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Application of Propagation Modeling to Verify and Discriminate Ground-Truth Infrasound Signals at Regional Distances

机译:传播模型在验证和区分区域距离地面对次声信号中的应用

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摘要

An infrasound field campaign was performed in 2011/2012 utilizing single infrasound sensors along the great circle path between a known ground-truth source (Ariane 5 engine test facility, Lampoldshausen, Germany) and a regional receiver (German infrasound array IS26, Bavarian Forest) covering a distance of rough 320 km in total. The gathered recordings provide new insights in the infrasonic wave propagation at regional and near-source distances by comparing measured signals with modeling results within this study. Ray-tracing and parabolic equation approaches are utilized to model infrasound propagation from the ground-truth source to the line profile sensors and explain the obtained detec-tions and non-detections. Modeling and observation results are compared by estimating their amplitude, quantifying amplitude deviations and also considering observed and calculated travel times and celerities. Modeling results show a significant influence of small-scale atmospheric variations in effective sound speed profiles on the propagation pattern, which results in varying tropospheric and stratospheric ducting behavior. A large number of gravity wave profiles are tested to investigate the influences of atmospheric dynamics on the infrasound wave field and improve the modeling results. The modeling is furthermore applied to a case of two potential, contemporaneous and closely spaced infrasound sources. Propagation modeling is used here to resolve the source ambiguity between a ground-based and a higher alti-tude source giving a strong preference to the latter with respect to the observed infrasonic signatures. The good agree-ment between modeling and observation results within this study successfully shows the benefit of applying infrasound propagation modeling to the validation of infrasound measurements, verification of ducting behavior and discrimination of infrasound sources.
机译:2011/2012年进行了次声场运动,利用单个次声传感器沿着已知地面真相源(Ariane 5发动机测试设施,德国兰帕兹豪森)和区域接收器(德国次声阵列IS26,巴伐利亚森林)之间的大圆路径行驶。总共约320公里。通过将测量的信号与本研究中的建模结果进行比较,收集的记录为在区域和近源距离处的次声波传播提供了新的见解。射线追踪和抛物线方程方法用于模拟从地面真声源到线轮廓传感器的次声传播,并解释获得的检测结果和非检测结果。通过估计模型和观测结果的振幅,量化振幅偏差并考虑观测和计算的行程时间和速度来比较建模和观测结果。建模结果表明,有效声速剖面中小尺度大气变化对传播模式有重大影响,这导致对流层和平流层的风管行为发生变化。测试了大量重力波剖面,以研究大气动力学对次声波场的影响并改善建模结果。该建模还适用于两个潜在的,同时发生且间隔很小的次声源的情况。传播建模在此用于解决地面和高海拔信号源之间的源歧义,相对于观察到的次声特征,后者优先考虑后者。在这项研究中,建模与观测结果之间的良好一致性成功地表明了将次声传播建模应用于次声测量的验证,管道行为的验证以及次声源的辨别的好处。

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