Nonwoven towel plasma surface treatment apparatus
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HANGZHOU LINAN HUASHENG DAILY NECESSITIES CO LTD
- Filing Date
- 2025-06-17
- Publication Date
- 2026-08-07
AI Technical Summary
[0003]在对无纺布毛巾进行等离子体处理时,等离子发生器所产生的等离子体仅能作用于材料表层,难以深入每根纤维根部,导致处理效果不佳
[0015]1.本实用新型中,打开等离子发生器和向氧气管内通入氧气,等离子体与氧气配合,对毛巾表面进行氧等离子处理,提高毛巾抗菌性,这里,作业人员还启动了电机一,然后链轮一、链轮二、链条配合,实现多橡胶筒同时转动,橡胶筒上的凸条刮直毛巾上的纤维丝,使氧气、等离子体从出风口离开后能深入毛巾内层,由此进一步提高毛巾的抗菌性能。
Smart Images

Figure CN224605251U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of towel production technology, specifically to a plasma surface treatment device for non-woven towels. Background Technology
[0002] With the continuous development of society and economy, consumers have higher and higher requirements for goods. As daily necessities, towels are receiving more and more attention for their performance. Most traditional towel products are already well known to consumers. Ordinary low-twist products have a fluffy and soft feel and good water absorption.
[0003] When plasma treatment is applied to non-woven towels, the plasma generated by the plasma generator can only act on the surface of the material and cannot penetrate into the root of each fiber, resulting in poor treatment effect. Utility Model Content
[0004] This utility model aims to solve one of the technical problems existing in the prior art or related technologies.
[0005] Therefore, the technical solution adopted by this utility model is as follows:
[0006] A plasma surface treatment device for non-woven towels includes a protective mechanism, a clamping mechanism, a shallow treatment mechanism, and a deep treatment mechanism. The protective mechanism includes a treatment chamber and a sealing door movably connected to the treatment chamber. The clamping mechanism includes multiple feeding plates installed inside the treatment chamber and multiple pressure rods connected to the two side walls inside the treatment chamber. The shallow treatment mechanism includes a plasma generator connected to the top of the treatment chamber, an oxygen pipe slidingly penetrating one side of the treatment chamber, multiple longitudinal pipes connected and communicating with the oxygen pipe, and a connecting sleeve connecting the oxygen pipe and the multiple longitudinal pipes. The multiple longitudinal pipes are respectively located on top of the multiple feeding plates. The deep treatment mechanism is provided inside the treatment chamber.
[0007] By adopting the above technical solution, the plasma generator is turned on and oxygen is introduced into the oxygen pipe. The plasma and oxygen work together to treat the surface of the towel with oxygen plasma, thereby improving the antibacterial properties of the towel. Here, the operator also starts motor one, and then sprocket one, sprocket two and chain work together to realize the simultaneous rotation of multiple rubber cylinders. The convex strips on the rubber cylinders straighten the fibers on the towel, so that the oxygen and plasma can penetrate into the inner layer of the towel after leaving the air outlet, thereby further improving the antibacterial performance of the towel.
[0008] In a preferred embodiment, the present invention can be further configured as follows: multiple pressure rods are arranged in pairs, and the multiple groups of pressure rods are located on the top of multiple feeding plates respectively. The two pressure rods in each group are close to the two sides of the feeding plate and are in contact with the top of the feeding plate.
[0009] In a preferred embodiment, the present invention can be further configured as follows: the deep processing mechanism includes a rubber cylinder rotatably sleeved on the outside of the longitudinal tube, multiple air outlets opened on the rubber cylinder, a sprocket one sleeved on the rear end of the rubber cylinder, a cylinder installed on one side of the connecting sleeve, a motor one connected to the movable end of the cylinder, a sprocket two sleeved on the outside of the output shaft of the motor one, and a chain connecting the multiple sprockets one and sprocket two.
[0010] In a preferred embodiment, the present invention can be further configured such that: the outer wall of the rubber cylinder is integrally formed with multiple protrusions, and multiple air outlets are respectively located between two adjacent protrusions; the interior of the rubber cylinder is connected to the interior of the longitudinal pipe.
[0011] In a preferred embodiment, the present invention can be further configured such that: the bottom of the connecting sleeve is provided with a support assembly, the support assembly including a bearing seat that fits against the bottom of the processing chamber cavity, and a hydraulic cylinder connected between the connecting sleeve and the bearing seat.
[0012] In a preferred embodiment, the present invention can be further configured such that: a drive assembly is provided on the processing chamber, the drive assembly includes a lead screw that rotates through one side of the processing chamber, and a second motor connected between the processing chamber and the lead screw, the lead screw passing laterally through a bearing seat, and the bearing seat being movably connected to the lead screw.
[0013] In a preferred embodiment, the present invention can be further configured such that: two suction pipes are connected and communicated to the rear side of the processing chamber, and the two suction pipes are vertically symmetrical about the connecting sleeve.
[0014] By adopting the above technical solution, the beneficial effects achieved by this utility model are as follows:
[0015] 1. In this utility model, the plasma generator is turned on and oxygen is introduced into the oxygen pipe. The plasma and oxygen work together to treat the surface of the towel with oxygen plasma, thereby improving the antibacterial properties of the towel. Here, the operator also starts motor one, and then sprocket one, sprocket two and chain work together to realize the simultaneous rotation of multiple rubber cylinders. The convex strips on the rubber cylinders straighten the fibers on the towel, so that the oxygen and plasma can penetrate into the inner layer of the towel after leaving the air outlet, thereby further improving the antibacterial performance of the towel.
[0016] 2. In this utility model, when the second motor drives the bearing seat to move through the lead screw, it can indirectly drive the connecting sleeve to move as a whole. Then, the rubber cylinder evenly acts on the entire surface of the towel, ensuring that every inch of the towel can receive deep treatment with oxygen and plasma, thus guaranteeing the treatment effect of the towel. Attached Figure Description
[0017] Figure 1 This is a front view of the overall structure of this utility model;
[0018] Figure 2This is a schematic diagram of the protection mechanism of this utility model;
[0019] Figure 3 This is a schematic diagram of the clamping mechanism of this utility model;
[0020] Figure 4 This is a schematic diagram of the shallow treatment mechanism of this utility model;
[0021] Figure 5 This is a schematic diagram of the deep processing mechanism of this utility model;
[0022] Figure 6 This utility model Figure 5 Enlarged view of the structure of part A.
[0023] Figure label:
[0024] 100. Protection facility; 110. Processing room; 120. Sealing off;
[0025] 200. Clamping mechanism; 210. Feeding plate; 220. Pressure bar;
[0026] 300. Shallow treatment mechanism; 310. Plasma generator; 320. Oxygen pipe; 330. Longitudinal pipe; 340. Connecting sleeve;
[0027] 400. Deep processing mechanism; 410. Rubber cylinder; 420. Air outlet; 430. Sprocket 1; 440. Cylinder; 450. Motor 1; 460. Sprocket 2; 470. Chain;
[0028] 500. Support assembly; 510. Bearing housing; 520. Hydraulic cylinder;
[0029] 600. Drive assembly; 610. Lead screw; 620. Motor II. Detailed Implementation
[0030] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be noted that, unless otherwise specified, the embodiments and features of the present utility model can be combined with each other.
[0031] It should be understood that these descriptions are merely exemplary and not intended to limit the scope of this invention.
[0032] The following describes, with reference to the accompanying drawings, some embodiments of the present invention, a plasma surface treatment device for non-woven towels.
[0033] Example 1:
[0034] Combination Figure 1-6As shown, the present invention provides a plasma surface treatment device for non-woven towels, including a protection mechanism 100, a clamping mechanism 200, a shallow treatment mechanism 300 and a deep treatment mechanism 400. The protection mechanism 100 includes a treatment chamber 110 and a sealing door 120 movably connected to the treatment chamber 110.
[0035] The clamping mechanism 200 includes a plurality of discharge plates 210 installed inside the processing chamber 110 and a plurality of pressure rods 220 connected to the inner side walls of the processing chamber 110.
[0036] The shallow treatment mechanism 300 includes a plasma generator 310 connected to the top of the treatment chamber 110, an oxygen pipe 320 slidingly passing through one side of the treatment chamber 110, a plurality of longitudinal pipes 330 connected and communicating with the oxygen pipe 320, and a connecting sleeve 340 connecting the oxygen pipe 320 and the plurality of longitudinal pipes 330. The plurality of longitudinal pipes 330 are respectively located on the top of a plurality of discharge plates 210. The deep treatment mechanism 400 is provided inside the treatment chamber 110.
[0037] Specifically, the deep processing mechanism 400 includes a rubber cylinder 410 rotatably sleeved on the outside of the longitudinal tube 330, multiple air outlets 420 opened on the rubber cylinder 410, a first sprocket 430 sleeved on the rear end of the rubber cylinder 410, a cylinder 440 installed on one side of the connecting sleeve 340, a first motor 450 connected to the movable end of the cylinder 440, a second sprocket 460 sleeved on the outside of the output shaft of the first motor 450, and a chain 470 connecting the multiple first sprockets 430 and second sprockets 460. The extension and retraction of the movable end of the cylinder 440 can drive the first motor 450 and the first sprocket 430 to move. By adjusting the tension of the chain 470, it can be ensured that the first sprocket 430, the second sprocket 460, and the chain 470 can cooperate stably.
[0038] Furthermore, multiple pressure rods 220 are arranged in pairs, forming multiple groups. The multiple groups of pressure rods 220 are located on the top of multiple feeding plates 210. The two pressure rods 220 in each group are close to the two sides of the feeding plate 210 and fit against the top of the feeding plate 210. The layout design of the pressure rods 220 can firmly press the towel and ensure that the towel will not be displaced when it is scraped by the rubber cylinder 410, so that the towel surface treatment operation can be carried out smoothly.
[0039] Furthermore, the outer wall of the rubber cylinder 410 is integrally formed with multiple protrusions, and multiple air outlets 420 are respectively located between two adjacent protrusions. The interior of the rubber cylinder 410 is connected to the interior of the longitudinal tube 330. The protrusions are provided to facilitate the rubber cylinder 410 to scrape the fibers on the surface of the towel upwards, so as to facilitate the entry of plasma and oxygen into the inner layer of the towel.
[0040] Furthermore, the processing chamber 110 is connected to and communicates with two vacuum pipes at the rear. The two vacuum pipes are vertically symmetrical about the connecting sleeve 340. The installation of vacuum pipes can maintain the cleanliness of the internal environment of the processing chamber 110.
[0041] Example 2:
[0042] Combination Figure 1 and Figure 5 As shown, based on Embodiment 1, the bottom of the connecting sleeve 340 is provided with a support assembly 500. The support assembly 500 includes a bearing seat 510 that fits against the bottom of the inner cavity of the processing chamber 110, and a hydraulic cylinder 520 connected between the connecting sleeve 340 and the bearing seat 510. With the support of the bearing seat 510, the hydraulic cylinder 520 ensures that the towel can be easily stuffed into the top of the discharge plate 210 when the longitudinal tube 330 and the rubber cylinder 410 are raised through the connecting sleeve 340.
[0043] Example 3:
[0044] Combination Figure 1 and Figure 5 As shown in the above embodiment, the processing chamber 110 is provided with a drive assembly 600. The drive assembly 600 includes a lead screw 610 that rotates through one side of the processing chamber 110 and a motor 620 connected between the processing chamber 110 and the lead screw 610. The lead screw 610 passes laterally through the bearing seat 510. The bearing seat 510 is movably connected to the lead screw 610. When the motor 620 drives the bearing seat 510 to move through the lead screw 610, it can indirectly drive the connecting sleeve 340 to move as a whole. Then, the rubber cylinder 410 evenly acts on the entire surface of the towel to ensure that every inch of the towel can receive deep treatment with oxygen and plasma.
[0045] The working principle and usage process of this utility model are as follows: After opening the sealing door 120 and laying the towel flat on each feeding plate 210, press the ends of the towel with the pressure rods 220 on both sides of the feeding plate 210. It is important to ensure that the towel is attached to the bottom of the rubber cylinder 410. Then close the sealing door 120, turn on the plasma generator 310 and introduce oxygen into the oxygen pipe 320. The plasma and oxygen work together to treat the surface of the towel with oxygen plasma, which improves the antibacterial properties of the towel. Here, the operator also starts the motor 450, and then the sprocket 430, sprocket 460 and chain 470 work together to make multiple rubber cylinders 410 rotate at the same time. The convex strips on the rubber cylinder 410 straighten the fibers on the towel, so that the oxygen and plasma can penetrate into the inner layer of the towel after leaving the air outlet 420, thereby further improving the antibacterial properties of the towel.
[0046] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A plasma surface treatment device for non-woven towels, characterized in that, include: A protection mechanism (100) includes a processing chamber (110) and a sealing door (120) movably connected to the processing chamber (110); The clamping mechanism (200) includes a plurality of feeding plates (210) installed inside the processing chamber (110) and a plurality of pressure rods (220) connected to the two side walls inside the processing chamber (110). A shallow treatment mechanism (300) includes a plasma generator (310) connected to the top of the treatment chamber (110), an oxygen pipe (320) slidingly passing through one side of the treatment chamber (110), a plurality of longitudinal pipes (330) connected and communicating with the oxygen pipe (320), and a connecting sleeve (340) connecting the oxygen pipe (320) and the plurality of longitudinal pipes (330). The plurality of longitudinal pipes (330) are respectively located on the top of a plurality of discharge plates (210). A deep treatment mechanism (400) is provided inside the treatment chamber (110).
2. The plasma surface treatment equipment for non-woven towels according to claim 1, characterized in that, Multiple pressure bars (220) are arranged in pairs, forming multiple groups. The multiple groups of pressure bars (220) are located on the top of multiple feeding plates (210). The two pressure bars (220) in each group are close to the two sides of the feeding plate (210) and are in contact with the top of the feeding plate (210).
3. The plasma surface treatment equipment for non-woven towels according to claim 1, characterized in that, The deep processing mechanism (400) includes a rubber cylinder (410) rotatably sleeved on the outside of the longitudinal tube (330), multiple air outlets (420) opened on the rubber cylinder (410), a sprocket (430) sleeved on the rear end of the rubber cylinder (410), a cylinder (440) installed on one side of the connecting sleeve (340), a motor (450) connected to the movable end of the cylinder (440), a sprocket (460) sleeved on the outside of the output shaft of the motor (450), and a chain (470) connecting the multiple sprockets (430) and sprockets (460).
4. The plasma surface treatment equipment for non-woven towels according to claim 3, characterized in that, The outer wall of the rubber cylinder (410) is integrally formed with multiple protrusions, and multiple air outlets (420) are located between two adjacent protrusions. The interior of the rubber cylinder (410) is connected to the interior of the longitudinal pipe (330).
5. The plasma surface treatment equipment for non-woven towels according to claim 3, characterized in that, The bottom of the connecting sleeve (340) is provided with a support assembly (500), which includes a bearing seat (510) that fits against the bottom of the inner cavity of the processing chamber (110) and a hydraulic cylinder (520) connected between the connecting sleeve (340) and the bearing seat (510).
6. The plasma surface treatment equipment for non-woven towels according to claim 5, characterized in that, The processing chamber (110) is provided with a drive assembly (600), which includes a lead screw (610) that rotates through one side of the processing chamber (110) and a second motor (620) connected between the processing chamber (110) and the lead screw (610). The lead screw (610) passes laterally through a bearing seat (510), and the bearing seat (510) is movably connected to the lead screw (610).
7. The plasma surface treatment equipment for non-woven towels according to claim 1, characterized in that, The processing chamber (110) is connected to and communicates with two suction pipes on its rear side, and the two suction pipes are vertically symmetrical about the connecting sleeve (340).