Three-Dimensional Mapping on Lightning Discharge Processes Using Two VHF Broadband Interferometers
Abstract
:1. Introduction
2. Lightning Mapping Algorithm and Experiment
2.1. Lightning 3D Mapping Algorithm
- (1)
- Select one station as the main station and obtain all of the possible radiation source matches of each source of the main station within a certain time window considering the triangle inequality. The time delay of two 2D results of each station is estimated by the cross-correlation waveform.
- (2)
- Calculate the 3D location of all matches using Equations (8) and (9).
- (3)
- Quality control is performed using the following four metrics for each possible 3D location:
- (a)
- Length of the common vertical line is less than a certain threshold. Here it is set to less than half of the minimum value of and .
- (b)
- and are less than an empirical value of 10°, that is, the difference between the incident vector of the 3D location point relative to each station and the incident vector provided by the 2D location of each station should be small.
- (c)
- Difference between the time delay of the calculated position to two stations and the actual time delay of two 2D results (denoted by DT) is less than a threshold, which is set to be 5 μs.
- (d)
- Since the antenna gain of each station is the same, the signal strength received by the station near the 3D location point should not be smaller than that of the farther one.
- (4)
- Considering that there may be a radiation source satisfying multiple sets of matches, the matching pair with the smallest DT is selected as the most reasonable match in the time window. The corresponding 3D radiation source location is included in the final 3D mapping results. If none of the above quality controls are met, no 3D radiation source will be involved.
- (5)
- Remove all 2D result matches involving the 3D radiation source obtained in Step 4, and repeat Step 4 to obtain another 3D radiation source location until the end of all matches. Because the detection efficiency varied for a source with different distances to two stations, there will be sources detected only by one station and only included in the 2D result.
2.2. Experiment and Data
2.3. Error Analysis
3. Three-Dimensional Mapping on Lightning Discharge
3.1. An IC Lightning Flash
3.2. A CG Lightning Flash
4. Summary
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Sun, Z.; Qie, X.; Liu, M.; Jiang, R.; Zhang, H. Three-Dimensional Mapping on Lightning Discharge Processes Using Two VHF Broadband Interferometers. Remote Sens. 2022, 14, 6378. https://doi.org/10.3390/rs14246378
Sun Z, Qie X, Liu M, Jiang R, Zhang H. Three-Dimensional Mapping on Lightning Discharge Processes Using Two VHF Broadband Interferometers. Remote Sensing. 2022; 14(24):6378. https://doi.org/10.3390/rs14246378
Chicago/Turabian StyleSun, Zhuling, Xiushu Qie, Mingyuan Liu, Rubin Jiang, and Hongbo Zhang. 2022. "Three-Dimensional Mapping on Lightning Discharge Processes Using Two VHF Broadband Interferometers" Remote Sensing 14, no. 24: 6378. https://doi.org/10.3390/rs14246378