Ventilation rod pipe feeding mechanism for oxygen humidification bottle
By designing a feeding mechanism for the ventilation rod pipe of oxygen humidification cylinders, the automatic disinfection, cleaning, and drying of the ventilation rod pipes were achieved, solving the health hazards and low efficiency caused by manual operation in existing technologies and improving production progress.
Patent Information
- Application Number
- CN202521957401.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-11
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-09-11
AI Technical Summary
The cleaning and feeding of the ventilation rod pipes of existing oxygen humidification cylinders mainly rely on manual operation, which leads to health hazards for workers and low production efficiency.
An oxygen humidification bottle ventilation rod pipe feeding mechanism was designed, including a first support frame, a second support frame, a feeding component, a cleaning component, and a feeding component. The ventilation rod pipe is automatically disinfected, cleaned, and dried by a lifting clamping component, and the entire process is automated by a moving component and a feeding component.
It enables automated disinfection, cleaning, and drying of ventilation rod pipes, reducing the burden of manual operation, improving production efficiency, and avoiding health risks caused by manual intervention.
Smart Images

Figure CN224677224U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of medical device technology, specifically to a feeding mechanism for an oxygen humidification bottle using a ventilation rod pipe. Background Technology
[0002] In the medical field, oxygen humidification bottles are commonly used medical devices. As a part of the oxygen humidification bottle, the ventilation rod tubing needs to be disinfected and cleaned before assembly. Currently, the cleaning and loading of ventilation rod tubing mostly rely on manual operation, which not only exposes workers to disinfectant for too long, which is likely to cause harm to workers, but also makes it easy for fatigue to occur and make mistakes when loading ventilation rod tubing in batches, affecting the operation of the production line and the production progress. Therefore, there is a need for a ventilation rod tubing loading mechanism for oxygen humidification bottles. Utility Model Content
[0003] To address the problems existing in the prior art, the purpose of this utility model is to provide a feeding mechanism for the ventilation rod pipe of an oxygen humidification bottle, which can realize automatic disinfection, cleaning and feeding of ventilation rod pipes in batches without manual intervention, thereby improving production progress.
[0004] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a feeding mechanism for an oxygen humidification bottle using a ventilation rod pipe, comprising a first support frame and a second support frame. A feeding component is provided on the first support frame, and a cleaning component is provided on the second support frame. A moving component is provided on the second support frame above the cleaning component. A feeding component is provided at one end of the second support frame away from the first support frame. The cleaning component includes a disinfection box, a cleaning box, and a drying box. Lifting clamps and U-shaped frames are installed on the sides of the disinfection box, the cleaning box, and the drying box, respectively. The lifting clamps clamp the ventilation rod pipe into the disinfection box, the cleaning box, and the drying box.
[0005] In some embodiments, the lifting clamping member includes a first cylinder connected to the U-shaped frame. The telescopic part of the first cylinder is connected to a movable frame, which is slidably connected to the U-shaped frame. A second cylinder and a third cylinder are respectively installed at both ends of the movable frame. A first moving rod is installed on the second cylinder, and a first half-clamp is fixedly connected to the first moving rod. A second moving rod is installed on the third cylinder, and a second half-clamp is fixedly connected to the second moving rod. The first moving rod and the second moving rod are slidably connected, and the first half-clamp and the second half-clamp cooperate to clamp the ventilation rod pipe.
[0006] In some embodiments, a slide bar is provided on the side of the first movable rod, and a sliding groove is provided on the second movable rod, wherein the slide bar is slidably connected to the sliding groove.
[0007] In some embodiments, the moving component includes a first electric actuator, the telescopic portion of which is connected to three moving clamps via a slider. In some embodiments, the feeding component includes a flipping component and a moving clamping component.
[0008] In some embodiments, the drying chamber is provided with a ventilation pipe, and the ventilation pipe is provided with an air outlet.
[0009] In summary, this utility model has the following beneficial effects: This invention utilizes the coordinated operation of the feeding component on the first support frame, the impurity removal component on the second support frame, the moving component, and the feeding component to allow a batch of ventilation rod pipes to enter the middle sequentially, thus achieving an automated disinfection, cleaning, and drying process for the batch of ventilation rod pipes. This greatly reduces the burden of manual operation and improves work efficiency. Furthermore, it can utilize the feeding component for automatic feeding, achieving full automation without manual intervention and improving production progress. Attached Figure Description
[0010] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a partial structural schematic diagram of the present invention; Figure 3 This is a schematic diagram of the overall structure of the lifting clamping component of this utility model; Figure 4 This is a schematic diagram of the overall structure of the drying oven of this utility model.
[0011] In the diagram: 1. First support frame; 2. Second support frame; 3. Moving assembly; 31. First electric push rod; 32. Moving clamp; 4. Impurity removal assembly; 41. Disinfection box; 42. Cleaning box; 43. Drying box; 431. Ventilation pipe; 432. Air outlet; 44. Lifting clamping component; 441. First cylinder; 442. Moving frame; 443. Second cylinder; 444. First moving rod; 445. First half clamp; 446. Slide rod; 447. Third cylinder; 448. Second moving rod; 449. Second half clamp; 450. Slide groove; 45. U-shaped frame; 5. Tilting assembly; 6. Moving clamping assembly. Detailed Implementation
[0012] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0013] See Figure 1-4 An oxygen humidification bottle venting pipe feeding mechanism includes a first support frame 1 and a second support frame 2. The first support frame 1 is provided with a feeding component, and the second support frame 2 is provided with a cleaning component 4. A moving component 3 is provided on the second support frame 2 above the cleaning component 4. The feeding component is provided at the end of the second support frame 2 away from the first support frame 1. The cleaning component 4 includes a disinfection box 41, a cleaning box 42, and a drying box 43. Lifting clamps 44 and U-shaped frames 45 are installed on the sides of the disinfection box 41, the cleaning box 42, and the drying box 43, respectively. The lifting clamps 44 clamp the venting pipe and allow it to enter the disinfection box 41, the cleaning box 42, and the drying box 43. In use, the operator places a batch of ventilation rods and pipes into the feeding device, which then releases the batches of ventilation rods and pipes one by one. The feeding device is an existing intermittent batch feeding structure, which will not be described in detail here. Next, the operator or the existing intelligent program-controlled lifting clamping device 44 clamps the batch of ventilation rods and pipes from the feeding device, and then places the batch of ventilation rods and pipes into the disinfection box 41 to soak in disinfectant. After that, the batch of ventilation rods and pipes is clamped up, and then the moving component 3 is controlled to move the disinfected batch of ventilation rods and pipes to the cleaning box 42. Next, the lifting clamping component 44 at the cleaning box 42 clamps the batch of ventilation rod pipes and moves them into the cleaning box 42 for cleaning. After cleaning, the moving component 3 transfers the batch of ventilation rod pipes to the top of the drying box 43. The lifting clamping component 44 above the drying box 43 moves the batch of ventilation rod pipes into the drying box 43 for drying. Finally, the loading component clamps the dried batch of ventilation rod pipes and transfers them to the external conveyor belt for conveying, thus completing the loading of the batch of ventilation rod pipes. The whole process is automated and requires no manual intervention, improving production progress.
[0014] In some embodiments, the lifting clamping member 44 includes a first cylinder 441, which is connected to a U-shaped frame 45. The telescopic part of the first cylinder 441 is connected to a movable frame 442, which is slidably connected to the U-shaped frame 45. A second cylinder 443 and a third cylinder 447 are respectively installed at both ends of the movable frame 442. A first moving rod 444 is installed on the second cylinder 443, and a first half-clamp 445 is fixedly connected to the first moving rod 444. A second moving rod 448 is installed on the third cylinder 447, and a second half-clamp 449 is fixedly connected to the second moving rod 448. The first moving rod 444 and the second moving rod 448 are slidably connected, and the first half-clamp 445 and the second half-clamp 449 cooperate to clamp the ventilation rod pipe. When the moving component 3 delivers a batch of ventilation rod pipes to the disinfection box 41, cleaning box 42, and drying box 43, taking the lifting clamp 44 at the disinfection box 41 as an example, the operator or the existing intelligent program controls the extension of the first cylinder 441. The first cylinder 441 drives the moving frame 442 to move upward on the U-shaped frame 45 via the slider. Then, the moving frame 442 drives the second cylinder 443 and the third cylinder 447 to move upward. After that, the second cylinder 443 and the third cylinder 447 extend respectively. The second cylinder 443 pushes the first moving rod 444 to move towards the third cylinder 447, and the third cylinder 447 pushes the second moving rod 448 to move towards the second cylinder 443, thereby making the first half clamp 445 and the second half clamp 449 far apart. The components are in an open position. Then, the moving component 3 places the batch of ventilation rod pipes between the first half clamp 445 and the second half clamp 449. Subsequently, the operator or the existing intelligent program controls the second cylinder 443 and the third cylinder 447 to reset, so that the first half clamp 445 and the second half clamp 449 move closer to each other and clamp the ventilation rod pipes. Then, the first cylinder 441 is controlled to contract, driving the first moving frame 442 to move downward to reset, so that the batch of ventilation rod pipes enter the disinfection box 41 to complete the disinfection. Finally, the first cylinder 441 is controlled to extend, and the batch of ventilation rod pipes are transported out of the disinfection box 41, so that the moving component 3 can clamp and send them into the cleaning box 42 for cleaning. After cleaning, they are transported to the drying box 43 for drying through the moving component 3.
[0015] In some embodiments, a sliding rod 446 is provided on the side of the first moving rod 444, and a sliding groove 450 is provided on the second moving rod 448. The sliding rod 446 is slidably connected to the sliding groove 450. When the moving assembly 3 transports a batch of ventilation rod pipes to the lifting clamping member 44, the operator or the existing intelligent program controls the extension of the second cylinder 443 and the third cylinder 447, so that the sliding rod 446 on the first moving rod 444 slides on the sliding groove 450 of the second moving rod 448, thereby allowing the first half clamp 445 and the second half clamp 449 to open. When the ventilation rod pipe is placed on the first half clamp 445 and the second half clamp 449, the second cylinder 443 and the third cylinder 447 are controlled to reset, so that the first half clamp 445 and the second half clamp 449 move closer to each other and clamp the ventilation rod pipe.
[0016] In some embodiments, the moving assembly 3 includes a first electric push rod 31, the telescopic portion of which is connected to three moving clamps 32 via a slider. When cleaning and drying a batch of ventilation rod pipes, the operator or an existing intelligent program controls the first electric push rod 31 in the moving assembly 3 to move back and forth, causing the three moving clamps 32 to respectively clamp a batch of ventilation rod pipes and move them downwards, placing them between the first half-clamp 445 and the second half-clamp 449 of the disinfection box 41, the cleaning box 42, and the drying box 43. The ventilation rod pipes clamped by the three moving clamps 32 are attached to... Figure 1 The diagram shows, from left to right, uncleaned ventilation rod pipes, cleaned ventilation rod pipes, and dried ventilation rod pipes. This cycle is repeated to achieve batch feeding of ventilation rod pipes. In some embodiments, the feeding component includes a tilting assembly 5 and a moving clamping assembly 6. After the ventilation rod pipes have been dried in the drying chamber 43, the operator or an existing intelligent program controls the tilting assembly 5 to move the batch of ventilation rod pipes from the attached... Figure 3 The horizontal position shown is flipped to a vertical position, with one end of the venting rod pipe facing the moving clamping assembly 6 and the other end facing the flipping assembly 5. Finally, the moving clamping assembly 6 is controlled to transport the batch of venting rod pipes to the next process. The flipping assembly 5 and the moving clamping assembly 6 are both existing technologies and will not be described in detail here.
[0017] In some embodiments, a ventilation pipe 431 is provided inside the drying chamber 43, and an air outlet 432 is provided on the ventilation pipe 431. After the ventilation rod pipe is transported from the cleaning chamber 42 to the drying chamber 43, the operator or a preset intelligent program controls an external fan to deliver air to the ventilation pipe 431. The air is blown through the air outlet 432 onto the ventilation rod pipe, thereby drying the ventilation rod pipe. Finally, it is transported to the next process by the flipping component 5 and the moving clamping component 6.
[0018] This specific embodiment is merely an explanation of the present utility model and is not intended to limit the present utility model. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but as long as they are within the scope of the claims of the present utility model, they are protected by patent law.
Claims
1. A feeding mechanism for an oxygen humidification bottle via a ventilation rod pipe, comprising a first support frame (1) and a second support frame (2), characterized in that: The first support frame (1) is provided with a feeding component, the second support frame (2) is provided with a cleaning component (4), the second support frame (2) is provided with a moving component (3) above the cleaning component (4), the second support frame (2) is provided with a feeding component at one end away from the first support frame (1), the cleaning component (4) includes a disinfection box (41), a cleaning box (42) and a drying box (43), the sides of the disinfection box (41), the cleaning box (42) and the drying box (43) are all equipped with lifting clamps (44) and U-shaped frames (45), the lifting clamps (44) clamp the ventilation rod pipes and enter the disinfection box (41), the cleaning box (42) and the drying box (43) respectively.
2. The oxygen humidification bottle venting pipe feeding mechanism according to claim 1, characterized in that: The lifting clamp (44) includes a first cylinder (441), which is connected to the U-shaped frame (45). The telescopic part of the first cylinder (441) is connected to a movable frame (442). The movable frame (442) is slidably connected to the U-shaped frame (45). A second cylinder (443) and a third cylinder (447) are respectively installed at both ends of the movable frame (442). A first moving rod (444) is installed on the second cylinder (443). A first half-clamp (445) is fixedly connected to the first moving rod (444). A second moving rod (448) is installed on the third cylinder (447). A second half-clamp (449) is fixedly connected to the second moving rod (448). The first moving rod (444) and the second moving rod (448) are slidably connected. The first half-clamp (445) and the second half-clamp (449) cooperate to clamp the ventilation rod pipe.
3. The oxygen humidification bottle venting pipe feeding mechanism according to claim 2, characterized in that: The first moving rod (444) has a sliding rod (446) on its side, and the second moving rod (448) has a sliding groove (450) on its side. The sliding rod (446) is slidably connected to the sliding groove (450).
4. The oxygen humidification bottle venting pipe feeding mechanism according to claim 1, characterized in that: The moving component (3) includes a first electric push rod (31), and the telescopic part of the first electric push rod (31) is connected to three moving clips (32) via a slider.
5. The oxygen humidification bottle venting pipe feeding mechanism according to claim 1, characterized in that: The loading component includes a flipping assembly (5) and a moving clamping assembly (6).
6. The oxygen humidification bottle venting pipe feeding mechanism according to claim 1, characterized in that: The drying oven (43) is equipped with a ventilation pipe (431) and an air outlet (432) on the ventilation pipe (431).