Department of Biomedical Engineering, Erasmus Medical Centre, Rotterdam, The Netherlands.
IEEE Trans Ultrason Ferroelectr Freq Control. 2010;57(2):455-68. doi: 10.1109/TUFFC.2010.1426.
For several years, the standard in ultrasound imaging has been second-harmonic imaging. A new imaging technique dubbed "super-harmonic imaging" (SHI) was recently proposed. It takes advantage of the higher - third to fifth - harmonics arising from nonlinear propagation or ultrasound-contrast-agent (UCA) response. Next to its better suppression of near-field artifacts, tissue SHI is expected to improve axial and lateral resolutions resulting in clearer images than second-harmonic imaging. When SHI is used in combination with UCAs, a better contrast-to-tissue ratio can be obtained. The use of SHI implies a large dynamic range and requires a sufficiently sensitive array over a frequency range from the transmission frequency up to its fifth harmonic (bandwidth > 130%). In this paper, we present the characteristics and performance of a new interleaved dual frequency array built chiefly for SHI. We report the rationale behind the design choice, frequencies, aperture, and piezomaterials used. The array is efficient both in transmission and reception with well-behaved transfer functions and a combined -6-dB bandwidth of 144%. In addition, there is virtually no contamination of the harmonic components by spurious transducer transmission, due to low element-to-element crosstalk (< 30 dB) and a low transmission efficiency of the odd harmonics (< 46 dB). The interleaved array presented in this article possesses ideal characteristics for SHI and is suitable for other methods like second-harmonic, subharmonic, and second-order ultrasound field (SURF) imaging.
几年来,超声成象的标准一直是二次谐波成象。最近提出了一种新的成象技术,称为“超谐波成象”(SHI)。它利用非线性传播或超声造影剂(UCA)响应产生的更高的三到五次谐波。除了更好地抑制近场伪影外,组织 SHI 有望提高轴向和侧向分辨率,从而产生比二次谐波成象更清晰的图像。当 SHI 与 UCAs 结合使用时,可以获得更好的对比与组织比率。使用 SHI 意味着需要一个大的动态范围,并在从发射频率到其第五次谐波的频率范围内(带宽> 130%)使用足够灵敏的阵列。在本文中,我们介绍了主要用于 SHI 的新型交错双频阵列的特点和性能。我们报告了设计选择、频率、孔径和使用的压电材料背后的原理。该阵列在传输和接收方面都非常有效,具有良好的传输函数和 144%的组合-6dB 带宽。此外,由于元件间串扰低(<30dB),奇次谐波的传输效率低(<46dB),谐波分量几乎没有由杂散换能器传输造成的污染。本文介绍的交错阵列具有 SHI 的理想特性,适用于其他方法,如二次谐波、亚谐波和二阶超声场(SURF)成象。