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Conductive shield for ultra-low-field magnetic resonance imaging: Theory and measurements of eddy currents

机译:用于超低场磁共振成像的导电屏蔽:涡流的理论和测量

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摘要

Eddy currents induced by applied magnetic-field pulses have been a common issue in ultra-low-field magnetic resonance imaging. In particular, a relatively large prepolarizing field—applied before each signal acquisition sequence to increase the signal—induces currents in the walls of the surrounding conductive shielded room. The magnetic-field transient generated by the eddy currents may cause severe image distortions and signal loss, especially with the large prepolarizing coils designed for in vivo imaging. We derive a theory of eddy currents in thin conducting structures and enclosures to provide intuitive understanding and efficient computations. We present detailed measurements of the eddy-current patterns and their time evolution in a previous-generation shielded room. The analysis led to the design and construction of a new shielded room with symmetrically placed 1.6-mm-thick aluminum sheets that were weakly coupled electrically. The currents flowing around the entire room were heavily damped, resulting in a decay time constant of about 6 ms for both the measured and computed field transients. The measured eddy-current vector maps were in excellent agreement with predictions based on the theory, suggesting that both the experimental methods and the theory were successful and could be applied to a wide variety of thin conducting structures.
机译:由施加的磁场脉冲引起的涡电流已经成为超低场磁共振成像中的普遍问题。特别是,在每个信号采集序列之前施加一个较大的预极化场以增加信号,会在周围的导电屏蔽室的壁上感应出电流。涡流产生的磁场瞬变可能会导致严重的图像失真和信号丢失,尤其是对于设计用于体内成像的大型预极化线圈而言。我们推导了薄导电结构和外壳中的涡流理论,以提供直观的理解和有效的计算。我们介绍了在上一代屏蔽室中涡流模式及其时间演变的详细测量。分析导致设计和建造了一个新的屏蔽室,该屏蔽室具有对称放置的1.6毫米厚的铝板,这些铝板电耦合弱。整个房间周围流动的电流被严重衰减,因此对于测量到的和计算出的场瞬变,其衰减时间常数约为6µms。测得的涡流矢量图与基于该理论的预测非常吻合,表明该实验方法和该理论都是成功的,并且可以应用于各种各样的薄导电结构。

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