Analysis of backflow within an external centrifugal blood pump for ventricular assist device

During left ventricular support by rotary blood pumps (RBPs), pump speed plays an important role in the amount of heart support. The reducing of pump speed seems important in order to prevent some adverse events in the heart valve. However, when pump speed was reduced, the backflow which is the flow...

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Main Authors: Chitsanupong Rungsirigulnan, Ravi Laohasurayodhin, Thisana Tuanthammaruk, Yanee Chusri, Paweena Diloksumpan, Phornphop Naiyanetr
Other Authors: Mahidol University
Format: Conference or Workshop Item
Published: 2018
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Online Access:https://repository.li.mahidol.ac.th/handle/123456789/31715
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spelling th-mahidol.317152018-10-19T11:54:28Z Analysis of backflow within an external centrifugal blood pump for ventricular assist device Chitsanupong Rungsirigulnan Ravi Laohasurayodhin Thisana Tuanthammaruk Yanee Chusri Paweena Diloksumpan Phornphop Naiyanetr Mahidol University Engineering During left ventricular support by rotary blood pumps (RBPs), pump speed plays an important role in the amount of heart support. The reducing of pump speed seems important in order to prevent some adverse events in the heart valve. However, when pump speed was reduced, the backflow which is the flow that has the reverse direction to blood pumping direction may occur more easily. This is due to the amount of pressure at an outlet of pump. Head pressure and pump flow curve (HQ-curve) is the graph that shows the performance of speed, head pressure and flow rate in the blood pump. In this study, two impellers from MUAD-VAD02 were used; 90-degree-angle straight blade (90SB) and 130 degrees straight blade (130BSB). The backflow of two impellers were investigated at three pump speeds (1000, 1400 and 1800 rpm) using HQ-curve, negative flow rate vs. time, and pressure vs. time. The experimental study uses in vitro testing by simulating the natural circulatory system with RBPs in the mock circulation loop system. The back flow of 90SB had more negative flow than BSB at all three speeds. In conclusion, BSB- impeller was chosen over the 90SB-impeller because at the same head pressure and speed in HQ-curve, the BSB impeller has less negative flow. © 2013 IEEE. 2018-10-19T04:54:28Z 2018-10-19T04:54:28Z 2013-12-01 Conference Paper BMEiCON 2013 - 6th Biomedical Engineering International Conference. (2013) 10.1109/BMEiCon.2013.6687729 2-s2.0-84893232908 https://repository.li.mahidol.ac.th/handle/123456789/31715 Mahidol University SCOPUS https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84893232908&origin=inward
institution Mahidol University
building Mahidol University Library
continent Asia
country Thailand
Thailand
content_provider Mahidol University Library
collection Mahidol University Institutional Repository
topic Engineering
spellingShingle Engineering
Chitsanupong Rungsirigulnan
Ravi Laohasurayodhin
Thisana Tuanthammaruk
Yanee Chusri
Paweena Diloksumpan
Phornphop Naiyanetr
Analysis of backflow within an external centrifugal blood pump for ventricular assist device
description During left ventricular support by rotary blood pumps (RBPs), pump speed plays an important role in the amount of heart support. The reducing of pump speed seems important in order to prevent some adverse events in the heart valve. However, when pump speed was reduced, the backflow which is the flow that has the reverse direction to blood pumping direction may occur more easily. This is due to the amount of pressure at an outlet of pump. Head pressure and pump flow curve (HQ-curve) is the graph that shows the performance of speed, head pressure and flow rate in the blood pump. In this study, two impellers from MUAD-VAD02 were used; 90-degree-angle straight blade (90SB) and 130 degrees straight blade (130BSB). The backflow of two impellers were investigated at three pump speeds (1000, 1400 and 1800 rpm) using HQ-curve, negative flow rate vs. time, and pressure vs. time. The experimental study uses in vitro testing by simulating the natural circulatory system with RBPs in the mock circulation loop system. The back flow of 90SB had more negative flow than BSB at all three speeds. In conclusion, BSB- impeller was chosen over the 90SB-impeller because at the same head pressure and speed in HQ-curve, the BSB impeller has less negative flow. © 2013 IEEE.
author2 Mahidol University
author_facet Mahidol University
Chitsanupong Rungsirigulnan
Ravi Laohasurayodhin
Thisana Tuanthammaruk
Yanee Chusri
Paweena Diloksumpan
Phornphop Naiyanetr
format Conference or Workshop Item
author Chitsanupong Rungsirigulnan
Ravi Laohasurayodhin
Thisana Tuanthammaruk
Yanee Chusri
Paweena Diloksumpan
Phornphop Naiyanetr
author_sort Chitsanupong Rungsirigulnan
title Analysis of backflow within an external centrifugal blood pump for ventricular assist device
title_short Analysis of backflow within an external centrifugal blood pump for ventricular assist device
title_full Analysis of backflow within an external centrifugal blood pump for ventricular assist device
title_fullStr Analysis of backflow within an external centrifugal blood pump for ventricular assist device
title_full_unstemmed Analysis of backflow within an external centrifugal blood pump for ventricular assist device
title_sort analysis of backflow within an external centrifugal blood pump for ventricular assist device
publishDate 2018
url https://repository.li.mahidol.ac.th/handle/123456789/31715
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