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Environmental and Sensor Integration Influences on Temperature Measurements by Rotary-Wing Unmanned Aircraft Systems

机译:旋翼无人机系统的环境和传感器集成对温度测量的影响

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Obtaining thermodynamic measurements using rotary-wing unmanned aircraft systems (rwUAS) requires several considerations for mitigating biases from the aircraft and its environment. In this study, we focus on how the method of temperature sensor integration can impact the quality of its measurements. To minimize non-environmental heat sources and prevent any contamination coming from the rwUAS body, two configurations with different sensor placements are proposed for comparison. The first configuration consists of a custom quadcopter with temperature and humidity sensors placed below the propellers for aspiration. The second configuration incorporates the same quadcopter design with sensors instead shielded inside of an L-duct and aspirated by a ducted fan. Additionally, an autopilot algorithm was developed for these platforms to face them into the wind during flight for kinematic wind estimations. This study will utilize in situ rwUAS observations validated against tower-mounted reference instruments to examine how measurements are influenced both by the different configurations as well as the ambient environment. Results indicate that both methods of integration are valid but the below-propeller configuration is more susceptible to errors from solar radiation and heat from the body of the rwUAS.
机译:使用旋翼无人机系统(RWUA)获得热力学测量(RWUA)需要几次考虑飞机及其环境的减轻偏差。在这项研究中,我们专注于温度传感器集成方法如何影响其测量的质量。为了最大限度地减少非环境热源并防止来自RWUAS主体的任何污染,提出了两种具有不同传感器放置的配置进行比较。第一个配置包括一个具有温度和湿度传感器的自定义Quadcopter,位于螺旋桨下方的螺旋桨上。第二种配置包含与传感器相同的Quadcopter设计,而是屏蔽L型管道内部,并由管道风扇吸出。另外,为这些平台开发了自动驾驶仪算法,以在飞行期间将它们面向风的风力估算。本研究将利用对塔架安装的参考仪器验证的原位RWUA观察,以检查如何通过不同的配置以及环境环境影响测量。结果表明,两种集成方法都有效,但下面的螺旋桨配置更容易受到来自RWUA的身体的太阳辐射和热量的误差。

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