A cardiovascular interventional device

By pre-filling the puncture catheter with liquid medicine and using the balloon to expand and puncture the balloon with a pointed portion, the problem of liquid medicine loss during cardiovascular interventional surgery is solved, precise control and rapid diffusion of the liquid medicine are achieved, and the treatment effect is improved.

CN119523703BActive Publication Date: 2025-09-30THE SECOND AFFILIATED HOSPITAL ARMY MEDICAL UNIV
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Patent Information

Application Number
CN202411857353.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-17
Publication Date
2025-09-30
Estimated Expiration
2044-12-17

AI Technical Summary

Technical Problem

In the prior art, during cardiovascular interventional surgery, a large amount of liquid medicine is lost when it reaches the surgical site, making it difficult to control the amount of liquid medicine and affecting the treatment effect.

Method used

The puncture catheter is pre-filled with liquid medicine, and the air balloon is inflated by inputting gas through the air pump. The piston head pushes the liquid medicine to the vascular surgery site, and the pointed part punctures the air balloon to diffuse the liquid medicine, thereby achieving precise control and diffusion of the liquid medicine.

Benefits of technology

It achieves precise control and rapid diffusion of the drug solution at the vascular surgery site, improves the treatment effect, reduces the loss of the drug solution at non-surgical sites, and simplifies the operation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a cardiovascular intervention device, which belongs to the technical field of cardiovascular surgical instruments. The puncture catheter is pre-filled with liquid medicine. As the air pump inputs gas, the mesh stent is stretched and the contracted blood vessel position is expanded. As the air pump continues to inflate, the piston head extends the pointed part from the inflation port of the puncture catheter, punctures the end of the airbag, and the liquid medicine inside the airbag flows out and diffuses at the vascular surgical site. This device can be used to quickly diffuse immediate-acting drugs such as blood vessel recovery and inhibition of endothelial hyperplasia at the surgical site while performing cardiovascular dilation surgery. Compared with applying the drug directly to the mesh stent, this device can input more liquid medicine at one time, and the amount of liquid medicine is controllable. When the liquid medicine reaches the surgical site, it will not be consumed in other positions of the blood vessel, which is more conducive to the treatment of the patient's vascular surgical site. This intervention device is simple to operate, does not affect the progress of the dilation surgery, and has a better treatment effect.
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Description

Technical Field

[0001] The present invention belongs to the technical field of cardiovascular surgical instruments, and in particular relates to a cardiovascular intervention device. Background Art

[0002] Cardiovascular interventional surgery, also known as cardiovascular stent placement or coronary artery stenting, is an interventional treatment primarily used to treat coronary artery disease. This technique involves inserting a catheter into the coronary artery and placing a metal stent within the narrowed vessel wall to dilate the vessel and restore blood flow.

[0003] During conventional surgeries, doctors administer medications that are beneficial to the recovery of the surgical site, such as immunosuppressants, anti-proliferative drugs, and anti-inflammatory drugs, by injection or application onto a metal stent. This medication application method results in significant loss of medication when the medication reaches the surgical site, making it difficult to control the amount of medication. Summary of the Invention

[0004] In view of this, an object of the present invention is to provide a cardiovascular intervention device, which improves the ability to control the drug solution at the vascular surgery site by providing a pointed portion for puncturing the airbag and a puncture catheter that can be filled with drug solution.

[0005] In order to achieve the above object, the present invention provides the following technical solutions:

[0006] The present invention includes a sheath, an air pump and a puncture catheter, which is connected to the air pump and coaxially penetrates the sheath. The end of the puncture catheter is wrapped with a layer of airbag, the outside of the airbag is wrapped with a layer of mesh support, the end of the puncture catheter is provided with an inflation port for inputting gas into the airbag, and the airbag is connected to the side of the end of the puncture catheter; a piston head is provided in a sealing and sliding manner in the puncture catheter, and the piston head is provided with a pointed portion facing the inflation port, and the catheter pipe between the piston head and the inflation port is filled with liquid medicine. When the deflated airbag reaches the vascular surgery position, the airbag is inflated, and the piston head pushes the liquid medicine and gas in the puncture catheter to expand the airbag, the mesh support supports the blood vessel, and the liquid medicine is filled in the airbag. As the piston head continues to move, the pointed portion breaks the airbag, and the liquid medicine diffuses into the vascular surgery position.

[0007] Furthermore, the inflation port is provided with a stop platform inwardly for blocking the piston head, and the pointed portion can extend from the stop platform.

[0008] Furthermore, the pointed portion includes several elastic steel wires, the middle sections of the elastic steel wires are bent, the head ends of several of the elastic steel wires are fixed to the middle of the piston head, and the tail ends are fixed together to form a pointed head, and the several elastic steel wires are distributed around the axis of the piston head, and the elastic steel wires are arched outward relative to the axis of the piston head. When the pointed portion is in the puncture catheter, the arched part of the elastic steel wire is against the inner side of the puncture catheter. As the pointed portion extends from the inflation port, the elastic steel wire is in an open state.

[0009] Furthermore, a retaining ring is provided at the end of the puncture catheter, and the retaining ring is located at the rear end of the airbag. A degradable line is connected between the retaining ring and the end of the mesh stent. As the mesh stent completes its support and the puncture catheter is withdrawn, the airbag passes through the retaining ring and is compressed, and the medicine is squeezed out of the airbag.

[0010] Furthermore, the retaining ring includes several arc-shaped strips, an arc-shaped elastic strip is connected between the middle section of the arc-shaped strip and the side of the puncture catheter, and pressure plates are fixed at both ends of the arc-shaped strip, one of the pressure plates is provided with a pin, and the other pressure plate is provided with a pin hole. Several of the arc-shaped strips are connected by end-to-end sliding to form a ring structure, and a ring is provided at the end of the degradable line. The end of the degradable line is clamped by two pressure plates and is sleeved on the pin, and the end of the puncture catheter is provided with a conical head. When the puncture catheter is retracted, the conical head supports the retaining ring to make the degradable line fall off the retaining ring.

[0011] The beneficial effects of the present invention are:

[0012] The present invention pre-fills the puncture catheter with liquid medicine. As the air pump inputs gas, the gas is pressed into the airbag along the puncture catheter, and the liquid medicine in the puncture catheter is also pressed into the airbag. After the airbag expands, the mesh stent can be stretched and the contracted blood vessel position can be expanded. At this time, the construction of the mesh stent is completed. As the air pump continues to inflate, the piston head extends the pointed part from the inflation port of the puncture catheter, puncturing the end of the airbag. The liquid medicine inside the airbag then flows out and diffuses at the vascular surgical site. This device can be used to perform cardiovascular dilation surgery while facilitating the rapid diffusion of immediate-acting drugs such as blood vessel recovery and inhibition of endothelial hyperplasia at the surgical site. Compared with applying the drug directly to the mesh stent, this device can input more liquid medicine at one time, and the amount of liquid medicine is controllable. When the liquid medicine reaches the surgical site, it will not be consumed in other parts of the blood vessel, which is more conducive to the treatment of the patient's vascular surgical site. This interventional device is simple to operate, does not affect the progress of the dilation surgery, and has a better treatment effect.

[0013] Other advantages, objectives and features of the present invention will be described in the following description and will be apparent to those skilled in the art to some extent, or those skilled in the art can be taught from the practice of the present invention. The objectives and other advantages of the present invention can be realized and obtained through the following description. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] In order to make the purpose, technical solutions and beneficial effects of the present invention more clear, the present invention provides the following drawings for illustration:

[0015] Figure 1 This is an overall schematic diagram of an interventional device according to an embodiment of the present invention;

[0016] Figure 2 This is a schematic diagram of the device state after the airbag is inflated according to an embodiment of the present invention;

[0017] Figure 3 This is a cross-sectional view of the device after the airbag is inflated according to an embodiment of the present invention;

[0018] Figure 4 This is a schematic diagram of the expanded tip portion of an embodiment of the present invention;

[0019] Figure 5 This is a schematic diagram of a pointed portion puncturing an airbag according to an embodiment of the present invention;

[0020] Figure 6 This is a schematic diagram of the overall device after the airbag is inflated according to an embodiment of the present invention;

[0021] Figure 7 for Figure 6 A magnified schematic diagram of point A;

[0022] Figure 8 for Figure 7 Cross-sectional view at point B;

[0023] The markings in the accompanying drawings are as follows: 1. Sheath; 2. Air pump; 3. Puncture catheter; 31. Inflation port; 32. Stop platform; 33. Stop ring; 331. Arc strip; 332. Arc elastic strip; 333. Pressure plate; 334. Pin; 335. Pin hole; 34. Conical head; 4. Air bag; 5. Mesh bracket; 6. Piston head; 7. Pointed part; 71. Elastic steel wire; 8. Medical solution; 9. Degradable thread; 91. Loop. DETAILED DESCRIPTION

[0024] The present invention discloses a cardiovascular intervention device, such as Figure 1As shown, it includes a sheath 1, an air pump 2 and a puncture catheter 3. The sheath 1 is used to be inserted into the artery position of the human wrist or thigh root. The puncture catheter 3 is connected to the air pump 2. The puncture catheter 3 coaxially penetrates the sheath 1 and extends into the human heart through the artery. The end of the puncture catheter 3 is wrapped with a layer of air bag 4. The outside of the air bag 4 is wrapped with a layer of mesh stent 5. The end of the puncture catheter 3 is provided with an inflation port 31 for inputting gas into the air bag 4. The air bag 4 is connected to the side of the end of the puncture catheter 3; as shown Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 As shown, a piston head 6 is provided in a sealed and sliding manner inside the puncture catheter 3, and a pointed portion 7 is provided on the piston head 6 facing the inflation port 31. The catheter tube between the piston head 6 and the inflation port 31 is filled with liquid medicine 8. When the contracted airbag 4 reaches the vascular surgery position, the airbag 4 is inflated, and the piston head 6 pushes the liquid medicine 8 and gas in the puncture catheter 3 to expand the airbag 4. The mesh support 5 supports the blood vessel, and the liquid medicine 8 is filled into the airbag 4. As the piston head 6 continues to move, the pointed portion 7 breaks the airbag 4, and the liquid medicine 8 diffuses into the vascular surgery position.

[0025] This cardiovascular intervention device pre-fills the puncture catheter 3 with liquid medicine 8. As the air pump 2 inputs gas, the gas is pressed into the airbag 4 along the puncture catheter 3, and the liquid medicine 8 in the puncture catheter 3 is also pressed into the airbag 4. After the airbag 4 expands, the mesh stent 5 can be opened and the contracted blood vessel position can be expanded. At this time, the construction of the mesh stent 5 is completed. As the air pump 2 continues to inflate, the piston head 6 extends the pointed part 7 from the inflation port 31 of the puncture catheter 3, puncturing the end of the airbag 4, and the liquid medicine 8 inside the airbag 4 flows out immediately. , diffuse at the vascular surgery site. This device can quickly diffuse immediate-acting drugs such as those that are beneficial to vascular recovery and inhibiting endothelial hyperplasia at the surgery site while performing cardiovascular dilation surgery. Compared with applying the drug directly on the mesh stent 5, this device can input more liquid medicine 8 at a time, and the amount of liquid medicine 8 is controllable. When the liquid medicine 8 reaches the surgery site, it will not be consumed at other locations of the blood vessel, which is more conducive to the treatment of the patient's vascular surgery site. This interventional device is simple to operate, does not affect the progress of the dilation surgery, and has a better treatment effect.

[0026] In a further solution, Figure 4 As shown, the inflation port 31 is provided with a stop 32 inwardly for blocking the piston head 6 , and the pointed portion 7 can extend from the stop 32 .

[0027] This structure can effectively control the final expansion size of the airbag 4 after the airbag 4 is inflated, preventing the airbag 4 from excessively squeezing the blood vessel and causing blood vessel rupture, and through the blocking of the stopper 32, it can prevent the piston head 6 and the pointed portion 7 from falling from the puncture catheter 3 into the blood vessel.

[0028] In a further solution, Figure 4 and Figure 5 As shown, the pointed portion 7 includes four elastic steel wires 71, the middle section of the elastic steel wires 71 is bent, the head ends of the four elastic steel wires 71 are fixed to the middle of the piston head 6, and the tail ends are fixed together to form a pointed head. The four elastic steel wires 71 are distributed around the axis of the piston head 6, and the elastic steel wires 71 are arched outward relative to the axis of the piston head 6. When the pointed portion 7 is in the puncture catheter 3, the arched part of the elastic steel wire 71 is against the inner side of the puncture catheter 3. As the pointed portion 7 extends from the inflation port 31, the elastic steel wire 71 is in an open state. The free state of the elastic steel wire 71 is shown in FIG. Figure 5 .

[0029] In this structure, the pointed portion 7 is formed into a pointed structure with a cross-shaped cross section by four elastic steel wires 71, and the pointed portion 7 has the ability to elastically expand. It is compressed in the puncture catheter 3 and quickly expands after extending out of the puncture catheter 3. The cross-shaped pointed head composed of the four elastic steel wires 71 can puncture the end of the airbag 4 and open a larger opening, which is conducive to the subsequent outflow and rapid diffusion of the drug solution 8.

[0030] In a further solution, Figure 6 and Figure 7 As shown, the end of the puncture catheter 3 is also provided with a retaining ring 33, and the retaining ring 33 is located at the rear end of the airbag 4. A degradable line 9 is connected between the retaining ring 33 and the end of the mesh bracket 5. As the mesh bracket 5 completes the support and the puncture catheter 3 is withdrawn, the airbag 4 passes through the retaining ring 33 and is compressed, and the drug solution 8 is squeezed out of the airbag 4.

[0031] By setting a retaining ring 33, the airbag 4 can be squeezed, and the retaining ring 33 is controlled at the position of the mesh bracket 5 by the degradable line 9. When the puncture catheter 3 is recovered, the airbag 4 retracts accordingly and is squeezed by the retaining ring 33. The liquid medicine 8 in the airbag 4 can be squeezed out completely and quickly diffused inside the opened mesh bracket 5, which is beneficial for direct drug reception at the surgical site and improves the effect and controllability of the liquid medicine 8. The degradable line 9 and the retaining ring 33 are both made of degradable materials and degrade rapidly after the operation.

[0032] In a further solution, Figure 7 and Figure 8As shown, the retaining ring 33 includes five arc-shaped strips 331, and an arc-shaped elastic strip 332 is connected between the middle section of the arc-shaped strip 331 and the side surface of the puncture catheter 3. Pressure plates 333 are fixed at both ends of the arc-shaped strip 331, one of the pressure plates 333 is provided with a pin 334, and the other pressure plate 333 is provided with a pin hole 335. The five arc-shaped strips 331 are connected by end-to-end sliding to form a ring structure. A ring 91 is provided at the end of the degradable line 9, and the end of the degradable line 9 is clamped by two pressure plates 333 and sleeved on the pin 334. A conical head 34 is provided at the end of the puncture catheter 3. When the puncture catheter 3 is recovered, the conical head 34 props up the retaining ring 33 to make the degradable line 9 fall off the retaining ring 33.

[0033] When the puncture catheter 3 is in the state of being lifted up, the puncture catheter 3 is lifted up and the puncture catheter 3 is in the state of being lifted up.

[0034] Finally, it should be noted that the above preferred embodiments are only used to illustrate the technical solutions of the present invention and are not limiting. Although the present invention has been described in detail through the above preferred embodiments, those skilled in the art should understand that various changes can be made in form and details without departing from the scope defined by the claims of the present invention.

Claims

1. A cardiovascular intervention device, comprising a sheath (1), an air pump (2) and a puncture catheter (3), wherein the puncture catheter (3) is connected to the air pump (2), the puncture catheter (3) coaxially penetrates the sheath (1), the end of the puncture catheter (3) is wrapped with a layer of air bag (4), and the outer side of the air bag (4) is wrapped with a layer of mesh stent (5), characterized in that: The end of the puncture catheter (3) is provided with an inflation port (31) for inputting gas into the airbag (4), and the airbag (4) is connected to the end side of the puncture catheter (3); a piston head (6) is provided in a sealed and sliding manner in the puncture catheter (3), and the piston head (6) is provided with a pointed portion (7) facing the inflation port (31). The catheter pipe between the piston head (6) and the inflation port (31) is filled with liquid medicine (8). When the contracted airbag (4) reaches the vascular surgery position, the airbag (4) is inflated, and the piston head (6) pushes the liquid medicine (8) and gas in the puncture catheter (3) to expand the airbag (4). The mesh support (5) supports the blood vessel, and the liquid medicine (8) is filled into the airbag (4). As the piston head (6) continues to move, the pointed portion (7) breaks the airbag (4), and the liquid medicine (8) diffuses into the vascular surgery position.

2. The cardiovascular interventional device according to claim 1, characterized in that: The inflation port (31) is provided with a stopper (32) inwardly for blocking the piston head (6), and the pointed portion (7) can extend from the stopper (32).

3. The cardiovascular interventional device according to claim 2, wherein: The pointed portion (7) includes a plurality of elastic steel wires (71), the middle section of the elastic steel wires (71) is bent, the head ends of the plurality of elastic steel wires (71) are fixed to the middle of the piston head (6), and the tail ends are fixed together to form a pointed head, the plurality of elastic steel wires (71) are distributed around the axis of the piston head (6), and the elastic steel wires (71) are arched outward relative to the axis of the piston head (6). When the pointed portion (7) is in the puncture catheter (3), the arched portion of the elastic steel wire (71) abuts against the inner side of the puncture catheter (3), and as the pointed portion (7) extends from the inflation port (31), the elastic steel wire (71) is in an open state.

4. The cardiovascular interventional device according to claim 3, characterized in that: The end of the puncture catheter (3) is also provided with a retaining ring (33), and the retaining ring (33) is located at the rear end of the airbag (4). A degradable thread (9) is connected between the retaining ring (33) and the end of the mesh stent (5). When the mesh stent (5) completes its support and the puncture catheter (3) is withdrawn, the airbag (4) passes through the retaining ring (33) and is compressed, and the drug solution (8) is squeezed out of the airbag (4).

5. The cardiovascular interventional device according to claim 4, characterized in that: The retaining ring (33) includes a plurality of arcuate strips (331), an arcuate elastic strip (332) is connected between the middle section of the arcuate strip (331) and the side surface of the puncture catheter (3), and pressure plates (333) are fixed at both ends of the arcuate strip (331), one of the pressure plates (333) is provided with a latch (334), and the other pressure plate (333) is provided with a pin hole (335). The plurality of arcuate strips (331) are connected by sliding end to end to form a ring structure, and a ring (91) is provided at the end of the degradable line (9), and the end of the degradable line (9) is clamped by the two pressure plates (333) and sleeved on the latch (334). The end of the puncture catheter (3) is provided with a cone head (34), and when the puncture catheter (3) is recovered, the cone head (34) opens the retaining ring (33) to make the degradable line (9) fall off the retaining ring (33).

Citation Information

Patent Citations

  • Cardiovascular intervention catheter device

    CN108553741A

  • Cardiovascular dilator

    CN210096663U