日常活動が有害粉じんの拡散に与える影響を測定(When the Dust Settles: Researchers Measure How Everyday Activity Spreads Hazardous Dust)

2026-08-26 アルゴンヌ国立研究所(ANL)

Argonne National Laboratoryの研究チームは、歩行や日常的な活動によって床面の粉じんがどの程度再浮遊し、周囲へ拡散するのかを定量的に測定する手法を開発した。研究では、放射性物質などの危険物質を想定した模擬粒子を用い、人の動作によって床の粉じんが空気中へ舞い上がり、どのように移動するかを調査。粉じんの再浮遊量や粒子の移動は、粒径、床面の状態、人の活動など複数の要因に左右されることを明らかにした。こうしたデータは、汚染された施設での放射性物質や有害粉じんの拡散を予測し、除染方法や作業員の防護策を改善するために重要である。特に、従来のモデルでは十分に捉えにくかった「人の活動による粉じん再浮遊」を実験的に評価することで、屋内環境における汚染物質の移動をより現実的に予測できるようになる。研究成果は、原子力施設の安全管理や環境・作業者の放射線防護などへの応用が期待される。

日常活動が有害粉じんの拡散に与える影響を測定(When the Dust Settles: Researchers Measure How Everyday Activity Spreads Hazardous Dust)
Pedestrian tests were conducted inside a tent facility to control the humidity and temperature and contain the dust. The researcher is seen entering the tent to left. Particle counters are located on the white table with their hoses extending into the tent to sample the air inside the tent. (Image by Argonne National Laboratory.)

<関連情報>

舗装面からの有害物質の再浮遊と推奨される再浮遊係数 ― 歩行者または人員の活動および車両に関する現場実験 Resuspension of Threat Agents from Paved Surfaces and Recommended Resuspension Factors — Field Experiments with Pedestrian or Personnel Activity and Vehicles

Michael D.R. Kaminski,Nico Daiyega,Hannah Jaglinski
Health Physics  Published:July 27, 2026
DOI:10.1097/HP.0000000000002195

Abstract

Resuspension of hazardous particles from paved surfaces poses significant risks during radiological contamination scenarios. Accurate modeling of particle resuspension dynamics is essential for developing effective mitigation strategies and ensuring public and responder safety. However, default resuspension factors in models may underestimate risks, particularly during emergency operations involving pedestrian and vehicle activity on freshly contaminated surfaces.

To address these gaps, we conducted pilot-scale field experiments using Arizona Test Dust (ATD) as a surrogate for threat agents. Human activities included casual walking, vigorous walking (marching), and vacuuming on concrete surfaces, while vehicle tests involved driving a sport utility vehicle (SUV) over asphalt in both drive-through (tires passing over dust) and drive-over (undercarriage passing over dust) configurations. Resuspension factors (Sf) were calculated for particle size ranges from 0.5–10 µm. Casual walking produced low resuspension factors, from <10-5 m-1 for 0.5-1.0 μm particles to <3 × 10-3 m-1 for 5-10 μm particles. In contrast, marching, which served as a surrogate for vigorous pedestrian or personnel movement, substantially increased resuspension, with Sf values ranging from 2 × 10-5 m-1 at 0.1-1 μm to 2 × 10-3 m-1 for 5-10 μm particles. Vacuuming caused measurable resuspension for smaller particles (Sf = 1.4 × 10-3 m-1), while larger particles remained undetectable. Vehicle tests showed higher resuspension factors for larger particles, with Sf values ranging from 3 × 10-4 m-1 to 2 × 10-2 m-1 during the first pass. Subsequent passes eventually reduced resuspension factors by an order of magnitude. These findings reveal significantly higher resuspension during emergency operations than many models assume. Our results apply to scenarios involving radioactive fallout, chemical, and biological agents, offering critical data to improve contamination control, emergency response planning, and risk assessment models.

2005放射線防護
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