Literature DB >> 2257125

A physical explanation of the lognormality of pollutant concentrations.

W R Ott1.   

Abstract

Investigators in different environmental fields have reported that the concentrations of various measured substances have frequency distributions that are lognormal, or nearly so. That is, when the logarithms of the observed concentrations are plotted as a frequency distribution, the resulting distribution is approximately normal, or Gaussian, over much of the observed range. Examples include radionuclides in soil, pollutants in ambient air, indoor air quality, trace metals in streams, metals in biological tissue, calcium in human remains. The ubiquity of the lognormal distribution in environmental processes is surprising and has not been adequately explained, since common processes in nature (for example, computation of the mean and the analysis of error) usually give rise to distributions that are normal rather than lognormal. This paper takes the first step toward explaining why lognormal distributions can arise naturally from certain physical processes that are analogous to those found in the environment. In this paper, these processes are treated mathematically, and the results are illustrated in a laboratory beaker experiment that is simulated on the computer.

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Year:  1990        PMID: 2257125     DOI: 10.1080/10473289.1990.10466789

Source DB:  PubMed          Journal:  J Air Waste Manage Assoc        ISSN: 1047-3289


  34 in total

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2.  Geographic variability in radon exhalation at a rehabilitated uranium mine in the Northern Territory, Australia.

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3.  Evaluation of the impact of long-range transport and aerosol concentration temporal variations at the eastern coast of the Baltic Sea.

Authors:  J Ovadnevaite; K Kvietkus; J Sakalys
Journal:  Environ Monit Assess       Date:  2006-12-14       Impact factor: 2.513

Review 4.  Probabilistic exposure analysis for chemical risk characterization.

Authors:  Kenneth T Bogen; Alison C Cullen; H Christopher Frey; Paul S Price
Journal:  Toxicol Sci       Date:  2009-02-17       Impact factor: 4.849

5.  Development of ambient air quality population-weighted metrics for use in time-series health studies.

Authors:  Diane Ivy; James A Mulholland; Armistead G Russell
Journal:  J Air Waste Manag Assoc       Date:  2008-05       Impact factor: 2.235

6.  Risk assessment due to intake of heavy metals through the ingestion of groundwater around two proposed uranium mining areas in Jharkhand, India.

Authors:  Soma Giri; Mukesh K Mahato; Gurdeep Singh; V N Jha
Journal:  Environ Monit Assess       Date:  2011-04-16       Impact factor: 2.513

7.  Health risk assessment of heavy metals and metalloid in drinking water from communities near gold mines in Tarkwa, Ghana.

Authors:  Nesta Bortey-Sam; Shouta M M Nakayama; Yoshinori Ikenaka; Osei Akoto; Elvis Baidoo; Hazuki Mizukawa; Mayumi Ishizuka
Journal:  Environ Monit Assess       Date:  2015-06-04       Impact factor: 2.513

8.  Statistical distributions of trace metal concentrations in the northwestern Mediterranean atmospheric aerosol.

Authors:  Thomas Robin; Lionel Guidi; Aurélie Dufour; Christophe Migon
Journal:  Environ Monit Assess       Date:  2013-05-18       Impact factor: 2.513

9.  Characterization of fine aerosol and its inorganic components at two rural locations in New York State.

Authors:  Ramya Sunder Raman; Philip K Hopke; Thomas M Holsen
Journal:  Environ Monit Assess       Date:  2007-11-10       Impact factor: 2.513

10.  Human health risk assessment via drinking water pathway due to metal contamination in the groundwater of Subarnarekha River Basin, India.

Authors:  Soma Giri; Abhay Kumar Singh
Journal:  Environ Monit Assess       Date:  2015-02-03       Impact factor: 2.513

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