delivery. At the same time, it facilitates disassembly and maintenance, extends service life, and can significantly optimize equipment performance and ensure stable system operation in practical applications.
[0037] The base assembly 3 consists of a base bracket 31 located below the confluence plate 41. Support legs 311 are provided on both sides of the bottom of the base bracket 31. This design greatly enhances the overall stability, effectively distributes the weight of the equipment, and avoids tilting or damage due to uneven local stress. The support legs 311 also increase the friction with the ground, reducing the risk of slippage. Moreover, it is easy to install and maintain, which can effectively ensure the stable operation of the equipment and improve the safety and reliability of the equipment.
[0038] The confluence assembly 5 consists of an annular connecting pipe 51 positioned between the base support 31 and the small-aperture partition 2. Above the annular connecting pipe 51 is an intake pipe 511 communicating with the intake slot 42. The intake pipe 511 connects to the intake sleeve 43 and the small holes on the small-aperture partition 2, forming a highly efficient gas passage and ensuring orderly gas confluence and delivery. This structure optimizes the gas flow path, reduces eddy current losses, and improves confluence efficiency. Simultaneously, the standardized connection design facilitates installation and disassembly, enhancing the practicality and maintainability of the equipment.
[0039] One side of the annular connecting pipe 51 is fixedly connected to the merging pipe 52. Multiple annular connecting pipes 51 are provided, and all multiple annular connecting pipes 51 are connected to the merging pipe 52. This design can effectively collect the gas in multiple annular connecting pipes 51, improve the gas merging efficiency, and at the same time, the air intake of different annular connecting pipes 51 can be flexibly adjusted to meet the needs of different working conditions. Moreover, the structure is compact and reasonable, reducing the space occupied, facilitating the installation and layout of the equipment, and reducing energy loss in the gas transportation process.
[0040] A gas outlet pipe 53 is fixedly connected to the side of the merging pipe 52 away from the annular connecting pipe 51. The gas outlet pipe 53 is installed through the base support 31. The merging pipe 52 away from the annular connecting pipe 51 is fixedly connected to the gas outlet pipe 53, and the gas outlet pipe 53 passes through the base support 31. This design allows the merged gas to be discharged smoothly through the gas outlet pipe 53, efficiently guiding the airflow direction. The setting of passing through the base support 31 enhances the overall structural stability, ensures the fixed position of the gas outlet pipe 53, and facilitates the delivery of the discharged gas to the subsequent processing stage, optimizing the gas delivery process of the equipment and improving operating efficiency and reliability.
[0041] A suction mechanism 32 is located at the bottom of the base bracket 31 between the two support legs 311. The input end of the suction mechanism 32 is fixedly connected to a connecting pipe 33, and the other end of the connecting pipe 33 is fixedly connected to an exhaust pipe 53. The suction mechanism 32 is located between the two support legs 311 at the bottom of the base bracket 31, and its input end is connected to the exhaust pipe 53 via the connecting pipe 33. This design can use the suction mechanism 32 to generate suction, accelerate the flow speed of gas in the entire system, improve the efficiency of air intake, confluence and exhaust, effectively prevent gas from stagnating in the pipe, reduce the risk of blockage, and the suction mechanism 32 is located at the bottom, utilizing the space between the support legs 311, without taking up extra space, making the equipment layout more compact and reasonable.
[0042] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present utility model without departing from the technical solution of the present utility model shall still fall within the protection scope of the technical solution of the present utility model.
Claims
1. A garment processing and cutting device, comprising a cutting assembly (1), the cutting assembly (1) being composed of a transverse translation mechanism (11), a longitudinal adjustment mechanism (12), and a cutting mechanism (13), wherein the longitudinal adjustment mechanism (12) is slidably connected to two of the transverse translation mechanisms (11), and the cutting mechanism (13) is slidably connected to the longitudinal adjustment mechanism (12), characterized in that, Also includes: The intake assembly (4) is composed of a confluence plate (41) disposed below two transverse translation mechanisms (11). The confluence plate (41) is provided with an intake slot (42). The intake slot (42) is rectangularly distributed and the distance between two adjacent intake slots (42) is equal. A small-diameter baffle plate (2) is embedded and installed on the confluence plate (41) above the intake slot (42).
2. The garment processing and cutting device according to claim 1, characterized in that: An air intake sleeve (43) is embedded in the air intake groove (42), and the diameter of the air intake sleeve (43) is adapted to the diameter of the air intake groove (42).
3. The garment processing and cutting device according to claim 1, characterized in that: The base assembly (3) is composed of a base bracket (31) located below the confluence plate (41), and the base bracket (31) has support legs (311) on both sides of its bottom.
4. The garment processing and cutting device according to claim 3, characterized in that: The merging assembly (5) is composed of an annular connecting pipe (51) disposed between the base support (31) and the small-diameter partition (2). An air inlet pipe (511) communicating with the air inlet groove (42) is disposed above the annular connecting pipe (51). The air inlet pipe (511) is connected to the air inlet sleeve (43) and the small hole on the small-diameter partition (2).
5. The garment processing and cutting device according to claim 4, characterized in that: One side of the annular connecting pipe (51) is fixedly connected to a merging pipe (52). There are multiple annular connecting pipes (51), and all of the multiple annular connecting pipes (51) are connected to the merging pipe (52).
6. The garment processing and cutting device according to claim 5, characterized in that: The merging pipe (52) is fixedly connected to the side away from the annular connecting pipe (51) by an air outlet pipe (53), which is installed through the base bracket (31).
7. The garment processing and cutting device according to claim 3, characterized in that: The bottom of the base bracket (31) is provided with a ventilation mechanism (32) between the two support legs (311). The input end of the ventilation mechanism (32) is fixedly connected to a connecting pipe (33), and the other end of the connecting pipe (33) is fixedly connected to an air outlet pipe (53).