PubMed Health⌕ Search

PubMed · 14397863

The radon problem in deep-level mining.

Abstract

The source did not provide an abstract. Follow the original record for more information.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

D A HOLADAY. 1955. The radon problem in deep-level mining.. https://pubmed.ncbi.nlm.nih.gov/14397863/

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Theoretical considerations regarding the migration of 222Rn and 220Rn from uranium- and thorium-bearing underground environments.

Theoretical calculations are presented for partially enclosed uranium- and thorium-bearing subterranean environments, such as tunnels and underground uranium mines. The variables of practical interest considered here are the 222Rn and 220Rn concentrations in the wall, and the flux densities of the same radioactive gases in the wall and at the wall/air interface of these underground sites. Calculations have been conducted based on a plane, semi-infinite geometry model (commonly used to predict radiation levels in mines) and a cylindrical (i.e., tunnel) geometry model. The 220Rn flux density, J(220Rn), calculated according to the plane and cylindrical geometries agree with each other within 5% for wall media of porosity equal to or greater than about 2%, even for tunnels of small radii. However, for 222Rn the cylindrical geometry gives values for the 222Rn flux density, J(222Rn), substantially higher (by a factor of 1.4 to approximately 3) than those predicted by the plane semi-infinite geometry. A practical difficulty arises in the experimental verification of the models in underground environments. The results are relevant for predicting radioactivity levels (222Rn, 220Rn, and their progeny) in underground environments such as uranium mines. Health Phys.

Mining↗

[The possibility of using the method of neutron activation radiography to detect micro-quantities of environmental radioactive pollutants].

A method of neutron-activation radiography was employed to investigate U distribution in leaves of plants (poplars, birches), growing in areas of mining ores with a high level of U which penetrates plants from the soil via the root system and appears on the surface of leaves, repeating their macrostructure. U also falls out on the surface of leaves in radioactive dust. The shapes of U manifestation permit the identification of its routes of penetration of the leaves of plants. Local U concentration even in an insignificant total excess of a radiation background can be considerable, leading to the destruction of tissues of plants as a result of alpha-radiation of U nuclei. A conclusion has been made of the danger of contamination of agricultural plants, growing in areas with ecological problems.

Mining↗