PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 28, 2026Nuclear Technology and Radiation Protection0 citationsOpen Access

Particle size distribution effects on radionuclide concentration in TENORM and ^137Cs contaminated soil

View Full Paper
ASAmer A. SakranZIZaidoon H. IbrahimHHHadeel D. Hamadalla

Key Points

  • To examine how soil grain size distribution affects radionuclide concentrations in TENORM and artificially contaminated soils.
  • Collected soil samples from oilfields and artificially contaminated sites.
  • Fractionated soil into seven size categories using mechanical sieving.
  • Measured radioactivity concentrations using a broad-energy HPGe gamma-spectroscopy system.
  • Conducted statistical analyses to determine correlations between particle size and radionuclide concentration.
  • Radionuclide activity concentrations in TENORM show significant variation across particle sizes, especially in the finest fractions.
  • Highest activity was found in particles less than 37.5 μm in size.
  • ^137Cs levels peaked in particles smaller than 63 μm.
  • Strong reverse correlations exist between particle size and radionuclide concentrations, with correlation coefficients of r = -0.930 for ^137Cs.

Abstract

This study investigates the radioactivity concentrations in contaminated soil samples, comprising TENORM-contaminated soil from an oilfield and artificially contaminated soil containing 137Cs. The primary objective was to examine the correlation between soil grain size distribution and radionuclide concentrations within these samples. Radioactivity measurements were conducted using a broad-energy HPGe gamma-spectroscopy system with 50 % relative efficiency. Both soil samples were systematically fractionated into seven distinct size categories through mechanical sieving, ranging from 900? m (20 mesh) in diameter. Results demonstrate that radionuclide activity concentrations in TENORM samples exhibit significant variation across particle size fractions, with the exception of ^40K. The highest activity concentrations were consistently observed in the finest particle fraction (? 37. 5? m). Similarly, ^137Cs activity in the artificially contaminated soil exhibits fraction-dependent distribution, with peak concentrations in particles? 63? m. Statistical analysis revealed strong reverse correlations between particle size and radionuclide concentration: correlation coefficients of r = -0. 647 and r = -0. 710 were obtained for ^228Ra and ^226Ra, respectively (p-value? 0. 008 and p? 0. 04), while ^137Cs demonstrated an even stronger reverse correlation (r = -0. 930, p? 0. 02). These findings provide essential guidance for advancing targeted soil remediation strategies and optimizing mechanical separation techniques at radioactively contaminated sites, with direct implications for radiation protection practices and environmental risk assessment.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Sakran et al. (2025) studied this question.

synapsesocial.com/papers/69a286b80a974eb0d3c01f10https://doi.org/10.2298/ntrp2504284s
Ask AI
Helpful
Bookmark
Share
View Full Paper