A61M60/845

APPARATUS, SYSTEMS, AND METHODS FOR PERCUTANEOUS PNEUMATIC CARDIAC ASSISTANCE
20250041583 · 2025-02-06 · ·

A cardiac assist system includes a pneumatic effector which is implanted beneath a pericardial sac and over a myocardial surface overlying the patient's left ventricle. A port is implanted and receives a percutaneously introduced cannula. The port is connected to supply a driving gas received from the cannula to the pneumatic effector. An external drive unit includes a pump assembly and control circuitry which operate the pump to actuate the pneumatic effector in response to the patient's sensed heart rhythm. A connecting tube has a pump end connected to the pump and a percutaneous port-connecting end attached to the implantable port.

APPARATUS, SYSTEMS, AND METHODS FOR PERCUTANEOUS PNEUMATIC CARDIAC ASSISTANCE
20250041583 · 2025-02-06 · ·

A cardiac assist system includes a pneumatic effector which is implanted beneath a pericardial sac and over a myocardial surface overlying the patient's left ventricle. A port is implanted and receives a percutaneously introduced cannula. The port is connected to supply a driving gas received from the cannula to the pneumatic effector. An external drive unit includes a pump assembly and control circuitry which operate the pump to actuate the pneumatic effector in response to the patient's sensed heart rhythm. A connecting tube has a pump end connected to the pump and a percutaneous port-connecting end attached to the implantable port.

Priming tray for priming a fluid system

A system for assisting a patient's heart has a pump, an oxygenator, a holder having a pump receiving portion for removably receiving the pump and an oxygenator receiving portion for removably receiving the oxygenator, and a harness configured to surround at least a portion of a patient's torso. The holder is connected to the harness. The system further has a brace connected to at least a portion of the harness. The brace is configured to extend behind a back portion of a user's head and to support tubing connected to at least one of the pump and the oxygenator. A priming tray and wet-to-wet connector connecting the cardiac assist system to the cannula so are also disclosed.

Priming tray for priming a fluid system

A system for assisting a patient's heart has a pump, an oxygenator, a holder having a pump receiving portion for removably receiving the pump and an oxygenator receiving portion for removably receiving the oxygenator, and a harness configured to surround at least a portion of a patient's torso. The holder is connected to the harness. The system further has a brace connected to at least a portion of the harness. The brace is configured to extend behind a back portion of a user's head and to support tubing connected to at least one of the pump and the oxygenator. A priming tray and wet-to-wet connector connecting the cardiac assist system to the cannula so are also disclosed.

RIGHT VENTRICULAR ASSIST DEVICE

A right ventricular assist device (hereinafter, RVAD) for placement inside a mammalian subject includes a tube having an inlet configured to be positioned in the mammalian subject when the tube is in a proper position within a heart and an outlet configured to be located in a pulmonary artery when the tube is in the proper position. The RVAD also includes a plurality of sensors having measurement locations along the tube to measure a plurality of pressures of blood exterior to the tube at the measurement locations and a controller in communication with the pump and the plurality of sensors that convey the plurality of pressures to the controller with the controller being configured to instruct the pump to pump blood through the tube depending on at least one of the plurality of pressures.

RIGHT VENTRICULAR ASSIST DEVICE

A right ventricular assist device (hereinafter, RVAD) for placement inside a mammalian subject includes a tube having an inlet configured to be positioned in the mammalian subject when the tube is in a proper position within a heart and an outlet configured to be located in a pulmonary artery when the tube is in the proper position. The RVAD also includes a plurality of sensors having measurement locations along the tube to measure a plurality of pressures of blood exterior to the tube at the measurement locations and a controller in communication with the pump and the plurality of sensors that convey the plurality of pressures to the controller with the controller being configured to instruct the pump to pump blood through the tube depending on at least one of the plurality of pressures.

Motor for extracorporeal blood pump, extracorporeal blood pump, and extracorporeal blood pump system

The present disclosure relates to a motor for an extracorporeal blood pump, an extracorporeal blood pump, and an extracorporeal blood pump system. The motor for an extracorporeal blood pump comprises: a housing; an actuator located in the housing and used for driving an impeller in a pump head of the extracorporeal blood pump; at least one sensor located in the housing; and a motor driving-control assembly located in the housing and used to control operation of the motor. Integrating the motor driving-control assembly into the housing of the motor can significantly reduce the dependence of the motor on the control host of the extracorporeal blood pump, the risk of communication failure between the motor and the control host, and the risk of malfunction of the motor driving-control assembly, thereby greatly improving the safety and reliability of the extracorporeal blood pump.