Bottle washing machine for veterinary drug production

By designing clamps that are suitable for different bottle sizes and an automated cleaning and air-drying system, the problem that existing devices cannot adapt to the cleaning of different sizes of bottles is solved, and the stable clamping and efficient cleaning and air-drying of bottles are achieved.

CN223128847UActive Publication Date: 2025-07-22四川德合制药有限公司
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Patent Information

Application Number
CN202422192679.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-06
Publication Date
2025-07-22
Estimated Expiration
2034-09-06

AI Technical Summary

Technical Problem

Existing ultrasonic bottle washing machines for veterinary medicine production cannot adapt to the cleaning of different sizes of bottles, and they need to be dried naturally after cleaning, resulting in wasted time.

Method used

A treatment chamber including a cleaning area and an air-drying area is designed, equipped with a clamping member and a support slip assembly. The clamping member adapts to different bottle sizes through a clamping block and a placement rod, and combines an electric telescopic rod and a spline shaft to achieve automatic cleaning and air-drying of the bottle.

Benefits of technology

It realizes stable clamping and automatic cleaning and air-drying of bottles of different sizes, avoiding the collision of bottles and dripping of moisture after cleaning, and improving cleaning efficiency and environmental protection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a bottle washing machine for veterinary drug production, which relates to the field of cleaning equipment and comprises a processing cavity, a bottle washing device and a bottle washing device. The number of the clamping pieces is multiple, and the multiple clamping pieces are arranged on the outer side of the square cylinder in the circumferential direction; each clamping piece comprises a placing rod and two clamping blocks, and the two clamping blocks are connected to the square cylinder in a sliding mode; the placing rod is located under the two clamping blocks and vertically moves on the square cylinder. The medicine bottle cleaning device solves the problem that an existing device cannot be suitable for cleaning medicine bottles of different sizes, the two clamping blocks slide on the square cylinder to be adjusted, the placing rod moves on the square cylinder to be adjusted in position so as to adapt to the medicine bottles of different sizes, and the application range of the device is widened.
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Description

Technical Field

[0001] The utility model relates to the field of cleaning equipment, and particularly relates to a bottle washing machine for veterinary drug production. Background Art

[0002] When the production of veterinary drugs is completed, in order to facilitate the sale and long-term preservation of veterinary drugs, it is necessary to bag or bottle the veterinary drugs. When bottling the veterinary drugs, it is necessary to clean the veterinary drug bottles in advance to avoid contamination of the veterinary drugs due to dirty bottles. Currently, in the existing ultrasonic bottle washing machine for veterinary drug production, during the cleaning process, most of the medicine bottles are directly placed in the cleaning box. When the bottle body is placed or cleaned, the bottle bodies will collide with each other, causing damage to the bottle bodies. Moreover, the existing ultrasonic bottle washing machine for veterinary drug production does not have a drying device, but the medicine bottles need to be dried before use after cleaning, and natural drying after cleaning will waste a lot of time.

[0003] In the prior art, a Chinese patent with the application number CN202022855925.8 discloses an ultrasonic bottle washing machine for veterinary drug production, including: a support plate; a cleaning structure fixedly arranged on the upper wall surface of the support plate and located at the central part; a moving structure fixedly arranged above the support plate and located at the central part;

[0004] The above solution protects the medicine bottles by setting fixed rods and sleeve rods to prevent the medicines from colliding. However, since the sizes of the medicine bottles for loading veterinary drugs are different; due to the different volumes and heights of different types of medicine bottles, the sleeve rods cannot better fix medicine bottles of different sizes, and the use of the fixing component has limitations. Summary of the Utility Model

[0005] The technical problem to be solved by the utility model is that the existing device cannot be applied to the cleaning of medicine bottles of different sizes. The purpose is to provide a bottle washing machine for veterinary drug production, which solves the problem that the existing device cannot be applied to the cleaning of medicine bottles of different sizes.

[0006] The utility model is realized by the following technical solutions:

[0007] A bottle washing machine for veterinary drug production, including:

[0008] A processing chamber, including a cleaning area and a drying area distributed left and right;

[0009] A square cylinder for supporting and placing medicine bottles;

[0010] A plurality of clamping members, and the plurality of clamping members are circumferentially arranged outside the square cylinder;

[0011] Each of the clamping members includes a placing rod and two clamping blocks, and the two clamping blocks are slidably connected to the square cylinder; the placing rod is located directly below the two clamping blocks and moves vertically on the square cylinder;

[0012] A support sliding assembly, connected to the square cylinder, is used to drive the square cylinder to enter the cleaning area and the air-drying area in sequence.

[0013] Further optimization: The two clamping blocks are slidably connected to the square cylinder through elastic members, and the elastic members include springs and guide rods.

[0014] The guide rods are arranged on the square cylinder, and both sides of the guide rods are slidably connected to the two clamping blocks respectively;

[0015] There are two springs. The two springs are respectively sleeved on both sides of the guide rod. One end of each spring is connected to the corresponding clamping block, and the other end is connected to the side wall of the square cylinder.

[0016] Further optimization: Rubber pads are arranged on one side of each of the two clamping blocks close to the medicine bottle.

[0017] Further optimization: The placing rod moves vertically on the square cylinder through an adjusting member, and the adjusting member includes a fixed rod and a set of threaded sleeves.

[0018] The fixed rod is arranged in the middle of the square cylinder.

[0019] There are multiple sets of threaded sleeves. The multiple sets of threaded sleeves are circumferentially arranged outside the fixed rod and correspond to the position of the placing rod. Each set of threaded sleeves includes multiple vertically and evenly arranged threaded sleeves, and the threaded sleeves are threadedly connected to the corresponding placing rod for positioning.

[0020] Further optimization: The support sliding assembly includes support rods, support blocks, electric telescopic rods and sliding members.

[0021] There are two support rods, and the two support rods are respectively arranged on both sides outside the processing chamber;

[0022] There are two support blocks, and the two support blocks are respectively slidably connected to the two support rods;

[0023] The sliding member is arranged between the two support blocks, and the sliding member is rotatably connected to the square cylinder;

[0024] There are two electric telescopic rods. The two electric telescopic rods are respectively arranged vertically on the two support rods, and the telescopic ends of the two electric telescopic rods are respectively connected to the two support blocks.

[0025] Further optimization: A spline sleeve is fixedly connected to the bottom of the square cylinder.

[0026] For further optimization, a spline rotating shaft is rotatably connected in the air drying area and is used to cooperate with a spline sleeve to drive the square cylinder to rotate.

[0027] For further optimization, one end of the spline rotating shaft is connected with a driving motor located at the bottom of the treatment chamber.

[0028] For further optimization, support platforms are arranged on both sides of the treatment chamber.

[0029] For further optimization, drain outlets are arranged in both the cleaning area and the air drying area.

[0030] Compared with the prior art, the utility model has the following advantages and beneficial effects:

[0031] 1. By arranging a plurality of clamping members, each clamping member correspondingly clamps and fixes a medicine bottle to prevent collision between medicine bottles.

[0032] 2. The clamping space formed by two clamping blocks clamps the body of the medicine bottle, and at the same time, the placing rod supports the inverted medicine bottle to a certain extent, ensuring the stability of the fixing of the medicine bottle.

[0033] 3. The two clamping blocks slide on the square cylinder for adjustment, and the placing rod moves on the square cylinder for position adjustment to adapt to different medicine bottle sizes, increasing the application range of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] In order to more clearly illustrate the technical solutions of the exemplary embodiments of the present utility model, the drawings required for use in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present utility model and should not be regarded as limiting the scope. For those of ordinary skill in the art, other related drawings can also be obtained based on these drawings without creative efforts. In the drawings:

[0035] Figure 1 is a schematic structural diagram of an embodiment of the present utility model;

[0036] Figure 2 is a schematic structural diagram of the square cylinder of the present utility model;

[0037] Figure 3 is a schematic structural diagram of the adjusting member of the present utility model;

[0038] Figure 4 is a schematic structural diagram of the spline sleeve of the present utility model.

[0039] Marks in the drawings and corresponding component names:

[0040] 1 - Processing chamber, 11 - Cleaning area, 12 - Air - drying area, 121 - Spline rotating shaft, 2 - Clamping mechanism, 21 - Square cylinder, 22 - Clamping member, 221 - Clamping block, 222 - Placing rod, 223 - Rubber pad, 3 - Support and sliding assembly, 31 - Support rod, 32 - Support block, 33 - Sliding member, 34 - Electric telescopic rod, 4 - Elastic member, 41 - Guide rod, 42 - Spring, 5 - Adjusting member, 51 - Fixed rod, 52 - Threaded sleeve group, 6 - Spline sleeve, 7 - Driving motor, 8 - Support table, 9 - Drainage port. Detailed implementation manners

[0041] To make the purpose, technical solutions and advantages of the present utility model clearer and more understandable, the present utility model will be further described in detail below in combination with embodiments and drawings. The illustrative embodiments and descriptions thereof of the present utility model are only used to explain the present utility model and shall not be construed as limiting the present utility model.

[0042] Embodiment 1

[0043] In the prior art, a fixed rod 51 and a sleeve rod are provided to protect the medicine bottles and prevent the medicine from colliding. However, since the sizes of the medicine bottles loaded with veterinary drugs are different; due to the different volumes and heights of different types of medicine bottles, the sleeve rod cannot better fix medicine bottles of different sizes, and the use of the fixing component has limitations.

[0044] This Embodiment 1 provides a bottle - washing machine for veterinary drug production, as Figures 1 - 3 shown, including:

[0045] A processing chamber 1, including a cleaning area 11 and an air - drying area 12 distributed left - right; in the prior art, a support frame is used to support the medicine bottles and complete the cleaning and air - drying processes in an open environment. During air - drying, the residual water on the medicine bottles falls on the support plate and may flow outside the support plate. If not processed in time, it may cause environmental pollution. In this embodiment, the cleaning and air - drying processes of the medicine bottles are completed in a relatively enclosed space, so that the waste water after cleaning can be discharged centrally to avoid environmental pollution.

[0046] In addition, the cleaning area 11 is located on the left side of the processing chamber 1, and the air - drying area 12 is located on the right side of the processing chamber 1. The cleaning area 11 is provided with a cleaning box, and an ultrasonic generator is installed in the cleaning box. By starting the ultrasonic generator, the medicine bottles are cleaned and then moved to the air - drying area 12 for air - drying.

[0047] Furthermore, drainage ports 9 are provided in both the cleaning area 11 and the air - drying area 12. Both drainage ports 9 are connected to a drain pipe, and a valve is provided on the drain pipe. By opening the valve, the waste water after cleaning is discharged from the drainage port 9 for treatment.

[0048] A square cylinder 21, used to support and place the medicine bottles;

[0049] There are multiple clamping members 22, and the multiple clamping members 22 are circumferentially arranged outside the square cylinder 21; the square cylinder 21 and the multiple clamping members 22 form a clamping mechanism 2 to clamp multiple medicine bottles. The bottom surface of the square cylinder 21 can be hexagonal, octagonal, dodecagonal, etc. Each clamping member 22 can correspondingly clamp a medicine bottle. When clamping, the medicine bottle is installed upside down on the clamping member 22. The number of the clamping members 22 is set according to the specific shape of the square cylinder 21. For example, when the square cylinder 21 is octagonal, there are eight corresponding clamping members 22; when the square cylinder 21 is hexagonal, there are six corresponding clamping members 22.

[0050] Each clamping member includes a placing rod 222 and two clamping blocks 221. The two clamping blocks 221 are slidably connected to the square cylinder 21; the placing rod 222 is located directly below the two clamping blocks 221 and moves vertically on the square cylinder 21.

[0051] Specifically, the medicine bottle is clamped into the clamping space between the two clamping blocks 221, and the two clamping blocks 221 slide to adjust the clamping space to adapt to different medicine bottle sizes. The placing rod 222 is used to support the medicine bottle, and the placing rod 222 moves vertically on the square cylinder 21 to adapt to medicine bottles of different heights.

[0052] The support sliding assembly 3 is connected to the square cylinder 21 and is used to drive the square cylinder 21 to enter the cleaning area 11 and the air-drying area 12 in sequence. Specifically, the support sliding assembly 3 includes a support rod 31, a support block 32, an electric telescopic rod 34, and a sliding member 33.

[0053] There are two support rods 31, and the two support rods 31 are respectively arranged on both sides outside the processing chamber 1. Grooves are formed on both support rods 31 for accommodating and installing the corresponding electric telescopic rods 34.

[0054] There are two support blocks 31, and the two support blocks 32 are respectively slidably connected in the grooves on the two support rods 31.

[0055] The sliding member 33 is arranged between the two support blocks 32, and the sliding member 33 is rotatably connected to the square cylinder 21. Specifically, the sliding member 33 drives the square cylinder 21 to move. The sliding member 33 and the square cylinder 21 are ball-connected, and when the square cylinder 21 rotates, the sliding member 33 can always maintain its original state. That is, the sliding member 33 does not affect the subsequent normal rotation of the square cylinder 21.

[0056] There are two electric telescopic rods 34, and the two electric telescopic rods 34 are respectively vertically arranged on the two support rods 31. The telescopic ends of the two electric telescopic rods 34 are respectively connected to the two support blocks 31.

[0057] Specifically, the specific working process of the support and sliding assembly 3 in this embodiment is as follows:

[0058] The sliding member 33 is between the two support blocks 32 and drives the square cylinder 21 to move horizontally. In this embodiment, the structure of the sliding member 33 is a lead screw rotatably arranged between the two support blocks 32, a limiting rod fixedly connected between the two support blocks 32, and a sliding block rotatably connected to the square cylinder 21. The sliding block is threadedly connected to the lead screw, and the sliding block is slidably connected to the limiting rod for limiting. The lead screw rotates to drive the sliding block to move horizontally, and then drives the medicine bottle on the square cylinder 21 to move horizontally to enter or leave the processing chamber 1.

[0059] When the sliding member 33 drives the square cylinder 21 to move to directly above the cleaning area 11, at this time, the two electric telescopic rods 34 can be started to contract, and the two support blocks 32 move downward synchronously, and the square cylinder 21 drives the medicine bottle to enter the cleaning area 11 for cleaning.

[0060] Start the two electric telescopic rods 34 to extend, the two support blocks 32 move upward synchronously, the square cylinder 21 drives the medicine bottle to reset, and then continue the moving operation so that the square cylinder 21 and the medicine bottle enter the air-drying area 12.

[0061] A plurality of the clamping members 22 are circumferentially arranged outside the square cylinder 21. Each clamping member 22 includes a support rod 31 and two clamping blocks 221. The two clamping blocks 221 are slidably connected to the square cylinder 21 through an elastic member 4; the support rod 31 is located directly below the two clamping blocks 221 and moves vertically on the square cylinder 21 through an adjusting member 5. Specifically, a clamping space is formed between the two clamping blocks 221 to clamp the body of the medicine bottle. Since the sizes and volumes of the medicine bottles are different, in this embodiment, the elastic member 4 is used to adjust the size of the clamping space to adapt to medicine bottles of different volumes. In addition, since the medicine bottles are placed upside down, the placing rod 222 provides a certain support for the medicine bottles, thereby further preventing the medicine bottles from slipping. And the heights of medicine bottles of different sizes are different, and the position of the placing rod 222 is adjusted through the adjusting member 5 to adapt to medicine bottles of different heights, thereby increasing the application range of this device.

[0062] Further, as Figure 2 shown, the two clamping blocks 221 are slidably connected to the square cylinder 21 through an elastic member 4. The elastic member 4 includes two springs 42 and a guide rod 41.

[0063] The guide rod 41 is arranged on the square cylinder 21, and both sides of the guide rod 41 are slidably connected to the two clamping blocks 221 respectively;

[0064] The two springs 42 are respectively sleeved on both sides of the guide rod 41. One end of the spring 42 is connected to the corresponding clamping block 221, and the other end is connected to the side wall of the square cylinder 21.

[0065] Specifically, as Figure 2 shown, the working process of the elastic member 4 is as follows:

[0066] The square cylinder 21 is provided with a receiving groove for placing the guide rod 41. When the medicine bottle is clamped into the two clamping blocks 221, the two clamping blocks 221 move away from each other to increase the clamping space. At this time, the clamping block 221 compresses the spring 42, and the spring 42 gives a reaction force to the clamping block 221 to clamp the body of the medicine bottle.

[0067] Furthermore, rubber pads 223 are provided on one side of each of the two clamping blocks 221 close to the medicine bottle. The rubber pads 223 have a certain elasticity, ensuring the softness of the contact between the clamping blocks 221 and the medicine bottle. At the same time, the friction between the rubber pads 223 and the medicine bottle is greater, enabling better clamping of the medicine bottle.

[0068] Furthermore, as Figure 4 shown, the adjusting member 5 includes a fixed rod 51 and a set of threaded sleeves 52.

[0069] The fixed rod 51 is arranged in the middle of the square cylinder 21. There are multiple sets of threaded sleeves 52. The multiple sets of threaded sleeves 52 are circumferentially arranged outside the fixed rod 51 and correspond to the positions of the placing rods 222. Each set of threaded sleeves 52 includes a plurality of threaded sleeves arranged vertically and evenly. The threaded sleeves are threadedly connected to the corresponding placing rods 222. In this embodiment, the number of threaded sleeves in each set of threaded sleeves 52 is 4 - 8. Each threaded sleeve corresponds to a height, and the placing rod 222 corresponds to one of the threaded sleeves to determine the placing height of the placing rod 222.

[0070] Specifically, the working process of the adjusting member 5 is as follows:

[0071] In this embodiment, the square cylinder 21 is provided with a working hole for the placing rod 222 to extend into. The position of the working hole corresponds to the position of the set of threaded sleeves. After the placing rod 222 extends in, it cooperates with the corresponding threaded sleeve to adjust the position.

[0072] One end of each placing rod 222 is provided with a thread. The threaded sleeves in the same set of threaded sleeves 52 respectively correspond to a height. The placing rod 222 is threadedly engaged with one of the threaded sleeves to determine the position of the placing rod 222.

[0073] Furthermore, support platforms 8 are provided on both sides of the treatment chamber 1. When the medicine bottle enters and leaves the treatment chamber 1, since the medicine bottle is in a suspended state, in order to facilitate the picking and placing of the medicine bottle on the square cylinder 21, support platforms 8 are provided on both sides of the treatment chamber 1 to support and place the square cylinder 21.

[0074] Embodiment 2

[0075] In the prior art, when air-drying is carried out, a fan is arranged on the support plate to air-dry the medicine bottles. Since the fan is located directly below the medicine bottles, the water remaining on the medicine bottles will fall on the fan, and the fan will be wetted and may finally affect the operation of the fan.

[0076] To solve this problem, in this embodiment, a fan located on the side wall is arranged in the air-drying area 12 to perform the air-drying operation, and at the same time, the rotating square cylinder 21 is cooperated to accelerate the air-drying.

[0077] Specifically, a spline sleeve 6 is fixedly connected to the bottom of the square cylinder 21, and a spline shaft 121 is rotatably connected in the air-drying area 12 and is used to cooperate with the spline sleeve 6 to drive the square cylinder 21 to rotate.

[0078] Furthermore, one end of the spline shaft 121 is connected to a driving motor 7 located at the bottom of the processing chamber 1. The driving motor 7 provides a power source for driving the spline shaft 121 to rotate.

[0079] Specifically, when the sliding member 33 drives the square cylinder 21 to move to the air-drying area 12, at this time, the electric telescopic rod 34 is started, and the square cylinder 21 moves downward and enters. The spline sleeve 6 at the bottom of the square cylinder 21 moves downward and sleeves on the spline shaft 121. At this time, the driving motor 7 is started, the spline shaft 121 rotates, and the spline sleeve 6 in spline fit with the spline shaft 121 rotates and drives the square cylinder 21 and the medicine bottles to rotate. On the one hand, it ensures uniform air-drying of the medicine bottles. On the other hand, the fan is arranged on the side wall of the air-drying area 12, and the water falling from the medicine bottles will not wet the fan to ensure the normal operation of the fan.

[0080] The above specific implementation manners further elaborate on the purpose, technical solution and beneficial effects of the present utility model. It should be understood that the above is only the specific implementation manners of the present utility model and is not used to limit the protection scope of the present utility model. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present utility model shall be included in the protection scope of the present utility model.

Claims

1. A bottle washer for veterinary drug production, characterized in that, Comprising: A processing chamber, including a cleaning area and a drying area distributed left and right; A square cylinder for supporting and placing medicine bottles; Clamping members, with a plurality of them, and the plurality of clamping members are circumferentially arranged outside the square cylinder; Each clamping member includes a placing rod and two clamping blocks, and the two clamping blocks are slidably connected to the square cylinder; the placing rod is located directly below the two clamping blocks and moves vertically on the square cylinder; A support sliding assembly, connected to the square cylinder, for driving the square cylinder to enter the cleaning area and the drying area in sequence.

2. The bottle washing machine for veterinary drug production according to claim 1, wherein, The two clamping blocks are slidably connected to the square cylinder through elastic members, and the elastic members include springs and guide rods, The guide rods are arranged on the square cylinder, and both sides of the guide rods are slidably connected to the two clamping blocks respectively; There are two springs, and the two springs are respectively sleeved on both sides of the guide rod. One end of each spring is connected to the corresponding clamping block, and the other end is connected to the side wall of the square cylinder.

3. The bottle washer for veterinary drug production according to claim 1 or 2, characterized in that, Rubber pads are provided on one side of each of the two clamping blocks close to the medicine bottle.

4. The bottle washer for veterinary drug production according to claim 1, characterized in that, The placing rod moves vertically on the square cylinder through an adjusting member, and the adjusting member includes a fixed rod and a set of threaded sleeves, The fixed rod is arranged in the middle of the square cylinder, There are a plurality of sets of threaded sleeves, and the plurality of sets of threaded sleeves are circumferentially arranged outside the fixed rod and correspond to the position of the placing rod. Each set of threaded sleeves includes a plurality of threaded sleeves arranged vertically and evenly, and the threaded sleeves are threadedly connected to the corresponding placing rod for positioning.

5. The bottle washing machine for veterinary drug production according to claim 1, wherein The support sliding assembly includes support rods, support blocks, electric telescopic rods and sliding members, There are two support rods, and the two support rods are respectively arranged on both sides outside the processing chamber; There are two support blocks, and the two support blocks are respectively slidably connected to the two support rods; The sliding member is arranged between the two support blocks, and the sliding member is rotatably connected to the square cylinder; There are two electric telescopic rods, and the two electric telescopic rods are respectively arranged vertically on the two support rods, and the telescopic ends of the two electric telescopic rods are respectively connected to the two support blocks.

6. The bottle washer for veterinary drug production according to claim 1, wherein, A spline sleeve is fixedly connected to the bottom of the square cylinder.

7. The bottle washing machine for veterinary drug production according to claim 6, wherein A spline shaft is rotatably connected in the drying area for cooperating with the spline sleeve to drive the square cylinder to rotate.

8. The bottle washing machine for veterinary drug production according to claim 7, characterized in that, One end of the spline shaft is connected to a driving motor located at the bottom of the processing chamber.

9. The bottle washer for veterinary drug production according to claim 1, characterized in that, Support platforms are provided on both sides of the processing chamber.

10. The bottle washer for veterinary drug production according to claim 1, wherein, Drain ports are provided in both the cleaning area and the drying area.

Citation Information

Patent Citations

  • Ultrasonic bottle washing machine for veterinary drug production

    CN213997027U