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Updated: Aug 29, 2026

Remote Laboratory Management: Respiratory Virus Diagnostics
Published on: April 6, 2019
Field verification of ventilation performance and driver-area isolation in a purpose-modified taxi for transporting
Hiroko Kitamura1,2, Yo Ishigaki3, Akira Saito4
1Department of Radiation Regulatory Science Research, Institute for Radiological Sciences, National Institutes for Quantum Science and Technology (QST), 4-9-1 Anagawa, Inage-ku, Chiba city, Chiba 263-8555, Japan.
Abstract:
During the COVID-19 pandemic, taxis were used to transport patients with mild symptoms; however, quantitative field evidence on ventilation performance and driver-area isolation in modified taxis remains limited. We conducted a field demonstration experiment to evaluate a purpose-modified taxi under real driving conditions: approximately constant-speed driving (55 km/h) and variable-speed driving. Rear-cabin ventilation was assessed using carbon dioxide (CO2) tracer-gas decay, and compartmental isolation was evaluated using particle measurements. Estimated air changes per hour were 33.8 h-1 during constant-speed driving and 44.8 h-1 during variable-speed driving. Rear-cabin CO2 concentrations exceeded 8,000 ppm immediately after tracer release in both runs, while front-cabin CO2 concentrations remained near background levels. Rear-cabin particle counts exceeded 12,000 counts per minute (cpm) in both runs, while front-cabin counts remained ≤15 cpm, corresponding to ≤0.12% of rear-cabin peak levels. Under the tested configuration, the modified taxi achieved high rear-cabin ventilation while maintaining strong driver-area isolation. This paired field-verification approach may support practical evaluation of exposure-control measures in purpose-modified passenger transport vehicles.
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