A polyester hexagonal net weaving forming apparatus

CN224716786UActive Publication Date: 2026-09-04ANPING COUNTY AOYA WIRE MESH PRODUCTS FACTORY
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Patent Information

Application Number
CN202522179503.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-15
Publication Date
2026-09-04
Estimated Expiration
2035-10-15

AI Technical Summary

Technical Problem

例如,原料放线时张力不稳定,容易导致原料断裂或出现松弛现象,影响后续编织质量;导向机构设计不合理,使得原料在传输过程中易发生偏移,进而造成编织出的网孔大小不均匀、形状不规整;成形设备与后续处理设备之间的衔接不够顺畅,生产连续性差,生产效率低下;同时,传统设备的结构布局较为零散,占地面积大,且操作复杂,对操作人员的技术要求较高,不利于大规模批量生产

Benefits of technology

[0016]Compared with the prior art, the beneficial effects of this utility model are: 1. By setting a tensioning mechanism that combines a tensioning ceramic ring and a suspension hammer, the tension of the raw material is automatically adjusted by the gravity of the suspension hammer, which effectively avoids the raw material from becoming loose or overly tense during transmission, ensuring the stability of the raw material transmission, thereby improving the quality of subsequent weaving and forming and reducing the waste of raw materials.

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Abstract

The utility model relates to hexagonal net weaving forming equipment technical field, concretely to a kind of polyester hexagonal net weaving forming equipment, including bearing assembly and first bearing station, the bearing assembly includes support frame, installation rod is provided on the support frame, wire wheel is rotatably connected on the installation rod, the upper portion of wire wheel is provided with first mounting table, first mounting table rotatably connects with guide wheel, the downstream of guide wheel is provided with first mounting bracket, guide porcelain ring is installed on the first mounting bracket, the downstream of guide porcelain ring is provided with sliding rod, sliding block is installed on the sliding rod, tension porcelain ring is installed on the sliding block, to solve the raw material tension instability, transmission is easy to deviate, production continuity is poor, production efficiency is low and the problem such as operation complex in the existing polyester hexagonal net production equipment, realize the efficient, high quality, automated production of polyester hexagonal net.
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Description

Technical Field

[0001] This utility model relates to the technical field of hexagonal mesh weaving and forming equipment, specifically a polyester hexagonal mesh weaving and forming equipment. Background Technology

[0002] Polyester hexagonal wire mesh is widely used in many industries due to its excellent corrosion resistance, high strength, flexibility, and good water permeability. However, there are often many problems in the traditional production process of polyester hexagonal wire mesh. For example, unstable tension during raw material feeding can easily lead to material breakage or slack, affecting the subsequent weaving quality; unreasonable design of the guiding mechanism can cause the raw material to deviate during transmission, resulting in uneven mesh size and irregular shape; the connection between forming equipment and subsequent processing equipment is not smooth enough, resulting in poor production continuity and low production efficiency; at the same time, the traditional equipment has a relatively fragmented structure, occupies a large area, is complex to operate, and requires high technical skills from operators, which is not conducive to large-scale mass production.

[0003] To address the problems existing in the traditional production process and meet the market demand for high-quality, high-efficiency polyester hexagonal mesh production, this application proposes a polyester hexagonal mesh weaving and forming equipment. Through the rational design and optimized layout of the various components of the equipment, the problems of unstable raw material transmission, poor production continuity, and complex operation are effectively solved, thereby improving production efficiency and product quality. Utility Model Content

[0004] The purpose of this section is to outline some aspects of the embodiments of this utility model and to briefly introduce 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 used to limit the scope of this utility model.

[0005] In view of the problems existing in the current polyester hexagonal mesh weaving and forming equipment, this utility model is proposed.

[0006] Therefore, the purpose of this utility model is to provide a polyester hexagonal mesh weaving and forming equipment to solve the problems of unstable raw material tension, easy transmission deviation, poor production continuity, low production efficiency and complicated operation in existing polyester hexagonal mesh production equipment, so as to realize efficient, high-quality and automated production of polyester hexagonal mesh.

[0007] To solve the above-mentioned technical problems, according to one aspect of the present invention, the present invention provides the following technical solution:

[0008] A polyester hexagonal mesh weaving and forming device includes a support component and a first support platform;

[0009] The bearing assembly includes a support frame, on which a mounting rod is mounted. A spool is rotatably connected to the mounting rod. A first mounting platform is positioned above the spool. A guide wheel is rotatably connected to the first mounting platform. A first mounting bracket is positioned downstream of the guide wheel. A guide ceramic ring is mounted on the first mounting bracket. A sliding rod is positioned downstream of the guide ceramic ring. A sliding block is mounted on the sliding rod. A tension ceramic ring is mounted on the sliding block. A suspension weight is mounted at the bottom of the tension ceramic ring. A first bearing platform is positioned downstream of the bearing assembly. A base is positioned on the first bearing platform. A forming device is positioned on the base. A piercing roller is positioned downstream of the forming device. A heating pool is positioned downstream of the piercing roller. A take-up roller is positioned downstream of the heating pool.

[0010] In a preferred embodiment of the polyester hexagonal mesh weaving and forming equipment described in this utility model, multiple mounting rods are provided and evenly distributed on the outer wall of the support frame.

[0011] In a preferred embodiment of the polyester hexagonal mesh weaving and forming equipment described in this utility model, the raw material is wound on the spool, the raw material is connected to the guide wheel, and passes through the guide ceramic ring and the tension ceramic ring to enter the forming equipment.

[0012] In a preferred embodiment of the polyester hexagonal mesh weaving and forming equipment described in this utility model, the sliding rod is located on the inner wall of the support frame, and the sliding block is slidably connected to the sliding rod.

[0013] In a preferred embodiment of the polyester hexagonal mesh weaving and forming equipment of this utility model, a first rotating frame is provided downstream of the forming equipment, the first rotating frame is rotatably connected to the piercing roller, and the first rotating frame is fixedly connected to the first bearing platform.

[0014] As a preferred embodiment of the polyester hexagonal mesh weaving and forming equipment described in this utility model, the heating pool is provided with a drive rod and a heating rod inside, the top of the heating pool is provided with a support platform and a guide plate, an electric telescopic rod is installed on the support platform, and an extrusion rod is installed on the telescopic end of the electric telescopic rod.

[0015] In a preferred embodiment of the polyester hexagonal mesh weaving and forming equipment described in this utility model, the take-up roller is mounted on a second support platform, which is located downstream of the heating pool.

[0016] Compared with the prior art, the beneficial effects of this utility model are: 1. By setting a tensioning mechanism that combines a tensioning ceramic ring and a suspension hammer, the tension of the raw material is automatically adjusted by the gravity of the suspension hammer, which effectively avoids the raw material from becoming loose or overly tense during transmission, ensuring the stability of the raw material transmission, thereby improving the quality of subsequent weaving and forming and reducing the waste of raw materials.

[0017] From the raw material feeding, guiding, and tensioning of the bearing components, to the forming, sorting, and heat treatment on the first bearing platform, and then to the winding on the second bearing platform, the equipment has smooth connections between each process, forming a complete automated production line. This effectively improves the continuity of production, reduces downtime during the production process, and significantly increases production efficiency.

[0018] The initial-formed mesh is smoothed by the needle rollers, making the mesh surface flatter and more regular; the heating treatment in the heating tank can improve the strength, aging resistance and dimensional stability of the mesh, eliminate internal stress and prevent mesh deformation; the extrusion operation of the extrusion rod removes excess heating medium from the mesh surface, further ensuring product quality and enabling the produced polyester hexagonal mesh to meet the application requirements of different fields. Attached Figure Description

[0019] To more clearly illustrate the technical solutions of the embodiments of this utility model, the present utility model will be described in detail below with reference to the accompanying drawings and detailed embodiments. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Among them:

[0020] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the present invention;

[0021] Figure 2 This is a three-dimensional structural diagram of the load-bearing component of this utility model;

[0022] Figure 3 This is a three-dimensional structural diagram of the first support platform of this utility model.

[0023] In the diagram: 100 Bearing component, 110 Support frame, 120 Mounting rod, 130 Wire wheel, 140 First mounting platform, 141 Guide wheel, 150 First mounting frame, 160 Guide ceramic ring, 170 Sliding rod, 180 Sliding block, 190 Tensioning ceramic ring, 191 Suspension weight, 200 First bearing platform, 210 Base, 220 Forming equipment, 230 First rotating frame, 240 Spike roller, 250 Heating pool, 251 Drive rod, 252 Heating rod, 253 Guide plate, 260 Support platform, 261 Electric telescopic rod, 262 Extrusion rod, 270 Second bearing platform, 280 Take-up roller. Detailed Implementation

[0024] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0025] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0026] Secondly, this utility model is described in detail with reference to the schematic diagrams. When describing the embodiments of this utility model, for ease of explanation, the cross-sectional views showing the device structure may be partially enlarged, not according to the usual scale. Furthermore, the schematic diagrams are merely examples and should not limit the scope of protection of this utility model. In addition, in actual manufacturing, the three-dimensional spatial dimensions of length, width, and depth should be included.

[0027] To make the objectives, technical solutions, and advantages of this utility model clearer, the embodiments of this utility model will be described in further detail below with reference to the accompanying drawings.

[0028] This utility model provides the following technical solution: a polyester hexagonal mesh weaving and forming equipment. During use, by setting a tensioning mechanism consisting of a tensioning ceramic ring and a suspension weight, the tension of the raw material is automatically adjusted by the gravity of the suspension weight. This effectively avoids the raw material from becoming loose or overly tense during transmission, ensuring the stability of the raw material transmission, thereby improving the quality of subsequent weaving and forming and reducing the waste of raw materials.

[0029] From the raw material feeding, guiding, and tensioning of the bearing components, to the forming, sorting, and heat treatment on the first bearing platform, and then to the winding on the second bearing platform, the equipment has smooth connections between each process, forming a complete automated production line. This effectively improves the continuity of production, reduces downtime during the production process, and significantly increases production efficiency.

[0030] The initial-formed mesh is smoothed by the needle rollers, making the mesh surface flatter and more regular; the heating treatment in the heating tank can improve the strength, aging resistance and dimensional stability of the mesh, eliminate internal stress and prevent mesh deformation; the extrusion operation of the extrusion rod removes excess heating medium from the mesh surface, further ensuring product quality and enabling the produced polyester hexagonal mesh to meet the application requirements of different fields.

[0031] Figures 1-3 The diagram shown is a structural schematic of the first embodiment of a polyester hexagonal mesh weaving and forming device according to this utility model. Please refer to [link / reference]. Figures 1-3The polyester hexagonal mesh weaving and forming equipment of this embodiment includes a main body comprising a support component 100 and a first support platform 200.

[0032] The bearing assembly 100, as the starting point of raw material transmission, undertakes the important functions of raw material feeding, guiding, and tension adjustment. It includes a support frame 110, which serves as the overall support structure for the bearing assembly 100, providing a stable mounting base for other components. Multiple mounting rods 120 are provided on the support frame 110, evenly distributed on the outer wall of the support frame 110. This arrangement allows for the simultaneous mounting of multiple rods 120, enabling the simultaneous feeding of multiple strands of raw material. This meets the production needs of polyester hexagonal mesh of different widths and specifications, improving production efficiency. A rod 130 is rotatably connected to the mounting rod 120, on which the raw material required for producing the polyester hexagonal mesh is wound. The rod 130 can rotate freely on the mounting rod 120, ensuring smooth feeding of the raw material.

[0033] A first mounting platform 140 is provided above the reel 130. The first mounting platform 140 is fixedly mounted on the support frame 110, providing a mounting position for the guide wheel 141. The guide wheel 141 is rotatably connected to the first mounting platform 140. The function of the guide wheel 141 is to guide the raw material discharged from the reel 130, change the transmission direction of the raw material, and enable the raw material to be transmitted to the subsequent components according to the preset path. At the same time, the rotation of the guide wheel 141 can reduce the friction between the raw material and the guide wheel 141, and prevent the raw material from being damaged due to friction.

[0034] Downstream of the guide wheel 141, a first mounting bracket 150 is provided. The first mounting bracket 150 is also fixed on the support frame 110, and its position is adapted to the guide wheel 141 for mounting the guide ceramic ring 160. The guide ceramic ring 160 is mounted on the first mounting bracket 150. The guide ceramic ring 160 is made of ceramic material and has a smooth inner surface, which can further guide the raw material accurately, prevent the raw material from deviating during the transmission process, and ensure the stability of the raw material transmission path. At the same time, the good wear resistance of the ceramic material can extend the service life of the guide ceramic ring 160 and reduce equipment maintenance costs.

[0035] A sliding rod 170 is located downstream of the guide ceramic ring 160, on the inner wall of the support frame 110, providing a track for the sliding block 180. A sliding block 180 is mounted on the sliding rod 170, slidably connected to it, allowing it to slide freely up and down along the rod. A tensioning ceramic ring 190 is mounted on the sliding block 180. Similar to the guide ceramic ring 160, the tensioning ceramic ring 190 is also made of ceramic, and its main function is to work with the suspension weight 191 to adjust the tension of the raw material. A suspension weight 191 is mounted at the bottom of the tensioning ceramic ring 190. Using its own gravity, the suspension weight 191 pulls the tensioning ceramic ring 190, causing the sliding block 180 to slide downwards along the sliding rod 170, thereby generating a certain tension on the raw material passing through the tensioning ceramic ring 190 and maintaining appropriate tension in the material. When the raw material becomes slack, the gravity of the suspension weight 191 will pull the tensioning ceramic ring 190 downward, increasing the tension on the raw material and making the raw material re-tensioned; when the tension of the raw material is too high, the raw material will pull the tensioning ceramic ring 190 upward, reducing the tension, thereby realizing automatic adjustment of the tension of the raw material, ensuring the stability of the tension of the raw material during transmission, and avoiding damage to the raw material or affecting the weaving quality due to improper tension.

[0036] Downstream of the support component 100, a first support platform 200 is provided, which provides installation support for the forming device 220 and subsequent auxiliary components. A base 210 is mounted on the first support platform 200 and is fixed to it for the fixed installation of the forming device 220. The forming device 220 is mounted on the base 210 and is the core component for polyester hexagonal mesh weaving. It can weave multiple strands of raw material, guided and tensioned by the support component 100, according to a preset hexagonal mesh weaving process to form a preliminary polyester hexagonal mesh product.

[0037] Downstream of the forming equipment 220, a barbed roller 240 is installed. The main function of the barbed roller 240 is to tidy up the preliminary polyester hexagonal mesh woven by the forming equipment 220. The barbs on the surface of the barbed roller 240 comb out any loose threads or irregular parts on the mesh surface, making the mesh surface flatter and more regular, and also reinforcing the mesh structure to a certain extent. To ensure the stable installation and rotation of the barbed roller 240, a first rotating frame 230 is installed downstream of the forming equipment 220. The first rotating frame 230 is rotatably connected to the barbed roller 240 and fixedly connected to the first support platform 200. The first rotating frame 230 provides stable support for the barbed roller 240, ensuring that the barbed roller 240 can rotate smoothly and stably, thereby guaranteeing the tidying effect on the polyester hexagonal mesh.

[0038] Downstream of the licker-in roller 240 is a heating tank 250, which heats the polyester hexagonal mesh after it has been processed by the licker-in roller 240. Heating stabilizes the molecular structure of the polyester raw material, improving the strength, aging resistance, and dimensional stability of the polyester hexagonal mesh. It also eliminates internal stress generated during weaving, resulting in a more stable mesh shape and less susceptibility to deformation. Inside the heating tank 250 are a drive rod 251 and a heating rod 252. The heating rod 252 acts as a heat source, heating the heating medium (such as heating oil or hot water) in the heating tank 250 to a preset temperature. The drive rod 251 moves the heating medium within the heating tank 250, ensuring uniform temperature distribution and consistent heating of the polyester hexagonal mesh, thus guaranteeing the effective heat treatment. A support platform 260 and a guide plate 253 are provided on the top of the heating tank 250. The support platform 260 is fixed to the top of the heating tank 250 and is used to install the electric telescopic rod 261. The guide plate 253 is used to guide the polyester hexagonal mesh entering the heating tank 250, so that the mesh can smoothly enter the heating area inside the heating tank 250, and at the same time, it can prevent the heating medium from splashing out of the heating tank 250. The electric telescopic rod 261 is installed on the support platform 260. An extrusion rod 262 is installed on the telescopic end of the electric telescopic rod 261. When the polyester hexagonal mesh comes out of the heating tank 250 after heat treatment, the electric telescopic rod 261 can drive the extrusion rod 262 to move up and down, extruding the mesh and squeezing out the excess heating medium attached to the surface of the mesh, reducing the waste of heating medium, and preventing excess heating medium from being carried into the subsequent winding process, affecting the winding quality and the final performance of the mesh.

[0039] A take-up roller 280 is located downstream of the heating tank 250. The function of the take-up roller 280 is to wind up the finished polyester hexagonal mesh after heat treatment and extrusion dehydration, facilitating subsequent storage, transportation, and further processing. To ensure stable installation and operation of the take-up roller 280, it is mounted on a second support platform 270, located downstream of the heating tank 250. The second support platform 270 provides stable support for the take-up roller 280, ensuring that it can smoothly and evenly wind up the polyester hexagonal mesh.

[0040] In actual operation, the raw material wound on the reel 130 first connects to the guide wheel 141. Under the guidance of the guide wheel 141, the transmission direction is changed. Then, the raw material passes through the guide ceramic ring 160 and continues to be transmitted under the precise guidance of the guide ceramic ring 160. Next, the raw material passes through the tension ceramic ring 190. Under the gravity of the suspension weight 191, the tension ceramic ring 190 generates a stable tension force on the raw material, keeping the raw material under appropriate tension. After that, the raw material enters the forming equipment 220, which weaves the multiple strands of raw material into a preliminary polyester hexagonal mesh. The preliminary formed polyester hexagonal mesh enters the downstream licker roller 240, where it is shaped and formed under the action of the licker roller 240. The process involves several steps: first, the surface of the polyester hexagonal mesh is made flatter and more regular; then, the mesh enters the heating tank 250, where it is heated by the heating medium heated by the heating rod 252. Simultaneously, the driving rod 251 drives the heating medium to flow, ensuring uniform heating of the mesh. After heating, the mesh exits the heating tank 250 under the guidance of the guide plate 253. At this point, the electric telescopic rod 261 drives the extrusion rod 262 to extrude the mesh, removing excess heating medium. Finally, the finished polyester hexagonal mesh is transferred to the winding roller 280 for winding, completing the entire weaving process of the polyester hexagonal mesh.

[0041] Combination Figures 1-3 The working principle of the polyester hexagonal mesh weaving and forming equipment of this embodiment is as follows:

[0042] The polyester raw material wound on the reel 130 begins to be unwound under the traction of the subsequent take-up roller 280. The reel 130 is rotatably connected to the mounting rod 120 and can rotate freely with the output of the raw material, reducing the resistance of the raw material unwound and ensuring smooth unwound. At the same time, the tensioning mechanism achieves automatic tension adjustment through "gravity balance": the suspension weight 191 always has a downward pulling force under the action of gravity, and this pulling force is transmitted to the raw material through the tensioning ceramic ring 190 to form the basic tension; when the raw material becomes loose due to fluctuations in the unwound speed, the gravity of the suspension weight 191 is greater than the current tension of the raw material, pulling the sliding block 180 down along the sliding rod 170, increasing the pulling force of the tensioning ceramic ring 190 on the raw material until the raw material is re-tensioned; when the raw material has excessive tension due to increased transmission resistance, the pulling force of the raw material on the tensioning ceramic ring 190 is greater than the gravity of the suspension weight 191, pushing the sliding block 180 up along the sliding rod 170, reducing the pulling force, avoiding raw material breakage, and finally achieving dynamic tension balance during the raw material transmission process.

[0043] After the raw material is released from the reel 130, its transmission direction is first changed by the guide wheel 141. The guide wheel 141 is rotatably connected to the first mounting platform 140. When the raw material contacts the wheel surface, the wheel rotates synchronously with the movement of the raw material, converting sliding friction into rolling friction and reducing wear on the raw material. At the same time, the groove of the guide wheel 141 is adapted to the diameter of the raw material, which can limit the lateral deviation of the raw material. Subsequently, the raw material passes through the guide ceramic ring 160. The inner wall of the ceramic ring is smooth and the aperture is adapted to the raw material. On the one hand, it further corrects the raw material transmission path, ensuring that multiple strands of raw material are transmitted in parallel at a preset interval, providing precise positioning for subsequent weaving and forming. On the other hand, the ceramic material has strong wear resistance, which can avoid scratches on the raw material after long-term use and ensure the integrity of the raw material surface.

[0044] The forming equipment 220 has a built-in transmission mechanism (such as gear set and cam assembly) that matches the hexagonal mesh weaving process. After multiple strands of raw material are guided and tensioned, they enter the equipment and are woven according to the "warp and weft interlacing" rule under the drive of the transmission mechanism. Some of the raw material acts as "warp" and maintains a fixed transmission direction, while the other part of the raw material acts as "weft" and periodically passes through the gaps between the warp threads under the drive of the transmission mechanism to form a hexagonal mesh structure. At the same time, the tensioning wheel built into the equipment can help maintain the tension of the raw material during the weaving process, ensuring that the mesh size is uniform and the structure is tight, and finally forming a preliminary polyester hexagonal mesh.

[0045] When the initially formed polyester hexagonal mesh enters the area of ​​the licker roller 240, the licker roller 240 rotates at high speed under the support of the first rotating frame 230. The evenly distributed serrations on its surface can "comb and reinforce" the mesh surface: on the one hand, the serrations can pull the loose threads at the edge of the mesh or between the mesh holes into the mesh structure, eliminating the roughness of the mesh surface; on the other hand, the serrations exert slight pressure on the mesh surface during rotation, making the interwoven warp and weft threads fit more tightly, enhancing the stability of the mesh structure, and laying the foundation for subsequent heating and shaping.

[0046] The heating tank 250 achieves mesh shaping through medium heat transfer and uniform heating control: After the heating rod 252 is energized, it generates heat to heat the heating medium (such as heating oil or hot water) in the tank to the softening temperature range of the polyester raw material (usually 80-120℃, depending on the raw material type). At this temperature, the polyester molecules undergo slight softening and the molecular chains rearrange, which can eliminate the internal stress caused by stretching and bending during the weaving process. At the same time, the drive rod 251 rotates at a uniform speed under the drive of the motor, which promotes the circulation of the heating medium in the tank, avoids local temperature differences in the tank, ensures that all areas of the mesh are heated evenly, and prevents the mesh surface from deforming due to uneven heating. The molecular structure of the heated mesh is more stable, and its strength, aging resistance and dimensional stability are significantly improved.

[0047] As the heated net passes through the heating tank 250, the electric telescopic rod 261 extends and retracts at a preset frequency, driving the extrusion rod 262 downwards to extrude force on the net. This extrusion helps to shape the net and reduce deformation during the cooling process. Finally, the take-up roller 280 rotates at a constant speed driven by a motor. Its rotation speed is linked to the raw material transmission speed and heating speed of the preceding stages through a PLC control system, ensuring that the take-up speed matches the output speed of the net. This prevents the net from becoming loose or overstretched during the take-up process, ultimately neatly winding the finished net onto the take-up roller 280 for easy storage and transportation.

[0048] All standard parts used in this utility model can be purchased from the market, and irregularly shaped parts can be customized according to the description and drawings. The specific connection methods of each part adopt conventional methods such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts, and equipment all adopt conventional models in the prior art. In addition, the circuit connection adopts conventional connection methods in the prior art, which will not be described in detail here. The control method of this utility model is controlled by a controller. The control circuit of the controller can be implemented by those skilled in the art through simple programming. It should be noted that the electrical components mentioned in this utility model have been sorted according to the actual situation during manufacturing, so that the wire harness will not cause the wire harness to become tangled or affect the operation. The contents not described in detail in this specification belong to the prior art known to those skilled in the art.

[0049] In the description of this utility model, it should be understood that the indicated orientation or positional relationship is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing this utility model and simplifying the description, and is not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.

[0050] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A polyester hexagonal mesh weaving and forming equipment, characterized in that: Includes a support component (100) and a first support platform (200); The bearing assembly (100) includes a support frame (110), on which a mounting rod (120) is provided. A reel (130) is rotatably connected to the mounting rod (120). A first mounting platform (140) is provided above the reel (130). A guide wheel (141) is rotatably connected to the first mounting platform (140). A first mounting frame (150) is provided downstream of the guide wheel (141). A guide ceramic ring (160) is mounted on the first mounting frame (150). A sliding rod (170) is provided downstream of the guide ceramic ring (160). A sliding block (180) is installed on the sliding block (180), a tensioning ceramic ring (190) is installed on the sliding block (180), a suspension hammer (191) is installed at the bottom of the tensioning ceramic ring (190), a first bearing platform (200) is provided downstream of the bearing assembly (100), a base (210) is provided on the first bearing platform (200), a forming device (220) is provided on the base (210), a piercing roller (240) is provided downstream of the forming device (220), a heating pool (250) is provided downstream of the piercing roller (240), and a take-up roller (280) is provided downstream of the heating pool (250).

2. The polyester hexagonal mesh weaving and forming equipment according to claim 1, characterized in that: Multiple mounting rods (120) are provided and are evenly distributed on the outer wall of the support frame (110).

3. The polyester hexagonal mesh weaving and forming equipment according to claim 1, characterized in that: The raw material is wound on the reel (130), and the raw material is connected to the guide wheel (141) and passes through the guide ceramic ring (160) and the tension ceramic ring (190) into the forming equipment (220).

4. The polyester hexagonal mesh weaving and forming equipment according to claim 1, characterized in that: The sliding rod (170) is located on the inner wall of the support frame (110), and the sliding block (180) is slidably connected to the sliding rod (170).

5. The polyester hexagonal mesh weaving and forming equipment according to claim 1, characterized in that: A first rotating frame (230) is provided downstream of the forming equipment (220). The first rotating frame (230) is rotatably connected to the piercing roller (240) and fixedly connected to the first support platform (200).

6. The polyester hexagonal mesh weaving and forming equipment according to claim 1, characterized in that: The heating pool (250) is equipped with a drive rod (251) and a heating rod (252) inside. The top of the heating pool (250) is equipped with a support platform (260) and a guide plate (253). An electric telescopic rod (261) is installed on the support platform (260), and a squeezing rod (262) is installed on the telescopic end of the electric telescopic rod (261).

7. The polyester hexagonal mesh weaving and forming equipment according to claim 1, characterized in that: The take-up roller (280) is mounted on a second support platform (270), which is located downstream of the heating pool (250).