用于无人机飞行导航的超声波传感器

D. G. Davies, R. Bolam, Y. Vagapov, P. Excell
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引用次数: 8

摘要

超声波换能器被用于设计和开发一种替代方法的飞行仪表测量的速度无人飞行器(uav)。目前的方法已经被认为有显著的缺点,例如需要GPS从而导致室内UAV操作不能速度感应。所提出的概念是从超声波传输时间流量计的应用中发展而来的。制作了一个测试台来测试该概念的准确性和有效性。确定了两个关键的设计变量-最佳传感器安装配置和传感器安装的最佳入射角。从常见的跨时流量计传感器配置对安装配置进行了分析,并使用CFD和声学模拟进行了测试。在模拟的基础上,对实验结果进行了分析和对比,确定了v型方法是最佳选择。用实验方法确定了正确的入射角。将换能器输出的飞行时间与计算出的理想值进行了比较,结果表明,30°的角度对发射波的反射最准确。实验是在风洞中专门设计的试验台和相关的电子硬件上进行的。测试结果提供了确凿的证据,证明总体设计可以产生与当前仪表传感器相当的精确结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ultrasonic sensor for UAV flight navigation
Ultrasonic transducers were utilized for the design and development of an alternative method for flight instrumentation measurement of the velocity of unmanned air vehicles (UAVs). Current methods have been deemed to have significant shortcomings, such as the need for GPS thus leading to indoor UAV operations being incapable of velocity sensing. The proposed concept is developed from the utilization of ultrasonic transit-time flowmeters. A test bench has been produced to measure the accuracy and confirm the validity of the concept. Two key design variables were determined — the optimal transducer mounting configuration and the optimal angle of incidence for the transducer mountings. The mounting configurations were analyzed from common transit-time flowmeter sensor configurations and were tested using both CFD and acoustic simulations. The findings are presented and correlated based on these simulations and it was determined that a V-method configuration was the optimal choice. The correct angle of incidence was determined by an experimental methodology. The time-of-flight outputted from the transducers was compared to the calculated ideal value, and the findings revealed that an angle of 30° was the most accurate for the reflection of the emitted wave. The experimentation was conducted with a specially designed test bench and associated electronic hardware located in a wind tunnel. The test results have provided conclusive evidence that the overall design can produce accurate results comparable with current instrumentation sensors.
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