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A bio-inspired real-time capable artificial lateral line system for freestream flow measurements

机译:具有生物启发性的实时功能人工侧向线系统,用于自由流测量

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To enhance today's artificial flow sensing capabilities in aerial and underwater robotics, future robots could be equipped with a large number of miniaturized sensors distributed over the surface to provide high resolution measurement of the surrounding fluid flow. In this work we show a linear array of closely separated bio-inspired micro-electro-mechanical flow sensors whose sensing mechanism is based on a piezoresistive strain-gauge along a stress-driven cantilever beam, mimicking the biological superficial neuromasts found in the lateral line organ of fishes. Aiming to improve state-of-the-art flow sensing capability in autonomously flying and swimming robots, our artificial lateral line system was designed and developed to feature multi-parameter freestream flow measurements which provide information about (1) local flow velocities as measured by the signal amplitudes from the individual cantilevers as well as (2) propagation velocity, (3) linear forward/backward direction along the cantilever beam orientation and (4) periodicity of pulses or pulse trains determined by cross-correlating sensor signals. A real-time capable cross-correlation procedure was developed which makes it possible to extract freestream flow direction and velocity information from flow fluctuations. The computed flow velocities deviate from a commercial system by 0.09 m s(-1) at 0.5 m s(-1) and 0.15 m s(-1) at 1.0 m s(-1) flow velocity for a sampling rate of 240 Hz and a sensor distance of 38 mm. Although experiments were performed in air, the presented flow sensing system can be applied to underwater vehicles as well, once the sensors are embedded in a waterproof micro-electro-mechanical systems package.
机译:为了增强当今在空中和水下机器人中的人工流量感测能力,未来的机器人可能会配备大量分布在表面上的小型传感器,以提供对周围流体流量的高分辨率测量。在这项工作中,我们展示了一个紧密分离的,由生物启发的微机电流量传感器的线性阵列,其传感机制基于沿着应力驱动悬臂梁的压阻应变仪,模仿了在侧线上发现的生物浅表神经质鱼的器官。为了提高自动飞行和游泳机器人的最新流量感测能力,我们设计并开发了人工侧线系统,以提供多参数自由流流量测量为特色,该流量测量提供了有关(1)局部流速的信息。来自各个悬臂的信号幅度以及(2)传播速度,(3)沿悬臂波束方向的线性前进/后退方向以及(4)由互相关的传感器信号确定的脉冲或脉冲序列的周期性。开发了具有实时能力的互相关程序,该程序可以从流量波动中提取自由流的流向和速度信息。对于240 Hz的采样率和传感器距离,计算出的流速在0.5 ms(-1)时偏离商用系统0.09 ms(-1),在1.0 ms(-1)时偏离0.15 ms(-1) 38毫米尽管实验是在空气中进行的,但一旦将传感器嵌入防水微机电系统封装中,提出的流量传感系统也可以应用于水下车辆。

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