Zhao Yunkun, Bhosale Aditya A, Zhang Xiaoliang
Department of Biomedical Engineering, State University of New York at Buffalo, Buffalo, NY, USA.
Department of Electrical Engineering, State University of New York at Buffalo, Buffalo, NY, USA.
Quant Imaging Med Surg. 2024 Dec 5;14(12):8083-8098. doi: 10.21037/qims-24-1318. Epub 2024 Oct 28.
Low-field open magnetic resonance imaging (MRI) systems, typically operating at magnetic field strengths below 1 Tesla, has greatly expanded the accessibility of MRI technology to meet a wide range of patient needs. However, the inherent challenges of low-field MRI, such as limited signal-to-noise ratios and limited availability of dedicated radiofrequency (RF) coils, have prompted the need for innovative coil designs that can improve imaging quality and diagnostic capabilities. In this work, we introduce a multimodal axial array resonator and its implementation in a volume coil, or referred to as a coupled stack-up volume coil, to address these challenges in low-field open MRI.
A prototype coupled stack-up volume coil was designed with optimized coil spacing to improve B1 field homogeneity. Finite difference time-domain (FDTD) simulations were conducted to evaluate the coil's performance, including B1 field efficiency and specific absorption rate (SAR). Bench tests were performed to validate the simulated results using oil phantoms. Comparisons were made with a solenoid coil, a birdcage coil, and an equal gap coupled coil throughout the study.
Numeral electromagnetic studies demonstrate the superior performance of the proposed coupled stack-up volume coil, achieving 47.7% higher transmit/receive efficiency and 68% more uniform magnetic field distribution compared to conventional birdcage coils. The results of the bench tests show that the achieved B1 field efficiency of the coupled stack-up volume coil is 11.48 , representing a 57.3% improvement in comparison to that of a conventional birdcage coil.
A multimodal axial array resonator technique or coupled stack-up technique is successfully developed for the design of low field MR RF volume coils. The proposed coupled stack-up volume coil outperforms the conventional volume coils in terms of B1 efficiency, imaging coverage, and low-frequency operation capability. This design provides a robust and simple solution to the low-field MR RF coil design.
低场开放式磁共振成像(MRI)系统通常在低于1特斯拉的磁场强度下运行,极大地扩展了MRI技术的可及性,以满足广泛的患者需求。然而,低场MRI的固有挑战,如有限的信噪比和专用射频(RF)线圈的可用性有限,促使人们需要创新的线圈设计,以提高成像质量和诊断能力。在这项工作中,我们引入了一种多模态轴向阵列谐振器及其在体线圈中的实现,即耦合堆叠体线圈,以应对低场开放式MRI中的这些挑战。
设计了一个原型耦合堆叠体线圈,优化了线圈间距以提高B1场均匀性。进行了时域有限差分(FDTD)模拟,以评估线圈的性能,包括B1场效率和比吸收率(SAR)。使用油模体进行了基准测试,以验证模拟结果。在整个研究过程中,与螺线管线圈、鸟笼线圈和等间隙耦合线圈进行了比较。
数值电磁研究表明,所提出的耦合堆叠体线圈具有优越的性能,与传统鸟笼线圈相比,发射/接收效率提高了47.7%,磁场分布均匀性提高了68%。基准测试结果表明,耦合堆叠体线圈实现的B1场效率为11.48,与传统鸟笼线圈相比提高了57.3%。
成功开发了一种用于低场MR RF体线圈设计的多模态轴向阵列谐振器技术或耦合堆叠技术。所提出的耦合堆叠体线圈在B1效率、成像覆盖范围和低频运行能力方面优于传统体线圈。这种设计为低场MR RF线圈设计提供了一种强大而简单的解决方案。