空気中の微粒子を “その場で” サイズ別に直接計測 ―3Dプリント製の使い捨てデバイス「µSPLIT」を開発

2026-07-30 日本原子力研究開発機構

日本原子力研究開発機構は、空気中の微粒子(エアロゾル)を粒径別にその場で分離・計測できる使い捨て型デバイス「µSPLIT(マイクロスプリット)」を開発した。光造形3Dプリンターによる一体成形と数値流体力学(CFD)を用いた流路設計により、小型・低コスト化を実現し、汚染後は装置ごと廃棄できるため、従来必要だった除染作業や二次被ばくリスクを大幅に低減できる。デバイスは慣性分級により微粒子を3つの粒径帯へ分離し、HEPAフィルターで捕集するとともに、放射線検出器と直結してα線を直接測定できる。放射性エアロゾルを用いた実証試験では設計どおりの粒径分離性能と直接計測性能を確認した。今後は福島第一原子力発電所の廃炉作業における放射性エアロゾル監視に加え、PM2.5、粉じん、マイクロプラスチックなどの環境・労働衛生分野への応用や、多点モニタリングシステムとしての社会実装を目指す。

空気中の微粒子を “その場で” サイズ別に直接計測 ―3Dプリント製の使い捨てデバイス「µSPLIT」を開発
図1 使い捨て分級・計測デバイス「µSPLIT」

<関連情報>

放射性エアロゾルの粒径分離と直接分析を実現する3Dプリント2段バーチャルインパクターの開発 Development of a 3D-Printed Two-Stage Virtual Impactor for Radioactive Aerosol Size Classification and Direct Analysis

Hugo Laffolley;Youichi Tsubota;Ayame Kuroe;Tomoaki Kato
ACS Omega  Published:July 19, 2026
DOI:https://doi.org/10.1021/acsomega.6c04521

Abstract

Radioactive aerosol size classification is important for exposure assessment and decommissioning operations, particularly at the Fukushima Daiichi Nuclear Power Plant decommissioning site, where airborne particles may be generated or resuspended during remote inspection and debris retrieval. This study presents the development of a two-stage 3D-printed virtual impactor, called μSPLIT, designed to separate aerosols into three aerodynamic diameter classes (>10 μm, 1–10 μm, and <1 μm) while enabling direct postcollection analysis on integrated filters. The objective is to develop a virtual impactor that can be fabricated at a reduced cost and be disposed of easily after usage by incineration, without generating any hazardous human exposure during cleaning and decontamination activities, and free from metallic wastes that are not easily disposed of. The flow path was designed and optimized by computational fluid dynamics and Lagrangian particle tracking, and prototypes were fabricated by stereolithography. Numerical simulations predicted cutoff diameters of 9.0 and 1.3 μm for the first and second stages, respectively, with relatively sharp separation in both cases. The simulations also identified limitations of the current geometry, including small-particle contamination in the minor flow and large-particle contamination in the major flow of the second stage. Dimensional measurements of printed prototypes revealed contraction and corner rounding in the internal channels, confirming the need for fabrication compensation and quality control. Experimental tests with incense smoke provided a preliminary functional check, showing that submicrometric particles were mostly collected in the <1 μm particle class. Additional tests with Rn-progeny-bearing NaCl particles, characterized by a geometric mean aerodynamic diameter of 1.70 μm, produced the highest α activity on the middle filter (1–10 μm particle class), consistent with the expected classification. These results demonstrate the proof of concept of a lightweight and low-cost impactor for simultaneous aerosol size classification and direct radioactive particle analysis, while also identifying key areas requiring further optimization, particularly the second-stage geometry, quantitative wall loss assessment, and validation with standardized aerosols.

2005放射線防護
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