Abstract:
Articulation devices, systems, methods for articulation, and methods for fabricating articulation structures will often include simple balloon arrays, with inflation of the balloons interacting with elongate skeletal support structures so as to locally alter articulation of the skeleton. The balloons can be mounted to a substrate of the array, with the substrate having channels that can direct inflation fluid to a subset of the balloons. The articulation array structure may be formed using simple planar 3-D printing, extrusion, and/or micromachining techniques. The skeleton may comprise a simple helical coil, and the array can be used to locally deflect or elongate an axis of the coil under control of a processor. Inflation fluid may be directed to the balloons from an inflation fluid reservoir of an inflation system, with the inflation system preferably including valves controlled by the processor. The articulation structures can be employed in minimally invasive medical catheter systems, and also for industrial robotics, for supporting imaging systems, for entertainment and consumer products, and the like.
Abstract:
Die Anmeldung betrifft ein Ballonkatheter (10) mit einem expandierbaren Ballon (12), einem in dem Ballon (12) angeordneten Innenschaft (13), und mindestens einem Marker (15, 16, 31, 32), wobei der mindestens eine Marker (15, 16, 31, 32) ein röntgensichtbares Material aufweist. Um eine hohe Röntgensichtbarkeit unter Vermeidung von scharfen Kanten an dem Röntgenmarker zu erzielen und eine exakte Positionierung des Röntgenmarkers zu erreichen, ist das röntgensichtbare Material als Beschichtung auf und/oder in einem Polymerträger (14, 30) ausgebildet und der Polymerträger (14, 30) auf dem Innenschaft (13) befestigt. Es wird ferner ein einfaches und kostengünstiges Verfahren zum Herstellen eines derartigen Ballonkatheters (10) beschrieben.
Abstract:
[Problem] Provided is a balloon catheter in which detachment of a balloon from an inner shaft can be prevented without using a conventional sleeve and heat-shrinkable tube. [Solution] The balloon catheter 10 comprises the tip 60, the tip 60 comprising the tip proximal end portion 64 covering the outer periphery 24 of the distal end 22A of the balloon 20A. Further, the distal end 22A of the balloon 20A is joined so as to be sandwiched between the inner shaft 50A and the tip proximal end portion 64 of the tip 60.
Abstract:
Various embodiments concern a guide catheter for delivery of an implantable lead within the coronary vein. Such a guide catheter can comprise a tubular body having a main lumen and at least one preformed bend. The tubular body can comprise a liner defining an inner surface, braiding circumferentially surrounding the liner, a jacket covering the braiding and defining an exterior surface of the tubular body, and a plurality of inflation tubes embedded within the jacket. The guide catheter can include a balloon mounted on the tubular body, each of the plurality of inflation tubes in communication with the balloon. The guide catheter can further include a hub providing access to the main lumen, the hub comprising a first port for introduction of contrast media into the main lumen and a second port in communication with the plurality of inflation tubes.
Abstract:
To provide a balloon catheter and an apparatus and method for manufacturing the balloon catheter, whereby the degree of welding can be appropriately adjusted and the balloon catheter can be formed so as to have a desired surface profile suitable for various uses including medical use. With a shaft 14 inserted through a catheter tube 30a inserted into an end portion 28b of a balloon and also with a pressure tube 32a fitted around a welding section where the end portion 28b of the balloon 28 is lapped over the catheter tube 30a, the shaft 14 is heated by emitting laser light from a laser radiation unit 8 to the welding section while the shaft 14 is rotated by a chuck, to weld the welding section.
Abstract:
The present invention relates to a balloon catheter that includes a balloon, and a balloon inside tube which passes through an inner lumen of the balloon and includes an inner layer, an outer layer, and a support body. In the balloon catheter, the balloon, the inner layer, and the outer layer are formed of thermoplastic polymers that can be heat-welded to each other. A thermoplastic polymer forming the inner layer has a higher melting point than a thermoplastic polymer forming the outer layer. In the present invention, since the inner layer and the outer layer are formed of thermoplastic polymers that can be heat-welded to each other, delamination of the inner layer of the balloon inside tube can be prevented.
Abstract:
Balloon catheter and methods for making and using balloon catheters are disclosed. An example balloon catheter may include a proximal shaft. A midshaft may be attached to the proximal shaft. The midshaft may have an outer wall. A distal shaft may be attached to the midshaft. A balloon may be coupled to the distal shaft. An inflation lumen may be defined that extends from the proximal shaft, through the midshaft, and into the distal shaft. The inflation lumen may be in fluid communication with the balloon. A support member may be attached to the outer wall of the midshaft.
Abstract:
Systems, apparatus and methods are disclosed for medical treatment comprising bone access and dilatation and/or cavity creation or enlargement using a narrow gauge, preferably 11-gauge or smaller, cannula wherein a catheter/expandable element assembly meeting medical protocols is designed, adapted and fabricated to fit through the interior of the associated 11-gauge or smaller cannula.
Abstract:
One embodiment of the present invention discloses a balloon catheter employing a reinforced, co-axial, duel lumen design. In certain embodiments, at least one of the lumens is formed of a multilayer, tubular element in which one of the layers functions, in part, to provide radial reinforcement to the tubular element.
Abstract:
One embodiment of the present invention discloses a balloon catheter employing a reinforced, co-axial, duel lumen design. In certain embodiments, at least one of the lumens is formed of a multilayer, tubular element in which one of the layers functions, in part, to provide radial reinforcement to the tubular element.