论文标题
Midge幼虫的游泳:中级雷诺数的机车原理和技巧
Swimming of the midge larva: principles and tricks of locomotion at intermediate Reynolds number
论文作者
论文摘要
在毫米尺度和中间雷诺数(RE)方向上,Midge和蚊子幼虫可以达到每个周期的游泳速度以上一个以上的体长,执行“ 8次数字”步态,其中其细长的身体几乎会定期弯曲成圆圈,然后完全展开。为了阐明这种运动循环的推进机理,我们进行了一项3D数值研究,研究了经历规定的运动学的流体动力学。新颖的推进机制,例如调节身体变形速率以动态增加最大的净推进力,使用不对称的运动学产生扭矩和适当的旋转,并控制卷曲的身体的半径以操纵动作矩的力矩。发现8个步态可以在广泛的RE范围内实现推进,但在中间RE中最有效。通过开发柔软的毫米大小的机器人,可以使用8个步态来达到可比的速度,从而进一步验证结果。
At the millimeter scale and in the intermediate Reynolds number (Re) regime, the midge and mosquito larvae can reach swimming speeds of more than one body length per cycle performing a "figure-of-8" gait, in which their elongated bodies periodically bend nearly into circles and then fully unfold. To elucidate the propulsion mechanism of this cycle of motion, we conducted a 3D numerical study which investigates the hydrodynamics of undergoing the prescribed kinematics. Novel propulsion mechanisms, such as modulating the body deformation rate to dynamically increase the maximum net propulsion force, using asymmetric kinematics to generate torque and the appropriate rotation, and controlling the radius of the curled body to manipulate the moment of inertia. The figure-of-8 gait is found to achieve propulsion at a wide range of Re, but is most effective at intermediate Re. The results were further validated experimentally, via the development of a soft millimeter-sized robot that can reach comparable speeds using the figure-of-8 gait.