Vaidya Jaideep P, Shendruk Tyler N, Thampi Sumesh P
Department of Chemical Engineering, Indian Institute of Technology Madras, Chennai 600036, India.
School of Physics and Astronomy, The University of Edinburgh, Peter Guthrie Tait Road, Edinburgh EH9 3FD, UK.
Soft Matter. 2024 Oct 23;20(41):8230-8245. doi: 10.1039/d4sm00760c.
Active nematic fluids exhibit complex dynamics in both bulk and in simple confining geometries. However, complex confining geometries could have substantial impact on active spontaneous flows. Using multiparticle collision dynamics simulations adapted for active nematic particles, we study the dynamic behaviour of an active nematic fluid confined in a corrugated channel. The transition from a quiescent state to a spontaneous flow state occurs from a weak swirling flow to a strong coherent flow due to the presence of curved-wall induced active flows. We show that the active nematic fluid flows in corrugated channels can be understood in two different ways: (i) as the result of an early or delayed flow transition when compared with that in a flat-walled channel of appropriate width and (ii) boundary-induced active flows in the corrugations providing an effective slip velocity to the coherent flows in the bulk. Thus, our work illustrates the crucial role of corrugations of the confining boundary in dictating the flow transition and flow states of active fluids.
活性向列型流体在本体以及简单的受限几何结构中都表现出复杂的动力学特性。然而,复杂的受限几何结构可能会对活性自发流动产生重大影响。通过适用于活性向列型粒子的多粒子碰撞动力学模拟,我们研究了受限在波纹通道中的活性向列型流体的动力学行为。由于存在弯曲壁诱导的活性流动,从静止状态到自发流动状态的转变是从弱涡旋流到强相干流。我们表明,波纹通道中的活性向列型流体流动可以通过两种不同的方式来理解:(i)与适当宽度的平壁通道相比,作为早期或延迟流动转变的结果;(ii)波纹中的边界诱导活性流动为本体中的相干流提供有效滑移速度。因此,我们的工作说明了受限边界的波纹在决定活性流体的流动转变和流动状态方面的关键作用。