Quantification of MRI sensitivity for mono-disperse microbubbles to measure subatmospheric fluid pressure changes

It would be very beneficial to perform MRI of fluids and sense the fluid pressure changes. Our aim is to demonstrate a contrast agent capable of MR sensitivity to sub-atmospheric pressure changes. To achieve this, monodisperse microbubbles were prepared with an optically measured mean radius of 1.4...

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Main Authors: Alrwaili, Amgad, Bencsik, Martin
Other Authors: Nottingham Trent University, School of Science and Technology
Format: Article
Language:English
Published: Universitätsbibliothek Leipzig 2015
Subjects:
Online Access:http://nbn-resolving.de/urn:nbn:de:bsz:15-qucosa-184234
http://nbn-resolving.de/urn:nbn:de:bsz:15-qucosa-184234
http://www.qucosa.de/fileadmin/data/qucosa/documents/18423/diff_fund_18%282013%294.pdf
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spelling ndltd-DRESDEN-oai-qucosa.de-bsz-15-qucosa-1842342015-10-21T03:24:59Z Quantification of MRI sensitivity for mono-disperse microbubbles to measure subatmospheric fluid pressure changes Alrwaili, Amgad Bencsik, Martin Diffusion Transport diffusion transport ddc:530 It would be very beneficial to perform MRI of fluids and sense the fluid pressure changes. Our aim is to demonstrate a contrast agent capable of MR sensitivity to sub-atmospheric pressure changes. To achieve this, monodisperse microbubbles were prepared with an optically measured mean radius of 1.4 ± 0.8 μm. A repeated pressure change cycle was applied on the microbubble contrast agent, until it produced an MR signal change solely due to the bubble radius change. The bubbles’ contribution to the relaxation rate before and after applying sub-atmospheric pressure changes was estimated and its echo time dependence modelled, so as to inform the mean radius change. The periodic subatmospheric pressure change was further applied until the MR signal change was only due to the bubble radius change. An excellent MR sensitivity of 28 % bar-1 is demonstrated, bubble radii of 2.4 and 1.8 μm are numerically estimated before and after the application of pressure, and the simulations are further used to estimate the optimum bubble radius maximising the MR sensitivity to a small change in radius. Universitätsbibliothek Leipzig Nottingham Trent University, School of Science and Technology Universität Leipzig, Fakultät für Physik und Geowissenschaften 2015-10-20 doc-type:article application/pdf http://nbn-resolving.de/urn:nbn:de:bsz:15-qucosa-184234 urn:nbn:de:bsz:15-qucosa-184234 issn:1862-4138 http://www.qucosa.de/fileadmin/data/qucosa/documents/18423/diff_fund_18%282013%294.pdf Diffusion fundamentals 18 (2013) 4, S. 1-5 eng
collection NDLTD
language English
format Article
sources NDLTD
topic Diffusion
Transport
diffusion
transport
ddc:530
spellingShingle Diffusion
Transport
diffusion
transport
ddc:530
Alrwaili, Amgad
Bencsik, Martin
Quantification of MRI sensitivity for mono-disperse microbubbles to measure subatmospheric fluid pressure changes
description It would be very beneficial to perform MRI of fluids and sense the fluid pressure changes. Our aim is to demonstrate a contrast agent capable of MR sensitivity to sub-atmospheric pressure changes. To achieve this, monodisperse microbubbles were prepared with an optically measured mean radius of 1.4 ± 0.8 μm. A repeated pressure change cycle was applied on the microbubble contrast agent, until it produced an MR signal change solely due to the bubble radius change. The bubbles’ contribution to the relaxation rate before and after applying sub-atmospheric pressure changes was estimated and its echo time dependence modelled, so as to inform the mean radius change. The periodic subatmospheric pressure change was further applied until the MR signal change was only due to the bubble radius change. An excellent MR sensitivity of 28 % bar-1 is demonstrated, bubble radii of 2.4 and 1.8 μm are numerically estimated before and after the application of pressure, and the simulations are further used to estimate the optimum bubble radius maximising the MR sensitivity to a small change in radius.
author2 Nottingham Trent University, School of Science and Technology
author_facet Nottingham Trent University, School of Science and Technology
Alrwaili, Amgad
Bencsik, Martin
author Alrwaili, Amgad
Bencsik, Martin
author_sort Alrwaili, Amgad
title Quantification of MRI sensitivity for mono-disperse microbubbles to measure subatmospheric fluid pressure changes
title_short Quantification of MRI sensitivity for mono-disperse microbubbles to measure subatmospheric fluid pressure changes
title_full Quantification of MRI sensitivity for mono-disperse microbubbles to measure subatmospheric fluid pressure changes
title_fullStr Quantification of MRI sensitivity for mono-disperse microbubbles to measure subatmospheric fluid pressure changes
title_full_unstemmed Quantification of MRI sensitivity for mono-disperse microbubbles to measure subatmospheric fluid pressure changes
title_sort quantification of mri sensitivity for mono-disperse microbubbles to measure subatmospheric fluid pressure changes
publisher Universitätsbibliothek Leipzig
publishDate 2015
url http://nbn-resolving.de/urn:nbn:de:bsz:15-qucosa-184234
http://nbn-resolving.de/urn:nbn:de:bsz:15-qucosa-184234
http://www.qucosa.de/fileadmin/data/qucosa/documents/18423/diff_fund_18%282013%294.pdf
work_keys_str_mv AT alrwailiamgad quantificationofmrisensitivityformonodispersemicrobubblestomeasuresubatmosphericfluidpressurechanges
AT bencsikmartin quantificationofmrisensitivityformonodispersemicrobubblestomeasuresubatmosphericfluidpressurechanges
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