A textile component, textile equipment and textile control method
By designing adjustable protrusions and accommodating groove connection positions in the textile components, a variety of roller combinations can be achieved, which solves the problem of multi-line production in a limited space, improves the adaptability and production efficiency of the textile components, and meets different output and quality requirements.
Patent Information
- Application Number
- CN202411085552.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-08
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2044-08-08
AI Technical Summary
In the textile process, existing technologies are difficult to adapt to the production needs of more production lines within a limited space, and the roller position and line speed are closely related to the spinning quality, resulting in the textile components being unable to meet the production requirements of multiple production lines.
A textile component is designed. By setting dovetail grooves and guide grooves on the first plate and the second plate, and utilizing the adjustable protrusion and the connection position of the accommodating groove, a variety of roller combinations can be achieved, including two-roller and four-roller transmission, to meet the needs of different production lines.
The production needs of more production lines are realized within a limited space, the adaptability and production efficiency of textile components are improved, the output and quality can be adjusted according to actual needs, and yarn interference and assembly complexity are avoided.
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Figure CN118814327B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of textile technology, and in particular to a textile component, textile equipment and a textile control method. Background Art
[0002] During the textile process, rollers are used to guide, draft, and transport yarn. They precisely guide the yarn's path through the machine to ensure it follows the intended trajectory, avoid deviations, and guarantee yarn quality. Drafting methods typically include two, three, and four rollers. By adjusting the linear speed and relative position of each roller, the yarn is stretched and refined during the drafting and transport process to meet subsequent process requirements. Due to the spacing and angles between the rollers used to transport the same yarn, it's difficult to arrange more rollers within a limited transport space to transport more yarn. Roller position and linear speed are closely related to yarn quality, so the friction exerted on the yarn by the rollers must be kept as stable as possible. Consequently, only one roller production line can be arranged on a single roller, resulting in fewer roller production lines within a limited space and making it impossible to accommodate production requiring more production lines. Summary of the Invention
[0003] In order to overcome the deficiencies of the prior art, an object of the present invention is to provide a textile component that can adapt to the production requirements of more production lines.
[0004] To solve the above problems, the technical solution adopted by the present invention is as follows: a textile component, comprising a first plate body and a second plate body; the first plate body has a first surface, the first plate body is provided with a plurality of first dovetail grooves extending in a first direction on the first surface, and the plurality of first dovetail grooves are arranged and distributed along a second direction, and two first rollers are rotatably inserted in each of the first dovetail grooves, and a first guide groove is provided on the outer periphery of the first roller, and the first plate body is further provided with a accommodating groove along a third direction in the groove depth direction, wherein the first direction and the second direction are perpendicular to the third direction in pairs; the second plate body and the first plate body are arranged and distributed along the third direction, the second plate body is provided with a protrusion, and the protrusion is provided with a plurality of second dovetail grooves extending in the first direction, and the plurality of second dovetail grooves are arranged and distributed along the second direction, and two second rollers are rotatably inserted in each of the second dovetail grooves, and the outer periphery of the second roller is provided with a second guide groove;
[0005] There is a first connection position and a second connection position between the protrusion and the accommodating groove:
[0006] When the protrusion and the accommodating groove are in the first connection position, the second roller does not protrude from the first guide groove of the first plate body, and the two first rollers jointly realize the transmission of a group of yarns;
[0007] When the protrusion and the accommodating groove are in the second connection position, the second guide groove of the second roller protrudes from the first surface of the first plate body, and the second guide groove and the first guide groove are staggered in the third direction. The two first rollers jointly realize the transmission of one group of spinning threads, and the two second rollers jointly realize the transmission of another group of spinning threads.
[0008] Compared with the prior art, the beneficial effect of the present invention is that: the textile assembly is provided with a receiving groove on the first plate body, and a protrusion is provided on the second plate body, and the receiving groove and the protrusion have different connection positions. For the production needs of a general number of production lines, the protrusion and the receiving groove can be adjusted to the first connection position. At this time, two first rollers can be used to realize the transmission of a group of spinning threads, and multiple first dovetail grooves can realize the production of multiple production lines to meet the production needs of a general number of production lines. For the production needs of more production lines, the protrusion and the receiving groove can be adjusted to the second connection position. At this time, two first rollers can realize the transmission of one group of spinning threads, and two second rollers can realize the transmission of another group of spinning threads. Multiple first dovetail grooves and multiple second dovetail grooves can respectively realize the transmission of spinning threads of their respective production lines, thereby realizing the production needs of more production lines within a limited space. Therefore, in the actual production process, the connection position between the protrusion and the receiving groove can be adjusted according to the actual production needs to meet the production needs of general output and higher output, thereby improving the adaptability and production efficiency of the textile assembly.
[0009] In the above-mentioned textile component, there is also a third connection position between the protrusion and the accommodating groove: when the protrusion and the accommodating groove are in the third connection position, the second guide groove is flush with the first guide groove in the third direction, and the two first rollers and the two second rollers jointly realize the transmission of a group of spinning threads.
[0010] The above-mentioned textile component also includes a driving member, the output end of which is fixedly connected to the second plate body, and the protrusion can be movably inserted into the accommodating groove; the driving member is used to drive the protrusion to telescopically move in the accommodating groove to adjust the connection position between the protrusion and the accommodating groove.
[0011] In the above-mentioned textile assembly, a guide column is fixedly connected to the first plate body, and a guide sleeve is fixedly connected to the second plate body, and the guide sleeve is slidably sleeved on the guide column.
[0012] In the above-mentioned textile assembly, a buffer is provided on the end surface of the guide sleeve close to the first plate body.
[0013] In the above-mentioned textile assembly, the buffer member is a plurality of elastic protrusions distributed along the circumference of the guide sleeve.
[0014] In the above-mentioned textile assembly, a first avoidance groove is provided on the outer periphery of the first roller, and a second avoidance groove is provided on the outer periphery of the second roller. The first avoidance groove and the second avoidance groove are used to avoid spinning.
[0015] In the above-mentioned textile component, the groove depth of the first avoidance groove is greater than the groove depth of the first guide groove, and the groove depth of the second avoidance groove is greater than the groove depth of the second guide groove.
[0016] In the above-mentioned textile component, a third dovetail groove extending along the second direction is further provided on the first plate body, a first transfer groove is provided at the intersection of the third dovetail groove and the first dovetail groove, and the first roller can be rotatably inserted into the first transfer groove; a fourth dovetail groove extending along the second direction is further provided on the second plate body, a second transfer groove is provided at the intersection of the fourth dovetail groove and the second dovetail groove, and the second roller can be rotatably inserted into the second transfer groove.
[0017] In the above-mentioned textile component, the side walls of the first dovetail groove and the third dovetail groove close to the first transition groove are both provided with a first elastic stop protrusion; the side walls of the second dovetail groove and the fourth dovetail groove close to the second transition groove are both provided with a second elastic stop protrusion.
[0018] The present invention also provides a textile device, including the above-mentioned textile component. Since the textile device adopts the above-mentioned textile component, it has at least all the beneficial effects that can be brought by the above-mentioned textile component.
[0019] The present invention also provides a textile control method, which uses the above-mentioned textile component and includes the following steps:
[0020] Step S100: accepting total output demand;
[0021] Step S200: Determine the average daily output demand;
[0022] Step S300: adjusting the connection position between the protrusion and the receiving groove according to the daily production demand.
[0023] This textile control method adopts the above-mentioned textile components, and can adjust the connection position between the protrusion and the accommodating groove according to the actual production demand, so that the enterprise can adjust the production efficiency according to the actual production deadline and production demand, and can complete the production within the actual production deadline without causing product accumulation due to completing the production too quickly.
[0024] The above-mentioned textile control method is characterized in that step S200 includes the following steps:
[0025] Step S210: Calculate the remaining output as production progresses;
[0026] Step S220: Calculate the average daily output demand within the remaining production period based on the remaining output.
[0027] In the textile control method described above, step S300 includes the following steps:
[0028] Step S310: Preset daily average production demand;
[0029] Step S320: If the actual average daily production demand is less than or equal to the preset average daily production demand, adjust the protrusion and the accommodating groove to the first connection position; if the actual average daily production demand is greater than the preset average daily production demand, adjust the protrusion and the accommodating groove to the second connection position.
[0030] In the above-mentioned textile control method, step S300 further includes the following steps:
[0031] Step S330: If the actual average daily output demand is less than or equal to the preset average daily output demand and the spinning quality needs to be adjusted, the protrusion and the accommodating groove are adjusted to a third connection position.
[0032] The present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] Figure 1 This is a schematic structural diagram of the first plate body according to Embodiment 1 and Embodiment 2 of the present invention;
[0034] Figure 2 This is a schematic structural diagram of the second plate body according to the first and second embodiments of the present invention;
[0035] Figure 3 It is an axial view of the protrusion and the receiving groove in the first connection position according to the first and second embodiments of the present invention;
[0036] Figure 4 It is a side view of the protrusion and the receiving groove in the first connection position according to the first and second embodiments of the present invention;
[0037] Figure 5 It is an axial view of the protrusion and the receiving groove in the first and second embodiments of the present invention when they are in the second connection position;
[0038] Figure 6 It is a side view of the protrusion and the receiving groove in the first connection position according to the first and second embodiments of the present invention;
[0039] Figure 7 This is an axial view of the second embodiment of the present invention when the protrusion and the receiving groove are in the third connection position;
[0040] Figure 8 A side view of the second embodiment of the present invention when the protrusion and the receiving groove are in the third connection position;
[0041] Figure 9 This is a structural diagram of the first plate body of the third embodiment of the present invention;
[0042] Figure 10 This is a schematic structural diagram of the second plate body of the third embodiment of the present invention;
[0043] Figure 11 This is an axial view of the protrusion and the receiving groove in the second connection position according to the third embodiment of the present invention;
[0044] Figure 12 This is an axial view of the third embodiment of the present invention when the protrusion and the receiving groove are in the third connection position.
[0045] Explanation of the accompanying numbers: 100 first plate body, 110 accommodating groove, 120 first dovetail groove, 130 first roller, 131 first guide groove, 132 first avoidance groove, 140 third dovetail groove, 150 first transfer groove, 200 second plate body, 210 protrusion, 220 second dovetail groove, 230 second roller, 231 second guide groove, 232 second avoidance groove, 240 fourth dovetail groove, 250 second transfer groove, 260 second elastic stop protrusion, 300 guide column, 400 guide sleeve, 410 buffer member. DETAILED DESCRIPTION
[0046] The embodiments of the present invention are described in detail below:
[0047] Example 1
[0048] Reference Figures 1 to 6 , a first embodiment of the present invention provides a textile component, including a first plate body 100 and a second plate body 200 .
[0049] Reference Figure 1 The first plate 100 has a first surface, and the first plate 100 has a plurality of first dovetail grooves 120 extending along a first direction on the first surface. The plurality of first dovetail grooves 120 are arranged and distributed along a second direction. Specifically, Figure 1 In the embodiment, the first dovetail groove 120 extends along the X-axis direction, and a plurality of first dovetail grooves 120 are distributed along the Z-axis direction. Figure 3Each first dovetail groove 120 is rotatably connected to two first rollers 130. The outer periphery of the first roller 130 is provided with a first guide groove 131. The first guide groove 131 extends along the circumference of the first roller 130 to form an annular groove. After special treatment, the annular groove allows the yarn to stick to the annular groove. When the first roller 130 rotates, the yarn can be stretched and transmitted without damaging the yarn. Figure 1 The first plate 100 further defines a receiving groove 110 with its depth along a third direction. One or more receiving grooves 110 may be provided. For example, in this embodiment, two receiving grooves 110 are provided. The first and second directions are perpendicular to the third direction. More specifically, in the accompanying drawings, the first direction is the X-axis direction, the second direction is the Z-axis direction, and the third direction is the Y-axis direction.
[0050] Reference Figure 2 and Figure 5 The second plate 200 and the first plate 100 are arranged along the third direction. More specifically, the second plate 200 is located on the side of the first plate 100 away from the first surface. Figure 2 The second plate 200 has a second surface. A raised portion 210 is formed on the second surface of the second plate 200. The raised portion 210 defines a plurality of second dovetail grooves 220 extending in a first direction. The plurality of second dovetail grooves 220 are arranged along a second direction. Two second rollers 230 are rotatably inserted into each second dovetail groove 220. The outer periphery of each second roller 230 defines a second guide groove 231. The second guide groove 231 extends along the circumference of the second roller 230 to form an annular groove. The annular groove has been specially treated to allow the yarn to adhere to the groove. When the second roller 230 rotates, the yarn can be drafted and transported without damaging the yarn.
[0051] Further, refer to Figures 3 to 6 , there is a first connection position and a second connection position between the protrusion 210 and the accommodating groove 110:
[0052] Reference Figure 3 and Figure 4When the protrusion 210 and the receiving groove 110 are in the first connection position, the second roller 230 does not protrude from the first guide groove 131 of the first plate 100. At this time, the second roller 230 does not participate in the weaving operation, and the two first rollers 130 jointly realize the transmission of a group of yarns, which is a two-roller transmission. Specifically, the second roller 230 can be located in the receiving groove 110 but not protrude from the first guide groove 131, or it can be moved away from the receiving groove 110 in a direction away from the first surface. Preferably, in order to reduce the spatial volume of the textile assembly and maximize the number of production lines within a limited space, the second roller 230 is located in the receiving groove 110, ensuring that it does not protrude from the first guide groove 131 and does not interfere with the operation of the first roller 130. This design method can minimize the dimensional travel of the textile assembly in the third direction.
[0053] Reference Figure 5 and Figure 6 When the protrusion 210 and the accommodating groove 110 are in the second connection position, the second guide groove 231 of the second roller 230 protrudes from the first surface of the first plate 100, and the second guide groove 231 and the first guide groove 131 are staggered in the third direction. The two first rollers 130 jointly realize the transmission of one group of spinning threads, and the two second rollers 230 jointly realize the transmission of another group of spinning threads. The two first rollers 130 and the two second rollers 230 respectively constitute two groups of two-roller transmission. Specifically, as Figure 6 As shown, the second guide groove 231 can be lower than the first guide groove 131. In some other embodiments, the second guide groove 231 can also be higher than the first guide groove 131, as long as it can be ensured that the second guide groove 231 can protrude from the first surface to achieve spinning, and the first guide groove 131 and the second guide groove 231 are staggered in the third direction, that is, they are not located on the same height plane to avoid yarn interference. Preferably, in order to reduce the spatial volume of the textile component, the second guide groove 231 protrudes from the first surface of the first plate 100, but does not protrude from the first guide groove 131, that is, as shown in FIG. Figure 6 As shown in FIG, the second guide groove 231 is lower than the first guide groove 131. This design can minimize the dimensional travel of the textile component in the third direction.
[0054] The textile assembly is provided with a receiving groove 110 on the first plate 100 and a protrusion 210 on the second plate 200, and the receiving groove 110 and the protrusion 210 have different connection positions. Figure 3 and Figure 4As shown, for the production needs of a general number of production lines, the raised portion 210 and the accommodating groove 110 can be adjusted to the first connection position. At this time, two first rollers 130 can be used to realize the transmission of a group of spinning threads, and the multiple first dovetail grooves 120 can realize the production of multiple production lines to meet the production needs of a general number of production lines. For the production needs of more production lines, the raised portion 210 and the accommodating groove 110 can be adjusted to the second connection position. At this time, the two first rollers 130 can realize the transmission of a group of spinning threads, and the two second rollers 230 can realize the transmission of another group of spinning threads. The multiple first dovetail grooves 120 and the multiple second dovetail grooves 220 can respectively realize the transmission of the spinning threads of their respective production lines, thereby realizing the production of more production lines in a limited space. Therefore, in the actual production process, the connection position between the raised portion 210 and the accommodating groove 110 can be adjusted according to the actual production requirements to meet the production needs of general production and higher production, thereby improving the adaptability and production efficiency of the textile components.
[0055] Obviously, with Figures 3 to 6 For example, the structure Figure 3 and Figure 4 As shown in , the general number of production lines required is 5 production lines, and Figure 5 and Figure 6 As shown in , when the protrusion 210 and the accommodating groove 110 are adjusted to the second connection position, it can be seen that the number of production lines can be increased from 5 production lines to 10 production lines, so that the number of production lines can be increased according to the production demand within a limited space, thereby improving the adaptability and production efficiency of the textile assembly. It should be explained here that although the increase in production line demand can be met by adding a certain number of rollers within a limited space, this method is prone to yarn interference. If the yarn distribution is to be staggered, rollers with different guide groove positions need to be set, that is, rollers with multiple structures are required, which will increase the assembly complexity of the textile assembly and make it difficult to regulate the textile process according to actual production demand. In the production process with general production demand, the newly added rollers are also prone to yarn interference problems. The structure in this application can use rollers with the same guide groove position, without changing the roller structure or the connection relationship between the roller and the plate body, which can avoid increasing the assembly complexity of the textile assembly and can meet the production of different production line requirements. It is also more convenient and quick to regulate. The position of the protrusion 210 can be adjusted to achieve the position change of multiple second rollers 230, thereby achieving regulation. In addition, it is also necessary to explain that the materials and internal structures of the first roller 130 and the second roller 230, the structure and surface treatment of the guide grooves on the rollers, and the connection relationship between the rollers and the dovetail grooves can be referred to the existing technology. They are not the focus of this application and will not be elaborated here.
[0056] Furthermore, the textile assembly includes a driver (not shown in the drawings). The output end of the driver is fixedly connected to the second plate 200, and the protrusion 210 is movably inserted into the receiving groove 110. The driver is used to drive the protrusion 210 to move telescopically within the receiving groove 110 to adjust the connection position between the protrusion 210 and the receiving groove 110. The driver can be a cylinder or a motor, as long as it can drive the second plate 200 to move relative to the first plate 100, so that the protrusion 210 can move telescopically within the receiving groove 110. Furthermore, a guide post 300 is fixedly connected to the first plate 100, and a guide sleeve 400 is fixedly connected to the second plate 200. The guide sleeve 400 is slidably connected to the guide post 300. Multiple guide posts 300 and guide sleeves 400 can be provided to guide the movement of the first plate 100, so that the protrusion 210 can move accurately within the receiving groove 110. Furthermore, a buffer member 410 is provided on the end surface of the guide sleeve 400 adjacent to the first plate 100. The buffer member 410 prevents a rigid collision between the first plate 100 and the second plate 200, thereby preventing the first roller 130 on the first plate 100 and the second roller 230 on the second plate 200 from loosening. Specifically, the buffer member 410 comprises a plurality of elastic protrusions distributed along the circumference of the guide sleeve 400. The elastic protrusions are curved and gradually contact the first plate 100, thereby enhancing the buffering effect.
[0057] Furthermore, a first avoidance groove 132 is defined on the outer circumference of the first roller 130, forming an annular groove. A second avoidance groove 232 is defined on the outer circumference of the second roller 230, forming an annular groove. The first and second avoidance grooves 132 and 232 are used to provide yarn clearance, preventing the first roller 130 from interfering with the yarn on the second roller 230, or vice versa. For example, when the protrusion 210 and the accommodating groove 110 are in the second connection position, if the first guide groove 131 is positioned higher in the third direction, the first avoidance groove 132 can provide clearance for the yarn on the second roller 230. Similarly, if the second guide groove 231 is positioned higher in the third direction, the second avoidance groove 232 can provide clearance for the yarn on the first roller 130.
[0058] Specifically, the depth of the first avoidance groove 132 is greater than the depth of the first guide groove 131, and the depth of the second avoidance groove 232 is greater than the depth of the second guide groove 231. The first avoidance groove 132 and the second avoidance groove 232 do not require special treatment, as long as they can allow the yarn to pass through. Of course, to ensure that they do not interfere with the yarn, the width of the first avoidance groove 132 and the second avoidance groove 232 can be set slightly larger. This can prevent the first avoidance groove 132 and the second avoidance groove 232 from contacting the yarn. This not only avoids the impact on yarn quality caused by contact with the yarn, but also prevents the first roller 130 and the second roller 230 from being affected by yarn forces other than their own yarns, thereby avoiding affecting the yarn being drafted.
[0059] Example 2
[0060] Reference Figures 1 to 8 The second embodiment of the present invention provides a textile component, which differs from the textile component in the first embodiment in that:
[0061] The protrusion 210 and the receiving groove 110 have three connection positions:
[0062] Reference Figure 3 and Figure 4 When the protrusion 210 and the accommodating groove 110 are in the first connection position, the second roller 230 does not protrude from the first guide groove 131 of the first plate body 100. At this time, the second roller 230 does not participate in the textile work, and the two first rollers 130 jointly realize the transmission of a group of spinning threads, which is a two-roller transmission.
[0063] Reference Figure 5 and Figure 6 When the protrusion 210 and the accommodating groove 110 are in the second connection position, the second guide groove 231 of the second roller 230 protrudes from the first surface of the first plate body 100, and the second guide groove 231 and the first guide groove 131 are staggered in the first direction. The two first rollers 130 jointly realize the transmission of one group of spinning threads, and the two second rollers 230 jointly realize the transmission of another group of spinning threads. The two first rollers 130 and the two second rollers 230 respectively constitute two groups of two-roller transmissions.
[0064] Reference Figure 7 and Figure 8When the raised portion 210 and the accommodating groove 110 are in the third connection position, the second guide groove 231 is aligned with the first guide groove 131 in the third direction, and the two first rollers 130 and the two second rollers 230 jointly realize the transmission of a group of spinning threads, which is a four-roller transmission. When the actual production volume meets the output demand, the raised portion 210 and the accommodating groove 110 can be placed in the third connection position according to the spinning quality demand, and the two-roller transmission can be adjusted to a four-roller transmission, thereby adjusting the spinning quality. Therefore, the textile assembly in this embodiment can not only achieve output regulation of the spinning process, but also achieve quality regulation of the spinning process, realizing multiple functions with a single structure, and is a multifunctional textile assembly. Specifically, when the protrusion 210 and the accommodating groove 110 are in the third connection position, the first plate body 100 and the second plate body 200 are connected as a whole plate, and the multiple first dovetail grooves 120 correspond one-to-one with the multiple second dovetail grooves 220, combining into multiple longer dovetail grooves, thereby making the connection between the first plate body 100 and the second plate body 200 more stable and the overall structure more complete.
[0065] Example 3
[0066] Reference Figures 9 to 12 The third embodiment of the present invention provides a textile component, which differs from the textile components in the first and second embodiments in that:
[0067] Reference Figure 9 The first plate 100 is further provided with a third dovetail groove 140 extending along the second direction. A first transfer groove 150 is provided at the intersection of the third dovetail groove 140 and the first dovetail groove 120. The first roller 130 is rotatably inserted into the first transfer groove 150. Figure 10 The second plate 200 is further provided with a fourth dovetail groove 240 extending along the second direction. A second transfer groove 250 is provided at the intersection of the fourth dovetail groove 240 and the second dovetail groove 220 , and the second roller 230 is rotatably inserted into the second transfer groove 250 .
[0068] Similarly, the protrusion 210 and the receiving groove 110 of the textile component in this embodiment can also have three connection positions. When applied to production with general production requirements, the protrusion 210 and the receiving groove 110 can be in the first connection position. When applied to production with larger production requirements, such as Figure 11 As shown, the protrusion 210 and the receiving groove 110 can be placed in the second connection position, at which time the actual output can be doubled. Figure 12As shown, the protrusion 210 and the accommodating groove 110 can be placed in the third connection position, so that the yarn transmission is adjusted from a two-roller transmission to a four-roller transmission. In addition, the textile assembly in this embodiment has a third dovetail groove 140 and a fourth dovetail groove 240 respectively opened on the first plate 100 and the second plate 200, so that the position of the first roller 130 and the second roller 230 can be adjusted more flexibly, and the spacing and distribution angle between the two first rollers 130 / second rollers 230 can be adjusted according to actual production needs to adjust the spinning quality and avoid yarn interference as much as possible, thereby better adjusting the distribution of the first roller 130 and the second roller 230 under different production requirements.
[0069] In order to improve the rotational stability of the roller at the intersection of the dovetail grooves, a first transfer groove 150 is opened at the intersection of the third dovetail groove 140 and the first dovetail groove 120, and a second transfer groove 250 is opened at the intersection of the fourth dovetail groove 240 and the second dovetail groove 220. When the first roller 130 and the second roller 230 need to be adjusted to the positions of the first transfer groove 150 and the second transfer groove 250, the first roller 130 can be rotatably inserted into the first transfer groove 150, and the second roller 230 can be rotatably inserted into the second transfer groove 250, thereby improving the rotational stability of the first roller 130 and the second roller 230. Furthermore, the side walls of the first dovetail groove 120 and the third dovetail groove 140 close to the first transfer groove 150 are both provided with a first elastic stop protrusion; the side walls of the second dovetail groove 220 and the fourth dovetail groove 240 close to the second transfer groove 250 are both provided with a second elastic stop protrusion 260, which can prevent the first roller 130 / the second roller 230 from falling into the first transfer groove 150 / the second transfer groove 250 during normal rotation and transmission in the first dovetail groove 120 / the second dovetail groove 220. When the position of the first roller 130 / the second roller 230 needs to be adjusted, under the action of external force, the first roller 130 / the second roller 230 can pass over the first elastic stop protrusion / the second elastic stop protrusion 260, thereby entering the first transfer groove 150 / the second transfer groove 250. Further, referring to Figure 12 The first elastic stop protrusion and the second elastic stop protrusion 260 are both arc-shaped protrusions, and are connected to the side wall of the dovetail groove in an arc-shaped transition. When adjusting the position of the roller, the roller can slide over the elastic stop protrusion.
[0070] Example 4
[0071] Embodiment 4 of the present invention provides a textile device, including the above-mentioned textile component. Since the textile device adopts the above-mentioned textile component, it has at least all the beneficial effects that can be brought by the above-mentioned textile component.
[0072] Example 5
[0073] A fifth embodiment of the present invention provides a textile control method, which uses the above-mentioned textile component and includes the following steps:
[0074] Step S100: accepting total output demand;
[0075] Step S200: Determine the average daily output demand;
[0076] Step S300: adjusting the connection position between the protrusion 210 and the receiving groove 110 according to the daily production demand.
[0077] This textile control method adopts the above-mentioned textile components, and can adjust the connection position between the protrusion 210 and the accommodating groove 110 according to the actual production demand, so that the enterprise can adjust the production efficiency according to the actual production deadline and production demand, and can complete the production within the actual production deadline to avoid overdue, and will not cause product accumulation due to completing the production too quickly, thereby avoiding the products from occupying a large space and avoiding quality problems caused by the products being placed for too long.
[0078] Example 6
[0079] A sixth embodiment of the present invention provides a textile control method, which uses the above-mentioned textile component and includes the following steps:
[0080] Step S100: accepting total output demand;
[0081] Step S210: Calculate the remaining output as production progresses;
[0082] Step S220: Calculate the average daily production demand within the remaining production period based on the remaining production volume.
[0083] Step S310: Preset daily average production demand;
[0084] Step S320: If the actual average daily production demand is less than or equal to the preset average daily production demand, adjust the protrusion 210 and the receiving groove 110 to the first connection position; if the actual average daily production demand is greater than the preset average daily production demand, adjust the protrusion 210 and the receiving groove 110 to the second connection position;
[0085] Step S330: If the actual average daily output demand is less than or equal to the preset average daily output demand and the spinning quality needs to be adjusted, the protrusion 210 and the accommodating groove 110 are adjusted to the third connection position.
[0086] This textile control method adopts the above-mentioned textile components to be carried out, and can adjust the connection position between the protrusion 210 and the accommodating groove 110 according to the actual production demand, so that the enterprise can adjust the production efficiency according to the actual production deadline and production demand, and can complete the production within the actual production deadline to avoid overdue, and will not cause product accumulation due to completing the production too quickly. In the actual production process, due to the influence of various production factors, such as personnel changes, equipment failures or customers temporarily adjusting the delivery time, etc., the average daily output demand changes. Therefore, this control method calculates the remaining output size and the average daily output demand within the remaining production period according to the actual production period, and adjusts the connection position between the protrusion 210 and the accommodating groove 110. In addition, this control method can also adjust the protrusion 210 and the accommodating groove 110 to a third connection position according to production quality requirements, thereby achieving the adjustment of spinning quality.
[0087] It should be noted that in the description of the present invention, if there are any descriptions of directions, such as up, down, front, back, left, right, etc., the directions or positional relationships indicated are all based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed or operate in a specific direction, and cannot be understood as a limitation on the present invention.
[0088] In the description of the present invention, "several" means one or more, "more" means two or more, "greater than," "less than," and "exceed" are understood to exclude the number itself, while "above," "below," and "within" are understood to include the number itself. If there are descriptions of "first," "second," and so on, these are used solely to distinguish technical features and are not to be construed as indicating or implying relative importance, or implicitly specifying the number of the indicated technical features, or implicitly specifying the order of the indicated technical features.
[0089] In the description of the present invention, unless otherwise clearly defined, terms such as setting, installing, and connecting should be understood in a broad sense, and technicians in the relevant technical field can reasonably determine the specific meanings of the above terms in the present invention based on the specific content of the technical solution.
[0090] The above embodiments are only preferred embodiments of the present invention and cannot be used to limit the scope of protection of the present invention. Any non-substantial changes and replacements made by technicians in this field on the basis of the present invention fall within the scope of protection required by the present invention.
Claims
1. A textile component, characterized in that It comprises a first plate body (100) and a second plate body (200); The first plate body (100) has a first surface, and the first plate body (100) is provided with a plurality of first dovetail grooves (120) extending along a first direction on the first surface, and the plurality of first dovetail grooves (120) are arranged and distributed along a second direction, and two first rollers (130) are rotatably inserted into each of the first dovetail grooves (120), and a first guide groove (131) is provided on the outer periphery of the first roller (130), and the first plate body (100) is further provided with a receiving groove (110) with a groove depth direction along a third direction, wherein the first direction and the second direction are perpendicular to the third direction in pairs; The second plate body (200) and the first plate body (100) are arranged and distributed along a third direction, the second plate body (200) is provided with a protrusion (210), the protrusion (210) is provided with a plurality of second dovetail grooves (220) extending along the first direction, the plurality of second dovetail grooves (220) are arranged and distributed along the second direction, two second rollers (230) are rotatably inserted into each of the second dovetail grooves (220), and the outer periphery of the second roller (230) is provided with a second guide groove (231); A first connection position and a second connection position are provided between the protrusion (210) and the receiving groove (110): When the protrusion (210) and the accommodating groove (110) are in a first connection position, the second roller (230) does not protrude from the first guide groove (131) of the first plate (100), and the two first rollers (130) jointly realize the transmission of a group of yarns; When the protrusion (210) and the accommodating groove (110) are in the second connection position, the second guide groove (231) of the second roller (230) protrudes from the first surface of the first plate body (100), and the second guide groove (231) and the first guide groove (131) are staggered in the third direction, the two first rollers (130) jointly realize the transmission of one group of spinning threads, and the two second rollers (230) jointly realize the transmission of another group of spinning threads.
2. The textile component according to claim 1, characterized in that There is also a third connection position between the protrusion (210) and the accommodating groove (110): When the protrusion (210) and the accommodating groove (110) are in a third connection position, the second guide groove (231) is flush with the first guide groove (131) in the third direction, and the two first rollers (130) and the two second rollers (230) jointly realize the transmission of a group of spinning threads.
3. The textile component according to claim 1 or 2, characterized in that It also includes a driving member, wherein the output end of the driving member is fixedly connected to the second plate body (200), and the protrusion (210) is movably inserted into the accommodating groove (110); The driving member is used to drive the protrusion (210) to telescopically move within the accommodating groove (110) so as to adjust the connection position between the protrusion (210) and the accommodating groove (110).
4. The textile component according to claim 3, characterized in that A guide post (300) is fixedly connected to the first plate body (100), and a guide sleeve (400) is fixedly connected to the second plate body (200). The guide sleeve (400) is slidably sleeved on the guide post (300).
5. The textile component according to claim 4, characterized in that A buffer member (410) is provided on the end surface of the guide sleeve (400) close to the first plate body (100).
6. The textile component according to claim 5, characterized in that The buffer member (410) is a plurality of elastic protrusions distributed along the circumference of the guide sleeve (400).
7. The textile component according to claim 1 or 2, characterized in that A first avoidance groove (132) is provided on the outer periphery of the first roller (130), and a second avoidance groove (232) is provided on the outer periphery of the second roller (230). The first avoidance groove (132) and the second avoidance groove (232) are used for avoiding spinning.
8. The textile component according to claim 7, characterized in that The groove depth of the first avoidance groove (132) is greater than the groove depth of the first guide groove (131), and the groove depth of the second avoidance groove (232) is greater than the groove depth of the second guide groove (231).
9. The textile component according to claim 1 or 2, characterized in that The first plate (100) is further provided with a third dovetail groove (140) extending along the second direction, a first transfer groove (150) is provided at the intersection of the third dovetail groove (140) and the first dovetail groove (120), and the first roller (130) is rotatably inserted into the first transfer groove (150); The second plate body (200) is further provided with a fourth dovetail groove (240) extending along the second direction, and a second transfer groove (250) is provided at the intersection of the fourth dovetail groove (240) and the second dovetail groove (220), and the second roller (230) is rotatably inserted into the second transfer groove (250).
10. The textile component according to claim 9, characterized in that The side walls of the first dovetail groove (120) and the third dovetail groove (140) close to the first adapter groove (150) are both provided with a first elastic stop protrusion; The side walls of the second dovetail groove (220) and the fourth dovetail groove (240) close to the second transfer groove (250) are both provided with a second elastic stop protrusion (260).
11. A textile equipment, characterized in that: Comprising the textile component according to any one of claims 1-10.
12. A textile control method, characterized in that: The method of controlling the textile assembly according to any one of claims 1 to 10 comprises the following steps: Step S100: accepting total output demand; Step S200: Determine the average daily output demand; Step S300: adjusting the connection position between the protruding portion (210) and the receiving groove (110) according to the daily production demand.
13. The textile control method according to claim 12, characterized in that: Step S200 includes the following steps: Step S210: Calculate the remaining output as production progresses; Step S220: Calculate the average daily output demand within the remaining production period based on the remaining output.
14. The textile control method according to claim 12, characterized in that: Step S300 includes the following steps: Step S310: Preset daily average production demand; Step S320: If the actual average daily production demand is less than or equal to the preset average daily production demand, adjust the protrusion (210) and the accommodating groove (110) to the first connection position; if the actual average daily production demand is greater than the preset average daily production demand, adjust the protrusion (210) and the accommodating groove (110) to the second connection position.
15. The textile control method according to claim 14, characterized in that: Step S300 also includes the following steps: Step S330: If the actual average daily output demand is less than or equal to the preset average daily output demand, and the spinning quality needs to be adjusted, the protrusion (210) and the accommodating groove (110) are adjusted to a third connection position.
Citation Information
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