High-Performance Permanent Magnet Array Design by a Fast Genetic Algorithm (GA)-based Optimization for Low-Field Portable MRI
Ting-Ou Liang, Yan Hao Koh, Tie Qiu, Erping Li, Wenwei Yu, Shao Ying, Huang

TL;DR
This paper presents a novel, high-performance permanent magnet array designed for low-field portable MRI, optimized using a fast genetic algorithm to achieve a strong, inhomogeneity-controlled magnetic field suitable for head imaging.
Contribution
It introduces a sparse, optimized PMA design with off-the-shelf magnet blocks, achieving high efficiency and field quality for portable MRI applications, validated through simulations and image reconstruction.
Findings
Achieved an average field strength of 111.40 mT with 10.57 mT inhomogeneity.
Designed a compact, lightweight PMA with high magnetic field generation efficiency.
Validated the magnetic field and imaging quality through simulations and reconstructions.
Abstract
A permanent magnet array (PMA) is a preferred source of magnetic field for body-part-dedicated low-field (<0.5 T) portable magnetic resonance imaging (MRI) because it has a small footprint, no power consumption, and no need for a cooling system. The current popular PMA is limited by the transversal field below 100 mT, where advanced technologies developed for the long-bore MRI systems (e.g., multi-channel techniques) cannot be applied. In this paper, a sparse high-performance PMA is proposed based on inward-outward ring pairs and using magnet blocks that can be bought off the shelf, targeting on portable head imaging. Through a fast genetic algorithm (GA)-based optimization, the proposed PMA has a longitudinal magnetic field with an average field strength of 111.40 mT and a monotonic field pattern with inhomogeneity of 10.57 mT (an RF bandwidth of <10%) within a Field of View (FoV) of…
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Taxonomy
TopicsAdvanced MRI Techniques and Applications · Energy Harvesting in Wireless Networks · Wireless Power Transfer Systems
