TY - JOUR
T1 - Mode transition and fragmentation behavior of ash-catalyzed soot oxidation in gasoline particulate filters
AU - Wang, Yuelin
AU - Gao, Jianbing
AU - Huang, Yuhan
AU - Huang, Junfeng
AU - Xie, Rongfu
AU - Wang, Xiaochen
N1 - Publisher Copyright:
Crown Copyright © 2026 Published by Elsevier B.V. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/8/1
Y1 - 2026/8/1
N2 - Although ash deposition is known to promote soot oxidation in gasoline particulate filters (GPFs), the underlying mechanism remains unclear. In this study, two ash surrogates (SiO2 and Al2O3) were employed to investigate the evolution of soot morphology and nanostructure at different oxidation degrees under a 16.6% O2 atmosphere at 650 °C, with a particular emphasis on oxidation mode transition and oxidation-induced fragmentation behavior. Results show that distinct hollow structures are observed in ash-free soot at late oxidation stages. Such hollow structures are largely suppressed in the presence of ash. Ash addition significantly decreases the number and size of primary particles within aggregates, with increased fractal dimension and a more disordered nanostructure. For all samples, the aggregates fragmentation rate decreases with increasing oxidation degree. However, soot oxidized with ash exhibits a higher aggregate fragmentation rate (up to 20% higher) during the initial oxidation stage than ash-free soot. In contrast, the fragmentation rate of primary particles for ash-free soot increases sharply during oxidation, reaching 0.927 in the late stage, whereas this increase is suppressed by ash addition. This indicates that ash impedes oxidant penetration into the interior of primary particles, thereby effectively suppressing internal oxidation while promoting external oxidation. Notably, SiO2 demonstrates superior catalytic performance compared with Al2O3 throughout the oxidation process. This work provides new insights into ash-driven soot oxidation and offers guidance for optimizing GPF regeneration strategies.
AB - Although ash deposition is known to promote soot oxidation in gasoline particulate filters (GPFs), the underlying mechanism remains unclear. In this study, two ash surrogates (SiO2 and Al2O3) were employed to investigate the evolution of soot morphology and nanostructure at different oxidation degrees under a 16.6% O2 atmosphere at 650 °C, with a particular emphasis on oxidation mode transition and oxidation-induced fragmentation behavior. Results show that distinct hollow structures are observed in ash-free soot at late oxidation stages. Such hollow structures are largely suppressed in the presence of ash. Ash addition significantly decreases the number and size of primary particles within aggregates, with increased fractal dimension and a more disordered nanostructure. For all samples, the aggregates fragmentation rate decreases with increasing oxidation degree. However, soot oxidized with ash exhibits a higher aggregate fragmentation rate (up to 20% higher) during the initial oxidation stage than ash-free soot. In contrast, the fragmentation rate of primary particles for ash-free soot increases sharply during oxidation, reaching 0.927 in the late stage, whereas this increase is suppressed by ash addition. This indicates that ash impedes oxidant penetration into the interior of primary particles, thereby effectively suppressing internal oxidation while promoting external oxidation. Notably, SiO2 demonstrates superior catalytic performance compared with Al2O3 throughout the oxidation process. This work provides new insights into ash-driven soot oxidation and offers guidance for optimizing GPF regeneration strategies.
KW - Ash surrogates
KW - Gasoline particulate filters
KW - Morphology and nanostructure
KW - Oxidation-induced fragmentation
KW - Soot oxidation
UR - https://www.scopus.com/pages/publications/105041135384
U2 - 10.1016/j.jhazmat.2026.142648
DO - 10.1016/j.jhazmat.2026.142648
M3 - Article
AN - SCOPUS:105041135384
SN - 0304-3894
VL - 514
JO - Journal of Hazardous Materials
JF - Journal of Hazardous Materials
M1 - 142648
ER -