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Sensing of minute airflow motions near walls using pappus-type nature-inspired sensors

机译:使用巴氏类型自然感测器感测墙壁附近的微小气流运动

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摘要

This work describes the development and use of pappus-like structures as sensitive sensors to detect minute air-flow motions. We made such sensors from pappi taken from nature-grown seed, whose filiform hairs’ length-scale is suitable for the study of large-scale turbulent convection flows. The stem with the pappus on top is fixated on an elastic membrane on the wall and tilts under wind-load proportional to the velocity magnitude in direction of the wind, similar as the biological sensory hairs found in spiders, however herein the sensory hair has multiple filiform protrusions at the tip. As the sensor response is proportional to the drag on the tip and a low mass ensures a larger bandwidth, lightweight pappus structures similar as those found in nature with documented large drag are useful to improve the response of artificial sensors. The pappus of a Dandelion represents such a structure which has evolved to maximize wind-driven dispersion, therefore it is used herein as the head of our sensor. Because of its multiple hairs arranged radially around the stem it generates uniform drag for all wind directions. While still being permeable to the flow, the hundreds of individual hairs on the tip of the sensor head maximize the drag and minimize influence of pressure gradients or shear-induced lift forces on the sensor response as they occur in non-permeable protrusions. In addition, the flow disturbance by the sensor itself is limited. The optical recording of the head-motion allows continuously remote-distance monitoring of the flow fluctuations in direction and magnitude. Application is shown for the measurement of a reference flow under isothermal conditions to detect the early occurrence of instabilities.
机译:这项工作描述了巴氏样结构作为敏感传感器来检测微小气流运动的开发和使用。我们从自然生长的种子中提取的pappi制成了这种传感器,其丝状毛的长度尺度适合用于大规模的湍流对流研究。顶部带有丘疹的茎固定在壁上的弹性膜上,并在风荷载下与风向中的速度大小成比例地倾斜,类似于蜘蛛中发现的生物感官毛发,但是此处的感官毛发具有多个顶端有丝状突起。由于传感器的响应与尖端的阻力成正比,并且质量轻确保了更大的带宽,因此与自然界中发现的轻质巴氏组织相似,有记载的大阻力可用于改善人造传感器的响应。蒲公英的丘疹代表了这样一种结构,该结构已经进化为最大化风驱散,因此在本文中将其用作我们传感器的头部。由于其多根毛发沿茎杆径向排列,因此在所有风向都产生均匀的阻力。虽然仍然可以渗透流,但传感器头尖端上的数百根单独的毛发使阻力最大化,并最小化了压力梯度或剪切引起的升力对传感器响应的影响,因为它们出现在不可渗透的突起中。另外,限制了传感器本身的流动干扰。头部运动的光学记录允许连续远程监控流量方向和大小的波动。显示了在等温条件下测量参考流量以检测不稳定性的早期发生的应用。

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