Energy-saving medical instrument disinfection device

By installing partitions and placement plates in the disinfection equipment, combined with fans, ultraviolet germicidal lamps, and alcohol boxes, rapid sterilization, disinfection, and cooling of medical devices are achieved, solving the problem of low cooling efficiency in existing technologies, improving work efficiency, and reducing energy consumption.

CN122097648APending Publication Date: 2026-05-29QINGHAI PROVINCIAL PRISON ADMINISTRATION CENT HOSPITAL (QINGHAI RED CROSS HOSPITAL)
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
QINGHAI PROVINCIAL PRISON ADMINISTRATION CENT HOSPITAL (QINGHAI RED CROSS HOSPITAL)
Filing Date
2026-01-20
Publication Date
2026-05-29

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    Figure CN122097648A_ABST
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Abstract

The application relates to the field of medical instruments, and discloses an energy-saving disinfection equipment for medical instruments, which comprises a disinfection box, a motor installed on the top of the disinfection box, a partition plate rotatably installed in the middle of the disinfection box, sealing assemblies installed on the left and right sides of the partition plate, and a transmission connection between the output shaft of the motor and the partition plate; a placing plate is arranged in two groups and symmetrically arranged on the front and back sides of the partition plate, and each group of the placing plate is arranged as a plurality of placing plates. The device drives the partition plate and the placing plate to rotate by 180 degrees through the motor, drives the postoperative nursing instruments subjected to sterilization treatment to the cooling and disinfection area, disinfects the postoperative nursing instruments through alcohol released in the alcohol box, accelerates the cooling of the postoperative nursing instruments through the volatile characteristics of alcohol, and finally realizes the rapid cooling function of the postoperative nursing instruments through the air current introduced into the cooling and disinfection area by the fan.
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Description

Technical Field

[0001] This application relates to the field of medical device technology, and in particular to a sterilization device for energy-saving medical devices. Background Technology

[0002] Medical devices refer to instruments, equipment, appliances, in vitro diagnostic reagents and calibrators, materials, and other similar or related items that are used directly or indirectly on the human body, including the necessary computer software. Medical devices include medical equipment and medical consumables. Their efficacy is mainly obtained through physical means, not through pharmacological, immunological, or metabolic means, or although these means are involved, they only play an auxiliary role. Postoperative care instruments used in clinical surgery and internal medicine are generally made of stainless steel and need to be sterilized after use in surgery. Therefore, it is necessary to set up an energy-saving sterilization device for medical devices. In the existing technology, high-temperature steam and ultraviolet disinfection are generally used to ensure the sterilization of medical devices. However, the high temperature brought by high-temperature steam will remain in the device for a long time. This is inefficient for emergency departments that need to quickly retrieve postoperative care instruments for storage or use. The medical devices that have just been sterilized need to wait for them to cool down. Even if air cooling is used, there are problems such as long cooling time and low cooling efficiency. The air cooling technology used in the present technology has even undergone refrigeration improvement, but refrigeration improvement will inevitably consume more energy. Therefore, it is urgent to solve this problem. Summary of the Invention

[0003] This application proposes an energy-saving medical device sterilization equipment, which has the advantages of high sterilization efficiency and easy and quick handling, in order to solve the problem of low work efficiency caused by untimely cooling in the prior art.

[0004] To achieve the above objectives, this application adopts the following technical solution: an energy-saving medical device disinfection equipment, including a disinfection box, wherein a motor is installed on the top of the disinfection box, and further comprising: A partition is rotatably mounted in the middle of the disinfection box. Sealing components are installed on both the left and right sides of the partition. The output shaft of the motor is connected to the partition in a transmission manner. The placement plates are configured in two groups and symmetrically distributed on the front and rear sides of the partition. Each group of placement plates consists of several plates, which are linearly and equidistantly distributed along the vertical direction. The top of each placement plate has a through-hole. The ultraviolet germicidal lamps are configured in multiple groups and are located on the front and back sides of the partition, with each group of ultraviolet germicidal lamps corresponding vertically to a placement plate. A blower is installed on the rear side of the top of the disinfection box. The air inlet end of the blower is fixedly connected to an air inlet pipe, and the top of the air inlet pipe is fixedly connected to an air inlet pipe. The air inlet pipe is used to connect to high-temperature water vapor. Fan 2 is connected and installed on the front side of the top of the disinfection box. An alcohol tank located between Fan 2 and the motor is fixedly installed on the top of the disinfection box. A connecting pipe is installed between the alcohol tank and the top of the disinfection box. A solenoid valve is installed on the outside of the connecting pipe. This redesigned device significantly improves the efficiency of disinfection, sterilization, and cooling retrieval. To achieve this, a partition is rotated in the middle of the disinfection box, with multiple placement plates on both sides of the partition. The partition is rotated by a motor, and together with the cylindrical design of the disinfection box and the sealing components on both sides of the partition, the inner cavity of the disinfection box is divided into a cooling disinfection zone and a high-temperature sterilization zone. Postoperative care instruments entering the device are driven by the two placement plates to enter the cooling disinfection zone and the high-temperature sterilization zone in turn. High-temperature steam and ultraviolet germicidal lamps are connected to the fan and air inlet pipe to sterilize the postoperative care instruments. Then, the motor drives the partition and placement plates to rotate 180°, moving the sterilized postoperative care instruments to the cooling disinfection zone. The postoperative care instruments are disinfected by alcohol released from the alcohol tank. The volatile nature of alcohol is used to accelerate the cooling of the postoperative care instruments. Finally, airflow is introduced into the cooling disinfection zone by the fan to accelerate alcohol evaporation and ultimately achieve rapid cooling of the postoperative care instruments.

[0005] Preferably, the sealing assembly includes a sealing groove 1 and a sealing groove 2 formed inside the partition. The sealing groove 2 and the sealing groove 1 are arranged longitudinally and transversely and are interconnected. The sealing groove 1 extends through the left and right sides of the partition. A sealing ring is fixedly engaged inside the sealing groove 1. Insulation plates are fixedly installed on the left and right sides of both the front and rear sides of the partition. The insulation plates and the sealing rings abut against the inner wall of the disinfection box.

[0006] Preferably, the inner cavities of the first sealing groove and the second sealing groove are filled with kerosene, and the kerosene seals against the sealing ring.

[0007] Preferably, the inner cavity of the disinfection box is divided into a front-to-back cooling disinfection zone and a high-temperature sterilization zone by a sealing component, and both the cooling disinfection zone and the high-temperature sterilization zone are semi-circular in shape.

[0008] Preferably, the disinfection box has a slot inside, a sealing door is movably installed inside the slot, a second magnet is provided on the right side of the sealing door, a material dispensing port is provided on the front of the disinfection box, a first magnet is fixedly connected to the right side of the material dispensing port, and the second magnet is magnetically attracted to the first magnet.

[0009] Preferably, the sealing ring is made of rubber block, and the outer surfaces of the sealing ring and the insulation plate are adapted to abut against the inner wall of the disinfection box.

[0010] Preferably, the insulation plate is adapted to wrap around the front and rear sides of the sealing ring, and the insulation plate is made of high temperature resistant material.

[0011] Preferably, the second fan and the connecting pipe are both connected to the cooling and disinfection zone, the first fan is connected to the high-temperature sterilization zone, and a side ring is fixedly connected to the outer edge of the top of the placement plate.

[0012] The beneficial effects of this invention are as follows: 1. This device has been redesigned to significantly improve the efficiency of disinfection, sterilization, and cooling retrieval. To achieve this, a partition is rotated in the middle of the disinfection box, and multiple placement plates are set on the front and rear sides of the partition. The partition is driven by a motor to rotate, and together with the cylindrical design of the disinfection box and the sealing components on both sides of the partition, the inner cavity of the disinfection box is divided into a cooling disinfection zone and a high-temperature sterilization zone. Postoperative care instruments entering the device are driven by the two sets of placement plates to enter the cooling disinfection zone and the high-temperature sterilization zone in turn. High-temperature steam and ultraviolet germicidal lamps are connected to the fan and air inlet pipe to sterilize the postoperative care instruments. Then, the motor drives the partition and placement plates to rotate 180°, which moves the sterilized postoperative care instruments to the cooling disinfection zone. The postoperative care instruments are disinfected by alcohol released from the alcohol tank. The volatile nature of alcohol is used to accelerate the cooling of the postoperative care instruments. Finally, airflow is introduced into the cooling disinfection zone by the fan to accelerate alcohol evaporation and ultimately achieve the function of rapid cooling of the postoperative care instruments.

[0013] 2. The sealing assembly of this device consists of a partition, sealing groove one, sealing groove two, a sealing ring, and a heat insulation plate. Its function is to provide a seal for the cooling disinfection zone and the high-temperature sterilization zone. When the motor drives the partition to rotate, the heat insulation plate and the sealing ring abut against the inner wall of the disinfection box, thereby sealing the gap between the partition and the inner wall of the disinfection box. The heat insulation plates on the front and rear sides of the partition wrap around the outside of the sealing ring, insulating the heat of the high-temperature sterilization zone from the sealing ring. At the same time, by filling the space between sealing groove one and sealing groove two with kerosene, the heated sealing ring can transfer heat to the kerosene. This reduces the working temperature of the sealing ring, extends its service life, and the heated and expanding kerosene can also generate thrust on the sealing ring, increasing the deformation of the sealing ring and enhancing its sealing effect.

[0014] 3. Finally, this device uses multi-layered placement plates to classify different types of postoperative care instruments, improving the efficiency of instrument organization. A motor drives the partitions and placement plates to rotate, causing the two sets of placement plates to carry the postoperative care instruments to the cooling and disinfection zone and the high-temperature sterilization zone sequentially, thus improving the device's efficiency. Postoperative care instruments awaiting sterilization in the cooling and disinfection zone can be pre-sterilized by a fan and an alcohol tank before entering the high-temperature sterilization zone. The alcohol in the alcohol tank is inexpensive, readily available, and easy to manufacture, significantly enhancing the device's practicality. Attached Figure Description

[0015] The accompanying drawings, which form part of this specification, illustrate embodiments disclosed in this application and, together with the specification, serve to explain the principles of this application in a clear and understandable manner.

[0016] This disclosure will become clearer with reference to the accompanying drawings and the following detailed description, wherein: Figure 1 This is a schematic diagram showing the separation of the partition, sealing assembly, and ultraviolet germicidal lamp of the present invention; Figure 2 This is a front view diagram of the overall structure of the present invention; Figure 3 This is a partial three-dimensional side view of the overall structure of the present invention; Figure 4 This is a top sectional view of the disinfection box of the present invention; Figure 5 For the present invention Figure 4 Enlarged schematic diagram of the structure at point A; Figure 6 This is a side cross-sectional view of the disinfection box of the present invention; Figure 7 For the present invention Figure 6 Enlarged schematic diagram of the structure at point B; Figure 8 This is a front cross-sectional view of the disinfection box of the present invention.

[0017] The components include: 1. Disinfection box; 2. Sealed door; 3. Motor; 4. Partition; 5. Sealing groove one; 6. Sealing groove two; 7. Sealing ring; 8. Placement plate; 9. Opening; 10. Side ring; 11. Ultraviolet germicidal lamp; 12. Insulation board; 13. Magnet one; 14. Magnet two; 15. Card slot; 16. Fan one; 17. Air inlet pipe one; 18. Air inlet pipe two; 19. Fan two; 20. Alcohol box; 21. Connecting pipe; 22. Solenoid valve. Detailed Implementation

[0018] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0019] Please see Figures 1-8 This embodiment discloses an energy-saving medical device disinfection equipment, including a disinfection box 1, a motor 3 installed on the top of the disinfection box 1, and further comprising: The partition 4 is rotatably installed in the middle of the disinfection box 1. Sealing components are installed on both the left and right sides of the partition 4. The output shaft of the motor 3 is connected to the partition 4 in a transmission manner. The placement plates 8 are set in two groups and symmetrically distributed on the front and rear sides of the partition 4. Each group of placement plates 8 consists of several plates, which are linearly and equidistantly distributed in the vertical direction. The top of the placement plate 8 is provided with a through-hole 9. The ultraviolet germicidal lamps 11 are configured in multiple groups and are located on the front and back sides of the partition 4 respectively. Each group of ultraviolet germicidal lamps 11 corresponds vertically to a placement plate 8. Fan 16 is connected to the rear side of the top of the disinfection box 1. The air inlet end of fan 16 is fixedly connected to air inlet pipe 17. The top of air inlet pipe 17 is fixedly connected to air inlet pipe 2 18. Air inlet pipe 17 is used to connect to high temperature water vapor. Fan 2 19 is connected and installed on the front side of the top of disinfection box 1. An alcohol tank 20 is fixedly installed on the top of disinfection box 1 between fan 2 19 and motor 3. A connecting pipe 21 is installed between alcohol tank 20 and the top of disinfection box 1. A solenoid valve 22 is installed on the outside of connecting pipe 21. This device has been redesigned to significantly improve the efficiency of disinfection, sterilization, and cooling retrieval. To achieve this, a partition 4 is rotatably installed in the middle of the disinfection box 1, and multiple sets of placement plates 8 are set on the front and rear sides of the partition 4. The partition 4 is driven to rotate by a motor 3. Together with the cylindrical design of the disinfection box 1 and the sealing components located on both sides of the partition 4, the inner cavity of the disinfection box 1 is divided into a cooling disinfection zone and a high-temperature sterilization zone. Postoperative nursing instruments entering the device are driven by the two sets of placement plates 8 to enter the cooling disinfection zone and the high-temperature sterilization zone in sequence. In the sterilization zone, high-temperature steam and ultraviolet germicidal lamps 11 are connected to the fan 16 and air inlet pipe 17 to sterilize the postoperative care instruments. Then, the motor 3 drives the partition 4 and the placement plate 8 to rotate 180°, which moves the sterilized postoperative care instruments to the cooling and disinfection zone. The postoperative care instruments are disinfected by alcohol released from the alcohol box 20. The volatile nature of alcohol is used to accelerate the cooling of the postoperative care instruments. Finally, the fan 19 introduces airflow into the cooling and disinfection zone to accelerate alcohol evaporation and ultimately achieve the function of rapid cooling of the postoperative care instruments.

[0020] The sealing assembly of this device consists of a partition 4, a first sealing groove 5, a second sealing groove 6, a sealing ring 7, and a heat insulation plate 12. Its function is to provide a sealing function for the cooling disinfection zone and the high-temperature sterilization zone. When the motor 3 drives the partition 4 to rotate, the heat insulation plate 12 and the sealing ring 7 abut against the inner wall of the disinfection box 1, thereby sealing the gap between the partition 4 and the inner wall of the disinfection box 1. The heat insulation plate 12, which is set on the front and rear sides of the partition 4, wraps around the outside of the sealing ring 7, thus isolating the sealing ring 7 from the heat of the high-temperature sterilization zone. At the same time, by filling the space between the first sealing groove 5 and the second sealing groove 6 with kerosene, the heated sealing ring 7 can transfer heat to the kerosene. This reduces the working temperature of the sealing ring 7 and extends its service life. In addition, the heated and expanded kerosene can also generate thrust on the sealing ring 7, increasing the deformation degree of the sealing ring 7 and enhancing its sealing effect.

[0021] Finally, this device uses multiple layers of placement plates 8 to classify different types of postoperative care instruments, improving the efficiency of instrument organization. The motor 3 drives the partition 4 and placement plates 8 to rotate, so that the two sets of placement plates 8 carry the postoperative care instruments to the cooling and disinfection zone and the high-temperature sterilization zone in turn, improving the working efficiency of the device. Postoperative care instruments waiting to be sterilized in the cooling and disinfection zone can be disinfected in advance by the fan 19 and the alcohol box 20, and then enter the high-temperature sterilization zone for sterilization. The alcohol in the alcohol box 20 is low in cost, easy to obtain and manufacture, which can significantly improve the practicality of the device.

[0022] In this embodiment, the sealing assembly includes a sealing groove 1 5 and a sealing groove 2 6 formed inside the partition 4. The sealing groove 2 6 and the sealing groove 1 5 are arranged in a longitudinal and transverse manner and are interconnected. The sealing groove 1 5 passes through the left and right sides of the partition 4. A sealing ring 7 is fixedly snapped into the inside of the sealing groove 1 5. Insulation plates 12 are fixedly installed on the left and right sides of the front and rear sides of the partition 4. The insulation plates 12 and the sealing ring 7 are both in contact with the inner wall of the disinfection box 1. The sealing assembly of this device consists of a partition 4, a first sealing groove 5, a second sealing groove 6, a sealing ring 7, and a heat insulation plate 12. Its function is to provide a sealing function for the cooling disinfection zone and the high-temperature sterilization zone. When the motor 3 drives the partition 4 to rotate, the heat insulation plate 12 and the sealing ring 7 abut against the inner wall of the disinfection box 1, thereby sealing the gap between the partition 4 and the inner wall of the disinfection box 1. The heat insulation plate 12, which is set on the front and rear sides of the partition 4, wraps around the outside of the sealing ring 7, thus isolating the sealing ring 7 from the heat of the high-temperature sterilization zone. At the same time, by filling the space between the first sealing groove 5 and the second sealing groove 6 with kerosene, the heated sealing ring 7 can transfer heat to the kerosene. This reduces the working temperature of the sealing ring 7 and extends its service life. In addition, the heated and expanded kerosene can also generate thrust on the sealing ring 7, increasing the deformation degree of the sealing ring 7 and enhancing its sealing effect.

[0023] In this embodiment, the inner cavities of sealing groove 5 and sealing groove 6 are filled with kerosene, and the kerosene seals against the sealing ring 7. like Figure 3 As shown, the kerosene and the sealing ring 7 are in a sealed contact. On the one hand, the kerosene can absorb the heat generated by the high-temperature sterilization zone of the sealing ring 7. At the same time, the kerosene that expands due to heat can also generate a thrust on the sealing ring 7, increasing the degree of deformation of the sealing ring 7 and enhancing the sealing effect of the sealing ring 7.

[0024] Note: The squeezing effect of kerosene expansion on sealing ring 7 is an additional advantage; even if sealing ring 7 is not subjected to the squeezing force generated by it, it can still achieve a complete sealing function.

[0025] In this embodiment, the inner cavity of the disinfection box 1 is divided into a front and rear cooling disinfection zone and a high-temperature sterilization zone by a sealing component. Both the cooling disinfection zone and the high-temperature sterilization zone are semi-circular in shape. like Figure 3 As shown, the semi-circular cooling and sterilization zone and the high-temperature sterilization zone can accommodate more postoperative care instruments. When the postoperative care instruments located in the high-temperature sterilization zone are being sterilized, the postoperative care instruments in the cooling and sterilization zone can be quickly removed after cooling and sterilization, and new postoperative care instruments to be sterilized can be placed in them.

[0026] In this embodiment, the disinfection box 1 has a slot 15 inside, and a sealing door 2 is movably installed inside the slot 15. A magnet 2 14 is provided on the right side of the sealing door 2. A material dispensing port is provided on the front of the disinfection box 1. A magnet 13 is fixedly connected to the right side of the material dispensing port. The magnet 2 14 and the magnet 13 are magnetically attracted. like Figure 4 , Figure 5 As shown, the sealing door 2 can open and close the material inlet by moving in and out of the inner wall of the slot 15. Magnet 13 and Magnet 24 can assist the sealing door 2 in closing and opening the material inlet by magnetic attraction.

[0027] In this embodiment, the sealing ring 7 is made of rubber block, and the outer surfaces of the sealing ring 7 and the heat insulation plate 12 are adapted to abut against the inner wall of the disinfection box 1. The sealing ring 7 is made of rubber block. Its soft and deformable properties enable it to achieve the sealing function between the partition 4 and the disinfection box 1. The heat insulation plate 12 wrapped around the outside of the sealing ring 7 can withstand the high temperature of the high-temperature sterilization zone, prevent the sealing ring 7 from heating up too quickly, and delay the aging phenomenon of the sealing ring 7 caused by long-term high temperature.

[0028] In this embodiment, the heat insulation plate 12 is adapted to wrap around the front and rear sides of the sealing ring 7, and the heat insulation plate 12 is made of high temperature resistant material; The heat insulation plate 12 is made of high-temperature resistant material. Its main function is to use its high-temperature resistant properties to isolate the sealing ring 7 and the high-temperature sterilization zone, so as to prevent the sealing ring 7 from heating up too quickly and delay the aging phenomenon of the sealing ring 7 caused by long-term high temperature.

[0029] In this embodiment, both the second fan 19 and the connecting pipe 21 are connected to the cooling and disinfection zone, the first fan 16 is connected to the high-temperature sterilization zone, and the outer edge of the top of the placement plate 8 is fixedly connected to the edge ring 10. like Figure 8 As shown, the cooling and disinfection zone is formed by alcohol flowing downwards from the alcohol tank 20 after the solenoid valve 22 is opened, and then flowing through the port 9 to all the placement plates 8, thus disinfecting the postoperative care instruments on the surface of the placement plates 8. The fan 19 generates a high-pressure airflow to dry the postoperative care instruments on the surface of the placement plates 8, and the alcohol absorbs heat through evaporation, which allows the postoperative care instruments to cool down quickly. This design is low-cost and has a good cooling effect. The air inlet pipe 18 introduces the high-temperature steam connected to the air inlet pipe 17 into the high-temperature sterilization zone to sterilize the postoperative care instruments therein. The edge ring 10 prevents the alcohol and moisture on the surface of the placement plates 8 from flowing down the edge of the placement plates 8.

[0030] Working principle: When this device is in operation: First, open the sealing door 2 to the left and move it into the slot 15. Open the material inlet to disengage magnet 13 and magnet 2 14. Place the postoperative care instrument on the upper and lower multi-layer placement plates 8. Then, start the motor 3 and rotate the partition 4 and placement plate 8 180° to move the placement plate 8 containing the care instrument to the high-temperature sterilization zone. Place the postoperative care instrument on the placement plate 8 that has been rotated to the cooling and sterilization zone. Close the sealing door 2 to keep magnet 13 and magnet 2 14 magnetically connected.

[0031] Then, the air inlet pipe 17 is connected to high-temperature steam, the fan 16 is started, and the high-temperature steam is pumped into the high-temperature sterilization area. The water vapor passes through the inlet 9 and continues to act on the top of the bottom placement plate 8. At this time, moisture condenses on the surface of the postoperative care instruments. After a period of continuous high-temperature sterilization, the high-temperature steam interface is closed. At this time, the postoperative care instruments in the high-temperature sterilization area begin to air dry. The ultraviolet sterilization lamp 11 located in the high-temperature sterilization area is turned on, and the postoperative care instruments that have completed the high-temperature steam sterilization are sterilized a second time. At the same time, the airflow generated by the fan 16 completes the drying of the postoperative care instruments. The motor 3 is started and drives the partition 4 and the placement plate 8 to rotate 180°, so that the postoperative care instruments that have been sterilized at high temperature enter the cooling and disinfection area. Then, within the cooling and disinfection zone, the solenoid valve 22 is opened, and the alcohol in the alcohol tank 20 is guided to the cooling and disinfection zone through the connecting pipe 21, as follows: Figure 1 , Figure 8 As shown, alcohol enters the top placement plate 8 and flows to adhere to the surface of the postoperative care instruments. The alcohol flows down through the opening 9 to the lower placement plate 8 and continues to enter the top of the bottom placement plate 8. Fan 2 19 is started and positive pressure airflow is introduced into the cooling and disinfection area. The positive pressure airflow quickly passes through the top of the multi-layer placement plates 8 and disinfects the postoperative care instruments by accelerating alcohol evaporation. Finally, as Figure 4 As shown, the high temperature generated by the high-temperature sterilization zone located behind the partition 4 is first isolated by the insulation plate 12, and then acts on the sealing ring 7. The sealing ring 7 forms a seal by abutting against the inner wall of the sterilization box 1, isolating and cooling the sterilization zone and the high-temperature sterilization zone. The high temperature from the high-temperature sterilization zone continues to raise the temperature of the sealing ring 7. At this time, the kerosene located in the sealing groove 1 5 and the sealing groove 2 6 absorbs the heat of the sealing ring 7 and lowers the temperature of the sealing ring 7.

[0032] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.

Claims

1. A disinfection device for energy-saving medical devices, comprising a disinfection box (1), wherein a motor (3) is installed on the top of the disinfection box (1), characterized in that, Also includes: The partition (4) is rotatably installed in the middle of the disinfection box (1). Sealing components are installed on both the left and right sides of the partition (4). The output shaft of the motor (3) is connected to the partition (4) in a transmission manner. The placement plates (8) are set in two groups and symmetrically distributed on the front and rear sides of the partition (4). Each group of placement plates (8) consists of several pieces and is linearly and equidistantly distributed along the vertical direction. The top of the placement plate (8) is provided with a through-hole (9). The ultraviolet germicidal lamps (11) are configured in multiple groups and are located on the front and back sides of the partition (4). Each group of ultraviolet germicidal lamps (11) corresponds vertically to a placement plate (8). Fan 1 (16) is connected to the rear side of the top of the disinfection box (1). The air inlet end of the fan 1 (16) is fixedly connected to the air inlet pipe 1 (17). The top of the air inlet pipe 1 (17) is fixedly connected to the air inlet pipe 2 (18). The air inlet pipe 1 (17) is used to access high temperature water vapor. Fan 2 (19) is connected to the front side of the top of the disinfection box (1). An alcohol tank (20) located between fan 2 (19) and motor (3) is fixedly installed on the top of the disinfection box (1). A connecting pipe (21) is connected between the alcohol tank (20) and the top of the disinfection box (1). A solenoid valve (22) is installed on the outside of the connecting pipe (21).

2. The disinfection equipment for energy-saving medical devices according to claim 1, characterized in that, The sealing assembly includes a sealing groove 1 (5) and a sealing groove 2 (6) opened inside the partition (4). The sealing groove 2 (6) and the sealing groove 1 (5) are arranged in a longitudinal and transverse manner and are interconnected. The sealing groove 1 (5) runs through the left and right sides of the partition (4). A sealing ring (7) is fixedly snapped into the inside of the sealing groove 1 (5). Insulation plates (12) are fixedly installed on the left and right sides of the front and rear sides of the partition (4). The insulation plates (12) and the sealing ring (7) are both in contact with the inner wall of the disinfection box (1).

3. The disinfection device for an energy-saving medical device according to claim 2, characterized in that, The inner cavities of the sealing groove one (5) and the sealing groove two (6) are filled with kerosene, and the kerosene seals against the sealing ring (7).

4. The disinfection device for an energy-saving medical device according to claim 3, characterized in that, The inner cavity of the disinfection box (1) is divided into a front and rear cooling disinfection zone and a high-temperature sterilization zone by a sealing component. The cooling disinfection zone and the high-temperature sterilization zone are both semi-circular in shape.

5. The disinfection device for an energy-saving medical device according to claim 4, characterized in that, The disinfection box (1) has a slot (15) inside, and a sealing door (2) is installed inside the slot (15). A magnet (2) is provided on the right side of the sealing door (2). A material outlet is provided on the front of the disinfection box (1). A magnet (13) is fixedly connected to the right side of the material outlet. The magnet (2) and the magnet (13) are magnetically attracted to each other.

6. The disinfection device for an energy-saving medical device according to claim 5, characterized in that, The sealing ring (7) is made of rubber block, and the outer surfaces of the sealing ring (7) and the insulation plate (12) are adapted to abut against the inner wall of the disinfection box (1).

7. The disinfection device for an energy-saving medical device according to claim 6, characterized in that, The insulation plate (12) is adapted to wrap around the front and rear sides of the sealing ring (7), and the insulation plate (12) is made of high temperature resistant material.

8. The disinfection device for an energy-saving medical device according to claim 7, characterized in that, The second fan (19) and the connecting pipe (21) are both connected to the cooling and disinfection zone, the first fan (16) is connected to the high temperature sterilization zone, and the outer edge of the top of the placement plate (8) is fixedly connected with a side ring (10).