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Ultrasonic excitation of a bubble inside a deformable tube: Implications for ultrasonically induced hemorrhage

机译:超声激发可变形管内气泡:超声诱发的出血的意义

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摘要

Various independent investigations indicate that the presence of microbubbles within blood vessels may increase the likelihood of ultrasound-induced hemorrhage. To explore potential damage mechanisms, an axisymmetric coupled finite element and boundary element code was developed and employed to simulate the response of an acoustically excited bubble centered within a deformable tube. As expected, the tube mitigates the expansion of the bubble. The maximum tube dilation and maximum hoop stress were found to occur well before the bubble reached its maximum radius. Therefore, it is not likely that the expanding low pressure bubble pushes the tube wall outward. Instead, simulation results indicate that the tensile portion of the acoustic excitation plays a major role in tube dilation and thus tube rupture. The effects of tube dimensions (tube wall thickness 1–5 μm), material properties (Young’s modulus 1–10 MPa), ultrasound frequency (1–10 MHz), and pressure amplitude (0.2–1.0 MPa) on bubble response and tube dilation were investigated. As the tube thickness, tube radius, and acoustic frequency decreased, the maximum hoop stress increased, indicating a higher potential for tube rupture and hemorrhage.
机译:各种独立研究表明,血管内微气泡的存在可能会增加超声导致的出血的可能性。为了探索潜在的损伤机理,开发了轴对称耦合的有限元和边界元代码,并将其用于模拟以可变形管为中心的声激发气泡的响应。如预期的那样,该管减轻了气泡的膨胀。发现最大气泡膨胀和最大环向应力发生在气泡达到其最大半径之前。因此,膨胀的低压气泡不可能将管壁向外推。相反,模拟结果表明,声激励的拉伸部分在管子膨胀和管子破裂中起主要作用。管尺寸(管壁厚1-5 µm),材料特性(杨氏模量1-10 MPa),超声频率(1-10 MHz)和压力幅度(0.2-1.0 MPa)对气泡响应和管扩张的影响被调查了。随着管厚度,管半径和声频的减小,最大环向应力增加,表明管破裂和出血的可能性更高。

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