Improved balloon puncture device

By designing an improved balloon puncture device, increasing the contact area and real-time monitoring function, the problems of unstable fixation of the balloon puncture device and easy rupture of the annular balloon were solved, and the stability and safety of the operation were achieved.

CN223392517UActive Publication Date: 2025-09-30ZHEJIANG PROVINCIAL PEOPLES HOSPITAL
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Patent Information

Application Number
CN202422687489.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-05
Publication Date
2025-09-30
Estimated Expiration
2034-11-05

AI Technical Summary

Technical Problem

In existing balloon puncture devices, the contact area between the pressure ring and the skin outside the abdominal cavity and the annular balloon and the mucosa inside the abdominal cavity is small, resulting in unstable fixation and easy shaking, which affects the accuracy of the operation. In addition, the status of the annular balloon is difficult to monitor in real time and is prone to overfilling or rupture.

Method used

An improved balloon puncture device was designed, which adopts a combined structure of a positioning sleeve and an annular balloon. The annular balloon has an inverted cone shape after inflation, which increases the contact area. It is also equipped with a camera and a pressure sensor to monitor the balloon status in real time to prevent overfilling and rupture.

Benefits of technology

It enhances the fixation stability of the balloon puncture device, reduces shaking, ensures surgical accuracy, avoids secondary injuries, and monitors the balloon status in real time to prevent overfilling and rupture, ensuring smooth operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an improved balloon puncture device. The improved balloon puncture device comprises a puncture part and a sheath tube part which are matched with each other, the sheath tube part comprises a sealing seat and a guide sleeve which is hermetically inserted into the bottom of the sealing seat; the puncture part comprises a puncture rod which is movably inserted into the guide sleeve and a sealing mechanism which is fixed at the upper end of the puncture rod and is matched with the sealing seat; the sheath tube part further comprises a positioning sleeve fixedly arranged outside the guide sleeve in a sleeving manner; the sheathing canal part further comprises a sleeve which is inserted into one side of the upper end of the positioning sleeve in a sealed mode and communicated with the annular air inlet cavity, a one-way valve arranged in the sleeve, and a connector which is inserted into an opening in the end of the sleeve in a sealed mode and communicated with an air inlet of the one-way valve. According to the utility model, the incision is effectively prevented from being expanded, so that secondary injury to a patient is avoided, and accurate operation is ensured; in addition, the state of the annular balloon can be directly observed in real time so as to ensure normal operation, and therefore use is greatly facilitated.
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Description

Technical Field

[0001] The utility model relates to the technical field of abdominal surgery instruments, in particular to an improved balloon puncture device. Background Art

[0002] The balloon puncture device is a commonly used tool in clinical laparoscopic surgery. It is used to establish a channel for surgical instruments to enter the human body and maintain the operating space required for the operation. The sleeve on the current balloon puncture device is provided with a pressure ring and an annular balloon that cooperate with each other to limit the position. The position of the pressure ring can be moved along the axial direction of the sleeve, and the position of the annular balloon remains fixed. When the puncture rod of the balloon puncture device is in place, air can be injected into the annular balloon with the help of a syringe and the airway provided in the balloon puncture device to gradually expand the annular balloon. Then, the position of the pressure ring can be moved to approach the annular balloon until the inner and outer sides of the abdominal cavity are clamped to achieve the purpose of fixing the balloon puncture device.

[0003] However, the outer contours of the pressure ring and the side of the annular balloon close to the abdominal cavity in the existing balloon puncture device are mostly arc-shaped, so only a small area is in contact with the inner or outer side of the abdominal cavity, resulting in a small contact area between the pressure ring and the annular balloon and the corresponding side of the abdominal cavity; at the same time, the arc-shaped structure does not limit the abdominal cavity, causing the pressure ring and the annular balloon to move easily; therefore, after the puncture channel is established, the patient or medical staff will cause the balloon puncture device to shake significantly if they touch the sleeve slightly, which will also cause the incision to expand and cause secondary damage to the patient, and the puncture position will also change, thereby affecting the accurate performance of the operation; in addition, because the annular balloon is located inside the patient's abdominal cavity, medical staff cannot directly and in real time observe the status of the annular balloon. If the annular balloon is not fully filled, the fixation of the balloon puncture device will be more unstable. If the annular balloon is overfilled, it will rupture, resulting in interruption of the operation. The ruptured fragments may remain in the patient's body and cause damage, and it is also difficult to remove. Therefore, it is extremely inconvenient to use and urgently needs to be solved. Utility Model Content

[0004] In view of the current status of the above-mentioned prior art, the technical problem to be solved by the present invention is to provide a device that greatly increases the contact area between the pressure ring and the external skin of the abdominal cavity and the annular balloon and the internal mucosa of the abdominal cavity to limit the abdominal cavity. Even if the puncture channel is accidentally touched by the patient or medical staff after the establishment, only slight shaking will occur, thereby effectively preventing the incision from expanding to avoid secondary injury to the patient. The puncture position will not change, thereby ensuring the accurate performance of the operation. The state of the annular balloon can also be directly and in real time observed with the help of a camera or pressure sensor, thereby quickly fixing the balloon puncture device and preventing the annular balloon from rupturing due to overfilling to ensure the normal performance of the operation, thereby greatly facilitating the use of the improved balloon puncture device.

[0005] The technical solution adopted by the present invention to solve the above technical problems is: an improved balloon puncture device, comprising a puncture portion and a sheath portion that cooperate with each other; the sheath portion comprises a sealing seat and a guide sleeve that is sealed and inserted into the bottom of the sealing seat; the puncture portion comprises a puncture rod that is movably inserted into the guide sleeve and a sealing mechanism that is fixed to the upper end of the puncture rod and cooperates with the sealing seat, characterized in that:

[0006] The sheath portion further comprises a positioning sleeve fixedly sleeved on the outside of the guide sleeve, wherein the outer circumferential surface of the guide sleeve is provided with an circumferentially distributed air inlet groove, and the air inlet groove and the inner wall of the positioning sleeve form an annular air inlet cavity;

[0007] The sheath portion further includes a sleeve sealably plugged into one side of the upper end of the positioning sleeve and communicating with the annular air inlet cavity, a one-way valve disposed in the sleeve, and an interface sealably plugged into an opening at the end of the sleeve and communicating with the air inlet of the one-way valve;

[0008] The sheath portion further includes a positioning mechanism disposed outside the positioning sleeve;

[0009] The positioning mechanism includes a pressing ring which is sleeved on the outside of the positioning sleeve and can slide along the axial direction of the positioning sleeve with damping, and an annular balloon which is sleeved on the outside of the positioning sleeve and located between the pressing ring and the opening at the end of the positioning sleeve, and a flat surface is formed on the side of the pressing ring facing the annular balloon;

[0010] The outer contour of the annular balloon after inflation is an inverted frustum, and the conical outer wall of the annular balloon is arranged toward the opening of the end of the positioning sleeve so that the top outer wall is in a horizontal position and is arranged toward the pressure ring after inflation;

[0011] The upper and lower edges of the inner peripheral opening of the annular balloon are sealed and fixed to the outer peripheral surface of the positioning sleeve;

[0012] The positioning mechanism further comprises a plurality of support rods fixed on the top outer wall of the annular balloon and uniformly arranged at equal angles along the circumferential direction, wherein one end of each support rod close to the positioning sleeve is rotatably connected to the outer circumferential surface of the positioning sleeve;

[0013] A plurality of inflation holes are provided between the outer and inner surfaces of the positioning sleeve, which are evenly distributed at equal angles along the circumferential direction, are interconnected with the annular air inlet cavity, and are located inside the opening of the inner surface of the annular balloon.

[0014] Preferably, a conical convex ring is formed on the outer peripheral surface of the positioning sleeve and is invertedly distributed and located between the annular balloon and the end opening of the positioning sleeve. The top outer diameter of the conical convex ring matches the length of the support rod.

[0015] Preferably, the positioning mechanism further comprises a camera and / or a pressure sensor provided on the positioning sleeve for monitoring the inflation state of the annular balloon.

[0016] Preferably, an annular cavity extending to the inside of the conical convex ring is provided on the inner circumferential surface of the positioning sleeve, and the camera includes at least one, each of which is sealed and embedded between the top outer wall of the conical convex ring and the top inner wall of the annular cavity and is distributed in sequence along the circumferential direction, and the shooting end of each camera is set in the direction of the annular balloon.

[0017] Preferably, the upper end of the positioning sleeve is provided with a first threading hole extending to the inner side of the annular cavity, and at least one branching hole communicating with the annular cavity is provided between the inner wall of the first threading hole and the outer peripheral surface of the positioning sleeve.

[0018] Preferably, a second threading hole is provided between the upper end of the positioning sleeve and the upper inner wall of the air inlet groove, and the pressure sensor is sealed and embedded in the second threading hole at the opening at one end of the air inlet groove, and the detection end of the pressure sensor extends into the interior of the annular air inlet cavity.

[0019] Preferably, the outer peripheral surface of the positioning sleeve is further formed with a plurality of annular ribs which are arranged at equal intervals along the axial direction of the positioning sleeve and are all located between the annular balloon and the sleeve. The pressure ring is interference-fitted outside the plurality of annular ribs to increase the friction resistance between it and the positioning sleeve.

[0020] Preferably, before the annular balloon is inflated, the distance between the end of each support rod away from the positioning sleeve and the outer circumference of the positioning sleeve is the shortest and is not greater than the distance between the top edge of the conical convex ring and the outer circumference of the positioning sleeve.

[0021] Compared with the prior art, the advantages of the present invention are: the bottom of the pressure ring is set to a plane, and the top of the annular balloon is in a horizontal state after it is fully inflated by means of multiple support rods, which can cooperate with the plane to clamp the outer and inner sides of the abdominal cavity respectively, thereby greatly increasing the contact area between the pressure ring and the skin outside the abdominal cavity and the annular balloon and the mucosa inside the abdominal cavity; at the same time, the pressure ring and the annular balloon can also restrain each other to prevent movement, thereby limiting the abdominal cavity; when the puncture channel is established, even if the patient or medical staff touches the positioning sleeve, the balloon puncture device will only shake slightly, which effectively prevents the incision from expanding and causing secondary injury to the patient, and the position of the balloon puncture device will not change, thereby ensuring the accurate performance of the operation; in addition, the state of the annular balloon can be directly and real-time observed by means of a camera or pressure sensor, and inflation can be stopped immediately when the annular balloon is fully filled, thereby quickly fixing the balloon puncture device and preventing the annular balloon from rupturing due to overfilling, thereby ensuring the normal progress of the operation, thereby greatly facilitating use. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a diagram of the exploded structure of the utility model from the upper side;

[0023] Figure 2 This is a structural diagram of the annular balloon of the present invention when it is not inflated;

[0024] Figure 3 This is a front cross-sectional structural diagram of the sheath portion of the present invention;

[0025] Figure 4 This is a cross-sectional structural diagram of the utility model viewed from the direction A;

[0026] Figure 5 This is a partial enlarged structural diagram of the utility model at point B. DETAILED DESCRIPTION

[0027] Unless otherwise defined, technical or scientific terms used in this disclosure should have the ordinary meanings understood by persons of ordinary skill in the art to which this disclosure pertains. The terms "first," "second," and similar expressions used in this disclosure do not denote any order, quantity, or importance; they are simply used to distinguish between different components. Terms such as "include" or "comprising" mean that the element or object preceding the term includes the elements or objects listed after the term, and their equivalents, without excluding other elements or objects. Terms such as "connected" or "connected" are not limited to physical or mechanical connections but may include electrical connections, whether direct or indirect. Terms such as "upper," "lower," "left," and "right" are used solely to indicate relative positional relationships; changes in the absolute position of the described objects may also change the relative positional relationship. The term "and / or" simply describes a relationship between related objects, indicating that three possible relationships exist. For example, "A and / or B" can represent: A alone, A and B simultaneously, or B alone. Furthermore, the character " / " in this document generally indicates an "or" relationship between the related objects.

[0028] In order to keep the following description of the embodiments of the present invention clear and concise, the present invention omits detailed descriptions of known functions and known components.

[0029] like Figures 1 to 4 As shown, an improved balloon puncture device comprises a puncture portion 1 and a sheath portion 2 that cooperate with each other;

[0030] The sheath portion 2 includes a sealing seat 21 and a guide sleeve 22 that is sealingly inserted into the bottom of the sealing seat 21;

[0031] The puncture part 1 includes a puncture rod 12 movably inserted into the guide sleeve 22 and a sealing mechanism 11 fixed to the upper end of the puncture rod 12 and cooperating with the sealing seat 21;

[0032] The sheath portion 2 further includes a positioning sleeve 23 that is sleeved and fixed on the outside of the guide sleeve 22. The outer circumferential surface of the guide sleeve 22 is provided with an circumferentially distributed air inlet groove 221. The air inlet groove 221 and the inner wall of the positioning sleeve 23 form an annular air inlet cavity 27.

[0033] The sheath portion 2 further includes a sleeve 24 that is sealably plugged into one side of the upper end of the positioning sleeve 23 and communicates with the annular air inlet cavity 27, a one-way valve 26 disposed in the sleeve 24, and an interface 25 that is sealably plugged into the end opening of the sleeve 24 and communicates with the air inlet of the one-way valve 26.

[0034] The sheath portion 2 further includes a positioning mechanism 28 disposed outside the positioning sleeve 23;

[0035] The positioning mechanism 28 includes a pressing ring 283 that is interference-fitted onto the outside of the positioning sleeve 23 and can slide along the axial direction of the positioning sleeve 23 with damping, and an annular balloon 282 that is sleeved onto the outside of the positioning sleeve 23 and located between the pressing ring 283 and the end opening of the positioning sleeve 23. The pressing ring 283 is made of a medical elastic material and has a flat surface 2831 formed on one side of the pressing ring 283 facing the annular balloon 282.

[0036] The outer contour of the annular balloon 282 after inflation is an inverted frustum. The conical outer wall of the annular balloon 282 is arranged toward the end opening of the positioning sleeve 23 so that the top outer wall thereof is in a horizontal position and is arranged toward the pressing ring 283 after inflation.

[0037] The upper and lower edges of the inner peripheral opening of the annular balloon 282 are sealed and fixed to the outer peripheral surface of the positioning sleeve 23;

[0038] The positioning mechanism 28 further includes a plurality of support rods 281 fixed to the top outer wall of the annular balloon 282 and uniformly arranged at equal angles along the circumferential direction. One end of each support rod 281 close to the positioning sleeve 23 is rotatably connected to the outer circumferential surface of the positioning sleeve 23.

[0039] A plurality of inflation holes 231 are evenly distributed at equal angles along the circumferential direction between the outer and inner surfaces of the positioning sleeve 23 , are interconnected with the annular air inlet cavity 27 , and are located inside the inner opening of the annular balloon 282 .

[0040] A conical convex ring 232 is formed on the outer peripheral surface of the positioning sleeve 23 and is invertedly distributed and located between the annular balloon 282 and the end opening of the positioning sleeve 23. The top outer diameter of the conical convex ring 232 matches the length of the support rod 281.

[0041] The positioning mechanism 28 further includes a camera 29 and / or a pressure sensor 210 disposed on the positioning sleeve 23 for monitoring the inflation state of the annular balloon 282 .

[0042] An annular cavity 235 extending to the interior of the conical convex ring 232 is provided on the inner circumferential surface of the positioning sleeve 23, and the camera 29 is included in at least one. Each camera 29 is sealed and embedded between the top outer wall of the conical convex ring 232 and the top inner wall of the annular cavity 235 and is distributed in sequence along the circumferential direction. The shooting end of each camera 29 is set in the direction of the annular balloon 282.

[0043] A first threading hole 233 extending to the inner side of the annular cavity 235 is defined at the upper end of the positioning sleeve 23 . At least one branching hole 234 communicating with the annular cavity 235 is defined between the inner wall of the first threading hole 233 and the outer peripheral surface of the positioning sleeve 23 .

[0044] A second threading hole 236 is also provided between the upper end of the positioning sleeve 23 and the upper inner wall of the air inlet groove 221. The pressure sensor 210 is sealed and embedded in the second threading hole 236 at the opening at one end of the air inlet groove 221. The detection end of the pressure sensor 210 extends into the interior of the annular air inlet cavity 27.

[0045] The outer peripheral surface of the positioning sleeve 23 is also formed with multiple annular ribs 237 that are arranged at equal intervals along the axial direction of the positioning sleeve 23 and are all located between the annular balloon 282 and the sleeve 24. The pressure ring 283 is interference-fitted onto the outside of the several annular ribs 237 to increase the friction resistance between it and the positioning sleeve 23.

[0046] A plurality of concentrically arranged annular folds 2821 are formed on the conical outer wall of the annular balloon 282 to allow the annular balloon 282 to be folded in an orderly manner before being inflated.

[0047] Before the annular balloon 282 is inflated, the distance between the end of each support rod 281 away from the positioning sleeve 23 and the outer peripheral surface of the positioning sleeve 23 is the shortest and is no greater than the distance between the top edge of the conical protrusion 232 and the outer peripheral surface of the positioning sleeve 23.

[0048] Directions:

[0049] S1: First, insert the puncture rod 12 into the guide sleeve 22 and detachably fix the bottom of the sealing mechanism 11 to the top of the sealing seat 21. Then, hold the sealing seat 21 and align the end of the puncture rod 12 with the abdominal mark and pierce the abdominal wall to complete the puncture.

[0050] S2: When the puncture rod 12 reaches the predetermined position in the abdominal cavity, the annular balloon 282 is located inside the abdominal cavity. The conical protrusion 232 allows the uninflated annular balloon 282 to be smoothly inserted into the abdominal cavity. Air is injected into the annular air inlet cavity 27 through the interface 25 and the air inlet of the one-way valve 26 using an inflation tool such as a syringe, and then the air is injected into the annular air inlet cavity 27 through each inflation hole 231.

[0051] S3: As the air pressure in the annular balloon 282 increases, the annular balloon 282 gradually expands, and each support rod 281 gradually swings toward the pressure ring 283 as the annular balloon 282 expands. When the annular balloon 282 is fully expanded, the top of the annular balloon 282 reaches a horizontal state, thereby making each support rod 281 also in a horizontal state;

[0052] S4: Establish power and signal connections between each camera 29 and an external display device through corresponding wires. The first wire threading hole 233 and at least one branching hole 234 are used for threading the corresponding wires. Since the shooting end of each camera 29 is set in the direction of the annular balloon 282, when the medical staff inflates the annular balloon 282, each camera 29 can display the expansion state of the annular balloon 282 in real time in the form of a dynamic image through the external display device. When the annular balloon 282 is fully expanded, the medical staff will stop introducing air, thereby preventing the annular balloon 282 from rupturing due to overinflation. In this way, the degree of inflation can be judged according to the deformation amplitude of the annular balloon 282;

[0053] S5: Establish power and signal connections between the pressure sensor 210 and the external pressure measuring equipment through the corresponding wires. The second threading hole 236 is used for the threading of the corresponding wires. Since the pressure in the annular air inlet cavity 27 is equal to the pressure in the annular balloon 282, when the pressure sensor 210 detects that the pressure value in the annular air inlet cavity 27 reaches the specified value, the medical staff will stop introducing air, thereby preventing the annular balloon 282 from rupturing due to overfilling. In this way, the degree of inflation can be judged based on the pressure value of the annular balloon 282.

[0054] S6: Push the pressure ring 283 toward the annular balloon 282, and gradually reduce the distance between the pressure ring 283 and the annular balloon 282, until each support rod 281 and the bottom of the pressure ring 283 are pressed against the inner mucosa and the outer skin of the abdominal cavity respectively. Since the bottom of the pressure ring 283 is provided with a flat surface 2831, the contact area between the bottom of the pressure ring 283 and the outer skin of the abdominal cavity is increased. Since each support rod 281 is in a horizontal state after the annular balloon 282 is fully expanded, the contact area between the top of the annular balloon 282 and the inner mucosa of the abdominal cavity is increased, thereby increasing the stability and firm fixation of the sheath tube 2.

[0055] The utility model provides a flat surface 2831 at the bottom of the pressing ring 283, and makes the top of the annular balloon 282 be in a horizontal state with the help of multiple support rods 281 after it is fully expanded, so that it can cooperate with the flat surface 2831 to clamp the outer and inner sides of the abdominal cavity respectively, thereby greatly increasing the contact area between the pressing ring 283 and the skin outside the abdominal cavity and the annular balloon 282 and the mucosa inside the abdominal cavity; at the same time, the pressing ring 283 and the annular balloon 282 can also restrain each other to avoid movement, thereby playing a limiting role in the abdominal cavity; when the puncture channel is established, the patient or medical staff Even if the positioning sleeve 23 is touched, the balloon puncture device will only shake slightly, which effectively prevents the incision from expanding to avoid secondary injury to the patient, and the puncture position will not change, thereby ensuring the accurate performance of the operation; in addition, the state of the annular balloon 282 can be directly and in real time observed with the help of the camera 29 or the pressure sensor 210, and the inflation can be stopped immediately when the annular balloon 282 is fully filled, so that the balloon puncture device can be quickly fixed and the annular balloon 282 can be prevented from rupturing due to overfilling, thereby ensuring the normal performance of the operation, which greatly facilitates use.

[0056] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.

Claims

1. An improved balloon puncture device, comprising a puncture portion and a sheath portion that cooperate with each other; the sheath portion including a sealing seat and a guide sleeve that is sealingly inserted into the bottom of the sealing seat; the puncture portion including a puncture rod that is movably inserted into the guide sleeve and a sealing mechanism fixed to the upper end of the puncture rod and cooperating with the sealing seat, characterized in that: The sheath portion further comprises a positioning sleeve fixedly sleeved on the outside of the guide sleeve, wherein the outer circumferential surface of the guide sleeve is provided with an circumferentially distributed air inlet groove, and the air inlet groove and the inner wall of the positioning sleeve form an annular air inlet cavity; The sheath portion further includes a sleeve sealably plugged into one side of the upper end of the positioning sleeve and communicating with the annular air inlet cavity, a one-way valve disposed in the sleeve, and an interface sealably plugged into an opening at the end of the sleeve and communicating with the air inlet of the one-way valve; The sheath portion further includes a positioning mechanism disposed outside the positioning sleeve; The positioning mechanism includes a pressing ring which is sleeved on the outside of the positioning sleeve and can slide along the axial direction of the positioning sleeve with damping, and an annular balloon which is sleeved on the outside of the positioning sleeve and located between the pressing ring and the opening at the end of the positioning sleeve, and a flat surface is formed on the side of the pressing ring facing the annular balloon; The outer contour of the annular balloon after inflation is an inverted frustum, and the conical outer wall of the annular balloon is arranged toward the opening of the end of the positioning sleeve so that the top outer wall is in a horizontal position and is arranged toward the pressure ring after inflation; The upper and lower edges of the inner peripheral opening of the annular balloon are sealed and fixed to the outer peripheral surface of the positioning sleeve; The positioning mechanism further comprises a plurality of support rods fixed on the top outer wall of the annular balloon and uniformly arranged at equal angles along the circumferential direction, wherein one end of each support rod close to the positioning sleeve is rotatably connected to the outer circumferential surface of the positioning sleeve; A plurality of inflation holes are provided between the outer and inner surfaces of the positioning sleeve, which are evenly distributed at equal angles along the circumferential direction, are interconnected with the annular air inlet cavity, and are located inside the opening of the inner surface of the annular balloon.

2. The improved balloon puncture device according to claim 1, characterized in that: The outer peripheral surface of the positioning sleeve is also formed with an inverted conical convex ring located between the annular balloon and the end opening of the positioning sleeve. The outer diameter of the top of the conical convex ring matches the length of the support rod.

3. The improved balloon puncture device according to claim 2, characterized in that: The positioning mechanism further includes a camera and / or a pressure sensor disposed on the positioning sleeve for monitoring the inflation state of the annular balloon.

4. The improved balloon puncture device according to claim 3, characterized in that: An annular cavity extending to the inside of the conical convex ring is provided on the inner circumferential surface of the positioning sleeve, and the camera includes at least one. Each camera is sealed and embedded between the top outer wall of the conical convex ring and the top inner wall of the annular cavity and is distributed in sequence along the circumferential direction. The shooting end of each camera is set in the direction of the annular balloon.

5. The improved balloon puncture device according to claim 4, characterized in that: The upper end of the positioning sleeve is provided with a first threading hole extending to the inner side of the annular cavity, and at least one branching hole communicating with the annular cavity is provided between the inner wall of the first threading hole and the outer peripheral surface of the positioning sleeve.

6. The improved balloon puncture device according to claim 3, characterized in that: A second threading hole is provided between the upper end of the positioning sleeve and the upper inner wall of the air inlet groove. The pressure sensor is sealed and embedded in the second threading hole at the opening at one end of the air inlet groove. The detection end of the pressure sensor extends into the interior of the annular air inlet cavity.

7. The improved balloon puncture device according to claim 1, characterized in that: The outer circumferential surface of the positioning sleeve is also formed with multiple annular ribs that are arranged at equal intervals along the axial direction of the positioning sleeve and are all located between the annular balloon and the sleeve. The pressure ring is interference-fitted outside the multiple annular ribs to increase the friction resistance between it and the positioning sleeve.

8. The improved balloon puncture device according to claim 4, characterized in that: Before the annular balloon is inflated, the distance between the end of each support rod away from the positioning sleeve and the outer peripheral surface of the positioning sleeve is the shortest and is not greater than the distance between the top edge of the conical convex ring and the outer peripheral surface of the positioning sleeve.