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Acoustic properties of shell-encapsulated, gas-filled ultrasound contrast agents

机译:贝壳封装,充气超声造影剂的声学特性

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Experiments have shown that the acoustic properties of shell-encapsulated ultrasound contrast agents deviate from gas-bubble theory. The shell elasticity reduces the particles' compressibility, increasing their resonance frequency, and the shell viscosity increases the damping constant of the particle-liquid oscillating system. The aim of this study has been to find a model describing the acoustic scatter and attenuation from suspensions of contrast agent particles, at frequencies close to resonance for the particles. The shell is described as a visco-elastic material, with a complex Young's modulus E/sub c/ given by the Kelvin-Voigt model: E/sub c/=E+i/spl omega//spl mu//sub E/. Using a linear oscillator model for the particle-liquid system, the resonance frequency and damping constant were calculated, giving the scattering and extinction cross-sections as function of the particles' bulk modulus K and volume viscosity /spl mu//sub K/. This model has been used to describe an experimental contrast agent from Nycomed, by comparing theoretical calculations with measured acoustic attenuation spectra. The experimental contrast agent was found to have bulk modulus K=2.2 MPa. Previously published results on Albunex were recalculated using the same model, and Albunex microspheres were found to have bulk modulus K between 1.5 and 5 MPa, increasing with decreasing microsphere diameters. By modifying the Rayleigh-Plesset equation, we found that this model also predicts acoustic scatter at the second harmonic frequency.
机译:实验表明,壳包封的超声造影剂的声学性质偏离气泡理论。壳弹性降低了颗粒的压缩性,增加它们的共振频率,壳粘度增加了粒子液体振荡系统的阻尼常数。本研究的目的是找到一种模型,该模型描述了对造影剂颗粒的悬浮液中的声学散射和衰减,在靠近颗粒的共振的频率下。壳体被描述为粘弹性材料,具有复杂的杨氏模数E / Sub C /由Kelvin-Voigt模型给出:E / Sub C / = E + I / SPL OMEGA // SPL MU //子E / 。使用用于粒子液体系统的线性振荡器模型,计算共振频率和阻尼常数,使散射和消光横截面作为颗粒的散装量k和体积粘度/ SPL mu //子k / k / k /。通过比较具有测量声衰减光谱的理论计算,该模型用于描述来自Nycomed的实验造影剂。发现实验造影剂具有体积k = 2.2MPa。以前公布的关于抗抗抗抗抗抗型的结果使用相同的型号重新计算,并且发现抗秃头微球在1.5和5MPa之间具有体积k,随着微球直径的降低而增加。通过修改Rayleigh-Plesset方程,我们发现该模型还预测了第二谐波频率的声学散射。

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