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Parallel imaging in non-bijective, curvilinear magnetic field gradients: a concept study

OBJECTIVES: The paper presents a novel and more generalized concept for spatial encoding by non-unidirectional, non- bijective spatial encoding magnetic fields (SEMs). In combination with parallel local receiver coils these fields allow one to overcome the current limitations of neuronal nerve stimu...

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Detalles Bibliográficos
Autores principales: Hennig, Juergen, Welz, Anna Masako, Schultz, Gerrit, Korvink, Jan, Liu, Zhenyu, Speck, Oliver, Zaitsev, Maxim
Formato: Texto
Lenguaje:English
Publicado: Springer-Verlag 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2798019/
https://www.ncbi.nlm.nih.gov/pubmed/18299913
http://dx.doi.org/10.1007/s10334-008-0105-7
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author Hennig, Juergen
Welz, Anna Masako
Schultz, Gerrit
Korvink, Jan
Liu, Zhenyu
Speck, Oliver
Zaitsev, Maxim
author_facet Hennig, Juergen
Welz, Anna Masako
Schultz, Gerrit
Korvink, Jan
Liu, Zhenyu
Speck, Oliver
Zaitsev, Maxim
author_sort Hennig, Juergen
collection PubMed
description OBJECTIVES: The paper presents a novel and more generalized concept for spatial encoding by non-unidirectional, non- bijective spatial encoding magnetic fields (SEMs). In combination with parallel local receiver coils these fields allow one to overcome the current limitations of neuronal nerve stimulation. Additionally the geometry of such fields can be adapted to anatomy. MATERIALS AND METHODS: As an example of such a parallel imaging technique using localized gradients (PatLoc)- system, we present a polar gradient system consisting of 2 × 8 rectangular current loops in octagonal arrangement, which generates a radial magnetic field gradient. By inverting the direction of current in alternating loops, a near sinusoidal field variation in the circumferential direction is produced. Ambiguities in spatial assignment are resolved by use of multiple receiver coils and parallel reconstruction. Simulations demonstrate the potential advantages and limitations of this approach. RESULTS AND CONCLUSIONS: The exact behaviour of PatLoc fields with respect to peripheral nerve stimulation needs to be tested in practice. Based on geometrical considerations SEMs of radial geometry allow for about three times faster gradient switching compared to conventional head gradient inserts and even more compared to whole body gradients. The strong nonlinear geometry of the fields needs to be considered for practical applications.
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spelling pubmed-27980192009-12-29 Parallel imaging in non-bijective, curvilinear magnetic field gradients: a concept study Hennig, Juergen Welz, Anna Masako Schultz, Gerrit Korvink, Jan Liu, Zhenyu Speck, Oliver Zaitsev, Maxim MAGMA Research Article OBJECTIVES: The paper presents a novel and more generalized concept for spatial encoding by non-unidirectional, non- bijective spatial encoding magnetic fields (SEMs). In combination with parallel local receiver coils these fields allow one to overcome the current limitations of neuronal nerve stimulation. Additionally the geometry of such fields can be adapted to anatomy. MATERIALS AND METHODS: As an example of such a parallel imaging technique using localized gradients (PatLoc)- system, we present a polar gradient system consisting of 2 × 8 rectangular current loops in octagonal arrangement, which generates a radial magnetic field gradient. By inverting the direction of current in alternating loops, a near sinusoidal field variation in the circumferential direction is produced. Ambiguities in spatial assignment are resolved by use of multiple receiver coils and parallel reconstruction. Simulations demonstrate the potential advantages and limitations of this approach. RESULTS AND CONCLUSIONS: The exact behaviour of PatLoc fields with respect to peripheral nerve stimulation needs to be tested in practice. Based on geometrical considerations SEMs of radial geometry allow for about three times faster gradient switching compared to conventional head gradient inserts and even more compared to whole body gradients. The strong nonlinear geometry of the fields needs to be considered for practical applications. Springer-Verlag 2008-02-26 2008-03 /pmc/articles/PMC2798019/ /pubmed/18299913 http://dx.doi.org/10.1007/s10334-008-0105-7 Text en © ESMRMB 2008
spellingShingle Research Article
Hennig, Juergen
Welz, Anna Masako
Schultz, Gerrit
Korvink, Jan
Liu, Zhenyu
Speck, Oliver
Zaitsev, Maxim
Parallel imaging in non-bijective, curvilinear magnetic field gradients: a concept study
title Parallel imaging in non-bijective, curvilinear magnetic field gradients: a concept study
title_full Parallel imaging in non-bijective, curvilinear magnetic field gradients: a concept study
title_fullStr Parallel imaging in non-bijective, curvilinear magnetic field gradients: a concept study
title_full_unstemmed Parallel imaging in non-bijective, curvilinear magnetic field gradients: a concept study
title_short Parallel imaging in non-bijective, curvilinear magnetic field gradients: a concept study
title_sort parallel imaging in non-bijective, curvilinear magnetic field gradients: a concept study
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2798019/
https://www.ncbi.nlm.nih.gov/pubmed/18299913
http://dx.doi.org/10.1007/s10334-008-0105-7
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