Rotary ventricular assist devices (VADs) are less sensitive to preload than the healthy heart, resulting in inadequate flow regulation in response to changes in patient cardiac demand. Starling‐like physiological controllers (SLCs) have been developed to automatically regulate VAD flow based on ventricular preload. An SLC consists of a cardiac response curve (CRC) which imposes a nonlinear relationship between VAD flow and ventricular preload, and a venous return line (VRL) which determines the return path of the controller. This study investigates the importance of a physiological VRL in SLC of dual rotary blood pumps for biventricular support. Two experiments were conducted on a physical mock circulation loop (MCL); the first compared an ...
Rotary ventricular assist device (VAD) support of the cardiovascular system is susceptible to suctio...
Dual rotary left ventricular assist devices (LVADs) can provide biventricular mechanical support dur...
In this study, we evaluate a preload-based Starling-like controller for implantable rotary blood pum...
Rotary ventricular assist devices (VADs) are less sensitive to preload than the healthy heart, resul...
Rotary ventricular assist devices (VADs) are used to provide mechanical circulatory support. However...
Due to a shortage of donor hearts, rotary left ventricular assist devices (LVADs) are used to provid...
Due to a shortage of donor hearts, rotary left ventricular assist devices (LVADs) are used to provid...
Due to a shortage of donor hearts, rotary left ventricular assist devices (LVADs) are used to provid...
Due to a shortage of donor hearts, rotary left ventricular assist devices (LVADs) are used to provid...
Preventing ventricular suction and venous congestion through balancing flow rates and circulatory vo...
Due to improved durability and survival rates, rotary blood pumps (RBPs) are the preferred left vent...
Due to improved durability and survival rates, rotary blood pumps (RBPs) are the preferred left vent...
The application of rotary left ventricular (LV) assist devices (LVADs) is expanding from bridge to t...
The use of rotary left ventricular assist devices (LVADs) has extended to destination and recovery t...
A clinically intuitive physiologic controller is desired to improve the interaction between implanta...
Rotary ventricular assist device (VAD) support of the cardiovascular system is susceptible to suctio...
Dual rotary left ventricular assist devices (LVADs) can provide biventricular mechanical support dur...
In this study, we evaluate a preload-based Starling-like controller for implantable rotary blood pum...
Rotary ventricular assist devices (VADs) are less sensitive to preload than the healthy heart, resul...
Rotary ventricular assist devices (VADs) are used to provide mechanical circulatory support. However...
Due to a shortage of donor hearts, rotary left ventricular assist devices (LVADs) are used to provid...
Due to a shortage of donor hearts, rotary left ventricular assist devices (LVADs) are used to provid...
Due to a shortage of donor hearts, rotary left ventricular assist devices (LVADs) are used to provid...
Due to a shortage of donor hearts, rotary left ventricular assist devices (LVADs) are used to provid...
Preventing ventricular suction and venous congestion through balancing flow rates and circulatory vo...
Due to improved durability and survival rates, rotary blood pumps (RBPs) are the preferred left vent...
Due to improved durability and survival rates, rotary blood pumps (RBPs) are the preferred left vent...
The application of rotary left ventricular (LV) assist devices (LVADs) is expanding from bridge to t...
The use of rotary left ventricular assist devices (LVADs) has extended to destination and recovery t...
A clinically intuitive physiologic controller is desired to improve the interaction between implanta...
Rotary ventricular assist device (VAD) support of the cardiovascular system is susceptible to suctio...
Dual rotary left ventricular assist devices (LVADs) can provide biventricular mechanical support dur...
In this study, we evaluate a preload-based Starling-like controller for implantable rotary blood pum...