High-speed and acceleration micrometric jets induced by GHz streaming: A numerical study with direct numerical simulations.

Virginie Daru, B. Vincent, Michael Baudoin
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Abstract

Gigahertz acoustic streaming enables the synthesis of localized microjets reaching speeds of up to meters per second, offering tremendous potential for precision micromanipulation. However, theoretical and numerical investigations of acoustic streaming at these frequencies remain so far relatively scarce due to significant challenges including: (i) the inappropriateness of classical approaches, rooted in asymptotic development, for addressing high-speed streaming with flow velocities comparable to the acoustic velocity; and (ii) the numerical cost of direct numerical simulations generally considered as prohibitive. In this paper, we investigate high-frequency bulk streaming using high-order finite difference direct numerical simulations. First, we demonstrate that high-speed micrometric jets of several meters per second can only be obtained at high frequencies, due to diffraction limits. Second, we establish that the maximum jet streaming speed at a given actuation power scales with the frequency to the power of 3/2 in the low attenuation limit and linearly with the frequency for strongly attenuated waves. Last, our analysis of transient regimes reveals a dramatic reduction in the time required to reach the maximum velocity as the frequency increases (power law in -5/2), leading to characteristic time on the order of μs at gigahertz frequencies, and hence accelerations within the Mega-g range.
由 GHz 流诱导的高速和加速微米射流:直接数值模拟的数值研究。
千兆赫声流能够合成速度高达每秒数米的局部微射流,为精密微操作提供了巨大的潜力。然而,由于面临以下重大挑战,迄今为止对这些频率的声学流的理论和数值研究仍然相对匮乏:(i) 根植于渐近发展的经典方法不适合处理流速与声速相当的高速流;(ii) 一般认为直接数值模拟的数值成本过高。在本文中,我们利用高阶有限差分直接数值模拟研究了高频体流。首先,我们证明了由于衍射限制,只有在高频率下才能获得每秒数米的高速微米级射流。其次,我们确定了在给定激励功率下的最大射流速度与频率的关系,在低衰减极限下为 3/2 的幂,而在强衰减波中则与频率成线性关系。最后,我们对瞬态的分析表明,随着频率的增加,达到最大速度所需的时间急剧减少(-5/2 的幂律),导致在千兆赫兹频率下的特征时间达到 μs 量级,因此加速度在 Mega-g 范围内。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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