Imaging Centre of Excellence, University of Glasgow, Glasgow, UK.
University of Paris-Saclay, CEA, CNRS, BAOBAB, NeuroSpin, Gif sur Yvette, France.
Magn Reson Med. 2023 Aug;90(2):770-783. doi: 10.1002/mrm.29654. Epub 2023 Mar 31.
Optimization of transmit array performance is crucial in ultra-high-field MRI scanners such as 11.7T because of the increased RF losses and RF nonuniformity. This work presents a new workflow to investigate and minimize RF coil losses, and to choose the optimum coil configuration for imaging.
An 8-channel transceiver loop-array was simulated to analyze its loss mechanism at 499.415 MHz. A folded-end RF shield was developed to limit radiation loss and improve the efficiency. The coil element length, and the shield diameter and length were further optimized using electromagnetic (EM) simulations. The generated EM fields were used to perform RF pulse design (RFPD) simulations under realistic constraints. The chosen coil design was constructed to demonstrate performance equivalence in bench and scanner measurements.
The use of conventional RF shields at 11.7T resulted in significantly high radiation losses of 18.4%. Folding the ends of the RF shield combined with optimizing the shield diameter and length increased the absorbed power in biological tissue and reduced the radiation loss to 2.4%. The peak of the optimal array was 42% more than the reference array. Phantom measurements validated the numerical simulations with a close match of within 4% of the predicted .
A workflow that combines EM and RFPD simulations to numerically optimize transmit arrays was developed. Results have been validated using phantom measurements. Our findings demonstrate the need for optimizing the RF shield in conjunction with array element design to achieve efficient excitation at 11.7T.
在 11.7T 等超高场 MRI 扫描仪中,由于射频(RF)损耗和 RF 不均匀性增加,传输阵列性能的优化至关重要。本研究提出了一种新的工作流程,用于研究和最小化 RF 线圈损耗,并为成像选择最佳的线圈配置。
模拟了一个 8 通道收发器环阵,以分析其在 499.415 MHz 下的损耗机制。开发了一种折叠式 RF 屏蔽,以限制辐射损耗并提高效率。进一步使用电磁(EM)模拟优化了线圈元件长度以及屏蔽的直径和长度。生成的 EM 场用于在实际约束下进行 RF 脉冲设计(RFPD)模拟。选择的线圈设计被构建以在台架和扫描仪测量中证明性能等效性。
在 11.7T 下使用传统的 RF 屏蔽会导致显著的高辐射损耗,达到 18.4%。折叠 RF 屏蔽的末端并优化屏蔽的直径和长度,可增加生物组织中的吸收功率,并将辐射损耗降低至 2.4%。最佳阵列的峰值比参考阵列高 42%。体模测量验证了数值模拟,预测值与实测值的吻合度在 4%以内。
开发了一种结合 EM 和 RFPD 模拟的工作流程,用于数值优化传输阵列。结果使用体模测量进行了验证。我们的研究结果表明,在 11.7T 下,需要优化 RF 屏蔽与阵列元件设计相结合,以实现有效的激励。