矢量流成像孔径设计分析

R. F. Kerr, M.E. Anderson
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引用次数: 2

摘要

本文介绍了利用外差空间正交法对矢量流估计的速度上限进行研究的结果。由于这高度依赖于apodiization,我们研究了一组apodiization窗口,旨在探索扩大实际速度范围的方法。外差空间正交(HSQ)是最近描述的矢量流技术,已被证明可以在轴向和横向方向上提供准确的流量估计。由该技术产生的复杂PSF诱导以与散射体横向速度成比例的频率穿越分辨率体积的散射体的接收回波调制。我们测量了这种调制的相变速率,以提供对横向流动速度分量的估计。该技术可扩展到二维阵列的三维矢量流估计。我们预计横向跟踪方法一般会受到许多因素的限制,包括PSF波束宽度和系统振幅灵敏度。使用西门子Elegra超声扫描仪和7.5 MHz线性阵列,我们模拟了组织模拟模型中每步高达405 /spl mu/m的流量,对应于在PRF为10 kHz时速度高达4.05 m/秒,多普勒角为60/spl°和90/spl°。我们估计,在90/spl角/多普勒角的f/2几何形状下,横向速度相对偏差在5%以内,最高可达315 cm/秒。空间正交接收孔径采用双叶Blackman apodization,宽度为1/2D,其中D为阵列的全宽度。在类似条件下对系统进行的计算机模拟得出的横向速度估计高达303厘米/秒。正如预期的那样,最大估计速度随震源深度的变化而变化。在模拟中,在75毫米的焦深下,相同的孔径估计流速高达672厘米/秒,代表f/5几何形状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aperture design analysis for vector flow imaging
We present the results of a study exploring the upper velocity limit of vector flow estimation with Heterodyned Spatial Quadrature. Since this is highly dependent on apodization, we investigated a set of apodization windows designed to explore means of extending the practical velocity range. Heterodyned Spatial Quadrature (HSQ) is a recently described vector flow technique that has been shown to provide accurate flow estimates in both the axial and lateral directions. The complex PSF created by this technique induces a modulation in the received echo of a scatterer traversing the resolution volume at a frequency proportional to the scatterer lateral velocity. We measure the rate of phase change of this modulation to provide an estimate of the lateral flow velocity component. The technique is extendible to 3D vector flow estimation with a 2D array. We expect lateral tracking methods in general to be limited by a number of factors including the PSF beam width and the system amplitude sensitivity. Using a Siemens Elegra ultrasound scanner with a 7.5 MHz linear array, we simulated flow up to 405 /spl mu/m per step in a tissue-mimicking phantom, corresponding to velocities up to 4.05 m/sec for a PRF of 10 kHz, at Doppler angles of 60/spl deg/ and 90/spl deg/. We estimated lateral velocities to within 5% relative bias up to 315 cm/sec in an f/2 geometry at a 90/spl deg/ Doppler angle. The spatial quadrature receive aperture utilized a bi-lobed Blackman apodization with a width of 1/2D, where D is the full width of the array. Computer simulations of the system under similar conditions produced lateral velocity estimates up to 303 cm/sec. As expected, the maximum estimable velocity scales with focal depth. In simulations, the same aperture estimated flow velocities up to 672 cm/sec at a focal depth of 75 mm, representing an f/5 geometry.
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