Published February 2, 2019 | Version v1

Solar Eclipse 2017 recordings of the medium-wave AM broadcast band from Mt. Juliet, TN, U.S.A., Part 1

Authors/Creators

Description

recorded by Brandon Jordan, KM4PBQ

These data files are of the entire medium wave broadcast band (535-1705kHz) from 12:00:15 to 12:41:10 Eastern Daylight Time, and from 12:54:32 to 14:55:21EDT recorded in Mt. Juliet, TN, USA.  Data files are .ddc format, which is a renamed .wav file according to WiNRADiO's manual, in order to differentiate these files from audio files. The archived files here are .zip, with several .ddc files packaged together in each .zip file.  As the total files recorded during the solar eclipse exceeded the Zenodo 50GB limit, the remainder of the dataset is found in "Solar Eclipse 2017 recordings of the medium-wave AM broadcast band from Mt. Juliet, TN, U.S.A., Part 2", . 

location recorded:   36.198°N  86.518°W   

Antenna: 4' x 33' rectangular loop oriented NW/SE along the eclipse path, using Wellbrook (https://www.wellbrook.uk.com/loopantennas/) ALA100 preamplifier  

Receiver:   WiNRADiO WR-G33DDC (https://www.winradio.com/home/g33ddc.htm) using no front end attenuation, center frequency set at  1100kHz, recording 1250 kHz wide passband, using WinWR-G33DDC software

 

 

Notes

In the AM broadcast band (535-1705kHz), there are roughly two modes of broadcast station signal coverage, one of which occurs in the daytime, and the other at night. During the day time, signals are propagated by ground wave and and not usually heard well beyond 150km from the transmitter. However, at night, an absorptive region in the ionosphere, the D-layer, disappears, allowing signals to refract off higher regions of the ionosphere, and to be heard hundreds and even thousands, of kilometers away from the transmitter. During the solar eclipse of 2017, signals were observed changing from daytime to nighttime mode and then back again as the moon's shadow moved across the continental USA. The radio stations in this band use amplitude modulation, which requires a strong stable carrier wave, well suited for observing changes in signal strength over a time period. Included in these files are an installation file for the WR-G33DDC software, version 2.10, courtesy of WiNRADiO ("g33ddc-210.exe"; also available from https://www.winradio.com/home/download-g33ddc.htm), which will allow playback of the .ddc files, plus a reference file to assist in identifying signals ("canusa-Jan2019.pdf"). As well, there is set of instructions for installation and use of the software, including instructions for using "g33ddc-210.exe" to extract a time series of signal power for an individual radio station's signal ("using G33DC to create signal strength time series-KM4PBQ.pdf"). Finally, referencing the article archived at http://hamsci.org/sites/default/files/publications/2019_am-eclipse2017_hall-patch.pdf , will give the user of these files an idea of how radio reception datasets from different locations can be used to compare the effects that the solar eclipse had on radio propagation.

Files

canusa-Jan2019.pdf

Files (46.5 GB)

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