Atomizing head disinfection equipment for deep permeabilization treatment
The deep permeation therapy atomizing head disinfection device, which integrates negative pressure suction and fluid supply mechanisms, solves the problem that medical staff need to manually squeeze wounds in existing technologies, and realizes the convenience and practicality of automatically suctioning infected blood and atomizing disinfection.
Patent Information
- Application Number
- CN202422693100.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-05
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2034-11-05
AI Technical Summary
When treating animal bites or puncture wounds, existing nebulizers require medical staff to manually squeeze the wound to expel infected blood, resulting in high labor intensity, especially for deep wounds.
A deep permeation therapy nebulizer head disinfection device was designed, integrating a negative pressure suction mechanism and a liquid supply mechanism. It can automatically suction out infected blood and atomize disinfectant. The device includes a nebulizer, a sealing cover, a liquid supply mechanism, and a negative pressure suction mechanism. Infected blood is suctioned out through the sealing cover and disinfectant is atomized.
It achieves the functions of automatically sucking out infected blood and atomizing disinfection, reducing the labor intensity of medical staff and improving the convenience and practicality of use.
Smart Images

Figure CN223817973U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of medical devices, and in particular to a disinfection device for a deep permeation therapy atomizing head. Background Technology
[0002] Deep permeation therapy refers to the use of nebulization technology to break down medication into extremely fine particles, allowing the medication to penetrate deeply into the patient's lesion and improve treatment efficacy. Existing technologies include numerous nebulizers with patent applications numbered 202121577353.X, 202221875552.3, and 202223250589.X, which mainly consist of a nebulizing device and a mask. During use, the mask is placed on the surface of the patient's lesion, and then the disinfectant mist generated by the nebulizing device enters the mask, subsequently penetrating the lesion. The inventor believes that this method has the following problems: when disinfecting wounds from animal bites or nail punctures, staff must first squeeze the wound to expel infected blood before performing deep nebulization disinfection. Relying on medical staff to squeeze the wound is extremely labor-intensive, especially for deep wounds. Therefore, a nebulization disinfection device with the function of suctioning out infected blood is needed. Utility Model Content
[0003] To solve the above-mentioned technical problems, this utility model provides a deep permeation therapy atomizing head disinfection device that can automatically suck out infected blood from inside the patient's wound when treating the wound. It is easy to use, reduces the labor intensity of medical staff, and is highly practical.
[0004] This utility model discloses a deep permeation therapy nebulizer head disinfection device, comprising a base, a housing, and a sealing door. The housing is fixedly installed on the upper part of the base, and a chamber is provided inside the housing. An opening communicating with the chamber is provided at the rear end of the housing, and the sealing door is installed at the opening at the rear end of the housing. It also includes a nebulizer, a hose, a sealing cover, a liquid supply mechanism, and a negative pressure suction mechanism. The nebulizer is fixedly installed on the housing, and its output end is connected to the sealing cover via a hose. The sealing cover is placed on the housing. The liquid supply mechanism is installed inside the chamber of the housing, and its output end communicates with the nebulizer. The liquid supply mechanism has the function of delivering liquid medication. The negative pressure suction mechanism is installed on the housing and performs negative pressure suction... The suction mechanism has a suction function; when a patient's wound becomes infected, the negative pressure suction mechanism is used to remove the infected blood from the wound. Then, a sealing cover is placed over the wound, and a disinfectant solution is delivered to the nebulizer via a liquid supply mechanism. The nebulizer then atomizes the disinfectant solution into a disinfectant mist, which penetrates into the wound through a hose and sealing cover to disinfect the wound. This device automatically removes infected blood from the wound, making it convenient to use, reducing the workload of medical staff, and highly practical.
[0005] Preferably, the liquid supply mechanism includes a mixing tank, a liquid addition pipe, a delivery pump, a delivery pipe, and a stirring mechanism. The mixing tank is fixedly installed inside the chamber of the main body and has a cavity. The liquid addition pipe is installed on the mixing tank and communicates with it. A valve is installed on the liquid addition pipe. The delivery pump is installed on the mixing tank, and its input end communicates with the cavity of the mixing tank. The output end of the delivery pump communicates with the nebulizer through the delivery pipe. The stirring mechanism is installed on the mixing tank and has a stirring function. When performing nebulization disinfection on a patient's wound, a certain proportion of saline solution and disinfectant is added to the cavity of the mixing tank through the liquid addition pipe. Then, the stirring mechanism is turned on to fully mix the disinfectant and saline solution. After that, the delivery pump is turned on so that the disinfectant in the mixing tank cavity enters the nebulizer sequentially through the delivery pump and the delivery pipe. This facilitates the delivery of disinfectant and improves convenience.
[0006] Preferably, the stirring mechanism includes a motor, a rotating shaft, and multiple sets of stirring blades. The motor is fixedly mounted on the upper end of the mixing tank, the rotating shaft is rotatably mounted on the mixing tank, and the upper end of the rotating shaft is connected to the output end of the motor. The multiple sets of stirring blades are all fixedly mounted on the rotating shaft and are located inside the cavity of the mixing tank. When the disinfectant and saline solution are added to the cavity of the mixing tank, the motor is turned on. The motor causes the multiple sets of stirring blades to rotate through the rotating shaft. During the rotation, the multiple sets of stirring blades promote the mixing between the saline solution and the disinfectant solution, improving convenience.
[0007] Preferably, the negative pressure suction mechanism includes a delivery hose, a sealing cover, and a negative pressure mechanism. The negative pressure mechanism is located inside the chamber of the housing. The output end of the delivery hose is connected to the negative pressure mechanism, and the input end of the delivery hose is connected to the sealing cover. The sealing cover is placed on the housing. The negative pressure mechanism has a negative pressure function. When it is necessary to suction out infected blood from a patient's wound, the sealing cover is placed over the patient's wound, and then the negative pressure mechanism is opened. Under the action of negative pressure, the infected blood from the patient is sequentially sucked into the negative pressure mechanism through the sealing cover and the delivery hose. This facilitates the suction out of the patient's infected blood.
[0008] Preferably, the negative pressure mechanism includes a collection box, a filter plate, and a vacuum pump. The collection box is fixedly installed in the cavity of the box body, and a working chamber is provided inside the collection box. The filter plate is fixedly installed in the working chamber of the collection box, and the vacuum pump is installed on the collection box. The input end of the vacuum pump is connected to the working chamber of the collection box, and the output end of the delivery hose is connected to the working chamber of the collection box. When the infected blood from the patient's wound is sucked out, the vacuum pump is turned on to create a negative pressure in the working chamber of the collection box. This allows the blood from the patient's wound to pass through the sealed cover and the delivery hose sequentially into the filter plate. Solid impurities in the blood fall onto the filter plate, while the infected blood falls into the lower part of the working chamber of the collection box, thus improving convenience.
[0009] Preferably, the base is provided with an observation window; this facilitates the monitoring of the working status of the equipment inside the enclosure.
[0010] Preferably, a rubber pad is provided on the end face of the sealing cover; this feature improves the comfort of the sealing cover when it fits against the patient's skin at the wound site.
[0011] Compared with the prior art, the beneficial effects of this utility model are: when treating a patient's wound, it can automatically suck out the infected blood inside the wound, which is convenient to use, reduces the labor intensity of medical staff, and is highly practical. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the first isometric structure of this utility model;
[0013] Figure 2 This is a schematic diagram of the second isometric structure of this utility model;
[0014] Figure 3 It is a structural diagram of the collection box, delivery hose, and sealed enclosure, etc.
[0015] Figure 4 This is a schematic diagram of the stirring mechanism;
[0016] Figure 5 This is a structural diagram of the mixing tank, motor, and liquid addition pipe;
[0017] Figure 6 This is a cross-sectional structural diagram of the present invention.
[0018] The following are labels in the attached diagram: 1. Base; 2. Box body; 3. Sealed door; 4. Atomizer; 5. Hose; 6. Sealed cover; 7. Mixing box; 8. Liquid addition pipe; 9. Delivery pump; 10. Delivery pipe; 11. Motor; 12. Rotating shaft; 13. Stirring blade; 14. Delivery hose; 15. Sealed cover; 16. Collection box; 17. Filter plate; 18. Vacuum pump; 20. Observation window. Detailed Implementation
[0019] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. This utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of this utility model more thorough and complete. Example 1
[0020] like Figures 1 to 6 The present invention relates to a deep scalp treatment nebulizer head disinfection device, comprising a base 1, a housing 2, a sealing door 3, a nebulizer 4, a flexible hose 5, a sealing cover 6, a liquid supply mechanism, and a negative pressure suction mechanism. The housing 2 is fixedly installed on the upper part of the base 1. A chamber is provided inside the housing 2, and an opening communicating with the chamber is provided at the rear end of the housing 2. The sealing door 3 is installed at the opening at the rear end of the housing 2. The nebulizer 4 is fixedly installed on the housing 2, and its output end is connected to the sealing cover 6 via the flexible hose 5. The sealing cover 6 is placed on the housing 2. The liquid supply mechanism is installed inside the chamber of the housing 2, and its output end communicates with the nebulizer 4. The liquid supply mechanism has the function of delivering liquid medicine. The negative pressure suction mechanism is installed in the housing. 2. The negative pressure suction mechanism has a suction function. When a patient's wound becomes infected, the negative pressure suction mechanism is used to suction out the infected blood from the wound. Then, the sealing cover 6 is placed on the wound. The disinfectant is then delivered to the nebulizer 4 through the liquid supply mechanism. The nebulizer 4 atomizes the disinfectant to form a disinfectant mist. The disinfectant mist then penetrates into the wound through the hose 5 and the sealing cover 6 to disinfect the wound. When treating a patient's wound, it can automatically suction out the infected blood from inside the wound. It is convenient to use, reduces the workload of medical staff, and is highly practical.
[0021] like Figure 5 and Figure 6The liquid supply mechanism includes a mixing tank 7, a liquid addition pipe 8, a delivery pump 9, a delivery pipe 10, and a stirring mechanism. The mixing tank 7 is fixedly installed in the chamber of the housing 2. The mixing tank 7 has a cavity. The liquid addition pipe 8 is installed on the mixing tank 7 and is connected to the mixing tank 7. The liquid addition pipe 8 is equipped with a valve. The delivery pump 9 is installed on the mixing tank 7. The input end of the delivery pump 9 is connected to the cavity of the mixing tank 7, and the output end of the delivery pump 9 is connected to the nebulizer 4 through the delivery pipe 10. The stirring mechanism is installed on the mixing tank 7 and has a stirring function. When performing nebulization disinfection on a patient's wound, a certain proportion of saline and disinfectant is added to the cavity of the mixing tank 7 through the liquid addition pipe 8. Then, the stirring mechanism is turned on to fully mix the disinfectant and saline. Then, the delivery pump 9 is turned on so that the disinfectant in the chamber of the mixing tank 7 enters the nebulizer 4 sequentially through the delivery pump 9 and the delivery pipe 10. This facilitates the delivery of disinfectant and improves convenience.
[0022] like Figure 4 and Figure 5 The stirring mechanism includes a motor 11, a rotating shaft 12, and multiple sets of stirring blades 13. The motor 11 is fixedly installed on the upper end of the mixing tank 7, and the rotating shaft 12 is rotatably installed on the mixing tank 7. The upper end of the rotating shaft 12 is connected to the output end of the motor 11. The multiple sets of stirring blades 13 are all fixedly installed on the rotating shaft 12 and are all located in the cavity of the mixing tank 7. When the disinfectant and saline are added to the cavity of the mixing tank 7, the motor 11 is turned on. The motor 11 causes the multiple sets of stirring blades 13 to rotate through the rotating shaft 12. During the rotation, the multiple sets of stirring blades 13 promote the mixing between the saline and the disinfectant, improving convenience.
[0023] like Figure 3 and Figure 6 The negative pressure suction mechanism includes a delivery hose 14, a sealing cover 15, and a negative pressure mechanism. The negative pressure mechanism is located inside the chamber of the housing 2. The output end of the delivery hose 14 is connected to the negative pressure mechanism, and the input end of the delivery hose 14 is connected to the sealing cover 15. The sealing cover 15 is placed on the housing 2. The negative pressure mechanism has a negative pressure function. When it is necessary to suction out infected blood from a patient's wound, the sealing cover 15 is placed on the patient's wound, and then the negative pressure mechanism is opened. Under the action of negative pressure, the infected blood from the patient is sucked into the negative pressure mechanism through the sealing cover 15 and the delivery hose 14 in sequence. This facilitates the suction out of the patient's infected blood.
[0024] like Figure 3The negative pressure mechanism includes a collection box 16, a filter plate 17, and a vacuum pump 18. The collection box 16 is fixedly installed in the cavity of the box body 2, and a working chamber is provided inside the collection box 16. The filter plate 17 is fixedly installed in the working chamber of the collection box 16, and the vacuum pump 18 is installed on the collection box 16. The input end of the vacuum pump 18 is connected to the working chamber of the collection box 16, and the output end of the delivery hose 14 is connected to the working chamber of the collection box 16. When the infected blood from the patient's wound is sucked out, the vacuum pump 18 is turned on to create a negative pressure in the working chamber of the collection box 16. This allows the blood from the patient's wound to pass through the sealed cover 15 and the delivery hose 14 into the filter plate 17. Solid impurities in the blood fall onto the filter plate 17, and the infected blood falls into the lower part of the working chamber of the collection box 16, thus improving convenience.
[0025] An observation window 20 is provided on the enclosure 2; this feature facilitates the monitoring of the working status of the equipment inside the enclosure 2.
[0026] The housing 2 is equipped with a controller, which is electrically connected to the vacuum pump 18, the motor 11 and the delivery pump 9. Example 2
[0027] Based on Example 1, a rubber pad is provided on the end face of the sealing cover 6; through the above-mentioned arrangement, the comfort of the sealing cover 6 when it fits against the skin of the patient's wound is improved.
[0028] The nebulizer 4, sealing cover 6, delivery pump 9, motor 11, stirring plate 13, and vacuum pump 18 of the deep permeation therapy nebulizer head disinfection device of this utility model are all purchased from the market. Technical personnel in this industry only need to install and operate them according to the accompanying instruction manual, without requiring any creative work from those skilled in the art.
[0029] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. A deep permeation therapy nebulizer head disinfection device, comprising a base (1), a housing (2), and a sealing door (3), wherein the housing (2) is fixedly installed on the upper end of the base (1), a chamber is provided inside the housing (2), an opening communicating with the chamber is provided at the rear end of the housing (2), and the sealing door (3) is installed at the opening at the rear end of the housing (2); characterized in that, It also includes an atomizer (4), a hose (5), a sealing cover (6), a liquid supply mechanism, and a negative pressure suction mechanism. The atomizer (4) is fixedly installed on the housing (2). The output end of the atomizer (4) is connected to the sealing cover (6) through the hose (5). The sealing cover (6) is placed on the housing (2). The liquid supply mechanism is installed in the chamber of the housing (2). The output end of the liquid supply mechanism is connected to the atomizer (4). The liquid supply mechanism has the function of delivering liquid medicine. The negative pressure suction mechanism is installed on the housing (2). The negative pressure suction mechanism has the function of suction.
2. The deep penetration therapy nebulizer head disinfection device as described in claim 1, characterized in that, The liquid supply mechanism includes a mixing tank (7), a liquid adding pipe (8), a delivery pump (9), a delivery pipe (10), and a stirring mechanism. The mixing tank (7) is fixedly installed in the chamber of the box body (2). The mixing tank (7) has a cavity. The liquid adding pipe (8) is installed on the mixing tank (7) and is connected to the mixing tank (7). A valve is installed on the liquid adding pipe (8). The delivery pump (9) is installed on the mixing tank (7). The input end of the delivery pump (9) is connected to the cavity of the mixing tank (7). The output end of the delivery pump (9) is connected to the atomizer (4) through the delivery pipe (10). The stirring mechanism is installed on the mixing tank (7) and has a stirring function.
3. The deep penetration therapy nebulizer head disinfection device as described in claim 2, characterized in that, The stirring mechanism includes a motor (11), a rotating shaft (12), and multiple sets of stirring blades (13). The motor (11) is fixedly installed on the upper end of the mixing box (7), and the rotating shaft (12) is rotatably installed on the mixing box (7). The upper end of the rotating shaft (12) is connected to the output end of the motor (11). Multiple sets of stirring blades (13) are all fixedly installed on the rotating shaft (12), and multiple sets of stirring blades (13) are all located in the cavity of the mixing box (7).
4. The deep penetration therapy nebulizer head disinfection device as described in claim 1, characterized in that, The negative pressure suction mechanism includes a delivery hose (14), a sealing cover (15), and a negative pressure mechanism. The negative pressure mechanism is located in the chamber of the box (2). The output end of the delivery hose (14) is connected to the negative pressure mechanism, and the input end of the delivery hose (14) is connected to the sealing cover (15). The sealing cover (15) is placed on the box (2). The negative pressure mechanism has the function of negative pressure.
5. The deep penetration therapy nebulizer head disinfection device as described in claim 4, characterized in that, The negative pressure mechanism includes a collection box (16), a filter plate (17), and a vacuum pump (18). The collection box (16) is fixedly installed in the cavity of the box body (2). A working chamber is provided inside the collection box (16). The filter plate (17) is fixedly installed in the working chamber of the collection box (16). The vacuum pump (18) is installed on the collection box (16). The input end of the vacuum pump (18) is connected to the working chamber of the collection box (16). The output end of the delivery hose (14) is connected to the working chamber of the collection box (16).
6. The deep penetration therapy nebulizer head disinfection device as described in claim 1, characterized in that, The box (2) is provided with an observation window (20).
7. The deep penetration therapy nebulizer head disinfection device as described in claim 1, characterized in that, A rubber pad is provided on the end face of the sealing cover (6).
Citation Information
Patent Citations
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