Department of Structural Engineering, University of California, San Diego, La Jolla, CA 92093, United States of America.
Bioinspir Biomim. 2021 Nov 9;16(6). doi: 10.1088/1748-3190/ac3061.
An axisymmetric fluid-structure interaction model based on the immersed-boundary approach is developed to study the self-propelled locomotion of a squid-inspired swimmer in relatively low Reynolds numbers (O(102)). Through cyclic deformation, the swimmer generates intermittent jet flow, which, together with the added-mass effect associated with the body deformation, provides thrust. Through a control volume analysis we are able to determine the jet-related thrust. By adding it to the added-mass-related thrust we separate the net thrust on the body from the drag effect due to forward motion, so that the propulsion efficiency in free swimming is found. This numerical algorithm and thrust-drag decomposition method are used to study the dynamics of the bio-inspired locomotion system in different conditions, whereby the performance is characterized by the aforementioned propulsion efficiency as well as the conventionally defined cost of transport.
建立了基于浸没边界法的轴对称流固耦合模型,以研究鱿鱼启发式游泳者在相对低雷诺数(O(102))下的自推进运动。通过周期性变形,游泳者产生间歇性射流,这与身体变形相关的附加质量效应一起提供推力。通过控制体积分析,我们能够确定与射流相关的推力。通过将其添加到与附加质量相关的推力中,我们将身体上的净推力与由于前进运动而产生的阻力效应分开,从而找到自由游泳时的推进效率。该数值算法和推力-阻力分解方法用于研究不同条件下仿生运动系统的动力学,其中性能由上述推进效率以及传统定义的运输成本来表征。