Fabric packaging and inspecting equipment with flattening function
Through dynamic flattening inspection mechanism and modular design, the adaptability and detection blind spot problems of fabric packaging and inspection equipment are solved, uniform flattening and comprehensive quality inspection of fabrics are achieved, and the flexibility and maintenance efficiency of the equipment are improved.
Patent Information
- Application Number
- CN202510626875.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-15
- Publication Date
- 2025-07-11
AI Technical Summary
The existing fabric packaging and inspection equipment lacks adaptability and cannot flexibly adjust flattening parameters according to the characteristics of the fabric. There are blind spots in detection, unreasonable position of the inspection instrument leads to light interference, insufficient modular design of the equipment, difficulty in repairing, and difficult to quickly adapt to market changes.
The dynamic flattening inspection mechanism is adopted, including rubber roller group, metal roller group and adjustment roller group, and the diameter is gradually increased to ensure uniform flattening of the fabric; the upper and lower inspection instruments are independently laid out to avoid light interference; the modular design is convenient for disassembly and replacement of modules.
It realizes uniform flattening and comprehensive quality inspection of fabrics, improves inspection accuracy, equipment flexibility and maintenance efficiency, and reduces maintenance time and site costs.
Smart Images

Figure CN120288562A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of fabric conveying and inspection, and specifically relates to a fabric packaging and inspection device with a flattening function. Background Art
[0002] Existing fabric packaging and inspection devices can stretch fabrics through mechanical structures to eliminate wrinkles and automatically complete winding after inspection, which are applicable to various fabric processing enterprises such as clothing, home textiles, and industrial fabrics. Fabrics refer to various sheet-shaped fiber products such as various cloths, silks, and flannels made through textile processing techniques, such as various pure cotton, linen, silk, and chemical fiber fabrics used for making shirts, pants, skirts, etc.
[0003] However, the devices in the prior art still have the following defects in specific use: 1. Compared with the fabric inspection devices in the prior art, usually two flattening methods are adopted. The first one is to set multiple round rollers at different positions in the device. The fabric passes through between the round rollers, and the round rollers play a limiting role to guide the fabric to move in a planar manner during transmission, so as to achieve the flattening effect. However, this flattening method lacks the adaptability to different fabric characteristics and cannot be finely adjusted according to the specific situation of the fabric. When dealing with various types of fabrics, it is difficult to ensure a good flattening effect, which affects the subsequent inspection accuracy and quality. The specific reasons are as follows: The positions and spacings of the round rollers are usually fixed or can only be adjusted within a limited range. Facing fabrics with different thicknesses and materials, it is impossible to flexibly adjust parameters such as the spacing and pressure of the round rollers according to the real-time characteristics of the fabric.
[0004] The second one is to transfer the fabric to the surface of the pallet, and utilize the fitting effect between the fabric and the surface of the pallet to keep the fabric in a flat state and complete the flattening process. Due to the existence of the pallet in this flattening method, it hinders the inspection of the area below the fabric, making the device unable to comprehensively detect the fabric quality, resulting in a detection blind area, which may cause defective fabrics to be undetected and reduce the overall quality control level of the product. The specific reasons are as follows: The pallet, as the carrier for supporting and flattening the fabric, completely blocks the area below the fabric when fitting the lower surface of the fabric. Common inspection devices such as cameras and sensors can only be installed above the fabric in the flattened area, resulting in the inability to inspect the area below the fabric blocked by the pallet and missing the quality problems in this part.
[0005] 2. In the prior art, the positions and running paths of inspection instruments are usually not reasonably arranged. For example, the inspection instruments of many devices are only set on one side of the fabric, or even if there are inspection instruments on both sides, their running trajectories are not planned. When using upper and lower inspection instruments simultaneously, due to the unreasonable setting of the instrument positions, the light propagation directions are chaotic, resulting in the mutual influence of the light between the inspection instruments, and the projection of the upper inspection instrument device is also likely to be mapped onto the lower one, interfering with the normal operation of the lower inspection instrument.
[0006] Moreover, in the working environment of the equipment, light sources such as lamps usually irradiate from top to bottom. Existing equipment does not fully consider the impact of this light propagation characteristic on the inspection instruments below. The inspection instruments below often are in an unfavorable position of direct light irradiation, and the light interference with the inspection instruments below will cause a significant decrease in their detection accuracy. It is difficult to accurately identify some subtle fabric defects, thus reducing the overall control ability of fabric quality.
[0007] In addition, existing fabric inspection equipment often fixedly designs the inspection instruments and fabric conveying equipment as a whole, making the components tightly coupled to each other and unable to be easily disassembled, combined, and replaced. Therefore, when a certain part of the equipment fails, maintenance personnel need to conduct complex disassembly and inspection of the entire equipment, which is difficult and time-consuming, seriously affecting the production progress. Moreover, due to the lack of modular design, the equipment is difficult to be flexibly adjusted and upgraded according to different production requirements and fabric characteristics, unable to quickly adapt to market changes, reducing the service life of the equipment and the return on investment.
[0008] Therefore, in view of this, the present invention proposes a fabric packaging and inspection equipment with a flattening function to make up for and improve the deficiencies of the existing technology. Summary of the Invention
[0009] To solve the above technical problems, the present invention provides a fabric packaging and inspection equipment with a flattening function to solve the technical problems raised in the above background technology.
[0010] To achieve the above purposes, the technical solution adopted by the present invention is: a fabric packaging and inspection equipment with a flattening function for inspecting and processing a fabric main body, including a conveying component, and a dynamic flattening and inspection mechanism is arranged on the side wall of the conveying component. The dynamic flattening and inspection mechanism is used for conveying and flattening the fabric main body to facilitate subsequent inspection and processing.
[0011] Furthermore, the dynamic flattening and inspection mechanism includes a flattening bracket installed on the side wall of the conveying component. Connecting pieces are symmetrically installed on the inner side walls of the flattening bracket. Mounting sleeves are installed on the sides of the connecting pieces close to each other. A rubber roller group, a metal roller group, and an adjusting roller group are sequentially installed on the sides of the mounting sleeves close to each other.
[0012] Furthermore, a driving component is installed inside the conveying component. The conveying component includes a feeding end, a discharging end, and a driving round roller. The driving component includes a driving motor, and the driving round roller in the conveying component is controlled by the driving motor in the driving component.
[0013] Further, the side walls of the flattening bracket are symmetrically provided with fitting grooves, the connecting member is entirely located inside the fitting grooves, the connecting member is composed of two connecting shafts, the upper connecting shaft is a telescopic structure, the lower connecting shaft is a non-telescopic structure, and the connecting member is rotatably connected to the fitting sleeve shaft.
[0014] Further, the rubber roller group is close to the feeding end in the conveying assembly, the adjusting roller group is close to the discharging end in the conveying assembly, and the rubber roller group, the metal roller group and the adjusting roller group are all equidistantly distributed.
[0015] By adopting the above technical solution, it is ensured that the fabric is evenly stressed during the conveying and flattening processes, avoiding excessive or insufficient local stress caused by uneven roller spacing.
[0016] Further, the radius dimensions of the rubber roller group, the metal roller group and the adjusting roller group are designed to increase in sequence, so that the fabric body has a slight upward inclination trend during the process of traction-conveying the fabric body.
[0017] By adopting the above technical solution, a certain stretching effect is naturally generated on the fabric, assisting the adjusting roller group to stretch and flatten the fabric.
[0018] Further, each group of the rubber roller group, the metal roller group and the adjusting roller group is composed of two identical circular roller combinations up and down. The rubber roller group is of solid design, a convex shaft counterweight block is installed inside the metal roller group and is of semi-solid design, the adjusting roller group is of hollow design, and transmission parts are installed on the outer walls of the rubber roller group, the metal roller group and the adjusting roller group.
[0019] By adopting the above technical solution, the rubber roller group is of solid design, enhancing the strength and durability of the roller body. The adjusting roller group is of hollow design, reducing the self-weight of the roller body.
[0020] Further, an assembly frame is arranged outside the flattening bracket. Driving cylinders are installed on the side walls of the assembly frame. The outer walls of the output shaft ends of the driving cylinders are fixedly connected with bearing plates, and inspection instruments are installed on the surfaces of the bearing plates.
[0021] Further, the assembly frame is integrally composed of two upper and lower parts assembled together, and docking seats are installed at the connection positions of the upper and lower parts of the assembly frame.
[0022] By adopting the above technical solution, each module can be independently disassembled and replaced, and its corresponding module can be directly taken out of the equipment for maintenance or replacement.
[0023] Further, the inspection instruments are respectively located on the upper and lower sides of the assembly frame, and the inspection instruments correspond to the upper left side and the lower right side of the fabric body respectively with the fabric body as a reference object.
[0024] By adopting the above technical solution, different regions of the fabric are comprehensively covered, and the fabric at each position can be inspected from the feeding end to the discharging end.
[0025] Furthermore, connecting rods are symmetrically and fixedly connected to the side walls of the bearing plate. The connecting rods are slidably connected to the assembly frame. A limiting shaft is installed on the side wall of the connecting rod located below the right side of the fabric body. A supporting round roller is slidably connected to the outer wall of the limiting shaft, and the supporting round roller is fixedly connected to the connecting rod.
[0026] By adopting the above technical solution, it is possible to more accurately focus on and detect the fabric surface, improving the stability and accuracy of the inspection.
[0027] Compared with the prior art, the beneficial effects of the present invention are as follows: (1) The dynamic flattening inspection mechanism introduced in this device can conform to the flattening requirements at different stages, thereby providing stable support and continuous flattening for the fabric.
[0028] First of all, the rubber roller group near the feeding end has a small diameter and a soft and elastic surface. It can closely fit the initial uneven state of the fabric, effectively eliminating minute wrinkles. This design can lay a good foundation for subsequent flattening at the initial stage, improving the overall flattening efficiency. Compared with rollers of a single material and diameter, it can better cope with the diverse initial states of fabrics, enhancing the adaptability of the equipment to different fabric types. Secondly, the metal roller group in the middle level has a moderate diameter and a smooth surface. After the fabric is preliminarily treated by the rubber rollers, it provides a stable support platform for the fabric. The fabric can be further stretched at this stage, and the smooth surface reduces the frictional resistance, preventing damage to the fabric surface and ensuring a smooth flattening process, guaranteeing the stability of the fabric throughout the flattening process. Finally, the large-diameter adjusting roller group near the discharging end can further stretch and flatten the fabric according to the final flattening requirements of the fabric. The overall adjustable spacing design can adapt to fabrics of different thicknesses and elasticities. By adjusting the spacing to control the stretching force, precise flattening can be achieved, meeting the diverse fabric flattening requirements and improving the quality consistency of the product.
[0029] Among them, the rubber rollers, metal rollers, and adjusting rollers are all equidistantly distributed, ensuring uniform force on the fabric during transportation and flattening, avoiding excessive or insufficient local force caused by uneven roller spacing, preventing problems such as uneven stretching and recurrence of wrinkles of the fabric, and ensuring the stability and reliability of the entire flattening process.
[0030] (2) What is particularly important is that the cam counterweight installed inside the metal roller group covers and fills half of the space. When the metal roller rotates, it generates a small vibration under the action of the cam counterweight. This vibration helps to further loosen the fabric fibers and make the stress distribution inside the fabric more uniform. At the same time, the shock-absorbing pads installed below avoid the impact of vibration on other parts of the equipment, ensuring the overall stable operation of the equipment without interfering with the normal operation of other components. Secondly, the rubber roller group adopts a solid design, which enhances the strength and durability of the roller body. The solid structure can better withstand pressure and is not easy to deform, which extends the service life of the rubber roller group. The adjustment roller group adopts a hollow design, which reduces the weight of the roller body itself. When it is necessary to fine-tune its spacing to adapt to different fabrics, the lighter weight makes the adjustment process easier and more flexible, reduces the energy consumption of the driving adjustment mechanism, and improves the response speed and accuracy of the adjustment, which can more quickly and accurately meet the flattening requirements of different fabrics.
[0031] Among them, the diameter of the round roller group gradually increases from the feed end to the discharge end, so that the fabric has a tendency to tilt slightly upward during the traction and transportation process. This tilting trend naturally produces a certain stretching effect on the fabric during the forward movement of the fabric, and assists the adjusting roller group to stretch and flatten the fabric.
[0032] Compared with the existing technology, this gradient diameter design makes the stretching process gentler and more uniform, reduces the risk of fabric damage due to sudden excessive force, and improves the uniformity of the flattening effect.
[0033] (3) The inspection instrument in this device is divided into two parts, located at the upper left side and the lower right side of the fabric body respectively. It is driven by the cylinder to move horizontally on the upper and lower sides of the assembly frame, and different moving paths are set. This layout and movement mode can fully cover different areas of the fabric. From the feed end to the discharge end, the fabric at each position can be inspected, ensuring the comprehensiveness of the inspection and reducing the possibility of missed inspections.
[0034] In addition, different moving paths are designed according to the states of the fabric at different positions. The lower inspection instrument moves from the rubber roller at the feed end to the middle metal roller, and the upper inspection instrument moves from the middle metal roller to the adjusting roller at the discharge end. It can inspect the characteristics of the fabric at different stages. For example, there may be more initial wrinkles on the fabric at the feed end. The lower instrument starts the inspection from here to focus on the defects in the initial state. The fabric at the discharge end is close to being flattened. The upper instrument inspects here to promptly discover problems that occur after flattening.
[0035] The upper and lower inspection instruments do not interfere with each other, especially avoiding the influence of light and the interference of the upper instrument's projection on the lower instrument, which makes the data obtained by the inspection instrument more accurate. Accurate data can more truly reflect the quality of the fabric and provide a reliable basis for subsequent quality control and processing.
[0036] Among them, the supporting circular roller moves synchronously with the lower inspection instrument and always adheres to the fabric surface, providing a stable inspection support point for the upper inspection instrument. During the inspection process, the fabric may have slight jitters or displacements due to conveying or other factors. The supporting circular roller can reduce the influence of such unstable factors on the inspection, enabling the upper inspection instrument to focus and detect the fabric surface more accurately, improving the stability and accuracy of the inspection.
[0037] (4) The inspection instrument is combined with the flattening bracket through the assembly frame, and the assembly frame is installed outside the flattening bracket. This design effectively integrates the equipment structure, making the entire inspection and flattening system more compact, without occupying extra space. The equipment can be reasonably arranged within the limited production site, improving the space utilization rate and reducing the site cost.
[0038] At the same time, with this modular design, when the equipment fails or requires regular maintenance, each module can be independently disassembled and replaced. For example, if there is a problem with the inspection instrument, its corresponding module can be directly taken out of the equipment for repair or replacement without affecting the normal operation of other modules, significantly shortening the equipment downtime and improving the production efficiency.
[0039] Different fabric production enterprises have different production requirements and technological processes. The modular-designed equipment can be flexibly combined and configured according to the specific needs of the enterprise. The enterprise can select appropriate inspection instrument and conveying equipment modules for assembly according to its own production scale, fabric type, and quality requirements, making the equipment better adapt to the actual production of the enterprise and improving the versatility and applicability of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0040] Figure 1 It is a front view three-dimensional structure schematic diagram of the present invention.
[0041] Figure 2 It is a three-dimensional structure schematic diagram of the flattening bracket of the present invention.
[0042] Figure 3 It is a three-dimensional structure schematic diagram of the dynamic inspection mechanism of the present invention.
[0043] Figure 4 It is for the present invention Figure 3 The partial enlarged three-dimensional structure schematic diagram at position A in the present invention.
[0044] Figure 5 It is a three-dimensional structure schematic diagram of the fitting groove of the present invention.
[0045] Figure 6 It is a plane structure schematic diagram of each roller group of the present invention.
[0046] Figure 7Schematic diagram of the three-dimensional structure of the assembly frame of the present invention.
[0047] Figure 8 Schematic diagram of the three-dimensional structure of the docking seat of the present invention.
[0048] Figure 9 For the present invention Figure 8 Partial enlarged three-dimensional structure schematic diagram at position B in the present invention.
[0049] Figure 10 Schematic diagram of the three-dimensional structure of the supporting round roller of the present invention.
[0050] The reference numerals in the figure are: 1, drive assembly; 11, conveying assembly; 12, fabric body; 2, dynamic flattening and inspection mechanism; 21, flattening bracket; 22, adapter slot; 23, connecting piece; 24, fitting sleeve shaft; 25, rubber roller group; 26, metal roller group; 27, adjusting roller group; 28, transmission part; 29, assembly frame; 210, docking seat; 211, drive cylinder; 212, bearing plate; 213, inspection instrument; 214, connecting rod; 215, limiting shaft; 216, supporting round roller. Specific embodiments
[0051] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present invention.
[0052] It should be noted that the structures and working principles of the above-mentioned devices such as the drive assembly 1, the conveying assembly 11, and the fabric body 12 belong to the prior art and will not be elaborated here.
[0053] Example 1: Please refer to Figures 1 to 3 As shown, a fabric packaging and inspection device with a flattening function is used to inspect the fabric body 12, including a conveying assembly 11. A dynamic flattening and inspection mechanism 2 is arranged on the side wall of the conveying assembly 11. The dynamic flattening and inspection mechanism 2 is used to convey and flatten the fabric body 12 to facilitate subsequent inspection processing.
[0054] It should be noted that drive assemblies 1 are installed inside the conveying assembly 11. The conveying assembly 11 includes a feeding end, a discharging end, and driving round rollers. The drive assembly 1 includes a drive motor, and the driving round rollers in the conveying assembly 11 are controlled by the drive motor in the drive assembly 1.
[0055] Please refer to Figures 2 to 7As shown in the figure, the dynamic flattening and inspection mechanism 2 includes a flattening bracket 21 installed on the side wall of the conveying assembly 11. Symmetrically installed on the inner side wall of the flattening bracket 21 are connecting members 23. On the side of the connecting members 23 close to each other, there are installed mating sleeve shafts 24 in sequence. On the side of the mating sleeve shafts 24 close to each other, there are installed a rubber roller group 25, a metal roller group 26, and an adjusting roller group 27 in sequence.
[0056] It should be noted that a driving assembly 1 is installed inside the conveying assembly 11. The conveying assembly 11 includes a feeding end, a discharging end, and a driving round roller. The driving assembly 1 includes a driving motor, and the driving round roller in the conveying assembly 11 is controlled by the driving motor in the driving assembly 1. Symmetrically arranged on the side wall of the flattening bracket 21 are fitting grooves 22. The whole connecting member 23 is located inside the fitting groove 22. The connecting member 23 consists of an upper connecting shaft and a lower connecting shaft. The upper connecting shaft is a telescopic structure, and the lower connecting shaft is a non-telescopic structure. And the connecting member 23 is rotationally connected to the mating sleeve shaft 24. The rubber roller group 25 is close to the feeding end in the conveying assembly 11, and the adjusting roller group 27 is close to the discharging end in the conveying assembly 11. The rubber roller group 25, the metal roller group 26, and the adjusting roller group 27 are all equidistantly distributed. The radius dimensions of the rubber roller group 25, the metal roller group 26, and the adjusting roller group 27 are designed to increase in sequence, so that there is a slight upward inclination trend of the fabric body 12 during the process of traction and conveying of the fabric body 12. Each group among the rubber roller group 25, the metal roller group 26, and the adjusting roller group 27 is composed of two identical round rollers, the upper and the lower. The rubber roller group 25 is of solid design, the inside of the metal roller group 26 is installed with convex shaft counterweights and is of semi-solid design, and the adjusting roller group 27 is of hollow design. And transmission parts 28 are installed on the outer walls of the rubber roller group 25, the metal roller group 26, and the adjusting roller group 27.
[0057] Specifically, when the device is started, the driving motor inside the conveying assembly 11 starts to work. The driving motor serves as the power source for the entire conveying process, outputs torque to drive the driving round roller to rotate. Since the driving round roller is in contact with the fabric body 12, under the action of friction, the fabric body 12 starts to be conveyed from the feeding end. Driven by the driving round roller, the fabric body 12 moves along the conveying assembly 11 from the feeding end to the discharging end at a certain speed, providing continuous material supply for the subsequent flattening and inspection processes.
[0058] The fabric body 12 first comes into contact with the rubber roller group 25 close to the feeding end. The rubber roller group 25 consists of two identical solid round rollers, the upper and the lower, with a smaller diameter and a soft and elastic surface. As the fabric moves, the rubber roller group 25 closely adheres to the initial uneven surface of the fabric body 12. Due to the elasticity of the rubber rollers, they can adapt to various undulations on the fabric surface, squeeze and smooth out the tiny wrinkles on the fabric surface, laying a good foundation for the subsequent flattening process.
[0059] When the fabric body 12 after preliminary treatment by the rubber roller group 25 enters the area of the metal roller group 26, the metal roller group 26 keeps rotating under the continuous conveyance of the fabric body 12. Since the internal convex shaft counterweight block covers and fills half of the space, the metal roller will generate slight vibrations under the eccentric action. This vibration is transmitted to the fabric, which helps to further loosen the fabric fibers and make the internal stress distribution of the fabric more uniform.
[0060] Moreover, the upper and lower round rollers in each of the above roller groups respectively correspond to the upper and lower connecting shafts in the connecting member 23. Since the upper connecting shaft in the connecting member 23 is a telescopic structure and the lower connecting shaft is a non-telescopic structure, during the conveyance of the fabric body 12, the positions of the lower round rollers in each roller group always remain unchanged, while the upper round rollers will adapt to change their positions under the telescopic property of the upper connecting shaft so as to correspond to fabric bodies 12 of different thicknesses.
[0061] Embodiment 2: On the basis of Embodiment 1, please refer to Figures 7 to 10 As shown, an assembly frame 29 is arranged outside the flattening bracket 21. Driving cylinders 211 are installed on the side walls of the assembly frame 29. The outer walls of the output shaft ends of the driving cylinders 211 are fixedly connected with bearing plates 212. Inspection instruments 213 are installed on the surfaces of the bearing plates 212. The assembly frame 29 is integrally composed of an upper part and a lower part assembled together, and docking seats 210 are installed at the connection positions of the upper and lower parts of the assembly frame 29. The inspection instruments 213 are respectively located on the upper and lower sides of the assembly frame 29. The inspection instruments 213 respectively correspond to the upper left side of the fabric body 12 and the lower right side of the fabric body 12 with the fabric body 12 as a reference object. Connecting rods 214 are symmetrically and fixedly connected to the side walls of the bearing plates 212. The connecting rods 214 are slidably connected with the assembly frame 29. A limiting shaft 215 is installed on the side wall of the connecting rod 214 located at the lower right side of the fabric body 12. A supporting round roller 216 is slidably connected to the outer wall of the limiting shaft 215. The supporting round roller 216 is fixedly connected with the connecting rod 214.
[0062] Specifically, before the device is started, the assembly frame 29 is firmly installed outside the flattening bracket 21, and its upper and lower parts are tightly connected through the docking seats 210. The driving cylinders 211 are installed on the side walls of the assembly frame 29, the outer walls of the output shaft ends fixedly bear the bearing plates 212, and the inspection instruments 213 are installed on the bearing plates 212 to ensure firm installation. The fabric body 12 moves from the feeding end to the discharging end driven by the conveying assembly 11. At this time, the driving cylinders 211 are in the initial state, and the inspection instruments 213 are located at the starting positions. Specifically, the lower inspection instrument 213 corresponds to the upper part of the rubber roller group 25 at the feeding end, and the upper inspection instrument 213 corresponds to the lower part of the adjusting roller group 27 at the discharging end.
[0063] When the fabric body 12 starts to move, the driving cylinder 211 starts, pushing the supporting plate 212 and the inspection instrument 213 below to move horizontally. The supporting plate 212 slides smoothly on the assembly frame 29 through the connecting rod 214, driving the inspection instrument 213 to move from the rubber roller group 25 at the feed end to the middle metal roller group 26. During the movement, the inspection instrument 213 below detects the area below the fabric body 12 from the initial stage to the middle flattening stage, focusing on the part with more initial wrinkles at the feed end to collect fabric surface information.
[0064] During the movement of the lower inspection instrument 213, the supporting circular roller 216 moves synchronously with the lower inspection instrument 213. Since the limiting shaft 215 is fixed to the connecting rod 214, the supporting circular roller 216 always adheres to the lower surface of the fabric body 12, thereby providing a stable support point for the upper inspection instrument 213 and reducing the impact of unstable factors on the detection of the upper inspection instrument 213.
[0065] While the lower inspection instrument 213 moves, the driving cylinder 211 corresponding to the upper inspection instrument 213 will be started synchronously. Similarly, the driving cylinder 211 pushes the supporting plate 212 and the inspection instrument 213 to move the upper inspection instrument 213 from the adjusting roller group 27 at the discharge end to the position of the middle metal roller group 26. During this process, the upper inspection instrument 213 inspects the upper surface area of the fabric body 12, focusing on inspecting the problems that may occur after the fabric at the discharge end is almost flattened.
[0066] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A fabric packaging and inspection device with a flattening function for inspecting and processing a fabric body (12), including a conveying component (11), characterized in that: A dynamic flattening inspection mechanism (2) is provided on the side wall of the conveying component (11). The dynamic flattening inspection mechanism (2) is used to convey and flatten the fabric body (12) to facilitate subsequent inspection and processing. The dynamic flattening inspection mechanism (2) includes a flattening bracket (21) installed on the side wall of the conveying component (11). Connecting pieces (23) are symmetrically installed on the inner side walls of the flattening bracket (21). Fitting sleeve shafts (24) are installed on the sides of the connecting pieces (23) close to each other. A rubber roller group (25), a metal roller group (26), and an adjusting roller group (27) are successively installed on the sides of the fitting sleeve shafts (24) close to each other.
2. The fabric packaging and inspection equipment with a flattening function according to claim 1, characterized in that: A driving component (1) is installed inside the conveying component (11). The conveying component (11) includes a feeding end, a discharging end, and a driving round roller. The driving component (1) includes a driving motor, and the driving round roller in the conveying component (11) is controlled by the driving motor.
3. The fabric packaging and inspection equipment with a flattening function according to claim 1, characterized in that: Adapter slots (22) are symmetrically formed on the side walls of the flattening bracket (21). The whole connecting pieces (23) are located inside the adapter slots (22). The connecting pieces (23) are composed of an upper connecting shaft and a lower connecting shaft. The upper connecting shaft is a telescopic structure, and the lower connecting shaft is a non-telescopic structure. The connecting pieces (23) are rotatably connected to the fitting sleeve shafts (24).
4. The fabric packaging and inspection equipment with a flattening function according to claim 1, wherein: The rubber roller group (25) is close to the feeding end in the conveying component (11). The adjusting roller group (27) is close to the discharging end in the conveying component (11). The rubber roller group (25), the metal roller group (26), and the adjusting roller group (27) are all equidistantly distributed.
5. The fabric packaging and inspection equipment with a flattening function according to claim 1, characterized in that: The radius dimensions of the rubber roller group (25), the metal roller group (26), and the adjusting roller group (27) are designed to increase successively, so that during the traction conveying process, the fabric body (12) has a slightly upward inclination trend.
6. The fabric packaging and inspection equipment with a flattening function according to claim 1, characterized in that: Each group of the rubber roller group (25), the metal roller group (26), and the adjusting roller group (27) is composed of two identical round rollers combined up and down. The rubber roller group (25) is of solid design. The convex shaft counterweight blocks installed inside the metal roller group (26) are of semi-solid design. The adjusting roller group (27) is of hollow design. Transmission parts (28) are installed on the outer walls of the rubber roller group (25), the metal roller group (26), and the adjusting roller group (27).
7. The fabric packaging and inspection equipment with a flattening function according to claim 1, characterized in that: An assembly frame (29) is provided outside the flattening bracket (21). Driving cylinders (211) are installed on the side walls of the assembly frame (29). Bearing plates (212) are fixedly connected to the outer walls of the output shaft ends of the driving cylinders (211). Inspection instruments (213) are installed on the surfaces of the bearing plates (212).
8. The fabric packaging and inspection equipment with a flattening function according to claim 7, characterized in that: The whole assembly frame (29) is assembled and combined by upper and lower parts. Docking seats (210) are installed at the connection positions of the upper and lower parts of the assembly frame (29).
9. The fabric packaging and inspection equipment with a flattening function according to claim 7, characterized in that: The inspection instruments (213) are respectively located on the upper and lower sides of the assembly frame (29). The inspection instruments (213) are respectively above the left side and below the right side of the fabric body (12) with the fabric body (12) as a reference.
10. A fabric packaging and inspection device with a flattening function according to claim 7, characterized in that: The side walls of the bearing plate (212) are symmetrically and fixedly connected with connecting rods (214). The connecting rods (214) are slidably connected with the assembly frame (29). A limiting shaft (215) is installed on the side wall of the connecting rod (214) located below the right side of the fabric body (12). A support round roller (216) is slidably connected to the outer wall of the limiting shaft (215), and the support round roller (216) is fixedly connected with the connecting rod (214).