Medical equipment tubing sterilizer
By designing transmission, clamping, and limiting mechanisms, the problem of disinfectant water being difficult to pass through medical equipment pipelines was solved, enabling rapid cleaning and drying, and improving the efficiency and reliability of pipeline disinfection equipment.
Patent Information
- Application Number
- CN202310814651.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-07-05
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2043-07-05
AI Technical Summary
Existing pipe cleaning equipment struggles to effectively penetrate the long, flexible pipes of medical equipment with disinfectant, resulting in incomplete cleaning and potential damage to the pipes.
A medical equipment pipeline sterilization machine was designed, comprising a transmission mechanism, a clamping mechanism, a limiting mechanism, and an adjusting mechanism. By clamping both ends of the pipeline and adjusting its position, the middle is limited. The transmission mechanism drives the pipeline to rotate, allowing the disinfectant to pass through quickly, and the pipeline is then dried by the air-drying mechanism.
It enables rapid flow of disinfectant inside the pipes, avoids damage to the pipes during the cleaning process, improves cleaning efficiency, and accelerates the drying process of the pipes through the air-drying mechanism.
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Figure CN116809551B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of disinfection, specifically a medical equipment pipeline disinfection machine. Background Technology
[0002] Many medical devices have tubing that needs to be sterilized for reuse. For example, after use, anesthesia machines and ventilators require sterilization of the tubing connected to them. Because these tubings are long and flexible, it's difficult to clean the inside thoroughly with a small amount of water. Using agitation during cleaning can easily damage the tubing. However, existing tubing cleaning equipment doesn't allow disinfectant to penetrate the inside of the tubing for rapid cleaning. Summary of the Invention
[0003] To address the problems in the prior art, the present invention provides a medical equipment pipeline disinfection machine.
[0004] The technical solution adopted by the present invention to solve its technical problem is: a medical equipment pipeline sterilizer, including a housing, a transmission mechanism provided on the housing, two clamping mechanisms provided on the transmission mechanism, the clamping mechanisms being used to clamp both ends of a pipeline; a limiting mechanism provided on the transmission mechanism, the limiting mechanism being located between the two clamping mechanisms, used to limit the movement of the pipeline; an adjusting mechanism provided on the transmission mechanism, the adjusting mechanism being used to adjust the position of the two clamping mechanisms, and driving the limiting mechanism to limit the pipeline when the adjusting mechanism adjusts the clamping mechanisms.
[0005] Preferably, the transmission mechanism includes a rotating drum rotatably disposed inside the housing, a driving component connected to the rotating drum, and the driving component being used to drive rotation; hydraulic components are disposed on both sides of the housing, a top cover is connected to the telescopic end of the hydraulic component, and a connection port is disposed on the top cover for inputting and discharging disinfectant; the rotating drum is provided with multiple sliding grooves, and the sliding grooves are inclined along the surface of the rotating drum.
[0006] Preferably, the limiting mechanism includes a support rod disposed in the middle of the slide groove, and a limiting frame is disposed at the end of the support rod. The limiting frame is used to place the pipe, and a limiting component for limiting the movement of the pipe is disposed on the limiting frame.
[0007] Preferably, the limiting mechanism further includes a limiting rod disposed on the limiting frame, the limiting rod being used to press the pipe located on the limiting frame, a movable rod being connected to the limiting rod, the movable rod being telescopically disposed on the limiting frame, a first elastic element being disposed on the limiting frame, the first elastic element being used to push the movable rod to reset, and a pull rope being disposed at the end of the movable rod, the pull rope being used to pull the movable rod to move.
[0008] Preferably, the clamping mechanism includes a pressure relief component and a clamping component. The clamping component is used to clamp the end of the pipe, and the pressure relief component is used to increase the clamping force of the clamping component on the pipe. The clamping component includes a first clamping body and a second clamping body. The first clamping body and the second clamping body are closed to clamp the pipe, and the first clamping body and the second clamping body are movably connected by a pin. A support rod is slidably arranged on the slide groove, a retaining ring is provided on the support rod, and a pin is provided on the outer wall of the retaining ring.
[0009] Preferably, the pressure relief assembly includes a stabilizing sleeve connected to a support rod, a fixing rod on the stabilizing sleeve, a flow guide sleeve on the fixing rod fitted onto the stabilizing sleeve, a rod groove on the flow guide sleeve, a pulling rod inside the stabilizing sleeve, a second elastic element on the pulling rod for pushing the pulling rod to reset, a pull bolt at the end of the pulling rod, a connecting rod on the pull bolt, the connecting rod passing through the inside of the rod groove, and the end of the connecting rod rotatably connected to a first clamping body. Rotating the pulling rod causes the connecting rod to move, and the connecting rod pulls the first clamping body to rotate around the pin.
[0010] Preferably, the pressure relief assembly further includes a slide rod movably connected to the end of the pull rod, a push plate is provided at the end of the slide rod, the push plate is movably connected to the retaining ring, and a protrusion is provided at the end of the second clamping body. When the push plate moves, it squeezes the protrusion, and the protrusion rotates around the pin towards the second clamping body.
[0011] Preferably, the adjusting mechanism includes a fastening rod disposed on the rotating drum, a fastening button disposed on the fastening rod, driving the fastening button to rotate and causing the fastening rod to rotate, a transmission wheel disposed on the fastening rod, an upper rotating plate and a lower rotating plate disposed on the circumference of the transmission wheel and meshing therewith, transmission teeth disposed on the upper rotating plate and the lower rotating plate, driving the upper rotating plate and the lower rotating plate to rotate synchronously in opposite directions when the transmission wheel rotates; a pull rod disposed on the outer surface of the upper rotating plate and the lower rotating plate, the pull rod being movably connected to the end of the support rod.
[0012] Preferably, the pull rope is connected to the inner side of the upper or lower rotating plate, and the pull rope is pulled when the upper or lower rotating plate rotates.
[0013] Preferably, the top cover is provided with a drying mechanism for drying the cleaned pipe; the drying mechanism includes a fan mounted on the top cover, a connecting pipe at the bottom of the fan, an annular pipe connected to the connecting pipe, and an air jet hole on the annular pipe, the air jet hole corresponding to the clamped pipe; the rotating drum is provided with an inner ring, a first wedge block is provided on the inner ring, and a second wedge block is provided on the top cover; the second wedge block moves downward to drive the first wedge block to move, and the air jet hole moves with the first wedge block to the position above the corresponding pipe. Beneficial effects
[0014] (1) The clamping mechanism can clamp both ends of the pipe. The adjusting mechanism can adjust the position of the two clamping mechanisms on the transmission mechanism after the pipe is clamped, so that the clamped pipe is elongated and will not coil when the pipe is cleaned with disinfectant water. This allows the disinfectant water to pass through the inside of the pipe effectively and reduces the obstruction of the disinfectant water flow. The limiting mechanism is used to limit the position of the middle part of the pipe, so that the water flow reduces the force on the pipe when the pipe rotates with the transmission mechanism. The adjusting mechanism can adjust the clamping mechanism and also allow the limiting mechanism to close, so that the pipe is limited on the limiting mechanism. The two ends of the pipe are clamped and the middle part is limited, so that the water flow can quickly pass through the inside of the pipe when the pipe rotates with the transmission mechanism. The transmission mechanism can drive the pipe to rotate, so that the pipe can be cleaned quickly.
[0015] (2) When the adjustment mechanism is rotated, the adjustment mechanism drives the pull rope to move, the pull rope to move, the movable rod to move, the movable rod to move, and the limit rod to move towards the limit frame. Thus, the pipe placed on the limit frame is placed in contact with the limit frame when the limit rod moves down, so that the pipe is restricted between the limit frame and the limit rod. The pipe is fixed when the pipe rotates with the drum. When the pull rope is reset, the first elastic element pushes the movable rod to move, so that the limit rod is disengaged from the limit frame, thus making it easy to remove the pipe from the inside of the limit frame. The operation is simple and has a good effect on the pipe, reducing the impact of water flow on the pipe when it moves.
[0016] (3) When it is necessary to clamp the two ends of the pipe, first pull the bolt. The bolt drives the pulling rod to move. The movement of the pulling rod drives the first clamp to move closer to the second clamp, so that the end of the pipe can be placed between the first clamp and the second clamp. When the bolt is released, the bolt resets under the action of the second elastic element, so that the pipe is stably clamped. When the drum rotates, the drum drives the guide shroud to move synchronously. Since the guide shroud is a funnel-shaped structure, when the water flows into the inside of the guide shroud, the water flow will squeeze the push plate. The movement of the push plate drives the pulling rod to move, so that the push plate slides out from the inside of the retaining ring. A gap is formed between the push plate and the retaining ring, which makes it easier for disinfectant to enter the inside of the pipe. When the disinfectant pushes the push plate, the push plate will press against the protrusion. Since the connection between the protrusion and the outer circumference of the push plate is an inclined surface, when the push plate pushes the protrusion, the protrusion drives the second clamp to rotate around the pin towards the position of the first clamp. Thus, the cooperation between the second clamp and the first clamp clamps the pipe. The faster the drum rotates, the faster the water flow inside the guide shroud, which makes the distance between the push plate movements larger. The pressure that the second clamp can exert on the pipe against the first clamp is greater. When the drum rotates fast, the clamping force of the second clamp and the first clamp on the pipe is greater, thus ensuring that the water pipe will not detach from the clamping of the first and second clamps during the rotation process. Attached Figure Description
[0017] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0019] Figure 2 This is a schematic diagram of the internal structure of the present invention;
[0020] Figure 3 for Figure 2 Enlarged structural diagram at point A in the diagram;
[0021] Figure 4 This is a schematic diagram of the air-drying mechanism of the present invention;
[0022] Figure 5 This is a schematic diagram of the connection of the adjustment mechanism of the present invention;
[0023] Figure 6 This is a schematic diagram of the clamping mechanism of the present invention;
[0024] Figure 7 This is a schematic diagram of the air deflector mounting structure of the present invention;
[0025] Figure 8 This is a schematic diagram of the pull rod structure of the present invention;
[0026] Figure 9 This is a schematic diagram of the limiting mechanism connection of the present invention.
[0027] In the diagram: 1. Housing; 2. Transmission mechanism; 20. Telescopic transmission rod; 21. Hydraulic component; 22. Drive component; 23. Top cover; 24. Connection port; 25. Rotary drum; 26. Slide groove; 3. Drying mechanism; 31. Fan; 32. Inner ring; 33. First wedge block; 34. Second wedge block; 35. Air jet hole; 36. Annular pipe; 37. Connecting pipe; 4. Limiting mechanism; 41. Support rod; 42. Limiting frame; 43. Movable rod; 44. Pull rope; 45. Limiting rod; 46. First elastic element; 5. Clamp Holding mechanism; 51. First clamping body; 52. Second clamping body; 53. Protrusion; 54. Retaining ring; 55. Push plate; 56. Connecting rod; 57. Rod groove; 58. Flow guide; 59. Pull bolt; 510. Support rod; 511. Stabilizing sleeve; 512. Fixing rod; 513. Pin; 514. Slide rod; 515. Pull rod; 516. Second elastic element; 6. Adjusting mechanism; 61. Fastening button; 62. Fastening rod; 63. Transmission wheel; 64. Upper rotating plate; 65. Lower rotating plate; 66. Transmission gear; 67. Pull rod. Detailed Implementation
[0028] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.
[0029] In one embodiment, please refer to the appendix to the specification. Figure 1-9 As shown, the medical equipment pipeline sterilizer of the present invention includes a housing 1, a transmission mechanism 2 on the housing 1, a clamping mechanism 5 on the transmission mechanism 2 for clamping both ends of a pipeline; a limiting mechanism 4 on the transmission mechanism 2, located between the two clamping mechanisms 5, for limiting the movement of the pipeline; and an adjusting mechanism 6 on the transmission mechanism 2 for adjusting the positions of the two clamping mechanisms 5, driving the limiting mechanism 4 to limit the pipeline when the adjusting mechanism 6 adjusts the clamping mechanism.
[0030] The clamping mechanism 5 clamps both ends of the pipe. The adjusting mechanism 6 adjusts the position of the two clamping mechanisms 5 on the transmission mechanism 2 after the pipe is clamped, thus elongating the clamped pipe and preventing it from coiling during cleaning with disinfectant. This allows the disinfectant to pass effectively through the pipe's interior, reducing resistance to flow. The limiting mechanism 4 restricts the position of the middle section of the pipe, reducing the force of water flow on the pipe as it rotates with the transmission mechanism 2. The adjusting mechanism 6 adjusts the clamping mechanisms 5 while simultaneously retracting the limiting mechanism 4, thus confining the pipe to it. With both ends clamped and the middle section limited, the pipe allows for rapid water flow as it rotates with the transmission mechanism 2. The transmission mechanism 2 drives the pipe to rotate, enabling rapid cleaning.
[0031] In one embodiment, please refer to the appendix to the specification. Figure 1-3 As shown, the transmission mechanism 2 includes a rotating drum 25 rotatably disposed inside the housing 1. A driving component 22 is connected to the rotating drum 25, and a telescopic transmission rod 20 is provided on the driving component 22. The driving component 22 is used to drive the rotation. Hydraulic components 21 are provided on both sides of the housing 1. A top cover 23 is connected to the telescopic end of the hydraulic component 21. A connection port 24 is provided on the top cover 23. The connection port 24 is used to input and discharge disinfectant. Multiple sliding grooves 26 are provided on the rotating drum 25. The sliding grooves 26 are inclined along the surface of the rotating drum 25.
[0032] The telescopic transmission rod 20 extends when the driving component 22 moves upward. Since the telescopic transmission rod 20 has a square structure, it can drive the rotating drum 25 to rotate while extending and retracting. The rotation of the rotating drum 25 drives the slide groove 26 to rotate. When the rotating drum 25 rotates, the disinfectant water inside the housing 1 passes through the inside of the pipe. When it is necessary to connect the two ends and the middle of the pipe to the limiting mechanism 4 and the clamping mechanism 5, the rotating drum 25 needs to be raised from the inside of the housing 1 to facilitate fixing the pipe. When the hydraulic component 21 rises, it pushes the top cover 23 to move upward. When it is necessary to rotate the rotating drum 25, the driving component 22 drives the rotating drum 25 to rotate. The rotating drum 25 drives the clamping mechanism 5 and the limiting mechanism 4 on it to rotate synchronously, so that the disinfectant water passes through the inside of the pipe to disinfect the inside of the pipe.
[0033] In one embodiment, please refer to the appendix to the specification. Figure 1-3 and Figure 9As shown, the limiting mechanism 4 includes a support rod 41 disposed in the middle of the slide groove 26. A limiting frame 42 is disposed at the end of the support rod 41. The limiting frame 42 is used to place the pipe, and a limiting component for limiting the movement of the pipe is disposed on the limiting frame 42. The limiting mechanism 4 also includes a limiting rod 45 disposed on the limiting frame 42. The limiting rod 45 is used to press the pipe located on the limiting frame 42. A movable rod 43 is connected to the limiting rod 45. The movable rod 43 is telescopically disposed on the limiting frame 42. A first elastic element 46 is disposed on the limiting frame 42. The first elastic element 46 is used to push the movable rod 43 to reset. A pull rope 44 is disposed at the end of the movable rod 43. The pull rope 44 is used to pull the movable rod 43 to move. The pull rope 44 is connected to the adjusting mechanism 6.
[0034] When the adjusting mechanism 6 is rotated, the adjusting mechanism 6 drives the pull rope 44 to move, the pull rope 44 moves the movable rod 43 to move, the movable rod 43 moves the limiting rod 45 to move, and then the limiting rod 45 moves toward the limiting frame 42, so that the pipe placed on the limiting frame 42 is in contact with the limiting frame 42 when the limiting rod 45 moves down, thus restricting the pipe between the limiting frame 42 and the limiting rod 45. The pipe is fixed when the pipe rotates with the rotating drum 25. When the pull rope 44 is reset, the first elastic element 46 pushes the movable rod 43 to move, so that the limiting rod 45 is disengaged from the limiting frame 42, thus making it easy to remove the pipe from the inside of the limiting frame 42. The operation is simple and has a good effect on the pipe, reducing the impact of water flow on the pipe when it moves.
[0035] In one embodiment, please refer to the appendix to the specification. Figure 1-8As shown, the clamping mechanism 5 includes a pressure relief component and a clamping component. The clamping component is used to clamp the end of the pipe, and the pressure relief component is used to increase the clamping force of the clamping component on the pipe. The clamping component includes a first clamping body 51 and a second clamping body 52. The first clamping body 51 and the second clamping body 52 are closed to clamp the pipe, and the first clamping body 51 and the second clamping body 52 are movably connected by a pin 513. A support rod 510 is slidably arranged on the slide groove 26, and a retaining ring 54 is provided on the support rod 510. The pin 513 is provided on the outer wall of the retaining ring 54. The pressure relief assembly includes a stabilizing sleeve 511 connected to a support rod 510. A fixing rod 512 is provided on the stabilizing sleeve 511. A flow guide 58 is provided on the fixing rod 512 and fitted onto the stabilizing sleeve 511. A rod groove 57 is provided on the flow guide 58. A pulling rod 515 is provided inside the stabilizing sleeve 511. A second elastic element 516 is provided on the pulling rod 515. The second elastic element 516 is used to push the pulling rod 515 to reset. A pull bolt 59 is provided at the end of the pulling rod 515. A connecting rod 56 is provided on the pull bolt 59. The connecting rod 56 passes through the inside of the rod groove 57. The end of the connecting rod 56 is rotatably connected to a first clamp 51. Rotating the pulling rod 515 drives the connecting rod 56 to move. The connecting rod 56 pulls the first clamp 51 to rotate around the pin 513. The pressure relief assembly also includes a slide bar 514 movably connected to the end of the pull rod 515. A push plate 55 is provided at the end of the slide bar 514. The push plate 55 is movably connected to the retaining ring 54. A protrusion 53 is provided at the end of the second clamping body 52. When the push plate 55 moves, it squeezes the protrusion 53. The protrusion 53 rotates around the pin 513 toward the second clamping body 52.
[0036] When it is necessary to clamp both ends of the pipe, first pull the bolt 59. The bolt 59 moves the pulling rod 515, which in turn moves the first clamp 51 closer to the second clamp 52, thus facilitating the placement of the pipe end between the first clamp 51 and the second clamp 52. When the bolt 59 is released, it resets under the action of the second elastic element 516, thus stably clamping the pipe. When the rotating drum 25 rotates, it moves the guide shroud 58 synchronously. Since the guide shroud 58 has a trumpet-shaped structure, when water enters the interior of the guide shroud 58, the water will squeeze the push plate 55. The movement of the push plate 55 moves the pulling rod 515, causing the push plate 55 to slide out from inside the retaining ring 54. A gap is formed between the push plate 55 and the retaining ring 54, allowing disinfectant to enter the interior of the pipe. When the disinfectant pushes the push plate 55, the push plate 55... It will press against the protrusion 53. Since the connection between the protrusion 53 and the outer circumference of the push plate 55 is an inclined surface, when the push plate 55 pushes the protrusion 53, the protrusion 53 drives the second clamp 52 to rotate around the pin 513 toward the position of the first clamp 51. Thus, the cooperation between the second clamp 52 and the first clamp 51 clamps the pipe. The faster the rotating drum 25 rotates, the faster the water flow rate inside the guide shroud 58, which makes the distance of the push plate 55 move larger. The pressure that the second clamp 52 can exert on the pipe is greater. When the speed of the drive component 22 rotates from slow to fast, the rotation speed of the rotating drum 25 connected to the drive component 22 also gradually increases. When the rotating drum 25 rotates fast, the clamping force of the second clamp 52 and the first clamp 51 on the pipe is greater, thus ensuring that the water pipe will not be separated from the clamping of the first clamp 51 and the second clamp 52 during the rotation process.
[0037] In one embodiment, please refer to the appendix to the specification. Figure 1-5 As shown, the adjusting mechanism 6 includes a fastening rod 62 mounted on the rotating drum 25. A fastening button 61 is mounted on the fastening rod 62. Driving the fastening button 61 to rotate the fastening rod 62 causes the fastening rod 62 to rotate. A transmission wheel 63 is mounted on the fastening rod 62. An upper rotating plate 64 and a lower rotating plate 65 are mounted on the circumference of the transmission wheel 63 and mesh with it. Transmission teeth 66 are mounted on the upper rotating plate 64 and the lower rotating plate 65. When the transmission wheel 63 rotates, it drives the upper rotating plate 64 and the lower rotating plate 65 to rotate synchronously in opposite directions. A pull rod 67 is mounted on the outer surface of the upper rotating plate 64 and the lower rotating plate 65. The pull rod 67 is movably connected to the end of the support rod 510.
[0038] The pull rope 44 is connected to the inner side of the upper rotating plate 64 or the lower rotating plate 65. When the upper rotating plate 64 or the lower rotating plate 65 rotates, the pull rope 44 is pulled.
[0039] When it is necessary to adjust the clamping mechanism 5 and the limiting mechanism 4 to limit and clamp the pipeline and then open it, turn the fastening button 61. The fastening button 61 drives the fastening rod 62 to rotate. The fastening rod 62 is threaded and engages with the rotating drum 25. After the fastening rod 62 rotates, it drives the transmission wheel 63 to rotate. The rotation of the transmission wheel 63 drives the two sets of transmission teeth 66 to rotate. The transmission teeth 66 can drive the upper rotating plate 64 and the lower rotating plate 65 to rotate in opposite directions, thereby moving the two pull rods 67. The movement of the pull rods 67 pulls the support rod 510, and the support rod 510 will move along the slide groove 26. When the upper rotating plate 64 or the lower rotating plate 65 rotates, the pull rope 44 pulls the movable rod 43 to move, which in turn drives the limiting rod 45 to move and limit the pipeline.
[0040] In one embodiment, please refer to the appendix to the specification. Figure 1-4 As shown, a drying mechanism 3 is provided on the top cover 23, which is used to dry the cleaned pipe. The drying mechanism 3 includes a fan 31 mounted on the top cover 23, a connecting pipe 37 at the bottom of the fan 31, an annular pipe 36 connected to the connecting pipe 37, and an air jet hole 35 on the annular pipe 36, which corresponds to the clamped pipe. An inner ring 32 is provided on the rotating drum 25, and a first wedge block 33 is provided on the inner ring 32. A second wedge block 34 is provided on the top cover 23. The second wedge block 34 moves downward to drive the first wedge block 33 to move, and the air jet hole 35 moves with the first wedge block 33 to the position above the corresponding pipe. After the pipe is cleaned, the drying mechanism 3 can dry the disinfected and cleaned pipe. When the drive component 22 stops rotating, the hydraulic component 21 drives the top cover 23 to move down. With the cooperation of the first wedge block 33 and the second wedge block 34, the first wedge block 33 moves down when the top cover 23 moves down. The first wedge block 33 presses against the second wedge block 34. The second wedge block 34 drives the rotating drum 25 to rotate a short distance, so that the pipe held by the first clamp 51 and the second clamp 52 on the rotating drum 25 is aligned with the air jet hole 35. When the drying mechanism 3 is drying, the gas sprayed from the air jet hole 35 can directly pass through the inside of the pipe, thereby accelerating the air flow rate inside the pipe and speeding up the drying efficiency.
[0041] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by the present invention. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. A medical equipment pipeline sterilizer, comprising a housing (1), characterized in that, The housing (1) is provided with a transmission mechanism (2), and the transmission mechanism (2) is provided with two clamping mechanisms (5), which are used to clamp both ends of the pipe; the transmission mechanism (2) is provided with a limit mechanism (4), which is located between the two clamping mechanisms (5) and is used to limit the movement of the pipe; the transmission mechanism (2) is provided with an adjustment mechanism (6), which is used to adjust the position of the two clamping mechanisms (5), and when the adjustment mechanism (6) adjusts the clamping mechanism, it drives the limit mechanism (4) to limit the pipe; The transmission mechanism (2) includes a rotating cylinder (25) rotatably disposed inside the housing (1), and a driving member (22) is connected to the rotating cylinder (25), the driving member (22) being used to drive rotation; Hydraulic components (21) are provided on both sides of the housing (1). A top cover (23) is connected to the telescopic end of the hydraulic component (21). A connection port (24) is provided on the top cover (23). The connection port (24) is used for inputting and discharging disinfectant water. The rotating drum (25) is provided with a plurality of sliding grooves (26), which are inclined along the surface of the rotating drum (25); The clamping mechanism (5) includes a pressure relief component and a clamping component. The clamping component is used to clamp the end of the pipe, and the pressure relief component is used to increase the clamping force of the clamping component on the pipe. The clamping assembly includes a first clamping body (51) and a second clamping body (52). The first clamping body (51) and the second clamping body (52) are closed to clamp the pipe. The first clamping body (51) and the second clamping body (52) are movably connected by a pin (513). A support rod (510) is slidably arranged on the slide groove (26). A retaining ring (54) is arranged on the support rod (510). A pin (513) is arranged on the outer wall of the retaining ring (54). The pressure relief assembly includes a stabilizing sleeve (511) connected to a support rod (510). A fixing rod (512) is provided on the stabilizing sleeve (511). A flow guide (58) is provided on the fixing rod (512) and fitted onto the stabilizing sleeve (511). A rod groove (57) is provided on the flow guide (58). A pulling rod (515) is provided inside the stabilizing sleeve (511). A second elastic element (516) is provided on the pulling rod (515). The elastic element (516) is used to push the pull rod (515) to reset; the end of the pull rod (515) is provided with a bolt (59), and a connecting rod (56) is provided on the bolt (59). The connecting rod (56) passes through the inside of the rod groove (57). The end of the connecting rod (56) is rotatably connected to the first clamp (51). Rotating the pull rod (515) drives the connecting rod (56) to move. The connecting rod (56) pulls the first clamp (51) to rotate around the pin (513). The pressure relief assembly also includes a slide rod (514) movably connected to the end of the pull rod (515). A push plate (55) is provided at the end of the slide rod (514). The push plate (55) is movably connected to the retaining ring (54). A protrusion (53) is provided at the end of the second clamp (52). When the push plate (55) moves, it squeezes the protrusion (53). The protrusion (53) rotates around the pin (513) toward the second clamp (52).
2. The medical equipment pipeline disinfection machine according to claim 1, characterized in that, The limiting mechanism (4) includes a support rod (41) disposed in the middle of the slide (26), and a limiting frame (42) is provided at the end of the support rod (41). The limiting frame (42) is used to place the pipe, and a limiting component for limiting the movement of the pipe is provided on the limiting frame (42).
3. A medical equipment pipeline disinfection machine according to claim 2, characterized in that, The limiting mechanism (4) further includes a limiting rod (45) disposed on the limiting frame (42). The limiting rod (45) is used to press the pipe located on the limiting frame (42). A movable rod (43) is connected to the limiting rod (45). The movable rod (43) is telescopically disposed on the limiting frame (42). A first elastic element (46) is disposed on the limiting frame (42). The first elastic element (46) is used to push the movable rod (43) to reset. A pull rope (44) is disposed at the end of the movable rod (43). The pull rope (44) is used to pull the movable rod (43) to move.
4. A medical equipment pipeline disinfection machine according to claim 3, characterized in that, The adjusting mechanism (6) includes a fastening rod (62) provided on the rotating drum (25). A fastening button (61) is provided on the fastening rod (62). Driving the fastening button (61) to rotate will drive the fastening rod (62) to rotate. A transmission wheel (63) is provided on the fastening rod (62). An upper rotating plate (64) and a lower rotating plate (65) that mesh with the transmission wheel (63) are provided on the circumference of the transmission wheel (63). Transmission teeth (66) are provided on the upper rotating plate (64) and the lower rotating plate (65). When the transmission wheel (63) rotates, it will drive the upper rotating plate (64) and the lower rotating plate (65) to rotate synchronously in opposite directions. A pull rod (67) is provided on the outer surface of the upper rotating plate (64) and the lower rotating plate (65). The pull rod (67) is movably connected to the end of the support rod (510).
5. A medical equipment pipeline disinfection machine according to claim 4, characterized in that, The pull rope (44) is connected to the inner side of the upper rotating plate (64) or the lower rotating plate (65), and the pull rope (44) is pulled when the upper rotating plate (64) or the lower rotating plate (65) rotates.
6. A medical equipment pipeline disinfection machine according to claim 5, characterized in that, The top cover (23) is provided with a drying mechanism (3), which is used to dry the cleaned pipe; The air drying mechanism (3) includes a fan (31) mounted on a top cover (23). A connecting pipe (37) is provided at the bottom of the fan (31). An annular pipe (36) is connected to the connecting pipe (37). An air jet hole (35) is provided on the annular pipe (36). The air jet hole (35) corresponds to the clamped pipe. An inner ring (32) is provided on the rotating drum (25). A first wedge block (33) is provided on the inner ring (32). A second wedge block (34) is provided on the top cover (23). The second wedge block (34) moves down to drive the first wedge block (33) to move. The air jet hole (35) moves with the first wedge block (33) to the top of the pipe.
Citation Information
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