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杜罗伊特(Duolith)声场特性:临床冲击波治疗设备的测量和建模。

Acoustic field characterization of the Duolith: measurements and modeling of a clinical shock wave therapy device.

机构信息

Center for Industrial and Medical Ultrasound, Applied Physics Laboratory, University of Washington, 1013 NE 40th Street, Seattle, Washington 98105, USA.

出版信息

J Acoust Soc Am. 2013 Aug;134(2):1663-74. doi: 10.1121/1.4812885.

Abstract

Extracorporeal shock wave therapy (ESWT) uses acoustic pulses to treat certain musculoskeletal disorders. In this paper the acoustic field of a clinical portable ESWT device (Duolith SD1) was characterized. Field mapping was performed in water for two different standoffs of the electromagnetic head (15 or 30 mm) using a fiber optic probe hydrophone. Peak positive pressures at the focus ranged from 2 to 45 MPa, while peak negative pressures ranged from -2 to -11 MPa. Pulse rise times ranged from 8 to 500 ns; shock formation did not occur for any machine settings. The maximum standard deviation in peak pressure at the focus was 1.2%, indicating that the Duolith SD1 generates stable pulses. The results compare qualitatively, but not quantitatively with manufacturer specifications. Simulations were carried out for the short standoff by matching a Khokhlov-Zabolotskaya-Kuznetzov equation to the measured field at a plane near the source, and then propagating the wave outward. The results of modeling agree well with experimental data. The model was used to analyze the spatial structure of the peak pressures. Predictions from the model suggest that a true shock wave could be obtained in water if the initial pressure output of the device were doubled.

摘要

体外冲击波疗法 (ESWT) 使用声波脉冲治疗某些肌肉骨骼疾病。本文对一种临床便携式 ESWT 设备(Duolith SD1)的声场进行了研究。在水介质中,使用光纤探头水听器对电磁式冲击波源的两个不同间距(15 或 30mm)进行了场映射。在焦点处的峰值正压范围为 2 至 45MPa,而峰值负压范围为-2 至-11MPa。脉冲上升时间范围为 8 至 500ns;对于任何机器设置,都不会产生冲击波。焦点处的峰值压力最大标准偏差为 1.2%,表明 Duolith SD1 产生的脉冲稳定。结果与制造商规格进行了定性比较,但没有进行定量比较。通过将 Khokhlov-Zabolotskaya-Kuznetzov 方程与源附近平面上的测量场匹配,对短间距进行了模拟,然后向外传播波。模型的结果与实验数据吻合较好。该模型用于分析峰值压力的空间结构。模型预测,如果设备的初始压力输出加倍,那么在水中可能会产生真正的冲击波。

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