Minimization of eddy power loss in the cryostat for a z-gradient array coil driven by an arbitrary pulse sequence: an electromagnetic approach

buir.contributor.authorTakrimi, Manouchehr
buir.contributor.authorAtalar, Ergin
buir.contributor.orcidTakrimi, Manouchehr|0000-0001-5515-2472
buir.contributor.orcidAtalar, Ergin|0000-0002-6874-6103
dc.citation.epage1238en_US
dc.citation.issueNumber3
dc.citation.spage1225
dc.citation.volumeNumber91
dc.contributor.authorTakrimi, Manouchehr
dc.contributor.authorAtalar, Ergin
dc.date.accessioned2024-03-12T11:49:26Z
dc.date.available2024-03-12T11:49:26Z
dc.date.issued2023-11-27
dc.departmentNational Magnetic Resonance Research Center (UMRAM)
dc.departmentDepartment of Electrical and Electronics Engineering
dc.description.abstractPurpose This paper presents a novel computational approach to optimize gradient array performance for a given pulse sequence. Specifically, we propose an electromagnetic (EM) approach that minimizes eddy losses within the cryostat while maintaining key performance parameters such as field linearity, gradient strength, and imaging region's dimension and position. Methods High-resolution EM simulations on the cryostat's surface are deployed to compute the net EM fields generated by each element of a gradient array coil at different frequencies. The computed fields are stored and combined for each frequency to form a quadratic vector–matrix–vector computation. The overall time-average eddy power loss within the cryostat assembly for arbitrary pulse sequences is computed using frequency domain superposition. Results The proposed approach estimates and regulates eddy power losses within the cryostat assembly. When compared to the stray field minimization approach, it can achieve over twice the reduction in eddy power loss. The proposed approach eliminates the need to sample the stray fields on the cryostat surface, which the number and position of the samples would be challenging when designing tunable array coils with capabilities that disrupt field symmetries. Additionally, the loss calculation considers the entire cryostat assembly rather than just the inner cylindrical surface of the warm shield. Conclusion Our findings highlight the efficacy of an on-the-fly tuning method for the development of high-performance whole-body gradient array coils, effectively mitigating eddy losses within the cryostat and minimizing stray fields outside the coil assembly. This approach proves particularly advantageous for array coils with variable feeding currents.
dc.description.provenanceMade available in DSpace on 2024-03-12T11:49:26Z (GMT). No. of bitstreams: 1 Minimization_of_eddy_power_loss_in_the_cryostat_for_a_z-gradient_array_coil_driven_by_an_arbitrary_pulse_sequence_An_electromagnetic_approach.pdf: 7105235 bytes, checksum: d5eabb416b74653e6d56e5f3875846e2 (MD5) Previous issue date: 2024-03en
dc.identifier.doi10.1002/mrm.29921
dc.identifier.eissn1522-2594
dc.identifier.issn0740-3194
dc.identifier.urihttps://hdl.handle.net/11693/114599
dc.language.isoen
dc.publisherWiley
dc.relation.isversionofhttps://doi.org/10.1002/mrm.29921
dc.rightsCC BY-NC 4.0 DEED (Attribution-NonCommercial 4.0 International)
dc.rights.urihttps://creativecommons.org/licenses/by-nc/4.0/
dc.source.titleMagnetic Resonance in Medicine
dc.subjecteddy loss
dc.subjectgradient field optimization
dc.subjectMRI gradient array coil
dc.subjectPoynting theorem
dc.titleMinimization of eddy power loss in the cryostat for a z-gradient array coil driven by an arbitrary pulse sequence: an electromagnetic approach
dc.typeArticle

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