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具有改进冷却性能的主动屏蔽多层梯度线圈设计。

Actively shielded multi-layer gradient coil designs with improved cooling properties.

作者信息

Leggett J, Crozier S, Bowtell R W

机构信息

Magnetic Resonance Centre, School of Physics and Astronomy, University of Nottingham, Nottingham NG7 2RD, UK.

出版信息

J Magn Reson. 2003 Dec;165(2):196-207. doi: 10.1016/j.jmr.2003.08.002.

Abstract

In standard cylindrical gradient coils consisting of a single layer of wires, a limiting factor in achieving very large magnetic field gradients is the rapid increase in coil resistance with efficiency. This is a particular problem in small-bore scanners, such as those used for MR microscopy. By adopting a multi-layer design in which the coil wires are allowed to spread out into multiple layers wound at increasing radii, a more favourable scaling of resistance with efficiency is achieved, thus allowing the design of more powerful gradient coils with acceptable resistance values. Previously this approach has been applied to the design of unshielded, longitudinal, and transverse gradient coils. Here, the multi-layer approach has been extended to allow the design of actively shielded multi-layer gradient coils, and also to produce coils exhibiting enhanced cooling characteristics. An iterative approach to modelling the steady-state temperature distribution within the coil has also been developed. Results indicate that a good level of screening can be achieved in multi-layer coils, that small versions of such coils can yield higher efficiencies at fixed resistance than conventional two-layer (primary and screen) coils, and that performance improves as the number of layers of increases. Simulations show that by optimising multi-layer coils for cooling it is possible to achieve significantly higher gradient strengths at a fixed maximum operating temperature. A four-layer coil of 8 mm inner diameter has been constructed and used to test the steady-state temperature model.

摘要

在由单层导线组成的标准圆柱形梯度线圈中,实现非常大的磁场梯度的一个限制因素是线圈电阻随效率的快速增加。这在小口径扫描仪中是一个特别的问题,例如用于磁共振显微镜检查的那些扫描仪。通过采用多层设计,其中允许线圈导线展开成以递增半径缠绕的多层,实现了电阻与效率的更有利缩放,从而允许设计具有可接受电阻值的更强大的梯度线圈。以前这种方法已应用于非屏蔽、纵向和横向梯度线圈的设计。在此,多层方法已扩展到允许设计有源屏蔽多层梯度线圈,并且还能制造出具有增强冷却特性的线圈。还开发了一种用于对线圈内稳态温度分布进行建模的迭代方法。结果表明,多层线圈可以实现良好的屏蔽水平,这种小尺寸线圈在固定电阻下比传统的两层(初级和屏蔽)线圈能产生更高的效率,并且随着层数增加性能会提高。模拟表明,通过优化多层线圈的冷却,可以在固定的最大工作温度下实现显著更高的梯度强度。已构建了一个内径为8毫米的四层线圈并用于测试稳态温度模型。

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