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使用水听器和红外成象对聚焦超声场中的声强进行定量评估。

Quantitative assessment of acoustic intensity in the focused ultrasound field using hydrophone and infrared imaging.

机构信息

Biomedical Instrument Institute, School of Biomedical Engineering, Shanghai Jiao Tong University, Shanghai, China; School of Computer, Jiangxi University of Traditional Chinese Medicine, Nanchang, China.

出版信息

Ultrasound Med Biol. 2013 Nov;39(11):2021-33. doi: 10.1016/j.ultrasmedbio.2013.05.004. Epub 2013 Aug 22.

Abstract

With the popularity of ultrasound therapy in clinics, characterization of the acoustic field is important not only to the tolerability and efficiency of ablation, but also for treatment planning. A quantitative method was introduced to assess the intensity distribution of a focused ultrasound beam using a hydrophone and an infrared camera with no prior knowledge of the acoustic and thermal parameters of the absorber or the configuration of the array elements. This method was evaluated in both theoretical simulations and experimental measurements. A three-layer model was developed to calculate the acoustic field in the absorber, the absorbed acoustic energy during the sonication and the consequent temperature elevation. Experiments were carried out to measure the acoustic pressure with the hydrophone and the temperature elevation with the infrared camera. The percentage differences between the derived results and the simulation are <4.1% for on-axis intensity and <21.1% for -6-dB beam width at heating times up to 360 ms in the focal region of three phased-array ultrasound transducers using two different absorbers. The proposed method is an easy, quick and reliable approach to calibrating focused ultrasound transducers with satisfactory accuracy.

摘要

随着超声治疗在临床上的普及,声场的特性分析不仅对消融的耐受性和效率很重要,而且对治疗计划也很重要。本文提出了一种使用水听器和红外摄像机的定量方法来评估聚焦超声束的强度分布,该方法无需事先了解吸收体的声学和热学参数以及阵列元件的配置。该方法在理论模拟和实验测量中都得到了评估。建立了一个三层模型来计算吸收体中的声场、超声处理期间吸收的声能以及随之产生的温升。实验测量了水听器的声压和红外摄像机的温升。在三个相控阵超声换能器的焦域内,使用两种不同的吸收体,在加热时间高达 360ms 的情况下,衍生结果与模拟结果的差异小于 4.1%(在轴强度)和小于 21.1%(-6dB 束宽)。该方法是一种简单、快速和可靠的校准聚焦超声换能器的方法,具有令人满意的准确性。

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