Potential aerosol tradeoffs of vessel speed reduction for fresh ship plume composition and tracer coverage

Vessel Speed Reduction (VSR) lowers ship CO 2 emissions, but its aerosol consequences remain poorly constrained. Combining unmanned aerial vehicle (UAV) plume interception, single-particle mass spectrometry (SPMS), and population-balance inversion across 14 ship plumes, we reconstructed ultrafine and coarse modes and identified two marker gaps. Only 35.8% of the reconstructed particle-number population carried detectable V (29.5% at 4.9 versus 39.7% at 13.4 knots in a matched-vessel pair; 0–70.8% across a speed-blind manifold), showing operation-dependent marker coverage. Approximately 20% of analyzed particles met SPMS biomass-burning criteria, indicating potential false positives in ship-influenced samples. Plume-stratified analysis found 2.3–10.7-fold higher median sulfate-related ion signals in V/VO-bearing particles. Independent V–S co-location supports an association potentially arising from V-associated sulfur chemistry during exhaust cooling, pre-existing SO 3 uptake, or terminal co-deposition; laser desorption/ionization matrix effects may contribute to the contrast. In the matched-vessel case, VSR’s CO 2 benefit coincided with a carbon-rich particle shift, altered V/VO–sulfur signatures, and lower strict detectable-V coverage. This indicates a potential aerosol-composition and marker-reliability trade-off missed by bulk-mass metrics, with implications for hazard-relevant compositional indicators.

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Publication Details

Journal
npj Climate and Atmospheric Science
Published
2026-09-05
DOI
https://doi.org/10.1038/s41612-026-01532-3
Primary Topic
Maritime Transport Emissions and Efficiency
Type
article
Field-Weighted Citation Impact
0.00

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article

Potential aerosol tradeoffs of vessel speed reduction for fresh ship plume composition and tracer coverage

Yaling Zeng, Baohua Cai, Tzung‐May Fu, Huizhong Shen et al.
npj Climate and Atmospheric Science
Maritime Transport Emissions and Efficiency
article

Potential aerosol tradeoffs of vessel speed reduction for fresh ship plume composition and tracer coverage

Yaling Zeng, Baohua Cai, Tzung‐May Fu, Huizhong Shen, Shujun Bie, Yan Zhang, Jianhuai Ye, Huiran Feng, Lei Zhu, Yin Zhang, Shu Tao, Shao Shi, Tianlong Hu, Xin Yang, Chen Wang, Yujie Zhang
article en

Abstract

Vessel Speed Reduction (VSR) lowers ship CO 2 emissions, but its aerosol consequences remain poorly constrained. Combining unmanned aerial vehicle (UAV) plume interception, single-particle mass spectrometry (SPMS), and population-balance inversion across 14 ship plumes, we reconstructed ultrafine and coarse modes and identified two marker gaps. Only 35.8% of the reconstructed particle-number population carried detectable V (29.5% at 4.9 versus 39.7% at 13.4 knots in a matched-vessel pair; 0–70.8% across a speed-blind manifold), showing operation-dependent marker coverage. Approximately 20% of analyzed particles met SPMS biomass-burning criteria, indicating potential false positives in ship-influenced samples. Plume-stratified analysis found 2.3–10.7-fold higher median sulfate-related ion signals in V/VO-bearing particles. Independent V–S co-location supports an association potentially arising from V-associated sulfur chemistry during exhaust cooling, pre-existing SO 3 uptake, or terminal co-deposition; laser desorption/ionization matrix effects may contribute to the contrast. In the matched-vessel case, VSR’s CO 2 benefit coincided with a carbon-rich particle shift, altered V/VO–sulfur signatures, and lower strict detectable-V coverage. This indicates a potential aerosol-composition and marker-reliability trade-off missed by bulk-mass metrics, with implications for hazard-relevant compositional indicators.

npj Climate and Atmospheric Science
Southern University of Science and Technology (CN), Quality Research (US)
National Natural Science Foundation of China, Ministry of Science and Technology of the People's Republic of China
Openalex Percentile: Top 17%
Maritime Transport Emissions and Efficiency
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