Highly antibacterial cloth intelligent equipment for producing antibacterial socks and system of highly antibacterial cloth intelligent equipment
By designing intelligent devices for turning socks inside out and putting on socks, the automatic turning of socks has been achieved, solving the problems of high labor intensity and low efficiency of manual turning in existing technologies, and improving the efficiency of turning socks.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-30
- Publication Date
- 2026-04-14
AI Technical Summary
In existing technologies, the process of turning socks inside out still requires manual operation, resulting in high labor intensity and low efficiency.
Design an intelligent device that includes a sock-turning tube and a sock-fitting assembly. The device automatically fits the sock cuff onto the sock-turning tube through rotation and downward movement, and uses a fan to turn the sock inside out. Combined with a transmission assembly and a lifting block, the device achieves automatic sock turning.
It reduces the labor intensity of workers, improves the efficiency and automation of sock turning, and enhances the efficiency of sock turning by avoiding manual operation during the turning process.
Smart Images

Figure CN121853344A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of sock manufacturing technology, specifically to an intelligent device and system for producing high antibacterial fabric for antibacterial socks. Background Technology
[0002] Currently, after socks are knitted on a sock machine and the toes are sewn together by a sewing machine, all socks are inside out. These socks must be turned inside out so that the seams are facing inwards before they can proceed to the next process. At present, all cotton socks in domestic sock factories are turned inside out manually, which is both time-consuming and labor-intensive.
[0003] For example, Chinese patent CN112030513B, entitled "A Sock Turning Device for Sock Processing and Production," includes a base with a vertical cylinder fixedly connected to its top. The vertical cylinder is a hollow cylinder, and a sock loop is fixedly connected to its top. An electric push rod is positioned above the sock loop, vertically oriented with its output end facing downwards and aligned with the center of the sock loop. In use, the sock turning device first opens the sock's opening, then places it onto the sock loop. The opening is then pulled downwards until it is below the permanent magnet. The drive motor is then activated, causing a lead screw to rotate. The lead screw moves a copper sleeve downwards, which, through a connecting rod, moves a mounting plate downwards. The mounting plate then moves an electromagnet downwards until it contacts the permanent magnet. This allows for convenient turning of longer and thicker socks.
[0004] The shortcomings of existing technologies are as follows: For example, the aforementioned patent, although it facilitates the operation of turning socks inside out, still requires manual operation during the process, which increases the labor intensity of workers, and the efficiency of turning socks inside out needs to be improved. Summary of the Invention
[0005] The purpose of this invention is to provide an intelligent device and system for producing high antibacterial fabrics for antibacterial socks, in order to overcome the above-mentioned shortcomings in the prior art.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] A smart device for producing highly antibacterial fabric for antibacterial socks includes a base on which a sock-turning tube is fixedly mounted;
[0008] A sock-covering assembly for putting socks over a sock cuff;
[0009] The sock assembly has a rotational stroke and a downward stroke. The rotational stroke is used to open the sock cuff, and the downward stroke is used to put the sock cuff onto the sock tube.
[0010] Preferably, the stocking assembly includes a square tube and a hollow tube, with a sliding rod slidably disposed on the square tube and the sliding rod being rotatably connected to the hollow tube.
[0011] Preferably, a plurality of lifting blocks are slidably arranged on the sock-turning tube, one of the lifting blocks is fixedly provided with a threaded block, and a column is fixedly provided on the base, and the threaded block is slidably connected to the column;
[0012] A connecting rope is provided between the hollow tube and the threaded block, and the two ends of the connecting rope are fixedly connected to the hollow tube and the threaded block respectively.
[0013] Preferably, the sliding rod is slidably provided with a sliding column, the sliding column is slidably inserted into the square tube, a protrusion is fixedly provided on the hollow tube, an arc-shaped groove is opened on the sliding column, and the protrusion is provided in the arc-shaped groove. A fourth spring is provided between the sliding column and the square tube, and the two ends of the fourth spring are fixedly connected to the sliding column and the sliding rod respectively.
[0014] Preferably, a second spring is provided between the sliding rod and the square tube, and the two ends of the second spring are fixedly connected to the sliding rod and the square tube respectively;
[0015] A push block is slidably mounted on the square tube, and a third spring is provided between the push block and the square tube, with both ends of the third spring fixedly connected to the push block and the square tube respectively.
[0016] Preferably, the hollow tube is further provided with an opening component and a transmission component, and the transmission component is used to drive the opening component;
[0017] The transmission assembly includes a rotating rod rotatably mounted on a hollow tube, a second transmission gear fixedly mounted on the rotating rod, a first transmission gear fixedly mounted on the square tube, and the first transmission gear meshing with the second transmission gear for transmission. A third gear is rotatably mounted on the hollow tube, and the third gear and the rotating rod are transmitted through a universal joint.
[0018] Preferably, the opening assembly includes a rack slidably disposed on a hollow tube, and the rack meshes with a third gear for transmission. Two support rods are rotatably disposed on the rack, and a torsion spring is disposed between the support rods and the rack. An inclined block is fixedly disposed on the hollow tube, and the inclined block contacts the support rods. A support block is fixedly disposed on the support rods.
[0019] Preferably, a connecting ring is fixedly provided between adjacent lifting blocks, and multiple sliding grooves are provided on the sock-turning tube, with each sliding groove corresponding to a multiple connecting ring and slidably connected.
[0020] Preferably, the lifting block is slidably provided with an anti-slip block, and a plurality of first springs are provided between the anti-slip block and the lifting block, and the two ends of the first springs are respectively fixedly connected to the anti-slip block and the lifting block. Both ends of the sock-turning tube are provided with a plurality of slots, and the plurality of slots are adapted to the plurality of anti-slip blocks.
[0021] A smart system for producing high-antimicrobial fabric for antimicrobial socks includes the aforementioned smart equipment for producing high-antimicrobial fabric for antimicrobial socks.
[0022] In the above technical solution, the intelligent equipment and system for producing high antibacterial fabric for antibacterial socks provided by the present invention have the following beneficial effects:
[0023] 1. In this embodiment, by setting a sock-turning tube on the base and setting a sock-fitting assembly, the sock-fitting assembly moves the sock above the sock-turning tube through a rotation stroke, and then puts the sock cuff on the sock-turning tube through a downward stroke. The sock is then turned inside out by the sock-turning tube, avoiding manual labor, reducing the labor intensity of workers, and improving the efficiency of sock turning.
[0024] It should be understood that the foregoing general description and the following detailed description are exemplary and illustrative only, and are not intended to limit this disclosure.
[0025] This application provides an overview of various implementations or examples of the technology described in this disclosure, and is not a full disclosure of the entire scope or all features of the disclosed technology. Attached Figure Description
[0026] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.
[0027] Figure 1 This is a schematic diagram of the overall structure provided for an embodiment of the present invention;
[0028] Figure 2 This is a cross-sectional view of the overall structure provided in an embodiment of the present invention;
[0029] Figure 3 This is an enlarged view of point A provided in an embodiment of the present invention;
[0030] Figure 4 This is an enlarged view of section B provided in an embodiment of the present invention;
[0031] Figure 5 This is a partial sectional view of a hollow tube provided in an embodiment of the present invention;
[0032] Figure 6This is a schematic diagram of the sock-turning tube structure provided in an embodiment of the present invention;
[0033] Figure 7 This is a schematic diagram of the lifting block structure provided in an embodiment of the present invention;
[0034] Figure 8 A cross-sectional view of the lifting block provided in an embodiment of the present invention;
[0035] Figure 9 This is a schematic diagram of the transmission assembly and opening assembly provided in an embodiment of the present invention;
[0036] Figure 10 This is a schematic diagram of the opening component structure provided in an embodiment of the present invention.
[0037] Explanation of reference numerals in the attached figures:
[0038] 1. Sock-turning tube; 11. Slide groove; 12. Card slot; 13. Ball bearing; 2. Lifting block; 21. Anti-slip block; 22. Stop block; 23. First spring; 24. Connecting ring; 25. Threaded block; 3. Column; 31. Drive motor; 32. Screw; 33. Protective tube; 4. Square tube; 41. Sliding rod; 42. Second spring; 43. Push block; 44. Third spring; 45. Sliding column; 46. Arc groove; 47. Fourth spring; 48. First transmission gear; 5. Hollow tube; 51. Rotating rod; 52. Second transmission gear; 53. Protrusion; 54. Universal joint; 55. Third gear; 56. Inclined block; 6. Rack; 61. Support rod; 62. Support block; 7. Connecting rope; 8. Base. Detailed Implementation
[0039] To make the objectives, technical solutions, and advantages of the embodiments of this disclosure clearer, the technical solutions of the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this disclosure. All other embodiments obtained by those skilled in the art based on the described embodiments of this disclosure without creative effort are within the scope of protection of this disclosure.
[0040] Please refer to 1-10. A smart device for producing high-antibacterial fabric for antibacterial socks includes a base 8, on which a sock-turning tube 1 is fixedly mounted; a sock-fitting assembly for fitting the sock onto the sock-turning tube 1; the sock-fitting assembly has a rotational stroke and a downward stroke. The rotational stroke is used to open the sock opening, and the downward stroke is used to fit the sock opening onto the sock-turning tube 1. In this embodiment, by setting the sock-turning tube 1 on the base 8 and the sock-fitting assembly, the sock-fitting assembly moves the sock above the sock-turning tube 1 through the rotational stroke and fits the sock opening onto the sock-turning tube 1 through the downward stroke. Then, the sock is turned inside out by the sock-turning tube 1, avoiding manual labor and reducing workload. To reduce the labor intensity of human beings and improve the efficiency of turning socks, it should be noted that a fan is fixedly installed on the base 8. The base 8 is connected to the sock-turning tube 1, and a storage box is installed inside the base 8. After the socks are put on the sock-turning tube 1, the fan is started to suck the socks into the sock-turning tube 1 by suction. During the suction process, the socks are turned over and then fall into the storage box. At the same time, multiple ball bearings 13 are embedded in the sock-turning tube 1 to reduce the friction between the socks and the sock-turning tube 1 when the fan sucks the socks into the sock-turning tube 1. The fan provided in this embodiment is the prior art, and its working principle and operation method are common knowledge and common technical means known to those skilled in the art.
[0041] Specifically, the sock assembly includes a square tube 4 and a hollow tube 5. A sliding rod 41 is slidably disposed on the square tube 4, and the sliding rod 41 is rotatably connected to the hollow tube 5. In this embodiment, by setting the square tube 4 and the hollow tube 5, the hollow tube 5 is first rotated upward to move the sock opening above the sock tube 1. Then, by making the hollow tube 5 and the sliding rod 41 slide downward at the same time, the sock can be put on the sock tube 1.
[0042] In a further embodiment of the present invention, a plurality of lifting blocks 2 are slidably arranged on the sock-turning tube 1, one of which is fixedly provided with a threaded block 25, and a column 3 is fixedly provided on the base 8, with the threaded block 25 slidably connected to the column 3; a connecting rope 7 is provided between the hollow tube 5 and the threaded block 25, and the two ends of the connecting rope 7 are respectively fixedly connected to the hollow tube 5 and the threaded block 25. In this embodiment, by slidably arranging the lifting blocks 2 on the sock-turning tube 1, after the sock opening is put on the sock-turning tube 1, the sock can be completely put on the sock-turning tube 1 by sliding the lifting blocks 2, making the sock-turning operation more stable and preventing the sock from coming out. In cases where the tube is not fully flipped, the hollow tube 5 and the threaded block 25 are connected by a connecting rope 7. This allows the hollow tube 5 to be driven and controlled by the connecting rope 7 while the threaded block 25 is being raised and lowered. In this embodiment, a drive motor 31 is fixedly installed on the column 3, and a screw 32 is fixedly sleeved on the motor shaft of the drive motor 31. The screw 32 is threadedly connected to the threaded block 25, so that the raising and lowering of the threaded block 25 can be controlled by rotating the screw 32 through the drive motor 31. Furthermore, a protective tube 33 is installed between the column 3 and the square tube 4, through which the connecting rope 7 passes, thus protecting the connecting rope 7.
[0043] Furthermore, a sliding post 45 is slidably provided on the sliding rod 41. The sliding post 45 is slidably inserted into the square tube 4. A protrusion 53 is fixedly provided on the hollow tube 5. An arc-shaped groove 46 is opened on the sliding post 45, and the protrusion 53 is disposed in the arc-shaped groove 46. A fourth spring 47 is provided between the sliding post 45 and the square tube 4, and the two ends of the fourth spring 47 are fixedly connected to the sliding post 45 and the sliding rod 41 respectively. In this embodiment, by providing a sliding post 45 on the sliding rod 41 and fixing the protrusion 53 on the hollow tube 5 in the sliding groove on the sliding post 45, the sliding post 45 is inserted into the square tube 4 during the process of the hollow rod rotating upward to move the sock opening above the sock tube 1. This ensures that the hollow tube 5 and the sliding rod 41 will not be prematurely connected by the connecting rope before the sock opening moves above the sock tube 1. The downward pull of the connecting rope 7 allows the sock opening to move better above the sock tube 1. Furthermore, the rotation of the hollow rod causes the protrusion 53 to rotate. When the protrusion 53 rotates, it engages with the arc-shaped groove 46 on the sliding post 45. The sliding post 45 slides and compresses the fourth spring 47 until the hollow tube 5 rotates to a vertical position. At this point, with the cooperation of the protrusion 53 and the arc-shaped groove 46, the sliding post 45 slides to disengage from the square tube 4. The connecting rope 7 continues to apply a pulling force, causing the hollow tube 5 and the sliding rod 41 to slide downwards simultaneously, thus placing the sock opening onto the sock tube 1. The function of the fourth spring 47 is to apply a rebound force to the sliding post 45 when the hollow tube 5 returns to its original position, reducing the friction between the protrusion 53 and the arc-shaped groove 46, allowing the sliding post 45 to be more smoothly inserted into the square tube 4.
[0044] Furthermore, a second spring 42 is provided between the sliding rod 41 and the square tube 4, with both ends of the second spring 42 fixedly connected to the sliding rod 41 and the square tube 4 respectively; a push block 43 is slidably provided on the square tube 4, and a third spring 44 is provided between the push block 43 and the square tube 4, with both ends of the third spring 44 fixedly connected to the push block 43 and the square tube 4 respectively. In this embodiment, by providing a second spring 42 between the sliding rod 41 and the square tube 4, when the sliding rod 41 slides downward, it compresses the second spring 42. When the sliding rod 41 is reset, the threaded block 25 slides down, the connecting rope 7 is released, and the second spring... Under the action of 42, the sliding rod 41 slides upward to reset. A push block 43 is slidably set on the square tube 4, and a third spring 44 is set between the push block 43 and the square tube 4. An inclined surface is set on the push block 43 so that when the hollow tube 5 is reset upward, it can press the push block 43 through the inclined surface, so that the third spring 44 is squeezed. After the hollow tube 5 is reset to the vertical state, when the sliding column 45 moves to the insertion hole position on the square tube 4, the hollow tube 5 can rotate to reset. At this time, under the action of the rebound force of the third spring 44, the push block 43 moves the hollow tube 5 to tilt it, and then resets it by its own weight.
[0045] In a further embodiment of the present invention, the hollow tube 5 is further provided with an opening component and a transmission component, and the transmission component is used to drive the opening component; the transmission component includes a rotating rod 51 rotatably disposed on the hollow tube 5, a second transmission gear 52 fixedly disposed on the rotating rod 51, a first transmission gear 48 fixedly disposed on the square tube 4, and the first transmission gear 48 meshes with the second transmission gear 52 for transmission; a third gear 55 is rotatably disposed on the hollow tube 5, and the third gear 55 is transmitted to the rotating rod 51 through a universal joint 54. In this embodiment, by setting a transmission component and an opening component on the hollow tube 5, the hollow tube 5 can open the sock opening when it rotates upward. During the upward rotation of the hollow tube 5, the second transmission gear 52 set on the rotating rod 51 meshes with the first transmission gear 48 set on the square tube 4, so that the rotating rod 51 rotates during the upward rotation of the hollow tube 5, and the third gear 55 rotates through the universal joint 54, driving the opening component to open and open the sock opening so that it can be put on the sock sleeve 1.
[0046] In the embodiments provided by the present invention, the opening component includes a rack 6 slidably disposed on a hollow tube 5, and the rack 6 meshes with a third gear 55 for transmission. Two support rods 61 are rotatably disposed on the rack 6, and a torsion spring is disposed between the support rods 61 and the rack 6. An inclined block 56 is fixedly disposed on the hollow tube 5, and the inclined block 56 contacts the support rods 61. A support block 62 is fixedly disposed on the support rods 61. In this embodiment, through the meshing of the third gear 55 and the rack 6, the rack 6 slides when the third gear 55 rotates. When the rack 6 slides, it drives the support rods 61, causing the support rods 61 to abut against the inclined block 56. Under the action of the inclined block 56, the support rods 61 open, and the support rods 61 are opened to open the sock opening, so that it can be put on the sock sleeve 1.
[0047] Specifically, a connecting ring 24 is fixedly provided between adjacent lifting blocks 2, and multiple sliding grooves 11 are provided on the sock-turning tube 1. The multiple sliding grooves 11 correspond one-to-one with the multiple connecting rings 24 and are slidably connected. In this embodiment, a connecting ring is provided between the lifting blocks 2, so that the connecting rings 24 are slidably connected to the sliding grooves 11 on the sock-turning tube 1. When the lifting blocks 2 slide up and down, the lifting blocks 2 can slide uniformly due to the connection of the connecting rings 24. Furthermore, the connecting sliding is set in the sliding grooves 11, making the lifting blocks 2 more stable when sliding.
[0048] In a further embodiment of the present invention, an anti-slip block 21 is slidably mounted on the lifting block 2, and multiple first springs 23 are provided between the anti-slip block 21 and the lifting block 2. The two ends of each first spring 23 are fixedly connected to the anti-slip block 21 and the lifting block 2, respectively. Multiple slots 12 are provided at both ends of the sock-turning tube 1, and these slots 12 are adapted to the multiple anti-slip blocks 21. In this embodiment, by slidably mounting the anti-slip block 21 on the lifting block 2, when the lifting block 2 slides downwards to completely cover the sock on the sock-turning tube 1, the anti-slip block 21 increases friction, thereby improving the sock-turning effect. Furthermore, anti-slip features are provided at both the top and bottom ends of the sock-turning tube 1. When the lifting block 2 is at the top of the sock-turning tube 1, the anti-sliding block 21 engages with the slot 12 under the action of the first spring 23 and is retracted into the lifting block 2. The sock opening is covered on the lifting block 2. When the lifting block 2 moves downward, the anti-sliding block 21 disengages from the slot 12, extends out to contact the sock, increases the friction with the sock, and squeezes the first spring 23. Then it slides downward to cover the sock on the sock-turning tube 1. When the lifting block 2 slides to the bottom, it engages with the slot 12 below, and the anti-sliding block 21 is retracted into the lifting block 2 and disengages from the sock. At this time, when the fan works to suck up the sock, the excessive friction damages the sock.
[0049] This application also provides a smart system for producing high antibacterial fabric for antibacterial socks, including the aforementioned smart equipment for producing high antibacterial fabric for antibacterial socks. Therefore, the smart system for producing high antibacterial fabric for antibacterial socks should also have the effects brought about by the aforementioned smart equipment for producing high antibacterial fabric for antibacterial socks, which will not be elaborated here.
[0050] Working principle: During the sock-turning operation, it is coordinated with the sock conveying device so that the sock opening faces the direction of the equipment and is conveyed to the support block 62. Then, the drive motor 31 starts, causing the screw 32 to rotate. At this time, the threaded block 25 is located at the bottom of the screw 32 and rises when the screw 32 rotates. The hollow tube 5 can be pulled by the connecting rope 7. At this time, because the sliding column 45 is inserted into the square tube 4, the sliding rod 41 will not slide. The hollow tube 5 is rotatably connected to the sliding rod 41. Therefore, under the action of the pulling force of the connecting rope 7, the hollow tube 5 rotates upward. When the hollow tube 5 rotates upward, the second transmission gear 52 rotates under the action of the first transmission gear 48, and drives the rotating rod 51 to rotate. When the rotating rod 51 rotates, it drives the third gear through the universal joint 54. As wheel 55 rotates, rack 6 slides. Simultaneously, rack 6 slides, driving support rod 61 to slide. During this sliding process, support rod 61, under the action of inclined block 56, overcomes the force of the torsion spring and opens. The opening of support rod 61 causes support block 62 to open the sock opening, causing the sock opening to rotate upwards. Simultaneously, before the hollow rod rotates to a vertical position, the second transmission gear 52 disengages from the first transmission gear 48, preventing the second transmission gear 52 from being obstructed by the first transmission gear 48 and affecting the downward movement of the hollow tube 5. At the same time, as the hollow tube 5 rotates, the protrusion 53 fixedly installed on the hollow tube 5 rotates. Through the cooperation of protrusion 53 and arc groove 46, the sliding column 45 slides and disengages from the square tube 4, compressing the fourth spring 47. At this time, the hollow tube 5 rotates... Move to a vertical position and press the push block 43 to compress the third spring 44. At this time, the connecting rope 7 continues to pull the hollow tube 5, causing the hollow tube 5 to slide downwards inside the square tube 4, and the sliding rod 41 moves downwards accordingly, compressing the second spring 42. This completes the downward movement of the hollow tube 5. As the connecting rope 7 pulls the hollow tube 5 with the rising threaded block 25, the threaded block 25 slides upwards with multiple lifting blocks 2. When the lifting block 2 slides to the top, the anti-sliding block 21 engages with the slot 12 under the action of the first spring 23 and slides into the lifting block 2. When the lifting block 2 rises to the top of the sock tube 1, the hollow rod, with the sock opening opened by the support block 62, slides down to the position corresponding to the lifting block 2. Then the sock opening is stopped by the stop block 22. Under the action of the lifting block 25, the sock detaches from the support block 62 and is fitted onto the outside of the lifting block 2 and the sock-turning tube 1. Then, the drive motor 31 reverses, causing the threaded block 25 to lower the lifting block 2. As the lifting block 2 descends, the anti-sliding block 21 disengages from the slot 12 under the action of the inclined surface of the slot 12 and the anti-sliding block 21, squeezing the first spring 23. The anti-sliding block 21 extends out of the lifting block 2 and rubs against the sock opening, causing the sock opening to move downward, i.e., putting the sock onto the sock-turning tube 1, until the lifting block 2 moves to the bottom of the sock-turning tube 1. At this point, the anti-sliding block 21 on the lifting block 2 engages with the slot 12 below the sock-turning tube 1 under the action of the first spring 23. At this time, the anti-sliding block 21 disengages from the sock, and then the fan on the base 8 starts to pull away the sock.After the sock is turned inside out, it falls from the sock-turning tube 1 to the base 8 for storage. When the drive motor 31 reverses and drives the threaded block 25 to slide the lifting block 2 downward, the threaded block 25 loosens the connecting rope 7. Under the action of the second spring 42, the sliding rod 41 and the hollow rod slide upward and reset. After the sliding rod 41 is fully reset, the hollow rod tilts under the rebound force of the third spring 44. When the hollow rod tilts, the sliding column 45 slides and inserts into the square tube 4 through the cooperation of the protrusion 53 and the arc groove 46. Then, the second transmission gear 52 meshes with the first transmission gear 48, and the hollow tube 5 resets by its own weight, driving the opening component to reset as well. Its reset principle is the same as the opening principle described above. After all resets are complete, the second sock can be turned inside out.
[0051] The foregoing has only described certain exemplary embodiments of the present invention by way of illustration. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the foregoing drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. A smart device for producing highly antibacterial fabric for antibacterial socks, comprising a base (8), characterized in that, A sock-turning tube (1) is fixedly installed on the base (8); A sock-covering assembly for covering socks onto a folded-up sock tube (1); The sock assembly has a rotation stroke and a downward stroke. The rotation stroke is used to open the sock opening, and the downward stroke is used to put the sock opening onto the sock tube (1).
2. The intelligent equipment for producing high antibacterial fabric for antibacterial socks according to claim 1, characterized in that, The sock assembly includes a square tube (4) and a hollow tube (5). A sliding rod (41) is slidably disposed on the square tube (4), and the sliding rod (41) is rotatably connected to the hollow tube (5).
3. The intelligent equipment for producing high antibacterial fabric for antibacterial socks according to claim 2, characterized in that, Multiple lifting blocks (2) are slidably arranged on the sock roll (1), and a threaded block (25) is fixedly arranged on one of the lifting blocks (2). A column (3) is fixedly arranged on the base (8), and the threaded block (25) is slidably connected to the column (3). A connecting rope (7) is provided between the hollow tube (5) and the threaded block (25), and the two ends of the connecting rope (7) are fixedly connected to the hollow tube (5) and the threaded block (25) respectively.
4. The intelligent equipment for producing high antibacterial fabric for antibacterial socks according to claim 2, characterized in that, A sliding post (45) is slidably disposed on the sliding rod (41). The sliding post (45) is slidably inserted into the square tube (4). A protrusion (53) is fixedly disposed on the hollow tube (5). An arc groove (46) is opened on the sliding post (45), and the protrusion (53) is disposed in the arc groove (46). A fourth spring (47) is disposed between the sliding post (45) and the square tube (4), and the two ends of the fourth spring (47) are fixedly connected to the sliding post (45) and the sliding rod (41) respectively.
5. The intelligent equipment for producing high antibacterial fabric for antibacterial socks according to claim 4, characterized in that, A second spring (42) is provided between the sliding rod (41) and the square tube (4), and the two ends of the second spring (42) are fixedly connected to the sliding rod (41) and the square tube (4) respectively. A push block (43) is slidably disposed on the square tube (4), and a third spring (44) is disposed between the push block (43) and the square tube (4), and the two ends of the third spring (44) are fixedly connected to the push block (43) and the square tube (4) respectively.
6. The intelligent equipment for producing high antibacterial fabric for antibacterial socks according to claim 5, characterized in that, The hollow tube (5) is also provided with an opening component and a transmission component, and the transmission component is used to drive the opening component; The transmission assembly includes a rotating rod (51) rotatably mounted on a hollow tube (5), a second transmission gear (52) fixedly mounted on the rotating rod (51), a first transmission gear (48) fixedly mounted on the square tube (4), and the first transmission gear (48) meshes with the second transmission gear (52) for transmission. A third gear (55) is rotatably mounted on the hollow tube (5), and the third gear (55) is transmitted to the rotating rod (51) via a universal joint (54).
7. The intelligent equipment for producing high antibacterial fabric for antibacterial socks according to claim 6, characterized in that, The opening assembly includes a rack (6) slidably disposed on a hollow tube (5), and the rack (6) meshes with a third gear (55) for transmission. Two support rods (61) are rotatably disposed on the rack (6), and a torsion spring is disposed between the support rods (61) and the rack (6). An inclined block (56) is fixedly disposed on the hollow tube (5), and the inclined block (56) contacts the support rods (61). A support block (62) is fixedly disposed on the support rods (61).
8. The intelligent equipment for producing high antibacterial fabric for antibacterial socks according to claim 3, characterized in that, A connecting ring (24) is fixedly provided between adjacent lifting blocks (2), and multiple sliding grooves (11) are provided on the sock-turning tube (1). The multiple sliding grooves (11) correspond one-to-one with the multiple connecting rings (24) and are slidably connected.
9. The intelligent equipment for producing high antibacterial fabric for antibacterial socks according to claim 3, characterized in that, The lifting block (2) is slidably provided with anti-slip block (21), and a plurality of first springs (23) are provided between the anti-slip block (21) and the lifting block (2). The two ends of the first springs (23) are fixedly connected to the anti-slip block (21) and the lifting block (2) respectively. The two ends of the sock tube (1) are provided with a plurality of slots (12), and the plurality of slots (12) are adapted to the plurality of anti-slip blocks (21).
10. A smart system for producing highly antibacterial fabric for antibacterial socks, characterized in that, Including the intelligent equipment for producing highly antibacterial fabrics for antibacterial socks as described in any one of claims 1-9.
Citation Information
Patent Citations
A sock turning device for sock processing and production
CN112030513B