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Method for Recording Broadband High Resolution Emission Spectra of Laboratory Lightning Arcs
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Timing Calibration and Windowing Technique Comparison for Lightning Mapping Arrays.

Brian M Hare1, Harald Edens2, Paul Krehbiel2

  • 1Kapteyn Astronomical Institute University of Groningen Groningen The Netherlands.

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Lightning mapping arrays (LMA) are crucial for lightning science. New windowing techniques yield similar results, and improved self-calibration reduces timing uncertainty in lightning data.

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Area of Science:

  • Atmospheric science
  • Geophysics
  • Electromagnetism

Background:

  • Lightning mapping arrays (LMA) have been vital for lightning physics research for over two decades.
  • Despite advancements like digital interferometers and the LOFAR radio telescope, LMAs remain important in lightning science.
  • Traditional LMA networks use fixed time windows for pulse detection and time-of-arrival (TOA) location.

Purpose of the Study:

  • To develop a novel LMA emulator using LOFAR data to test new pulse windowing techniques.
  • To assess the impact of different windowing strategies on LMA performance.
  • To evaluate the effectiveness of new TOA self-calibration methods for improving lightning data accuracy.

Main Methods:

  • Developed an LMA emulator utilizing lightning data from the LOFAR radio telescope.
  • Simulated LMA operation with three new pulse windowing styles and compared them to traditional methods.
  • Applied a novel TOA self-calibration technique to Colorado LMA data to reduce timing uncertainty.

Main Results:

  • The new pulse windowing techniques produced results comparable to traditional LMA windowing, indicating robustness.
  • LMA lightning mapping results appear largely independent of the specific windowing technique used.
  • Self-calibration reduced timing uncertainty in Colorado LMA data from 32 ns to 19 ns.

Conclusions:

  • LMA lightning mapping is robust across different windowing techniques.
  • Advanced TOA self-calibration significantly enhances timing accuracy for LMAs.
  • These calibration techniques are applicable to future multi-station lightning interferometers.