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首页> 外文期刊>Journal of Spacecraft and Rockets >Simulation of Aerodynamic Influences on Rocket-Mounted Oxygen Sensors
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Simulation of Aerodynamic Influences on Rocket-Mounted Oxygen Sensors

机译:空气动力学对火箭式氧气传感器影响的模拟

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Over the past several decades, atomic oxygen measurements taken from sounding rocket sensor payloads in the altitude range of 80-140 kilometers have shown marked variability. Many sounding rocket payloads contain atomic oxygen sensors that are located in close proximity to the payload surface, and are thus significantly influenced by flow field disturbances. Although several additional factors including Ooppler shift and sensor contamination may also play a significant role in the accurate measurement of atomic oxygen concentrations, this work focuses solely on the effects due to the flow field. The present study utilizes the three-dimensional, steady-state, direct simulation Monte Carlo technique. In addition, the lower altitudes corresponding to near-continuum flow are solved via the Navier-Stokes equations with slip wall boundary conditions. The flow is simulated at 13 different altitudes, each with three separate rocket orientations, along both the rocket's upleg and downleg trajectory for a total of 75 simulations. The numerical simulations show conclusively that the relative magnitudes of undisturbed versus disturbed atomic oxygen concentrations are highly dependent upon rocket orientation, and provide a quantitative means by which existing atomic oxygen concentration data sets may be corrected for aerodynamic influences.
机译:在过去的几十年中,从在80-140公里的海拔范围内探测到的火箭传感器有效载荷进行的原子氧测量显示出明显的可变性。许多探测火箭的有效载荷都包含原子氧传感器,该传感器紧邻有效载荷表面,因此受到流场干扰的显着影响。尽管包括Ooppler位移和传感器污染在内的其他几个因素也可能在精确测量原子氧浓度中发挥重要作用,但这项工作仅着眼于流场产生的影响。本研究利用了三维,稳态,直接模拟蒙特卡洛技术。此外,通过带有滑壁边界条件的Navier-Stokes方程求解对应于近连续流的较低高度。在沿着火箭的上,下腿轨迹的13个不同高度分别模拟了三个不同的火箭方向的气流,总共进行了75次仿真。数值模拟最终表明,不受干扰的原子氧浓度与受干扰的原子氧浓度的相对大小在很大程度上取决于火箭的方向,并提供了一种定量手段,可以通过此手段对现有的原子氧浓度数据集进行空气动力学影响的校正。

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