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Spontaneous mirror-symmetry breaking induces inverse energy cascade in 3D active fluids

机译:自发的镜像对称破坏在3D活性流体中引起逆能量级联

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摘要

Classical turbulence theory assumes that energy transport in a 3D turbulent flow proceeds through a Richardson cascade whereby larger vortices successively decay into smaller ones. By contrast, an additional inverse cascade characterized by vortex growth exists in 2D fluids and gases, with profound implications for meteorological flows and fluid mixing. The possibility of a helicity-driven inverse cascade in 3D fluids had been rejected in the 1970s based on equilibrium-thermodynamic arguments. Recently, however, it was proposed that certain symmetry-breaking processes could potentially trigger a 3D inverse cascade, but no physical system exhibiting this phenomenon has been identified to date. Here, we present analytical and numerical evidence for the existence of an inverse energy cascade in an experimentally validated 3D active fluid model, describing microbial suspension flows that spontaneously break mirror symmetry. We show analytically that self-organized scale selection, a generic feature of many biological and engineered nonequilibrium fluids, can generate parity-violating Beltrami flows. Our simulations further demonstrate how active scale selection controls mirror-symmetry breaking and the emergence of a 3D inverse cascade.
机译:古典湍流理论假设3D湍流中的能量传输通过Richardson级联进行,从而较大的涡流逐渐衰减为较小的涡流。相比之下,二维流体和气体中又存在一个以涡流增长为特征的逆级联,这对气象流量和流体混合具有深远的影响。在1970年代,根据平衡热力学论点,否决了3D流体中螺旋驱动逆级联的可能性。但是,最近有人提出,某些破坏对称性的过程可能会触发3D逆级联,但是迄今为止,尚未发现表现出这种现象的物理系统。在这里,我们提供了在经过实验验证的3D活性流体模型中逆能量级联的存在的分析和数值证据,描述了自发破坏镜像对称性的微生物悬浮液。我们通过分析表明,自组织尺度选择是许多生物学和工程学非平衡流体的普遍特征,可以产生违反奇偶校验的Beltrami流。我们的仿真进一步证明了有效的比例选择如何控制镜像对称性破坏和3D反向级联的出现。

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