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Towards Autonomous MAV Soaring in Cities: CFD Simulation, EFD Measurement and Flight Trials

机译:在城市中的自主MAV飙升:CFD仿真,EFD测量和飞行试验

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MAVs are increasingly being used in complex terrains, such as cities, despite challenges from the highly turbulent flow fields. We investigate the flow around a nominally cuboid building of height 40m both computationally and experimentally in a 1/100th scale wind-tunnel test. A relatively new computational technique, Improved Delayed Detached Eddy Simulation (IDDES), was used for computing the time-varying flow around the building and surrounding domain. The atmospheric boundary layer velocity and turbulent intensity profiles were replicated at the inlet boundary of the computational domain and wind tunnel. The spatial flow field from the CFD was investigated for locating suitable areas of lift, in order to see if soaring flight would be feasible. Good agreement was found with the wind-tunnel results. Flight trials of a small flying wing aircraft were conducted from the roof demonstrating the possibility of keeping aloft with no conventional power system Soaring was achieved under piloted control and autonomously. The CFD results proved useful in locating the best lift areas and provided insights into path planning.
机译:尽管来自高度湍流的流场的挑战,但Mavs越来越多地用于诸如城市的复杂地形中。我们在计算上和实验中在1/100尺度风隧道试验中调查名义上长方形建设的流量。一种相对较新的计算技术,改进的延迟分离涡流模拟(IDDES),用于计算建筑物和周围域周围的时变流。在计算领域和风洞的入口边界处复制了大气边界层速度和湍流强度轮廓。研究了来自CFD的空间流场,以定位合适的升力区域,以便看出飙升的飞行是可行的。在风洞的结果中发现了良好的协议。飞行飞机的飞行试验是从屋顶进行的,证明保持高处的可能性,没有传统的电力系统在驾驶控制下实现飙升,自主地实现。 CFD结果证明有用在定位最佳升力区域并提供对路径规划的见解。

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