首页> 外文期刊>Methods: A Companion to Methods in Enzymology >Technical aspects: Development, manufacture and installation of a cryo-cooled HTS coil system for high-resolution in-vivo imaging of the mouse at 1.5T.
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Technical aspects: Development, manufacture and installation of a cryo-cooled HTS coil system for high-resolution in-vivo imaging of the mouse at 1.5T.

机译:技术方面:开发,制造和安装用于1.5T鼠标的高分辨率体内成像的低温HTS线圈系统。

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摘要

Signal-to-noise ratio improvement is of major importance to achieve microscopic spatial resolution in magnetic resonance experiments. Magnetic resonance imaging of small animals is particularly concerned since it typically requires voxels of less than (100mum)(3) to observe the small anatomical structures having size reduction by a factor of more than 10 as compared to human being. The signal-to-noise ratio can be increased by working at high static magnetic field strengths, but the biomedical interest of such high-field systems may be limited due to field-dependant contrast mechanisms and severe technological difficulties. An alternative approach that allows working in clinical imaging system is to improve the sensitivity of the radio-frequency receiver coil. This can be done using small cryogenically operated coils made either of copper or high-temperature superconducting material. We report the technological development of cryo-cooled superconducting coils for high-resolution imaging in a whole-bodymagnetic resonance scanner operating at 1.5T. The technological background supporting this development is first addressed, including HTS coil design, simulation tools, cryogenic mean description and electrical characterization procedure. To illustrate the performances of superconducting coils for magnetic resonance imaging at intermediate field strength, in-vivo mouse images of various anatomic sites acquired with a 12mm diameter cryo-cooled superconducting coil are presented.
机译:信噪比的提高对于实现磁共振实验中的微观空间分辨率至关重要。小型动物的磁共振成像特别受关注,因为它通常需要小于(100mum)(3)的体素才能观察到与人类相比尺寸缩小了10倍以上的小型解剖结构。可以通过在高静态磁场强度下工作来提高信噪比,但是由于依赖于场的对比机制和严重的技术难题,此类高场系统的生物医学兴趣可能会受到限制。一种允许在临床成像系统中工作的替代方法是提高射频接收器线圈的灵敏度。这可以使用由铜或高温超导材料制成的小型低温操作线圈来完成。我们报告了在1.5T下运行的全身磁共振扫描仪中用于高分辨率成像的低温冷却超导线圈的技术发展。首先介绍了支持该开发的技术背景,包括高温超导线圈设计,仿真工具,低温均值描述和电特性描述程序。为了说明在中等场强下进行磁共振成像的超导线圈的性能,介绍了使用直径为12mm的超冷线圈获取的各种解剖部位的体内小鼠图像。

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