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February 28, 2026Journal of Radiation Research and Applied Sciences0 citationsOpen Access

Enhanced neutron and gamma shielding via optimized hematite/B4C ratios in concrete: A combined experimental-simulation study using laboratory radioactive sources

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MSMortazaviShahroudi SeyyedMohsenHTHassan TavakoliRPReza Pourimani

Key Points

  • This research aims to evaluate the effectiveness of hematite and boron carbide in enhancing neutron and gamma shielding in concrete.
  • Incorporated varying concentrations of hematite and boron carbide in concrete composites.
  • Conducted Monte-Carlo simulations to assess gamma-ray and neutron shielding.
  • Measured neutron macroscopic cross-section and gamma attenuation coefficients for laboratory radioactive sources.
  • Evaluated compressive strength of all concrete samples.
  • Hematite significantly improved neutron and gamma shielding due to its high atomic density.
  • Composites with 40% to 50% hematite produced optimal shielding and compressive strength.
  • H50-B20 composite achieved a 57% reduction in gamma tenth-value layer and a 45% reduction in neutron layer.
  • Increased hematite beyond 50% decreased compressive strength and gamma attenuation efficiency.

Abstract

This study experimentally and by Monte-Carlo simulation evaluates the gamma-ray and neutron shielding ability of 51 concrete composites incorporating various hematite (Fe 2 O 3 ) concentrations as aggregate replacement and boron carbide (B 4 C) as an additive. The total neutron macroscopic cross-section (Σ n ) for an Am-Be source and the linear gamma attenuation coefficient (μ γ ) for 137 Cs and 60 Co gamma sources (661.66, 1173, and 1332 keV) were measured and compressive strength (CS) was also determined for all concrete shield samples. The results show that hematite significantly increases the photon and neutron attenuation ability due to its high thermal neutron's cross-section and higher atomic density compared to conventional aggregate. By increasing the hematite concentration to 70%, the performance of the concrete shield reaches saturation. Furthermore, Gamma attenuation efficiency predictably decreased with increasing energy. The results also indicate that increasing hematite concentrations in aggregates beyond its critical level at a concentration of 50% leads to a decrease in compressive strength. While B 4 C addition improved neutron attenuation, it inversely affected CS and μ γ . Composites containing 40% to 50% hematite exhibit the best performance for μ γ , Σ n , and CS simultaneously. Using H 50 -B 20 composite instead of ordinary concrete reduces the gamma tenth-value layer by ∼57% and the neutron tenth-value layer by ∼45%, and also increases the CS by ∼85%. This significant improvement in the effectiveness of the concrete shielding highlights the potential of these composites to increase volumetric efficiency and useable space in nuclear facilities, while reducing the need for construction materials and enhancing structural resistance.

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Cite This Study

SeyyedMohsen et al. (2026) studied this question.

synapsesocial.com/papers/69a285da0a974eb0d3c00c32https://doi.org/10.1016/j.jrras.2026.102239
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