Storage structure of medical hydrophilic antibacterial coating
By introducing a heating and stirring system into the storage structure of the medical hydrophilic antibacterial coating, the problem of coating performance loss at low temperatures is solved, and constant temperature storage and performance retention of the coating are achieved.
Patent Information
- Application Number
- CN202422813620.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-19
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-11-19
AI Technical Summary
During storage, medical hydrophilic antibacterial coatings are prone to lose their chemical properties at low temperatures due to the lack of temperature control devices, which affects their subsequent use.
A storage structure for medical hydrophilic antibacterial coatings is designed, including components such as a working cylinder, an inner cylinder, a cavity, a water tank, and a stirring paddle. The coating in the inner cylinder is heated and insulated by a heating rod and a pump station system to maintain a constant temperature, and the stirring paddle is used to ensure uniform mixing of the coating.
The coating can be stored at a relatively constant temperature, thus avoiding the loss of chemical properties due to temperature changes and ensuring the stable performance of the coating during later use.
Smart Images

Figure CN223356399U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of an existing storage device for storing medical hydrophilic antibacterial coatings, which is not provided with a temperature control device and is prone to cause partial loss of chemical properties of the coatings at low temperatures, thus affecting the subsequent use of the coatings. In particular, it relates to a storage structure for medical hydrophilic antibacterial coatings. Background Art
[0002] Medical hydrophilic antimicrobial coatings are specialized coatings applied to medical device surfaces, significantly improving their hydrophilicity and antimicrobial properties. These coatings can reduce the friction coefficient of implants or medical device surfaces, improve blood compatibility, and effectively prevent thrombosis and infection, playing a crucial role in increasing surgical success rates and shortening patient recovery times.
[0003] Medical hydrophilic antimicrobial coatings typically require specific temperature and humidity conditions for storage. Excessively high temperatures or humidity can cause chemical reactions in the coating's active ingredients, affecting its performance. Existing storage devices for medical hydrophilic antimicrobial coatings lack temperature control, which can lead to the coating losing some of its chemical properties at low temperatures, impacting subsequent use. Therefore, designing a storage structure for medical hydrophilic antimicrobial coatings to address these technical issues is crucial. Utility Model Content
[0004] The purpose of the utility model is to solve the problem that the existing storage device for storing medical hydrophilic antibacterial coatings is not equipped with a temperature control device, and the coating is prone to lose some chemical properties at low temperatures, which affects the subsequent use of the coating. A storage structure for medical hydrophilic antibacterial coatings is proposed.
[0005] In order to achieve the above-mentioned purpose, the utility model adopts the following technical solution: a storage structure for medical hydrophilic antibacterial coating, comprising a working cylinder, the bottom of which is evenly distributed with universal wheels, an inner cylinder is provided in the working cylinder, a cavity is provided between the working cylinder and the inner cylinder, a mounting plate is fixedly connected to the left side of the working cylinder, a water tank is fixedly connected to the mounting plate, a pump station is installed on the top of the water tank, the pump station and the cavity are connected by a delivery pipe, the water tank and the cavity are connected by a recovery pipe, a feed pipe is installed on the top of the working cylinder, and the feed pipe is communicated with the inner cylinder.
[0006] Preferably, a heating rod is passed through the water tank, a power supply is installed on the side wall of the water tank, the power supply and the heating rod are connected by a cable, and the pump station and the water tank are connected by a suction pipe.
[0007] Preferably, a temperature display screen is fixedly connected to the water tank, and a water supply port is also installed on the top of the water tank.
[0008] Preferably, a stirring paddle is installed in the inner cylinder, and a motor is fixedly connected to the bottom of the working cylinder. A rotor is rotatably connected to the motor, and the rotor is communicated with the stirring paddle.
[0009] Preferably, a discharge pipe is provided in the inner cylinder, the discharge pipe is connected to the working cylinder, and a stop valve is installed on the discharge pipe.
[0010] Compared with the prior art, the advantages and positive effects of the present invention are:
[0011] 1. In the utility model, during use, a cavity structure is provided between the inner cylinder and the working cylinder, and the water tank structure on the left side of the working cylinder is used to pump the heated water in the water tank into the cavity, thereby heating the inner cylinder so that the paint in the inner cylinder is always in a relatively constant temperature state. A stirring paddle structure is then installed in the inner cylinder so that the paint is kept warm in a mixed state. Compared with the conventional storage device in which no temperature control device is provided, the technical solution adopted by the utility model can realize the storage of the paint under relative temperature control, avoiding the change of the chemical properties of the paint due to loss of temperature, which affects the later use. The overall structure is compact and can be directly installed in the working cylinder, optimizing the existing working space, and solving the problem that the existing storage device for medical hydrophilic antibacterial paint is not provided with a temperature control device, and the paint is easily lost in part of its chemical properties at low temperatures, which affects the later use of the paint.
[0012] 2. In the present invention, during use, the motor drives the rotor to start working, and the rotor drives the stirring paddle to start rotating, thereby completing the mixing of the paint in the inner cylinder. The discharge pipe and the stop valve cooperate with each other to complete the discharge and collection of the paint. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 This is an overall diagram of the storage structure of the medical hydrophilic antibacterial coating of the present utility model;
[0014] Figure 2 This is a schematic diagram of the partial structure of the working cylinder and the inner cylinder in the storage structure of the medical hydrophilic antibacterial coating of the utility model;
[0015] Legend: 1. Working cylinder; 101. Inner cylinder; 102. Cavity; 103. Universal wheel; 2. Mounting plate; 201. Water tank; 202. Pump station; 203. Delivery pipe; 204. Recovery pipe; 205. Heating rod; 206. Power supply; 207. Cable; 208. Suction pipe; 209. Temperature display screen; 210. Water inlet; 3. Feed pipe; 4. Agitator paddle; 401. Motor; 402. Rotor; 5. Discharge pipe; 501. Stop valve. DETAILED DESCRIPTION
[0016] In order to more clearly understand the above-mentioned purpose, features and advantages of the present invention, the present invention is further described below with reference to the accompanying drawings and embodiments. It should be noted that the embodiments of the present application and the features therein can be combined with each other without conflict.
[0017] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways than those described herein. Therefore, the present invention is not limited to the specific embodiments disclosed in the following specification.
[0018] The utility model provides a storage structure for medical hydrophilic antibacterial coating, comprising a working cylinder 1, the bottom of the working cylinder 1 is uniformly distributed with universal wheels 103, an inner cylinder 101 is provided in the working cylinder 1, a cavity 102 is provided between the working cylinder 1 and the inner cylinder 101, a mounting plate 2 is fixedly connected to the left side of the working cylinder 1, a water tank 201 is fixedly connected to the mounting plate 2, a pump station 202 is installed on the top of the water tank 201, the pump station 202 is connected to the cavity 102 by a delivery pipe 203, the water tank 201 is connected to the cavity 102, and the water tank 201 is connected to the cavity 102. 02 are connected by a recovery pipe 204, a feed pipe 3 is installed on the top of the working cylinder 1, and the feed pipe 3 is communicated with the inner cylinder 101, a heating rod 205 is passed through the water tank 201, a power supply 206 is installed on the side wall of the water tank 201, the power supply 206 and the heating rod 205 are connected by a cable 207, the pump station 202 and the water tank 201 are connected by a suction pipe 208, a temperature display screen 209 is fixedly connected to the water tank 201, and a water supply port 210 is also installed on the top of the water tank 201.
[0019] When the storage structure of the medical hydrophilic antibacterial coating is actually used, the medical hydrophilic antibacterial coating to be stored is delivered into the inner cylinder 101 through the position of the feeding pipe 3. At this time, the motor 401 at the bottom of the inner cylinder 101 drives the rotor 402 to start working, and the rotor 402 drives the stirring paddle 4 to start rotating, completing the mixing of the coating in the inner cylinder 101. The heating rod 205 in the water tank 201 cooperates with the power supply 206 and the cable 207 to heat the water in the water tank 201. According to the temperature display on the temperature display 209, once the appropriate temperature is reached, the power supply 206 stops working, and then the pump station 202 structure cooperates with the suction pipe 208 to pump the water out of the water tank 201, and then pumps it into the cavity 102 through the delivery pipe 203 to keep the coating in the inner cylinder 101 warm, and then returns it to the water tank 201 through the recovery pipe 204, so that the coating in the inner cylinder 101 is kept warm. The paint is always at a relatively stable temperature, and the chemical properties of the paint in the inner cylinder 101 will not change due to temperature changes, which will affect the later use. By setting a cavity 102 structure between the inner cylinder 101 and the working cylinder 1, and then using the water tank 201 structure on the left side of the working cylinder 1 to pump the heated water in the water tank 201 into the cavity 102, the inner cylinder 101 is heated, so that the paint in the inner cylinder 101 is always at a relatively constant temperature. Then, a stirring paddle 4 structure is installed in the inner cylinder 101 to keep the paint warm in a mixed state. Compared with the conventional storage device without a temperature control device, the technical solution adopted by the utility model can realize the storage of the paint under relative temperature control, avoid the change of the chemical properties of the paint due to loss of temperature, which will affect the later use. The overall structure is compact and can be directly installed in the working cylinder 1 to optimize the existing working space.
[0020] like Figure 1-2 As shown, a stirring paddle 4 is installed in the inner cylinder 101, a motor 401 is fixedly connected to the bottom of the working cylinder 1, a rotor 402 is rotatably connected to the motor 401, and the rotor 402 is connected to the stirring paddle 4. A discharge pipe 5 is provided in the inner cylinder 101, and the discharge pipe 5 is connected to the working cylinder 1. A stop valve 501 is installed on the discharge pipe 5.
[0021] The effect achieved by the entire embodiment 1 is that, during use, the motor 401 drives the rotor 402 to start working, and the rotor 402 drives the stirring paddle 4 to start rotating, thereby completing the mixing of the paint in the inner cylinder 101, and the discharge pipe 5 and the stop valve 501 cooperate with each other to complete the discharge and collection of the paint.
[0022] Working principle: The medical hydrophilic antibacterial coating to be stored is delivered into the inner cylinder through the feed pipe. At this time, the motor-driven rotor at the bottom of the inner cylinder starts working, and the rotor drives the stirring paddle to start rotating to complete the mixing of the coating in the inner cylinder. The heating rod structure in the water tank cooperates with the power supply cable to heat the water in the water tank. According to the temperature displayed on the temperature display, once the appropriate temperature is reached, the power supply stops working, and then the pump station structure cooperates with the suction pipe to pump out the water in the water tank, and then pumps it into the cavity through the delivery pipe to keep the coating in the inner cylinder warm, and then returns it to the water tank through the recovery pipe, so that the coating in the inner cylinder is always at a relatively stable temperature, and the chemical properties of the coating in the inner cylinder will not change due to temperature changes, affecting later use.
Claims
1. A storage structure for a medical hydrophilic antibacterial coating, comprising a working cylinder (1), wherein the bottom of the working cylinder (1) is uniformly provided with universal wheels (103), characterized in that: An inner cylinder (101) is provided in the working cylinder (1), a cavity (102) is provided between the working cylinder (1) and the inner cylinder (101), a mounting plate (2) is fixedly connected to the left side of the working cylinder (1), a water tank (201) is fixedly connected to the mounting plate (2), a pump station (202) is installed on the top of the water tank (201), the pump station (202) and the cavity (102) are connected via a delivery pipe (203), the water tank (201) and the cavity (102) are connected via a recovery pipe (204), a feed pipe (3) is installed on the top of the working cylinder (1), and the feed pipe (3) is connected to the inner cylinder (101).
2. The storage structure of the medical hydrophilic antibacterial coating according to claim 1, characterized in that: A heating rod (205) is inserted into the water tank (201), a power supply (206) is installed on the side wall of the water tank (201), the power supply (206) and the heating rod (205) are connected via a cable (207), and the pump station (202) and the water tank (201) are connected via a suction pipe (208).
3. The storage structure of the medical hydrophilic antibacterial coating according to claim 2, characterized in that: A temperature display screen (209) is fixedly connected to the water tank (201), and a water supply port (210) is also installed on the top of the water tank (201).
4. The storage structure of the medical hydrophilic antibacterial coating according to claim 1, characterized in that: A stirring paddle (4) is installed in the inner cylinder (101), a motor (401) is fixedly connected to the bottom of the working cylinder (1), a rotor (402) is rotatably connected to the motor (401), and the rotor (402) is connected to the stirring paddle (4).
5. The storage structure of the medical hydrophilic antibacterial coating according to claim 1, characterized in that: A discharge pipe (5) is provided in the inner cylinder (101), the discharge pipe (5) is connected to the working cylinder (1), and a stop valve (501) is installed on the discharge pipe (5).