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http://dx.doi.org/10.9718/JBER.2022.43.3.136

A Study on the Direction of Developing a Simulator for Performance Evaluation of Pulse Wave Detectors Through a Review of the Development Status of Cardiovascular Simulators  

Lee, Ju-Yeon (Medical Device Research Division, National Institute of Food and Drug Safety Evaluation)
Kim, Jaeyoung (Medical Device Research Division, National Institute of Food and Drug Safety Evaluation)
Go, Dong-Hyun (Medical Device Research Division, National Institute of Food and Drug Safety Evaluation)
Lee, Ji-Won (Medical Device Research Division, National Institute of Food and Drug Safety Evaluation)
Lee, Tae-Hee (Medical Device Research Division, National Institute of Food and Drug Safety Evaluation)
Park, Chang-Won (Medical Device Research Division, National Institute of Food and Drug Safety Evaluation)
Lee, Su-Kyoung (Medical Device Research Division, National Institute of Food and Drug Safety Evaluation)
Publication Information
Journal of Biomedical Engineering Research / v.43, no.3, 2022 , pp. 136-146 More about this Journal
Abstract
In this study, it is intended to provide basic data that can help develop a cardiovascular simulator for performance evaluation of pulse wave detectors by identifying the development status of domestic and overseas cardiovascular simulators. A total of 119 papers were selected by excluding duplicate literature, gray literature, and literature not related to a cardiovascular simulator. Based on the selected literature, the research trend of cardiovascular simulators was analyzed. As a result of analyzing the purpose of the study, most of the simulators were developed to evaluate the hemodynamic properties of artificial hearts and valves. In addition, it was used for simulation evaluation or hemodynamic studies such as pulse wave studies. As a result of analyzing configurations of the simulators, a heart most often consisted of only one left ventricle. For blood vessels, the Windkessel model was most often constructed using chambers and valves. In most studies, blood was reproduced by mixing glycerin and water to reproduce both density and viscosity. In addition, as a result of analysis from the perspective of medical device performance evaluation, simulators for evaluating artificial heart and artificial valves have been studied a lot, whereas simulators for blood pressure, pulse wave, and blood flow devices have been relatively insignificant. Based on the review results, we suggested considerations when developing a simulator for performance evaluations of a pulse wave detector.
Keywords
Cardiovascular simulator; Mock circulatory system; In vitro; Mechanical test; Hemodynamics;
Citations & Related Records
Times Cited By KSCI : 9  (Citation Analysis)
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