首页> 外文期刊>Health Physics: Official Journal of the Health Physics Society >Acoustic pressure waves induced in human heads by RF pulses from high-field MRI scanners.
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Acoustic pressure waves induced in human heads by RF pulses from high-field MRI scanners.

机译:来自高场MRI扫描仪的RF脉冲在人的头部中引起的声压波。

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The current evolution toward greater image resolution from magnetic resonance image (MRI) scanners has prompted the exploration of higher strength magnetic fields and use of higher levels of radio frequencies (RFs). Auditory perception of RF pulses by humans has been reported during MRI with head coils. It has shown that the mechanism of interaction for the auditory effect is caused by an RF pulse-induced thermoelastic pressure wave inside the head. We report a computational study of the intensity and frequency of thermoelastic pressure waves generated by RF pulses in the human head inside high-field MRI and clinical scanners. The U.S. Food and Drug Administration (U.S. FDA) guides limit the local specific absorption rate (SAR) in the body-including the head-to 8 W kg(-1). We present results as functions of SAR and show that for a given SAR the peak acoustic pressures generated in the anatomic head model were essentially the same at 64, 300, and 400 MHz (1.5, 7.0, and 9.4 T). Pressures generated in the anatomic head are comparable to the threshold pressure of 20 mPa for sound perception by humans at the cochlea for 4 W kg(-1). Moreover, results indicate that the peak acoustic pressure in the brain is only 2 to 3 times the auditory threshold at the U.S. FDA guideline of 8 W kg(-1). Even at a high SAR of 20 W kg(-1), where the acoustic pressure in the brain could be more than 7 times the auditory threshold, the sound pressure levels would not be more than 17 db above threshold of perception at the cochlea.
机译:当前从磁共振图像(MRI)扫描仪向更高图像分辨率发展的趋势促使人们探索更高强度的磁场并使用更高水平的射频(RF)。在头戴线圈的MRI期间,已经报道了人类对RF脉冲的听觉感知。研究表明,听觉作用的相互作用机制是由RF脉冲在头部内部引起的热弹性压力波引起的。我们报告了在高场MRI和临床扫描仪内部人头中RF脉冲产生的热弹性压力波的强度和频率的计算研究。美国食品药品监督管理局(U.S. FDA)指南将身体的局部比吸收率(SAR)限制在包括头部在内的8 W kg(-1)。我们提供了作为SAR函数的结果,并表明对于给定的SAR,解剖头模型中产生的峰值声压在64、300和400 MHz(1.5、7.0和9.4 T)下基本相同。解剖头产生的压力可与人类在耳蜗处感知4 W kg(-1)的声音时的阈值压力20 mPa相媲美。此外,结果表明,在美国FDA的8 W kg(-1)指南中,大脑的峰值声压仅为听觉阈值的2至3倍。即使在20 W kg(-1)的高SAR下,大脑中的声压可能超过听觉阈值的7倍,声压级也不会超过耳蜗感知阈值的17 db以上。

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