Novel webbing machine

CN224647201UActive Publication Date: 2026-08-18CKY PRECISION MASCH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202621084381.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2026-07-17
Publication Date
2026-08-18
Estimated Expiration
2036-07-17

AI Technical Summary

Technical Problem

[0002]织带机是一种专门用于生产各类窄幅带状或管状织物的纺织机械设备,广泛应用于服装、鞋材、箱包、汽车内饰、医疗用品、户外运动装备及工业安全等领域,然而现有的织带机仅能够安装固定尺寸或型号的设备,无法根据生产需求调整设备布局,必须为每台设备预留固定的操作和维护空间,导致企业占地面积的浪费并且增加企业的整体成本

Benefits of technology

本申请一种新型织带机,采用核心通用模块和可选承载模块的分体式架构,将传动机构与棕框开口机构设为通用基础,传动机构可匹配第一承载组件或第二承载组件实现了一机多型的产品衍生能力,由于第一承载组件采用两组对称半截墙板加底部机座的支撑结构,传动机构侧装于墙板侧面,机座预留多组标准安装接口,因此整机重量可通过机座均匀传递至地面,保证了高速运行时的受力均匀性与结构刚性,能够承受更高的经纱张力,同时机座提供了充足的扩展空间,可集成多种辅助单元实现一体化生产,再由于第二承载组件采用两组对称落地墙板加中间支座的极简支撑结构,传动机构接口与第一承载组件完全通用,从而满足基础织造需求,进一步降低了制造与安装成本,同时用于开口的棕框开口机构采用通用关刀座加关刀部件的设计,通过双对称关刀部件驱动的方式进一步提高织带效果,并且关刀座安装接口同时适配半截墙板与落地墙板,因此实现不同形态的通用性,降低了生产与维护成本,实现设备的灵活调整,解决现有织带机尺寸型号固定无法进行调整的问题。

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224647201U_ABST
    Figure CN224647201U_ABST
Patent Text Reader

Abstract

The application provides a novel loom, which comprises a loom body composed of a transmission mechanism, a bale frame opening mechanism and a first bearing assembly or a second bearing assembly which can be interchangeably matched, realizes modular design of one machine with multiple types, the first bearing assembly comprises two groups of symmetrically distributed half wallboards and a bottom base, the transmission mechanism is partially arranged on the side surface of the half wallboard, the base can uniformly transmit the load of the whole machine, improves the structural rigidity and stress uniformity during high-speed operation, and simultaneously reserves a standard interface to facilitate integration of various auxiliary production units, and the second bearing assembly comprises two groups of symmetrically distributed floor wallboards and an intermediate support, the transmission mechanism interface is universal with the first bearing assembly to reduce the material and processing cost of the whole machine, and the bale frame opening mechanism comprises a knife part and a universal knife seat, the knife seat can be simultaneously adapted to the two wallboards, and the universal rate of parts is further improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of ribbon weaving machine technology, and in particular to a novel ribbon weaving machine. Background Technology

[0002] Ribbon looms are textile machinery equipment specifically designed for producing various narrow-width ribbon or tubular fabrics. They are widely used in clothing, footwear, bags, automotive interiors, medical supplies, outdoor sports equipment, and industrial safety. However, existing ribbon looms can only install equipment of fixed sizes or models, and cannot adjust the equipment layout according to production needs. Fixed operating and maintenance space must be reserved for each machine, resulting in a waste of floor space and an increase in the overall cost of the enterprise. Utility Model Content

[0003] The purpose of this invention is to provide a new type of ribbon weaving machine to solve the above-mentioned problems.

[0004] The technical solution of this application is implemented as follows: This application provides a novel ribbon weaving machine, including a ribbon weaving machine body. The ribbon weaving machine body includes a transmission mechanism and a frame opening mechanism. The transmission mechanism is equipped with a first load-bearing component or a second load-bearing component and forms a first installation method and a second installation method. The first load-bearing component includes two sets of symmetrically distributed half-wall panels. The bottom of the half-wall panels is equipped with a base, and part of the transmission mechanism is installed on the side of the half-wall panels and is in the first installation mode. The second load-bearing component includes two sets of symmetrically distributed floor wall panels, with a support installed between the two sets of floor wall panels. The transmission mechanism is partially installed on the side of the floor wall panel and is in the second installation mode. The palm frame opening mechanism includes a knife-handling component, a knife-handling base, and a double-leg palm frame bracket. The knife-handling base is installed on two sets of half-wall panels or two sets of floor-standing wall panels. Two sets of knife-handling components are provided and symmetrically distributed on the knife-handling base. Both sets of knife-handling components are connected to the double-leg palm frame bracket and are arranged in a horizontally symmetrical layout. The transmission mechanism includes a front eccentric transmission group and a rear eccentric transmission group that are arranged in a front-to-back opposition.

[0005] In one embodiment, the front eccentric transmission assembly includes a first synchronous pulley, a second synchronous pulley, and a front eccentric main shaft. The first synchronous pulley and the second synchronous pulley are located on both sides of two sets of half-wall panels or floor-mounted wall panels, respectively, and are connected by the front eccentric main shaft. The first eccentric pulley is mounted on the front eccentric main shaft. The rear eccentric transmission assembly includes a third transmission synchronous pulley and a rear eccentric main shaft. The rear eccentric main shaft is mounted on a half-wall panel or a floor-mounted wall panel via bearings. The third transmission synchronous pulley is mounted on the rear eccentric main shaft and is connected to the second synchronous pulley via a synchronous belt. The second eccentric pulley is mounted on the rear eccentric main shaft. Several first and second eccentric wheels are symmetrically distributed on both sides of the cutter holder. The first eccentric wheel is equipped with a long push-pull link, and the second eccentric wheel is equipped with a short push-pull link. Both the long and short push-pull links are used to drive the cutter component and form the warp opening.

[0006] In one embodiment, a reinforcing support plate is provided on one side of the gate knife holder and is located in the middle of the gate knife holder. The reinforcing support plate is equipped with a seated bearing and is located in the middle of the front eccentric spindle to enhance the rigidity of the front eccentric spindle. When in the first installation mode, the bottom of the reinforcing support plate is connected to the crossbar provided on the base; When in the second installation mode, the bottom of the reinforced support plate contacts the ground.

[0007] In one embodiment, the double-leg frame bracket is provided with several and spaced apart, and the Guan Dao component includes a long-handled Guan Dao and a short-handled Guan Dao. The first eccentric wheel is connected to the long-handled Guan Dao through a long push-pull connecting rod, and the second eccentric wheel is connected to the short-handled Guan Dao through a short push-pull connecting rod. Several double-legged frame supports are connected at both ends to the long-handled and short-handled Guan Dao (a type of Chinese sword).

[0008] In one embodiment, the Guan Dao component further includes a Guan Dao shaft, and both the short-handled Guan Dao and the long-handled Guan Dao have bearing holes, and the short-handled Guan Dao and the long-handled Guan Dao are mounted side by side on the Guan Dao shaft through the bearing holes.

[0009] In one embodiment, the main body of the weaving machine also includes a needle holder, which is installed between two sets of half-wall panels or floor-mounted wall panels, and the needle holder is equipped with several weaving heads distributed at intervals.

[0010] In one embodiment, the main body of the webbing machine further includes a tape winding mechanism, which includes a winding support plate and a tape-passing shaft between the winding support plates. The tape-passing shaft is provided in two sets and forms a gap through which the tape passes. One end of one set of belt shafts extends to the outside of the winding support plate and is equipped with gear components. The rear eccentric main shaft is located outside the half wall panel or the floor wall panel and is equipped with a drive gear. A transition gear set connects the drive gear and the gear components.

[0011] In one embodiment, the transmission mechanism further includes a transmission yarn feeding shaft, which is mounted on the half-wall panel or the floor panel via bearings, and is located above the front eccentric main shaft.

[0012] In one embodiment, a frame is also installed on one side of the machine base, and a warp yarn breakage protection device is provided on the frame to stop the machine when the warp yarn breaks.

[0013] In one embodiment, the long-handled and short-handled Guan Dao are arranged in a figure-7 shape.

[0014] The advantages or beneficial effects of the above technical solutions include at least the following: This application discloses a novel ribbon weaving machine, employing a split architecture with a core general-purpose module and optional support modules. The transmission mechanism and the hem opening mechanism are set as a common foundation. The transmission mechanism can be matched with either a first or second support component, enabling multi-model product development. Because the first support component uses a support structure of two sets of symmetrical half-wall panels plus a bottom base, with the transmission mechanism side-mounted on the side of the wall panel and multiple standard installation interfaces reserved in the base, the entire machine weight can be evenly transferred to the ground through the base. This ensures uniform stress distribution and structural rigidity during high-speed operation, allowing it to withstand higher warp tension. Simultaneously, the base provides ample expansion space, accommodating the integration of various auxiliary units. To achieve integrated production, the second load-bearing component adopts a minimalist support structure with two sets of symmetrical floor-mounted wall panels and an intermediate support. The transmission mechanism interface is completely interchangeable with the first load-bearing component, thus meeting basic weaving requirements and further reducing manufacturing and installation costs. At the same time, the hem frame opening mechanism for opening adopts a universal knife seat and knife component design. The weaving effect is further improved by driving with dual symmetrical knife components. Furthermore, the knife seat mounting interface is compatible with both half-wall panels and floor-mounted wall panels, thus achieving versatility for different forms, reducing production and maintenance costs, enabling flexible equipment adjustment, and solving the problem that existing ribbon weaving machines have fixed sizes and models that cannot be adjusted. Attached Figure Description

[0015] The accompanying drawings illustrate exemplary embodiments of the present application and, together with the description thereof, serve to explain the principles of the present application. These drawings are included to provide a further understanding of the present application and are incorporated in and constitute a part of this specification.

[0016] Figure 1 A schematic diagram of the structure of the ribbon weaving machine in the first installation mode according to an embodiment of this application is shown; Figure 2 A structural schematic diagram of the ribbon weaving machine in a second installation mode according to an embodiment of this application is shown; Figure 3 A structural schematic diagram of the ribbon weaving machine in the second installation method according to an embodiment of this application is shown from another perspective; Figure 4 A schematic diagram of the brown frame opening mechanism according to an embodiment of this application is shown from one perspective; Figure 5 A structural schematic diagram of the brown frame opening mechanism according to an embodiment of this application is shown from another perspective; Figure 6 A structural schematic diagram of the ribbon weaving machine according to an embodiment of this application, viewed from another perspective, is presented; Reference numerals: 1. Transmission mechanism; 11. Front eccentric transmission group; 111. First synchronous pulley; 112. Second synchronous pulley; 113. Front eccentric main shaft; 1131. First eccentric wheel; 12. Rear eccentric transmission group; 121. Third transmission synchronous pulley; 122. Rear eccentric main shaft; 1221. Second eccentric wheel; 13. Transmission yarn feed shaft; 2. First load-bearing component; 21. Half wall panel; 22. Machine base; 221. Machine frame; 222. Warp yarn breakage protection device; 3. Second load-bearing component; 31. Floor-mounted wall panel; 32. Support; 4. Brown frame opening mechanism; 41. Knife component; 411. Long-handled knife; 412. Short-handled knife; 413. Knife shaft; 42. Knife seat; 421. Reinforcing support plate; 43. Brown frame bracket; 5. Needle holder; 51. Knitting head; 6. Fabric tape take-up mechanism; 61. Take-up support plate; 62. Belt guide shaft. Detailed Implementation

[0017] Embodiments of this application will now be described in more detail with reference to the accompanying drawings. While some embodiments of this application are shown in the drawings, it should be understood that this application can be implemented in various forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of this application. It should be understood that the drawings and embodiments of this application are for illustrative purposes only and are not intended to limit the scope of protection of this application.

[0018] It should be noted that, where there is no conflict, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.

[0019] It should be understood that the term "comprising" and its variations as used herein are open-ended, meaning "including but not limited to". The term "based on" means "at least partially based on". The term "one embodiment" means "at least one embodiment"; the term "another embodiment" means "at least one additional embodiment"; the term "some embodiments" means "at least some embodiments". Definitions of other terms will be given in the following description. It should be noted that the concepts of "first", "second", etc., mentioned in this application are used only to distinguish different devices, modules, or units, and are not intended to limit the order of functions performed by these devices, modules, or units or their interdependencies.

[0020] It should be noted that the terms "a" and "several" used in this application are illustrative rather than restrictive, and those skilled in the art should understand that, unless otherwise expressly indicated in the context, they should be understood as "one or more".

[0021] The names of the messages or information exchanged between multiple devices in the embodiments of this application are for illustrative purposes only and are not intended to limit the scope of these messages or information.

[0022] Reference Figures 1-5 A new type of ribbon weaving machine includes a ribbon weaving machine body, which includes a transmission mechanism 1 and a frame opening mechanism 4. The transmission mechanism 1 is equipped with a first bearing component 2 or a second bearing component 3 and forms a first installation method and a second installation method. Through the design of the two installation methods, the same core mechanism can be adapted to different frame 221 forms. The first load-bearing component 2 includes two sets of symmetrically distributed half-wall panels 21. A base 22 is installed at the bottom of the half-wall panel 21. Part of the transmission mechanism 1 is installed on the side of the half-wall panel 21 and is in the first installation mode. The first load-bearing component 2 is a low-profile table-type support scheme. The half-wall panel 21 is a vertical support component. The bottom is supported by the base 22 to achieve overall ground support. The core part of the transmission mechanism 1 is installed on the side of the half-wall panel 21. The second load-bearing component 3 includes two symmetrically distributed floor wall panels 31, with a support 32 installed between the two sets of floor wall panels 31. Part of the transmission mechanism 1 is installed on the side of the floor wall panel 31 and is in the second installation mode. The second load-bearing component 3 is a high-type floor support scheme. The floor wall panel 31 is a full-height vertical support component that is directly on the ground. The two sets of wall panels are horizontally connected and reinforced through the support 32. The palm frame opening mechanism 4 includes a knife-handle component 41, a knife-handle seat 42, and a double-leg palm frame bracket 43. The knife-handle seat 42 is installed on two sets of half-wall panels 21 or two sets of floor-standing wall panels 31. Two sets of knife-handle components 41 are provided and symmetrically distributed on the knife-handle seat 42. Both sets of knife-handle components 41 are connected to the double-leg palm frame bracket 43. The knife-handle seat 42 serves as an installation reference and can be compatible with half-wall panels 21 or floor-standing wall panels 31, realizing universal compatibility between the opening mechanism and the two types of frames 221. The two sets of knife-handle components 41 are symmetrically arranged on the knife-handle seat 42 and are connected to the double-leg palm frame bracket 43, forming a symmetrical dual-point drive structure to ensure balanced force on the palm frame movement.

[0023] Based on the above structure, the main body consists of a transmission mechanism 1, a hem frame opening mechanism 4, and two sets of interchangeable load-bearing components. The first load-bearing component 2 uses two sets of symmetrical half-wall panels 21 with a bottom base 22 to form a first installation method. The frame 221 has a low center of gravity and a compact footprint, making it suitable for small workshops with limited ceiling height and small-batch, multi-variety production scenarios. The second load-bearing component 3 uses two sets of symmetrical floor-standing wall panels 31 with a middle transverse support 32 to form a second installation method. The frame 221 has sufficient height and strong torsional and bending rigidity, which can accommodate more hem frame layers and is suitable for high-speed, large-scale production of wide, thick webbing. The transmission mechanism 1, as the power hub of the whole machine, converts the rotational motion of the motor into reciprocating motion, providing synchronous power for the palm frame opening mechanism 4 and the matching weft insertion and beat-up units, ensuring precise phase matching of each weaving process. When the palm frame opening mechanism 4 is running, the two sets of gate knife components 41 perform periodic reciprocating motion under the transmission drive. The palm frame is pulled up and down alternately by the double-foot palm frame bracket 43. The warp yarns passing through the palm fiber holes move up and down layer by layer with the palm frame to form a shed through which the weft yarns can pass, completing the opening process. It works in conjunction with the subsequent weft insertion and beat-up actions to achieve continuous weaving of the webbing.

[0024] In one embodiment, reference is made to Figure 1 , Figure 2 , Figure 4 and Figure 5 The transmission mechanism 1 includes a front eccentric transmission group 11 and a rear eccentric transmission group 12 that are horizontally opposed to each other on the half wall panel 21 or the floor wall panel 31. The transmission mechanism 1 adopts a front and rear dual-shaft horizontally opposed layout. The front eccentric transmission group 11 and the rear eccentric transmission group 12 are both horizontally mounted on the wall panel, forming the power source of the opening mechanism. The front eccentric transmission group 11 includes a first synchronous pulley 111, a second synchronous pulley 112 and a front eccentric main shaft 113. The first synchronous pulley 111 and the second synchronous pulley 112 are located on both sides of the two sets of half wall panels 21 or floor wall panels 31, and are connected by the front eccentric main shaft 113. The first eccentric pulley 1131 is installed on the front eccentric main shaft 113. The rear eccentric transmission group 12 includes a third transmission synchronous pulley 121 and a rear eccentric main shaft 122. The rear eccentric main shaft 122 is mounted on the half wall panel 21 or the floor wall panel 31 via bearings. The bearings have a clamping structure. The third transmission synchronous pulley 121 is mounted on the rear eccentric main shaft 122. The third transmission synchronous pulley 121 is connected to the second synchronous pulley 112 via a synchronous belt. The rear eccentric main shaft 122 is equipped with a second eccentric pulley 1221. The front and rear double eccentric shafts are horizontally opposed. The synchronous belt enables backlash-free and precise synchronous transmission, ensuring the phase accuracy of the action of the two sets of gate knife components 41, avoiding the backlash error of gear transmission, and greatly improving the consistency of the opening. Several first eccentric wheels 1131 and second eccentric wheels 1221 are symmetrically distributed on both sides of the shut-off bracket 42. The first eccentric wheel 1131 is equipped with a long push-pull connecting rod, and the second eccentric wheel 1221 is equipped with a short push-pull connecting rod. Both the long and short push-pull connecting rods are used to drive the shut-off bracket 41 and form the warp opening. External power is input through the first synchronous pulley 111, which drives the front eccentric main shaft 113 to rotate. The first eccentric wheel 1131 on the shaft rotates synchronously eccentrically, pulling the long push-pull connecting rod. The connecting rod performs reciprocating linear motion, while the second synchronous wheel 112 at the end of the front eccentric main shaft 113 drives the third transmission synchronous wheel 121 to rotate synchronously through the synchronous belt, so that the rear eccentric main shaft 122 and the front eccentric main shaft 113 rotate synchronously with a fixed transmission ratio. The second eccentric wheel 1221 rotates synchronously eccentrically, pulling the short push-pull connecting rod to perform reciprocating motion. The two sets of push-pull connecting rods drive the two ends of the shut-off component 41 to swing according to the set phase difference, driving the brown frame to move up and down alternately to form a stable warp shed.

[0025] In one embodiment, reference is made to Figure 1 and Figure 4 A reinforcing support plate 421 is provided on one side of the knife holder 42 and is located in the middle of the knife holder 42. The reinforcing support plate 421 is equipped with a seated bearing and is located in the middle of the front eccentric main shaft 113. It is used to strengthen the rigidity of the front eccentric main shaft 113. When the front eccentric main shaft 113 rotates at high speed to drive the eccentric wheel to do work, the two ends of the main shaft are supported by the wall plate bearings, and the middle shaft section is supported by the seated bearing of the reinforcing support plate 421. This splits the long-span main shaft into two sections to bear the force and offsets the radial deflection deformation of the main shaft caused by the reciprocating load of the eccentric wheel. When in the first installation mode, the bottom of the reinforcing support plate 421 is connected to the base 22. When in the second installation mode, the bottom of the reinforcing support plate 421 is in contact with the ground. The reinforcing support plate 421 directly transfers the load of the main shaft to the base 22 or the ground, reducing the stress on the wall panel. The main shaft can be supported in the middle in both installation modes, which is fully compatible with the modular design and does not affect the interchangeability of the load-bearing components.

[0026] In one embodiment, reference is made to Figure 1 , Figure 4 and Figure 5Several double-legged hem frame supports 43 are provided and spaced apart. The scissor component 41 includes a long-handled scissor 411 and a short-handled scissor 412. The first eccentric wheel 1131 is connected to the long-handled scissor 411 through a long push-pull connecting rod, and the second eccentric wheel 1221 is connected to the short-handled scissor 412 through a short push-pull connecting rod. The two ends of the several double-legged hem frame supports 43 are respectively connected to the long-handled scissor 411 and the short-handled scissor 412. The front eccentric wheel drives the long push-pull connecting rod to reciprocate, driving the long-handled scissor 411 to swing back and forth around the fulcrum. The rear eccentric wheel drives the short push-pull connecting rod to reciprocate, driving the short-handled scissor 412 to swing back and forth synchronously. The long-handled scissor 411 and the short-handled scissor 412 respectively pull the two legs of the double-legged hem frame support 43 to rise and fall, so that the hem frame support 43 as a whole makes up-down alternating movements. The warp yarns passing through the hem frame eyelets form upper and lower sheds with the movement of the hem frame, providing a channel for the introduction of the weft yarn. Multiple sets of palm frame supports 43 move synchronously, enabling the simultaneous weaving of multiple webbing strips. Furthermore, the double-leg palm frame supports 43, in conjunction with the double-knife drive, ensure that both ends of the palm frame are subjected to force synchronously, resulting in smoother movement and avoiding the skewing and jamming problems associated with single-arm driven palm frames. At the same time, the staggered layout of multiple sets of palm frame supports 43 allows for the parallel weaving of multiple webbing strips, effectively improving production efficiency.

[0027] In one embodiment, reference is made to Figure 1 , Figure 4 and Figure 5 The scimitar component 41 also includes a scimitar shaft 413. Both the short-handled scimitar 412 and the long-handled scimitar 411 have bearing holes. The short-handled scimitar 412 and the long-handled scimitar 411 are mounted side by side on the scimitar shaft 413 through the bearing holes. When the push-pull linkage drives the ends of the long-handled scimitar 411 and the short-handled scimitar 412 to reciprocate, both types of scimitars reciprocate around the scimitar shaft 413 as the rotation center. They share the same fulcrum, and their swing axes coincide, ensuring the coaxiality of their swing centers. This eliminates the additional resistance and wear caused by the misalignment of the two fulcrums, improves the smoothness of the movement, avoids the displacement of the frame movement caused by the misalignment of the fulcrum, and the parallel installation structure is compact, optimizing the internal layout of the equipment.

[0028] In one embodiment, reference is made to Figures 1-3 The main body of the ribbon weaving machine also includes a needle holder 5, which is installed between two sets of half wall panels 21 or floor wall panels 31. The needle holder 5 is equipped with several weaving heads 51 that are spaced apart. After the hem frame opening mechanism 4 drives the warp yarns to form a shed layer, the weaving heads 51 on the needle holder 5 drive the weft needles through the shed according to the set timing, introducing the weft yarn into the warp layer. Then the weft-beating mechanism pushes the weft yarn towards the weaving point, so that the warp and weft yarns are tightly interwoven and continuously form the ribbon fabric. Multiple weaving heads 51 work in parallel to complete the weaving process of multiple ribbons at the same time, realizing multi-head production on a single machine.

[0029] In one embodiment, reference is made to Figures 1-3The main body of the webbing machine also includes a webbing winding mechanism 6. The webbing winding mechanism 6 includes a winding support plate 61. A webbing shaft 62 is provided between the winding support plate 61. The webbing shaft 62 is provided in two sets and forms a gap through which the webbing passes. The clamping design of the two sets of webbing shafts 62 increases the contact area with the webbing, avoids the webbing slipping, and improves the overall traction. One end of one set of belt guide shafts 62 extends to the outside of the winding support plate 61 and is equipped with gear components. Part of the rear eccentric main shaft 122 is located outside the half wall plate 21 or the floor wall plate 31 and is equipped with a drive gear. A transition gear set is connected between the drive gear and the gear components. When the rear eccentric main shaft 122 rotates, it drives the belt guide shaft 62 to rotate through the transmission chain of the drive gear, the transition gear set and the gear components. By utilizing the friction between the two sets of belt guide shafts 62 and the webbing, the webbing is pulled out from the weaving area at a uniform speed and conveyed to the subsequent winding device to achieve continuous winding of the webbing. The gear transmission is stable, and the weft density of the webbing can be precisely adjusted by changing gears with different numbers of teeth.

[0030] In one embodiment, reference is made to Figure 1 and Figure 6 The transmission mechanism 1 also includes a transmission yarn feeding shaft 13, which is mounted on the half wall panel 21 or the floor wall panel 31 via bearings. The transmission yarn feeding shaft 13 is located above the front eccentric main shaft 113. As the active roller for warp yarn feeding, the transmission yarn feeding shaft 13 operates synchronously with the main shaft, feeding the warp yarn from the bobbin at a uniform speed to match the warp yarn consumption speed during the weaving process. At the same time, it works with the tension adjustment device to stably control the warp yarn tension on the machine, avoiding warp yarn breakage and uneven fabric tension caused by tension fluctuations. The yarn feeding shaft is arranged above the front eccentric main shaft, which shortens the warp yarn path and reduces yarn friction and wear.

[0031] In one embodiment, reference is made to Figure 1 A frame 221 is also installed on one side of the base 22. The base 22 enables the expansion of the device's functions. A warp yarn breakage protection device 222 is installed on the frame 221 to stop the machine when the warp yarn breaks. With the warp yarn breakage protection device 222, the machine can be stopped immediately after the yarn breaks, avoiding large-scale defects and waste of raw materials caused by continued production due to yarn breakage.

[0032] In one embodiment, reference is made to Figure 1 , Figure 4 and Figure 5 The long-handled Guan Dao 411 and the short-handled Guan Dao 412 are arranged in a figure-7 shape, thereby optimizing the layout of the Guan Dao component 41 and making the Guan Dao 41 symmetrical, thus further improving the processing efficiency.

[0033] In the description of this application, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0034] Those skilled in the art should understand that the above embodiments are merely for illustrative purposes and are not intended to limit the scope of this application. Those skilled in the art can make other changes or modifications based on the above disclosure, and these changes or modifications still fall within the scope of this application.

Claims

1. A novel ribbon weaving machine, comprising a ribbon weaving machine body, wherein the ribbon weaving machine body includes a transmission mechanism and a hem frame opening mechanism, characterized in that: The transmission mechanism is fitted with a first load-bearing component or a second load-bearing component, forming a first installation method and a second installation method; The first load-bearing component includes two sets of symmetrically distributed half-wall panels. A base is installed at the bottom of the half-wall panel, and part of the transmission mechanism is installed on the side of the half-wall panel and is in a first installation mode. The second load-bearing component includes two sets of symmetrically distributed floor wall panels, with a support installed between the two sets of floor wall panels. Part of the transmission mechanism is installed on the side of the floor wall panel and is in a second installation mode. The brown frame opening mechanism includes a knife component, a knife base, and a double-leg brown frame bracket. The knife base is installed on two sets of the half-wall panels or two sets of the floor-standing wall panels. Two sets of knife components are provided and symmetrically distributed on the knife base. Both sets of knife components are connected to the double-leg brown frame bracket and are arranged in a horizontally symmetrical layout. The transmission mechanism includes a front eccentric transmission group and a rear eccentric transmission group that are arranged in a front-to-back opposition.

2. The novel ribbon weaving machine according to claim 1, characterized in that: The front eccentric transmission assembly includes a first synchronous pulley, a second synchronous pulley, and a front eccentric main shaft. The first synchronous pulley and the second synchronous pulley are located on both sides of the two sets of half wall panels or the ground wall panels, and are connected by the front eccentric main shaft. The first eccentric pulley is installed on the front eccentric main shaft. The rear eccentric transmission assembly includes a third transmission synchronous pulley and a rear eccentric main shaft. The rear eccentric main shaft is mounted on the half-wall panel or the floor panel via bearings. The third transmission synchronous pulley is mounted on the rear eccentric main shaft and is connected to the second synchronous pulley via a synchronous belt. A second eccentric pulley is mounted on the rear eccentric main shaft. The first eccentric wheel and the second eccentric wheel are each provided in multiples and symmetrically distributed on both sides of the cutter seat. The first eccentric wheel is equipped with a long push-pull connecting rod, and the second eccentric wheel is equipped with a short push-pull connecting rod. Both the long push-pull connecting rod and the short push-pull connecting rod are used to drive the cutter component and form the warp opening.

3. The novel ribbon weaving machine according to claim 2, characterized in that: A reinforcing support plate is provided on one side of the knife holder and is located in the middle of the knife holder. The reinforcing support plate is equipped with a bearing with a seat and is located in the middle of the front eccentric spindle to enhance the rigidity of the front eccentric spindle. When in the first installation mode, the bottom of the reinforcing support plate is connected to the crossbar provided on the base; When in the second installation mode, the bottom of the reinforcing support plate is in contact with the ground.

4. The novel ribbon weaving machine according to claim 2, characterized in that: The double-legged frame bracket is provided in several and spaced apart. The gate knife component includes a long-handled gate knife and a short-handled gate knife. The first eccentric wheel is connected to the long-handled gate knife through the long push-pull connecting rod, and the second eccentric wheel is connected to the short-handled gate knife through the short push-pull connecting rod. The two ends of several of the aforementioned double-legged frame brackets are respectively connected to the long-handled and short-handled scimitars.

5. The novel ribbon weaving machine according to claim 4, characterized in that: The Guan Dao component also includes a Guan Dao shaft. Both the short-handled Guan Dao and the long-handled Guan Dao have bearing holes. The short-handled Guan Dao and the long-handled Guan Dao are mounted side by side on the Guan Dao shaft through the bearing holes.

6. The novel ribbon weaving machine according to claim 1, characterized in that: The main body of the ribbon weaving machine also includes a needle holder, which is installed between the two sets of the half-wall panels or the floor wall panels, and the needle holder is equipped with several weaving heads distributed at intervals.

7. The novel ribbon weaving machine according to claim 2, characterized in that: The main body of the ribbon weaving machine also includes a ribbon winding mechanism, which includes a winding support plate and a tape-passing shaft between the winding support plates. The tape-passing shaft is provided in two sets and forms a gap through which the ribbon passes. One end of one set of the conveyor shafts extends to the outside of the winding support plate and is equipped with a gear component. A portion of the rear eccentric main shaft is located outside the half-wall panel or the floor panel and is equipped with a drive gear. A transition gear set is connected between the drive gear and the gear component.

8. The novel ribbon weaving machine according to claim 2, characterized in that: The transmission mechanism also includes a transmission yarn feeding shaft, which is mounted on the half-wall panel or the floor panel via bearings, and is located above the front eccentric main shaft.

9. The novel ribbon weaving machine according to claim 1, characterized in that: A frame is also installed on one side of the machine base, and a warp yarn breakage protection device is provided on the frame to stop the machine when the warp yarn breaks.

10. The novel ribbon weaving machine according to claim 4, characterized in that: The long-handled Guan Dao and the short-handled Guan Dao are arranged in a figure-7 shape.