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September 17, 2025Proceedings on CD-ROM - International Society for Magnetic Resonance in Medicine. Scientific Meeting and Exhibition/Proceedings of the International Society for Magnetic Resonance in Medicine, Scientific Meeting and Exhibition0 citations

Eddy Current Compensation for Z-Gradient Array Coils with Constraints on Copper and Cryostat Losses: An Electromagnetic Approach

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MTManouchehr TakrimiEAErgin Atalar

Key Points

  • Optimized waveforms enhance performance by managing secondary fields of eddy currents in MRI systems.
  • Results show effective compensation for secondary fields from a 300 T/m/s trapezoidal pulse pulse sequence.
  • Proposed electromagnetic approach regulates time-average losses in both copper and cryostat components.
  • Framework utilizes harmonic components for customizable gradient fields, advancing MRI imaging technology.

Abstract

Motivation: Gradient array coils require fast methods to control eddy losses and mitigate secondary magnetic fields. Goal(s): Compensate for secondary fields from induced eddy currents in gradient array coils while managing ohmic power losses within the cryostat and the coils. Approach: A framework is proposed that utilizes the orthogonality of harmonic components of pulse sequences to generate customizable gradient fields with adjustable precision, while compensating for eddy and copper losses and mitigating the secondary fields produced by the induced eddy currents. Results: Optimized waveforms within a 48-element z-gradient array coil compensate for secondary fields of eddy currents from a 300 T/m/s trapezoidal pulse. Impact: Our approach enables regulation of time-average eddy and copper losses and compensate for secondary fields in gradient array coils, enhancing imaging fidelity while allowing dynamic tuning of magnetic profiles, thereby advancing the performance of modern MRI systems.

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Cite This Study

Takrimi et al. (2025) studied this question.

synapsesocial.com/papers/68d45b0b31b076d99fa5cf3chttps://doi.org/10.58530/2025/3280
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