Structure of premixed flat burner-stabilized H 2 /O 2 /Ar flame doped with Ti(OC 3 H 7 ) 4 at 1 atm. A. G. Shmakov 1, O. P. Korobeinichev 1, D. A. Knyazkov.

Slides:



Advertisements
Similar presentations
School of Chemistry University of Nottingham Probing the Morphology of Interstellar Ice Analogues In Memory of Rui Chen. Mark Collings School of Chemistry,
Advertisements

Indian Institute of Technology Bombay Why you should study a course on “Combustion” Introduction of the Combustion.
Mid Term Meeting, Sept. 21st-22nd, 2004, Karlsruhe Presentation by: F.Pittaluga - UNIGE-DIMSET Dept. of Fluid Machinery, Energy Systems and Transportation.
MAE 5310: COMBUSTION FUNDAMENTALS
Investigation of primary and secondary aerosols from wood combustion with a high resolution time of flight aerosol mass spectrometer Maarten Heringa Laboratory.
Motivation  The oxidation chemistry of JP-8, the fuel used to power the US Air Force fleet, is unknown  JP-8 contains components that emit large amounts.
Nonequilibrium Thermodynamics Laboratories The Ohio State University OH Laser-Induced Fluorescence Measurements in Nanosecond Pulse Discharge Plasmas Inchul.
Laminar Premixed Flames and Diffusion Flames
Fabrication of Porous Copper with Directional Pores through Thermal Decomposition of Compounds HIDEO NAKAJIMA and TAKUYA IDE Metallurgical and Materials.
SM(1) Sep nd International Conference on Hydrogen Safety, San Sebastian, Spain Molecular Transport Effects of Hydrocarbon Addition on Turbulent.
Toshio Mogi, Woo-Kyung Kim, Ritsu Dobashi The University of Tokyo
Thermodynamik, IVG, Universität Duisburg-Essen B. Atakan ,1 Fuel rich flame chemistry Experimental studies applying mass spectrometry and laser.
: Engineering DepartmentUniversity of Cambridge 1 Measurements and simulations of mixing and autoignition on an n-heptane plume in a.
1 Dfdfdsa The Influence of Chemical Mechanisms on PDF Calculations of Nonpremixed Piloted Jet Flames Renfeng Richard Cao and Stephen B. Pope Sibley School.
Thermocouple-Induced Perturbations of the Flame Structure P.A. Skovorodko*, A.G. Tereshchenko, D.A. Knyazkov, A.A. Paletsky, O.P. Korobeinichev * Institute.
Ghent University - UGent Department of Flow, Heat and Combustion Mechanics Simulations of hydrogen auto-ignition Ivana Stanković.
The Framework of Modeling SOA Formation from Toluene Oxidation Di Hu and Richard Kamens Department of Environmental Sciences and Engineering, University.
ICHS, International Conference on Hydrogen Safety, September 8-10, 2005, Pisa (Italy) 1 Role of Chemical Kinetics on the Detonation Properties of Hydrogen.
Scalar Dissipation Measurements in Turbulent Jet Flames
Photochemical and aerosol pollution of the environment in the regional and global scales accounting for kinetic processes of transformation A.E.Aloyan.
Combustion and beyond: Alternate reactive/energy systems Hai Wang University of Southern California 7ISFS, July 11-15, 2011.
Winter Jordanian German Academy Feb Governing Equations for Combustion Processes Prepared By: Rasha Odetallah & Fatima Abbadi.
Synthesis of nano-phase TiO 2 crystalline films over premixed stagnation flames and the study of the structure of these flames O.P. Korobeinichev 1, A.G.
Figure 7. Extinction strain rate measurements of t-butanol, iso-butene, acetone, and methane compared with the Grana et al. model [3]. A Chemical Kinetic.
MAE 5310: COMBUSTION FUNDAMENTALS
Michael A. Chaszeyka Non-Equilibrium Thermodynamics Laboratory Absolute OH Number Density Measurements in Lean Fuel-Air Mixtures Excited by a Repetitively.
1 MAE 5310: COMBUSTION FUNDAMENTALS Introduction to Chemical Kinetics September 24, 2012 Mechanical and Aerospace Engineering Department Florida Institute.
E. Buitrago Advisors: Dr. A. Teleki and A. Tricoli
Division of Combustion Physics, Lund University P. O. Box 118, S Lund, Sweden Tolvan Tolvansson, 2007 Presentation at CAST meetingFebruary 7, 2008.
Faculty of Engineering, Kingston University London
Reducing of kinetic scheme for syngas oxidation at high pressure and elevated temperature Bolshova T.A., Shmakov A.G., Yakimov S.A., Knyazkov D.A., Korobeinichev.
Page 1 SIMULATIONS OF HYDROGEN RELEASES FROM STORAGE TANKS: DISPERSION AND CONSEQUENCES OF IGNITION By Benjamin Angers 1, Ahmed Hourri 1 and Pierre Bénard.
Application of Asphaltene Deposition Tool (ADEPT) Simulator to Field Cases Yi Chen, Anju Kurup, Walter Chapman Houston, April Department of Chemical.
The Mathematics of Chemistry Stoichiometry. The Mole 1 mole of an element or compound is equal to its atomic mass in grams.
Theoretical Study of the Flame Synthesis of Titanium Dioxide Nanoparticles Kui Ting Lam, Doug DePrekel, Kevin Ngo, Phu Vo, and Yingbin Ge Department of.
The Ohio State University Nonequilibrium Thermodynamics Laboratory Pure Rotational CARS Thermometry in Nanosecond Pulse Burst Air and Hydrogen-Air Plasmas.
TURBULENT PREMIXED FLAMES AT HIGH KARLOVITZ NUMBERS UNDER OXY-FUEL CONDITIONS Yang Chen 1, K.H. Luo 1,2 1 Center for Combustion Energy, Tsinghua University,
Surface Ageing of Soot Particles Reactions on the surface of soot are the principal route by which mass is transformed from the gas to solid phase in laminar.
Synthesis of diamond-like carbon films with super-low friction and wear properties A. Erdemir, O.L. Eryilmaz, and G. Fenske J. Vac. Sci. Technol. A 18(4),
Experimental study of gas-liquid mass transfer coupled with chemical reactions by digital holographic interferometry C. Wylock, S. Dehaeck, T. Cartage,
Kakutkina N.A., Korzhavin A.A., Rychkov A.D. Ignition of the waves of filtration gas combustion with open flame Institute of chemical kinetics and combustion.
Shaping the Future Emissions Formation and Control.
Liquid-Liquid Phase Separation In Mixed Organic-Inorganic Aerosols Institute For Atmosphere And Climate Science – ETH Zurich Gabriela Ciobanu Göteborg,
Stoichiometry Chapter Stoichiometry Stoichiometry is the study of quantitative relationships between the amounts of reactants used and amounts.
Review -1 School of Aerospace Engineering Copyright © by Jerry M. Seitzman. All rights reserved. AE/ME 6766 Combustion AE/ME 6766 Combustion:
Study of the gas-liquid CO 2 absorption in aqueous monoethanolamine solutions: development of a new experimental tool C. Wylock, S. Dehaeck, E. Boulay,
Development of Combined Dual- Pump Vibrational and Pure- Rotational Coherent anti-Stokes Raman Scattering Technique Aman Satija and Robert P. Lucht.
High Fidelity Numerical Simulations of Turbulent Combustion
Curious stress reduction with W incorporation of WC-C nanocomposite films by hybrid ion beam deposition A. Y. Wang a), H. S. Ahn a), K. R. Lee a), J. P.
Hongna Wang Nov. 20, 2012 Journal Report About Coal and sludge.
Absolute VUV photoionization spectra for HCHO, HO 2, and H 2 O 2 from eV Leah G. Dodson, 1 Linhan Shen, 1 John D. Savee, 2 Nathan C. Eddingsaas,
Many mass spectra are observed in addition to those of nitrogen (28amu) and benzene (78amu) molecules between 1 and 80amu, when the discharge is not generated.
Fast Pyrolysis of Biomass using Concentrated Solar Radiation Emily Beagle Graduate Mentor: Daniel Mosiman Faculty Mentor: Dr. Yuan Zheng University of.
Date of download: 6/1/2016 Copyright © ASME. All rights reserved. From: The Interplay of Heat Transfer and Endothermic Chemistry Within a Ceramic Microchannel.
Date of download: 6/21/2016 Copyright © ASME. All rights reserved. Laser Ignition and Flame Speed Measurements in Oxy-Methane Mixtures Diluted With CO.
University of Wisconsin -- Engine Research Center slide 1 Counter-flow diffusion flame ME Project Chi-wei Tsang Longxiang Liu Krishna P.
Methodology Electrodeposited Pt and Pt/Ni electrodes for dye sensitized solar cells with improved stability G. Syrrokostas, G. Leftheriotis* and P. Yianoulis.
Do Now 1.What is reaction rate? 2.What does the term “equilibrium” signify? Can you describe physical changes in the chemistry lab where equilibrium is.
CFD MODELING OF SYNGAS COMBUSTION IN GAS TURBINE CONDITIONS
Activity and Stability of Ceria Supported Bimetallic Ni-Au in the Reforming of Ethanol By Sakun Duwal.
Date of download: 9/18/2016 Copyright © ASME. All rights reserved. From: Detailed Kinetic Modeling of Soot-Particle and Key-Precursor Formation in Laminar.
Combustion of Energetic Materials
Date of download: 10/18/2017 Copyright © ASME. All rights reserved.
Date of download: 10/27/2017 Copyright © ASME. All rights reserved.
Prediction of the Lift-off, Blow-out and Blow-off Stability Limits of Pure Hydrogen and Hydrogen/Hydrocarbon Mixture Jet Flames Wu, Y., Al-Rahbi, I. S.,
Date of download: 11/11/2017 Copyright © ASME. All rights reserved.
Some Aspects of the Combustion of Heavy Fuel Oil Containing High Asphaltene Levels F.A. Atiku A.R. Lea-Langton, K.D Bartle, P.Biller, J.M. Jones, A.B Ross.
Numerical Simulation of Premix Combustion with Recirculation
Combustor Model Simulation
ASME Turbo Expo Montreal May 14-17, 2007
Presentation transcript:

Structure of premixed flat burner-stabilized H 2 /O 2 /Ar flame doped with Ti(OC 3 H 7 ) 4 at 1 atm. A. G. Shmakov 1, O. P. Korobeinichev 1, D. A. Knyazkov 1, A. A. Paletsky 1, R. A. Maksutov 2, I. E. Gerasimov 2, S. A. Yakimov 1, T. A. Bolshova 1 1 Institute of chemical kinetics and combustion, Novosibirsk, Russia 2 Novosibirsk state university, Novosibirsk, Russia 7th INTERNATIONAL SEMINAR ON FLAME STRUCTURE and FIRST YOUNG RESEARCHERS’ SCHOOL ON FLAME STUDY Novosibirsk, Russia, July 11-19, 2011

Introduction Application of nanocrystaline mesoporous TiO 2 films : Dye sensitized solar cells, DSSC Sensors for gas analyzers

Traditional approaches for TiO 2 films fabrication: sol-gel method screen printing spray deposition doctor blading New approach for TiO 2 films fabrication by one step in premixed lean flame C 2 H 4 /O 2 /Ar  0.10% Ti(OC 3 H 7 ) 4 E.D. Tolmachoff, A.D. Abid, D.J. Phares, C.S. Campbell, H. Wang, Proceedings of the Combustion Institute 32 (2009) 1839–1845 S. Memarzadeh, E.D. Tolmachoff, D.J. Phares and H. Wang, Proc. Combust. Inst. 33 (2011) !

Chemistry and kinetics of reactions of Ti-containing compounds in flames: TiCl 4 – Pratsinis S.E. et al, Aerosol Sci. 2002, 33, 17. – Kraft M. et al, Combust. Flame 2009,156, Ti(OC 3 H 7 ) 4 – Okuyama K. et al, A.I.Ch.E Journal 36, 409. Ti(OC 3 H 7 ) 4(gas)  TiO 2 +4C 3 H 6 +2H 2 O k=3.96  10 5 exp( /T) the detailed mechanism and kinetics of TTIP thermal decomposition are practically unknown.

Research Objectives to study of the structure of premixed flame stabilized on a flat burner H 2 /O 2 /Ar (12.9%/14.4%/72.7%) + 0.1% Ti(OC 3 H 7 ) 4,  = 0.45 Numerical modeling of flame structure using one-step reaction for Ti(OC 3 H 7 ) 4 thermal decomposition.

Flame Burner with burner positioning mechanism EXPERIMENTAL APPROACH Measurement of Flame Structure Premixed laminar flame was stabilized on the flat burner. The profiles of concentration of flame species were measured using MBMS setup :

EXPERIMENTAL APPROACH Alumina ceramic probe (sonic probe) on an enlarged scale The probe was clogged by TiO 2 particles for s of experiment and demanded cleaning.

Perforated disk Ar Ti(OC 3 H 7 ) 4 Thermostat 90 0 С Thermostat 90 0 С Steel balls Combustible mixture Flame EXPERIMENTAL APPROACH Probe Combustible mixture (  = 0,45 ) H 2 /O 2 /Ar (13/14.5/72.5 %)+ 0,12% Ti(OC 3 H 7 ) 4

Speciesm/z H2H2 2 O2O2 32 H2OH2O 18 Ti(OC 3 H 7 ) TiO 2 80 TiO 64 HTiO 65 HTiO 2 81 Ti 2 O Ti 48 TiH 49 Identified flame species

Hydrogen combustion mechanism Konnov A.A. Combustion and Flame, V. 152, pp. 507–528, (2008) Gas-phase reaction for thermal decomposition of Ti(OC 3 H 7 ) 4 : Ti(OC 3 H 7 ) 4(gas)  TiO 2 +4C 3 H 6 +2H 2 O k=3.96  10 5 exp( /T) Okuyama K. et al, A.I.Ch.E. Journal, 36, 409–419 (1990) Thermochemistry for Ti(OC 3 H 7 ) 4 и TiO 2 PREMIX and CHEMKIN codes (Sandia National Laboratory, USA) MODELING

Spatial variations of H 2 O, O 2, H 2 mole fraction in H 2 /O 2 /N 2 flame doped with 0.1% Ti(OC 3 H 7 ) 4 stabilized on a flat burner. O2O2 H2OH2O Ar H2H2 Results and Discussion

Spatial variations of mass peak intensity m/z 269 and Ti(OC 3 H 7 ) 4 mole fraction in H 2 /O 2 /N 2 flame. Symbols – experiment, line - modeling

Spatial variations of mass peak intensity m/z=80 (TiO 2 ) and TiO 2 mole fraction in H 2 /O 2 /N 2 flame. Results and Discussion Symbols – experiment, line - modeling

Spatial variations of mass peak intensity m/z=48 (Ti) in H 2 /O 2 /N 2 flame. Results and Discussion Symbols – experiment, line - spline

Spatial variations of mass peak intensity m/z=49 (TiH) in H 2 /O 2 /N 2 flame. Results and Discussion Symbols – experiment, line - spline

Spatial variations of mass peak intensity m/z=64 (TiO) in H 2 /O 2 /N 2 flame. Results and Discussion Symbols – experiment, line - spline

Spatial variations of mass peak intensity m/z=65 (HTiO) in H 2 /O 2 /N 2 flame. Results and Discussion Symbols – experiment, line - spline

Spatial variations of mass peak intensity m/z=81 (HTiO 2 ) in H 2 /O 2 /N 2 flame. Results and Discussion Symbols – experiment, line - spline

Spatial variations of mass peak intensity m/z=96 (TiO 3 ) in H 2 /O 2 /N 2 flame. Results and Discussion Symbols – experiment, line - spline

Spatial variations of mass peak intensity m/z=144 (Ti 2 O 3 ) in H 2 /O 2 /N 2 flame. Results and Discussion Symbols – experiment, line - spline

Conclusion 1. We were the first to measure mass-peak intensity profiles of Ti(OC 3 H 7 ) 4 and products of its combustion: Ti, TiH, TiO, TiO 2, HTiO, HTiO 2, TiO 3, Ti 2 O 3 in premixed H 2 /O 2 /N 2 flame using the MBMS method. 2. A one-step reaction kinetic model for Ti(OC 3 H 7 ) 4 destruction used in the study, satisfactorily predicts the mass-peak intensity profile of TiO 2 which is the main combustion product of Ti(OC 3 H 7 ) 4 in the studied flame, but poorly predicts the concentration profile of Ti(OC 3 H 7 ) 4.

This research was supported by Russian Foundation for Basic Research under project # Thank you!

TiO 2 Ti(OC 3 H 7 ) 4 TiH Ti HTiO 2 HTiO TiO TiO 3 Ti 2 O 3 Spatial variations of mass peak intensity of Ti-containing species in H 2 /O 2 /N 2 flame. Results and Discussion lines – spline for experiment