Progress in Understanding Radiofrequency Heating and Burn Injuries for Safer MR Imaging.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Minghui Tang, Toru Yamamoto
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引用次数: 1

Abstract

RF electromagnetic wave exposure during MRI scans induces heat and occasionally causes burn injuries to patients. Among all the types of physical injuries that have occurred during MRI examinations, RF burn injuries are the most common ones. The number of RF burn injuries increases as the static magnetic field of MRI systems increases because higher RFs lead to higher heating. The commonly believed mechanisms of RF burn injuries are the formation of a conductive loop by the patient's posture or cables, such as an electrocardiogram lead; however, the mechanisms of RF burn injuries that occur at the contact points, such as the bore wall and the elbow, remain unclear. A comprehensive understanding of RF heating is needed to address effective countermeasures against all RF burn injuries for safe MRI examinations. In this review, we summarize the occurrence of RF burn injury cases by categorizing RF burn injuries reported worldwide in recent decades. Safety standards and regulations governing RF heating that occurs during MRI examinations are presented, along with their theoretical and physiological backgrounds. The experimental assessment techniques for RF heating are then reviewed, and the development of numerical simulation techniques is explained. In addition, a comprehensive theoretical interpretation of RF burn injuries is presented. By including the results of recent experimental and numerical simulation studies on RF heating, this review describes the progress achieved in understanding RF heating from the standpoint of MRI burn injury prevention.

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了解射频加热和烧伤更安全的磁共振成像的进展。
MRI扫描过程中的射频电磁波暴露会产生热量,偶尔会导致患者烧伤。在MRI检查中发生的所有类型的物理损伤中,射频烧伤是最常见的。射频烧伤的数量随着MRI系统静态磁场的增加而增加,因为更高的射频会导致更高的加热。通常认为射频烧伤的机制是由患者的姿势或电缆(如心电图引线)形成导电回路;然而,发生在接触点(如钻孔壁和肘部)的射频烧伤的机制尚不清楚。为了安全的MRI检查,需要对射频加热有一个全面的了解,以解决针对所有射频烧伤的有效对策。在这篇综述中,我们通过对近几十年来世界范围内报道的射频烧伤进行分类,总结射频烧伤病例的发生情况。介绍了核磁共振检查过程中射频加热的安全标准和法规,以及它们的理论和生理背景。然后回顾了射频加热的实验评估技术,并解释了数值模拟技术的发展。此外,提出了射频烧伤的综合理论解释。通过包括最近射频加热的实验和数值模拟研究结果,本文从MRI烧伤预防的角度描述了在理解射频加热方面取得的进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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