Exploring atmospheric radon with airborne gamma-ray spectroscopy
Abstract
Rn is a noble radioactive gas produced along the U decay chain, which is present in the majority of soils and rocks. As Rn is the most relevant source of natural background radiation, understanding its distribution in the environment is of great concern for investigating the health impacts of low-level radioactivity and for supporting regulation of human exposure to ionizing radiation in modern society. At the same time, Rn is a widespread atmospheric tracer whose spatial distribution is generally used as a proxy for climate and pollution studies. Airborne gamma-ray spectroscopy (AGRS) always treated Rn as a source of background since it affects the indirect estimate of equivalent U concentration. In this work the AGRS method is used for the first time for quantifying the presence of Rn in the atmosphere and assessing its vertical profile. High statistics radiometric data acquired during an offshore survey are fitted as a superposition of a constant component due to the experimental setup background radioactivity plus a height dependent contribution due to cosmic radiation and atmospheric Rn. The refined statistical analysis provides not only a conclusive evidence of AGRS Rn detection but also a (0.96 0.07) Bq/m Rn concentration and a (1318 22) m atmospheric layer depth fully compatible with literature data.
Keywords
Cite
@article{arxiv.1712.04797,
title = {Exploring atmospheric radon with airborne gamma-ray spectroscopy},
author = {Marica Baldoncini and Matteo Albéri and Carlo Bottardi and Brian Minty and Kassandra G. C. Raptis and Virginia Strati and Fabio Mantovani},
journal= {arXiv preprint arXiv:1712.04797},
year = {2017}
}
Comments
17 pages, 8 figures, 2 tables