首页> 外文期刊>BioMedical Engineering OnLine >Application of analyzer based X-ray imaging technique for detection of ultrasound induced cavitation bubbles from a physical therapy unit
【24h】

Application of analyzer based X-ray imaging technique for detection of ultrasound induced cavitation bubbles from a physical therapy unit

机译:基于分析仪的X射线成像技术在物理治疗仪中检测超声诱导的空化气泡的应用

获取原文
           

摘要

Background The observation of ultrasound generated cavitation bubbles deep in tissue is very difficult. The development of an imaging method capable of investigating cavitation bubbles in tissue would improve the efficiency and application of ultrasound in the clinic. Among the previous imaging modalities capable of detecting cavitation bubbles in vivo, the acoustic detection technique has the positive aspect of in vivo application. However the size of the initial cavitation bubble and the amplitude of the ultrasound that produced the cavitation bubbles, affect the timing and amplitude of the cavitation bubbles’ emissions. Methods The spatial distribution of cavitation bubbles, driven by 0.8835?MHz therapeutic ultrasound system at output power of 14 Watt, was studied in water using a synchrotron X-ray imaging technique, Analyzer Based Imaging (ABI). The cavitation bubble distribution was investigated by repeated application of the ultrasound and imaging the water tank. The spatial frequency of the cavitation bubble pattern was evaluated by Fourier analysis. Acoustic cavitation was imaged at four different locations through the acoustic beam in water at a fixed power level. The pattern of cavitation bubbles in water was detected by synchrotron X-ray ABI. Results The spatial distribution of cavitation bubbles driven by the therapeutic ultrasound system was observed using ABI X-ray imaging technique. It was observed that the cavitation bubbles appeared in a periodic pattern. The calculated distance between intervals revealed that the distance of frequent cavitation lines (intervals) is one-half of the acoustic wave length consistent with standing waves. Conclusion This set of experiments demonstrates the utility of synchrotron ABI for visualizing cavitation bubbles formed in water by clinical ultrasound systems working at high frequency and output powers as low as a therapeutic system.
机译:背景技术很难观察到超声波在组织深处产生的空化气泡。能够研究组织中空化气泡的成像方法的开发将提高超声的效率和在临床中的应用。在能够在体内检测空化气泡的先前成像方式中,声学检测技术在体内应用方面具有积极意义。但是,初始空化气泡的大小和产生空化气泡的超声波的振幅会影响空化气泡发射的时间和振幅。方法采用同步加速器X射线成像技术,基于分析仪的成像技术(ABI)在水中研究了0.8835?MHz治疗超声系统在14瓦输出功率下驱动的空化气泡的空间分布。通过重复施加超声波和对水箱成像来研究空化气泡分布。通过傅立叶分析评估空化气泡图案的空间频率。在水中以固定的功率水平通过声束在四个不同的位置对声空化成像。通过同步加速器X射线ABI检测水中的空化气泡模式。结果使用ABI X射线成像技术观察了治疗性超声系统驱动的空化气泡的空间分布。观察到空化气泡以周期性模式出现。计算出的间隔之间的距离表明,频繁的空化线(间隔)的距离是与驻波一致的声波长度的一半。结论这组实验证明了同步加速器ABI可以可视化临床超声系统在水中形成的空化气泡,这些超声系统在高频率下工作,输出功率低至治疗系统。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号