Relationship between the global electric circuit and electrified cloud parameters at diurnal, seasonal and interannual timescales

In the early 1900’s, J.W. Whipple began validating C.R. Wilson’s Global Electric Circuit (GEC) hypothesis by correlating diurnal variations of global thunder days with diurnal variations of the fair weather electric field. This study applies 16+ years of Precipitation Feature (PF) data from the Trop...

Full description

Bibliographic Details
Main Author: Lavigne, Thomas
Other Authors: Liu, Chuntao, Xie, Feiqin, Shinoda, Toshiaki
Format: Thesis
Language:English
Published: 2017
Subjects:
Online Access:http://hdl.handle.net/1969.6/19199
Description
Summary:In the early 1900’s, J.W. Whipple began validating C.R. Wilson’s Global Electric Circuit (GEC) hypothesis by correlating diurnal variations of global thunder days with diurnal variations of the fair weather electric field. This study applies 16+ years of Precipitation Feature (PF) data from the Tropical Rainfall Measuring Mission (TRMM), including lightning data from the Lightning Imaging Sensor (LIS), alongside 12-years of electric field measurements from Vostok, Antarctica to further examine this relationship. Joint diurnal-seasonal variations of the electric field are compared with PF parameters that are potentially related to the GEC. The flash rate and volume of 30 dBZ between -5oC and -35oC variables are shown to have the best direct relationship to the electric field, with r2 values of 0.67 and 0.62, respectively. However, the Coefficient of Variation (COV) of the flash rate (28%) and the electric field (12%), display relatively large differences in the spread of the variables. The volume of 30 dBZ between -5oC and -35oC shows a closer amplitude agreement to the variance of the electric field (COV=17%). Furthermore, these relationships are analyzed during two different phases of the El Nino Southern Oscillation (ENSO). Results show different seasonal-diurnal variations of the electric field during ENSO phases, with enhancements in the electric field between January through April at 16-24 UTC in La Nina years. In all, similar variations have been found in the fair weather electric field, and the variation of properties of global PFs with high potential of electrification at diurnal, seasonal, and interannual timescales. These confirm the dominant role of the global thunderclouds and electrified clouds in the global electric circuit. Physical and Environmental Sciences College of Science and Engineering