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Toric focusing for radiation force applications using a toric lens coupled to a spherically focused transducer

机译:使用耦合到球面聚焦换能器的复曲面透镜的复曲面聚焦用于辐射力应用

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Dynamic elastography using radiation force requires that an ultrasound field be focused during hundreds of microseconds at a pressure of several megapascals. Here, we address the importance of the focal geometry. Although there is usually no control of the elevational focal width in generating a tissue mechanical response, we propose a tunable approach to adapt the focus geometry that can significantly improve radiation force efficiency. Several thin, in-house-made polydimethylsiloxane lenses were designed to modify the focal spot of a spherical transducer. They exhibited low absorption and the focal spot widths were extended up to 8-fold in the elevation direction. Radiation force experiments demonstrated an 8-fold increase in tissue displacements using the same pressure level in a tissue-mimicking phantom with a similar shear wave spectrum, meaning it does not affect elastography resolution. Our results demonstrate that larger tissue responses can be obtained for a given pressure level, or that similar response can be reached at a much lower mechanical index (MI). We envision that this work will impact 3-D elastography using 2-D phased arrays, where such shaping can be achieved electronically with the potential for adaptive optimization.
机译:使用辐射力的动态弹性成像需要在几微帕的压力下在数百微秒内聚焦超声场。在这里,我们讨论焦点几何的重要性。尽管通常在生成组织机械响应时无法控制仰角焦距,但我们提出了一种可调整的方法来调整焦点几何形状,从而可以显着提高辐射力效率。设计了几种内部薄的聚二甲基硅氧烷透镜以修改球形换能器的焦点。它们表现出低吸收性,并且焦点宽度在仰角方向上扩展到8倍。辐射力实验表明,在具有相似剪切波谱的模仿模拟体模中,在相同压力水平下,组织位移增加了8倍,这意味着它不会影响弹性成像的分辨率。我们的结果表明,在给定的压力水平下可以获得较大的组织反应,或者在低得多的机械指数(MI)下也可以达到类似的反应。我们设想这项工作将影响使用2D相控阵的3D弹性成像,其中可以通过电子方式实现这种整形并具有进行自适应优化的潜力。

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