Patent classifications
A61M60/221
IMPELLER HOUSING FOR AN IMPLANTABLE, VASCULAR SUPPORT SYSTEM
The invention relates to an impeller housing (1) for an implantable, vascular support system (2), at least comprising: an impeller housing body (3) having a first longitudinal portion (4) and a second longitudinal portion (5); at least one holder (8), which is disposed in the first longitudinal portion (4), wherein the holder (8) is configured such that it can hold a bearing (6) for rotatably mounting an impeller (9) in the center of a cross-section of the impeller housing body (3) through which a fluid can flow, at least one opening (7) through which liquid can flow and which is disposed in the second longitudinal portion (5) and in a lateral surface of the impeller housing body (3).
IMPELLER HOUSING FOR AN IMPLANTABLE, VASCULAR SUPPORT SYSTEM
The invention relates to an impeller housing (1) for an implantable, vascular support system (2), at least comprising: an impeller housing body (3) having a first longitudinal portion (4) and a second longitudinal portion (5); at least one holder (8), which is disposed in the first longitudinal portion (4), wherein the holder (8) is configured such that it can hold a bearing (6) for rotatably mounting an impeller (9) in the center of a cross-section of the impeller housing body (3) through which a fluid can flow, at least one opening (7) through which liquid can flow and which is disposed in the second longitudinal portion (5) and in a lateral surface of the impeller housing body (3).
Pump for Support of the Heart
Rotary lobe pump, comprising a pump housing (2, 9, 10) with a substantially cylindrical pump chamber (8) and a rotary lobe as rotor (1) with at least two blades (3) arranged opposite each other or evenly distributed in the circumferential direction and at least one sealing valve (4), characterized in that at least two sealing valves (4a, 4b) arranged opposite one another or uniformly distributed in the circumferential direction are provided, the at least two sealing valves (4a, 4b) being rotatable or pivotable, and an inlet duct (11) to at least two inlet openings (6) into the pump chamber (8) and an outlet duct (12) from at least two outlet openings (7) out of the pump chamber (8) being provided axially in a rotor axial tube (18), extending from the opposite axial ends and separated from one another.
Pump for Support of the Heart
Rotary lobe pump, comprising a pump housing (2, 9, 10) with a substantially cylindrical pump chamber (8) and a rotary lobe as rotor (1) with at least two blades (3) arranged opposite each other or evenly distributed in the circumferential direction and at least one sealing valve (4), characterized in that at least two sealing valves (4a, 4b) arranged opposite one another or uniformly distributed in the circumferential direction are provided, the at least two sealing valves (4a, 4b) being rotatable or pivotable, and an inlet duct (11) to at least two inlet openings (6) into the pump chamber (8) and an outlet duct (12) from at least two outlet openings (7) out of the pump chamber (8) being provided axially in a rotor axial tube (18), extending from the opposite axial ends and separated from one another.
CARDIOVASCULAR ASSIST SYSTEM THAT QUANTIFIES HEART FUNCTION AND FACILITATES HEART RECOVERY
The systems, devices, and methods presented herein use a heart pump to obtain measurements of cardiovascular function. The heart pumps described herein can operate in parallel with and unload the heart. The system can quantify the functioning of the native heart by measuring certain parameters/signals such as pressure or motor current, then calculate and display one or more metrics of cardiovascular function. These metrics, such as left ventricular end diastolic pressure (LVEDP), left ventricular pressure, and contractility, provide valuable information to a user regarding a patient's state of heart function and recovery.
BLOOD PUMP
This invention concerns an intravascular blood pump for percutaneous insertion into a patient's blood vessel. The blood pump comprises a pump casing having a blood flow inlet and a blood flow outlet, an impeller arranged in said pump casing so as to be rotatable about an axis of rotation. The impeller has blades sized and shaped for conveying blood from the blood flow inlet to the blood flow outlet. The blood pump comprises a drive unit for rotating the impeller, the drive unit comprising a magnetic core including a plurality of posts arranged about the axis of rotation and a back plate connecting the posts and extending between the posts in an intermediate area. A coil winding is disposed around each of the posts. The coil windings are controllable so as to create a rotating magnetic field, wherein the impeller comprises a magnetic structure arranged to interact with the rotating magnetic field so as to cause rotation of the impeller. A material of at least a portion of at least one of the posts is integral with a material of the intermediate area of the back plate. Further, the invention concerns a method of manufacturing a magnetic core and a method of manufacturing an intravascular blood pump.
BLOOD PUMP
This invention concerns an intravascular blood pump for percutaneous insertion into a patient's blood vessel. The blood pump comprises a pump casing having a blood flow inlet and a blood flow outlet, an impeller arranged in said pump casing so as to be rotatable about an axis of rotation. The impeller has blades sized and shaped for conveying blood from the blood flow inlet to the blood flow outlet. The blood pump comprises a drive unit for rotating the impeller, the drive unit comprising a magnetic core including a plurality of posts arranged about the axis of rotation and a back plate connecting the posts and extending between the posts in an intermediate area. A coil winding is disposed around each of the posts. The coil windings are controllable so as to create a rotating magnetic field, wherein the impeller comprises a magnetic structure arranged to interact with the rotating magnetic field so as to cause rotation of the impeller. A material of at least a portion of at least one of the posts is integral with a material of the intermediate area of the back plate. Further, the invention concerns a method of manufacturing a magnetic core and a method of manufacturing an intravascular blood pump.
PURGELESS MECHANICAL CIRCULATORY SUPPORT SYSTEM WITH MAGNETIC DRIVE
- Marvin Mitze ,
- Hans Christof ,
- Vladimir Popov ,
- Martin Schwarz ,
- Leon Wenning ,
- Johannes Bette ,
- Attila Fabiunke ,
- Sina Gerlach ,
- Johannes Stigloher ,
- Julian Görries ,
- Jan Schöfer ,
- Valentin Rex ,
- Johannes Berner ,
- Bernhard Ehni ,
- Johannes Ferch ,
- Hans-Baldung Luley ,
- Tom Döhring ,
- Jens Burghaus ,
- Inga Schellenberg ,
- Hardy Baumbach ,
- Annika Bach ,
- Ingo Stotz ,
- Julian Kassel ,
- Armin Schuelke ,
- Stefan Henneck ,
- David Minzenmay ,
- Thomas Alexander Schlebusch ,
- Tobias Schmid ,
- Tjalf Pirk ,
- Martina Budde ,
- Ricardo Ehrenpfordt ,
- Marc Schmid ,
- Ahmad Mansour ,
- Niko Baeuerle ,
- Ralf Strasswiemer ,
- Uwe Vollmer ,
- Manuel Gaertner ,
- Fabian Eiberger ,
- Tobias Baechle ,
- Karin Schneider ,
- Peter Wassermann
Disclosed is a minimally invasive miniaturized percutaneous mechanical circulatory support system. The system may be placed across the aortic valve via a single femoral arterial access point. The system includes a low profile axial rotary blood pump carried by the distal end of a catheter. The system can be percutaneously inserted through the femoral artery and positioned across the aortic valve into the left ventricle. The device actively unloads the left ventricle by pumping blood from the left ventricle into the ascending aorta and systemic circulation. A magnetic drive and encased motor housing allows for purgeless operation for extended periods of time to treat various ailments, for example more than six hours as acute therapy for cardiogenic shock.
MECHANICAL CIRCULATORY SUPPORT SYSTEM WITH GUIDEWIRE AID
- Marvin Mitze ,
- Hans Christof ,
- Vladimir Popov ,
- Martin Schwarz ,
- Leon Wenning ,
- Johannes Bette ,
- Attila Fabiunke ,
- Julian Görries ,
- Jan Schöfer ,
- Valentin Rex ,
- Johannes Berner ,
- Johannes Ferch ,
- Hans-Baldung Luley ,
- Tom Döhring ,
- Jens Burghaus ,
- Inga Schellenberg ,
- Hardy Baumbach ,
- Annika Bach ,
- Ingo Stotz ,
- Julian Kassel ,
- Armin Schuelke ,
- Stefan Henneck ,
- David Minzenmay ,
- Thomas Alexander Schlebusch ,
- Tobias Schmid ,
- Tjalf Pirk ,
- Martina Budde ,
- Ricardo Ehrenpfordt ,
- Marc Schmid ,
- Ahmad Mansour ,
- Niko Baeuerle ,
- Peter Wassermann ,
- Fabian Eiberger ,
- Kenneth M. Martin
Disclosed is a mechanical circulatory support system for transcatheter delivery to the heart, having a removable guidewire aid to assist with inserting the guidewire along a path that avoids a rotating impeller. The system may comprise a catheter shaft and a circulatory support device carried by the shaft. The device may comprise a tubular housing, an impeller and the guidewire aid. The guidewire aid may include a removable guidewire guide tube. The guide tube may enter a first guidewire port of the tubular housing, exit the tubular housing via a second guidewire port on a side wall of the tubular housing on a distal side of the impeller, enter a third guidewire port on a proximal side of the impeller, and extend proximally through the catheter shaft.
MECHANICAL CIRCULATORY SUPPORT SYSTEM WITH INSERTION TOOL
- Marvin Mitze ,
- Hans Christof ,
- Vladimir Popov ,
- Martin Schwarz ,
- Leon Wenning ,
- Johannes Bette ,
- Attila Fabiunke ,
- Julian Görries ,
- Jan Schöfer ,
- Valentin Rex ,
- Johannes Berner ,
- Johannes Ferch ,
- Hans-Baldung Luley ,
- Tom Döhring ,
- Jens Burghaus ,
- Inga Schellenberg ,
- Hardy Baumbach ,
- Annika Bach ,
- Ingo Stotz ,
- Julian Kassel ,
- Armin Schuelke ,
- Stefan Henneck ,
- David Minzenmay ,
- Thomas Alexander Schlebusch ,
- Tobias Schmid ,
- Tjalf Pirk ,
- Martina Budde ,
- Ricardo Ehrenpfordt ,
- Marc Schmid ,
- Ahmad Mansour ,
- Niko Baeuerle ,
- Peter Wassermann ,
- Fabian Eiberger ,
- Kenneth M. Martin ,
- Thomas Friedrich ,
- Mario Heintze
A minimally invasive miniaturized percutaneous mechanical circulatory support system for transcatheter delivery of a pump to the heart that actively unloads the left ventricle by pumping blood from the left ventricle into the ascending aorta and systemic circulation. The pump may include a tubular housing, a motor, an impeller configured to be rotated by the motor. The impeller may be rotated by the motor, via a shaft with an annular polymeric seal around the shaft, or via a magnetic drive. The system may have an insertion tool having a tubular body and configured to axially movably receive the circulatory support device, and an introducer sheath configured to axially movably receive the insertion tool.