射频线圈可最大限度地减少电子元件,同时提高 7 特斯拉啮齿动物磁共振成像的性能。

IF 1.3 Q3 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
F Vazquez, A Villareal, J Lazovic, R Martin, S E Solis-Najera, A O Rodriguez
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引用次数: 0

摘要

本研究介绍了一种新颖的体积线圈设计,其特点是两个开槽端板由六个梯级连接,类似于传统的鸟笼线圈。受曼菲尔德空腔谐振器理论的启发,端环上配备了六个均匀分布的圆形槽,该理论认为圆形槽可以产生基线谐振频率。与其他体积线圈相比,这种拟议线圈设计的一个显著优点是减少了对电子元件的依赖,从而使其更加节约。此外,线圈的尺寸可以提前从理论上计算出来,从而提高了实用性。为了评估线圈的性能和安全性,我们使用圆柱形盐水模型和有限元法模拟了电磁场和特定吸收率。此外,还构建了一个收发线圈原型,该原型针对 7 特斯拉进行了优化,并以正交方式驱动,从而实现了对大鼠的全身成像。通过实验测量获得的线圈原型共振频率与曼斯菲尔德理论得出的理论频率非常吻合。为了验证线圈设计,我们采集了模型图像,以证明其可行性并评估其性能。这些图像还用于验证磁场模拟。实验结果与模拟结果十分吻合,证实了所提出的线圈设计的可靠性。重要的是,与类似尺寸的鸟笼线圈相比,原型线圈显示出明显的改进,表明其具有增强成像能力的潜力。与鸟笼线圈相比,原型线圈的噪声系数更低(NFbirdcage- NFslotcage=0.9)。幻像数据也用于计算图像信噪比,得出信噪比槽/信噪比鸟笼= 34.36/22.25。这项研究通过成功的大鼠全身成像证明了线圈设计的可行性,为其作为啮齿动物高场强磁共振成像应用的可行方案提供了证据支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
RF coil that minimizes electronic components while enhancing performance for rodent MRI at 7 Tesla.

This study introduces a novel volume coil design that features two slotted end-plates connected by six rungs, resembling the traditional birdcage coil. The end rings are equipped with six evenly distributed circular slots, inspired by Mansfield's cavity resonator theory, which suggests that circular slots can generate a baseline resonant frequency. One notable advantage of this proposed coil design is its reduced reliance on electronic components compared to other volume coils, making it more efficient. Additionally, the dimensions of the coil can be theoretically computed in advance, enhancing its practicality. To evaluate the performance and safety of the coil, electromagnetic field and specific absorption rate simulations were simulated using a cylindrical saline phantom and the finite element method. Furthermore, a transceiver coil prototype optimized for 7 Tesla and driven in quadrature was constructed, enabling whole-body imaging of rats. The resonant frequency of the coil prototype obtained through experimental measurements closely matched the theoretical frequency derived from Mansfield's theory. To validate the coil design, phantom images were acquired to demonstrate its viability and assess its performance. These images also served to validate the magnetic field simulations. The experimental results aligned well with the simulation findings, confirming the reliability of the proposed coil design. Importantly, the prototype coil showcased significant improvements over a similarly-sized birdcage coil, indicating its potential for enhanced performance. The noise figure was lower in the prototype versus the birdcage coil (NFbirdcage-NFslotcage= 0.7). Phantom image data were also used to compute the image SNR, giving SNRslotcage/SNRbirdcage= 34.36/24.34. By proving the feasibility of the coil design through successful rat whole-body imaging, the study provides evidence supporting its potential as a viable option for high-field MRI applications on rodents.

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来源期刊
Biomedical Physics & Engineering Express
Biomedical Physics & Engineering Express RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
2.80
自引率
0.00%
发文量
153
期刊介绍: BPEX is an inclusive, international, multidisciplinary journal devoted to publishing new research on any application of physics and/or engineering in medicine and/or biology. Characterized by a broad geographical coverage and a fast-track peer-review process, relevant topics include all aspects of biophysics, medical physics and biomedical engineering. Papers that are almost entirely clinical or biological in their focus are not suitable. The journal has an emphasis on publishing interdisciplinary work and bringing research fields together, encompassing experimental, theoretical and computational work.
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