A steam disinfection device for a glycerol enema container

By designing a steam disinfection device for the open-switch container, the shielding cloth and blower assembly combined with the flip assembly is used to solve the problem of water vapor residue inside the container, and the disinfection efficiency and working efficiency are improved.

CN119424698BActive Publication Date: 2025-07-08BEIJING JINGFENG PHARM (HEBEI) CO LTD
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Patent Information

Application Number
CN202411889707.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2025-07-08
Estimated Expiration
2044-12-20

AI Technical Summary

Technical Problem

After steam disinfection, water vapor is easily retained inside the open-stop container, which leads to difficulty in drying, affects the subsequent process and reduces work efficiency.

Method used

A steam disinfection device including a shading assembly, a blowing assembly and a flip assembly is designed to cover the container by covering the masking cloth, cooling the blowing assembly and flipping the container position with the flip assembly, effectively removing the water vapor inside the container.

Benefits of technology

Effectively removes the water vapor inside the container, improves work efficiency, reduces manual operation intensity, and ensures that the container enters the next steps immediately.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a steam disinfection device for a glycerol enema container, which comprises a cabinet body. A steam notch is arranged at the bottom end inside the cabinet body, and a placement rack is arranged above the steam notch. Both ends of the placement rack are fixedly connected with turning shafts, and placement notches are formed in the placement rack. The device further comprises a shielding component, which is arranged on the cabinet body and above the placement rack. The shielding component includes a shielding frame arranged inside the cabinet body and above the placement rack. Right-angle grooves are formed on both sides of the shielding frame. This steam disinfection device for a glycerol enema container solves the problem that water vapor is likely to appear inside the container after the original steam disinfection. Since the diameter is slender and narrow, it is not easy to dry the inside of the container, and the subsequent steps cannot be immediately carried out after disinfection, and glycerol enema cannot be filled in, thus leading to a decrease in work efficiency.
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Description

Technical Field

[0001] The present invention relates to the technical field of steam disinfection, and particularly to a steam disinfection device for a glycerine enema container. Background Art

[0002] There are two common preparations of glycerine enema. One is a glycerol preparation, and the other is a mannitol and magnesium sulfate preparation. Although the components of the two preparations are different, the principles are basically the same. Both utilize the high concentration of glycerol or sorbitol, i.e., the osmotic effect, to soften the feces, stimulate the intestinal wall, and reflexively cause a defecation response. Coupled with its lubricating effect, it can make the feces easy to discharge. Since the effect of glycerine enema is direct, there are more cases of abuse by constipated patients. However, in fact, the irritating laxative's stimulating effect on the intestinal wall is likely to lead to dependence in patients, forming a habit of not defecating without strong stimulation. As the use time increases, the sensitivity of the intestinal wall to stimulation becomes weaker and weaker, making it difficult for glycerine enema to play its role again.

[0003] Currently, when producing glycerine enema, its packaging container is steam disinfected. The container is placed in a steam sterilizer, and means such as high-pressure saturated steam and superheated water spray are used to denature the proteins and nucleic acids in the microbial cells to kill the microorganisms. After the packaging container is produced and shaped, the containers are placed in a steam disinfection device, and the device is started to simultaneously perform steam disinfection on a large number of containers. However, in the prior art, water vapor is likely to appear inside the container after steam disinfection. Due to the long and narrow diameter, it is not easy to dry the inside of the container, and it cannot enter the subsequent steps immediately after disinfection and be filled with glycerine enema, thereby resulting in a decrease in work efficiency. For this reason, we propose a steam disinfection device for a glycerine enema container. Summary of the Invention

[0004] The purpose of the present invention is to provide a steam disinfection device for a glycerine enema container to solve the problems raised in the above background art.

[0005] To achieve the above object, the present invention provides the following technical solution: A steam disinfection device for a glycerin enema container, comprising a cabinet body. At the bottom end inside the cabinet body, there is a steam notch. Above the steam notch, there is a placement rack. Both ends of the placement rack are fixedly connected with turning shafts, and placement notches are formed on the placement rack. It further includes a shielding component, which is arranged on the cabinet body and above the placement rack. It includes a shielding frame arranged inside the cabinet body and above the placement rack. Right-angle slots are formed on both sides of the shielding frame. One end inside the shielding frame is rotatably connected with a material receiving roller. A shielding cloth is arranged on the material receiving roller and fixedly connected with one end of the material receiving roller. The other end of the shielding cloth is fixedly connected with a material feeding roller slidably connected with the right-angle slot. A blowing component is arranged on the cabinet body and connected with the shielding component. It includes multiple blowing pipes arranged at the top end inside the cabinet body. Multiple blowing holes are formed on the blowing pipes. The multiple blowing pipes are respectively located directly above multiple placement notches. A turning component is arranged on the side of the cabinet body and connected with the turning shaft. It includes a turning disk arranged inside the cabinet body and rotatably connected with the side of the cabinet body. The turning disk is fixedly connected with the turning shaft. And the area of one side of the turning disk close to the placement rack is larger than the other side, which solves the problem that water vapor is likely to appear inside the container after the original steam disinfection. Due to the long and narrow diameter, it is not easy to dry the inside of the container, and it is impossible to enter the subsequent steps immediately after disinfection and load glycerin enema, thus resulting in a decrease in work efficiency.

[0006] Preferably, the shielding component includes a moving frame arranged above and fixedly connected with the material feeding roller. Both ends of the moving frame are respectively located in two right-angle slots. One end of the moving frame is fixedly connected with a bent sleeve. The bent sleeve is threadedly connected with a threaded rod rotatably connected with the side of the shielding frame. A convex block is fixedly connected to the material feeding roller. A tension spring is arranged on the convex block and fixedly connected with one end of the convex block. The other end of the tension spring is fixedly connected with the end of the shielding frame. Both ends of the moving frame are fixedly connected with pressing pieces. The pressing pieces are slidably connected with limiting rods. The bottom ends of the limiting rods are fixedly connected with clamping rods located on the shielding frame. First springs are arranged between the clamping rods and the two pressing pieces. The two first springs are respectively sleeved on the limiting rods. The threaded rod is connected with a docking mechanism arranged on the cabinet body. An installation mechanism for docking and installing between the placement rack and the shielding frame is arranged between the placement rack and the shielding frame.

[0007] Preferably, the docking mechanism includes a docking shaft disposed on the side of the cabinet and movably connected thereto. A coil fixedly connected to the outer side of the cabinet is sleeved outside the docking shaft. An electromagnetic block is fixedly connected to the coil. The docking shaft penetrates through the side of the cabinet, and a magnet block is rotatably connected to the part of the docking shaft outside the cabinet. A second spring sleeved on the docking shaft is fixedly connected between the electromagnetic block and the magnet block, and the electromagnetic block and the magnet block have opposite magnetic polarities after the electromagnetic block is energized. An end of the docking shaft outside the cabinet is fixedly connected to a telescopic shaft, and a rectangular groove is formed at the other end of the docking shaft located in the cabinet. A docking block adapted to the rectangular groove is fixedly connected to the threaded rod, and one end of the docking block close to the rectangular groove is tapered.

[0008] Preferably, the mounting mechanism includes multiple fixing blocks respectively disposed on the side of the shielding frame and fixedly connected thereto. A plug-in shaft is fixedly connected below the fixing block. A groove is formed at an end of the plug-in shaft away from the fixing block. A corresponding number of receiving blocks are disposed directly below the plug-in shaft. Multiple groups of the receiving blocks are fixedly connected to the placement rack, and the receiving blocks are adapted to the plug-in shaft. Multiple groups of third springs are disposed in the receiving blocks, with one end of each third spring fixedly connected thereto, and a sphere adapted to the groove is disposed at the other end of each third spring.

[0009] Preferably, the blowing assembly includes a mounting frame disposed on the outer side of the cabinet and fixedly connected thereto. The mounting frame is rotatably connected to the telescopic shaft. A wind hood is mounted on the mounting frame. A wind wheel is disposed in the wind hood. An air outlet pipe with one end communicating with the inside thereof is disposed at the air outlet end of the wind hood. The air outlet pipe is integrally bent to be adapted to the side of the cabinet, and the other end of the air outlet pipe is located inside the cabinet. A shunt pipe is fixedly connected to the end of the air outlet pipe located inside the cabinet. The shunt pipe is fixedly connected to multiple blowing pipes. The wind wheel is connected to a power mechanism disposed on the mounting frame, and the power mechanism is used to provide power for the docking mechanism and the wind wheel.

[0010] Preferably, the power mechanism includes a motor disposed on the mounting frame and fixedly connected thereto. An output end of the motor is fixedly connected to a power shaft. The power shaft is fixedly connected to the wind wheel. A pulley group for transmission connection is disposed between the power shaft and the telescopic shaft.

[0011] Preferably, the flipping assembly includes a rotating disk disposed on the side of the cabinet and rotatably connected thereto. The rotating disk is fixedly connected to the flipping disk. The area of one side of the rotating disk located outside the cabinet is larger than that of the other side. Two groups of limiting blocks are mirror-symmetrically disposed on the rotating disk. The limiting blocks are connected to a limiting mechanism disposed on the cabinet, and the limiting mechanism is used to limit the rotation of the rotating disk through the limiting blocks.

[0012] Preferably, the limiting mechanism includes a fixed seat disposed on and fixedly connected to the outer side surface of the cabinet body. A sliding rod is slidably connected to the fixed seat. One end of the sliding rod close to the rotating disc is fixedly connected to a limiting seat. A limiting notch adapted to the limiting block is provided on the limiting seat. A fourth spring sleeved on the sliding rod is disposed between the limiting seat and the fixed seat, which is beneficial to precisely control the 180-degree flip of the placement rack each time.

[0013] Preferably, a lower pressing plate located above the shielding cloth is fixedly connected to the material discharging roller, which is beneficial to closely attach the shielding cloth to the glycerin enema container and enhance the supporting strength of the container after flipping.

[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: It solves the problem that water vapor easily appears inside the container after steam sterilization. Due to the long and narrow caliber, it is not easy to dry the inside of the container, and it is impossible to immediately enter the subsequent steps and load glycerin enema after sterilization, thus resulting in a decrease in work efficiency. Through the sequential cooperation of the shielding assembly, the blowing assembly, and the flipping assembly, after steam sterilization, first, through the operation of the shielding assembly, the glycerin enema container is shielded by unfolding the shielding cloth. At this time, the blowing assembly operates for a short time to cool down the inside of the cabinet body. Then, the flipping assembly is controlled to operate to flip the placement rack, so that the upper and lower positions of the placement rack and the shielding frame are interchanged. The blowing assembly is operated again to remove the water vapor in the container. Finally, the shielding frame is directly pulled downward, and the flipped container directly falls onto the shielding cloth, and then the whole is taken out, which overall reduces the labor intensity. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 is a schematic diagram of the overall structure of the present invention;

[0016] Figure 2 is a schematic diagram of the internal structure at the rear side of the cabinet body of the present invention;

[0017] Figure 3 is Figure 2 an enlarged view of area A in

[0018] Figure 4 is a schematic diagram of another perspective of the internal structure at the rear side of the cabinet body of the present invention;

[0019] Figure 5 is Figure 4 an enlarged view of area B in

[0020] Figure 6 is a schematic diagram of the overall structural cooperation between the placement rack and the shielding frame of the present invention;

[0021] Figure 7 is a schematic diagram of the structure of the installation mechanism of the present invention;

[0022] Figure 8 This is a schematic diagram of the overall structure coordination of the shielding frame of the present invention;

[0023] Figure 9 It is a schematic diagram of the local structure of the shielding component of the present invention;

[0024] Figure 10 It is a schematic diagram of the structure coordination of the docking mechanism of the present invention;

[0025] Figure 11 It is a schematic diagram of the local structure coordination of the blowing assembly of the present invention;

[0026] Figure 12 This is a schematic diagram of the structure of the flip assembly of the present invention;

[0027] Figure 13 for Figure 12 Enlarged view of area C.

[0028] In the figure: 1, cabinet; 2, steam slot; 3, placement rack; 4, flip shaft; 5, placement slot; 6, shielding assembly; 7, shielding frame; 8, right-angle slot; 9, material collection roller; 10, shielding cloth; 11, material discharge roller; 12, blowing assembly; 13, blowing pipe; 14, flip assembly; 15, flip plate; 16, moving rack; 17, bending sleeve; 18, threaded rod; 19, bump; 20, tension spring; 21, extrusion sheet; 22, limit rod; 23, clamping rod; 24, first spring; 25, docking mechanism; 26, installation mechanism; 27, docking shaft; 28, coil; 29, electromagnetic block; 30 , magnet block; 31, second spring; 32, telescopic shaft; 33, rectangular groove; 34, docking block; 35, fixed block; 36, plug-in shaft; 37, groove; 38, receiving block; 39, third spring; 40, sphere; 41, mounting frame; 42, wind cover; 43, wind wheel; 44, air outlet pipe; 45, shunt pipe; 46, power mechanism; 47, motor; 48, power shaft; 49, pulley assembly; 50, rotating disk; 51, limit block; 52, limit mechanism; 53, fixed seat; 54, sliding rod; 55, limit seat; 56, limit notch; 57, fourth spring; 58, lower pressure plate. DETAILED DESCRIPTION

[0029] The present invention will be further described in detail below in conjunction with the accompanying drawings and embodiments. It is to be understood that the specific embodiments described herein are only used to explain the relevant invention, rather than to limit the invention. It should also be noted that, for ease of description, only the parts related to the invention are shown in the accompanying drawings.

[0030] It should be noted that, in the absence of conflict, the embodiments of the present invention and the features in the embodiments can be combined with each other. The present invention will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.

[0031] Please refer to Figures 1-13 Figures 1-13 , the present invention provides a technical solution: a steam disinfection device for a glycerin enema container, comprising a cabinet body 1, a steam notch 2 is arranged at the bottom end inside the cabinet body 1, a placement rack 3 is arranged above the steam notch 2, both ends of the placement rack 3 are fixedly connected with turning shafts 4, and placement notches 5 are formed on the placement rack 3. The cross-section of the placement notch 5 is wider at the top and narrower at the bottom, facilitating the stable upside-down placement of the glycerin enema container, with the slender outlet facing downwards, and the bottom end where the glycerin enema is stored is stabilized at the wide slot of the placement notch 5; further comprising: a shielding component 6, the shielding component 6 is arranged on the cabinet body 1 and above the placement rack 3, and it includes a shielding frame 7 arranged inside the cabinet body 1 and above the placement rack 3. Right-angle slots 8 are formed on both sides of the shielding frame 7, and a material receiving roller 9 is rotatably connected to the inner side of one end of the shielding frame 7. A shielding cloth 10 is arranged on the material receiving roller 9 and fixedly connected to one end thereof, and the other end of the shielding cloth 10 is fixedly connected to a material feeding roller 11 slidably connected with the right-angle slot 8; a blowing component 12, the blowing component 12 is arranged on the cabinet body 1 and connected to the shielding component 6, and it includes a plurality of blowing pipes 13 arranged at the top end inside the cabinet body 1. A plurality of blowing holes are formed on the blowing pipes 13, and the plurality of blowing pipes 13 are respectively located directly above the plurality of placement notches 5; a flipping component 14, the flipping component 14 is arranged on the side of the cabinet body 1 and connected to the turning shaft 4, and it includes a flipping disk 15 arranged inside the cabinet body 1 and rotatably connected to its side. The flipping disk 15 is fixedly connected to the turning shaft 4, and the area of one side of the flipping disk 15 close to the placement rack 3 is larger than the other side, facilitating heat storage and ensuring that the connection here inside is in a sealed state. Among them, in order to increase the supporting degree of the shielding cloth 10 after flipping to the glycerin enema container, a lower pressing plate 58 located above the shielding cloth 10 is fixedly connected to the material feeding roller 11.

[0032] As Figures 1-10 shown, the shielding component 6 includes a moving frame 16 arranged above the material feeding roller 11 and fixedly connected thereto. Both ends of the moving frame 16 are respectively located in two right-angle slots 8. One end of the moving frame 16 is fixedly connected with a bending sleeve 17. The bending sleeve 17 is threadedly connected with a threaded rod 18 rotatably connected to the side of the shielding frame 7. A convex block 19 is fixedly connected to the material feeding roller 11. A tension spring 20 is arranged on the convex block 19 and fixedly connected to one end thereof, and the other end of the tension spring 20 is fixedly connected to the end of the shielding frame 7. Both ends of the moving frame 16 are fixedly connected with pressing pieces 21. The pressing pieces 21 are slidably connected with limiting rods 22. The pressing pieces 21 and the limiting rods 22 are vertically distributed. The bottom end of the limiting rod 22 is fixedly connected with a clamping rod 23 located on the shielding frame 7. First springs 24 are arranged between the clamping rod 23 and the two pressing pieces 21. The two first springs 24 are respectively sleeved on the limiting rods 22. The threaded rod 18 is connected with a docking mechanism 25 arranged on the cabinet body 1. An installation mechanism 26 for docking and installation between the placement rack 3 and the shielding frame 7 is arranged between the placement rack 3 and the shielding frame 7.

[0033] Furthermore, the docking mechanism 25 includes a docking shaft 27 disposed on the side of the cabinet body 1 and movably connected thereto. The docking shaft 27 can freely rotate and slide on the cabinet body 1. A coil 28 fixedly connected to the outside of the cabinet body 1 is sleeved outside the docking shaft 27. An electromagnetic block 29 is fixedly connected to the coil 28. The docking shaft 27 penetrates through the side of the cabinet body 1, and a magnet block 30 is rotatably connected to the part of the docking shaft 27 outside the cabinet body 1. A second spring 31 sleeved on the docking shaft 27 is fixedly connected between the electromagnetic block 29 and the magnet block 30, and after the electromagnetic block 29 is energized, its magnetism is opposite to that of the magnet block 30. A telescopic shaft 32 is fixedly connected to the end of the docking shaft 27 outside the cabinet body 1, and a rectangular groove 33 is formed at the other end of the docking shaft 27 located in the cabinet body 1. A docking block 34 adapted to the rectangular groove 33 is fixedly connected to the threaded rod 18. One end of the docking block 34 close to the rectangular groove 33 is tapered to facilitate insertion into the rectangular groove 33 through the taper. The installation mechanism 26 includes a plurality of fixing blocks 35 respectively disposed on the side of the shielding frame 7 and fixedly connected thereto. A plugging shaft 36 is fixedly connected below the fixing block 35. A groove 37 is formed at the end of the plugging shaft 36 away from the fixing block 35. A corresponding number of receiving blocks 38 are disposed directly below the plugging shaft 36. A plurality of receiving blocks 38 are all fixedly connected to the placement rack 3, and the receiving blocks 38 are adapted to the plugging shaft 36. A plurality of third springs 39 with one end fixedly connected thereto are disposed in the receiving blocks 38, and a sphere 40 adapted to the groove 37 is disposed at the other end of the third spring 39.

[0034] As Figures 1-4 and Figure 11 shown, the blowing assembly 12 includes a mounting frame 41 disposed on the outside of the cabinet body 1 and fixedly connected thereto. The mounting frame 41 is rotatably connected to the telescopic shaft 32. A wind hood 42 is mounted on the mounting frame 41. A wind wheel 43 is disposed in the wind hood 42. An air outlet pipe 44 with one end communicating with its interior is disposed at the air outlet end of the wind hood 42. The air outlet pipe 44 is integrally bent in a shape adapted to the side of the cabinet body 1, and the other end of the air outlet pipe 44 is located inside the cabinet body 1. A diversion pipe 45 is fixedly connected to the end of the air outlet pipe 44 located inside the cabinet body 1. The diversion pipe 45 is fixedly connected to a plurality of blowing pipes 13. The wind wheel 43 is connected to a power mechanism 46 disposed on the mounting frame 41. The power mechanism 46 is used to provide power for the docking mechanism 25 and the wind wheel 43. The power mechanism 46 includes a motor 47 disposed on the mounting frame 41 and fixedly connected thereto. A power shaft 48 is fixedly connected to the output end of the motor 47. The power shaft 48 is fixedly connected to the wind wheel 43. A pulley group 49 for transmission connection is disposed between the power shaft 48 and the telescopic shaft 32.

[0035] As Figure 1 、 Figure 2 、 Figure 12 and Figure 13As shown, the flipping component 14 includes a rotating disk 50 disposed on the side of the cabinet body 1 and rotatably connected thereto. The rotating disk 50 is fixedly connected to the flipping disk 15. The area of one side of the rotating disk 50 located outside the cabinet body 1 is larger than that of the other side. Two groups of limiting blocks 51 are mirror - set on the rotating disk 50. The limiting blocks 51 are connected to a limiting mechanism 52 disposed on the cabinet body 1. The limiting mechanism 52 is used to limit the rotation of the rotating disk 50 through the limiting blocks 51. The limiting mechanism 52 includes a fixed seat 53 disposed on the outer side surface of the cabinet body 1 and fixedly connected thereto. A sliding rod 54 is slidably connected to the fixed seat 53. One end of the sliding rod 54 close to the rotating disk 50 is fixedly connected to a limiting seat 55. A limiting notch 56 adapted to the limiting block 51 is formed on the limiting seat 55. A fourth spring 57 sleeved on the sliding rod 54 is disposed between the limiting seat 55 and the fixed seat 53.

[0036] When performing steam disinfection on the glycerin enema container, first place the containers on the placement rack 3 in sequence and make them placed upside - down in the placement notch 5. Then place the whole shielding frame 7 above the placement rack 3, and insert the insertion shaft 36 under the fixed block 35 into the corresponding receiving block 38. When the insertion shaft 36 is inserted into the receiving block 38, the sphere 40 is squeezed, and the third spring 39 is squeezed. Until the insertion shaft 36 is completely inserted into the receiving block 38, the third spring 39 rebounds and pushes the sphere 40. At this time, the sphere 40 is located in the groove 37 on the insertion shaft 36, forming an installed state. The multiple groups of spheres 40 in the receiving block 38 close the cabinet body 1 and perform the steam disinfection process. Steam enters the cabinet body 1 from the steam notch 2. After disinfection is completed, in order to prevent water vapor from being contained in the container, control the motor 47 on the mounting frame 41 to operate, and at the same time control the coil 28 to be energized. At this time, the electromagnet 29 on the coil 28 is simultaneously charged. Since the magnetic property of the electromagnet 29 after being energized is opposite to that of the magnet block 30, at this time, the electromagnet 29 generates an attractive force on the magnet block 30 and pulls the magnet block 30 towards the coil 28. At this time, the magnet block 30 drives the docking shaft 27 to move towards the inside of the cabinet body 1. Since the end of the docking block 34 is conical, the rectangular groove 33 at the end of the docking shaft 27 cooperates with the docking block 34, and the docking shaft 27 is easily inserted into the rectangular groove 33. At this time, the telescopic shaft 32 cooperates and extends;

[0037] The motor 47 drives the power shaft 48 to rotate through the output end. Through the transmission connection of the pulley group 49, it further drives the telescopic shaft 32 to rotate. At this time, the telescopic shaft 32 drives the docking shaft 27 to rotate. The docking shaft 27 further drives the docked docking block 34 to rotate. The docking block 34 simultaneously drives the threaded rod 18 to rotate. Through the threaded connection between the threaded rod 18 and the bent sleeve 17, at this time, the bent sleeve 17 moves towards the other end of the threaded rod 18. When the bent sleeve 17 moves, it drives the fixedly connected moving frame 16 to move. When the moving frame 16 slides on the right-angle groove 8, it drives the lower material feeding roller 11 below to slide simultaneously. The material feeding roller 11 drives the shielding cloth 10 to stretch. The lower pressing plate 58 on the material feeding roller 11 can make the shielding cloth 10 closely adhere to the bottom end of the container. During this process, the material feeding roller 11 drives the tension spring 20 to stretch. The pressing pieces 21 at both ends of the moving frame 16 drive the limiting rod 22 to move. The clamping rod 23 slides on the shielding frame 7 until the bent sleeve 17 reaches the other end of the threaded rod 18. At this time, the shielding cloth 10 completely covers the container, and the clamping rod 23 slides off the top surface of the shielding frame 7. The first spring 24 rebounds, driving the limiting rod 22 to slide downward on the pressing piece 21, causing the clamping rod 23 to fall to the side of the shielding frame 7 and stop above the fixed block 35, preventing the tension spring 20 from rebounding and pulling back the shielding cloth 10. During this process, the blowing component 12 operates. When the shielding component 6 operates, it blows air into the cabinet 1 to cool it. Then, the motor 47 and the coil 28 are powered off. The second spring 31 pushes the docking shaft 27 outward, causing the docking shaft 27 to disconnect from the docking block 34. It should be noted that when the overall operation is completed, the clamping state between the clamping rod 23 and the side of the shielding frame 7 is released, and the shielding cloth 10 is wound around the material collecting roller 9 again. The tension spring 20 can directly contract, stabilizing the material feeding roller 11 at the initial position to prevent the subsequent threaded rod 18 from rotating freely without restriction, and then driving the material feeding roller 11 to move through the bent sleeve 17;

[0038] After the shielding cloth 10 covers the container, the limiting seat 55 is held and pushed, driving the sliding rod 54 to slide on the fixing seat 53, and the fourth spring 57 is squeezed until the limiting block 51 moves out of the limiting notch 56 on the limiting seat 55 and is disconnected from the limiting seat 55. At this time, the rotating disk 50 is rotated 180 degrees, and the rotating disk 50 drives the flip disk 15 to rotate at the same time, and the flip disk 15 drives the flip shaft 4 to rotate, and the flip disk 15 drives the shielding cloth 10 to cover the container. The blocking frame 7 and the placing rack 3 rotate until the blocking frame 7 rotates to the bottom of the flip plate 15. The mounting mechanism 26 ensures that the blocking frame 7 will not fall. At this time, the container opening faces upward. At this time, another set of limit blocks 51 on the rotating plate 50 corresponds to the limit slots 56 on the limit seat 55. The limit seat 55 is released to allow another set of limit blocks 51 to fit into the limit slots 56. The motor 47 is controlled to operate again, and the power shaft 48 drives the wind wheel 43 to rotate. At this time, wind flow is formed in the wind wheel 43. The force enters the outlet pipe 44 from the outlet end of the wind cover 42, and enters the shunt pipe 45 from the outlet pipe 44, and enters the blowing pipe 13 from the shunt pipe 45, and finally blows out from the blowing hole of the blowing pipe 13. Since the multiple groups of blowing pipes 13 are respectively located directly above the multiple groups of placement slots 5, the wind force blows into the inside of the container to treat the water vapor inside the container, which is convenient for the next step. After the treatment is completed, the cabinet 1 is opened, the shielding frame 7 is held as a whole, and pulled down, and the plug-in shaft 36 is disengaged. The container with the opening facing upward is connected to the receiving block 38, and the container falls directly onto the shielding cloth 10, which saves the time of manually taking out the containers from the placement rack 3 one by one, and reduces the intensity of manual processing as a whole. In addition, it is worth noting that after the shielding frame 7 is removed, the limit seat 55 is pulled again, and the turning disk 15 is driven by the rotating disk 50 to rotate in the opposite direction, thereby reversing the placement rack 3. At this time, the placement slot 5 is in the initial state with the wide mouth facing upward, which is convenient for the next steam sterilization work.

[0039] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.

[0040] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A steam disinfection device for a glycerin enema container, characterized in that, Comprising: A cabinet body (1), at the bottom end inside the cabinet body (1) there is a steam notch (2), above the steam notch (2) there is a placement rack (3), both ends of the placement rack (3) are fixedly connected with turning shafts (4), and on the placement rack (3) there are placement notches (5) opened; Also comprising: A shielding assembly (6), the shielding assembly (6) is arranged on the cabinet body (1) and is located above the placement rack (3), it includes a shielding frame (7) arranged inside the cabinet body (1) and above the placement rack (3), on both sides of the shielding frame (7) there are right-angle slots (8) opened, and at one end inside of the shielding frame (7) there is a material receiving roller (9) rotatably connected, on the material receiving roller (9) there is a shielding cloth (10) fixedly connected to one end thereof, and the other end of the shielding cloth (10) is fixedly connected with a material feeding roller (11) slidably connected with the right-angle slot (8); A blowing assembly (12), the blowing assembly (12) is arranged on the cabinet body (1) and is connected with the shielding assembly (6), it includes multiple groups of blowing air pipes (13) arranged at the top end inside the cabinet body (1), on the blowing air pipes (13) there are multiple groups of blowing holes opened, and multiple groups of the blowing air pipes (13) are respectively located directly above multiple groups of the placement notches (5); A flipping assembly (14), the flipping assembly (14) is arranged on the side of the cabinet body (1) and is connected with the turning shaft (4), it includes a flipping disk (15) arranged inside the cabinet body (1) and rotatably connected with its side, the flipping disk (15) is fixedly connected with the turning shaft (4), and the area of one side of the flipping disk (15) close to the placement rack (3) is larger than the other side.

2. The steam disinfection device for a glycerin enema container according to claim 1, characterized in that, The shielding assembly (6) includes a moving frame (16) arranged above the material feeding roller (11) and fixedly connected with it, both ends of the moving frame (16) are respectively located in two groups of the right-angle slots (8), one end of the moving frame (16) is fixedly connected with a bent sleeve (17), the bent sleeve (17) is threadedly connected with a threaded rod (18) rotatably connected with the side of the shielding frame (7), on the material feeding roller (11) there is a convex block (19) fixedly connected, on the convex block (19) there is a tension spring (20) fixedly connected to one end thereof, the other end of the tension spring (20) is fixedly connected with the end of the shielding frame (7), both ends of the moving frame (16) are fixedly connected with pressing pieces (21), the pressing pieces (21) are slidably connected with limiting rods (22), the bottom ends of the limiting rods (22) are fixedly connected with clamping rods (23) located on the shielding frame (7), between the clamping rods (23) and two groups of the pressing pieces (21) there are first springs (24) arranged, two groups of the first springs (24) are respectively sleeved on the limiting rods (22), the threaded rod (18) is connected with a docking mechanism (25) arranged on the cabinet body (1), and between the placement rack (3) and the shielding frame (7) there is an installation mechanism (26) for docking and installation between the two.

3. The steam disinfection device for a glycerol enema container according to claim 2, characterized in that, The docking mechanism (25) includes a docking shaft (27) provided on the side of the cabinet body (1) and movably connected thereto. A coil (28) fixedly connected to the outside of the cabinet body (1) is sleeved outside the docking shaft (27). An electromagnetic block (29) is fixedly connected to the coil (28). The docking shaft (27) penetrates through the side of the cabinet body (1), and a magnet block (30) is rotatably connected to the part of the docking shaft (27) outside the cabinet body (1). A second spring (31) sleeved on the docking shaft (27) is fixedly connected between the electromagnetic block (29) and the magnet block (30). After the electromagnetic block (29) is energized, its magnetism is opposite to that of the magnet block (30). An end of the docking shaft (27) outside the cabinet body (1) is fixedly connected to a telescopic shaft (32). A rectangular groove (33) is formed at the other end of the docking shaft (27) located in the cabinet body (1). A docking block (34) adapted to the rectangular groove (33) is fixedly connected to the threaded rod (18). One end of the docking block (34) close to the rectangular groove (33) is tapered.

4. The steam disinfection device for a glycerin enema container according to claim 3, wherein, The installation mechanism (26) includes multiple groups of fixing blocks (35) respectively provided on the side of the shielding frame (7) and fixedly connected thereto. A plug-in shaft (36) is fixedly connected below the fixing block (35). A groove (37) is formed at one end of the plug-in shaft (36) away from the fixing block (35). A corresponding number of receiving blocks (38) are provided directly below the plug-in shaft (36). Multiple groups of the receiving blocks (38) are all fixedly connected to the placement rack (3). The receiving blocks (38) are adapted to the plug-in shaft (36). Multiple groups of third springs (39) with one end fixedly connected thereto are provided in the receiving blocks (38). A sphere (40) adapted to the groove (37) is provided at the other end of the third spring (39).

5. A steam disinfection device for a glycerin enema container according to claim 4, characterized in that, The blowing assembly (12) includes a mounting frame (41) provided on the outside of the cabinet body (1) and fixedly connected thereto. The mounting frame (41) is rotatably connected to the telescopic shaft (32). A wind hood (42) is mounted on the mounting frame (41). A wind wheel (43) is provided in the wind hood (42). An air outlet pipe (44) with one end communicating with the inside thereof is provided at the air outlet end of the wind hood (42). The air outlet pipe (44) is integrally bent in a shape adapted to the side of the cabinet body (1). The other end of the air outlet pipe (44) is located inside the cabinet body (1). A shunt pipe (45) is fixedly connected to the end of the air outlet pipe (44) located inside the cabinet body (1). The shunt pipe (45) is fixedly connected to multiple groups of blowing pipes (13). The wind wheel (43) is connected to a power mechanism (46) provided on the mounting frame (41). The power mechanism (46) is used to provide power for the docking mechanism (25) and the wind wheel (43).

6. The steam disinfection device for a glycerol enema container according to claim 5, characterized in that, The power mechanism (46) includes a motor (47) disposed on and fixedly connected to the mounting frame (41). A power shaft (48) is fixedly connected to the output end of the motor (47). The power shaft (48) is fixedly connected to the wind wheel (43). A pulley group (49) for driving connection is disposed between the power shaft (48) and the telescopic shaft (32).

7. A steam disinfection device for a glycerin enema container according to claim 6, characterized in that, The flipping assembly (14) includes a rotating disk (50) disposed on the side of the cabinet body (1) and rotatably connected thereto. The rotating disk (50) is fixedly connected to the flipping disk (15). One side area of the rotating disk (50) located outside the cabinet body (1) is larger than the other side. Two groups of limiting blocks (51) are mirror-symmetrically disposed on the rotating disk (50). The limiting blocks (51) are connected to a limiting mechanism (52) disposed on the cabinet body (1). The limiting mechanism (52) is configured to limit the rotation of the rotating disk (50) through the limiting blocks (51).

8. A steam disinfection device for a glycerin enema container according to claim 7, characterized in that, The limiting mechanism (52) includes a fixed seat (53) disposed on and fixedly connected to the outer side surface of the cabinet body (1). A sliding rod (54) is slidably connected to the fixed seat (53). A limiting seat (55) is fixedly connected to one end of the sliding rod (54) close to the rotating disk (50). A limiting notch (56) adapted to the limiting block (51) is formed on the limiting seat (55). A fourth spring (57) sleeved on the sliding rod (54) is disposed between the limiting seat (55) and the fixed seat (53).

9. The steam disinfection device for a glycerol enema container according to claim 2, wherein, A lower pressing plate (58) located above the shielding cloth (10) is fixedly connected to the material feeding roller (11).

Citation Information

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