A veterinary wound cleaning apparatus

By setting up an independent heating space and heating mechanism at the top of the storage tank, combined with a liquid level sensor and baffle design, the problem of insufficient warm cleaning fluid in the storage tank is solved, enabling continuous replenishment of warm cleaning fluid during the cleaning process and improving the convenience of veterinary wound cleaning.

CN224345038UActive Publication Date: 2026-06-12淇县农业综合行政执法大队
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Patent Information

Application Number
CN202423313143.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2026-06-12
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

Existing veterinary wound cleaning equipment has a limited supply of warm cleaning solution in the reservoir during use, and newly added cleaning solution can affect the overall temperature, causing inconvenience in use.

Method used

An independent heating space is set at the top of the liquid storage tank, and controlled by a heating mechanism and a liquid level sensor, allowing warm cleaning fluid to be added during the cleaning process. The combination of baffles and hollow partitions ensures that the newly added cleaning fluid does not affect the overall temperature.

Benefits of technology

It enables the continuous replenishment of warm cleaning solution during the cleaning process, reducing veterinarians' concerns about the amount of cleaning solution used and improving the convenience of wound cleaning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a veterinary wound cleaning equipment, including cleaning shell, the inside of cleaning shell is equipped with liquid storage tank, and the liquid outlet of liquid storage tank is equipped with high pressure pipe, and the end of high pressure pipe is worn out the inside of cleaning shell and is equipped with shower nozzle, still include heating mechanism, heating mechanism: it includes heating plate no.
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Description

Technical Field

[0001] This utility model relates to the field of animal medical technology, specifically a veterinary wound cleaning device. Background Technology

[0002] Veterinarians are doctors who specialize in the prevention, diagnosis, and treatment of animal diseases. They utilize medical methods to promote harmony between the animal's body, microorganisms, and the natural environment. A veterinarian's work extends beyond treating animal diseases; it also includes animal health management and disease prevention. When treating external wounds on animals, veterinarians use cleaning equipment to clean the wounds to reduce the risk of bacterial infection. Veterinary wound cleaning equipment is widely used in veterinary clinics, animal hospitals, pet rescue centers, and wildlife conservation organizations, and is particularly suitable for the emergency treatment of animal bites, abrasions, and infected wounds. In existing technologies, when using cleaning equipment… Medical staff input the cleaning solution into the water tank through the water inlet, and start the water pump by controlling the switch. The pump draws the cleaning solution from the tank and sprays it out through the spray pipe. The high-pressure water flow washes the wound, cleaning away dirt inside and reducing the chance of infection. At the same time, the cleaning equipment is also equipped with a heating element to heat the cleaning solution and reduce irritation to the wound. However, some cleaning equipment has a fixed amount of warm cleaning solution stored in the storage tank, which makes it inconvenient for veterinarians to use due to concerns about the amount of cleaning solution used. Even in some cleaning equipment, the cleaning solution can be added during use, but the new cleaning solution will affect the overall temperature and irritate the wound. Utility Model Content

[0003] The technical problem to be solved by this utility model is to overcome the existing defects and provide a veterinary wound cleaning device. An independent heating space is set at the top of the storage tank, which allows warm cleaning solution to be added during the use of the cleaning device. The newly added cleaning solution will not affect the overall temperature, reducing veterinarians' concerns about the amount of cleaning solution used and making it more convenient for veterinarians to clean animal wounds. This can effectively solve the problems in the background art.

[0004] To achieve the above objectives, the present invention provides the following technical solution: a veterinary wound cleaning device, comprising a cleaning shell, wherein a liquid storage tank is provided inside the cleaning shell, a high-pressure pipe is provided at the outlet of the liquid storage tank, the end of the high-pressure pipe extends out of the interior of the cleaning shell and is provided with a nozzle, and a heating mechanism is also included.

[0005] Heating mechanism: It includes heating plate one, heating plate two, hollow partition and baffle. Heating plate one and heating plate two are respectively set at the upper and lower ends of the inside of the liquid storage tank. The hollow partition is set in the middle of the liquid storage tank and is located between heating plate one and heating plate two. The baffle is slidably connected to the inside of the hollow partition. Both the baffle and the hollow partition are provided with drainage holes. An independent heating space is set at the upper end of the liquid storage tank, which can add warm cleaning solution during the use of the cleaning equipment. The newly added cleaning solution will not affect the overall temperature, providing more cleaning solution for animal wound cleaning, reducing veterinarians' concerns about the amount of cleaning solution used, and making it more convenient for veterinarians to clean animal wounds.

[0006] Furthermore, a microcontroller is installed at the upper part of the cleaning shell. The input terminal of the microcontroller is electrically connected to an external power source, and the input terminals of heating plate one and heating plate two are both electrically connected to the output terminal of the microcontroller to control the start and stop of the overall device.

[0007] Furthermore, the heating mechanism also includes an electric push rod, which is located at the left end of the hollow partition. The right end of the extension end of the electric push rod is fixedly connected to the baffle, and the input end of the electric push rod is electrically connected to the output end of the microcontroller to provide power for the movement of the baffle.

[0008] Furthermore, the heating mechanism also includes a gantry frame and a sealing baffle. The gantry frame is respectively disposed at the front and rear ends of the upper surface of the baffle, and a sealing baffle is provided between the upper ends of the two gantry frames to seal the liquid inlet of the storage tank.

[0009] Furthermore, the heating mechanism also includes a connecting hole and a float. The connecting hole is located at the left end of the sealing baffle, and the float is vertically slidably connected inside the connecting hole to seal the inlet of the storage tank by utilizing the height of the liquid level.

[0010] Furthermore, the lower end of the float is provided with a guide post, which is vertically slidably connected to the guide hole at the lower end of the connecting hole. A spring is provided between the float and the support plate at the lower end of the connecting hole, and the spring is movably sleeved on the outer arc surface of the guide post to provide guiding support for the movement of the float.

[0011] Furthermore, a liquid level sensor is provided at the lower end of the liquid storage tank. The output of the liquid level sensor is electrically connected to the input of the microcontroller to detect changes in the liquid level inside the liquid storage tank.

[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: This veterinary wound cleaning device has the following advantages:

[0013] An independent heating space is set at the top of the storage tank, which allows warm cleaning solution to be added during the use of the cleaning equipment. The newly added cleaning solution will not affect the overall temperature, providing more cleaning solution for animal wound cleaning, reducing veterinarians' concerns about the amount of cleaning solution used, and making it more convenient for veterinarians to clean animal wounds. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the structure of this utility model;

[0015] Figure 2 This is a structural schematic diagram of the overall device of this utility model, viewed from the front and in cross-section.

[0016] Figure 3 This is a structural schematic diagram of the heating mechanism of this utility model, viewed from the front and in cross-section.

[0017] Figure 4 This is a structural schematic diagram of the heating mechanism of this utility model in an exploded frontal cross-section.

[0018] In the diagram: 1 Cleaning shell, 2 Liquid storage tank, 3 High-pressure pipe, 4 Nozzle, 5 Heating mechanism, 51 Heating plate one, 52 Heating plate two, 53 Hollow partition, 54 Baffle, 55 Electric push rod, 56 Gantry frame, 57 Baffle, 58 Connecting hole, 59 Float, 6 Microcontroller, 7 Liquid level sensor, 8 Spring, 9 Guide column. Detailed Implementation

[0019] 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.

[0020] Please see Figure 1-4 This embodiment provides a technical solution: a veterinary wound cleaning device, including a cleaning shell 1, which provides space for the cleaning components. The cleaning shell 1 is provided with a liquid storage tank 2, which provides space for storing cleaning fluid. A high-pressure pipe 3 is provided at the outlet of the liquid storage tank 2 to transport the high-pressure cleaning fluid. A water pump is connected in series in the middle of the high-pressure pipe 3 to provide power for the transport of the cleaning fluid. The end of the high-pressure pipe 3 extends out of the interior of the cleaning shell 1 and is provided with a nozzle 4 to spray out the high-pressure cleaning fluid. It also includes a heating mechanism 5.

[0021] Heating mechanism 5 includes a first heating plate 51, a second heating plate 52, a hollow partition 53, and a baffle 54. The first heating plate 51 and the second heating plate 52 are respectively located at the upper and lower ends of the interior of the liquid storage tank 2. The first heating plate 51 is located at the lower end of the interior of the liquid storage tank 2, and the second heating plate 52 is located at the upper end. The hollow partition 53 is located in the middle of the liquid storage tank 2, between the first heating plate 51 and the second heating plate 52. The baffle 54 is laterally slidably connected inside the hollow partition 53. Both the baffle 54 and the hollow partition 53 have drainage holes on their surfaces. A microcontroller 6 is located at the upper end of the interior of the cleaning shell 1. The input terminal of the microcontroller 6 is electrically connected to an external power source. The input terminals of the first heating plate 51 and the second heating plate 52 are both electrically connected to the output terminal of the microcontroller 6. Heating plates 52 and 51 heat the cleaning fluid inside the storage tank 2 to a specified temperature. During the cleaning process, the drain holes on the surface of baffle 54 and hollow partition 53 are misaligned. Through the cooperation of hollow partition 53 and baffle 54, the flow of cleaning fluid is blocked. As the liquid level of the cleaning fluid below hollow partition 53 gradually decreases, when the liquid level is lower than the set value, the drain holes on the surface of baffle 54 and hollow partition 53 coincide, allowing the cleaning fluid above hollow partition 53 to enter the lower part of the storage tank 2 through the drain holes. After the draining is completed, the drain holes are sealed by the resetting of baffle 54. At the same time, new cleaning fluid is heated on the upper side of hollow partition 53. The above operation is repeated to continuously inject cleaning fluid heated to a certain temperature into the storage tank. Inside the liquid tank 2, the cleaning equipment can be filled with warm water while in use, providing more cleaning solution for animal wound cleaning. The heating mechanism 5 also includes an electric push rod 55, which is located at the left end of the hollow partition 53. The right end of the extension end of the electric push rod 55 is fixedly connected to the baffle 54. The input end of the electric push rod 55 is electrically connected to the output end of the microcontroller 6, providing power for the movement of the baffle 54. The heating mechanism 5 also includes a gantry frame 56 and a sealing baffle 57. The gantry frame 56 is respectively located at the front and rear ends of the upper surface of the baffle 54. The vertical plate of the gantry frame 56 is slidably connected to the clearance sliding hole on the surface of the hollow partition 53. The lower end of the vertical plate of the gantry frame 56 is provided with a horizontal plate, which always seals the clearance sliding hole on the surface of the hollow partition 53 during the movement of the gantry frame 56. A blocking baffle 57 is provided between the upper ends of the two portal frames 56. When the drain hole on the surface of the baffle 54 coincides with the drain hole on the surface of the hollow partition 53, the blocking baffle 57 blocks the liquid inlet of the storage tank 2 under the connection of the portal frames 56, preventing external cleaning fluid from entering. The heating mechanism 5 also includes a connecting hole 58 and a float 59. The connecting hole 58 is located at the left end of the blocking baffle 57. The float 59 is vertically slidably connected inside the connecting hole 58. When the drain hole on the surface of the baffle 54 is misaligned with the drain hole on the surface of the hollow partition 53, the connecting hole 58 coincides with the liquid inlet of the storage tank 2. The force exerted by the external cleaning fluid on the float 59 will cause the float 59 to move downward. The external cleaning fluid enters through the connecting hole 58 between the upper surface of the hollow partition 53 and the inner wall of the storage tank 2.When the cleaning fluid completely fills the space above the hollow partition 53, the cleaning fluid exerts an upward buoyancy force on the float 59, causing the float 59 to move upward and block the inlet hole of the storage tank 2, stopping the fluid injection. The lower end of the float 59 is equipped with a guide post 9, which is vertically slidably connected to the guide hole at the lower end of the connecting hole 58. The guide hole is located in the middle of the support plate at the lower end of the connecting hole 58. A spring 8 is provided between the float 59 and the support plate at the lower end of the connecting hole 58. The spring 8 is movably sleeved on the outer arc surface of the guide post 9. The vertical slidable connection between the guide post 9 and the guide hole at the lower end of the connecting hole 58 provides guiding support for the movement of the float 59. The elasticity of the spring 8 restricts the reset of the float 59. The lower end of the storage tank 2 is equipped with a liquid level sensor 7, the output of which is electrically connected to the input of the microcontroller 6. The liquid level sensor 7 is used to detect the liquid level height of the cleaning fluid below the hollow partition 53.

[0022] The working principle of the veterinary wound cleaning device provided by this utility model is as follows: During use, the microcontroller 6 activates heating plate 2 52 and heating plate 1 51 to heat the cleaning solution inside the storage tank 2 to the specified temperature. When cleaning the animal's wound, the water pump connected in series in the middle of the high-pressure pipe 3 is activated, allowing the cleaning solution inside the storage tank 2 to be transported through the high-pressure pipe 3 and sprayed out from the nozzle 4. The veterinarian cleans the wound area by holding the nozzle 4. During the cleaning process, the drainage holes on the surface of the baffle 54 and the hollow partition... The drainage holes on the surface of the hollow partition 53 are misaligned. Through the cooperation of the hollow partition 53 and the baffle 54, the flow of cleaning fluid is blocked. As the liquid level of the cleaning fluid under the hollow partition 53 gradually decreases, the liquid level sensor 7 detects the liquid level under the hollow partition 53. When the liquid level is lower than the set value, the electric push rod 55 is activated. The telescopic end of the electric push rod 55 drives the baffle 54 to move, so that the drainage holes on the surface of the baffle 54 coincide with the drainage holes on the surface of the hollow partition 53. At the same time, under the connection of the gantry frame 56, the sealing is achieved. The baffle 57 blocks the inlet of the storage tank 2, allowing the cleaning fluid on the upper side of the hollow partition 53 to enter the lower part of the storage tank 2 through the drain hole. After draining, the drain hole is blocked again by the resetting of the baffle 54. At this time, the connecting hole 58 coincides with the inlet of the storage tank 2. The force exerted by the external cleaning fluid on the float 59 will overcome the elastic force of the spring 8, causing the float 59 to move downward, thus removing the blockage of the inlet of the storage tank 2. The external cleaning fluid then enters the space between the upper surface of the hollow partition 53 and the inner wall of the storage tank 2 through the connecting hole 58. When the cleaning fluid completely fills the space above the hollow partition 53, the cleaning fluid exerts an upward buoyancy on the float 59, and the spring 8 exerts an upward force on the float 59, causing the float 59 to move upward and block the liquid inlet of the storage tank 2, stopping the liquid injection. Then, the heating plate 52 is activated to heat the cleaning fluid above the hollow partition 53 to the specified temperature. The above operation is repeated to continuously inject the cleaning fluid heated to a certain temperature into the storage tank 2. The cleaning equipment can be used while adding warm water to provide more cleaning fluid for animal wound cleaning.

[0023] It is worth noting that the microcontroller 6 disclosed in the above embodiments can be an AT89C4051 microcontroller. The heating plate 51, heating plate 52, electric push rod 55 and liquid level sensor 7 can be freely configured according to the actual application scenario. Heating plate 51 and heating plate 52 can both be JC-DB-02A electric heating plates, electric push rod 55 can be LAM1 electric push rod, and liquid level sensor 7 can be HJ-UQK magnetic float liquid level gauge. The microcontroller 6 controls the operation of heating plate 51, heating plate 52, electric push rod 55 and liquid level sensor 7 using methods commonly used in the prior art.

[0024] The above are merely embodiments of this utility model and do not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the description and drawings of this utility model, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.

Claims

1. A veterinary wound cleaning device, comprising a cleaning shell (1), wherein a liquid storage tank (2) is provided inside the cleaning shell (1), and a high-pressure pipe (3) is provided at the outlet of the liquid storage tank (2), the end of the high-pressure pipe (3) extending out of the interior of the cleaning shell (1) and provided with a nozzle (4), characterized in that: It also includes a heating mechanism (5); Heating mechanism (5): It includes a first heating plate (51), a second heating plate (52), a hollow partition (53) and a baffle (54). The first heating plate (51) and the second heating plate (52) are respectively located at the upper and lower ends of the inside of the liquid storage tank (2). The hollow partition (53) is located in the middle of the liquid storage tank (2) and is located between the first heating plate (51) and the second heating plate (52). The baffle (54) is slidably connected to the inside of the hollow partition (53). The surfaces of the baffle (54) and the hollow partition (53) are provided with drainage holes.

2. The veterinary wound cleaning device according to claim 1, characterized in that: The cleaning shell (1) is equipped with a microcontroller (6) at the upper part of its interior. The input terminal of the microcontroller (6) is electrically connected to an external power source. The input terminals of heating plate one (51) and heating plate two (52) are both electrically connected to the output terminal of the microcontroller (6).

3. A veterinary wound cleaning device according to claim 2, characterized in that: The heating mechanism (5) also includes an electric push rod (55), which is located at the left end of the hollow partition (53). The right end of the telescopic end of the electric push rod (55) is fixedly connected to the baffle (54), and the input end of the electric push rod (55) is electrically connected to the output end of the microcontroller (6).

4. A veterinary wound cleaning device according to claim 1, characterized in that: The heating mechanism (5) also includes a gantry frame (56) and a blocking baffle (57). The gantry frame (56) is respectively disposed at the front and rear ends of the upper surface of the baffle (54), and the blocking baffle (57) is provided between the upper ends of the two gantry frames (56).

5. A veterinary wound cleaning device according to claim 4, characterized in that: The heating mechanism (5) also includes a connecting hole (58) and a float (59). The connecting hole (58) is located at the left end of the blocking baffle (57), and the float (59) is vertically slidably connected inside the connecting hole (58).

6. A veterinary wound cleaning device according to claim 5, characterized in that: The lower end of the float (59) is provided with a guide post (9), which is vertically slidably connected to the guide hole at the lower end of the connecting hole (58). A spring (8) is provided between the float (59) and the support plate at the lower end of the connecting hole (58), and the spring (8) is movably sleeved on the outer arc surface of the guide post (9).

7. A veterinary wound cleaning device according to claim 2, characterized in that: The lower end of the liquid storage tank (2) is equipped with a liquid level sensor (7), and the output end of the liquid level sensor (7) is electrically connected to the input end of the microcontroller (6).