首页> 外文期刊>NeuroImage >A bi-planar coil system for nulling background magnetic fields in scalp mounted magnetoencephalography
【24h】

A bi-planar coil system for nulling background magnetic fields in scalp mounted magnetoencephalography

机译:一种双平面线圈系统,用于头皮安装磁脑中的磁场背景磁场

获取原文
获取原文并翻译 | 示例
           

摘要

Small, commercially-available Optically Pumped Magnetometers (OPMs) can be used to construct a wearable Magnetoencephalography (MEG) system that allows large head movements to be made during recording. The small dynamic range of these sensors however means that movement in the residual static magnetic field found inside typical Magnetically Shielded Rooms (MSRs) can saturate the sensor outputs, rendering the data unusable. This problem can be ameliorated by using a set of electromagnetic coils to attenuate the spatially-varying remnant field. Here, an array of bi-planar coils, which produce an open and accessible scanning environment, was designed and constructed. The coils were designed using a harmonic minimisation method previously used for gradient coil design in Magnetic Resonance Imaging (MRI). Six coils were constructed to nullBx,ByandBzas well as the three dominant field gradientsdBx/dz,dBy/dzanddBz/dz. The coils produce homogeneous (within ±5%) fields or field gradients over a volume of 40?×?40?×?40?cm3. This volume is sufficient to contain an array of OPMs, mounted in a 3D-printed scanner-cast, during basic and natural movements. Automated control of the coils using reference sensor measurements allows reduction of the largest component of the static field (Bx) from 21.8?±?0.2?nT to 0.47?±?0.08?nT. The largest gradient (dBx/dz) was reduced from 7.4?nT/m to 0.55?nT/m. High precision optical tracking allowed experiments involving controlled and measured head movements, which revealed that a rotation of the scanner-cast by ±34° and translation of ±9.7?cm of the OPMs in this field generated only a 1?nT magnetic field variation across the OPM array, when field nulling was applied. This variation could be further reduced to 0.04?nT by linear regression of field variations that were correlated with the measured motion parameters. To demonstrate the effectiveness of the bi-planar coil field cancellation system in a real MEG experiment, a novel measurement of retinotopy was investigated, where the stimulus remains fixed and head movements made by the subject shift the visual presentation to the lower left or right quadrants of the field of view. Left and right visual field stimulation produced the expected responses in the opposing hemisphere. This simple demonstration shows that the bi-planar coil system allows accurate OPM-MEG recordings to be made on an unrestrained subject.
机译:小型市售的光学泵浦磁力计(OPMS)可用于构造可携带的磁力摄影(MEG)系统,其允许在记录期间进行大的头部运动。然而,这些传感器的小动态范围意味着在典型的磁屏蔽室(MSRS)内的残余静磁场中的运动可以使传感器输出饱和,使数据无法使用。通过使用一组电磁线圈可以衰减空间不同的残余场来改善该问题。这里,设计并构造了一系列产生开放和可访问的扫描环境的双平面线圈。使用先前用于磁共振成像(MRI)的梯度线圈设计的谐波最小化方法设计了线圈。六个线圈被构造成Nullbx,Byandbzas,以及三个主导场梯度DBX / DZ,DBY / DzanddBZ / DZ。线圈在体积为40Ω·40?×40?40?40?40?CM3的均匀(在±5%)场或场梯度内产生均匀(在±5%)场或场梯度。该卷足以包含在基本和自然运动中安装在3D印刷扫描仪铸造中的OPM阵列。使用参考传感器测量的线圈的自动控制允许减少静态(Bx)的最大组分(Bx)从21.8?±0.2?nt至0.47?±0.08?NT。最大梯度(DBX / DZ)从7.4Δnt/ m减少至0.55Ω·nt / m。高精度光学跟踪允许涉及控制和测量的头部运动的实验,这揭示了扫描仪铸造的旋转±34°和该字段中OPM的±9.7Ωcm的翻译仅产生1?NT磁场变化当应用现场空缺时,OPM数组。通过与测量的运动参数相关的场变化的线性回归,该变化可以进一步降低到0.04·nt。为了证明在真实MEG实验中的双平面线圈场取消系统的有效性,研究了一种新的视网膜检查测量,其中刺激仍然固定,主体制作的头部移动将视觉呈现转移到左下象限或右象限视野。左右视野刺激产生了相对的半球中的预期反应。这个简单的演示表明,双平面线圈系统允许在无拘无束的主题上进行准确的OPM-MEG录制。

著录项

  • 来源
    《NeuroImage》 |2018年第2018期|共15页
  • 作者单位

    Sir Peter Mansfield Imaging Centre School of Physics and Astronomy University of Nottingham;

    Sir Peter Mansfield Imaging Centre School of Physics and Astronomy University of Nottingham;

    Sir Peter Mansfield Imaging Centre School of Physics and Astronomy University of Nottingham;

    Sir Peter Mansfield Imaging Centre School of Physics and Astronomy University of Nottingham;

    Sir Peter Mansfield Imaging Centre School of Physics and Astronomy University of Nottingham;

    Wellcome Centre for Human Neuroimaging Institute of Neurology University College London;

    QuSpin Inc;

    Wellcome Centre for Human Neuroimaging Institute of Neurology University College London;

    Sir Peter Mansfield Imaging Centre School of Physics and Astronomy University of Nottingham;

    Sir Peter Mansfield Imaging Centre School of Physics and Astronomy University of Nottingham;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 诊断学;
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号