A drainage tube for monitoring abdominal cavity pressure

By designing a suction assembly to prevent fluid from entering the airbag and a drive assembly that can adjust the rebound speed, the problems of airbag corrosion and operation difficulty are solved, and the efficient and controllable operation of the drainage tube is achieved.

CN119701111BActive Publication Date: 2025-08-26YANGZHOU FIRST PEOPLES HOSPITAL
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Patent Information

Application Number
CN202510213397.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-26
Publication Date
2025-08-26
Estimated Expiration
2045-02-26

AI Technical Summary

Technical Problem

In the existing drainage tube used to monitor abdominal pressure, fluid accumulation is easily sucked into the airbag and the airbag rebound speed cannot be adjusted, which increases the difficulty of medical care and reduces work efficiency.

Method used

A drainage tube including a suction assembly and a driving assembly is designed. The suction assembly prevents fluid from entering the airbag through structures such as air pressure cover, extrusion cover, valve plate and barrier block, and adjusts the airbag rebound speed through the driving assembly to achieve flexible control.

Benefits of technology

Prevent fluid accumulation from entering the airbag, avoid airbag corrosion, extend service life, and adjust the airbag rebound speed according to actual conditions to improve drainage operation efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of medical devices, and discloses a drainage tube for monitoring abdominal cavity pressure, including a suction assembly, including a suction piece, including an air pressure hood, an extrusion hood, a connecting tube, a valve plate, a transmission tube, and a blocking block. The extrusion hood is sleeved on the outside of the air pressure hood, the connecting tube is fixed to the top of the extrusion hood, and the valve plate is hinged inside the connecting tube. The beneficial effects of the present invention are: when the effusion is sucked out, the effusion can be prevented from entering the airbag, thereby preventing the effusion from entering the airbag, avoiding corrosion of the airbag material by chemical substances, maintaining the integrity of the airbag, extending the service life of the airbag, and thus reducing medical costs. The airbag rebound speed can be adjusted according to actual usage conditions, and medical staff can adjust the airbag rebound speed according to the amount and nature of the patient's effusion, so that the drainage process can be accurately controlled, operational errors can be reduced, and the efficiency of a single drainage operation can be improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of medical instruments, in particular to a drainage tube for monitoring abdominal cavity pressure. Background Art

[0002] During surgery, an abdominal drainage tube can drain the fluid in the abdominal cavity out of the body. Placing an abdominal drainage tube after surgery can drain bleeding and exudate from the surgical area, preventing these fluids from accumulating in the abdominal cavity and causing infection. For intra-abdominal infectious diseases, the drainage tube can drain pus, reduce inflammatory reactions, and help patients recover. The drainage tube used to monitor abdominal pressure is a slender medical silicone tube with side holes. There is a pressure sensor near the top of the tube. When placed in the abdominal cavity, the pressure acts on the sensor to change its electrical properties. The signal is converted into a digital display through a wire connected to an external monitor. During surgery, abdominal pressure can be monitored in real time to avoid injury. After surgery, it can help medical staff detect abnormal abdominal pressure changes in time to adjust treatment. One end of the drainage tube is connected to the patient's abdominal cavity to drain the fluid in the abdominal cavity, and the other end is connected to a collection bottle to collect the drained fluid, making it convenient for medical staff to observe the amount, color and properties of the fluid. etc., in order to monitor the condition of the patient's abdominal cavity, a hand-pinch air bag is set at one end of the bottle. When the air bag is squeezed, the air inside it is discharged, the air pressure inside the bottle is reduced, and negative pressure is formed. The drainage tube is connected to the patient's abdominal cavity and the bottle. The accumulated fluid in the patient's abdominal cavity will be sucked into the bottle along the drainage tube under the action of the external atmospheric pressure. When the air bag in the prior art is sucking, the accumulated fluid in the patient's body will also be sucked into the air bag. The entry of the accumulated fluid into the air bag will damage the internal structure of the air bag. The air bag is made of rubber-like elastic material. The chemical substances in the accumulated fluid will corrode the air bag material, causing the air bag to be damaged, leaking, etc., and the air bag rebound speed cannot be adjusted. Since medical staff need to flexibly adjust the drainage operation according to the condition and physical condition of different patients, the air bag rebound speed is fixed, and medical staff cannot optimize the operation according to the actual drainage situation, which increases the difficulty of medical operation and reduces work efficiency. Summary of the Invention

[0003] The purpose of this section is to summarize some aspects of the embodiments of the present invention and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and the abstract and title of this application to avoid obscuring the purpose of this section, the abstract and the title of the invention, and such simplifications or omissions should not be used to limit the scope of the present invention.

[0004] In view of the above problems and / or the problems existing in existing drainage tubes for monitoring abdominal cavity pressure, the present invention is proposed.

[0005] Therefore, the problem to be solved by the present invention is that the existing airbags used to absorb fluid accumulated in the patient's body have many disadvantages. On the one hand, the accumulated fluid is easily sucked into the airbag, and the chemical substances contained in it will corrode the airbag made of rubber elastic material, causing it to break and leak. On the other hand, the rebound speed of the airbag cannot be adjusted, and it is difficult for medical staff to flexibly optimize the drainage operation according to the patient's condition and physical condition, which increases the difficulty of operation and reduces work efficiency.

[0006] To solve the above technical problems, the present invention provides the following technical solutions: a drainage tube for monitoring abdominal pressure, comprising a suction assembly, a suction piece, an air pressure hood, an extrusion hood, a connecting tube, a valve plate, a transmission tube, and a blocking block, wherein the extrusion hood is sleeved on the outside of the air pressure hood, the connecting tube is fixed to the top of the extrusion hood, the valve plate is hinged inside the connecting tube, the transmission tube is plugged into one side of the extrusion hood, the transmission tube and the extrusion hood are in communication, and the blocking block is disposed inside the transmission tube;

[0007] A driving assembly is arranged on the extrusion cover and includes a driving member, including a driving plate, a connecting plate, a pulley, a paddle plate, a movable plate, a slide bar, a friction plate and an extrusion frame. The driving plate is fixed to the bottom of the extrusion cover, the connecting plate is fixed to one side of the driving plate, the pulley is arranged on one side of the connecting plate, the pulley and the connecting plate are rotatably connected through a bearing, the paddle plate is rotatably connected to one side of the pulley through a rotating shaft, the movable plate is hinged to one side of the driving plate, the slide bar is fixed to one end of the movable plate, the friction plate is located on one side of the slide bar, the extrusion frame is located on the other side of the slide bar, and the slide bar is slidably connected in the extrusion frame.

[0008] As a preferred solution of the drainage tube for monitoring abdominal pressure described in the present invention, the suction component also includes a connecting piece, which is arranged on the extrusion cover, and a first spring is arranged in the extrusion cover, the first spring is fixed to the bottom of the connecting tube, a support frame is fixed to the top of the connecting tube, a torsion spring is fixed on one side of the valve plate, and the torsion spring is fixed to the inner wall of the connecting tube.

[0009] As a preferred solution of the drainage tube for monitoring abdominal pressure described in the present invention, wherein: a support tube is provided on the outside of the transmission tube, the support tube is fixed to one side of the connecting tube, an internal tube is fixed inside the transmission tube, the internal tube is provided on the outside of the blocking block, the blocking block and the internal tube are movably connected, a second spring is fixed on one side of the blocking block, and the second spring is fixed to the inner wall of the internal tube.

[0010] As a preferred solution of the drainage tube for monitoring abdominal pressure described in the present invention, the driving assembly further comprises a limiter, which is arranged on the dial plate, a connecting block is fixed on one side of the dial plate, a limiter block is arranged inside the connecting block, the limiter block and the connecting block are movably connected, a third spring is fixed on one side of the limiter block, and the third spring is fixed to the inner wall of the connecting block.

[0011] As a preferred solution of the drainage tube for monitoring abdominal pressure described in the present invention, a limiting plate is provided on one side of the limiting block, the limiting plate is fixed to one side of the support frame, a clamping plate is fixed on the top of the limiting block, an inclined panel is provided on one side of the clamping plate, and the inclined panel is fixed to one side of the connecting block.

[0012] As a preferred solution of the drainage tube for monitoring abdominal pressure described in the present invention, wherein: a guide block is fixed on one side of the movable plate, a positioning block is provided on the outer side of the guide block, the positioning block is fixed to one side of the movable plate, a movable bar is fixed on one side of the extrusion frame, a connecting sleeve is provided on the outer side of the movable bar, the movable bar and the connecting sleeve are movably connected, a fourth spring is fixed on one side of the movable bar, the fourth spring is fixed to the inner wall of the connecting sleeve, and the connecting sleeve is fixed in the support frame.

[0013] As a preferred solution of the drainage tube for monitoring abdominal pressure described in the present invention, the driving assembly further comprises a pressing member, which is arranged on the extrusion frame, an extrusion bar is provided on one side of the extrusion frame, the extrusion bar is plugged into one side of the support frame, the extrusion bar and the support frame are movably connected, a guide bar is fixed on one side of the extrusion bar, a guide plate is provided on the outer side of the guide bar, the guide bar and the guide plate are movably connected, a positioning frame is provided on the outer side of the guide plate, and the guide plate is slidably connected to the positioning frame.

[0014] As a preferred solution of the drainage tube for monitoring abdominal pressure described in the present invention, wherein: an extrusion disk is provided on the outside of the extrusion strip, a fifth spring is fixed to the bottom of the extrusion disk, the fifth spring is fixed in the positioning frame, a sixth spring is fixed on one side of the guide plate, a support strip is fixed at one end of the sixth spring, the support strip is fixed to the inner wall of the positioning frame, the guide plate is provided on the outside of the support strip, and the guide plate and the support strip are movably connected.

[0015] As a preferred solution of the drainage tube for monitoring abdominal pressure described in the present invention, it also includes a main body component, which is arranged on the connecting tube, including a storage bottle and a drainage tube body, the storage bottle is fixed to the top of the connecting tube, the drainage tube body is inserted into the top of the storage bottle, and the transmission tube is fixed to one side of the drainage tube body.

[0016] As a preferred solution of the drainage tube for monitoring abdominal cavity pressure described in the present invention, a bevel mask is fixed to one end of the drainage tube body.

[0017] The present invention has the beneficial effects of preventing fluid from entering the airbag during aspiration, thereby preventing chemical corrosion of the airbag material, maintaining the integrity of the airbag, extending the airbag's service life, and thus reducing medical costs. Furthermore, the airbag's rebound speed can be adjusted based on actual usage. Medical personnel can adjust the airbag's rebound speed based on the amount and nature of the patient's fluid accumulation, thereby precisely controlling the drainage process, reducing operational errors, and improving the efficiency of a single drainage operation. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. Those skilled in the art can also derive other drawings based on these drawings without inventive effort. Among them:

[0019] Figure 1 This is a diagram of the overall structure of a drainage tube used to monitor abdominal pressure.

[0020] Figure 2 This is a cross-sectional diagram of the overall structure of a drainage tube used to monitor abdominal pressure.

[0021] Figure 3 This is a cross-sectional structural diagram of the connecting tube of the drainage tube used to monitor abdominal pressure.

[0022] Figure 4 Drainage tube for monitoring abdominal pressure Figure 3 A partial enlarged structural diagram of point A in the middle.

[0023] Figure 5 Diagram of the valve plate structure of a drainage tube used to monitor abdominal pressure.

[0024] Figure 6 A diagram showing the structure of a support frame for a drainage tube used to monitor abdominal pressure.

[0025] Figure 7 This is a diagram of the cardboard structure of the drainage tube used to monitor abdominal pressure.

[0026] Figure 8 Diagram of the friction plate structure of a drainage tube used to monitor abdominal pressure.

[0027] Figure 9 Drainage tube for monitoring abdominal pressure Figure 8 A partial enlarged structural diagram of point B in the middle.

[0028] Figure 10 Diagram of the movable plate structure of the drainage tube used to monitor abdominal pressure.

[0029] Figure 11 Diagram of the extruded frame structure of a drainage tube used to monitor abdominal pressure.

[0030] Figure 12 This is a diagram of the sixth spring structure of a drainage tube used to monitor abdominal pressure.

[0031] Figure 13 Diagram of the squeeze bar structure of a drainage tube used to monitor abdominal pressure.

[0032] Figure 14 Diagram of the guide bar structure of a drainage tube used to monitor abdominal pressure.

[0033] In the figure: 200 suction assembly; 300 driving assembly; 100 main assembly; 201 suction member; 201a air pressure cover; 201b extrusion cover; 201c connecting pipe; 201d valve plate; 201e transmission pipe; 201f blocking block; 101 storage bottle; 102 drainage tube body; 301 driving member; 301a driving plate; 301b connecting plate; 301c pulley; 301d dial plate; 301e movable plate; 301f slide bar; 301g friction plate; 301h extrusion frame; 202b support frame; 202 connecting member; 202a first spring; 202c torsion spring; 20 2d supporting tube; 202e built-in tube; 202f second spring; 302 limiting piece; 302a connecting block; 302b limiting block; 302c third spring; 302d limiting plate; 302e clamping plate; 302f inclined plate; 302g guide block; 302h positioning block; 302i moving bar; 302j connecting sleeve; 302k fourth spring; 303 pressing piece; 303a extrusion bar; 303b guide bar; 303c guide plate; 303d positioning frame; 303e extrusion disk; 303f fifth spring; 303g sixth spring; 303h supporting bar; 103 inclined cover. DETAILED DESCRIPTION

[0034] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific embodiments of the present invention are described in detail below with reference to the accompanying drawings.

[0035] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art may make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0036] Secondly, the term "one embodiment" or "embodiment" herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in various places throughout this specification does not necessarily refer to the same embodiment, nor does it refer to a separate or selective embodiment that is mutually exclusive of other embodiments.

[0037] Example 1

[0038] Reference Figures 2 to 14 , which is the first embodiment of the present invention, provides a drainage tube for monitoring abdominal cavity pressure. The drainage tube for monitoring abdominal cavity pressure includes a suction component 200, a drive component 300 and a main body component 100. The three can prevent the accumulated fluid from entering the airbag when the accumulated fluid is absorbed, and the airbag rebound speed can be adjusted according to actual usage.

[0039] The suction assembly 200 includes a suction part 201, including an air pressure cover 201a, an extrusion cover 201b, a connecting pipe 201c, a valve plate 201d, a transmission pipe 201e and a blocking block 201f. The extrusion cover 201b is sleeved on the outside of the air pressure cover 201a, the connecting pipe 201c is fixed to the top of the extrusion cover 201b, the valve plate 201d is hinged to the connecting pipe 201c, the transmission pipe 201e is inserted into one side of the extrusion cover 201b, the transmission pipe 201e and the extrusion cover 201b are connected, and the blocking block 201f is arranged in the transmission pipe 201e.

[0040] The connecting tube 201c is connected to the storage bottle 101. When the squeezing cover 201b is squeezed, the air pressure cover 201a can be driven to move and squeeze to generate negative air pressure. At this time, the valve plate 201d can be opened. At the same time, the gas can be blocked by the setting of the blocking block 201f to prevent the gas from leaking from the transmission tube 201e. Then, when the squeezing stops, the valve plate 201d will be closed. At this time, the drainage tube body 102 is connected to the patient to absorb the accumulated fluid in the patient's body through the rebound of the air pressure cover 201a and the squeezing cover 201b. When the two rebound, the valve plate 201d is closed, and the gas will be transmitted from the transmission tube 201e. At this time, the blocking block 201f will be squeezed to move it, and then the transmission tube 201e will be opened. 01e, the gas is transmitted to the air pressure mask 201a, causing the air pressure mask 201a to rebound, and the accumulated fluid in the patient's body will flow into the storage bottle 101 by gravity, and the gas will be transmitted to the air pressure mask 201a through the transmission tube 201e. The transmission tube 201e is connected to the drainage tube body 102. Since the transmission port of the transmission tube 201e is facing downward, the accumulated fluid will not be transmitted from the transmission tube 201e, and a sloped baffle is provided in the transmission tube 201e to prevent the accumulated fluid from flowing from the transmission tube 201e. When the air pressure mask 201a returns to its original position, the gas transmission in the transmission tube 201e will stop, and then the blocking block 201f will return to its original position to block the transmission tube 201e again for the next use.

[0041] The driving assembly 300 is arranged on the extrusion cover 201b, and includes a driving member 301, including a driving plate 301a, a connecting plate 301b, a pulley 301c, a dial plate 301d, a movable plate 301e, a slide bar 301f, a friction plate 301g and an extrusion frame 301h. The driving plate 301a is fixed to the bottom of the extrusion cover 201b, the connecting plate 301b is fixed to one side of the driving plate 301a, and the pulley 301c is arranged on the connecting plate 301d. 1b side, the pulley 301c and the connecting plate 301b are rotatably connected through a bearing, the dial plate 301d is rotatably connected to one side of the pulley 301c through a rotating shaft, the movable plate 301e is hinged to one side of the driving plate 301a, the slide 301f is fixed to one end of the movable plate 301e, the friction plate 301g is located on one side of the slide 301f, and the extrusion frame 301h is located on the other side of the slide 301f, and the slide 301f is slidably connected in the extrusion frame 301h.

[0042] The support frame 202b is provided with a slide groove corresponding to the pulley 301c, and the pulley 301c slides in the slide groove. When the extrusion cover 201b needs to be moved, the dial plate 301d is moved. The movement of the dial plate 301d can drive the pulley 301c to move, and the pulley 301c drives the connecting plate 301b to move. The movement of the connecting plate 301b drives the driving plate 301a to move. At this time, the extrusion cover 201b can be driven to move and squeeze it. When the pulley 301c moves, it will rotate in the slide groove to support the connecting plate 301b. After the dial plate 301d is moved, the extrusion cover 201b will be squeezed.

[0043] Then the extrusion frame 301h is moved, and the movement of the extrusion frame 301h drives the slider 301f to move. By moving the slider 301f to contact the friction plate 301g and then releasing the paddle 301d, the extrusion cover 201b returns to its original position and drives the movable plate 301e to move. The movement of the movable plate 301e drives the slider 301f to move on one side of the friction plate 301g. By moving the slider 301f to different degrees of fit with the friction plate 301g, the rebound speed of the extrusion cover 201b can be adjusted.

[0044] Example 2

[0045] Reference Figures 2 to 14 , which is the second embodiment of the present invention, and is based on the previous embodiment.

[0046] Specifically, the suction assembly 200 also includes a connecting part 202, which is arranged on the extrusion cover 201b. A first spring 202a is arranged in the extrusion cover 201b. The first spring 202a is fixed to the bottom of the connecting pipe 201c. A support frame 202b is fixed to the top of the connecting pipe 201c. A torsion spring 202c is fixed to one side of the valve plate 201d, and the torsion spring 202c is fixed to the inner wall of the connecting pipe 201c.

[0047] When the extrusion cover 201b is pressed, an extrusion force can be applied to the first spring 202a, and the valve plate 201d can be opened. The opening of the valve plate 201d can apply a twisting force to the torsion spring 202c. When the extrusion cover 201b is stopped, the rotation force of the torsion spring 202c can drive the valve plate 201d to return to its original position to close it. When the extrusion cover 201b is released, the rebound force of the first spring 202a can drive the extrusion cover 201b to return to its original position. The support frame 202b can support the connecting pipe 201c to prevent the connecting pipe 201c from deflecting, and the storage bottle 101 is located in the support frame 202b.

[0048] Specifically, a support tube 202d is sleeved on the outside of the transmission tube 201e, and the support tube 202d is fixed to one side of the connecting tube 201c. An internal tube 202e is fixed inside the transmission tube 201e, and the internal tube 202e is sleeved on the outside of the blocking block 201f. The blocking block 201f and the internal tube 202e are movably connected. A second spring 202f is fixed on one side of the blocking block 201f, and the second spring 202f is fixed to the inner wall of the internal tube 202e.

[0049] The support tube 202d is used to support the transmission tube 201e to prevent the transmission tube 201e from deflecting. One end of the blocking block 201f is set as an inclined surface, and the built-in tube 202e is set as an inclined surface. When the extrusion cover 201b is pressed, the gas will enter the built-in tube 202e, and then the blocking block 201f can block the gas, so that the gas is transmitted from the connecting tube 201c. When the accumulated liquid is sucked to make the gas reflux, the valve plate 201d is closed, causing the connecting tube 201c to be closed, and the gas will be transmitted from the transmission tube 201e. When transmitting from the transmission tube 201e, the blocking block 201f can be squeezed to move it. The movement of the blocking block 201f can apply an extrusion force to the second spring 202f. The blocking block 201f moves and separates from the inclined surface of the built-in tube 202e. At this time, the gas can flow from the transmission tube 201e. The transmission tube 201e is connected to the extrusion cover 201b, and the gas will be directly transmitted to the extrusion cover 201b. The accumulated liquid can drip into the storage bottle 101 due to gravity. When the extrusion cover 201b returns to its original position completely, the gas in the transmission tube 201e stops transmitting. At this time, the extrusion of the blocking block 201f can be released, and then the rebound force of the second spring 202f can drive the blocking block 201f to return to its original position for next use.

[0050] Specifically, the driving assembly 300 also includes a limit member 302, which is arranged on the dial plate 301d. A connecting block 302a is fixed on one side of the dial plate 301d. A limit block 302b is arranged in the connecting block 302a. The limit block 302b and the connecting block 302a are movably connected. A third spring 302c is fixed on one side of the limit block 302b, and the third spring 302c is fixed to the inner wall of the connecting block 302a.

[0051] When the extrusion cover 201b is extruded by the toggle plate 301d, the connecting block 302a can be driven to move, and the movement of the connecting block 302a can drive the limiting block 302b to move. At this time, the setting of the limiting block 302b can limit the connecting block 302a to prevent the extrusion cover 201b from returning to its original position. When the extrusion cover 201b needs to be returned to its original position, the limiting block 302b can be moved. At this time, the limiting of the connecting block 302a can be released by the movement of the limiting block 302b, and then the extrusion cover 201b can return to its original position. When the limiting block 302b moves, the third spring 302c can be applied to squeeze the connecting block 302a. When the connecting block 302a needs to be limited again, the rebound force of the third spring 302c can drive the limiting block 302b to return to its original position to limit the connecting block 302a again.

[0052] Specifically, a limiting plate 302d is provided on one side of the limiting block 302b, and the limiting plate 302d is fixed to one side of the support frame 202b. A clamping plate 302e is fixed on the top of the limiting block 302b, and an inclined panel 302f is provided on one side of the clamping plate 302e. The inclined panel 302f is fixed to one side of the connecting block 302a.

[0053] When the limit block 302b needs to be returned to its original position, the card plate 302e is moved to engage with the inclined plate 302f, and the limit block 302b is then driven back by the rebound force of the third spring 302c.

[0054] Specifically, a guide block 302g is fixed on one side of the movable plate 301e, a positioning block 302h is sleeved on the outer side of the guide block 302g, the positioning block 302h is fixed to one side of the movable plate 301e, a moving bar 302i is fixed on one side of the extrusion frame 301h, a connecting sleeve 302j is sleeved on the outer side of the moving bar 302i, the moving bar 302i and the connecting sleeve 302j are movably connected, a fourth spring 302k is fixed on one side of the moving bar 302i, the fourth spring 302k is fixed to the inner wall of the connecting sleeve 302j, and the connecting sleeve 302j is fixed in the support frame 202b.

[0055] When the extrusion frame 301h moves and drives the slide bar 301f to move until it contacts the friction plate 301g, it drives the moving bar 302i to move. The movement of the moving bar 302i can apply a pulling force to the fourth spring 302k. When the moving bar 302i moves, it can move within the connecting sleeve 302j. At this time, the moving bar 302i can be supported to prevent the moving bar 302i from deviating when moving. When it is necessary to separate the slide bar 301f from the friction plate 301g, the fourth spring 302k rebounds. The force can drive the slide bar 301f to return to its original position, and when the movable plate 301e moves, it can drive the guide block 302g to move. A sliding groove corresponding to the guide block 302g is provided on the support frame 202b. The guide block 302g slides in the sliding groove. At this time, the movable plate 301e can be supported to prevent the movable plate 301e from deflecting during movement. It is fixed to one side of the movable plate 301e through the connecting sleeve 302j, and the movable plate 301e can be supported by the setting of the connecting sleeve 302j.

[0056] Example 3

[0057] Reference Figures 1 to 12 , which is the third embodiment of the present invention, is based on the first two embodiments.

[0058] Specifically, the driving assembly 300 also includes a pressing member 303, which is arranged on the extrusion frame 301h. An extrusion bar 303a is provided on one side of the extrusion frame 301h. The extrusion bar 303a is inserted into one side of the support frame 202b. The extrusion bar 303a and the support frame 202b are movably connected. A guide bar 303b is fixed on one side of the extrusion bar 303a. A guide plate 303c is provided on the outside of the guide bar 303b. The guide bar 303b and the guide plate 303c are movably connected. A positioning frame 303d is provided on the outside of the guide plate 303c. The guide plate 303c is slidably connected to the positioning frame 303d.

[0059] There are four groups of pressing parts 303, all of which are set on the extrusion frame 301h. The lengths of the extrusion bars 303a are different. By moving different extrusion bars 303a to one side of the extrusion frame 301h and squeezing it, the extrusion frame 301h can be moved to different positions. At this time, the sliding bar 301f and the friction plate 301g can be fitted to different degrees.

[0060] An inclined groove and a fixed groove are respectively provided on the guide plate 303c. The fixed groove is located at the bottom of the inclined groove. When the extrusion bar 303a is squeezed, the guide bar 303b can be driven to move. At this time, the guide bar 303b can slide in the inclined groove to squeeze the guide plate 303c to make it move. When the guide bar 303b moves to the bottom of the inclined groove and contacts the fixed groove, the guide plate 303c returns to its original position, so that the fixed groove and the guide bar 303b can be engaged, thereby limiting the extrusion bar 303a.

[0061] When another extrusion bar 303a is pressed, the guide plate 303c will move again to drive the fixing groove to separate from the guide bar 303b. At this time, the pressed extrusion bar 303a will return to its original position, and then the other extrusion bar 303a will be limited by the same principle as the previous extrusion bar 303a.

[0062] There is no fixing groove on one side of the fourth extrusion strip 303a. When the fourth extrusion strip 303a is pressed, the pressed extrusion strip 303a can return to its original position. Then, when the fourth extrusion strip 303a is released, the fourth extrusion strip 303a will return to its original position, thereby completing the return of all the extrusion strips 303a to their original positions.

[0063] Specifically, an extrusion plate 303e is sleeved on the outside of the extrusion bar 303a, a fifth spring 303f is fixed to the bottom of the extrusion plate 303e, the fifth spring 303f is fixed in the positioning frame 303d, a sixth spring 303g is fixed on one side of the guide plate 303c, a support bar 303h is fixed at one end of the sixth spring 303g, the support bar 303h is fixed to the inner wall of the positioning frame 303d, the guide plate 303c is sleeved on the outside of the support bar 303h, and the guide plate 303c and the support bar 303h are movably connected.

[0064] When the extrusion bar 303a is pressed, the extrusion plate 303e can be driven to move. At this time, the movement of the extrusion plate 303e can apply an extrusion force to the fifth spring 303f. After the limit of the extrusion bar 303a is released, the rebound force of the fifth spring 303f can drive the extrusion bar 303a to return to its original position. When the guide plate 303c moves, it can apply a pulling force to the sixth spring 303g. The rebound force of the sixth spring 303g can drive the guide plate 303c to return to its original position. The support bar 303h is used to support the sixth spring 303g to prevent the sixth spring 303g from deflecting.

[0065] Specifically, it also includes a main body component 100, which is arranged on the connecting tube 201c, including a storage bottle 101 and a drainage tube body 102. The storage bottle 101 is fixed to the top of the connecting tube 201c, the drainage tube body 102 is inserted into the top of the storage bottle 101, and the transmission tube 201e is fixed to one side of the drainage tube body 102.

[0066] The drainage tube body 102 has a side hole, and a pressure sensor is provided near the top inside the drainage tube body 102. When placed in the abdominal cavity, pressure acts on the sensor to change its electrical properties. The signal is converted into a digital display by connecting to an external monitor through a wire. During surgery, abdominal pressure can be monitored in real time to avoid injury. After surgery, it can help medical staff to promptly detect abnormal abdominal pressure changes to adjust treatment. One end of the drainage tube body 102 is connected to the patient's abdominal cavity, and the storage bottle 101 is used to collect the drained fluid, making it convenient for medical staff to observe the amount, color and properties of the fluid, so as to monitor the condition of the patient's abdominal cavity.

[0067] Specifically, a bevel cover 103 is fixed to one end of the drainage tube body 102 .

[0068] The inclined mask 103 can be provided to drain the accumulated liquid so that the accumulated liquid can drip into the storage bottle 101 .

[0069] When in use, first squeeze the extrusion cover 201b, and when squeezing the extrusion cover 201b, the air pressure cover 201a can be driven to move and squeeze to generate negative air pressure, and when pressing the extrusion cover 201b, an extrusion force can be applied to the first spring 202a, and then the valve plate 201d can be opened. When the valve plate 201d is opened, a twisting force can be applied to the torsion spring 202c, and at the same time, the setting of the blocking block 201f can block the gas to prevent the gas from leaking from the transmission pipe 201e. After negative air pressure is generated, in order to prevent the rebound force of the first spring 202a from driving the extrusion cover 201b to return to its original position, the connection block 302a can be limited in one direction by engaging the limit block 302b with the limit plate 302d to prevent the extrusion cover 201b from returning to its original position after the extrusion cover 201b is released. After the extrusion is completed, the pressure on the extrusion cover 201b is stopped, and the force of the rotation of the torsion spring 202c can drive the valve plate 201d to return to its original position to close it. At this time, the drainage tube body 102 can be connected to the patient.

[0070] When the guide bar 303b moves to the bottom of the inclined groove and contacts the fixed groove, the rebound force of the sixth spring 303g drives the guide plate 303c to return to its original position, so that the fixed groove and the guide bar 303b can be engaged, and then the extrusion bar 303a can be limited to move to the specified position.

[0071] The extrusion bar 303a can move to squeeze the extrusion frame 301h to make it move, and the movement of the extrusion frame 301h drives the slide bar 301f to move. By moving the slide bar 301f to contact the friction plate 301g, the slide bar 301f can be moved by pressing the extrusion bars 303a of different lengths. The different degrees of fit with the friction plate 301g can adjust the rebound speed of the extrusion cover 201b. After the pressing is completed, the card plate 302e can be moved to drive the limit block 302b to move. When the limit block 302b is moved to separate from the limit plate 302d, in order to prevent the rebound force of the third spring 302c from driving the limit block 302b to return to its original position, the limit block 302b can be limited by moving the card plate 302e to engage with the inclined plate 302f, and then the extrusion cover 201b can rebound.

[0072] When the extrusion cover 201b rebounds, the gas can flow into the storage bottle 101 by gravity, and the gas will be transmitted to the air pressure cover 201a through the transmission tube 201e. The transmission tube 201e is connected to the drainage tube body 102. Since the transmission port of the transmission tube 201e is downward, the accumulated liquid will not be transmitted from the transmission tube 201e. At this time, the accumulated liquid can drip into the storage bottle 101. When the accumulated liquid is sucked to make the gas flow back, the valve plate 201d is closed, causing the connecting pipe 201c to be closed, and the gas will be transmitted from the transmission tube 201e. When transmitting from the transmission tube 201e, the blocking block 201f can be squeezed to move it. The blocking block 201f 1f movement can apply an extrusion force to the second spring 202f, and the blocking block 201f moves and separates from the inclined surface of the built-in tube 202e. At this time, the gas can flow from the transmission tube 201e, and the transmission tube 201e is connected to the extrusion cover 201b, and the gas will be directly transmitted to the extrusion cover 201b. The accumulated liquid can drip into the storage bottle 101 due to gravity. When the extrusion cover 201b completely returns to its original position, the gas in the transmission tube 201e stops transmitting. At this time, the extrusion of the blocking block 201f can be released, and then the rebound force of the second spring 202f can drive the blocking block 201f to return to its original position, thereby completing the absorption of the accumulated liquid.

[0073] After the absorption is completed, the card plate 302e is first pushed to separate from the inclined plate 302f, and then the rebound force of the third spring 302c can drive the limit block 302b to return to its original position, and then the fourth extrusion bar 303a is pressed. When pressing the fourth extrusion bar 303a, the pressed extrusion bar 303a can be returned to its original position, and then the fourth extrusion bar 303a is released. At this time, the fourth extrusion bar 303a will return to its original position, thereby completing the return of all extrusion bars 303a to their original positions.

[0074] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.

Claims

1. A drainage tube for monitoring abdominal pressure, characterized by: include, A suction assembly (200) comprises a suction member (201), comprising an air pressure hood (201a), an extrusion hood (201b), a connecting pipe (201c), a valve plate (201d), a transmission pipe (201e), and a blocking block (201f), wherein the extrusion hood (201b) is sleeved on the outside of the air pressure hood (201a), the connecting pipe (201c) is fixed to the top of the extrusion hood (201b), the valve plate (201d) is hinged inside the connecting pipe (201c), the transmission pipe (201e) is plugged into one side of the extrusion hood (201b), the transmission pipe (201e) and the extrusion hood (201b) are in communication, and the blocking block (201f) is arranged inside the transmission pipe (201e); A driving assembly (300) is arranged on the extrusion cover (201b), comprising a driving member (301), including a driving plate (301a), a connecting plate (301b), a pulley (301c), a dial plate (301d), a movable plate (301e), a slide bar (301f), a friction plate (301g) and an extrusion frame (301h), wherein the driving plate (301a) is fixed to the bottom of the extrusion cover (201b), the connecting plate (301b) is fixed to one side of the driving plate (301a), and the pulley (301c) is arranged on one side of the connecting plate (301b). The pulley (301c) and the connecting plate (301b) are rotatably connected via a bearing, the shifting plate (301d) is rotatably connected to one side of the pulley (301c) via a rotating shaft, the movable plate (301e) is hinged to one side of the driving plate (301a), the slide bar (301f) is fixed to one end of the movable plate (301e), the friction plate (301g) is located on one side of the slide bar (301f), the extrusion frame (301h) is located on the other side of the slide bar (301f), and the slide bar (301f) is slidably connected within the extrusion frame (301h); The suction assembly (200) further comprises a connecting member (202) which is arranged on the extrusion cover (201b); a first spring (202a) is arranged in the extrusion cover (201b); the first spring (202a) is fixed to the bottom of the connecting pipe (201c); a support frame (202b) is fixed to the top of the connecting pipe (201c); a torsion spring (202c) is fixed to one side of the valve plate (201d); and the torsion spring (202c) is fixed to the inner wall of the connecting pipe (201c); A support tube (202d) is sleeved on the outside of the transmission tube (201e), the support tube (202d) is fixed to one side of the connecting tube (201c), an internal tube (202e) is fixed inside the transmission tube (201e), the internal tube (202e) is sleeved on the outside of the blocking block (201f), the blocking block (201f) and the internal tube (202e) are movably connected, a second spring (202f) is fixed on one side of the blocking block (201f), and the second spring (202f) is fixed to the inner wall of the internal tube (202e); The driving assembly (300) further comprises a limiting member (302) arranged on the dial plate (301d); a connecting block (302a) is fixed on one side of the dial plate (301d); a limiting block (302b) is arranged in the connecting block (302a); the limiting block (302b) and the connecting block (302a) are movably connected; a third spring (302c) is fixed on one side of the limiting block (302b); and the third spring (302c) is fixed to the inner wall of the connecting block (302a); A limiting plate (302d) is provided on one side of the limiting block (302b), the limiting plate (302d) is fixed to one side of the support frame (202b), a clamping plate (302e) is fixed on the top of the limiting block (302b), an inclined panel (302f) is provided on one side of the clamping plate (302e), and the inclined panel (302f) is fixed to one side of the connecting block (302a); A guide block (302g) is fixed to one side of the movable plate (301e), a positioning block (302h) is sleeved on the outer side of the guide block (302g), the positioning block (302h) is fixed to one side of the movable plate (301e), a moving bar (302i) is fixed to one side of the extrusion frame (301h), a connecting sleeve (302j) is sleeved on the outer side of the moving bar (302i), the moving bar (302i) and the connecting sleeve (302j) are movably connected, a fourth spring (302k) is fixed to one side of the moving bar (302i), the fourth spring (302k) is fixed to the inner wall of the connecting sleeve (302j), and the connecting sleeve (302j) is fixed in the support frame (202b); The driving assembly (300) further comprises a pressing member (303) which is arranged on the extrusion frame (301h); an extrusion bar (303a) is provided on one side of the extrusion frame (301h); the extrusion bar (303a) is plugged into one side of the support frame (202b); the extrusion bar (303a) and the support frame (202b) are movably connected; a guide bar (303b) is fixed on one side of the extrusion bar (303a); a guide plate (303c) is sleeved on the outer side of the guide bar (303b); the guide bar (303b) and the guide plate (303c) are movably connected; a positioning frame (303d) is sleeved on the outer side of the guide plate (303c); the guide plate (303c) and the positioning frame (303d) are slidably connected; An extrusion plate (303e) is sleeved on the outside of the extrusion bar (303a), a fifth spring (303f) is fixed to the bottom of the extrusion plate (303e), the fifth spring (303f) is fixed in the positioning frame (303d), a sixth spring (303g) is fixed on one side of the guide plate (303c), a support bar (303h) is fixed on one end of the sixth spring (303g), the support bar (303h) is fixed to the inner wall of the positioning frame (303d), the guide plate (303c) is sleeved on the outside of the support bar (303h), and the guide plate (303c) and the support bar (303h) are movably connected.

2. The drainage tube for monitoring abdominal pressure according to claim 1, wherein: It also includes a main body component (100), which is arranged on the connecting tube (201c) and includes a storage bottle (101) and a drainage tube body (102), wherein the storage bottle (101) is fixed to the top of the connecting tube (201c), the drainage tube body (102) is plugged into the top of the storage bottle (101), and the transmission tube (201e) is fixed to one side of the drainage tube body (102).

3. The drainage tube for monitoring abdominal pressure according to claim 2, wherein: A bevel cover (103) is fixed to one end of the drainage tube body (102).

Citation Information

Patent Citations

  • Negative pressure suction type tumor effusion extraction device

    CN114177385A

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    CN114366366A

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    CN210078412U