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Considerations for temperature sensor placement on rotary-wing unmanned aircraft systems

机译:旋翼无人机系统上温度传感器放置的考虑因素

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Integrating sensors with a rotary-wing unmanned aircraft system (rwUAS) can introduce several sources of biases and uncertainties if not properly accounted for. To maximize the potential for rwUAS to provide reliable observations, it is imperative to have an understanding of their strengths and limitations under varying environmental conditions. This study focuses on the quality of measurements relative to sensor locations on board rwUAS. Typically, thermistors require aspiration and proper siting free of heat sources to make representative measurements of the atmosphere. In an effort to characterize ideal locations for sensor placement, a series of experiments were conducted in the homogeneous environment of an indoor chamber with a pedestal-mounted rwUAS. A suite of thermistors along with a wind probe were mounted inside of a solar shield, which was affixed to a linear actuator arm. The actuator arm was configured such that the sensors within the solar shield would travel underneath the platform into and out of the propeller wash. The actuator arm was displaced horizontally underneath the platform while the motors were throttled to 50 %, yielding a time series of temperature and wind speed that could be compared to temperatures being collected in the ambient environment. Results indicate that temperatures may be biased in the order of 0.5-1.0 degrees C and vary appreciably without aspiration, sensors placed close to the tips of the rotors may experience biases due to frictional and compressional heating as a result of turbulent fluctuations, and sensors in proximity to motors may experience biases approaching 1 degrees C. From these trials, it has been determined that sensor placement underneath a propeller on an rwUAS a distance of one quarter the length of the propeller from the tip is most likely to be minimally impacted from influences of turbulence and motor, compressional, and frictional heating while still maintaining adequate airflow. When opting to use rotor wash as a means for sensor aspiration, the user must be cognizant of these potential sources of platform-induced heating when determining sensor location.
机译:将传感器与旋转翼无人机系统(RWUA)集成,如果没有正确占据,可以引入几种偏差和不确定性的来源。为了最大限度地提高RWUA提供可靠观察的潜力,因此必须了解其在不同环境条件下的优势和局限性。本研究重点介绍了相对于RWUA上的传感器位置的测量质量。通常,热敏电阻需要抽吸和正确的热源选址以使大气的代表性测量。为了表征传感器放置的理想位置,在具有基座安装的RWUA的室内室的均匀环境中进行了一系列实验。将一套热敏电阻以及风探针安装在太阳能屏蔽内部,该遮蔽罩固定在线性致动器臂上。致动器臂配置成使得太阳罩内的传感器将在平台下方行进到螺旋桨洗涤中。致动器臂在平台下方水平移位,同时将电动机节流至50%,产生时间序列的温度和风速,可以与环境环境中收集的温度进行比较。结果表明,温度可以偏置0.5-1.0°C的顺序,并且在没有抽吸的情况下显着变化,接近转子的尖端放置的传感器可能由于湍流波动而导致的摩擦和压缩加热导致的偏差,以及传感器接近电机可能会经历接近1摄氏度的偏差。从这些试验中,已经确定了在RWUA上的螺旋桨上的传感器放置一刻上的距离从尖端的螺旋桨长度最小地影响到影响湍流和电动机,压缩和摩擦加热,同时保持足够的气流。 When opting to use rotor wash as a means for sensor aspiration, the user must be cognizant of these potential sources of platform-induced heating when determining sensor location.

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