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使用逆边界元法开发用于54 mT脑成像的头盔形状双通道射频线圈。

Development of a Helmet-Shape Dual-Channel RF coil for brain imaging at 54 mT using inverse boundary element method.

作者信息

Meng Fanqin, Guo Yi, Wei He, Xu Zheng

机构信息

School of Electrical Engineering, Chongqing University, Chongqing 400044, China.

Central Hospital, Chongqing University, Chongqing 400014, China.

出版信息

J Magn Reson. 2024 Mar;360:107636. doi: 10.1016/j.jmr.2024.107636. Epub 2024 Feb 14.

Abstract

Very-low field (VLF) magnetic resonance imaging (MRI) offers advantages in term of size, weight, cost, and the absence of robust shielding requirements. However, it encounters challenges in maintaining a high signal-to-noise ratio (SNR) due to low magnetic fields (below 100 mT). Developing a close-fitting radio frequency (RF) receive coil is crucial to improve the SNR. In this study, we devised and optimized a helmet-shaped dual-channel RF receive coil tailored for brain imaging at a magnetic field strength of 54 mT (2.32 MHz). The methodology integrates the inverse boundary element method (IBEM) to formulate initial coil structures and wiring patterns, followed by optimization through introducing regularization terms. This approach frames the design process as an inverse problem, ensuring a close fit to the head contour. Combining theoretical optimization with physical measurements of the coil's AC resistance, we identified the optimal loop count for both axial and radial coils as nine and eight loops, respectively. The effectiveness of the designed dual-channel coil was verified through the imaging of a CuSO4 phantom and a healthy volunteer's brain. Notably, the in-vivo images exhibited an approximate 16-25 % increase in SNR with poorer B homogeneity compared to those obtained using single-channel coils. The high-quality images achieved by T1, T2-weighted, and fluid-attenuated inversion-recovery (FLAIR) protocols enhance the diagnostic potential of VLF MRI, particularly in cases of cerebral stroke and trauma patients. This study underscores the adaptability of the design methodology for the customization of RF coil structures in alignment with individual imaging requirements.

摘要

极低场(VLF)磁共振成像(MRI)在尺寸、重量、成本以及无需强大屏蔽要求方面具有优势。然而,由于低磁场(低于100 mT),它在维持高信噪比(SNR)方面面临挑战。开发贴合的射频(RF)接收线圈对于提高信噪比至关重要。在本研究中,我们设计并优化了一种头盔形状的双通道RF接收线圈,专为在54 mT(2.32 MHz)磁场强度下进行脑成像而定制。该方法集成了逆边界元法(IBEM)来制定初始线圈结构和布线模式,随后通过引入正则化项进行优化。这种方法将设计过程构建为一个逆问题,确保紧密贴合头部轮廓。结合理论优化与线圈交流电阻的物理测量,我们确定轴向和径向线圈的最佳匝数分别为9匝和8匝。通过对硫酸铜体模和健康志愿者脑部成像验证了所设计的双通道线圈的有效性。值得注意的是,与使用单通道线圈获得的图像相比,体内图像的信噪比提高了约16 - 25%,但B均匀性较差。通过T1、T2加权和液体衰减反转恢复(FLAIR)协议获得的高质量图像增强了VLF MRI的诊断潜力,特别是在脑卒中和创伤患者的情况下。本研究强调了设计方法对于根据个体成像需求定制RF线圈结构的适应性。

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