Endoscope cleaning device

By designing brush cleaning equipment that automatically transmits and receives and rotates, the problem of endoscopic cleaning relies on manual operation in the prior art is solved, and efficient and automated endoscopic cleaning effect is achieved.

CN115532746BActive Publication Date: 2025-05-16SHENZHEN BROADCARE MEDICAL ROBOT CO LTD
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Patent Information

Application Number
CN202211405677.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-11-10
Publication Date
2025-05-16
Estimated Expiration
2042-11-10

AI Technical Summary

Technical Problem

In the prior art, endoscopic cleaning mainly relies on manual operations, resulting in high working intensity, time-consuming and labor-intensive, and lack of automated cleaning equipment.

Method used

An endoscopic cleaning device is designed, using a winding mechanism and a driving mechanism to realize the automatic transmission and reception of the brush. Through the rotation of the winding disc and the rotation of the movable bracket, the brush is realized.

Benefits of technology

The automatic cleaning of brushes is realized, the cleaning effect and cleaning efficiency of the pipes inside the endoscope are improved, and the working intensity and time of medical staff are reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an endoscope cleaning device. The endoscope cleaning device comprises a housing, a brush and a rotating transceiver, wherein the brush is used to clean the inner pipeline of the endoscope; the rotating transceiver comprises a winding mechanism and a driving mechanism; the winding mechanism comprises a movable bracket and a winding disk, and the brush is wound on the winding disk; the movable bracket is arranged on the housing and can rotate around a first direction; the winding disk is arranged on the movable bracket and can rotate around a second direction; the driving mechanism is used to drive the winding disk to rotate around the second direction to receive and send the brush and to drive the movable bracket to rotate around the first direction to rotate the brush. The invention can realize the automatic transmission and reception and rotation of the brush, thereby realizing the automatic cleaning of the endoscope.
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Description

Technical Field

[0001] The invention belongs to the field of endoscope cleaning, and in particular relates to an endoscope cleaning device. Background Art

[0002] Endoscope, also known as endoscope, including gastroscope, colonoscope, bronchoscope, laparoscope, etc., is an optical instrument that can enter the human body through natural or invasive cavities to perform diagnostic tests and data. In endoscope-related surgeries, the patient's blood, mucus, and tissue debris may remain in the endoscope tube; therefore, after each use of the endoscope, medical staff must clean the residue inside and outside the endoscope tube.

[0003] At present, the cleaning of endoscopes is generally done manually by medical staff in the department using the endoscopes. When cleaning the internal pipelines of the endoscopes, medical staff hold a brush to clean manually, which leads to defects such as high work intensity, time-consuming and labor-intensive. Therefore, there is an urgent need for endoscope cleaning equipment that can replace manual cleaning to automatically complete the cleaning of endoscopes. Summary of the invention

[0004] The main purpose of the present invention is to provide an endoscope cleaning device, which realizes the automatic sending, receiving and rotation of the brush, thereby realizing automatic cleaning of the endoscope.

[0005] In order to achieve the above main purpose, the present invention provides an endoscope cleaning device, including a housing, a brush and a rotating transceiver, wherein the brush is used to clean the inner pipeline of the endoscope; the rotating transceiver includes:

[0006] The winding mechanism comprises a movable bracket and a winding disk, and the brush is wound on the winding disk; the movable bracket is arranged on the housing and can rotate around a first direction; the winding disk is arranged on the movable bracket and can rotate around a second direction;

[0007] The driving mechanism is used for driving the winding drum to rotate around the second direction to send and receive the brush and for driving the movable bracket to rotate around the first direction to rotate the brush.

[0008] According to a specific implementation of the present invention, the first direction and the second direction are perpendicular to each other.

[0009] According to a specific embodiment of the present invention, a winding groove is provided on the outer periphery of the winding drum, and the brush is wound in the winding groove.

[0010] According to a specific embodiment of the present invention, a brush inlet and outlet channel is provided on the shell, and the brush inlet and outlet channel is flush with the rotation center line of the movable bracket.

[0011] According to a specific embodiment of the present invention, the driving mechanism includes:

[0012] A first direction driving shaft, disposed on the housing to drive the movable bracket to rotate;

[0013] A second direction driving shaft is arranged on the movable bracket to drive the winding drum to rotate;

[0014] At least one motor provides driving force to the first direction drive shaft and the second direction drive shaft.

[0015] According to a specific embodiment of the present invention, the number of motors is one, and the driving mechanism further includes a transmission assembly; the motor is arranged on the housing and is drivingly connected to the first direction driving shaft, and the first direction driving shaft transmits power to the second direction driving shaft through the transmission assembly.

[0016] According to a specific embodiment of the present invention, the transmission assembly includes a first gear, a second gear, a transmission connecting member, a first bevel gear and a second bevel gear;

[0017] The first gear is arranged on the first direction driving shaft, and the second gear is arranged on the movable bracket and meshes with the first gear, so that the second gear revolves around the first gear;

[0018] The second bevel gear is connected to the second gear through a transmission connection and rotates synchronously; the first bevel gear is arranged on the second direction driving shaft and meshes with the second bevel gear, so that the winding drum rotates on its own.

[0019] According to a specific embodiment of the present invention, a mounting seat is provided on the movable bracket, and the mounting seat has a first rotating connection part and a second rotating connection part; the transmission connecting member is cooperatively connected to the first rotating connection part, and the second direction driving shaft is cooperatively connected to the second rotating connection part.

[0020] According to a specific embodiment of the present invention, the driving mechanism further includes a differential transmission assembly; the differential transmission assembly includes:

[0021] A support seat, arranged on the winding drum;

[0022] A first rotating body is arranged on the second direction driving shaft; a first contact portion is arranged on the first rotating body;

[0023] A second rotating body is arranged on the supporting seat; a second contact portion is arranged on the second rotating body;

[0024] A preload spring is used to maintain contact transmission between the first contact portion and the second contact portion; wherein, when the relative rotational force between the first contact portion and the second contact portion exceeds the frictional force provided by the preload spring, the first rotating body and the second rotating body can generate relative rotation.

[0025] According to a specific embodiment of the present invention, the differential transmission assembly further includes an adjusting member for changing the preload force of the preload spring.

[0026] The present invention has the following beneficial effects:

[0027] In the present invention, the winding mechanism can realize the compound rotation of the brush, that is, revolution and rotation; the rotation of the winding disk around the second direction can realize the sending and receiving of the brush, and the rotation of the movable bracket around the first direction can drive the winding disk and the brush to rotate, so as to realize the self-rotation of the brush during the sending and receiving process of the brush, thereby improving the cleaning effect and cleaning efficiency of the brush on the internal pipeline of the endoscope.

[0028] In order to more clearly illustrate the purpose, technical solutions and advantages of the present invention, the present invention is further described in detail below in conjunction with the accompanying drawings and specific implementation methods. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 is a schematic diagram of the use status of an embodiment of the present invention;

[0030] Figure 2 is an overall structural diagram of an embodiment of the present invention;

[0031] Figure 3 is an internal structure diagram of an embodiment of the present invention;

[0032] Figure 4 yes Figure 3 Exploded diagram of

[0033] Figure 5 is a structural diagram of a rotating transceiver device in an embodiment of the present invention;

[0034] Figure 6 yes Figure 5 Exploded diagram of

[0035] Figure 7 is a cross-sectional view of a rotating transceiver device according to an embodiment of the present invention;

[0036] Figure 8 is a structural diagram of a driving mechanism in an embodiment of the present invention;

[0037] Fig. 9 is a structural diagram of a differential assembly in an embodiment of the present invention;

[0038] Fig.10 is a structural diagram of a propulsion device in an embodiment of the present invention;

[0039] Fig.11 is a partial diagram of a propulsion device in an embodiment of the present invention;

[0040] Fig.12 is a structural diagram showing a conveyor belt in an embodiment of the present invention;

[0041] Fig.13 yes Fig.12 A top view of

[0042] Fig.14 is a structural diagram of a detection mechanism for detecting a brush in an embodiment of the present invention;

[0043] Fig.15 is a first structural diagram of a pinch wheel assembly according to an embodiment of the present invention;

[0044] Fig.16 is a second structural diagram of the pressure wheel assembly in an embodiment of the present invention;

[0045] Fig.17 is a third structural diagram of the pressure wheel assembly in an embodiment of the present invention;

[0046] Fig.18 yes Fig.17 A front view of

[0047] Fig.19 is a structural diagram of a switching component for switching the position of a brush in an embodiment of the present invention;

[0048] Fig. 20 is a structural diagram of a detection component for detecting the position of a brush in an embodiment of the present invention;

[0049] Fig.21 This is a diagram of the whole machine usage status of an embodiment of the present invention. DETAILED DESCRIPTION

[0050] The embodiment of the present invention provides an endoscope cleaning device for automatically cleaning an endoscope 10, specifically cleaning the inner pipeline of the endoscope 10, such as Figure 1 As shown; the embodiment of the present invention does not limit the external cleaning of the endoscope 10, and can be applied to the cleaning method in the prior art.

[0051] like Figure 2-4 As shown, the endoscope cleaning device of the embodiment of the present invention includes a housing 20, a brush and a rotating transceiver 30; the brush can be a cleaning brush currently used for manual cleaning, or a cleaning brush specially configured for automatic transceiver and rotation, and the embodiment of the present invention does not limit the specific structure of the brush. Conventionally, the brush has a brush head and a brush body, and during the cleaning process, the brush body drives the brush head forward, backward and rotates, so that the brush head contacts the inner wall of the inner pipe of the endoscope 10 for cleaning.

[0052] Further, the housing 20 includes a bottom shell 21 and an upper cover 22, and the upper cover 22 is preferably connected to the bottom shell 21 in an openable-closable manner, for example, the bottom shell 21 and the upper cover 22 are connected by a hinge 23, so that the upper cover 22 can be closed when in use and opened when necessary to perform related operations, such as adding a solution for cleaning the brush and replacing the brush, etc. Accordingly, a controllable area such as a control button 24 can be provided on the upper cover 22 to directly operate the cleaning process.

[0053] like Figure 5-6 As shown, the rotating transceiver 30 is disposed on the bottom shell 21 in a detachable manner, and includes a winding mechanism 31 and a driving mechanism 32;

[0054] The winding mechanism 31 is used to store the brushes in a wound manner, and includes a fixed bracket 311, a movable bracket 312 and a winding drum 313, on which the brushes are wound; preferably, a winding groove 3131 is provided on the outer periphery of the winding drum 313, in which the brushes are wound to accommodate more brushes; at the same time, the brushes will not fall off the winding drum 313.

[0055] The fixing bracket 311 is disposed on the bottom shell 21 to provide an installation space and a brush inlet and outlet channel 3111 for sending and receiving the brush, and the brush extends from the brush inlet and outlet channel 3111 to the downstream to perform a cleaning task.

[0056] The movable bracket 312 is rotatably disposed on the fixed bracket 311 and can rotate around a first direction; wherein the first direction is specifically a horizontal direction; preferably, the brush inlet and outlet channel 3111 is flush with the rotation centerline of the movable bracket 312 .

[0057] The winding drum 313 is arranged on the movable bracket 312 and can rotate around the second direction; the second direction is specifically a vertical direction, thereby forming an arrangement in which the first direction and the second direction are perpendicular to each other, so that the winding drum 313 can perform a compound motion in two directions, namely revolution and rotation.

[0058] The driving mechanism 32 in the embodiment of the present invention is used to drive the winding drum 313 to rotate around the second direction to receive and send the brush and to drive the movable bracket 312 to rotate around the first direction to rotate the brush; wherein, two power sources can be used to respectively drive the movable bracket 312 to rotate around the first direction and drive the winding drum 313 to rotate around the second direction, and its specific structural form will not be elaborated here; however, the driving method of the above two power sources has many disadvantages such as multiple power sources, inconvenient control operation, large installation space and difficult wiring; therefore, the embodiment of the present invention especially adopts a single power source to simultaneously rotate the movable bracket 312 around the first direction and the winding drum 313 around the second direction.

[0059] like Figure 7-9 As shown, the driving mechanism 32 includes a motor 321 , a first direction driving shaft 322 , a second direction driving shaft 323 and a transmission assembly 324 . The transmission assembly 324 is used to transmit power between the first direction driving shaft 322 and the second direction driving shaft 323 .

[0060] The motor 321 is arranged on the shell 20, and the first direction driving shaft 322 is arranged at the output end of the motor 321. Preferably, in order to save space, a bevel gear set for steering may be provided at the output end of the motor 321; under the forward and reverse drive of the motor 321, the first direction driving shaft 322 drives the movable bracket 312 to rotate to realize the self-rotation of the brush.

[0061] The movable bracket 312 has a main body 3121 and a connecting part 3122 that are connected to each other; the main body 3121 is bowl-shaped or plate-shaped to form a rotation support effect for at least the rotation of the winding reel 313; the connecting part 3122 is used to form an adaptive connection with the first direction driving shaft 322 and rotate with the first direction driving shaft 322.

[0062] The winding drum 313 is preferably columnar, and an inwardly recessed groove 3132 is formed on a side surface of the winding drum 313 close to the main body 3121 , and the groove 3132 provides installation space for the second direction driving shaft 323 and the transmission assembly 324 .

[0063] The power of the first direction driving shaft 322 is transmitted to the second direction driving shaft 323 via the transmission assembly 324, so that the winding drum 313 rotates to realize the active sending and receiving of the brush.

[0064] Further, the transmission assembly 324 includes a first gear 3241, a second gear 3242, a transmission connector 3243, a first bevel gear 3244 and a second bevel gear 3245;

[0065] The first gear 3241 and the second gear 3242 form a planetary gear structure; specifically, the first gear 3241 is disposed on the first direction driving shaft 322, and the second gear 3242 is disposed on the movable bracket 312 and meshes with the first gear 3241, so that the second gear 3242 revolves around the first gear 3241;

[0066] Among them, a limiting part 3123 is set on the connecting part 3122 of the movable bracket 312 corresponding to the first gear 3241 and the second gear 3242, and the limiting part 3123 provides a gear ring for the first gear 3241 and the second gear 3242 to revolve relative to each other, ensuring the effectiveness of the second gear 3242 revolving around the first gear 3241.

[0067] The transmission connecting member 3243 is, for example, a transmission shaft, and the second bevel gear 3245 is connected to the second gear 3242 through the transmission connecting member 3243 and rotates synchronously; the first bevel gear 3244 is arranged on the second direction driving shaft 323 and meshes with the second bevel gear 3245, so that the winding drum 313 rotates.

[0068] Furthermore, in order to improve the movement stability, a mounting seat 3124 is provided on the movable bracket 312 in the embodiment of the present invention, and the mounting seat 3124 is used to provide good support to the transmission connection member 3243 and the second direction driving shaft 323; specifically, the mounting seat 3124 is arranged at the center of the main body 3121, and the mounting seat 3124 has a first rotating connection portion 3125 and a second rotating connection portion 3126; the transmission connection member 3243 is cooperated with the first rotating connection portion 3125 to form a support, and the second direction driving shaft 323 is cooperated with the second rotating connection portion 3126 to form a support.

[0069] In the embodiment of the present invention, in the first stage of transmission, the planetary gear cooperation formed by the first gear 3241 and the second gear 3242 realizes the rotation of the movable bracket 312 around the first direction, that is, the revolution; in the second stage of transmission, the transmission cooperation formed by the first bevel gear 3244 and the second bevel gear 3245 is used to transmit motion and power, thereby realizing the rotation of the winding drum 313 around the second direction, that is, the rotation; in this way, the brush can realize sending and receiving and rotation at the same time, thereby improving the cleaning effect and cleaning efficiency of the brush on the internal pipeline of the endoscope 10.

[0070] In order to maintain the tension of the brush during the sending and receiving process and avoid the problem of poor winding caused by too low brush tension, the driving mechanism 32 in the embodiment of the present invention also includes a differential transmission component 325; please continue to refer to Figure 7-9 The differential transmission assembly 325 includes a support seat 3251, a first rotating body 3252, a second rotating body 3253 and a preload spring 3254.

[0071] The support base 3251 is disposed on the winding drum 313 to provide support and installation conditions;

[0072] The first rotating body 3252 is disposed on the second direction driving shaft 323 and can rotate synchronously with the second direction driving shaft 323; the second rotating body 3253 is disposed on the supporting seat 3251 and can rotate synchronously with the supporting seat 3251;

[0073] Among them, contact or abutment can be formed between the first rotating body 3252 and the second rotating body 3253, and under the action of the pre-tightening spring 3254, contact transmission is formed between the first rotating body 3252 and the second rotating body 3253; when the relative rotational force between the first rotating body 3252 and the second rotating body 3253 exceeds the friction force provided by the pre-tightening spring 3254, the first rotating body 3252 and the second rotating body 3253 can produce relative rotation.

[0074] Specifically, a first contact portion 3255 is provided on the first rotating body 3252, and a second contact portion 3256 is provided on the second rotating body 3253. Under the action of the preload spring 3254, abutment fit is formed between the first contact portion 3255 and the second contact portion 3256; preferably, the first contact portion 3255 and the second contact portion 3256 are both formed as an annular structure, that is, the first rotating body 3252 and the second rotating body 3253 are assembled in a partially nested manner, so that the contact portion and the second contact portion 3256 form a contact fit.

[0075] The differential transmission component 325 in the embodiment of the present invention can effectively eliminate the tension problem caused by the speed change when the external drive transports the brush. The differential transmission component 325 is used to eliminate the speed difference in the sending and receiving process, which is beneficial to the stability and effectiveness of the sending and receiving of the brush.

[0076] Furthermore, in an optional embodiment of the present invention, the differential transmission assembly 325 may also include an adjusting member 3257 for changing the preload force of the preload spring 3254; for example, the support seat 3251 has a threaded portion, the adjusting member 3257 is an adjusting nut, the preload spring 3254 is a straight spring, and the two ends of the preload spring 3254 respectively abut the adjusting nut and the second rotating body 3253, so that the force of the preload spring 3254 can be changed by adjusting the specific position of the adjusting nut, so as to achieve the adjustment of the friction force provided by the preload spring 3254.

[0077] The driving mechanism 32 in the embodiment of the present invention simulates and reproduces the actual cleaning process, and can realize the self-rotation of the brush during the sending and receiving process of the brush, which greatly improves the cleaning effect and cleaning efficiency of the brush on the internal pipeline of the endoscope 10.

[0078] As an extension of an embodiment of the present invention, the endoscope cleaning device also includes a propulsion device 40, which is used to actively transport the brush forward and backward; it should be noted that although the rotating transceiver device 30 can receive and send the brush, the receiving and sending here only retracts the brush to be wound on the winding drum 313 and relaxes the brush on the winding drum 313 so that it can be output, and the rotating transceiver device 30 is not used as a power structure for actively transporting the brush.

[0079] The propulsion device 40 in the embodiment of the present invention adopts a friction propulsion method. In other embodiments of the present invention, the propulsion device 40 may also adopt a spiral propulsion method, a clamping propulsion method, etc.

[0080] like Figure 3-4 As shown in FIGS. 10-11 , the propulsion device 40 of the embodiment of the present invention includes a base 41 , a conveying belt assembly 42 and a pressure wheel assembly 43 .

[0081] The base 41 is arranged on the shell 20 and provides installation space for the conveying belt assembly 42 and the pressure wheel assembly 43; wherein, a first channel 411 and a second channel 412 are relatively arranged on the base 41, and the first channel 411 corresponds to the brush entrance and exit channel 3111 to receive the brush conveyed from the fixed bracket 311; the second channel 412 and the first channel 411 are at the same height, and specifically, the two are arranged in the same line to facilitate active conveying of the brush.

[0082] like Fig.12 As shown, the conveying belt assembly 42 provides the power for conveying, and includes a conveying motor 421 , a driving conveying wheel 422 , a driven conveying wheel 423 and a conveying belt 424 .

[0083] The conveying motor 421 is arranged on the base 41. In order to save space, a bevel gear steering structure can be arranged at the output end of the conveying motor 421 to transmit power and torque; the active conveying wheel 422 and the driven conveying wheel 423 are rotatably arranged on the base 41 through the bearing seat, and the conveying belt 424 is sleeved on the active conveying wheel 422 and the driven conveying wheel 423; specifically, the conveying belt 424 is arranged between the first channel 411 and the second channel 412 and is flush in height, that is, the brush passes through the first channel 411 and is compressed and conveyed by the conveying belt 424 and the pressure wheel assembly 43, and then passes out from the second channel 412, so that the conveying stage of the brush between the first channel 411 and the second channel 412 is a linear conveying, which is conducive to maintaining the stability of the brush conveying.

[0084] Furthermore, the propulsion device 40 of the embodiment of the present invention further includes a tensioning assembly 44, and the tensioning assembly 44 is used to tension the conveying belt 424 so that the conveying belt 424 has a stable conveying force; please continue to refer to Fig.12The tensioning assembly 44 includes a tensioning wheel 441 and a tensioning rod 442. The tensioning rod 442 is lockably and loosely arranged on the base 41. The tensioning wheel 441 is arranged on the tensioning rod 442 and can be pressed against the conveying belt 424. The tensioning rod 442 is actively loosened to adjust its position, and the force of the tensioning wheel 441 on the conveying belt 424 is adjusted to adjust the tension of the conveying belt 424. The tensioning rod 442 is locked to maintain the force of the tensioning wheel 441 on the conveying belt 424, thereby achieving the tension adjustment of the conveying belt 424.

[0085] In order to detect whether there is a brush between the first channel 411 and the second channel 412, the propulsion device 40 in the embodiment of the present invention further includes a detection mechanism 45; Figure 13-14 As shown, the detection mechanism 45 includes a detection block 451 arranged on the brush conveying path and a floating component 452 adapted to the position of the detection block 451. The detection block 451 is arranged on the brush conveying path through the floating component 452 to detect the brush. When the brush is conveyed normally, due to the interference between the brush and the detection block 451, the brush can push the detection block 451 to other positions to form an avoidance. It should be pointed out here that the force required to push the detection block 451 is relatively small and will not affect the propulsion and conveying of the brush.

[0086] Please refer again Fig.14 , the detection block 451 is rotatably arranged on the detection gear 453 and can rotate along with the detection gear 453; the floating assembly 452 is a spring-type assembly, which includes a rack 4521 and a floating spring 4522 for limiting the left and right positions of the rack 4521, and the rack 4521 is meshed with the detection gear 453;

[0087] A guide rail 413 is provided on the base 41, and the rack 4521 can be freely slidably arranged on the guide rail 413; there are preferably two floating springs 4522, and floating springs 4522 are provided on opposite sides of the sliding direction of the rack 4521. The floating spring 4522 can keep the rack 4521 in an initial position in the absence of external force, that is, keep the detection gear 453 and the detection block 451 in the initial position. At this time, the detection block 451 is located on the conveying path of the brush; when the brush is conveyed, it will push the detection block 451 to rotate, and the detection block 451 drives the detection gear 453 to rotate, so that the rack 4521 produces a certain displacement and generates a force on the floating spring 4522.

[0088] The continuous conveying of the brush can always keep the detection block 451 in a non-initial position; accordingly, the detection mechanism 45 also includes a detection element 454, a trigger part 4523 on the rack 4521, and the position of the detection block 451 is detected by the relative position relationship between the trigger part 4523 and the detection element 454, so as to obtain whether there is a brush for conveying at present; for example, the trigger part 4523 is a protruding trigger block, the detection element 454 is a contact switch, the detection block 451 is in the initial position (that is, when the rack 4521 is in the middle position), and the detection element 454 is in abutment with the trigger block; when the detection block 451 is in a non-initial position (that is, when the rack 4521 is in a non-middle position), the detection element 454 is separated from the trigger block.

[0089] like Figure 15-18 As shown, the pressure wheel assembly 43 includes a support frame 431, a pressure plate 432 and a pressure wheel 433; the support frame 431 is arranged on the base 41 and is located above the conveying belt 424, and the pressure plate 432 is arranged on the support frame 431; the pressure wheel 433 is arranged on the pressure plate 432 and can be pressed on the conveying belt 424; wherein, the brush passes through the first channel 411 and is pressed and conveyed by the conveying belt 424 and the pressure wheel 433, and then passes out from the second channel 412.

[0090] Furthermore, at least one of the pressure wheel 433 and the conveying belt 424 can generate elastic deformation to provide sufficient friction force for the brush conveying process; for example, the conveying belt 424 is made of a rubber belt, and the pressure wheel 433 is made of a silicone rotating wheel.

[0091] Specifically, in the embodiment of the present invention, the number of the pressure wheel assemblies 43 can be multiple groups, for example, three groups distributed along the conveying direction of the conveyor belt 424, and the support frames 431 in the multiple groups of pressure wheel assemblies 43 are prefabricated as one or connected as one.

[0092] Please see again Figure 17-18 The pressing wheel assembly 43 specifically includes a support shaft 434, a pressing spring 435 and a handle 436;

[0093] The support shaft 434 is vertically arranged on the support frame 431, and the pressure wheel 433 is located at the lower end of the support shaft 434; in order to realize the relative rotation of the pressure wheel 433 and the conveyor belt 424, the pressure wheel 433 is slidably connected to the lower end of the support shaft 434 through the rotation shaft 437 thereon; at the same time, the embodiment of the present invention is provided with two parallel support shafts 434 to better support the pressure wheel 433;

[0094] The pressure plate 432 can be supported on the support shaft 434 in a sliding manner up and down, and the highest position of the pressure plate 432 can be adjusted by a handle 436 arranged on the support frame 431; wherein, the two ends of the clamping spring 435 respectively abut against the pressure plate 432 and the support shaft 434; the height position of the pressure plate 432 is adjusted by the handle 436 to provide a downward clamping force to the rotating shaft 437 (pressure wheel 433) through the clamping spring 435, thereby realizing the compression and conveying of the brush by the cooperation of the clamping wheel 433 and the conveying belt 424.

[0095] In order to facilitate the brush to be placed on the conveying belt 424 at the beginning of conveying so as to pass through the first channel 411 and the second channel 412, the pressure wheel assembly 43 in the embodiment of the present invention can be displaced as a whole to provide a matching space, and during the overall displacement of the pressure wheel assembly 43, the position of the handle 436 (i.e., the preset pressure force) does not need to be adjusted; Figure 15-16 As shown, the propulsion device 40 further includes an outer cover 46 covering the pressing wheel assembly 43 and a cover-opening linkage assembly 47 for lifting the pressing wheel assembly 43;

[0096] The cover opening linkage assembly 47 includes a linkage rod 471 , a first hinge shaft 472 and a second hinge shaft 473 ; the linkage rod 471 is fixedly connected to the outer cover 46 , and the linkage rod 471 can be driven to rotate accordingly by applying a force to the outer cover 46 .

[0097] The base 41 has a vertical guide rail 414, and the support frame 431 can be raised and lowered on the vertical guide rail 414; the support frame 431 is provided with a non-vertical slide groove 4311; the first end of the linkage rod 471 is connected to the base 41 through the first hinge shaft 472, and the second end of the linkage rod 471 is connected to the support frame 431 through the second hinge shaft 473 located in the slide groove 4311; wherein, when the outer cover 46 rotates around the first hinge shaft 472, it drives the linkage rod 471 to rotate, and the second hinge shaft 473 slides in the slide groove 4311 to drive the support frame 431 to be raised and lowered, thereby realizing the overall lifting and lowering of the clamping wheel assembly 43.

[0098] In the embodiment of the present invention, the propulsion speed of the brush in the propulsion device 40 (i.e., the speed of the conveying belt 424) is set to the first speed, and the rotation speed of the winding drum 313 is set to the second speed; when the brush is propelled forward, the first speed is greater than the second speed to maintain the tension of the brush during the sending out process, that is, when the brush is propelled forward, the propulsion device 40 always has a certain pulling force on the winding drum 313, so that even if the propulsion device 40 has a short speed change during the forward conveying process, it will not affect the winding drum 313 to send out the brush; similarly, when the brush is propelled backward, the first speed is less than the second speed to maintain the tension of the brush during the retraction process.

[0099] The endoscope 10 has different internal pipelines, such as Figure 1 As shown, the endoscope 10 used as a gastroscope has three internal pipelines. Therefore, in order to automatically clean the three internal pipelines separately without disassembly, the output position of the brush in the embodiment of the present invention can be switched, that is, the propulsion device 40 also includes a switching component 48 for position switching; wherein, the switching mode of the switching component 48 includes a sliding mode, a swinging mode and a multi-axis motion mode.

[0100] The embodiment of the present invention is introduced as follows by taking the swing-type switching component 48 as an example; three through holes 25 are provided on the shell 20, and a connecting joint can be provided at the through hole 25. The brush transported by the conveying belt assembly 42 and the pressure wheel assembly 43 can pass through and out of the through hole 25. The three through holes 25 are respectively connected to the three pipe openings on the endoscope 10 through the hose 26, so that the brush can enter and exit the three internal pipes of the endoscope 10 and complete automatic cleaning.

[0101] Combination Figure 11-12 , Fig.19 , the switching assembly 48 includes a support plate 481, a rotary shaft 482, an eccentric wheel 483, a switching motor 484 and a mounting plate 485;

[0102] A base 41 for carrying components such as a conveying belt assembly 42 and a pressure wheel assembly 43 is arranged on a support plate 481; the support plate 481 is swingably arranged in the shell 20 through a rotating shaft 482; preferably, the rotating shaft 482 is installed on the shell 20 by means of a bearing seat to form a good supporting effect; the eccentric wheel 483 has an eccentric wheel shaft 4831, and a guide groove 486 is provided on the support plate 481, and the eccentric wheel shaft 4831 is slidably arranged in the guide groove 486.

[0103] The switching motor 484 is arranged on the shell 20. Under the drive of the switching motor 484, the eccentric wheel 483 rotates, and through the cooperation between the eccentric wheel shaft 4831 and the guide groove 486, and the cooperation between the rotating shaft 482 on the support plate 481 and the shell 20, the support plate 481 is driven to switch between the positions corresponding to the three through holes 25.

[0104] Among them, after completing the cleaning task of one of the internal pipes of the endoscope 10, the brush is retracted from the through hole 25; the other through holes 25 corresponding to the brush are switched by the switching component 48, and then the brush is output to perform the cleaning task of other internal pipes; until all the three internal pipes of the endoscope 10 are cleaned.

[0105] In order to confirm whether the base 41 is rotated into place, Fig. 20As shown, the switching assembly 48 in the embodiment of the present invention also includes a rocker arm 487 that rotates synchronously with the eccentric wheel shaft 4831 and three sensors 488 for detecting the position of the rocker arm 487. The detection positions of the three sensors 488 correspond one-to-one to the three through holes 25, thereby ensuring that the brush transported by the propulsion device 40 can pass through or out of different through holes 25, thereby realizing the automated cleaning task of different internal channels of the endoscope 10.

[0106] In the embodiment of the present invention, the switching component 48 can be used to automatically switch the pipelines. The rotating transceiver device 30 and the propulsion device 40 can automatically complete the transportation, reception and rotation of the brush, and automatically complete the cleaning of the three internal pipelines of the endoscope 10. Among them, the cleaning time of a single endoscope can be completed in one minute, and the cleaning is safer and more efficient.

[0107] Furthermore, during the entire cleaning process of the endoscope 10, an automatic perfusion method of cleaning fluid is adopted to ensure the safety of the internal pipeline of the endoscope 10 and effectively reduce the adhesion of pollutants and bacteria; at the same time, according to the cleaning standards and relevant specifications, initial washing, cleaning and final washing can be performed separately, and clean cleaning fluid is used for perfusion to avoid secondary contamination, effectively ensuring that the cleaning and disinfection of the endoscope 10 meets the standards.

[0108] Components capable of changing position in the embodiment of the present invention, such as the winding reel 313, the movable bracket 312 and the base 41, etc., can all be set with a zero point position, for example, by using a Hall switch to perform zero return control to restore the device to a set initial position.

[0109] As a specific use scenario of the endoscope cleaning device of the embodiment of the present invention, Fig.21 As shown, the endoscope cleaning device of the embodiment of the present invention may also have a cabinet 50 for cleaning the outside of the endoscope 10, and a cleaning device 60 for cleaning the outside of the endoscope 10 is provided on the cabinet 50; the structure of the cleaning device 60 is at least one of a spray type, an immersion type, a wiping type, a vibration type, an illumination type, a pressure type, a high temperature type and an ultrasonic type; the cleaning method of the cleaning mechanism includes at least one of chemical cleaning, mechanical cleaning and microbial cleaning.

[0110] Furthermore, in order to facilitate management, a data module can also be provided on the cabinet 50 to provide a variety of usage scenarios. The data module, for example, includes an identification module 51. The identification methods of the identification module 51 include face recognition, radio frequency recognition and password recognition to achieve intelligent control of the cleaning of the endoscope 10; for example, based on the RFID Internet of Things system, the endoscope cleaning is efficiently managed, and the cleaning personnel and cleaning time are registered and recorded, which facilitates the backtracking and tracing of the endoscope cleaning process; the specific control method is not limited in the embodiment of the present invention and will not be introduced in detail.

[0111] Although the present invention is disclosed as above with specific embodiments, these specific embodiments are not intended to limit the scope of the present invention. Any person skilled in the art may make some changes / modifications without departing from the scope of the present invention, that is, any equivalent changes / modifications made according to the present invention should be covered by the protection scope of the present invention.

Claims

1. An endoscope cleaning device, comprising a housing, a brush and a rotating transceiver, wherein the brush is used to clean the inner pipeline of the endoscope; characterized in that: The rotating transceiver device comprises: The winding mechanism comprises a movable bracket and a winding disk, the brush is wound on the winding disk; the movable bracket is arranged on the housing and can rotate around a first direction; the winding disk is arranged on the movable bracket and can rotate around a second direction; A driving mechanism, used for driving the winding drum to rotate around the second direction to send and receive the brush and for driving the movable bracket to rotate around the first direction to rotate the brush; the driving mechanism comprises: A first direction driving shaft, disposed on the housing to drive the movable bracket to rotate; A second direction driving shaft, arranged on the movable bracket to drive the winding drum to rotate; at least one motor providing driving force to the first direction drive shaft and the second direction drive shaft; the number of the motor is one, and the driving mechanism further comprises a transmission assembly; the motor is arranged on the housing and drivingly connected to the first direction drive shaft, and the first direction drive shaft transmits power to the second direction drive shaft through the transmission assembly; The transmission assembly includes a first gear, a second gear, a transmission connecting member, a first bevel gear and a second bevel gear; The first gear is arranged on the first direction driving shaft, and the second gear is arranged on the movable bracket and meshes with the first gear, so that the second gear revolves around the first gear; The second bevel gear is connected to the second gear through a transmission connection and rotates synchronously; the first bevel gear is arranged on the second direction driving shaft and meshes with the second bevel gear, so that the winding drum rotates.

2. The endoscope cleaning device according to claim 1, characterized in that: The first direction and the second direction are perpendicular to each other.

3. The endoscope cleaning device according to claim 1, characterized in that: A winding groove is arranged on the outer circumference of the winding drum, and the brush is wound in the winding groove.

4. The endoscope cleaning device according to claim 1, characterized in that: The shell is provided with a brush inlet and outlet channel, and the brush inlet and outlet channel is flush with the rotation center line of the movable bracket.

5. The endoscope cleaning device according to claim 1, characterized in that: The movable bracket is provided with a mounting seat, and the mounting seat has a first rotating connection part and a second rotating connection part; the transmission connecting member is cooperatively connected with the first rotating connection part, and the second direction driving shaft is cooperatively connected with the second rotating connection part.

6. The endoscope cleaning device according to claim 1, characterized in that: The drive mechanism further includes a differential transmission assembly; the differential transmission assembly includes: A support seat, arranged on the winding drum; A first rotating body is arranged on the second direction driving shaft; a first contact portion is arranged on the first rotating body; A second rotating body is arranged on the supporting seat; a second contact portion is arranged on the second rotating body; A preload spring is used to maintain contact transmission between the first contact portion and the second contact portion; wherein, when the relative rotational force between the first contact portion and the second contact portion exceeds the frictional force provided by the preload spring, the first rotating body and the second rotating body can generate relative rotation.

7. The endoscope cleaning device according to claim 6, characterized in that: The differential transmission assembly also includes an adjusting member for changing the preload force of the preload spring.

Citation Information

Patent Citations

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