Non-woven fabric pressure steam sterilization device for wet tissue production
Through the improved non-woven pressure steam disinfection device, the problem of small contact area between high-temperature steam and non-woven fabrics is solved by using parts such as limiting plates, placement racks and air guide drums, the problem of small contact area between high-temperature steam and non-woven fabrics is achieved, and the comprehensive disinfection and rapid cooling of non-woven fabrics are improved, and the disinfection effect and the stability of the device are improved.
Patent Information
- Application Number
- CN202510428206.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-08
- Publication Date
- 2025-07-11
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When the existing pressure steam disinfection device disinfects nonwovens, the contact area between high-temperature steam and nonwovens is small, making it difficult to penetrate the outer layers of nonwovens and contact with the inner nonwovens, resulting in the failure to effectively disinfect the middle part and the disinfection effect is poor.
A non-woven pressure steam disinfection device including a limiting plate, a placement rack, an air guide drum and other components is designed. The contact area between high-temperature steam and the non-woven fabric is increased through the limiting plate and the placement rack. The air guide drum makes the steam evenly distributed, and the non-woven fabric is limited by the limiting block and screw, the guide plate rack is cooled and cooled, and the sealing property of the device is enhanced through the sealing mechanism.
It improves the contact area and uniformity between high-temperature steam and non-woven fabrics, ensures effective disinfection of non-woven fabrics everywhere, shortens cooling time, avoids deviation and pollution of non-woven fabrics during rotation, and improves the practicality and stability of the disinfection device.
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Figure CN120285242A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of steam disinfection equipment, and particularly to a non-woven fabric pressure steam disinfection device for wet wipe production. Background Art
[0002] Non-woven fabric is a new type of environmental protection material, which has the characteristics of softness, breathability, water repellency, flexibility, non-toxicity and non-irritation. It is widely used in wet wipe production because of its excellent absorbency, softness and comfort, strong durability and versatility, and can meet the requirements of wet wipes in various applications such as cleaning, moisturizing and disinfection. Non-woven fabric needs to be disinfected during wet wipe production, especially in fields with high hygiene requirements such as medical and sanitation. Disinfection can effectively control the microbial contamination in non-woven fabric to avoid the impact of bacteria and molds on the product quality and ensure that the non-woven fabric meets the hygiene standards. The disinfection methods usually include high-temperature steam, ultraviolet irradiation and plasma treatment, etc.
[0003] When the existing pressure steam disinfection device is in use, the non-woven fabric is usually stacked in the disinfection cylinder first, and then the non-woven fabric is disinfected by the high-temperature steam in the cylinder. However, when disinfecting the non-woven fabric in this way, the contact area between the high-temperature steam and the non-woven fabric is small, and it is difficult for the high-temperature steam to penetrate through the outer layers of non-woven fabric and contact with the inner non-woven fabric, resulting in the ineffective disinfection treatment of the middle part of the non-woven fabric, thus leading to poor disinfection effect of this pressure steam disinfection device.
[0004] Based on the above situation, the present invention proposes a non-woven fabric pressure steam disinfection device for wet wipe production with good disinfection effect. Summary of the Invention
[0005] In order to overcome the disadvantages that when the existing pressure steam disinfection device disinfects non-woven fabric, the contact area between the high-temperature steam and the non-woven fabric is small, and it is difficult for the high-temperature steam to penetrate through the outer layers of non-woven fabric and contact with the inner non-woven fabric, resulting in the ineffective disinfection treatment of the middle part of the non-woven fabric, thus leading to poor disinfection effect of this pressure steam disinfection device, the present invention provides a non-woven fabric pressure steam disinfection device for wet wipe production with good disinfection effect.
[0006] A non-woven fabric pressure steam disinfection device for wet wipe production, comprising a frame, a steam cylinder, a steam generator, a control panel, a mounting rotating plate, a placement rack, a prism shaft, a motor, a magnetic clamping block, a limiting plate and a guide shaft. The frame is fixedly connected with the steam cylinder, the steam cylinder is rotatably connected with an opening and closing plate, the frame is fixedly connected with the steam generator, and the steam generator is communicated with the steam cylinder through a pipeline. The frame is fixedly connected with the control panel, and the control panel is electrically connected with the steam generator. The steam cylinder is fixedly connected with the motor, the output end of the motor is fixedly connected with the prism shaft through a coupling, the prism shaft is slidably connected with the mounting rotating plate, the mounting rotating plate is slidably connected with placement racks distributed equidistantly in a circle, the placement racks are fixedly connected with guide shafts, the mounting rotating plate is rotatably connected with the limiting plate through a damping ring, the guide shafts are slidably connected with the limiting plate, the steam cylinder is fixedly connected with magnetic clamping blocks distributed equidistantly in a circle, the magnetic clamping blocks are provided with clamping grooves, and the magnetic clamping blocks are magnetically matched with the limiting plate.
[0007] Further, the placement rack includes a base and three placement tubes distributed longitudinally. The base is fixedly connected and communicated with the three placement tubes, and the placement tubes are provided with pairs of axially distributed air-permeable holes.
[0008] Further, the limiting plate is provided with an annular wavy chute.
[0009] Further, it further includes a dispersion mechanism. The dispersion mechanism is arranged on the mounting rotating plate. The dispersion mechanism includes a connecting frame, a contact block, a gas guide rotating cylinder and an air outlet. The connecting frame is fixedly connected to the mounting rotating plate. The inside of the connecting frame is hollow, and the connecting frame is communicated with the placement rack through a pipeline. The connecting frame is fixedly connected and communicated with contact blocks distributed equidistantly in a circle. The steam cylinder is rotatably connected with the gas guide rotating cylinder, the gas guide rotating cylinder is fixedly connected with air outlets distributed equidistantly in a circle, and the air outlets are in contact and cooperation with the contact blocks.
[0010] Further, the gas guide rotating cylinder is provided with pairs of obliquely arranged spray holes distributed equidistantly in a circle.
[0011] Further, it further includes a limiting mechanism. The limiting mechanism is arranged on the placement rack. The limiting mechanism includes a limiting block, a rotating rod and a screw. The rotating rod is fixedly connected to the placement tube inside the placement rack, the rotating rod is rotatably connected with the limiting block, the limiting block is in contact and cooperation with the placement tube outside the placement rack, the limiting block is threadedly connected with the screw, and the screw is in extrusion cooperation with the placement tube outside the placement rack.
[0012] Further, it further includes a cooling mechanism. The cooling mechanism is arranged on the steam cylinder. The cooling mechanism includes a gas collecting cylinder, a guide air pipe, a guide plate frame, an electromagnet, a sealing block and a telescopic assembly. The guide plate frame is fixedly connected and communicated with the steam cylinder, the guide plate frame is fixedly connected and communicated with the gas collecting cylinder. The gas collecting cylinder is made of metal copper. A pair of guide air pipes are fixedly connected and communicated between the gas collecting cylinder and the guide plate frame. The guide plate frame is fixedly connected with the electromagnet, the guide plate frame is slidably connected with the sealing block, a telescopic assembly is fixedly connected between the sealing block and the guide plate frame, and the sealing block is magnetically matched with the electromagnet.
[0013] Furthermore, it also includes a sealing mechanism, which is arranged on the steam cylinder. The sealing mechanism includes an extrusion cylinder, a connecting pipe, a guide pipe, a piston, a compression spring and an expansion gas block. The paired extrusion cylinders are fixedly connected to the steam cylinder, the steam cylinder and the extrusion cylinder are fixedly connected and connected with the guide pipe, the extrusion cylinder is slidably connected with the piston, the piston and the extrusion cylinder are fixedly connected with the compression spring, the steam cylinder is fixedly connected with the expansion gas block, and the expansion gas block and the extrusion cylinder are fixedly connected and connected with the connecting pipe.
[0014] The beneficial effects of the present invention are as follows: 1. The present invention not only increases the contact area between high-temperature steam and non-woven fabrics through components such as limit plates and placement racks, but also prevents the placement racks from blocking part of the non-woven fabrics for a long time and affecting the disinfection quality, thereby improving the disinfection effect of the pressure steam disinfection device.
[0015] 2. The present invention uses components such as a connecting frame and an air-conducting drum to enable high-temperature steam to contact the non-woven fabric comprehensively and evenly, thereby ensuring that the high-temperature steam can effectively disinfect the non-woven fabric at all locations, thereby improving the disinfection effect of the pressure steam disinfection device.
[0016] 3. The present invention can limit the non-woven fabric wrapped on the placement rack through components such as limit blocks and screws, thereby preventing the non-woven fabric from gradually shifting to the right during rotation until it slides off the placement rack and is contaminated, thereby improving the practicality and stability of the pressure steam sterilization device.
[0017] 4. The present invention uses components such as guide plates and sealing blocks to cool the non-woven fabric with the help of the cooled gas in the gas collecting cylinder after the disinfection is completed, thereby achieving rapid cooling of the non-woven fabric to shorten the cooling time and avoiding contamination of the non-woven fabric when relying on external gas for cooling, thereby improving the practicality of the pressure steam sterilization device.
[0018] 5. The present invention uses components such as an extrusion cylinder and a piston to increase the air pressure inside the expanded gas block while the air pressure inside the steam cylinder rises, thereby ensuring that the expanded gas block can effectively block the gap between the steam cylinder and the opening and closing plate, thereby improving the sealing of the pressure steam sterilization device. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0020] Figure 2 It is a three-dimensional structural schematic diagram of the frame, steam cylinder, steam generator and other components of the present invention.
[0021] Figure 3 The three-dimensional structure diagram of the present invention is to install the rotating plate, the placement frame and the prism shaft and other components.
[0022] Figure 4Schematic three-dimensional structure diagram of components such as the installation rotating plate, limit plate and guide shaft of the present invention.
[0023] Figure 5 Schematic three-dimensional structure diagram of components such as the placement rack, limit plate and guide shaft of the present invention.
[0024] Figure 6 Schematic three-dimensional structure diagram of components such as the connecting frame, contact block and air guide rotating cylinder of the present invention.
[0025] Figure 7 Schematic three-dimensional structure diagram of components such as the contact block, air guide rotating cylinder and air outlet of the present invention.
[0026] Figure 8 Schematic three-dimensional structure diagram of components such as the limit block, rotating rod and screw of the present invention.
[0027] Figure 9 Schematic three-dimensional structure diagram of components such as the air collecting cylinder, air guide pipe and guide plate rack of the present invention.
[0028] Figure 10 Schematic three-dimensional structure diagram of components such as the electromagnet, sealing block and telescopic assembly of the present invention.
[0029] Figure 11 Schematic three-dimensional structure diagram of components such as the extrusion cylinder, connecting pipe and diversion pipe of the present invention.
[0030] Names and serial numbers of components in the figure: 1 - machine frame, 11 - steam cylinder, 12 - steam generator, 13 - control panel, 14 - installation rotating plate, 15 - placement rack, 16 - prism shaft, 17 - motor, 18 - magnetic clamping block, 19 - limit plate, 110 - guide shaft, 2 - connecting frame, 21 - contact block, 22 - air guide rotating cylinder, 23 - air outlet, 3 - limit block, 31 - rotating rod, 32 - screw, 4 - air collecting cylinder, 41 - air guide pipe, 42 - guide plate rack, 43 - electromagnet, 44 - sealing block, 45 - telescopic assembly, 5 - extrusion cylinder, 51 - connecting pipe, 52 - diversion pipe, 53 - piston, 54 - compression spring, 55 - expansion air block. Detailed implementation manners
[0031] The preferred technical solutions of the present invention will be described in detail below with reference to the accompanying drawings.
[0032] Embodiment 1
[0033] A non-woven fabric pressure steam disinfection device for wet wipe production, as Figures 1 - 5As shown in the figure, it includes a frame 1, a steam cylinder 11, a steam generator 12, a control panel 13, an installation rotating plate 14, a placement rack 15, a prism shaft 16, a motor 17, a magnetic chuck 18, a limiting plate 19 and a guide shaft 110. The top of the frame 1 is fixedly connected with the steam cylinder 11. A switch plate is rotatably connected to the right side of the steam cylinder 11. The steam generator 12 is fixedly connected to the middle of the frame 1. The steam generator 12 is communicated with the steam cylinder 11 through a pipeline. The control panel 13 is fixedly connected to the right side of the middle of the frame 1. The control panel 13 is electrically connected to the steam generator 12. The motor 17 is fixedly connected to the left side of the steam cylinder 11. The output end of the motor 17 is fixedly connected with the prism shaft 16 through a coupling. The installation rotating plate 14 is slidably connected to the right side of the prism shaft 16. The placement rack 15 which is circumferentially and equidistantly distributed is slidably connected to the middle of the installation rotating plate 14. The guide shaft 110 is fixedly connected to the left side of the placement rack 15. The limiting plate 19 is rotatably connected to the left side of the installation rotating plate 14 through a damping ring. The guide shaft 110 is slidably connected to the limiting plate 19. The magnetic chucks 18 which are circumferentially and equidistantly distributed are fixedly connected to the left inner wall of the steam cylinder 11. A clamping groove is formed in the middle of the magnetic chuck 18. The magnetic chuck 18 and the limiting plate 19 are magnetically matched with each other.
[0034] As Figures 3 - 5 shown, the placement rack 15 includes a base on the left side and three placement tubes longitudinally distributed on the right side. The base is fixedly connected and communicated with the three placement tubes. Axially distributed ventilation holes are formed on both the inner and outer sides of the placement tubes.
[0035] As Figure 4 and Figure 5 shown, a ring-shaped wavy chute is formed in the middle of the limiting plate 19.
[0036] When workers need to disinfect non-woven fabrics, they can first open the opening and closing plate on the right side of the steam cylinder 11, and pull out components such as the installation rotating plate 14, the placement rack 15, and the limiting plate 19 to the right. The limiting plate 19 will then be separated from the magnetic clamping block 18. Then, the non-woven fabric can be wound and fixed between the seven placement racks 15 from the inside to the outside. After fixing the non-woven fabric, the components such as the installation rotating plate 14 and the placement rack 15 can be moved leftward to reset with the non-woven fabric and enter the steam cylinder 11. The limiting plate 19 will then come into contact with the magnetic clamping block 18 and be snapped into the card slot. Next, the opening and closing plate can be closed and the steam generator 12 can be started through the control panel 13. The steam generator 12 will then generate high-temperature steam and inject the high-temperature steam into the steam cylinder 11 through a pipeline, thereby disinfecting the non-woven fabric with the help of the high-temperature steam. The used steam will flow back to the steam generator 12 through the pipeline on the left side of the steam cylinder 11 for recycling. Among them, since the non-woven fabric is wound between the seven placement racks 15, and the overall length of the placement rack 15 is shorter than that of the steam cylinder 11, the high-temperature steam can enter between the multi-layer non-woven fabrics through the gap between the placement rack 15 and the steam cylinder 11, so as to make relatively comprehensive contact with the multi-layer non-woven fabrics and disinfect them. During the disinfection, the worker can also start the motor 17. The motor 17 will drive components such as the installation rotating plate 14 and the placement rack 15 to rotate through the prism shaft 16. Since the limiting plate 19 is snapped into the card slot of the magnetic clamping block 18, the limiting plate 19 will not rotate. However, the limiting plate 19 is provided with an annular wavy sliding groove. Therefore, when the components such as the installation rotating plate 14 and the placement rack 15 rotate relative to the limiting plate 19, the limiting plate 19 will drive the seven placement racks 15 to move back and forth inward or outward through the guide shaft 110. During this period, since there are only five wave crests in the annular wavy sliding groove on the limiting plate 19, the seven placement racks 15 will not move outward or inward simultaneously when moving back and forth inward or outward, so as to avoid the non-woven fabric being pulled to tear by the seven placement racks 15. And since the seven placement racks 15 will move back and forth inward or outward staggeredly, the contact part between the non-woven fabric and the seven placement racks 15 will constantly change, so as to avoid the placement rack 15 blocking part of the non-woven fabric for a long time and affecting the disinfection effect. Moreover, the components such as the installation rotating plate 14 and the placement rack 15 driving the non-woven fabric to rotate together can also make the high-temperature steam contact the non-woven fabric more evenly, thereby improving the overall disinfection effect of the device. Among them, the magnetic clamping block 18 can magnetically fix the limiting plate 19 to prevent the limiting plate 19 from separating from the magnetic clamping block 18 during disinfection. After disinfection, the worker can first turn off the motor 17 and the steam generator 12 and open the opening and closing plate. After the non-woven fabric cools down, it can be removed from the placement rack 15.
[0037] Embodiment 2
[0038] On the basis of Embodiment 1, as Figure 6 and Figure 7As shown, it further includes a dispersion mechanism. The dispersion mechanism is arranged on the installation rotating plate 14. The dispersion mechanism includes a connecting frame 2, a contact block 21, a gas guiding rotating cylinder 22, and an air outlet 23. The connecting frame 2 is fixedly connected to the outside of the installation rotating plate 14. The inside of the connecting frame 2 is hollow. The connecting frame 2 is communicated with the placement rack 15 through a pipeline. The outside of the connecting frame 2 is fixedly connected and communicated with contact blocks 21 distributed equidistantly in a circle. A gas guiding rotating cylinder 22 is rotatably connected inside the steam cylinder 11. On the left side inside the gas guiding rotating cylinder 22, air outlets 23 distributed equidistantly in a circle are fixedly connected. The air outlets 23 are in contact and cooperation with the contact blocks 21.
[0039] As Figure 6 and Figure 7 shown, oblique spray holes distributed equidistantly in a circle are formed on both the left and right sides of the gas guiding rotating cylinder 22.
[0040] When the steam generator 12 generates high-temperature steam and injects the high-temperature steam into the steam cylinder 11 through a pipeline, the high-temperature steam will first enter the chamber between the steam cylinder 11 and the gas guiding rotating cylinder 22, and then enter the steam cylinder 11 from the air outlets 23 and the oblique spray holes on the gas guiding rotating cylinder 22. Since the spray holes on the gas guiding rotating cylinder 22 are oblique spray holes, the high-temperature steam in the chamber will drive the gas guiding rotating cylinder 22 and the air outlets 23 to rotate when passing through the oblique spray holes. During this period, whenever the air outlet 23 rotates to align with the contact block 21, the high-temperature steam ejected from the air outlet 23 will enter the placement rack 15 through the contact block 21, the connecting frame 2, and the pipeline, and then be ejected from the air permeable holes on the placement rack 15. In this way, the part of the placement rack 15 in contact with the non-woven fabric can be effectively disinfected with high-temperature steam. Moreover, the gas guiding rotating cylinder 22 and the air outlets 23 spraying high-temperature steam while rotating can also make the high-temperature steam contact the non-woven fabric more evenly and comprehensively, thereby improving the effect of high-temperature disinfection.
[0041] As Figure 1 and Figure 8 shown, it further includes a limiting mechanism. The limiting mechanism is arranged on the placement rack 15. The limiting mechanism includes a limiting block 3, a rotating rod 31, and a screw 32. The rotating rod 31 is fixedly connected to the right side of the placement tube inside the placement rack 15. A limiting block 3 is rotatably connected to the outside of the rotating rod 31. The limiting block 3 is in contact and cooperation with the placement tube on the outside of the adjacent placement rack 15. A screw 32 is threadedly connected to the outside of the limiting block 3. The screw 32 is in pressing cooperation with the placement tube on the outside of the placement rack 15.
[0042] When the worker needs to wind the non-woven fabric around the placement rack 15, it is necessary to first rotate the screw 32 in the reverse direction and separate the placement tube on the outside of the placement rack 15 from the limit block 3, so as to avoid the limit block 3 blocking the non-woven fabric. Next, the non-woven fabric can be wound between the seven placement racks 15 from the inside to the outside. After winding, it is necessary to restore the limit block 3 to its original position and make it contact the placement tube on the outside of the adjacent placement rack 15 again. At this time, the screw 32 can be rotated in the forward direction, so that the limit block 3 and the placement tube on the outside of the adjacent placement rack 15 are fixed together by the screw 32. The fixed limit block 3 can limit the non-woven fabric wound on the placement rack 15, so as to avoid the non-woven fabric gradually shifting to the right during rotation until it slides off the placement rack 15 and is contaminated.
[0043] As Figure 9 and Figure 10 shown, it further includes a temperature reduction mechanism. The temperature reduction mechanism is arranged on the steam cylinder 11. The temperature reduction mechanism includes a gas collection cylinder 4, a gas guide pipe 41, a guide plate frame 42, an electromagnet 43, a sealing block 44 and a telescopic assembly 45. The guide plate frame 42 is fixedly connected and communicated with the top of the steam cylinder 11. The top of the guide plate frame 42 is fixedly connected and communicated with a gas collection cylinder 4. The gas collection cylinder 4 is made of metal copper. There are two front and rear gas guide pipes 41 fixedly connected and communicated between the gas collection cylinder 4 and the guide plate frame 42. An electromagnet 43 is fixedly connected to the right side of the guide plate frame 42. A sealing block 44 is slidably connected inside the guide plate frame 42. A telescopic assembly 45 is fixedly connected between the sealing block 44 and the guide plate frame 42. The sealing block 44 and the electromagnet 43 are magnetically matched.
[0044] When the steam generator 12 injects high-temperature steam into the steam cylinder 11 through a pipeline, although part of the gas will flow back from the steam cylinder 11 to the steam generator 12 through the pipeline, the steam generator 12 heats water into water vapor and then makes the water vapor enter the steam cylinder 11. Therefore, the total amount of gas in the steam cylinder 11 will continuously increase, and the air pressure will also continuously increase. Since the guide plate frame 42 and the air collecting cylinder 4 are both connected to the steam cylinder 11, the total amount of gas in the air collecting cylinder 4 will also continuously increase, and the air pressure will also continuously increase. When the air pressure in the air collecting cylinder 4 reaches a certain level, the electromagnet 43 can be activated. The electromagnet 43 will drive the sealing block 44 to move to the right through its own magnetic force, and the telescopic assembly 45 will be stretched immediately. The rightward movement of the sealing block 44 will also suck part of the gas in the air collecting cylinder 4 into the left part of the guide plate frame 42 through the air guide pipe 41 to ensure air pressure balance. When the sealing block 44 moves to the right and is adsorbed and fixed to the electromagnet 43, the sealing block 44 will block the communication port between the steam cylinder 11, the guide plate frame 42 and the air collecting cylinder 4, thereby preventing high-temperature steam from continuing to enter the air collecting cylinder 4. Since the air collecting cylinder 4 is made of metal copper, the air collecting cylinder 4 and the gas inside it will quickly cool down under the influence of the external environment. After disinfection, the worker can turn off the electromagnet 43, and the sealing block 44 will immediately move to the left and reset under the action of the telescopic assembly 45, and transfer the gas in the left part of the guide plate frame 42 back to the air collecting cylinder 4. At this time, both the guide plate frame 42 and the air collecting cylinder 4 will be reconnected to the steam cylinder 11. Therefore, the cooled gas in the air collecting cylinder 4 will be mixed with the gas in the steam cylinder 11, so as to quickly cool the gas and the non-woven fabric in the steam cylinder 11. In this way, not only can the non-woven fabric be quickly cooled to shorten the cooling time, but also the pollution of the non-woven fabric caused by relying on external gas for cooling can be avoided.
[0045] As Figure 1 and Figure 11 shown, it further includes a sealing mechanism. The sealing mechanism is arranged on the steam cylinder 11. The sealing mechanism includes an extrusion cylinder 5, a connecting pipe 51, a diversion pipe 52, a piston 53, a compression spring 54 and an expansion air block 55. Two extrusion cylinders 5 are respectively fixedly connected to the upper and lower sides of the steam cylinder 11. A diversion pipe 52 is fixedly connected and communicated between the steam cylinder 11 and the left side of the extrusion cylinder 5. A piston 53 is slidably connected inside the extrusion cylinder 5. A compression spring 54 is fixedly connected between the piston 53 and the extrusion cylinder 5. An expansion air block 55 is fixedly connected to the right side inside the steam cylinder 11. A connecting pipe 51 is fixedly connected and communicated between the expansion air block 55 and the right side of the extrusion cylinder 5.
[0046] When the air pressure in the steam cylinder 11 continuously increases, the gas in the steam cylinder 11 will enter the left part of the extrusion cylinder 5 through the diversion pipe 52 and extrude the piston 53. The piston 53 will then move to the right and squeeze the gas in the right part of the extrusion cylinder 5 into the expansion air block 55 through the connecting pipe 51. The air pressure inside the expansion air block 55 will immediately increase, and the compression spring 54 will be compressed accordingly. In this way, the air pressure inside the expansion air block 55 can be increased while the air pressure inside the steam cylinder 11 rises, so as to ensure that the expansion air block 55 can effectively block the gap between the steam cylinder 11 and the opening and closing plate. When the air pressure in the steam cylinder 11 drops and returns to normal, the piston 53 will move to the left and reset under the action of the compression spring 54 and suck part of the gas in the expansion air block 55 back into the extrusion cylinder 5.
[0047] The above is only the specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention can easily think of changes or substitutions, which should all be covered within the protection scope of the present invention. Therefore, the protection scope of the present invention should be subject to the protection scope of the claims.
Claims
1. A non-woven fabric pressure steam disinfection device for wet wipe production, characterized in that: It includes a machine frame (1), a steam cylinder (11), a steam generator (12), a control panel (13), an installation rotating plate (14), a placement rack (15), a prism shaft (16), a motor (17), a magnetic chuck (18), a limiting plate (19) and a guide shaft (110). The machine frame (1) is fixedly connected with the steam cylinder (11), and the steam cylinder (11) is rotatably connected with an opening and closing plate. The machine frame (1) is fixedly connected with a steam generator (12), and the steam generator (12) is communicated with the steam cylinder (11) through a pipeline. The machine frame (1) is fixedly connected with a control panel (13), and the control panel (13) is electrically connected with the steam generator (12). The steam cylinder (11) is fixedly connected with a motor (17), and the output end of the motor (17) is fixedly connected with a prism shaft (16) through a coupling. The prism shaft (16) is slidably connected with an installation rotating plate (14), and the installation rotating plate (14) is slidably connected with placement racks (15) distributed equidistantly in a circle. The placement rack (15) is fixedly connected with a guide shaft (110). The installation rotating plate (14) is rotatably connected with a limiting plate (19) through a damping ring, and the guide shaft (110) is slidably connected with the limiting plate (19). The steam cylinder (11) is fixedly connected with magnetic chucks (18) distributed equidistantly in a circle. The magnetic chucks (18) are provided with card slots, and the magnetic chucks (18) are magnetically coupled with the limiting plate (19).
2. The non-woven fabric pressure steam disinfection device for wet wipe production according to claim 1, characterized in that: Among them, the placement rack (15) includes a base and three placement tubes distributed longitudinally. The base is fixedly connected and communicated with the three placement tubes, and the placement tubes are provided with pairs of axially distributed ventilation holes.
3. A non-woven fabric pressure steam disinfection device for wet wipe production according to claim 2, characterized in that: Among them, the limiting plate (19) is provided with an annular wavy chute.
4. A non-woven fabric pressure steam disinfection device for wet wipe production according to claim 3, characterized in that: It also includes a dispersion mechanism. The dispersion mechanism is arranged on the installation rotating plate (14). The dispersion mechanism includes a connecting frame (2), a contact block (21), a gas guide rotating cylinder (22) and an air outlet (23). The connecting frame (2) is fixedly connected to the installation rotating plate (14). The inside of the connecting frame (2) is hollow, and the connecting frame (2) is communicated with the placement rack (15) through a pipeline. The connecting frame (2) is fixedly connected and communicated with contact blocks (21) distributed equidistantly in a circle. The steam cylinder (11) is rotatably connected with a gas guide rotating cylinder (22), and the gas guide rotating cylinder (22) is fixedly connected with air outlets (23) distributed equidistantly in a circle. The air outlets (23) are in contact with the contact blocks (21).
5. The non-woven fabric pressure steam disinfection device for wet wipe production according to claim 4, characterized in that: Among them, the gas guide rotating cylinder (22) is provided with pairs of obliquely distributed spray holes distributed equidistantly in a circle.
6. The non-woven fabric pressure steam disinfection device for wet wipe production according to claim 5, characterized in that: It also includes a limiting mechanism. The limiting mechanism is arranged on the placement rack (15). The limiting mechanism includes a limiting block (3), a rotating rod (31) and a screw (32). The rotating rod (31) is fixedly connected to the placement tube inside the placement rack (15). The rotating rod (31) is rotatably connected with a limiting block (3). The limiting block (3) is in contact with the placement tube outside the placement rack (15). The limiting block (3) is threadedly connected with a screw (32), and the screw (32) is in pressing contact with the placement tube outside the placement rack (15).
7. The non-woven fabric pressure steam disinfection device for wet wipe production according to claim 6, characterized in that: It further includes a temperature reduction mechanism, which is arranged on the steam cylinder (11). The temperature reduction mechanism includes an air collecting cylinder (4), a guide air pipe (41), a guide plate frame (42), an electromagnet (43), a sealing block (44) and a telescopic assembly (45). The guide plate frame (42) is fixedly connected and communicated with the steam cylinder (11). The guide plate frame (42) is fixedly connected and communicated with an air collecting cylinder (4). The air collecting cylinder (4) is made of metal copper. A pair of guide air pipes (41) are fixedly connected and communicated between the air collecting cylinder (4) and the guide plate frame (42). The guide plate frame (42) is fixedly connected with an electromagnet (43). The guide plate frame (42) is slidably connected with a sealing block (44). A telescopic assembly (45) is fixedly connected between the sealing block (44) and the guide plate frame (42). The sealing block (44) is magnetically matched with the electromagnet (43).
8. A non-woven fabric pressure steam disinfection device for wet wipe production according to claim 7, characterized in that: It further includes a sealing mechanism, which is arranged on the steam cylinder (11). The sealing mechanism includes an extrusion cylinder (5), a connecting pipe (51), a diversion pipe (52), a piston (53), a compression spring (54) and an expansion air block (55). A pair of extrusion cylinders (5) are both fixedly connected to the steam cylinder (11). A diversion pipe (52) is fixedly connected and communicated between the steam cylinder (11) and the extrusion cylinder (5). The extrusion cylinder (5) is slidably connected with a piston (53). A compression spring (54) is fixedly connected between the piston (53) and the extrusion cylinder (5). The steam cylinder (11) is fixedly connected with an expansion air block (55). A connecting pipe (51) is fixedly connected and communicated between the expansion air block (55) and the extrusion cylinder (5).