Palmeri Mark L, Frinkley Kristin D, Oldenburg Katherine G, Nightingale Kathryn R
Department of Biomedical Engineering, Duke University, Durham, NC 27708, USA.
Ultrason Imaging. 2006 Apr;28(2):114-28. doi: 10.1177/016173460602800204.
A new method to characterize a material's attenuation using acoustic radiation force is proposed. Comparison of displacement magnitudes generated in a homogeneous material by acoustic radiation force excitations can be used to estimate the material's attenuation when the excitations are applied over a range of focal depths while maintaining a constant lateral focal configuration. Acoustic attenuations are related to the inverse of the excitation focal depth that yields the greatest focal zone displacement for this protocol. Experimental studies in calibrated tissue-mimicking phantoms are presented to demonstrate the feasibility of this method. Attenuations ranging from 0.3-1.5 dB/cm/MHz were characterized over excitation focal depths ranging from 5-30 mm, with an accuracy of 0.1 +/- 0.15 dB/cm/MHz. As currently implemented, this method is limited to characterizing materials that have homogeneous material properties and acoustic attenuations. This method for characterizing acoustic attenuation can be performed using conventional diagnostic scanners without any additional hardware and could also be performed concurrently with acoustic radiation force-based imaging modalities to generate images of mechanical properties and attenuation that are spatially co-registered with B-mode images.
提出了一种利用声辐射力表征材料衰减的新方法。当在一系列焦深上施加激励同时保持恒定的横向聚焦配置时,通过声辐射力激励在均匀材料中产生的位移大小比较可用于估计材料的衰减。对于该方案,声衰减与产生最大焦区位移的激励焦深的倒数相关。给出了在校准的仿组织体模中的实验研究,以证明该方法的可行性。在5 - 30毫米的激励焦深范围内表征了0.3 - 1.5分贝/厘米/兆赫的衰减,精度为0.1±0.15分贝/厘米/兆赫。按照目前的实现方式,该方法仅限于表征具有均匀材料特性和声衰减的材料。这种表征声衰减的方法可以使用传统诊断扫描仪来执行,无需任何额外硬件,也可以与基于声辐射力的成像模式同时进行,以生成与B模式图像空间配准的力学性能和衰减图像。