Ultrasonic probe disinfection device
By setting a partition to separate the disinfection tank and the cleaning tank in the ultrasonic probe disinfection device, and by utilizing the cooperation of the support component and the moving component, the disinfection and cleaning are automated and continuous, which solves the problem of low efficiency of the existing device and improves the disinfection efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHONGQING NO 9 PEOPLES HOSPITAL
- Filing Date
- 2025-03-26
- Publication Date
- 2026-05-15
AI Technical Summary
Existing ultrasonic probe immersion disinfection devices cannot achieve continuous immersion disinfection and rinsing with clean water, resulting in low efficiency.
An ultrasonic probe disinfection device was designed, which divides the tank into a disinfection tank and a cleaning tank by a partition inside the tank. The probe can be moved up and down and longitudinally by a support component and a moving component. Combined with a gear and rack transmission structure and a drive motor, disinfection and cleaning can be carried out automatically and continuously.
It improves the disinfection efficiency of ultrasonic probes, ensures the continuity of the disinfection and cleaning process, reduces manual operation steps, and improves work efficiency.
Smart Images

Figure CN224235813U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of medical device technology, specifically relating to an ultrasonic probe disinfection device. Background Technology
[0002] Ultrasound examination is a medical imaging diagnostic method based on ultrasound technology, which has a wide range of applications in the medical field. Transvaginal ultrasound is a type of gynecological ultrasound examination. It involves inserting an ultrasound probe into the vagina to observe the structure and lesions of gynecological organs such as the uterus, ovaries, and pelvis. Probe disinfection is an important step in ensuring the safety and hygiene of the examination. During the examination, doctors usually put a probe cover on the probe and change it after each patient to prevent the spread of diseases. In addition, the probe also needs to be disinfected regularly by soaking it in alcohol or glutaraldehyde solution, followed by rinsing it with clean water and air drying it.
[0003] In document CN207341945U, a rapid disinfection device for vaginal ultrasound probes is disclosed. This device includes an ultraviolet irradiation device mounted on a frame, a disinfection chamber mounted on the frame for the ultrasound probe to be inserted into, a sealed container for holding hydrogen peroxide, and an electric pressurization device mounted on the frame. The disinfection chamber is equipped with an atomizing nozzle. During use, the ultrasound probe is placed in the disinfection chamber, and the electric pressurization device delivers hydrogen peroxide to the atomizing nozzle for spraying. The probe is then rapidly disinfected by ultraviolet irradiation. In document CN217745119U, an immersion device for disinfecting ultrasound probes is disclosed. This device includes an immersion tank with a lifting assembly on its base surface and a fixing assembly inside the lifting assembly. The fixing assembly is used to fix the probe, and the lifting assembly moves the probe into the immersion tank for immersion disinfection.
[0004] In existing immersion disinfection devices, it is not possible to continuously perform immersion disinfection and rinsing with clean water. They can only be taken out separately for water rinsing after immersion disinfection to remove residual disinfectant, resulting in low efficiency.
[0005] Therefore, in view of the above-mentioned problems existing in the patent, it is necessary to study an ultrasonic probe cleaning device that can continuously perform immersion disinfection and rinsing with clean water. Utility Model Content
[0006] This invention provides an ultrasonic probe disinfection device, which aims to solve the technical problem that existing devices cannot effectively achieve continuous soaking disinfection and cleaning, resulting in reduced efficiency.
[0007] To solve the aforementioned technical problems, the present invention adopts the following technical solution:
[0008] An ultrasonic probe disinfection device includes a tank, a support assembly, and a moving assembly.
[0009] The tank is equipped with at least one baffle.
[0010] The support assembly is provided on at least one side of the tank. A connecting plate is connected to the support assembly. The moving assembly is movably connected to the inner side of the connecting plate. A driving assembly is provided inside the connecting plate. The driving assembly drives the moving assembly to move longitudinally along the support assembly.
[0011] The movable component is connected to a fixing plate on its inner side, and the fixing plate is provided with a fixing component.
[0012] In this invention, it should be noted that the tank body is divided into several sub-tanks by a partition. Each sub-tank can hold a corresponding disinfectant or clean water. In actual use, the ultrasound probe is first fixed to the fixing component with the probe facing downwards. When disinfection is required, the moving component moves above the corresponding disinfectant, and then the fixing component is lowered by the support component to immerse the probe in the disinfectant. After disinfection, the support component raises the fixing component, and the moving component moves the probe above the corresponding cleaning tank. The support component then lowers the fixing component to immerse the probe in water for cleaning. This disinfection and cleaning process is continuous. Multiple fixing components can be connected as needed to achieve disinfection and cleaning of multiple probes, improving disinfection efficiency. In addition, depending on the actual use, only two fixing components can be set, correspondingly reducing the size of other components and increasing the portability of the device.
[0013] Preferably, the partition is provided, and the partition divides the tank into a disinfection tank and a cleaning tank.
[0014] After adopting this technical solution, it should be noted that the disinfectant used in the disinfection tank can be 75% ethanol, glutaraldehyde, etc., which can be determined according to the actual situation. Clean water is added to the cleaning tank. In addition, during the process of adding disinfectant or clean water, it is necessary to ensure that the amount added is completely immersed in the ultrasonic probe during the disinfection and cleaning process. The specific amount added can be determined according to the actual situation.
[0015] Preferably, the moving component includes a housing with a cavity inside. A rack is provided on the upper or lower wall of the cavity, and a gear is provided inside the cavity. The gear meshes with the rack and is connected to the drive component.
[0016] After adopting this technical solution, it should be noted that the moving component moves longitudinally along the connecting plate through the gear and rack structure. In the initial position, the moving component is located above the disinfection tank, and the gear is located at the end of the rack. When it is necessary to move the fixed component above the cleaning tank, the drive component will drive the gear to rotate, thereby driving the rack to move, so that the fixed component drives the probe to move.
[0017] The gear and rack transmission method is highly adaptable and suitable for the humid environment in which this device is often located.
[0018] Furthermore, the connecting plate has a driving cavity, and the driving assembly is disposed within the driving cavity.
[0019] The drive assembly includes a drive motor and a drive shaft. The output end of the drive motor is connected to the drive shaft, and the drive shaft passes through the side wall of the connecting plate and the side wall of the housing and is connected to the gear.
[0020] After adopting this technical solution, it should be noted that the drive motor is a geared motor, and the drive motor is located at the center of the drive cavity to improve the stability of the connecting plate.
[0021] Furthermore, the outer casing has an elongated hole on the side near the connecting plate, and the drive shaft passes through the elongated hole to connect with the gear.
[0022] After adopting this technical solution, it should be noted that the length of the elongated hole is less than the length of the rack. The length of the elongated hole is the length that the moving component can move along the connecting plate. This length ensures that when the gear is located at both ends of the elongated hole, the fixed component can be located above the disinfection tank and the cleaning tank. The width of the elongated hole is greater than the diameter of the drive shaft.
[0023] Preferably, the connecting plate has two symmetrical sliding grooves on its inner side, and the outer shell has two sliders on the side near the connecting plate, with the two sliders respectively slidingly engaging with the two sliding grooves.
[0024] The drive shaft extends from between the two grooves.
[0025] After adopting this technical solution, it should be noted that the lengths of the two chutes are equal to the widths of the disinfection tank and the cleaning tank, respectively, so that the moving component has sufficient space to move. In addition, the two sliders are located at both ends of the connecting plate, and the elongated hole is located between the two sliders. On the one hand, the sliding cooperation between the slider and the chutes guides the movement of the moving component. On the other hand, the cooperation between the slider and the chutes provides support for the moving component, so that it can remain stable even when there are many probes.
[0026] Preferably, the support components are provided on both the left and right sides of the groove.
[0027] The support assembly includes an electric actuator and a movable rod, the upper ends of which are respectively connected to the lower end of the connecting plate.
[0028] After adopting this technical solution, it should be noted that the connecting plate is raised and lowered by the lifting of the electric actuator. After the connecting plate is raised, the probe is no longer in contact with the liquid surface. At this time, the probe can be removed or fixed. When the electric actuator rises to the highest point, the end of the probe can be higher than the height of the partition, so that the moving component will not be obstructed by the partition when moving. In addition, the movable rod will also play a supporting role. It is equipped with a spring, which will provide elasticity to keep the connecting plate stable during the rise of the electric actuator.
[0029] Preferably, the trough body has longitudinally arranged side grooves on both its left and right sides, and the electric actuator is disposed in the side groove and located at the center of the side groove.
[0030] The movable rod includes a fixed rod and an adjusting rod. The adjusting rod is slidably connected inside the fixed rod. The fixed rod is provided at both ends of the side groove. The upper end of the fixed rod is connected to the lower end of the connecting plate.
[0031] After adopting this technical solution, it should be noted that the fixed rod and the adjusting rod are connected by a spring. When the electric push rod drives the connecting plate to rise, the adjusting rod will also rise synchronously, and the connecting plate will remain stable under the elastic force of the spring.
[0032] Furthermore, the fixing component includes a fixing block, a fixing ring, and an elastic element. The fixing ring is disposed inside the fixing block, and one end of the fixing ring is open. The width of the opening is smaller than the diameter of the fixing ring. The elastic element is connected between the opening and the fixing block. The fixing block is connected to the fixing plate.
[0033] When using this technical solution, it should be noted that the fixing ring is made of elastic material and has a small opening. When inserting the ultrasound probe, the opening needs to be pried outward first, and then the probe is inserted into the fixing ring. The probe is held in place by the elastic force provided by the elastic element and the elastic force of the fixing ring itself.
[0034] Preferably, the partition plate is provided with an inclined portion, and the inclined portion is provided with positioning grooves at both ends.
[0035] After adopting this technical solution, it should be noted that the tilting direction of the inclined part is towards the disinfection tank. During the movement of the ultrasonic probe, if disinfectant drips onto the partition, it will be reintroduced into the disinfection tank through the inclined part, reducing the contamination of the cleaning tank. In addition, the positioning groove provides support for the moving component. When the electric push rod drives the connecting plate to move down to the bottom, the moving component is just placed in the rising positioning groove.
[0036] Furthermore, a battery is provided in the side groove, a controller is provided in the drive cavity, and a button is provided on the side of the groove. The controller, button, electric push rod, and drive motor are electrically connected to the battery, the button is electrically connected to the controller, drive motor, and electric push rod, and the drive motor and electric push rod are electrically connected to the controller.
[0037] After adopting this technical solution, it should be noted that the controller is used to control the start and stop of the drive motor and the raising and lowering of the electric push rod. The button is used to power the drive motor, electric push rod, and controller. In actual use, the electric push rod is in the highest position by default, and the moving component is located above the disinfection tank by default. At this time, the gear is located at the end of the rack. After the ultrasonic probe is fixed, pressing the button will first cause the controller to slowly lower the electric push rod to the lowest position, at which point the probe will be immersed in the disinfectant. After half an hour, the controller will control the drive motor to rise to the highest position. Then, the controller will control the drive motor to start, and through the gear and rack transmission structure, it will move the probe to the top of the cleaning tank. At this time, the gear is located at the other end of the rack. Then, the controller will control the electric push rod to slowly lower to the lowest position, so that the probe is immersed in clean water. Then, the controller will control the motor to reverse once every 1 second, so that the probe moves back and forth in the cleaning tank for cleaning. After one minute, the controller will control the drive motor to stop and control the electric push rod to slowly rise to the highest position, at which point the probe can be removed.
[0038] Furthermore, the disinfection tank and the cleaning sidewall are perforated with through holes, and a first drain pipe and a second drain pipe are respectively connected to the through holes of the disinfection tank and the cleaning tank.
[0039] The steps for using this utility model are as follows:
[0040] Add disinfectant and water: Add disinfectant and water to the disinfection tank and the cleaning tank;
[0041] Disinfection and Cleaning: Insert the probe downwards into the retaining ring. After securing it, press the button. The controller will slowly lower the electric push rod to the lowest position, immersing the probe in disinfectant. After half an hour, the controller will control the drive motor to rise to the highest position. Then, the controller will control the drive motor to start for 10 seconds, moving the probe above the cleaning tank via a gear and rack transmission structure. At this point, the gear is located at the other end of the rack. The controller will then control the electric push rod to slowly lower to the lowest position, immersing the probe in clean water. After that, the controller will control the motor to reverse once every second, moving the probe back and forth in the cleaning tank for cleaning. After one minute, the controller will control the drive motor to stop and control the electric push rod to slowly rise to the highest position, at which point the probe can be removed.
[0042] In summary, due to the adoption of the above technical solution, the beneficial effects of this utility model are:
[0043] 1. The ultrasonic probe disinfection device provided by this utility model, by setting a support component and a moving component, enables the ultrasonic probe to move up and down and longitudinally, so that the device can perform continuous disinfection or cleaning, thereby improving the disinfection efficiency.
[0044] 2. The ultrasonic probe disinfection device provided by this utility model has a fixed rod and an adjusting rod connected by a spring. When the electric push rod drives the connecting plate to rise, the adjusting rod will also rise synchronously, and the connecting plate will remain stable under the elastic force of the spring.
[0045] 3. The ultrasonic probe disinfection device provided by this utility model uses a fixing ring to clamp the probe by the elastic force provided by the elastic element and the elastic force of the fixing ring itself, which makes clamping convenient and efficient.
[0046] 4. The ultrasonic probe disinfection device provided by this utility model has an inclined part on the partition plate, with the inclined part tilting towards the disinfection tank. If disinfectant drips onto the partition plate during the movement of the ultrasonic probe, it will be reintroduced into the disinfection tank through the inclined part, thereby reducing the contamination of the cleaning tank. Attached Figure Description
[0047] This utility model will be described by way of example and with reference to the accompanying drawings, wherein:
[0048] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0049] Figure 2 This is a schematic diagram of the tank structure of this utility model;
[0050] Figure 3 This is a schematic diagram of the connecting plate structure of this utility model;
[0051] Figure 4 This is a cross-sectional view of the connecting plate of this utility model;
[0052] Figure 5 This is a schematic diagram of the internal structure of the mobile component of this utility model;
[0053] Figure 6 This is a schematic diagram of the fixing component structure of this utility model.
[0054] Figure label:
[0055] 1-Tank body, 101-Disinfection tank, 102-Cleaning tank, 103-Side tank, 104-Baffle plate, 105-Through hole, 2-Support assembly, 201-Electric push rod, 202-Moving rod, 3-Connecting plate, 301-Slide groove, 4-Moving assembly, 401-Housing shell, 402-Rack, 403-Gear, 404-Elongated hole, 405-Slider, 5-Fixing assembly, 501-Fixing block, 502-Fixing ring, 503-Elastic element, 6-First drain pipe, 7-Second drain pipe, 8-Inclined part, 9-Positioning groove, 10-Drive motor, 11-Controller, 12-Battery, 13-Fixing plate, 14-Button. Detailed Implementation
[0056] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions in the embodiments of this application will be clearly and completely described below in conjunction with the embodiments and accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. The components of the embodiments of this application described and marked in the accompanying drawings can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of this application provided in the accompanying drawings is not intended to limit the scope of the claimed application, but merely represents selected embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of this application.
[0057] In the description of the embodiments of this application, it should be noted that the terms "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the utility product is in use. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application. In addition, the terms "first," "second," and "third," etc., are only used to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0058] The following is combined with Figures 1-6 This utility model will be described in detail.
[0059] Example 1
[0060] An ultrasonic probe disinfection device, such as Figures 1-5 As shown, it includes a tank 1, a support assembly 2, and a moving assembly 4.
[0061] The tank 1 is provided with at least one partition 104.
[0062] The tank 1 has a support assembly 2 on at least one side, a connecting plate 3 is connected to the support assembly 2, the moving assembly 4 is movably connected to the inner side of the connecting plate 3, and a driving assembly is provided inside the connecting plate 3. The driving assembly drives the moving assembly 4 to move longitudinally along the support assembly 2.
[0063] The movable component 4 is connected to a fixing plate 13 on its inner side, and the fixing plate 13 is provided with a fixing component 5.
[0064] The partition 104 is provided, and the partition 104 divides the tank 1 into a disinfection tank 101 and a cleaning tank 102.
[0065] The support components 2 are provided on both the left and right sides of the groove 1.
[0066] The support assembly 2 includes an electric actuator 201 and a movable rod 202, the upper ends of which are respectively connected to the lower end of the connecting plate 3.
[0067] The groove 1 has longitudinally arranged side grooves 103 on both its left and right sides. The electric actuator 201 is disposed in the side groove 103 and located at the center of the side groove 103.
[0068] The movable rod 202 includes a fixed rod and an adjusting rod. The adjusting rod is slidably connected inside the fixed rod. The fixed rod is provided at both ends of the side groove 103. The upper end of the fixed rod is connected to the lower end of the connecting plate 3.
[0069] The fixing component 5 includes a fixing block 501, a fixing ring 502, and an elastic element 503. The fixing ring 502 is disposed inside the fixing block 501. One end of the fixing ring 502 is open, and the width of the opening is smaller than the diameter of the fixing ring 502. The elastic element 503 is connected between the opening and the fixing block 501. The fixing block 501 is connected to the fixing plate 13.
[0070] The disinfection tank 101 and the cleaning sidewall are perforated with through holes 105, and the first drain pipe 6 and the second drain pipe 7 are respectively connected to the through holes 105 of the disinfection tank 101 and the cleaning tank 102.
[0071] Example 2
[0072] The difference between this embodiment and embodiment 1 is that the moving component 4 includes a housing 401, the housing 401 has a cavity, the upper or lower wall of the cavity is provided with a rack 402, the cavity is provided with a gear 403, the gear 403 meshes with the rack 402, and the gear 403 is connected to the drive component.
[0073] The connecting plate 3 has a driving cavity, and the driving assembly is disposed within the driving cavity.
[0074] The drive assembly includes a drive motor 10 and a drive shaft. The output end of the drive motor 10 is connected to the drive shaft. The drive shaft passes through the side wall of the connecting plate 3 and the side wall of the housing 401 and is connected to the gear 403.
[0075] The outer casing 401 has an elongated hole 404 on the side near the connecting plate 3, and the drive shaft passes through the elongated hole 404 to connect with the gear 403.
[0076] The connecting plate 3 has two symmetrical sliding grooves 301 on its inner side, and the outer shell 401 has two sliders 405 on the side near the connecting plate 3. The two sliders 405 slide in cooperation with the two sliding grooves 301 respectively.
[0077] The drive shaft extends through the two grooves 301.
[0078] In this embodiment, the drive motor 10 drives the gear 403 to rotate, thereby driving the rack 402 to move the moving component 4 longitudinally along the connecting plate 3. In the initial position, the gear 403 is located at the end of the rack 402. At this time, the moving component 4 is located above the disinfection tank 101 or the cleaning tank 102. At this time, the gear 403 is located at one end of the elongated hole 404. The elongated hole 404 will restrict the movement of the rack 403. The length of the elongated hole 404 is the length that the moving component 4 can move along the connecting plate 3.
[0079] Example 3
[0080] The difference between this embodiment and embodiment 2 is that the partition 104 is provided with an inclined portion 8, and the inclined portion 8 is provided with positioning grooves 9 at both ends.
[0081] In this embodiment, the tilting direction of the inclined part 8 is towards the disinfection tank 101. During the movement of the ultrasonic probe, if disinfectant drips onto the partition 104, it will be reintroduced into the disinfection tank 101 through the inclined part 8, reducing the contamination of the cleaning tank 102. In addition, the positioning groove 9 provides support for the moving component 4. When the electric push rod 201 drives the connecting plate 3 to move down to the bottom, the moving component 4 is just placed in the rising positioning groove 9.
[0082] Example 4
[0083] The difference between this embodiment and embodiment 3 is that a battery 12 is provided in the side groove 103, a controller 11 is provided in the drive cavity, and a button 14 is provided on the side of the groove 1. The controller 11, button 14, electric push rod 201 and drive motor 10 are electrically connected to the battery 12, the button 14 is electrically connected to the controller 11, drive motor 10 and electric push rod 201, and the drive motor 10 and electric push rod 201 are electrically connected to the controller 11.
[0084] In this embodiment, the controller 11 is used to control the start and stop of the drive motor 10 and the raising and lowering of the electric push rod 201. The button 14 is used to power the drive motor 10, the electric push rod 201, and the controller 11. In actual use, the electric push rod 201 is in its highest position by default, and the moving component 4 is located above the disinfection tank 101 by default. At this time, the gear 403 is located at the end of the rack 402. After the ultrasonic probe is fixed, the button 14 is pressed. First, the controller 11 controls the electric push rod 201 to slowly lower to the lowest position. At this time, the probe will be immersed in the disinfectant. After half an hour, the controller 11 controls the drive motor 10 to start and stop. Once the probe rises to its highest position, the controller 11 controls the drive motor 10 to start, which, through the gear 403 and rack 402 transmission structure, moves the probe above the cleaning tank 102. At this time, the gear 403 is located at the other end of the rack 402. Then, the controller 11 controls the electric push rod 201 to slowly descend to its lowest position, immersing the probe in clean water. After that, the controller 11 controls the motor to reverse once every second, causing the probe to move back and forth in the cleaning tank 102 for cleaning. After one minute, the controller 11 controls the drive motor 10 to stop and controls the electric push rod 201 to slowly rise to its highest position, at which point the probe can be removed.
[0085] The steps for using this utility model are as follows:
[0086] Add disinfectant and clean water: Add disinfectant and clean water to disinfection tank 101 and cleaning tank 102;
[0087] Disinfection and Cleaning: Insert the probe downwards into the retaining ring 502. After securing it, press button 14. The controller 11 will slowly lower the control rod 201 to the lowest position, at which point the probe will be immersed in the disinfectant. After half an hour, the controller 11 will control the drive motor 10 to rise to the highest position. Then, the controller 11 will control the drive motor 10 to start for 10 seconds, driving the probe to move above the cleaning tank 102 through the gear 403 and rack 402 transmission structure. At this time, the gear 403 is located at the other end of the rack 402. Then, the controller 11 will control the electric push rod 201 to slowly lower to the lowest position, immersing the probe in clean water. After that, the controller 11 will control the motor to reverse once every second, causing the probe to move back and forth in the cleaning tank 102 for cleaning. After one minute, the controller 11 will control the drive motor 10 to stop and control the electric push rod 201 to slowly rise to the highest position, at which point the probe can be removed.
[0088] The above description of the disclosed embodiments enables those skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. An ultrasonic probe disinfection device, characterized in that, It includes a tank (1), a support assembly (2), and a moving assembly (4). The tank (1) is provided with at least one partition (104). The tank (1) has a support assembly (2) on at least one side, a connecting plate (3) is connected to the support assembly (2), the moving assembly (4) is movably connected to the inner side of the connecting plate (3), and a driving assembly is provided inside the connecting plate (3). The driving assembly drives the moving assembly (4) to move longitudinally along the support assembly (2). The moving component (4) is connected to a fixing plate (13) on its inner side, and a fixing component (5) is provided on the fixing plate (13).
2. The ultrasonic probe disinfection device according to claim 1, characterized in that: The moving component (4) includes a housing (401) with a cavity inside. A rack (402) is provided on the upper or lower wall of the cavity. A gear (403) is provided inside the cavity and meshes with the rack (402). The gear (403) is connected to the drive component.
3. The ultrasonic probe disinfection device according to claim 2, characterized in that: The connecting plate (3) has a driving cavity, and the driving assembly is disposed in the driving cavity. The drive assembly includes a drive motor (10) and a drive shaft. The output end of the drive motor (10) is connected to the drive shaft. The drive shaft passes through the side wall of the connecting plate (3) and the side wall of the housing (401) and is connected to the gear (403).
4. The ultrasonic probe disinfection device according to claim 3, characterized in that: The outer casing (401) has an elongated hole (404) on the side near the connecting plate (3), and the drive shaft passes through the elongated hole (404) to connect with the gear (403).
5. The ultrasonic probe disinfection device according to claim 3, characterized in that: The connecting plate (3) has two symmetrical sliding grooves (301) on its inner side, and the outer shell (401) has two sliders (405) on the side near the connecting plate (3). The two sliders (405) slide in cooperation with the two sliding grooves (301) respectively. The drive shaft extends between the two grooves (301).
6. The ultrasonic probe disinfection device according to claim 3, characterized in that: The support components (2) are provided on both the left and right sides of the groove (1). The support assembly (2) includes an electric actuator (201) and a movable rod (202), the upper ends of which are respectively connected to the lower end of the connecting plate (3).
7. The ultrasonic probe disinfection device according to claim 6, characterized in that: The groove (1) has longitudinally arranged side grooves (103) on both the left and right sides. The electric actuator (201) is located in the side groove (103) and at the center of the side groove (103). The movable rod (202) includes a fixed rod and an adjusting rod. The adjusting rod is slidably connected inside the fixed rod. The fixed rod is provided at both ends of the side groove (103). The upper end of the fixed rod is connected to the lower end of the connecting plate (3).
8. An ultrasonic probe disinfection device according to any one of claims 1-7, characterized in that: The fixing component (5) includes a fixing block (501), a fixing ring (502), and an elastic element (503). The fixing ring (502) is disposed inside the fixing block (501). One end of the fixing ring (502) is open, and the width of the opening is smaller than the diameter of the fixing ring (502). The elastic element (503) is connected between the opening and the fixing block (501). The fixing block (501) is connected to the fixing plate (13).
9. An ultrasonic probe disinfection device according to any one of claims 1-7, characterized in that: The partition (104) is provided with an inclined portion (8), and the inclined portion (8) is provided with positioning grooves (9) at both ends.
10. The ultrasonic probe disinfection device according to claim 7, characterized in that: A battery (12) is provided in the side groove (103), a controller (11) is provided in the drive cavity, and a button (14) is provided on the side of the groove (1). The controller (11), the button (14), the electric push rod (201) and the drive motor (10) are electrically connected to the battery (12) respectively. The button (14) is electrically connected to the controller (11), the drive motor (10) and the electric push rod (201). The drive motor (10) and the electric push rod (201) are electrically connected to the controller (11) respectively.