Evaluation of Low-Cost Gas Sensors for UAV-Based Greenhouse Gas Monitoring: Experimental and CFD Analysis of Rotor-Induced Effects

Unmanned aerial vehicles (UAVs) equipped with lightweight gas sensors offer a promising approach for greenhouse-gas emission monitoring. However, airflow generated by multirotor propellers can disturb the atmosphere and influence measured gas concentrations. This study investigates rotor-induced downwash effects on vehicle exhaust plume measurements using experimental and numerical approaches. Experiments were conducted with a stationary diesel vehicle at idle, while a propeller system reproduced UAV downwash at rotor-sensor separation distances of 0.5–5.5 m above a fixed CO2 sensor. A low-cost Feather-based sensing platform was evaluated against a commercial IoTSens monitoring station. CFD simulations were performed in OpenFOAM® using a compressible multi-species solver, Large Eddy Simulation (LES), and a Multiple Reference Frame (MRF) approach. Experiments showed CO2 reductions of up to 52.7%, while CFD predicted reductions of 50.4–88.5%. Both approaches showed decreasing rotor-wake influence with increasing separation distance, with strongest effects below approximately 2–3 m. Experimentally, downwash effects became weak between 3.5 and 5.5 m, consistent with reduced plume–wake interaction predicted by CFD. These findings highlight the importance of accounting for rotor-induced downwash when designing UAV-based gas monitoring missions.

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Publication Details

Journal
Air
Published
2026-09-01
DOI
https://doi.org/10.3390/air4030020
Primary Topic
Insect Pheromone Research and Control
Type
article
Field-Weighted Citation Impact
0.00

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article

Evaluation of Low-Cost Gas Sensors for UAV-Based Greenhouse Gas Monitoring: Experimental and CFD Analysis of Rotor-Induced Effects

Sofía Aparicio, J.J. Anaya, Fernando Ramonet, Lidia Abad et al.
Air
Insect Pheromone Research and Control
article

Evaluation of Low-Cost Gas Sensors for UAV-Based Greenhouse Gas Monitoring: Experimental and CFD Analysis of Rotor-Induced Effects

Sofía Aparicio, J.J. Anaya, Fernando Ramonet, Lidia Abad, Darío Sánchez-Jimenez, Víctor Suárez
article en

Abstract

Unmanned aerial vehicles (UAVs) equipped with lightweight gas sensors offer a promising approach for greenhouse-gas emission monitoring. However, airflow generated by multirotor propellers can disturb the atmosphere and influence measured gas concentrations. This study investigates rotor-induced downwash effects on vehicle exhaust plume measurements using experimental and numerical approaches. Experiments were conducted with a stationary diesel vehicle at idle, while a propeller system reproduced UAV downwash at rotor-sensor separation distances of 0.5–5.5 m above a fixed CO2 sensor. A low-cost Feather-based sensing platform was evaluated against a commercial IoTSens monitoring station. CFD simulations were performed in OpenFOAM® using a compressible multi-species solver, Large Eddy Simulation (LES), and a Multiple Reference Frame (MRF) approach. Experiments showed CO2 reductions of up to 52.7%, while CFD predicted reductions of 50.4–88.5%. Both approaches showed decreasing rotor-wake influence with increasing separation distance, with strongest effects below approximately 2–3 m. Experimentally, downwash effects became weak between 3.5 and 5.5 m, consistent with reduced plume–wake interaction predicted by CFD. These findings highlight the importance of accounting for rotor-induced downwash when designing UAV-based gas monitoring missions.

AirVol. 4(3)
Instituto de Tecnologías Físicas y de la Información “Leonardo Torres Quevedo” (ES)
European Commission
Openalex Percentile: Top 11%
Insect Pheromone Research and Control
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Evaluation of Low-Cost Gas Sensors for UAV-Based Greenhouse Gas Monitoring: Experimental and CFD Analysis of Rotor-Induced Effects — Sofía Aparicio, J.J. Anaya, et al. · Air (2026) | TGRS Research Map | TGRS