Extended Application of a Novel Phase Calibration Approach of Multiple-Frequency Range Imaging to the Chung-Li and MU VHF Radars
Extended Application of a Novel Phase Calibration Approach of Multiple-Frequency Range Imaging to the Chung-Li and MU VHF Radars
复制标题
新型多频范围成像相位校准方法在 Chung-Li 和 MU VHF 雷达中的扩展应用
DOI:
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发表时间:
2009
期刊:
影响因子:
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通讯作者:
M. Zecha
中科院分区:
文献类型:
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作者:
Jenn;C. Su;Y. Chu;G. Hassenpflug;M. Zecha
Multiple-frequency range imaging (RIM), designed to improve the range resolution of radar echo distribution, is now available for the recently upgraded Chung-Li VHF radar (24.98N, 121.18E). To complete the RIM technique of this radar, a novel phase calibration approach, proposed initially for the Ostsee Wind (OSWIN)VHFradar,wasemployedtoexaminetheeffectsofphasebiasandtherange-weighting functionon the received radar echoes. The estimated phase bias indicated a time delay of ;1.83 ms for the signal in the radar system. In contrast, such a time delay is more difficult to determine from the phase distribution of twofrequency cross-correlation functions. The same calibration approach was also applied successfully to the middle and upper atmosphere (MU) radar (34.858N, 136.118E) and revealed a time delay of ;0.33 ms for the radar parameters employed. These calibration results for various radars demonstrate the general usability of the proposed calibration approach. With the high-resolution performance of RIM, some small-scale Kelvin‐ Helmholtz (KH) billows, double-layer structures, and plumelike structures in the troposphere that cannot be seen in height‐time intensity plots have been recognized in present observations. The billows and double layerswerefoundto beclosely relatedtostrongverticalwindshearandsmallRichardsonnumber,supporting the hypothesis of a dynamic process of KH instability. On the other hand, the plumelike structures were observed to grow out of a wavy layer and could be attributed to saturation and breaking of gravity waves. These fine structures have shown some remarkable features resolved by the RIM method applied to VHF radars in the lower atmosphere.