a3t MRI超导磁体淬火保护的设计与改进

IF 1.1 3区 物理与天体物理 Q4 PHYSICS, APPLIED
Wangnan Shang, Yunhao Mei, Shige Yang, Bohan Tang, Shili Jiang, Hui Yu, Bowen Xie, Guangli Kuang, Donghui Jiang
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引用次数: 0

摘要

近年来,全球对磁共振成像(MRI)的投资激增,3t MRI技术逐渐超过1.5 T成为医院的标准。采用线性规划、遗传算法和非线性规划相结合的方法设计了一个主动屏蔽的3 T超导MRI磁体系统。该磁铁由七个主线圈和两个屏蔽线圈组成,在直径50厘米的球形体积(DSV)内实现峰对峰不均匀性为10ppm的磁场。为了解决超导磁体中因温度、电压和应力过高而导致损坏的淬火风险,淬火保护系统至关重要。设计的系统分段线圈保护,使用二极管对和分流电阻来管理淬火。最初的模拟表明,温度上升和电压在安全范围内,但一些线圈熄灭缓慢或根本不熄灭,有烧毁的危险。为了缓解这一问题,增加了淬火传播加热板以提高淬火速度。更新的模拟显示,所有线圈的快速淬火以及热点温度和峰值电压的显著降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Design and Improvement of Quench Protection for A 3 T MRI Superconducting Magnet

Design and Improvement of Quench Protection for A 3 T MRI Superconducting Magnet

In recent years, global investment in magnetic resonance imaging (MRI) has surged, with 3 T MRI technology overtaking 1.5 T as the standard in hospitals gradually. A combination of linear programming, genetic algorithms, and nonlinear programming was employed to design an actively shielded 3 T superconducting MRI magnet system. This magnet consists of seven main coils and two shielding coils, achieving a magnetic field with a peak-to-peak inhomogeneity of 10 ppm within a 50-cm-diameter spherical volume (DSV). To address the risk of quench in superconducting magnets, which can lead to damage due to excessive temperature, voltage, and stress, a quench protection system is crucial. The designed system segments the coils for protection, using diode pairs and shunt resistors to manage the quench. Initial simulations indicated that temperature rises and voltages were within safe limits, but some coils were slow to quench or did not quench at all, risking burnout. To mitigate this, quench propagation heating plates were added to increase the quench speed. Updated simulations showed rapid quench across all coils and a significant reduction in hot spot temperatures and peak voltages.

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来源期刊
Journal of Low Temperature Physics
Journal of Low Temperature Physics 物理-物理:凝聚态物理
CiteScore
3.30
自引率
25.00%
发文量
245
审稿时长
1 months
期刊介绍: The Journal of Low Temperature Physics publishes original papers and review articles on all areas of low temperature physics and cryogenics, including theoretical and experimental contributions. Subject areas include: Quantum solids, liquids and gases; Superfluidity; Superconductivity; Condensed matter physics; Experimental techniques; The Journal encourages the submission of Rapid Communications and Special Issues.
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