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Plasma-Assisted Soot Oxidation: Ozone and NO2as Dual Oxidants for Efficient Diesel Particulate Filter Regeneration
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Metadata
Document Title
Plasma-Assisted Soot Oxidation: Ozone and NO2as Dual Oxidants for Efficient Diesel Particulate Filter Regeneration
Author
Iamcheerangkoon T.
Name from Authors Collection
Affiliations
College of Industrial Technology, King Mongkut’s University of Technology North Bangkok, 1518 Pracharat 1 Road, Wongsawang, Bangsue, Bangkok, 10800, Thailand; Research Centre for Combustion Technology and Alternative Energy (CTAE), Science and Technology Research Institute, King Mongkut’s University of Technology North Bangkok, Bangkok, 10800, Thailand; Renewable Energy and Energy Efficiency Research Team, National Energy Technology Center (ENTEC), National Science and Technology Development Agency, Pathum Thani, 12120, Thailand; Curriculum of Modern Automotive Tecgnology and Automation System (MATA), KMUTNB Techno Park, 1518 Pracharat 1 Road, Wongsawang, Bangsue, Bangkok, 10800, Thailand
Type
Article
Source Title
ACS Omega
ISSN
24701343
Year
2025
Volume
10
Issue
45
Page
55008-55020
Open Access
All Open Access; Gold Open Access; Green Open Access
Publisher
American Chemical Society
DOI
10.1021/acsomega.5c09243
Abstract
This study investigates the effectiveness of an inline dielectric-barrier-discharge nonthermal plasma (DBD-NTP) system in promoting the regeneration of diesel particulate filters (DPFs) through the application of plasma-derived oxidants. Experimental analyses were performed on a diesel engine utilizing B7 fuel at an indicated mean effective pressure (IMEP) of 6 bar, during which the DBD reactor demonstrated the capacity to generate adjustable concentrations of ozone (O3) and nitrogen dioxide (NO2). In the context of air feed, O3was identified as the primary oxidant, while NO2was produced as a secondary byproduct via both O3- and O-assisted pathways. Regeneration experiments indicated that the interplay between O3and NO2led to an approximate 74% reduction in pressure drop, contrasting with a 46% reduction noted under conditions employing solely O3, thereby affirming the synergistic role of NO2in extending oxidation cycles. Electrical low-pressure scanning mobility particle sizer (EEPS) measurements indicated that the dual oxidant strategy of O3and NO2effectively diminished both nucleation- and accumulation-mode particulate matter, whereas high-resolution transmission electron microscopy (HRTEM) analysis implied that soot nanostructures were transformed into disordered, defect-laden graphitic layers with a slight reduction in primary particle size. Complementary thermogravimetric analysis (TGA) and kinetic assessments validated that exposure to oxidants reduced the apparent activation energy associated with soot oxidation from 101.6 to 83.9 kJ mol–1. Collectively, the findings substantiate that DBD-NTP is capable of generating potent oxidants that are favorable for low-temperature DPF regeneration. While O3serves as the principal catalyst for soot oxidation, NO2provides a synergistic effect by lowering the energy threshold and enhancing soot reactivity. This dual-oxidant strategy represents a promising pathway for improving regeneration efficiency under realistic exhaust conditions without the need for additional modifications to the engine. © 2025 The Authors. Published by American Chemical Society
License
CC BY-NC-ND
Rights
Authors
Publication Source
Scopus