Williams Sydney N, McElhinney Paul, Gunamony Shajan
Imaging Centre of Excellence, University of Glasgow, Glasgow, United Kingdom.
MR CoilTech Limited, Glasgow, United Kingdom.
Phys Med Biol. 2023 Jan 18;68(2). doi: 10.1088/1361-6560/aca4b7.
This paper reviews the field of multiple or parallel radiofrequency (RF) transmission for magnetic resonance imaging (MRI). Currently the use of ultra-high field (UHF) MRI at 7 tesla and above is gaining popularity, yet faces challenges with non-uniformity of the RF field and higher RF power deposition. Since its introduction in the early 2000s, parallel transmission (pTx) has been recognized as a powerful tool for accelerating spatially selective RF pulses and combating the challenges associated with RF inhomogeneity at UHF. We provide a survey of the types of dedicated RF coils used commonly for pTx and the important modeling of the coil behavior by electromagnetic (EM) field simulations. We also discuss the additional safety considerations involved with pTx such as the specific absorption rate (SAR) and how to manage them. We then describe the application of pTx with RF pulse design, including a practical guide to popular methods. Finally, we conclude with a description of the current and future prospects for pTx, particularly its potential for routine clinical use.
本文综述了用于磁共振成像(MRI)的多通道或并行射频(RF)传输领域。目前,7特斯拉及以上的超高场(UHF)MRI的应用越来越普遍,但面临着射频场不均匀性和更高的射频功率沉积等挑战。自21世纪初引入以来,并行传输(pTx)已被公认为是加速空间选择性射频脉冲以及应对与UHF射频不均匀性相关挑战的有力工具。我们对常用于pTx的专用射频线圈类型以及通过电磁场(EM)模拟对线圈行为进行的重要建模进行了综述。我们还讨论了pTx涉及的其他安全考虑因素,如比吸收率(SAR)以及如何进行管理。然后,我们描述了pTx在射频脉冲设计中的应用,包括常用方法的实用指南。最后,我们总结了pTx的当前和未来前景,特别是其在常规临床应用中的潜力。