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Published in: Topics in Catalysis 8-9/2016

24-03-2016 | Original Paper

NO2 Oxidation Reactivity and Burning Mode of Diesel Particulates

Authors: Andrea Strzelec, Randy L. Vander Wal, Thomas N. Thompson, Todd J. Toops, C. Stuart Daw

Published in: Topics in Catalysis | Issue 8-9/2016

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Abstract

The NO2 oxidation kinetics and burning mode for diesel particulate from light-duty and medium-duty engines fueled with either ultra low sulfur diesel or soy methyl ester biodiesel blends have been investigated and are shown to be significantly different from oxidation by O2. Oxidation kinetics were measured using a flow-through packed bed microreactor for temperature programmed reactions and isothermal differential pulsed oxidation reactions. The burning mode was evaluated using the same reactor system for flowing BET specific surface area measurements and HR-TEM with fringe analysis to evaluate the nanostructure of the nascent and partially oxidized particulates. The low activation energy measured, specific surface area progression with extent of oxidation, HR-TEM images and difference plots of fringe length and tortuosity paint a consistent picture of higher reactivity for NO2, which reacts indiscriminately immediately upon contact with the surface, leading to the Zone I or shrinking core type oxidation. In comparison, O2 oxidation is shown to have relatively lower reactivity, preferentially attacking highly curved lamella, which are more reactive due to bond strain, and short lamella, which have a higher proportion of more reactive edge sites. This preferential oxidation leads to Zone II type oxidation, where solid phase diffusion of oxygen via pores contributes significantly to slowing the overall oxidation rate, by comparison.

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Literature
1.
go back to reference Attfield M, Schleiff P, Lubin J, Blair A, Stewart P, Vermeulen R, Coble J, Silverman D (2012) The diesel exhaust in miners study: a cohort mortality study with emphasis on lung cancer. J Natl Cancer Inst 104:869–883CrossRef Attfield M, Schleiff P, Lubin J, Blair A, Stewart P, Vermeulen R, Coble J, Silverman D (2012) The diesel exhaust in miners study: a cohort mortality study with emphasis on lung cancer. J Natl Cancer Inst 104:869–883CrossRef
2.
go back to reference Donaldson K (2013) Nanoparticles and the cardiovascular system: a critical review. Nanomedicine 8:403–423CrossRef Donaldson K (2013) Nanoparticles and the cardiovascular system: a critical review. Nanomedicine 8:403–423CrossRef
3.
go back to reference Konstandopoulos A, Johnson J (1989) Wall-flow diesel particulate filters—their pressure drop and collection efficiency, p 890405 Konstandopoulos A, Johnson J (1989) Wall-flow diesel particulate filters—their pressure drop and collection efficiency, p 890405
4.
go back to reference Opris C, Johnson J (1998) A 2-D computational model describing the flow and filtration characteristics of a ceramic diesel particulate trap, SAE technical papers, p 980545 Opris C, Johnson J (1998) A 2-D computational model describing the flow and filtration characteristics of a ceramic diesel particulate trap, SAE technical papers, p 980545
5.
go back to reference Noureddini H, Zhu D (1997) Kinetics of transesterfication of soybean oil. J Am Oil Chem Soc 74:1457–1463CrossRef Noureddini H, Zhu D (1997) Kinetics of transesterfication of soybean oil. J Am Oil Chem Soc 74:1457–1463CrossRef
6.
go back to reference Teng G, Gao L, Xiao G, Liu H (2009) Transesterification of soybean oil to biodiesel over heerogeneous solid base catalyst. Energy Fuels 23:4630–4634CrossRef Teng G, Gao L, Xiao G, Liu H (2009) Transesterification of soybean oil to biodiesel over heerogeneous solid base catalyst. Energy Fuels 23:4630–4634CrossRef
7.
go back to reference Strzelec A, Toops TJ, Daw CS (2013) Oxygen reactivity of devolatilized diesel engine particulates from conventional and biodiesel fuels. Energy Fuels 27:3944–3951CrossRef Strzelec A, Toops TJ, Daw CS (2013) Oxygen reactivity of devolatilized diesel engine particulates from conventional and biodiesel fuels. Energy Fuels 27:3944–3951CrossRef
8.
go back to reference Harris SJ, Maricq MM (2001) Signature size distributions for diesel and gasoline engine exhaust particulate matter. J Aerosol Sci 32:749–764CrossRef Harris SJ, Maricq MM (2001) Signature size distributions for diesel and gasoline engine exhaust particulate matter. J Aerosol Sci 32:749–764CrossRef
9.
go back to reference Harris SJ, Weiner AM (1985) Chemical kinetics of soot particle growth. Annu Rev Phys Chem 36:31–52CrossRef Harris SJ, Weiner AM (1985) Chemical kinetics of soot particle growth. Annu Rev Phys Chem 36:31–52CrossRef
10.
go back to reference Sluder C, Wagner R, Storey J, Lewis S (2005) Implications of particulate and precursor compounds formed during high-efficiency clean combustion in a diesel engine, SAE technical paper, 2005-01-3844 Sluder C, Wagner R, Storey J, Lewis S (2005) Implications of particulate and precursor compounds formed during high-efficiency clean combustion in a diesel engine, SAE technical paper, 2005-01-3844
11.
go back to reference Marsh H (1978) How oxygen molecules gasify carbons. Spec Pub Chem Soc 32:133–174 Marsh H (1978) How oxygen molecules gasify carbons. Spec Pub Chem Soc 32:133–174
12.
go back to reference Marsh H (1989) Catalysis of carbon gassification, introduction to carbon science. Butterworths, London Marsh H (1989) Catalysis of carbon gassification, introduction to carbon science. Butterworths, London
13.
go back to reference Smith I (1971) The kinetics of combustion of pulverized semi-anthracite in the temperature range 1400–2200 K. Combust Flame 17:421–428CrossRef Smith I (1971) The kinetics of combustion of pulverized semi-anthracite in the temperature range 1400–2200 K. Combust Flame 17:421–428CrossRef
14.
go back to reference Smoot D (1998) International research centers’ activities in coal combustion. Prog Energy Combust Sci 24:409–501CrossRef Smoot D (1998) International research centers’ activities in coal combustion. Prog Energy Combust Sci 24:409–501CrossRef
15.
go back to reference Essenhigh R (1981) Fundamentals of coal combustion. In: Ellis M (ed) Chemistry of coal utilization. Wiley Interscience, New York, pp 1153–1311 Essenhigh R (1981) Fundamentals of coal combustion. In: Ellis M (ed) Chemistry of coal utilization. Wiley Interscience, New York, pp 1153–1311
16.
go back to reference Strzelec A, Foster DE, Rutland CJ, Lewis SA, Storey JME, Daw CS (2010) Effect of biodiesel blending on the speciation of soluble organic fraction from a light duty diesel engine, SAE technical paper, 2010-01-1273, pp 1–8 Strzelec A, Foster DE, Rutland CJ, Lewis SA, Storey JME, Daw CS (2010) Effect of biodiesel blending on the speciation of soluble organic fraction from a light duty diesel engine, SAE technical paper, 2010-01-1273, pp 1–8
17.
go back to reference Strzelec A, Toops TJ, Daw CS, Foster DE, Rutland CJ (2010) Diesel particulate oxidation model: combined effects of volatiles and fixed carbon combustion, SAE technical paper, 2010-01-2127, pp 1–10 Strzelec A, Toops TJ, Daw CS, Foster DE, Rutland CJ (2010) Diesel particulate oxidation model: combined effects of volatiles and fixed carbon combustion, SAE technical paper, 2010-01-2127, pp 1–10
18.
go back to reference Vander Wal RL, Tomasek AJ (2004) Soot nanostructure: dependence upon synthesis conditions. Combus Flame 136:129–140CrossRef Vander Wal RL, Tomasek AJ (2004) Soot nanostructure: dependence upon synthesis conditions. Combus Flame 136:129–140CrossRef
19.
go back to reference Vander RL, Wal A, Strzelec TJ, Toops C, Daw CS, Genzale CL (2013) Forensics of soot: C5-related nanostructure as a diagnostic of in-cylinder chemistry. Fuel 113:522–526CrossRef Vander RL, Wal A, Strzelec TJ, Toops C, Daw CS, Genzale CL (2013) Forensics of soot: C5-related nanostructure as a diagnostic of in-cylinder chemistry. Fuel 113:522–526CrossRef
20.
go back to reference Yezerets A, Currier N, Eadler H (2003) Experimental determination of the kinetics of Diesel soot oxidation by O2: modeling consequences. SAE Trans 112:537–544 Yezerets A, Currier N, Eadler H (2003) Experimental determination of the kinetics of Diesel soot oxidation by O2: modeling consequences. SAE Trans 112:537–544
21.
go back to reference Yezerets A, Currier N, Eadler H, Popuri S, Suresh A (2002) Quantitative flow-reactor study of diesel soot oxidation processes, SAE, SAE 2002-01-1684 Yezerets A, Currier N, Eadler H, Popuri S, Suresh A (2002) Quantitative flow-reactor study of diesel soot oxidation processes, SAE, SAE 2002-01-1684
22.
go back to reference Yezerets A, Currier N, Eadler H, Suresh A, Madden P, Branigin M (2003) Investigation of the oxidation behavior of diesel particulate matter. Catal Today 88:17–25CrossRef Yezerets A, Currier N, Eadler H, Suresh A, Madden P, Branigin M (2003) Investigation of the oxidation behavior of diesel particulate matter. Catal Today 88:17–25CrossRef
23.
go back to reference Yezerets A, Currier N, Kim D, Eadler H, Epling W, Peden C (2005) Differential kinetic analysis of diesel particulate matter (soot) oxidation by oxygen using a step–response technique. Appl Catal B 61:120–129CrossRef Yezerets A, Currier N, Kim D, Eadler H, Epling W, Peden C (2005) Differential kinetic analysis of diesel particulate matter (soot) oxidation by oxygen using a step–response technique. Appl Catal B 61:120–129CrossRef
24.
25.
go back to reference Gray D, Cogoli J, Essenhigh R (1976) Problems in Pulverized Coal and Char Combustion. Adv Chem Ser, 132 Gray D, Cogoli J, Essenhigh R (1976) Problems in Pulverized Coal and Char Combustion. Adv Chem Ser, 132
26.
go back to reference Essenhigh R, Froberg R, Howard J (1965) Combustion behavior of small particles. Ind Eng Chem 57:32–43CrossRef Essenhigh R, Froberg R, Howard J (1965) Combustion behavior of small particles. Ind Eng Chem 57:32–43CrossRef
27.
go back to reference Mitchell RE, Ma L, Kim B (2007) On the burning behavior of pulverized coal chars. Combust Flame 151:426–436CrossRef Mitchell RE, Ma L, Kim B (2007) On the burning behavior of pulverized coal chars. Combust Flame 151:426–436CrossRef
28.
go back to reference Essenhigh R (1999) Combustion characteristics of carbon: influence of the zone I—zone II transition on burnout in pulverized coal flames. Energy Fuels 13:826–831CrossRef Essenhigh R (1999) Combustion characteristics of carbon: influence of the zone I—zone II transition on burnout in pulverized coal flames. Energy Fuels 13:826–831CrossRef
29.
go back to reference Essenhigh R (1998) Structure-based predictive model for char combustion, Report, pp 1–20 Essenhigh R (1998) Structure-based predictive model for char combustion, Report, pp 1–20
30.
go back to reference Walker P (1990) Carbon: an old but new material revisited. Carbon 28:262–279CrossRef Walker P (1990) Carbon: an old but new material revisited. Carbon 28:262–279CrossRef
31.
go back to reference Back MH (1996) Clara benson award lecture the kinetics of the reaction of carbon with oxygen. Can J Chem 75(1997):249–257 Back MH (1996) Clara benson award lecture the kinetics of the reaction of carbon with oxygen. Can J Chem 75(1997):249–257
32.
go back to reference Stanmore B, Brilhac J, Gilot P (2001) The oxidation of soot: a review of experiments, mechanisms and models. Carbon 39:2247–2268CrossRef Stanmore B, Brilhac J, Gilot P (2001) The oxidation of soot: a review of experiments, mechanisms and models. Carbon 39:2247–2268CrossRef
33.
34.
go back to reference Vander RL, Wal A, Yezerets NW, Currier DH, Kim CMW (2007) HRTEM Study of diesel soot collected from diesel particulate filters. Carbon 45:70–77CrossRef Vander RL, Wal A, Yezerets NW, Currier DH, Kim CMW (2007) HRTEM Study of diesel soot collected from diesel particulate filters. Carbon 45:70–77CrossRef
35.
go back to reference Leistner K, Nicolle A, Da Costa P (2012) Detailed kinetic analysis of soot oxidation by NO2, NO, and NO+ O2. J Phys Chem C 116:4642–4654CrossRef Leistner K, Nicolle A, Da Costa P (2012) Detailed kinetic analysis of soot oxidation by NO2, NO, and NO+ O2. J Phys Chem C 116:4642–4654CrossRef
36.
go back to reference Kandylas IP, Haralampous OA, Koltsakis GC (2002) Diesel soot oxidation with NO2: engine experiments and simulations. Ind Eng Chem Res 41:5372–5384CrossRef Kandylas IP, Haralampous OA, Koltsakis GC (2002) Diesel soot oxidation with NO2: engine experiments and simulations. Ind Eng Chem Res 41:5372–5384CrossRef
37.
go back to reference Jacquot F, Logie V, Brilhac JF, Gilot P (2002) Kinetics of the oxidation of carbon black by NO2: influence of the presense of water and oxygen. Carbon 40:335–343CrossRef Jacquot F, Logie V, Brilhac JF, Gilot P (2002) Kinetics of the oxidation of carbon black by NO2: influence of the presense of water and oxygen. Carbon 40:335–343CrossRef
38.
go back to reference Jung J, Song S, Chun KM (2008) Characterization of catalyzed soot oxidation with NO2, NO and O2 using a lab-scale flow reactor system, SAE technical paper, 2008-01-0482, pp 1–7 Jung J, Song S, Chun KM (2008) Characterization of catalyzed soot oxidation with NO2, NO and O2 using a lab-scale flow reactor system, SAE technical paper, 2008-01-0482, pp 1–7
39.
go back to reference Kandylas IP, Koltsakis GC (2002) NO2-assisten regeneration of diesel particulate filters: a modeling study. Ind Eng Chem Res 41:2115–2123CrossRef Kandylas IP, Koltsakis GC (2002) NO2-assisten regeneration of diesel particulate filters: a modeling study. Ind Eng Chem Res 41:2115–2123CrossRef
40.
go back to reference Kim D, Lee HS, Chun KM, Hwang JH, Lee KS, Chun BH (2002) Comparison of soot oxidation by NO2 only and plasma-treated gas containing NO2, O2, and hydrocarbons, SAE technical paper, 2002-01-2704, pp 1–6 Kim D, Lee HS, Chun KM, Hwang JH, Lee KS, Chun BH (2002) Comparison of soot oxidation by NO2 only and plasma-treated gas containing NO2, O2, and hydrocarbons, SAE technical paper, 2002-01-2704, pp 1–6
41.
go back to reference Lee JH, Lee HS, Song S, Chun KM (2007) Experimental investigation of soot oxidation characteristic with NO2 and O2 using a flow reactor simulating DPF, SAE technical paper, 2007-01-1270, pp 1–7 Lee JH, Lee HS, Song S, Chun KM (2007) Experimental investigation of soot oxidation characteristic with NO2 and O2 using a flow reactor simulating DPF, SAE technical paper, 2007-01-1270, pp 1–7
42.
go back to reference Setiabudi A, Makkee M, Moulijn JA (2004) The role of NO2 and O2 in the accelerated combustion of soot in diesel exhaust gases. Appl Catal B 50:185–194CrossRef Setiabudi A, Makkee M, Moulijn JA (2004) The role of NO2 and O2 in the accelerated combustion of soot in diesel exhaust gases. Appl Catal B 50:185–194CrossRef
43.
go back to reference Shrivastava M, Nguyen A, Zheng Z, Wu HW, Jung HS (2010) Kinetics of soot oxidation by NO2. Environ Sci Technol 44:4796–4801CrossRef Shrivastava M, Nguyen A, Zheng Z, Wu HW, Jung HS (2010) Kinetics of soot oxidation by NO2. Environ Sci Technol 44:4796–4801CrossRef
44.
go back to reference Stanmore BR, Tschamber V, Brilhac JF (2008) Oxidation of carbon by NOx, with particular reference to NO2 and N2O. Fuel 87:131–146CrossRef Stanmore BR, Tschamber V, Brilhac JF (2008) Oxidation of carbon by NOx, with particular reference to NO2 and N2O. Fuel 87:131–146CrossRef
45.
go back to reference Tighe CJ, Twigg MV, Hayhurst AN, Dennis JS (2012) The kinetics of oxidation of diesel soots by NO2. Combust Flame 159:77–90CrossRef Tighe CJ, Twigg MV, Hayhurst AN, Dennis JS (2012) The kinetics of oxidation of diesel soots by NO2. Combust Flame 159:77–90CrossRef
46.
go back to reference Seong H, Choi S (2015) Oxidation-derived maturing process of soot, dependent on O2–NO2 mixtures and temperatures. Carbon 93:1068–1076CrossRef Seong H, Choi S (2015) Oxidation-derived maturing process of soot, dependent on O2–NO2 mixtures and temperatures. Carbon 93:1068–1076CrossRef
47.
go back to reference Strzelec A (2009) Kinetic model development for the combustion of particulate matter from conventional and soy methyl ester diesel fuels. Combustion Engineering, University of Wisconsin-Madison, MadisonCrossRef Strzelec A (2009) Kinetic model development for the combustion of particulate matter from conventional and soy methyl ester diesel fuels. Combustion Engineering, University of Wisconsin-Madison, MadisonCrossRef
48.
go back to reference Shiel KL (2012) Study of the effect of biodiesel fuel on passive oxidation in a catalyzed particulate filter. Department of Mechanical Engineering-Engineering Mechanics, Michigan Technological University, Houghton Shiel KL (2012) Study of the effect of biodiesel fuel on passive oxidation in a catalyzed particulate filter. Department of Mechanical Engineering-Engineering Mechanics, Michigan Technological University, Houghton
49.
go back to reference Brunauer S, Emmett P, Teller E, Theory BET (1938) Adsorption of gases in multimolecular layers. J Am Chem Soc 60:309–319CrossRef Brunauer S, Emmett P, Teller E, Theory BET (1938) Adsorption of gases in multimolecular layers. J Am Chem Soc 60:309–319CrossRef
Metadata
Title
NO2 Oxidation Reactivity and Burning Mode of Diesel Particulates
Authors
Andrea Strzelec
Randy L. Vander Wal
Thomas N. Thompson
Todd J. Toops
C. Stuart Daw
Publication date
24-03-2016
Publisher
Springer US
Published in
Topics in Catalysis / Issue 8-9/2016
Print ISSN: 1022-5528
Electronic ISSN: 1572-9028
DOI
https://doi.org/10.1007/s11244-016-0544-8

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