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Geometric scaling of artificial hair sensors for flow measurement under different conditions

机译:不同条件下流动测量的人工发毛传感器的几何缩放

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Artificial hair sensors (AHSs) have been developed for prediction of the local flow speed and aerodynamic force around an airfoil and subsequent application in vibration control of the airfoil. Usually, a specific sensor design is only sensitive to the flow speeds within its operating flow measurement region. This paper aims at expanding this flow measurement concept of using AHSs to different flow speed conditions by properly sizing the parameters of the sensors, including the dimensions of the artificial hair, capillary, and carbon nanotubes (CNTs) that make up the sensor design, based on a baseline sensor design and its working flow condition. In doing so, the glass fiber hair is modeled as a cantilever beam with an elastic foundation, subject to the distributed aerodynamic drag over the length of the hair. Hair length and diameter, capillary depth, and CNT height are scaled by keeping the maximum compressive strain of the CNTs constant for different sensors under different speed conditions. Numerical studies will demonstrate the feasibility of the geometric scaling methodology by designing AHSs for aircraft with different dimensions and flight conditions, starting from the same baseline sensor. Finally, the operating bandwidth of the scaled sensors are explored.
机译:已经开发了人造毛发传感器(AHSS),用于预测翼型围绕翼型的局部流速和空气动力,随后在翼型的振动控制中的应用。通常,特定的传感器设计仅对其操作流程测量区域内的流速敏感。本文旨在通过适当地施展传感器的参数,包括施加构成传感器设计的人工发毛,毛细管和碳纳米管(CNT)的尺寸来扩展使用AHSS对不同流动速度条件的流动测量概念。基线传感器设计及其工作流动条件。在这样做时,玻璃纤维毛发被建模为具有弹性基础的悬臂梁,受到分布式空气动力学阻力的影响。通过在不同速度条件下保持不同传感器的CNT常数的最大压缩应变,通过保持不同传感器的最大压缩应变来缩放头发长度和直径,毛细管深度和CNT高度。从相同的基线传感器开始,数值研究将通过设计具有不同尺寸和飞行条件的飞机的AHSS来展示几何缩放方法的可行性。最后,探索了缩放传感器的操作带宽。

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