Cleaning device for fiberoptic bronchoscope

The fiber bronchoscope cleaning device uses enzyme wash, flush, and brush wash modes to clean and prevent contamination, reducing wear and maintenance by effectively removing contaminants and facilitating quick drying.

CN223097549UActive Publication Date: 2025-07-15CANCER INST & HOSPITAL CHINESE ACADEMY OF MEDICAL SCI
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Patent Information

Application Number
CN202421803973.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-29
Publication Date
2025-07-15
Estimated Expiration
2034-07-29

AI Technical Summary

Technical Problem

During use, fiber bronchoscopes are easily contaminated by secretions, resulting in increased difficulty in cleaning and disinfection, thereby increasing losses.

Method used

It provides a cleaning device for fiber bronchoscopes, including three modes: enzyme washing, rinsing and scrubbing. It uses enzyme washing solution to dissolve contaminants, rinsing solution to rinsing contaminants, rinsing components to wipe the surface, and combines the enzyme washing solution storage box, rinsing solution storage box and waste liquid tank to ensure that the liquid is discharged in time and avoid accumulation.

Benefits of technology

Effectively clean the surface of fiber bronchoscopy, reduce losses, simplify follow-up treatment, reduce the risk of soaking enzyme waste and rinsing fluid, and promote drying.

✦ Generated by Eureka AI based on patent content.

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Abstract

The cleaning device comprises a base, a supporting table, a cleaning pipe, an enzyme washing liquid storage box, a flushing liquid storage box and a waste liquid box are installed on the base, the supporting table is provided with a supporting frame used for supporting the fiberoptic bronchoscope, and the fiberoptic bronchoscope can partially stretch into the cleaning pipe. The cleaning pipe is provided with a scrubbing module and two cleaning nozzle modules, one of the two cleaning nozzle modules is communicated with the enzyme washing liquid storage box and used for spraying enzyme washing liquid to the surface of the fiber bronchoscope, and the other one of the two cleaning nozzle modules is communicated with the flushing liquid storage box and used for spraying flushing liquid to the surface of the fiber bronchoscope. The scrubbing module comprises a first driving part and a scrubbing part, the first driving part is connected with the scrubbing part and used for driving the scrubbing part to move so as to scrub the surface of the fiberoptic bronchoscope, and the cleaning pipe is communicated with the waste liquid box. The cleaning device can clean the surface of the fiberoptic bronchoscope, and the loss of the fiberoptic bronchoscope can be reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of cleaning devices, and particularly relates to a cleaning device for a fiber bronchoscope. Background Art

[0002] The fiber bronchoscope is applicable to the observation of lung lobe, segment and sub-segment bronchial lesions, biopsy sampling, bacteriological and cytological examinations, and can be used for photography, teaching and dynamic recording in cooperation with the TV system. During use, the fiber bronchoscope is often contaminated by secretions. If not cleaned in time, it will increase the difficulty of subsequent cleaning and disinfection, resulting in an increase in the loss of the fiber bronchoscope.

[0003] Therefore, how to provide a solution to overcome or alleviate the above defects is still a technical problem that those skilled in the art need to solve urgently. Summary of the Utility Model

[0004] The purpose of the utility model is to provide a cleaning device for a fiber bronchoscope, which can realize the cleaning of the surface of the fiber bronchoscope and reduce the loss of the fiber bronchoscope.

[0005] To solve the above technical problems, the utility model provides a cleaning device for a fiber bronchoscope, including a base, on which a support platform, a cleaning pipe, an enzyme cleaning solution storage tank, a rinsing solution storage tank and a waste liquid tank are installed. The support platform is configured with a support frame for supporting the fiber bronchoscope. The fiber bronchoscope supported on the support frame can partially extend into the cleaning pipe. The cleaning pipe is configured with a brushing module and two cleaning nozzle modules. One of the two cleaning nozzle modules is connected to the enzyme cleaning solution storage tank for spraying the enzyme cleaning solution onto the surface of the fiber bronchoscope, and the other of the two cleaning nozzle modules is connected to the rinsing solution storage tank for spraying the rinsing solution onto the surface of the fiber bronchoscope. The brushing module includes a first driving component and a brushing component. The first driving component is connected to the brushing component for driving the brushing component to move to brush the surface of the fiber bronchoscope. The cleaning pipe is connected to the waste liquid tank.

[0006] By adopting this scheme, the cleaning device in the embodiment of the utility model can provide three different cleaning modes: enzyme washing, flushing and scrubbing. Among them, enzyme washing specifically adopts enzyme washing liquid, which can dissolve the pollutants on the surface of the fiber bronchoscope well; flushing specifically adopts flushing liquid, which can flush the enzyme washing liquid on the surface of the fiber bronchoscope and the pollutants dissolved in the enzyme washing liquid to effectively remove the pollutants on the surface of the fiber bronchoscope; scrubbing is by means of the first driving component and the scrubbing component, and the scrubbing component can move under the control of the first driving component, so as to realize repeated wiping of the surface of the fiber bronchoscope, which is conducive to removing the stubborn stains on the surface of the fiber bronchoscope to achieve the purpose of deep cleaning. In this way, through the cooperation of enzyme washing, flushing and scrubbing, the effective cleaning of the surface of the fiber bronchoscope can be better achieved, and the long-term accumulation of pollutants on the surface of the fiber bronchoscope can be avoided, thereby reducing the loss of the fiber bronchoscope.

[0007] Moreover, in the embodiment of the utility model, the cleaning tube and the waste liquid tank are connected, and the enzyme cleaning liquid or the flushing liquid can be led out of the cleaning tube in time, which can avoid the accumulation of the enzyme cleaning liquid or the flushing liquid in the cleaning tube and the resulting immersion of the fiber bronchoscope, thereby reducing the possibility of the enzyme cleaning liquid or the flushing liquid infiltrating into the fiber bronchoscope, which is beneficial for the subsequent drying treatment and use of the fiber bronchoscope.

[0008] Optionally, the cleaning nozzle module includes a plurality of fixed nozzles, and at least part of the fixed nozzles are arranged at intervals along the axial direction of the cleaning pipe.

[0009] Optionally, the cleaning nozzle module includes a second driving component and a movable nozzle, and the second driving component is connected to the movable nozzle and is used to drive the movable nozzle to adjust its position in the cleaning pipe.

[0010] Optionally, the inner wall of the cleaning tube is provided with a second slide rail extending along its axial direction, the movable nozzle is slidably connected to the second slide rail, and the movable nozzle is also provided with a telescopic liquid supply tube, at least part of which is located on the inner side of the cleaning tube.

[0011] Optionally, the telescopic liquid delivery pipe is a corrugated pipe; or, the telescopic liquid delivery pipe includes a plurality of branch pipes which are socketed with each other, and in each branch pipe, two adjacent layers of the branch pipes are configured to be able to slide relative to each other, and the two adjacent layers of the branch pipes are sealed and connected.

[0012] Optionally, the second driving component is configured to drive the movable spray head to rotate.

[0013] Optionally, the inner wall of the cleaning pipe is provided with a first slide rail extending along its axial direction, and the brushing component is slidably connected to the first slide rail.

[0014] Optionally, the brushing component includes a brushing frame and a brushing part. The brushing frame is annular, slidably connected to the first slide rail, and the brushing part is mounted on the brushing frame.

[0015] Optionally, it further includes a blowing component, which is mounted on the support platform. The cleaning pipe is configured with an air-drying nozzle module, and the blowing component is connected to the air-drying nozzle module.

[0016] Optionally, it further includes a control console, which is mounted on the support platform. Description of the Drawings

[0017] Figure 1 It is a schematic structural diagram of an implementation manner of the fiber bronchoscope provided by the present utility model;

[0018] Figure 2 It is a structural installation diagram of the fixed nozzle in the cleaning pipe;

[0019] Figure 3 It is a structural installation diagram of the movable nozzle in the cleaning pipe;

[0020] Figure 4 It is a schematic structural diagram of an implementation manner of the telescopic liquid delivery pipe;

[0021] Figure 5 It is a schematic structural diagram of another implementation manner of the telescopic liquid delivery pipe;

[0022] Figure 6 It is a schematic structural diagram of an implementation manner of the brushing module;

[0023] Figure 7 It is a schematic structural diagram of the brushing component.

[0024] Description of the reference numerals is as follows:

[0025] 100 Base, 110 Casters;

[0026] 200 Support Platform, 210 Support Frame;

[0027] 300 Cleaning Pipe, 310 Brushing Module, 311 First Driving Component, 312 Brushing Component, 312a Brushing Frame, 312b Brushing Part, 312c Sliding Part, 313 First Slide Rail, 320 Cleaning Nozzle Module, 321 Fixed Nozzle, 322 Second Driving Component, 323 Movable Nozzle, 324 Second Slide Rail, 325 Telescopic Liquid Delivery Pipe, 325a Branch Pipe, 325b Sealing Member, 330 Air-Drying Nozzle Module;

[0028] 400 Enzyme Cleaning Solution Storage Tank;

[0029] 500 Flushing Solution Storage Tank;

[0030] 600 waste liquid tank;

[0031] 700 air supply component;

[0032] 800 control console;

[0033] A fiber bronchoscope. Detailed implementation manners

[0034] In order to enable those skilled in the art to better understand the technical solutions of the present utility model, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0035] In the description of the embodiments of the present utility model, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features.

[0036] In the description of the embodiments of the present utility model, it should be noted that unless otherwise clearly defined and limited, the terms "installed", "connected" and "connected" should be understood in a broad sense. For example, "connected" can be a detachable connection or a non-detachable connection; it can be a direct connection or an indirect connection through an intermediate medium. Among them, "sliding connection" means that they are connected to each other and can slide relative to each other after connection.

[0037] The orientation terms mentioned in the embodiments of the present utility model, such as "inside", "outside", etc., are only with reference to the direction of the accompanying drawings. Therefore, the orientation terms used are for better and clearer illustration and understanding of the embodiments of the present utility model, rather than indicating or implying that the indicated device or element must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be understood as a limitation to the embodiments of the present utility model.

[0038] In the description of the embodiments of the present utility model, the term "plurality" means two or more. And when using "plurality" to represent the quantity of different components, it does not represent the mutual relationship in quantity of these components.

[0039] In the description of the embodiments of the present utility model, the terms "comprise", "include" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device. Without further limitation, the element defined by the statement "including one..." does not exclude the existence of another identical element in the process, method, article or device including that element.

[0040] Please refer to Figures 1 - 7 , Figure 1 which is a schematic structural diagram of an implementation manner of the fiber bronchoscope provided by the present utility model, Figure 2 is a structural diagram of the installation of the fixed nozzle in the cleaning tube, Figure 3 is a structural diagram of the installation of the movable nozzle in the cleaning tube, Figure 4 is a schematic structural diagram of an implementation manner of the telescopic liquid delivery tube, Figure 5 is a schematic structural diagram of another implementation manner of the telescopic liquid delivery tube, Figure 6 is a schematic structural diagram of an implementation manner of the brushing module, Figure 7 is a structural diagram of the brushing component.

[0041] As Figure 1 shown, an embodiment of the present utility model provides a cleaning device, which can be used to clean the surface of the fiber bronchoscope A, and includes a base 100, a support table 200, a cleaning tube 300, an enzyme cleaning solution storage tank 400, a rinsing solution storage tank 500, and a waste liquid tank 600.

[0042] The base 100 is the structural foundation of the cleaning device, and the aforementioned support table 200, cleaning tube 300, enzyme cleaning solution storage tank 400, rinsing solution storage tank 500, and waste liquid tank 600 can all be directly or indirectly installed on the base 100, so as to achieve integrated assembly through the base 100. The base 100 can also be configured with casters 110, and the casters 110 can be, for example, universal wheels, etc. Through the setting of the casters 110, the use position of the cleaning device can be conveniently adjusted.

[0043] The support table 200 is configured with a support frame 210, and the support frame 210 is used to support the fiber bronchoscope A. The specific structural form of the support frame 210 is not limited herein, as long as it can ensure reliable support for the fiber bronchoscope A; and after the support installation is completed, a part of the fiber bronchoscope A can extend into the cleaning tube 300, so as to complete the cleaning process of the fiber bronchoscope A in the cleaning tube 300.

[0044] The cleaning tube 300 is provided with a scrubbing module 310 and two cleaning nozzle modules 320. One of the two cleaning nozzle modules 320 is connected to the enzyme cleaning liquid storage box 400, so as to lead the enzyme cleaning liquid in the enzyme cleaning liquid storage box 400 to the cleaning tube 300, so as to realize enzyme cleaning of the surface of the fiber bronchoscope A. The other of the two cleaning nozzle modules 320 is connected to the flushing liquid storage box 500, so as to lead the flushing liquid in the flushing liquid storage box 500 to the cleaning tube 300, so as to realize flushing of the surface of the fiber bronchoscope A; the flushing liquid can be, for example, clean water, physiological saline, etc. The scrubbing module 310 includes a first driving component 311 and a scrubbing component 312, and the first driving component 311 is connected to the scrubbing component 312, so as to drive the scrubbing component 312 to move, so as to scrub the surface of the fiber bronchoscope A.

[0045] By adopting this scheme, the cleaning device in the embodiment of the utility model can provide three different cleaning modes: enzyme washing, flushing and scrubbing. Among them, enzyme washing specifically adopts enzyme washing liquid, which can dissolve the pollutants on the surface of fiber bronchoscope A well; flushing specifically adopts flushing liquid, which can flush the enzyme washing liquid on the surface of fiber bronchoscope A and the pollutants dissolved in the enzyme washing liquid to effectively remove the pollutants on the surface of fiber bronchoscope A; scrubbing is by means of the first driving component 311 and the scrubbing component 312, and the scrubbing component 312 can move under the control of the first driving component 311, so as to realize repeated wiping of the surface of fiber bronchoscope A, which is conducive to removing the stubborn stains on the surface of fiber bronchoscope A, so as to achieve the purpose of deep cleaning. In this way, through the cooperation of enzyme washing, flushing and scrubbing, the effective cleaning of the surface of fiber bronchoscope A can be well achieved, and the long-term accumulation of pollutants on the surface of fiber bronchoscope A can be avoided, thereby reducing the loss of fiber bronchoscope A.

[0046] Here, the embodiments of the present utility model do not limit the execution order and number of executions of enzyme washing, rinsing, and brushing. In practical applications, those skilled in the art can set according to specific needs, as long as the purpose of effectively cleaning the surface of the fiber bronchoscope A can be achieved. In a specific example, enzyme washing, rinsing, and brushing can be performed once each; among them, enzyme washing can be performed first to spray the enzyme washing solution onto the surface of the fiber bronchoscope A first, and then it can be left standing for 5 min - 10 min to allow the enzyme washing solution to fully exert its effect; afterwards, rinsing can be performed to wash down the enzyme washing solution attached to the surface of the fiber bronchoscope A and the pollutants dissolved in the enzyme washing solution from the surface of the fiber bronchoscope A through the rinsing solution; afterwards, brushing can be performed. In this way, on the one hand, the cleanliness of the surface of the fiber bronchoscope A can be further improved, on the other hand, the rinsing solution attached to the surface of the fiber bronchoscope A can also be removed, and it is also beneficial for rapid drying of the fiber bronchoscope A.

[0047] In practical applications, a pump body can also be provided on the connecting pipelines of the enzyme washing solution storage tank 400, the rinsing solution storage tank 500, and the corresponding cleaning nozzle module 320. The pump body is used to provide a pumping force to control the flow of the enzyme washing solution and the rinsing solution to the corresponding cleaning nozzle module 320. And, in some implementation manners, valve components in the form of proportional valves and the like can also be provided on the connecting pipelines to control the flow rates of the enzyme washing solution and the rinsing solution.

[0048] During the process of cleaning the surface of the fiber bronchoscope A, once the enzyme washing solution or the rinsing solution accumulates in the cleaning pipe 300, it will soak the fiber bronchoscope A, and there is a high possibility that the enzyme washing solution or the rinsing solution and the like will penetrate into the interior of the fiber bronchoscope A, which is not conducive to subsequent drying and use of the fiber bronchoscope A.

[0049] In view of this, the embodiments of the present utility model also connect the cleaning pipe 300 to the waste liquid tank 600 to timely drain the enzyme washing solution or the rinsing solution out of the cleaning pipe 300, which can avoid the accumulation of the enzyme washing solution or the rinsing solution in the cleaning pipe 300 and the resulting soaking of the fiber bronchoscope A. It should be understood that the enzyme washing solution and the rinsing solution drained from the cleaning pipe 300 are only temporarily stored in the waste liquid tank 600. After the cleaning device provided by the embodiments of the present utility model is used up, the waste liquid in the waste liquid tank 600 can be discharged in a designated waste liquid cleaning area so that there is still sufficient liquid storage space in the waste liquid tank 600 when the cleaning device provided by the embodiments of the present utility model is used next time.

[0050] A connecting pipe between the waste liquid tank 600 and the cleaning pipe 300 may also be provided with a pump body for providing pumping force, so that the waste liquid in the cleaning pipe 300 can be timely led out to the waste liquid tank 600. Alternatively, the installation position of the waste liquid tank 600 can also be adjusted so that the installation position of the waste liquid tank 600 is lower than the outlet of the cleaning pipe 300. In this way, the liquid in the cleaning pipe 300 can naturally flow into the waste liquid tank 600 under the action of its own gravity, so as to save the aforementioned pump body, and thus the structure of the cleaning device provided by the embodiment of the present utility model can be simplified.

[0051] In specific applications, the cleaning pipe 300 and the waste liquid tank 600 may be in an always-open state, that is, the enzyme cleaning solution and the flushing solution entering the cleaning pipe 300 can flow into the waste liquid tank 600 at any time to avoid accumulation in the cleaning pipe 300. Alternatively, a liquid level detection component may also be provided in the cleaning pipe 300. The liquid level detection component is used to detect the liquid level height in the cleaning pipe 300. When the liquid level height rises to a set value (not yet contacting the fiber bronchoscope A), the cleaning pipe 300 and the waste liquid tank 600 can be communicated to timely export the waste liquid in the cleaning pipe 300, which is also feasible.

[0052] In some alternative implementation manners, as Figure 2 shown, the cleaning nozzle module 320 may include a plurality of fixed nozzles 321. At least part of each fixed nozzle 321 may be arranged at intervals along the axial direction of the cleaning pipe 300, so as to spray the enzyme cleaning solution or the flushing solution on the surface of the fiber bronchoscope A at different positions in the axial direction of the cleaning pipe 300, which can improve the uniformity and comprehensiveness of the spraying of the enzyme cleaning solution or the flushing solution on the surface of the fiber bronchoscope A, and is more conducive to ensuring the cleaning effect on the surface of the fiber bronchoscope A.

[0053] In specific practices, each fixed nozzle 321 may not only be arranged at intervals along the axial direction of the cleaning pipe 300, but also be arranged at intervals along the circumferential direction of the cleaning pipe 300. In this way, the enzyme cleaning solution or the flushing solution can be sprayed on the surface of the fiber bronchoscope A at more positions.

[0054] Here, the embodiment of the present utility model does not limit the number of fixed nozzles 321 used. In actual applications, those skilled in the art can set it according to specific needs as long as it can meet the usage requirements.

[0055] In some alternative implementations, the cleaning nozzle module 320 may also include a second driving member 322 and a movable nozzle 323. The second driving member 322 may be connected to the movable nozzle 323 and used to drive the movable nozzle 323 to adjust its position within the cleaning tube 300. In this way, the spraying range of each movable nozzle 323 on the surface of the fiber bronchoscope A can be relatively large, effectively reducing the number of nozzles actually used. At the same time, due to the driving and control of the movable nozzle 323 by the second driving member 322, the uniformity and comprehensiveness of the spraying of the enzyme cleaning solution or the rinsing solution on the surface of the fiber bronchoscope A can be better ensured.

[0056] Here, the embodiments of the present invention do not limit the specific structural form of the second driving member 322. In actual applications, those skilled in the art can determine it in combination with the displacement form required by the movable nozzle 323, etc.

[0057] The displacement form of the movable nozzle 323 may include linear displacement and rotational displacement.

[0058] As Figure 3 shown, when the movable nozzle 323 performs linear displacement, a second slide rail 324 extending along its axial direction may be provided on the inner wall of the cleaning tube 300. The movable nozzle 323 may be slidably connected to the second slide rail 324 and capable of performing linear displacement along the second slide rail 324, which is conducive to ensuring the stability and smoothness of the sliding.

[0059] In this displacement form, the second driving member 322 may adopt a linear driving element such as a linear cylinder or a linear oil cylinder that can directly output linear displacement. The linear driving element may include a driving rod, and the driving rod may be connected to the movable nozzle 323 and used to drive the movable nozzle 323 to perform linear displacement along the above-mentioned second slide rail 324. Alternatively, the second driving member 322 may also adopt a rotational driving element such as a motor that can directly output rotational displacement. At this time, the second driving member 322 may further include a displacement conversion structure in the form of a gear-rack structure, a lead screw structure, etc., so as to convert the rotational displacement directly output by the linear driving element into linear displacement, thereby meeting the displacement requirements for the movable nozzle 323.

[0060] Furthermore, the movable nozzle 323 may be further configured with a telescopic liquid delivery pipe 325, and at least a part of the telescopic liquid delivery pipe 325 may be located inside the cleaning tube 300. When the movable nozzle 323 undergoes linear displacement, the telescopic liquid delivery pipe 325 can synchronously extend or shorten to adapt to the position change of the movable nozzle 323.

[0061] As Figure 4 shown, the above-mentioned telescopic liquid delivery pipe 325 may be a corrugated pipe.

[0062] Or, as Figure 5As shown, the telescopic liquid delivery pipe 325 may include a plurality of sub - pipes 325a sleeved with each other. For ease of description, among two adjacent sub - pipes 325a, the inner one can be called the inner layer pipe, and the outer one can be called the outer layer pipe. The inner layer pipe can be configured to be able to slide relative to the outer layer pipe. In this way, when the inner layer pipe extends relative to the outer layer pipe, the overall length of the two sub - pipes 325a can be elongated, and when the inner layer pipe retracts relative to the outer layer pipe, the overall length of the two sub - pipes 325a can be shortened, thereby completing the telescopic change of the telescopic liquid delivery pipe 325. The adjacent two layers of sub - pipes 325a can be hermetically connected. Specifically, a seal 325b in the form of an O - ring or the like can be provided to achieve the seal between the adjacent two layers of sub - pipes 325a through this seal 325b.

[0063] When the moving nozzle 323 rotates and displaces, the second driving component 322 can be configured to be able to drive the moving nozzle 323 to rotate. This rotation is equivalent to adjusting the angle between the central axis of the moving nozzle 323 and the central axis of the fiber bronchoscope A, which can also change the spraying range of the moving nozzle 323.

[0064] In this form of displacement, the second driving component 322 can adopt a rotary driving element such as a motor that can directly output a rotary displacement. The rotary driving element can include a rotary shaft, and the rotary shaft can be directly connected to the moving nozzle 323 to drive the moving nozzle 323 to rotate. Alternatively, a transmission structure in the form of gears, sprockets, pulleys, etc. can also be provided between the rotary shaft and the moving nozzle 323 to regulate the transmission ratio between the rotary driving element and the moving nozzle 323.

[0065] In some alternative implementation manners, as Figure 6 shown, the inner wall of the cleaning pipe 300 can be provided with a first slide rail 313 extending along its axial direction. The brushing component 312 can be slidably connected to the first slide rail 313 and can perform a linear displacement along the first slide rail 313, which is conducive to ensuring the stability and smoothness of the brushing component 312 during the sliding process.

[0066] Combined with Figure 7 , the brushing component 312 can include a brushing frame 312a and a brushing part 312b. The aforementioned first driving component 311 can be specifically connected to the brushing frame 312a to transmit the driving force to the brushing component 312 through the brushing frame 312a.

[0067] The scrubbing rack 312a can be annular, and the scrubbing rack 312a can be slidably connected to the first slide rail 313. Specifically, a sliding portion 312c can be provided on the outer side of the scrubbing rack 321a, and the scrubbing rack 312a can slide through the sliding portion 312c and the first slide rail 313. In this way, due to the existence of the first slide rail 313 and the sliding portion 312c, a certain distance can be provided between the scrubbing rack 312a and the inner wall surface of the cleaning pipe 300, and this distance can be used as an avoidance distance to avoid the aforementioned cleaning nozzle module 320, so as to reduce the possibility of the scrubbing member 312 colliding with the cleaning nozzle module 320 during the process of moving along the axial direction of the cleaning pipe 300.

[0068] The scrubbing portion 312b can specifically be a brush, a sponge rod, etc., which can be installed on the scrubbing rack 312a to clean the surface of the fiber bronchoscope A during the displacement process of the scrubbing rack 312a. Moreover, the setting of the scrubbing rack 312a can achieve the integrated assembly of multiple scrubbing portions 312b, and the number of the scrubbing portions 312b is not limited herein.

[0069] It should be understood that the scrubbing rack 312a may not be annular either. At this time, only one scrubbing portion 312b can be provided thereon, and this is also feasible.

[0070] In some alternative implementation manners, the cleaning device provided by the embodiment of the present invention may further include a air supply component 700.

[0071] The cleaning pipe 300 can be configured with an air drying nozzle module 330, and the specific structural form of the air drying nozzle module 330 can be the same as that of the aforementioned cleaning nozzle module 320, and no repeated description will be made here. The air supply component 700 can specifically be a blower, which can be installed on the support platform 200 and can be connected to the air drying nozzle module 330 to supply air into the cleaning pipe 300, so as to achieve the air drying treatment of the fiber bronchoscope A. The air source of the air supply component 700 can be heated hot air, or it can also be a natural air source. In short, as long as it can meet the requirements of the air drying treatment.

[0072] It should be understood that the air drying treatment step is the last step in the embodiment of the present invention, that is, after the aforementioned enzyme washing, rinsing and scrubbing operations are completed, the air supply component 700 will be started.

[0073] In some alternative implementation manners, the embodiment of the present invention may further include a control console 800, and the control console 800 can be installed on the support platform 200.

[0074] The control console 800 and the pump body, valve components, liquid level detection components, air supply components 700, etc. mentioned in the foregoing implementation manners can all be signal-connected for signal acquisition, start-stop control, etc., so that the cleaning of the fiber bronchoscope A can be automatically realized, and the automation level of the cleaning device provided by the embodiments of the present invention can be greatly improved.

[0075] The above are only the preferred implementation manners of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements and refinements can still be made, and these improvements and refinements should also be regarded as the protection scope of the present invention.

Claims

1. A cleaning device for a fiber bronchoscope, characterized in that, It includes a base, on which a support platform, a cleaning pipe, an enzyme cleaning solution storage tank, a rinsing solution storage tank and a waste liquid tank are installed. The support platform is configured with a support frame for supporting a fiber bronchoscope. The fiber bronchoscope supported by the support frame can partially extend into the cleaning pipe. The cleaning pipe is configured with a brushing module and two cleaning nozzle modules. One of the two cleaning nozzle modules is connected to the enzyme cleaning solution storage tank for spraying the enzyme cleaning solution onto the surface of the fiber bronchoscope, and the other of the two cleaning nozzle modules is connected to the rinsing solution storage tank for spraying the rinsing solution onto the surface of the fiber bronchoscope. The brushing module includes a first driving component and a brushing component. The first driving component is connected to the brushing component for driving the brushing component to move to brush the surface of the fiber bronchoscope. The cleaning pipe is connected to the waste liquid tank.

2. The cleaning device for a fiberoptic bronchoscope according to claim 1, wherein The cleaning nozzle module includes a plurality of fixed nozzles, and at least part of each of the fixed nozzles is arranged at intervals along the axial direction of the cleaning pipe.

3. The cleaning device for a fiber bronchoscope according to claim 1, wherein, The cleaning nozzle module includes a second driving component and a movable nozzle. The second driving component is connected to the movable nozzle for driving the movable nozzle to adjust its position in the cleaning pipe.

4. The cleaning device for a fiber bronchoscope according to claim 3, characterized in that, The inner wall of the cleaning pipe is provided with a second sliding rail extending along its axial direction. The movable nozzle is slidably connected to the second sliding rail. The movable nozzle is also configured with a telescopic liquid delivery pipe, and at least part of the telescopic liquid delivery pipe is located inside the cleaning pipe.

5. The cleaning device for a fiber bronchoscope according to claim 4, characterized in that, The telescopic liquid delivery pipe is a corrugated pipe; or, The telescopic liquid delivery pipe includes a plurality of sub-pipes sleeved with each other. Among the sub-pipes, adjacent two layers of sub-pipes are configured to be able to slide relative to each other, and are hermetically connected between adjacent two layers of sub-pipes.

6. The cleaning device for a fiber bronchoscope according to claim 3, wherein, The second driving component is configured to be able to drive the movable nozzle to rotate.

7. The cleaning device for a fiber bronchoscope according to any one of claims 1-6, characterized in that, The inner wall of the cleaning pipe is provided with a first sliding rail extending along its axial direction. The brushing component is slidably connected to the first sliding rail.

8. The cleaning device for a fiber bronchoscope according to claim 7, characterized in that, The brushing component includes a brushing frame and a brushing part. The brushing frame is annular, the brushing frame is slidably connected to the first sliding rail, and the brushing part is installed on the brushing frame.

9. The cleaning device for a fiber bronchoscope according to any one of claims 1-6, characterized in that, It further includes a blowing component installed on the support platform. The cleaning pipe is configured with a drying nozzle module, and the blowing component is connected to the drying nozzle module.

10. The cleaning device for a fiber bronchoscope according to any one of claims 1-6, characterized in that, It further includes a console installed on the support platform.