Informacja

Drogi użytkowniku, aplikacja do prawidłowego działania wymaga obsługi JavaScript. Proszę włącz obsługę JavaScript w Twojej przeglądarce.

Tytuł pozycji:

Virtual Fitting and Hemodynamic Simulation of the EVAHEART 2 Left Ventricular Assist Device and Double-Cuff Tipless Inflow Cannula.

Tytuł:
Virtual Fitting and Hemodynamic Simulation of the EVAHEART 2 Left Ventricular Assist Device and Double-Cuff Tipless Inflow Cannula.
Autorzy:
Sonntag SJ; From the enmodes GmbH, Aachen, Germany.
Lipinski E; Evaheart, Inc., Houston, Texas.
Neidlin M; From the enmodes GmbH, Aachen, Germany.
Hugenroth K; From the enmodes GmbH, Aachen, Germany.; Department of Cardiovascular Engineering, Institute of Applied Medical Engineering, Helmholtz Institute, RWTH Aachen University, Aachen, Germany.
Benkowski R; B-Squared Medical Device Solutions LLC, Fort Worth, Texas.
Motomura T; Evaheart, Inc., Houston, Texas.
Kaufmann TAS; From the enmodes GmbH, Aachen, Germany.; Department of Cardiovascular Engineering, Institute of Applied Medical Engineering, Helmholtz Institute, RWTH Aachen University, Aachen, Germany.
Źródło:
ASAIO journal (American Society for Artificial Internal Organs : 1992) [ASAIO J] 2019 Sep/Oct; Vol. 65 (7), pp. 698-706.
Typ publikacji:
Journal Article
Język:
English
Imprint Name(s):
Publication: Hagerstown, MD : Lippincott Williams & Wilkins
Original Publication: Philadelphia, PA : Published for the Society by J.B. Lippincott Co., c1992-
MeSH Terms:
Cannula*
Heart-Assist Devices*/adverse effects
Hemodynamics*
Heart Failure/*therapy
Aged ; Aged, 80 and over ; Computer Simulation ; Equipment Design ; Female ; Heart Failure/physiopathology ; Heart Ventricles/physiopathology ; Humans ; Male ; Middle Aged ; Shear Strength ; Thrombosis/etiology
Entry Date(s):
Date Created: 20180823 Date Completed: 20200610 Latest Revision: 20200610
Update Code:
20240105
DOI:
10.1097/MAT.0000000000000867
PMID:
30134259
Czasopismo naukowe
Inflow malposition during surgery, postoperative pump migration, inflow obstruction, and right ventricular compression are major contributors to low flow and adverse events in patients with ventricular assist devices (VADs). These position abnormalities can lead to adverse events including ischemic stroke. To address these problems, we conducted a virtual anatomical fitting study and hemodynamic simulation on iterative cannula designs, resulting in the EVAHEART 2 with the novel double-cuff tipless (DCT) inflow cannula and smaller pump design. Anatomical fitting was based on computed tomography scans of six patients with heart failure, and a fluid-structure-integration (FSI) model of the left ventricle with a lumped parameter model of the entire cardiovascular system during VAD support was created. Using this model, the hemodynamics of three inflow cannula insertion lengths for two patient-specific ventricles were calculated for both full and partial VAD support. The DCT cannula with the smaller pump housing proved resistant to obstruction even when the pump housing was adjusted. The complete system also had a smaller pump pocket size than the other designs and avoided position abnormalities that commonly lead to adverse events. Compared with conventional cadaver studies, virtual fitting and numerical simulations are more beneficial and economical for iteratively designing medical devices.

Ta witryna wykorzystuje pliki cookies do przechowywania informacji na Twoim komputerze. Pliki cookies stosujemy w celu świadczenia usług na najwyższym poziomie, w tym w sposób dostosowany do indywidualnych potrzeb. Korzystanie z witryny bez zmiany ustawień dotyczących cookies oznacza, że będą one zamieszczane w Twoim komputerze. W każdym momencie możesz dokonać zmiany ustawień dotyczących cookies