Medicine bottle cleaning equipment for medical clinical laboratory

By incorporating components for liquid storage, drainage, filtration, extraction, rotation, and propulsion into the ultrasonic cleaner, the problem of dust and debris adhering to medicine bottles during removal is solved, achieving efficient cleaning of medicine bottles and effective utilization of the cleaning solution.

CN121017192AInactive Publication Date: 2025-11-28NANTONG HETANG CUIYUE MEDICAL TECH CO LTD
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Patent Information

Application Number
CN202511136569.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-14
Publication Date
2025-11-28
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

When existing ultrasonic cleaners remove medicine bottles, the bottles come into contact with dust and debris on the liquid surface, causing the dust and debris to re-adhere to the bottles, affecting the cleaning effect.

Method used

The design includes a cleaning component, a flushing component, a return component, and a pouring component, comprising a liquid storage component, a liquid drainage component, a filtration component, a liquid extraction component, a rotating component, and a pushing component. Through the coordinated action of these components, the cleaning liquid on the surface is drained before the medicine bottle is removed, preventing dust and debris from adhering, and the cleaning liquid is automatically replenished and poured out of the medicine bottle.

Benefits of technology

It effectively prevents the medicine bottle from coming into contact with dust and debris on the liquid surface when it is removed, maintains the cleaning effect, and avoids waste of cleaning solution, thus achieving efficient cleaning of medicine bottles.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of cleaning equipment, in particular to medical clinical laboratory medicine bottle cleaning equipment which comprises a cleaning part, an ultrasonic cleaning machine, a cleaning bin arranged in the ultrasonic cleaning machine, a supporting column arranged on the upper side of the ultrasonic cleaning machine and a supporting frame arranged on the supporting column. The electric telescopic rod is arranged on the supporting frame, and the arc-shaped plate is arranged on the electric telescopic rod; the cleaning part comprises a liquid storage assembly arranged on the ultrasonic cleaning machine, a liquid drainage assembly arranged in the cleaning bin, a filtering assembly arranged on the liquid storage assembly, a transmission assembly arranged on the supporting frame and a stirring assembly arranged on the liquid drainage assembly; according to the device, dust and sundries on the liquid level of cleaning liquid can be discharged, and the situation that when medicine bottles are taken out, the medicine bottles make contact with the dust and other sundries on the liquid level, and the cleaning effect is affected is avoided.
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Description

Technical Field

[0001] This invention relates to the field of cleaning equipment, and in particular to a cleaning device for medicine bottles used in medical laboratories. Background Technology

[0002] In medical laboratories, there are medicine bottles used to hold various testing reagents. After the reagents are used up, the bottles need to be cleaned before they can be reused. The common cleaning method is ultrasonic cleaning, followed by ultraviolet disinfection.

[0003] In practice, existing ultrasonic cleaning mainly uses ultrasonic cleaning machines. To use them, you simply place the medicine bottle into the cleaning chamber of the ultrasonic cleaning machine, add cleaning fluid, and then turn it on. During the cleaning process, the dust and debris (here, debris refers to grease, sweat, body grime, etc.) that are cleaned out will float on the surface of the liquid in the cleaning chamber due to the buoyancy of the water. When the medicine bottle is removed after cleaning, the contact between the medicine bottle and the dust and debris on the liquid surface will cause the dust and debris to re-adhere to the medicine bottle, affecting the cleaning effect. Summary of the Invention

[0004] In view of the problem in the above or existing technology that when the medicine bottle is removed, the medicine bottle comes into contact with dust and debris on the liquid surface, causing the dust and debris to re-adhere to the medicine bottle and affecting the cleaning effect, the present invention is proposed.

[0005] To solve the above-mentioned technical problems, the present invention provides the following technical solution: A cleaning component includes an ultrasonic cleaner, a cleaning chamber disposed within the ultrasonic cleaner, a support column disposed on the upper side of the ultrasonic cleaner, a support frame disposed on the support column, an electric telescopic rod disposed on the support frame, and an arc-shaped plate disposed on the electric telescopic rod; a cleaning component includes a liquid storage assembly disposed on the ultrasonic cleaner, a drain assembly disposed within the cleaning chamber, a filter assembly disposed on the liquid storage assembly, a transmission assembly disposed on the support frame, and a toggle assembly disposed on the drain assembly; a liquid return component includes a liquid extraction assembly disposed on the side wall of the ultrasonic cleaner and an overflow assembly disposed within the cleaning chamber; a water pouring component includes a rotating assembly disposed on the support frame and a pushing assembly disposed on the ultrasonic cleaner.

[0006] As a preferred embodiment of the medical laboratory medicine bottle cleaning equipment of the present invention, the liquid storage component includes an installation cavity disposed in an ultrasonic cleaner, and an open-top liquid storage tank is fixedly connected in the installation cavity.

[0007] As a preferred embodiment of the medical laboratory medicine bottle cleaning device of the present invention, the draining component includes an L-shaped groove disposed on the side wall of the cleaning chamber, the L-shaped groove having a widening groove, the liquid storage tank having a cut edge that cooperates with the widening groove, the inner wall of the L-shaped groove having an extension groove, and a sealing plug that cooperates with the L-shaped groove being slidably connected in the extension groove.

[0008] As a preferred embodiment of the medical laboratory medicine bottle cleaning equipment of the present invention, the filter assembly includes a strip-shaped opening that penetrates the mounting cavity, a mounting frame is slidably connected and sealed inside the strip-shaped opening, and a filter screen is provided inside the mounting frame.

[0009] As a preferred embodiment of the medical laboratory medicine bottle cleaning device of the present invention, the transmission component includes a guide port disposed on the inner wall of the mounting cavity, an L-shaped rod slidably connected in the guide port, the L-shaped rod passing through the extension groove and slidably and sealingly connected to the inner wall of the extension groove, the L-shaped rod being elastically connected to the inner wall of the mounting cavity by a first spring, a connecting rod being fixedly connected to the L-shaped rod, and a vertical plate being fixedly connected to the connecting rod.

[0010] As a preferred embodiment of the medical laboratory medicine bottle cleaning equipment of the present invention, the actuating component includes a first vertical groove disposed on the side wall of an ultrasonic cleaner, a first turning groove disposed on the first vertical groove, a second vertical groove communicating with the first turning groove, a second turning groove communicating with the first vertical groove disposed on the second vertical groove, a transition frame fixedly connected to the support column, a T-shaped groove disposed on the transition frame, a T-shaped block slidably connected in the T-shaped groove, a cylinder cooperating with the first vertical groove fixedly connected to the T-shaped block, an expansion groove disposed on the inner wall of the first turning groove, a rotating shaft rotatably connected in the expansion groove, a baffle fixedly connected to the rotating shaft, a torsion spring disposed on the rotating shaft, and the upper end of the baffle abutting against the inner wall of the expansion groove.

[0011] As a preferred embodiment of the medical laboratory medicine bottle cleaning equipment of the present invention, the liquid extraction assembly includes a water pump fixedly connected to the side wall of the ultrasonic cleaner, the water pump is provided with an inlet pipe communicating with the lower end of the water storage tank, and the water pump is provided with an outlet pipe communicating with the upper end of the cleaning chamber.

[0012] As a preferred embodiment of the medical laboratory medicine bottle cleaning device of the present invention, the overflow component includes multiple openings disposed on the side wall of the cleaning chamber, each of the multiple openings being provided with an overflow pipe, the overflow pipe extending to the upper side of the mounting frame.

[0013] In a preferred embodiment of the medical laboratory medicine bottle cleaning device of the present invention, the rotating component includes a cavity disposed on a support frame, the non-telescopic section of the electric telescopic rod passes through the cavity and is rotatably connected to the inner wall of the cavity, and a gear is fixedly connected to the electric telescopic rod.

[0014] As a preferred embodiment of the medical laboratory medicine bottle cleaning device of the present invention, the pushing component includes a sealing plate that is slidably connected to the inner wall of the cavity, a plurality of toothed plates that mesh with gears are fixedly connected to the sealing plate, the sealing plate is elastically connected to the inner wall of the cavity through a second spring, a pumping chamber is provided in the T-shaped block, the cylinder passes through the pumping chamber and is slidably connected to the pumping chamber, the pumping chamber is connected to the upper end of the cavity through a pumping pipe, and a wedge block that cooperates with the cylinder is fixedly connected in the first vertical groove.

[0015] The beneficial effects of the medical laboratory medicine bottle cleaning device of the present invention are as follows: By setting up cleaning and rinsing components, the cleaning liquid on the surface of the liquid can be discharged before the medicine bottle is removed, thereby removing dust and debris. This prevents dust and debris from re-adhering to the medicine bottle when it is removed, thus affecting the cleaning effect. At the same time, the liquid return component and the water pouring component can replenish the liquid in the cleaning chamber and pour out the cleaning liquid in the medicine bottle, preventing insufficient cleaning liquid in the cleaning chamber and avoiding waste of cleaning liquid. This solves the problem that when the medicine bottle comes into contact with dust, oil, etc. on the liquid surface, the dust and debris will re-adhere to the medicine bottle when it is removed, affecting the cleaning effect. The device achieves the effect of not having dust and debris on the liquid surface after the medicine bottle is cleaned. Attached Figure Description

[0016] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the external structure of a medicine bottle cleaning equipment used in a medical laboratory.

[0018] Figure 2 This is a cross-sectional view of a medicine bottle cleaning equipment used in a medical laboratory.

[0019] Figure 3 for Figure 2 An enlarged schematic diagram of the structure at point A.

[0020] Figure 4 A schematic diagram of the external structure of the transmission component of a medicine bottle cleaning equipment for medical testing departments.

[0021] Figure 5 Exploded view of the actuation component of a medicine bottle cleaning equipment for medical testing departments.

[0022] Figure 6 for Figure 5 Enlarged schematic diagram of the structure at point B.

[0023] Figure 7 A schematic diagram of the external structure of the actuation component of a medicine bottle cleaning equipment for medical testing departments.

[0024] Figure 8 A cross-sectional schematic diagram of the rotating component of a medicine bottle cleaning equipment for medical testing departments.

[0025] Figure 9 A cross-sectional view of the push component of a medicine bottle cleaning device for medical testing departments.

[0026] In the diagram: 100, Cleaning component; 101, Ultrasonic cleaner; 102, Cleaning chamber; 103, Support column; 104, Support frame; 105, Electric telescopic rod; 106, Arc plate; 200, Cleaning component; 201, Liquid storage assembly; 201a, Mounting cavity; 201b, Liquid storage tank; 202, Drainage assembly; 202a, L-shaped groove; 202b, Widening groove; 202c, Cut edge; 202d, Extension groove; 202e, Sealing plug; 203, Filter assembly; 203a, Strip-shaped opening; 203b, Mounting frame; 203c, Filter screen; 204, Transmission assembly; 204a, Guide opening; 204b, L-shaped rod; 204c, First spring; 204d, Connecting rod; 204e, Vertical plate; 205, Actuating assembly; 205a 1. First vertical groove; 205b. First turning groove; 205c. Second vertical groove; 205d. Second turning groove; 205e. Connecting frame; 205f. T-block; 205g. Cylindrical; 205h. Expansion groove; 205i. Baffle; 205j. Torsion spring; 300. Return liquid component; 301. Liquid extraction component; 301a. Water pump; 301b. Inlet pipe; 301c. Outlet pipe; 302. Overflow component; 302a. Opening; 302b. Overflow pipe; 400. Water pouring component; 401. Rotating component; 401a. Cavity; 401b. Gear; 402. Pushing component; 402a. Sealing plate; 402b. Toothed plate; 402c. Second spring; 402d. Pumping chamber; 402e. Pumping pipe; 402f. Wedge block. Detailed Implementation

[0027] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.

[0028] Example 1, referring to Figures 1-9This is the first embodiment of the present invention, which provides a medical laboratory medicine bottle cleaning device that can prevent dust and foreign objects from sticking to the liquid surface when the medicine bottle is removed, and prevent dust from adhering to the side wall of the medicine bottle. It includes a cleaning component 100, comprising an ultrasonic cleaner 101, a cleaning chamber 102 disposed within the ultrasonic cleaner 101, a support column 103 disposed on the upper side of the ultrasonic cleaner 101, a support frame 104 disposed on the support column 103, an electric telescopic rod 105 disposed on the support frame 104, and an arc-shaped plate 106 disposed on the electric telescopic rod 105; and a cleaning component 200, comprising... The ultrasonic cleaner 101 includes a liquid storage assembly 201, a drain assembly 202 disposed in the cleaning chamber 102, a filter assembly 203 disposed on the liquid storage assembly 201, a transmission assembly 204 disposed on the support frame 104, and a toggle assembly 205 disposed on the drain assembly 202; the return liquid component 300 includes a liquid extraction assembly 301 disposed on the side wall of the ultrasonic cleaner 101 and an overflow assembly 302 disposed in the cleaning chamber 102; the draining water component 400 includes a rotating assembly 401 disposed on the support frame 104 and a pushing assembly 402 disposed on the ultrasonic cleaner 101.

[0029] Specifically, the cleaning chamber 102 contains cleaning fluid, and the medicine bottle is sandwiched between a pair of arc-shaped plates 106. A cylinder is connected to the outside of the support column 103, which can raise and lower the support column 103 so that the support frame 104 can be sent into the cleaning chamber 102. At the same time, the support column 103 is also equipped with an electric slide rail so that the support column 103 can move left and right. The purpose of the cylinder and the electric slide rail is to enable the support column 103 to rise and fall and move left and right. Of course, the combination of the cylinder and the electric slide rail can also be replaced by a robotic arm. The method here is not unique, and the combination of the cylinder and the electric slide rail is existing technology, which will not be described in detail here.

[0030] Furthermore, the liquid storage assembly 201 includes an installation cavity 201a disposed within the ultrasonic cleaner 101, and a liquid storage tank 201b with an open upper end is fixedly connected within the installation cavity 201a; the liquid drainage assembly 202 includes an L-shaped groove 202a disposed on the side wall of the cleaning chamber 102, an expansion groove 202b provided on the L-shaped groove 202a, a cut edge 202c provided on the liquid storage tank 201b that mates with the expansion groove 202b, an extension groove 202d provided on the inner wall of the L-shaped groove 202a, and a sealing plug 202e that mates with the L-shaped groove 202a slidably connected within the extension groove 202d. The filter assembly 203 includes a strip-shaped opening 203a penetrating the installation cavity 201a, an installation frame 203b slidably connected within the strip-shaped opening 203a, and a filter screen 203c disposed within the installation frame 203b.

[0031] The design of the cut edge 202c allows for a better fit between the expansion groove 205h and the side wall of the liquid storage tank 201b, preventing leaks caused by gaps between them. Additionally, sealant can be applied between the expansion groove 205h and the liquid storage tank 201b for sealing. The filter screen 203c is positioned in the lower middle of the mounting frame 203b, preventing dust and other debris from rubbing against the inner wall of the slot 203a when the mounting frame 203b is pulled or pulled. Furthermore, a support groove can be provided on the inner wall of the liquid storage tank 201b to support the mounting frame 203b and prevent it from tilting.

[0032] Preferably, the transmission assembly 204 includes a guide port 204a disposed on the inner wall of the mounting cavity 201a, an L-shaped rod 204b slidably connected within the guide port 204a, the L-shaped rod 204b passing through the extension groove 202d and slidably and sealingly connected to the inner wall of the extension groove 202d, the L-shaped rod 204b being elastically connected to the inner wall of the mounting cavity 201a via a first spring 204c, a connecting rod 204d fixedly connected to the L-shaped rod 204b, and a vertical plate 204e fixedly connected to the connecting rod 204d; the actuation assembly 205 includes a first vertical groove 205a disposed on the side wall of the ultrasonic cleaner 101, the first vertical groove 205a being provided with a first turning groove 205b, the first A second vertical groove 205c is connected to the steering groove 205b, and a second steering groove 205d is connected to the second vertical groove 205c, which is connected to the first vertical groove 205a. A transition frame is fixedly connected to the support column 103. A T-shaped groove is provided on the transition frame. A T-shaped block 205f is slidably connected in the T-shaped groove. A cylinder 205g that mates with the first vertical groove 205a is fixedly connected to the T-shaped block 205f. An expansion groove 205h is provided on the inner wall of the first steering groove 205b. A rotating shaft is rotatably connected in the expansion groove 205h. A baffle 205i is fixedly connected to the rotating shaft. A torsion spring 205j is provided on the rotating shaft. The upper end of the baffle 205i abuts against the inner wall of the expansion groove 205h.

[0033] It should be noted that the length of the extension groove 202d is equal to the length of the sealing plug 202e, so that when the L-shaped rod 204b moves, it can drive the sealing plug 202e to move into the extension groove 202d. The inner wall of the second turning groove 205d is provided with an arc edge, so that when the cylinder 205g moves downward, it enters the lower end of the first vertical groove 205a, instead of directly entering the second turning groove 205d, thus ensuring the unidirectional movement of the cylinder 205g.

[0034] In use, first place the medicine bottle between the two arc-shaped plates 106. Then, the electric telescopic rod 105 extends to clamp the medicine bottle. Next, the support column 103 moves to the upper side of the cleaning chamber 102, driving the support frame 104 to move to the upper side of the cleaning chamber 102. At this time, the sealing plug 202e blocks the opening of the L-shaped groove 202a, sealing the L-shaped groove 202a to prevent liquid leakage. At this time, the liquid level line of the cleaning chamber 102 is below the L-shaped groove 202a. Then, the support column 103 moves downward. When the support column 103 moves downward, it can drive the support frame 104 downward, allowing multiple medicine bottles to enter the cleaning chamber 102. Here, it is necessary to control the descent distance of the support column 103, ensuring the distance between the medicine bottle and the cleaning chamber 102 is controlled. Stop when there is a certain distance between the medicine bottle and the bottom of the cleaning chamber 102 to avoid the bottom of the medicine bottle contacting the bottom of the cleaning chamber 102 and affecting the cleaning effect. After the medicine bottle is put in, the liquid level line in the cleaning chamber 102 is slightly above the L-shaped groove 202a. As the support column 103 moves downward, it drives the adapter to move downward. At this time, it drives the T-shaped block 205f to move downward, so that the cylinder 205g moves downward. When the cylinder 205g moves downward, it moves in the first vertical groove 205a. When the support column 103 reaches the designated position, the cylinder 205g moves to the connection between the first vertical groove 205a and the first turning groove 205b. During this process, since the upper end of the baffle 205i abuts against the inner wall of the expansion groove 205h, the cylinder 205g will not be blocked from moving downward. During cleaning, the dust floats on the surface of the cleaning fluid in the cleaning chamber 102 due to buoyancy. After cleaning, the support column 103 moves upward, driving the cylinder 205g upward via transmission. At this time, because the upper end of the plate abuts against the inner wall of the extension groove 205h, the cylinder 205g cannot return to its original position from the first vertical groove 205a and can only enter the first turning groove 205b. When sliding in the first turning groove 205b, the cylinder 205g moves to the right, driving the vertical plate 204e to the right, thereby causing the connecting rod 204d to move to the right, the L-shaped rod 204b to move to the right, and causing the sealing plug 202e to move to the right and enter the extension groove 202d. The first spring 204c extends, and the sealing plug 202e moves to the right into the extension groove 202d. After the sealing head 202e moves into the extension groove 202d, the L-shaped groove 202a opens. At this time, the water in the cleaning chamber 102 flows along the L-shaped groove 202a to the widening groove 202b, and then flows into the storage tank 201b. Finally, after being filtered by the filter screen 203c, it is stored in the storage tank 201b. During the flow, since the liquid level in the cleaning chamber 102 is slightly above the L-shaped groove 202a, the water in the upper layer of the cleaning chamber 102 flows out, causing dust and debris to flow out as well. Then, when the medicine bottle continues to move upward, it will not come into contact with the upper layer of dust and debris. It is worth noting that when the L-shaped groove 202a drains water, the medicine bottle is always at the lower level of the liquid level in the cleaning chamber 102. As the cylinder 205g continues to move upward, it will enter the second vertical groove 205c, and then move through the second turning groove 205d to the first vertical groove 205a, so that when the support column 103 moves downward next time, the cylinder 205g can still enter the first vertical groove 205a. When the cylinder 205g moves from the second turning groove 205d to the first vertical groove 205a, under the action of the first spring 204c, the L-shaped rod 204b is reset, so that the sealing plug 202e re-seals the L-shaped groove 202a.

[0035] In summary, by setting up the cleaning component 200, the L-shaped groove 202a can be opened during the upward movement of the medicine bottle after cleaning, so that the water in the upper layer of the cleaning chamber 102 can be discharged along with dust and debris, thus preventing dust and debris from adhering to the side wall of the medicine bottle when it is removed after cleaning.

[0036] Example 2, refer to Figures 1-9 This is the second embodiment of the present invention. Unlike the previous embodiment, this embodiment provides a return component 300 for a medical laboratory medicine bottle cleaning device, which solves the problem of how to replenish water in the cleaning chamber 102. It includes a pumping component 301, which includes a water pump 301a fixedly connected to the side wall of the ultrasonic cleaner 101. The water pump 301a is provided with an inlet pipe 301b communicating with the lower end of the water storage tank. The water pump 301a is provided with an outlet pipe 301c communicating with the upper end of the cleaning chamber 102. The overflow component 302 includes multiple openings 302a provided on the side wall of the cleaning chamber 102. Each of the multiple openings 302a is provided with an overflow pipe 302b. The overflow pipe 302b extends to the upper side of the mounting frame 203b.

[0037] Specifically, the water pump 301a can automatically pump the liquid in the storage tank 201b into the cleaning chamber 102. The water pump 301a can be automatically controlled by programming, which is existing technology and will not be described in detail here. The multiple overflow pipes 302b are set above the L-shaped groove 202a to control the water level and prevent the water level from exceeding the L-shaped groove 202a by too much, which would cause the dust on the liquid surface to not be discharged when the medicine bottle rises and touches the liquid level line.

[0038] During use, after the medicine bottle leaves the cleaning chamber 102, the water pump 301a starts, pumping water from the storage tank 201b into the cleaning chamber 102 to replenish the water in the cleaning chamber 102. This prevents the water level from failing to reach the L-shaped groove 202a when the medicine bottle is placed in the next time. The multiple overflow pipes 302b here can control the water level, ensuring that the water level is slightly above the L-shaped groove 202a when the medicine bottle is placed in the chamber. This allows dust and debris on the liquid surface to be quickly discharged through the L-shaped groove 202a when it is opened.

[0039] In summary, by setting up the return liquid component 300, the cleaning liquid in the cleaning chamber 102 can be automatically replenished, which can prevent the water level from not reaching the position of the L-shaped groove 202a when the medicine bottle is put in next time. At the same time, it can also prevent the cleaning liquid from being too little, which would affect the cleaning of the medicine bottle.

[0040] Example 3, referring to Figures 1-9 This is the third embodiment of the present invention. Unlike the previous embodiment, this embodiment provides a water-pouring component 400 for a medical laboratory medicine bottle cleaning device, solving the problem of how to pour out the cleaning solution remaining in the medicine bottle. It includes a rotating assembly 401 comprising a cavity 401a disposed on a support frame 104. The non-telescopic section of an electric telescopic rod 105 passes through the cavity 401a and is rotatably connected to the inner wall of the cavity 401a. A gear 401b is fixedly connected to the electric telescopic rod 105. A pushing assembly 402 includes a sealed sliding connection to the inner wall of the cavity 401a. The sealing plate 402a is fixedly connected to the sealing plate 402a, and multiple toothed plates 402b that mesh with the gear 401b are fixedly connected to the sealing plate 402a. The sealing plate 402a is elastically connected to the inner wall of the cavity 401a through the second spring 402c. The T-shaped block 205f is provided with a pumping chamber 402d. The cylinder 205g passes through the pumping chamber 402d and is slidably connected to the pumping chamber 402d in a sealed manner. The pumping chamber 402d is connected to the upper end of the cavity 401a through the pumping pipe 402e. The wedge-shaped block 402f that cooperates with the cylinder 205g is fixedly connected to the first vertical groove 205a.

[0041] Specifically, the air pump pipe 402e enters the adapter frame from the T-shaped groove, and then enters the cavity 401a in the support frame 104 through the support column 103. This prevents the air pump pipe 402e from being exposed and avoids contact between the air pump pipe 402e and the cleaning liquid in the cleaning chamber 102. In addition, the air pump pipe 402e is partially bent in the T-shaped groove to prevent the air pump pipe 402e from being pulled when the T-shaped block 205f moves.

[0042] In use, when the cylinder 205g returns from the second steering groove 205d to the first vertical groove 205a and continues to move upward, the cylinder 205g engages with the wedge block 402f, causing the cylinder 205g to move towards the pumping chamber 402d. This pumps the gas in the pumping chamber 402d into the cavity 401a through the pumping pipe 402e, causing the sealing plate 402a to move downward. This, in turn, drives the toothed plate 402b to move downward, causing the gear 401b to rotate. This, in turn, drives the electric telescopic rod 105 to rotate, from... The arc plate 106 rotates, causing the medicine bottle to rotate and the bottle opening to turn downwards, pouring out the cleaning solution inside the medicine bottle and avoiding waste. Here, when the cylinder 205g does not abut against the wedge block 402f, the sealing plate 402a automatically resets, causing the electric telescopic rod 105 to reset. Thus, the electric telescopic rod 105 rotates back and forth without causing wire tangling. At the same time, the lower end of the cavity 401a is provided with an exhaust port to prevent the sealing plate 402a from being unable to move due to air pressure issues.

[0043] In summary, by setting up the water-pouring component 400, the medicine bottle can be automatically flipped after cleaning, so that the opening of the medicine bottle faces downwards, and the cleaning solution inside the medicine bottle can be poured out. This avoids the accumulation of cleaning solution in the medicine bottle, which may affect the subsequent filling of medicine, and also avoids the waste of cleaning solution.

[0044] 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 medical laboratory medicine bottle cleaning device, characterized in that: include, The cleaning component (100) includes an ultrasonic cleaner (101), a cleaning chamber (102) disposed within the ultrasonic cleaner (101), a support column (103) disposed on the upper side of the ultrasonic cleaner (101), a support frame (104) disposed on the support column (103), an electric telescopic rod (105) disposed on the support frame (104), and an arc plate (106) disposed on the electric telescopic rod (105). The cleaning component (200) includes a liquid storage assembly (201) disposed on the ultrasonic cleaner (101), a liquid drain assembly (202) disposed in the cleaning chamber (102), a filter assembly (203) disposed on the liquid storage assembly (201), a transmission assembly (204) disposed on the support frame (104), and a toggle assembly (205) disposed on the liquid drain assembly (202). The liquid return component (300) includes a liquid extraction assembly (301) disposed on the side wall of the ultrasonic cleaner (101) and an overflow assembly (302) disposed in the cleaning chamber (102). The water-pouring component (400) includes a rotating assembly (401) disposed on the support frame (104) and a pushing assembly (402) disposed on the ultrasonic cleaner (101).

2. The medical laboratory medicine bottle cleaning equipment as described in claim 1, characterized in that: The liquid storage assembly (201) includes an installation cavity (201a) disposed in an ultrasonic cleaner (101), and an open liquid storage tank (201b) is fixedly connected in the installation cavity (201a).

3. The medical laboratory medicine bottle cleaning equipment as described in claim 2, characterized in that: The drainage assembly (202) includes an L-shaped groove (202a) disposed on the side wall of the cleaning chamber (102), the L-shaped groove (202a) is provided with a widening groove (202b), the storage tank (201b) is provided with a cut edge (202c) that cooperates with the widening groove (202b), the inner wall of the L-shaped groove (202a) is provided with an extension groove (202d), and a sealing plug (202e) that cooperates with the L-shaped groove (202a) is slidably connected in the extension groove (202d).

4. The medical laboratory medicine bottle cleaning equipment as described in claim 3, characterized in that: The filter assembly (203) includes a strip-shaped opening (203a) that penetrates the mounting cavity (201a), and a mounting frame (203b) is slidably connected inside the strip-shaped opening (203a), and a filter screen (203c) is provided inside the mounting frame (203b).

5. The medical laboratory medicine bottle cleaning equipment as described in claim 4, characterized in that: The transmission assembly (204) includes a guide port (204a) disposed on the inner wall of the mounting cavity (201a). An L-shaped rod (204b) is slidably connected in the guide port (204a). The L-shaped rod (204b) passes through the extension groove (202d) and is slidably and sealed to the inner wall of the extension groove (202d). The L-shaped rod (204b) is elastically connected to the inner wall of the mounting cavity (201a) through a first spring (204c). A connecting rod (204d) is fixedly connected to the L-shaped rod (204b), and a vertical plate (204e) is fixedly connected to the connecting rod (204d).

6. The medical laboratory medicine bottle cleaning equipment as described in claim 5, characterized in that: The actuating assembly (205) includes a first vertical groove (205a) disposed on the side wall of the ultrasonic cleaner (101), a first turning groove (205b) provided on the first vertical groove (205a), a second vertical groove (205c) connected to the first turning groove (205b), a second turning groove (205d) connected to the second vertical groove (205a) and the first vertical groove (205a), and an adapter frame fixedly connected to the support column (103), the adapter frame being provided with a T-shaped groove. A T-shaped block (205f) is slidably connected inside the T-shaped groove. A cylinder (205g) that mates with the first vertical groove (205a) is fixedly connected to the T-shaped block (205f). An expansion groove (205h) is provided on the inner wall of the first turning groove (205b). A rotating shaft is rotatably connected inside the expansion groove (205h). A baffle (205i) is fixedly connected to the rotating shaft. A torsion spring (205j) is provided on the rotating shaft. The upper end of the baffle (205i) abuts against the inner wall of the expansion groove (205h).

7. The medical laboratory medicine bottle cleaning equipment as described in claim 6, characterized in that: The liquid extraction assembly (301) includes a water pump (301a) fixedly connected to the side wall of the ultrasonic cleaner (101). The water pump (301a) is provided with an inlet pipe (301b) that communicates with the lower end of the water storage tank, and an outlet pipe (301c) that communicates with the upper end of the cleaning chamber (102).

8. The medical laboratory medicine bottle cleaning equipment as described in claim 7, characterized in that: The overflow component (302) includes a plurality of openings (302a) disposed on the side wall of the cleaning chamber (102), and an overflow pipe (302b) is provided in each of the plurality of openings (302a), the overflow pipe (302b) extending to the upper side of the mounting frame (203b).

9. The medical laboratory medicine bottle cleaning equipment as described in claim 7 or 8, characterized in that: The rotating assembly (401) includes a cavity (401a) disposed on the support frame (104), the non-telescopic section of the electric telescopic rod (105) passes through the cavity (401a) and is rotatably connected to the inner wall of the cavity (401a), and a gear (401b) is fixedly connected to the electric telescopic rod (105).

10. The medical laboratory medicine bottle cleaning equipment as described in claim 9, characterized in that: The pushing assembly (402) includes a sealing plate (402a) that is slidably connected to the inner wall of the cavity (401a). A plurality of toothed plates (402b) that mesh with the gear (401b) are fixedly connected to the sealing plate (402a). The sealing plate (402a) is elastically connected to the inner wall of the cavity (401a) through a second spring (402c). The T-shaped block (205f) is provided with a pumping chamber (402d). The cylinder (205g) passes through the pumping chamber (402d) and is slidably connected to the pumping chamber (402d). The pumping chamber (402d) is connected to the upper end of the cavity (401a) through a pumping pipe (402e). A wedge-shaped block (402f) that mates with the cylinder (205g) is fixedly connected to the first vertical groove (205a).