Dual-Lumen Occlusion Balloon Catheter and Method of Use
20240041466 ยท 2024-02-08
Inventors
Cpc classification
A61M2025/0039
HUMAN NECESSITIES
A61M2025/1061
HUMAN NECESSITIES
A61M2025/1077
HUMAN NECESSITIES
International classification
Abstract
The present disclosure provides double-lumen closure balloon catheter, including an inner tube and an outer tube. A distal end of the inner tube extends from a distal end of the outer tube, the inner tube is provided at its distal end with a tubular hydrophobic tip through which air passes, a cavity of the hydrophobic tip is in communication with a cavity of the inner tube, the outer tube is provided at its distal end with an expandable or shrinkable balloon, a proximal end of the balloon is hermetically coupled to the distal end of the outer tube, a distal end of the balloon is hermetically coupled to the hydrophobic tip, and a channel in communication with an inner cavity of the balloon is arranged between the inner tube and the outer tube. The present disclosure further provides a using method thereof. As compared with the related art, the liquid is injected into the channel so as to push air in the inner cavity of the balloon and the channel to the hydrophobic tip and then discharge air in the cavity of the hydrophobic tip through the wall of the hydrophobic tip. As a result, it is able to prevent the balloon from being damaged, and facilitate the operation, thereby to reduce the time for the surgery.
Claims
1. A double-lumen closure balloon catheter, comprising an inner tube, and an outer tube sleeved onto the inner tube and arranged coaxially with the inner tube, a catheter holder being arranged at a proximal end of the catheter, wherein a distal end of the inner tube extends from a distal end of the outer tube, the inner tube is provided at its distal end with a tubular hydrophobic tip through which air passes, a cavity of the hydrophobic tip is in communication with a cavity of the inner tube, the outer tube is provided at its distal end with an expandable or shrinkable balloon, a proximal end of the balloon is hermetically coupled to the distal end of the outer tube, a distal end of the balloon is hermetically coupled to the hydrophobic tip, a channel in communication with an inner cavity of the balloon is arranged between the inner tube and the outer tube, and after a liquid is injected into the channel, air in the inner cavity of the balloon and the channel is pushed to the hydrophobic tip and discharged from the cavity of the hydrophobic tip through a wall of the hydrophobic tip.
2. The double-lumen closure balloon catheter according to claim 1, wherein the hydrophobic tip is made of a waterproof, air-permeable film.
3. The double-lumen closure balloon catheter according to claim 1, wherein the waterproof, air-permeable film is made of expanded polytetrafluoroethylene.
4. The double-lumen closure balloon catheter according to claim 3, wherein the wall of the hydrophobic tip has a thickness of 0.005 mm to 0.2 mm.
5. The double-lumen closure balloon catheter according to claim 1, wherein a first metallic ring is tightly sleeved at a joint between the balloon and the hydrophobic tip.
6. The double-lumen closure balloon catheter according to claim 5, wherein a second metallic ring is tightly sleeved at a joint between the hydrophobic tip and the inner tube.
7. The double-lumen closure balloon catheter according to claim 1, wherein a second metallic ring is tightly sleeved at a joint between the hydrophobic tip and the inner tube.
8. The double-lumen closure balloon catheter according to claim 1, wherein the liquid is injected into the channel at a pressure smaller than 14.7 psi.
9. A method for using the double-lumen closure balloon catheter according to claim 1, comprising: discharging air in the inner cavity of the balloon and the channel in vitro before surgery; and injecting a filling medium into the channel during the surgery so as to fill up the balloon with the filling medium, wherein the discharging air in the inner cavity of the balloon and the channel in vitro before surgery comprises enabling the hydrophobic tip to face up, enabling an injector filled with a liquid to be coupled to the proximal end of the outer tube, and injecting the liquid into the channel through the injector, so that the liquid and air are pushed into the inner cavity of the balloon and air at the distal end of the balloon is discharged from the cavity of the hydrophobic tip through the wall of the hydrophobic tip.
10. The method according to claim 9, wherein the filling medium is injected into the channel during the surgery at a pressure smaller than 14.7 psi.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION
[0021] The present disclosure will be described hereinafter in conjunction with the drawings and embodiments.
[0022] In the embodiments of the present disclosure, the term distal end refers to an end away from an operator, and the term proximal end refers to an end close to the operator.
[0023] As shown in
[0024] As shown in
[0025] In a possible embodiment of the present disclosure, the catheter holder 6 is a Y-shaped solid of revolution, and it includes a first taper 61 and a second taper 62. The first taper 61 is straight and has a cone-shaped cavity. A bottom end of the cone-shaped cavity faces the proximal end of the first taper 61 to serve as a locking taper, and the proximal end of the first taper 61 is coupled to a Luer taper to form a guide wire cavity. A distal end of the first taper 61 is in communication with the cavity of the inner tube 3. The second taper 62 is oblique, a distal end of the second taper 62 serves as a locking taper, and a proximal end of the second taper 62 is coupled to a Luer taper to form a liquid injection cavity. The second taper 62 is in communication with the channel 5. The stress-relieving tube 7 is a tubular solid of revolution, and it is sleeved onto the proximal end of the outer tube 4 and coupled to the distal end of the catheter holder 5, so as to improve the strength at a joint between the catheter holder and the catheter, thereby to prevent the catheter from being bent at the proximal end.
[0026] In the embodiments of the present disclosure, the hydrophobic tip 1 is made of a waterproof, air-permeable film, e.g., expanded polytetrafluoroethylene (ePTFE).
[0027] The wall of the hydrophobic tip 1 has a thickness of 0.005 mm to 0.2 mm. Water passes through the wall of the hydrophobic tip 1 when a pressure of water is greater than or equal to 14.7 psi. When the pressure is smaller than 14.7 psi, air, rather than water, is allowed to pass through the wall of the hydrophobic tip 1. In the embodiments of the present disclosure, the liquid is injected into the channel 5 at a pressure smaller than 14.7 psi, so as to prevent the liquid from entering arteries.
[0028] As shown in
[0029] The present disclosure further provides in some embodiments a method for using the above-mentioned double-lumen closure balloon catheter, which includes: discharging air in the inner cavity of the balloon and the channel in vitro before surgery; and injecting a filling medium into the channel during the surgery so as to fill up the balloon with the filling medium. The discharging air in the inner cavity of the balloon and the channel in vitro before surgery includes enabling the hydrophobic tip 1 to face up, enabling an injector filled with a liquid to be coupled to the proximal end of the outer tube 4, and injecting the liquid into the channel 5 through the injector, so that the liquid and air are pushed into the inner cavity of the balloon 2. A density of air is smaller than a density of the liquid, so air is pushed by the liquid to the distal end of the balloon 2, and then discharged from the cavity of the hydrophobic tip 1 through the wall of the hydrophobic tip 1. Because the injection pressure of the liquid is smaller than the pressure under which the liquid is allowed to pass, after the discharging of air, the balloon is filled up with the filling medium (e.g., a mixture of normal saline and a contrast medium) without any leakage.
[0030] According to the embodiments of the present disclosure, the hydrophobic tip with micropores is arranged at the distal end of the inner tube, and the liquid is injected into the channel so as to push air in the inner cavity of the balloon and the channel to the hydrophobic tip and then discharge air in the cavity of the hydrophobic tip through the wall of the hydrophobic tip. As a result, it is able to prevent the balloon from being damaged.
[0031] The above embodiments are for illustrative purposes only, but the present disclosure is not limited thereto. Obviously, a person skilled in the art may make further modifications and improvements without departing from the spirit of the present disclosure, and these modifications and improvements shall also fall within the scope of the present disclosure.