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\n \n \n Fix it now\n

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\n  \n 2023\n \n \n (2)\n \n \n
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\n \n\n \n \n \n \n \n Impact of traffic on air pollution in a mid-sized urban city during COVID-19 lockdowns.\n \n \n \n\n\n \n Hay, N.; Onwuzurike, O.; Roy, S. P.; McNamara, P.; McNamara, M. L.; and McDonald, W.\n\n\n \n\n\n\n Air Quality, Atmosphere & Health,1141–1152. 2023.\n \n\n\n\n
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@article{Hay2023,\n   author = {Nathan Hay and Otito Onwuzurike and Somesh P. Roy and Patrick McNamara and Margaret L. McNamara and Walter McDonald},\n   doi = {10.1007/s11869-023-01330-3},\n   journal = {Air Quality, Atmosphere & Health},\n   title = {Impact of traffic on air pollution in a mid-sized urban city during COVID-19 lockdowns},\n   year = {2023},\n   pages = {1141–1152}\n}\n\n
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\n \n\n \n \n \n \n \n Modeling Thermal Radiation in Combustion Environments: Progress and Challenges.\n \n \n \n\n\n \n Mazumder, S.; and Roy, S. P.\n\n\n \n\n\n\n Energies, 16: 4250. 2023.\n \n\n\n\n
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@article{Mazumder2023,\n   author = {Sandip Mazumder and Somesh P. Roy},\n   doi = {10.3390/en16104250},\n   issue = {10},\n   journal = {Energies},\n   publisher = {MDPI},\n   title = {Modeling Thermal Radiation in Combustion Environments: Progress and Challenges},\n   volume = {16},\n   year = {2023},\n   pages = {4250}\n}\n\n
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\n  \n 2022\n \n \n (4)\n \n \n
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\n \n\n \n \n \n \n \n Emphasizing Self-Regulation in Teaching : Reducing Disruption to Students' Learning During Unplanned Instructional Mode Transition.\n \n \n \n\n\n \n Roy, S. P; Young-brice, A.; Lassila, J.; and Johnson, K.\n\n\n \n\n\n\n College Teaching, Accepted. 2022.\n \n\n\n\n
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@article{Roy2022,\nauthor = {Roy, Somesh P and Young-brice, Amber and Lassila, Jenna and Johnson, Kyle},\njournal = {College Teaching},\nkeywords = {covid-19,learning modalities,pedagogy,remote learning,self-regulated learning},\ntitle = {Emphasizing Self-Regulation in Teaching : Reducing Disruption to Students' Learning During Unplanned Instructional Mode Transition},\nvolume = {Accepted},\ndoi= {10.1080/87567555.2023.2183376},\nyear = {2022}\n}\n\n
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\n \n\n \n \n \n \n \n \n Comparison of Spherical Harmonics Method and Discrete Ordinates Method for Radiative Transfer in a Turbulent Jet Flame.\n \n \n \n \n\n\n \n Ge, W.; David, C.; Modest, M. F.; Sankaran, R.; and Roy, S.\n\n\n \n\n\n\n Journal of Quantitative Spectroscopy and Radiative Transfer,108459. 2022.\n \n\n\n\n
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@article{Ge2022,\nauthor = {Ge, Wenjun and David, Chloe and Modest, Michael F. and Sankaran, Ramanan and Roy, Somesh},\ndoi = {10.1016/j.jqsrt.2022.108459},\njournal = {Journal of Quantitative Spectroscopy and Radiative Transfer},\nkeywords = {"Discrete ordinates method","Radiative transfer","Spherical harmonics method","Turbulent jet flame"},\npages = {108459},\npublisher = {Elsevier Ltd},\ntitle = {Comparison of Spherical Harmonics Method and Discrete Ordinates Method for Radiative Transfer in a Turbulent Jet Flame},\nurl = {https://doi.org/10.1016/j.jqsrt.2022.108459 https://linkinghub.elsevier.com/retrieve/pii/S0022407322003946},\nyear = {2022}\n}\n\n\n\n
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\n \n\n \n \n \n \n \n \n Assessment of narrow-band and full spectrum gas radiation methods in a real industrial glass furnace configuration.\n \n \n \n \n\n\n \n Galtier, M; Woelffel, W; Andre, F; Solovjov, V.; Webb, B.; and Roy, S\n\n\n \n\n\n\n Applied Thermal Engineering,119020. 2022.\n \n\n\n\n
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@article{Galtier2022,\nauthor = {Galtier, M and Woelffel, W and Andre, F and Solovjov, VP and Webb, BW and Roy, S},\ndoi = {10.1016/j.applthermaleng.2022.119020},\nissn = {13594311},\njournal = {Applied Thermal Engineering},\npages = {119020},\ntitle = {Assessment of narrow-band and full spectrum gas radiation methods in a real industrial glass furnace configuration},\nurl = {https://linkinghub.elsevier.com/retrieve/pii/S1359431122009541},\nyear = {2022}\n}\n\n\n
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\n \n\n \n \n \n \n \n Molecular arrangement and fringe identification and analysis from molecular dynamics (MAFIA-MD): A tool for analyzing the molecular structures formed during reactive molecular dynamics simulation of hydrocarbons.\n \n \n \n\n\n \n Mukut, K. M.; Roy, S.; and Goudeli, E.\n\n\n \n\n\n\n Comput. Phys. Commun., 276: 108325. 2022.\n \n\n\n\n
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@article{Mukut_COMPHY_2022,\n\tauthor = {Mukut, Khaled Mosharraf and Roy, Somesh and Goudeli, Eirini},\n\ttitle = {Molecular arrangement and fringe identification and analysis from molecular dynamics ({MAFIA-MD}): A tool for analyzing the molecular structures formed during reactive molecular dynamics simulation of hydrocarbons},\n\tjournal = {Comput. Phys. Commun.},\n\tvolume = {276},\n\tpages = {108325},\n\tyear = {2022},\n\tdoi = {10.1016/j.cpc.2022.108325}\n}\n\n
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\n  \n 2021\n \n \n (5)\n \n \n
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\n \n\n \n \n \n \n \n Assessment of engineering gas radiation methods in an industrial glass furnace configuration.\n \n \n \n\n\n \n Galtier, M.; Woelffel, W.; Andre, F.; Solovjov, V. P.; Webb, B. W.; and Roy, S.\n\n\n \n\n\n\n J. Phys. Conf. Ser., 2116(8th European Thermal Sciences Conference (EUROTHERM 2021)): 012067. 2021.\n \n\n\n\n
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@article{Galtier2021Nov,\n\tauthor = {Galtier, M. and Woelffel, W. and Andre, F. and Solovjov, V. P. and Webb, B. W. and Roy, S.},\n\ttitle = {Assessment of engineering gas radiation methods in an industrial glass furnace configuration},\n\tjournal = {J. Phys. Conf. Ser.},\n\tvolume = {2116},\n\tnumber = {8th European Thermal Sciences Conference (EUROTHERM 2021)},\n\tpages = {012067},\n\tyear = {2021},\n\tpublisher = {IOP Publishing},\n\tdoi = {10.1088/1742-6596/2116/1/012067}\n}\n\n
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\n \n\n \n \n \n \n \n Did the Student-Instructor and Peer-to-Peer Divide Widen with Instructional Changes during COVID-19?.\n \n \n \n\n\n \n Murray, A.; Roy, S.; Hahn, M.; and Voglewede, P\n\n\n \n\n\n\n EdArXiv. 2021.\n \n\n\n\n
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@article{COVID-distance_2021,\nauthor = {Murray, A. and Roy, S. and Hahn, M. and Voglewede, P},\ntitle = {Did the Student-Instructor and Peer-to-Peer Divide Widen with Instructional Changes during {COVID-19?}},\njournal = {EdArXiv},\nvolume = {},\npages = {},\nyear = {2021},\ndoi = {10.35542/osf.io/fkw32}\n}\n\n\n
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\n \n\n \n \n \n \n \n The coalescence of incipient soot clusters.\n \n \n \n\n\n \n Sharma, A; Mukut, K. M.; Roy, S. P.; and Goudeli, E.\n\n\n \n\n\n\n Carbon, 180: 215-225. 2021.\n \n\n\n\n
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@article{Sharma_Carbon_2021,\nauthor = {Sharma, A and Mukut, K. M. and Roy, S. P. and Goudeli, E.},\ntitle = {The coalescence of incipient soot clusters},\njournal = {Carbon},\nvolume = {180},\npages = {215-225},\nyear = {2021},\ndoi = {10.1016/j.carbon.2021.04.065}\n}\n\n
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\n \n\n \n \n \n \n \n Comparison of Radiation Models for a Turbulent Piloted Methane/Air Jet Flame: A Frozen-Field Study.\n \n \n \n\n\n \n \n\n\n \n\n\n\n In Proceedings of the ASME 2021 Summer Heat Transfer Conferences SHTC2021, Virtual, 2021. \n \n\n\n\n
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\n \n\n \n \n \n \n \n A new line-by-line methodology based on the spectral contributions of the bands.\n \n \n \n\n\n \n Coelho, F. R.; Ziemniczak, A.; Roy, S. P.; and Franca, F. H. R.\n\n\n \n\n\n\n Int. J. Heat Mass Transfer, 164: 120423. 2021.\n \n\n\n\n
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@article{Coelho2020,\nauthor = {Coelho, Felipe R. and Ziemniczak, Aline and Roy, Somesh P. and Franca, Francis H. R.},\ntitle = {A new line-by-line methodology based on the spectral contributions of the bands},\njournal = {Int. J. Heat Mass Transfer},\nvolume = {164},\npages = {120423},\nyear = {2021},\ndoi = {10.1016/j.ijheatmasstransfer.2020.120423}\n}\n\n\n
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\n \n\n \n \n \n \n \n Comparing CFD and Regulatory Modeling of Pollutant Dispersion Under Different Thermal Stabilities.\n \n \n \n\n\n \n Tauer, A.; Onwuzurike, T.; and Roy, S.\n\n\n \n\n\n\n In APS Division of Fluid Dynamics Meeting Abstracts, pages F15–005, 2020. \n \n\n\n\n
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@inproceedings{tauer2020comparing,\n  title={Comparing CFD and Regulatory Modeling of Pollutant Dispersion Under Different Thermal Stabilities},\n  author={Tauer, Alec and Onwuzurike, Tito and Roy, Somesh},\n  booktitle={APS Division of Fluid Dynamics Meeting Abstracts},\n  pages={F15--005},\n  year={2020}\n}\n\n\n
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\n \n\n \n \n \n \n \n Using Online Discussions to Connect Theory and Practice in Core Engineering Undergraduate Courses.\n \n \n \n\n\n \n Bosman, L.; Roy, S.; McDonald, W.; and Ababei, C.\n\n\n \n\n\n\n Computer Applications in Engineering Education, 28: 675-691. 2020.\n \n\n\n\n
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@article{Bosman2020,\nauthor = {Bosman, Lisa and Roy, Somesh and McDonald, Walter and Ababei, Cristinel},\ndoi = {10.1002/cae.22238},\njournal = {Computer Applications in Engineering Education},\ntitle = {Using Online Discussions to Connect Theory and Practice in Core Engineering Undergraduate Courses},\nvolume = {28},\npages = {675-691},\nyear = {2020}\n}\n\n
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\n \n\n \n \n \n \n \n \n Detailed modeling of a small-scale turbulent pool fire.\n \n \n \n \n\n\n \n Wu, B.; Roy, S. P.; and Zhao, X.\n\n\n \n\n\n\n Combustion and Flame, 214: 224-237. 2020.\n \n\n\n\n
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@article{Wu2020,\nauthor = {Wu, Bifen and Roy, Somesh P. and Zhao, Xinyu},\ndoi = {10.1016/j.combustflame.2019.12.034},\nissn = {00102180},\njournal = {Combustion and Flame},\nkeywords = {monte carlo,pool fire,two-step soot modeling},\npages = {224-237},\npublisher = {Elsevier Inc.},\ntitle = {Detailed modeling of a small-scale turbulent pool fire},\nurl = {https://linkinghub.elsevier.com/retrieve/pii/S0010218019305929},\nvolume = {214},\nyear = {2020}\n}\n
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\n \n\n \n \n \n \n \n \n A quasi-Monte Carlo solver for thermal radiation in participating media.\n \n \n \n \n\n\n \n Farmer, J.; and Roy, S.\n\n\n \n\n\n\n Journal of Quantitative Spectroscopy and Radiative Transfer, 242: 106753. 2020.\n \n\n\n\n
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@article{Farmer2020,\nauthor = {Farmer, Joseph and Roy, Somesh},\ndoi = {10.1016/j.jqsrt.2019.106753},\njournal = {Journal of Quantitative Spectroscopy and Radiative Transfer},\npages = {106753},\npublisher = {Elsevier Ltd},\ntitle = {A quasi-{M}onte {C}arlo solver for thermal radiation in participating media},\nurl = {https://linkinghub.elsevier.com/retrieve/pii/S002240731930411X},\nvolume = {242},\nyear = {2020}\n}\n
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\n \n\n \n \n \n \n \n A numerical study of radiation in a small-scale pool fire.\n \n \n \n\n\n \n Wu, B.; Zhao, X.; and Roy, S.\n\n\n \n\n\n\n In Proceedings of the 9th International Symposium on Radiative Transfer, RAD-19, Athens, Greece, 2019. \n \n\n\n\n
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@inproceedings{WuRAD2019,\naddress = {Athens, Greece},\nauthor = {Wu, Bifen and Zhao, Xinyu and Roy, Somesh},\nbooktitle = {Proceedings of the 9th International Symposium on Radiative Transfer, RAD-19},\ntitle = {A numerical study of radiation in a small-scale pool fire},\nyear = {2019}\n}\n
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\n \n\n \n \n \n \n \n An Efficient Monte Carlo-based Solver for Thermal Radiation in Participating Media.\n \n \n \n\n\n \n Farmer, J. A; and Roy, S. P\n\n\n \n\n\n\n In 4th Thermal and Fluids Engineering Conference (TFEC), Las Vegas, NV, 2019. ASTFE\n \n\n\n\n
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@inproceedings{FarmerTFEC2019,\naddress = {Las Vegas, NV},\nauthor = {Farmer, Joseph A and Roy, Somesh P},\nbooktitle = {4th Thermal and Fluids Engineering Conference (TFEC)},\nkeywords = {combustion,low discrepancy sequence,monte carlo,quasi monte carlo,radiation},\npublisher = {ASTFE},\ntitle = {An Efficient {M}onte {C}arlo-based Solver for Thermal Radiation in Participating Media},\nyear = {2019}\n}\n
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\n \n\n \n \n \n \n \n Detailed modeling of a small-scale turbulent pool fire.\n \n \n \n\n\n \n Wu, B.; Zhao, X.; and Roy, S.\n\n\n \n\n\n\n In 11th US National Combustion Meeting, pages 1-10, Pasadena, CA, 2019. \n \n\n\n\n
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@inproceedings{WuNCM2019,\naddress = {Pasadena, CA},\nauthor = {Wu, Bifen and Zhao, Xinyu and Roy, Somesh},\nbooktitle = {11th US National Combustion Meeting},\nkeywords = {monte carlo,pool fire,two-step soot modeling},\npages = {1-10},\ntitle = {Detailed modeling of a small-scale turbulent pool fire},\nyear = {2019}\n}\n
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\n \n\n \n \n \n \n \n An Investigation of Soot Evolution in High-pressure Spray Combustion.\n \n \n \n\n\n \n Mukut, K. M.; and Roy, S.\n\n\n \n\n\n\n In 11th US National Combustion Meeting, pages 1-9, Pasadena, CA, 2019. \n \n\n\n\n
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@inproceedings{MukutNCM2019,\naddress = {Pasadena, CA},\nauthor = {Mukut, Khaled Mosharraf and Roy, Somesh},\nbooktitle = {11th US National Combustion Meeting},\nkeywords = {ecn,soot,soot diameter,spray combustion},\npages = {1-9},\ntitle = {An Investigation of Soot Evolution in High-pressure Spray Combustion},\nyear = {2019}\n}\n
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\n \n\n \n \n \n \n \n \n A detailed modeling study of radiative heat transfer in a heavy-duty diesel engine.\n \n \n \n \n\n\n \n Paul, C.; Ferreyro Fernandez, S.; Haworth, D. C.; Roy, S.; and Modest, M. F.\n\n\n \n\n\n\n Combustion and Flame, 200: 325-341. 2019.\n \n\n\n\n
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@article{PaulCF2019,\nauthor = {Paul, Chandan and {Ferreyro Fernandez}, Sebastian and Haworth, Daniel C. and Roy, Somesh and Modest, Michael F.},\ndoi = {10.1016/j.combustflame.2018.11.032},\nfile = {:home/somesh/Documents/Mendely/Paul et al. - 2019 - A detailed modeling study of radiative heat transfer in a heavy-duty diesel engine.pdf:pdf;:home/somesh/Documents/Mendely/Paul et al. - 2019 - A detailed modeling study of radiative heat transfer in a heavy-duty diesel engine(2).pdf:pdf},\nissn = {00102180},\njournal = {Combustion and Flame},\nkeywords = {Compression-ignition engin,Radiative heat transfer,compression-ignition engine,radiative heat transfer,spectral radiation modeling},\npages = {325-341},\npublisher = {Elsevier Inc.},\ntitle = {A detailed modeling study of radiative heat transfer in a heavy-duty diesel engine},\nurl = {https://linkinghub.elsevier.com/retrieve/pii/S0010218018305169},\nvolume = {200},\nyear = {2019}\n}\n
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\n \n\n \n \n \n \n \n A Photon Monte Carlo Solver Utilizing a Low Discrepancy Sequence for Thermal Radiation in Combustion Systems.\n \n \n \n\n\n \n Farmer, J. A; and Roy, S.\n\n\n \n\n\n\n In Proceedings of the 9th International Symposium on Radiative Transfer, RAD-19, Athens, Greece, 2019. \n \n\n\n\n
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@inproceedings{FarmerRAD2019,\naddress = {Athens, Greece},\nauthor = {Farmer, Joseph A and Roy, Somesh},\nbooktitle = {Proceedings of the 9th International Symposium on Radiative Transfer, RAD-19},\nfile = {:home/somesh/Documents/Mendely/Farmer, Roy - 2019 - A Photon Monte Carlo Solver Utilizing a Low Discrepancy Sequence for Thermal Radiation in Combustion Systems.pdf:pdf},\ntitle = {A Photon Monte Carlo Solver Utilizing a Low Discrepancy Sequence for Thermal Radiation in Combustion Systems},\nyear = {2019}\n}\n
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\n  \n 2018\n \n \n (2)\n \n \n
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\n \n\n \n \n \n \n \n A Sensitivity Study on Soot and NOx Formation in High Pressure Combustion System.\n \n \n \n\n\n \n Mukut, K. M.; and Roy, S. P\n\n\n \n\n\n\n In 2018 Spring Technical Meeting of Central States Section of the Combustion Institute, Minneapolis, MN, USA, 2018. \n \n\n\n\n
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@inproceedings{MukutCSCM2018,\naddress = {Minneapolis, MN, USA},\nauthor = {Mukut, Khaled Mosharraf and Roy, Somesh P},\nbooktitle = {2018 Spring Technical Meeting of Central States Section of the Combustion Institute},\nfile = {:home/somesh/Documents/Mendely/Mukut, Roy - 2018 - A Sensitivity Study on Soot and NOx Formation in High Pressure Combustion System.pdf:pdf},\ntitle = {A Sensitivity Study on Soot and NOx Formation in High Pressure Combustion System},\nyear = {2018}\n}\n
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\n \n\n \n \n \n \n \n \n Soot and spectral radiation modeling for high-pressure turbulent spray flames.\n \n \n \n \n\n\n \n Fernandez, S. F.; Paul, C.; Sircar, A.; Imren, A.; Haworth, D.; Roy, S.; and Modest, M.\n\n\n \n\n\n\n Combustion and Flame, 190: 402-415. 2018.\n \n\n\n\n
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@article{FernandezCF2018,\nauthor = {Fernandez, Sebastian Ferreyro and Paul, C. and Sircar, A. and Imren, A. and Haworth, D.C. and Roy, S. and Modest, M.F.},\ndoi = {10.1016/j.combustflame.2017.12.016},\nfile = {:home/somesh/Documents/Mendely/Fernandez et al. - 2018 - Soot and spectral radiation modeling for high-pressure turbulent spray flames.pdf:pdf},\nissn = {00102180},\njournal = {Combustion and Flame},\nkeywords = {Computational fluid dynamics,Soot,Spectral radiati,computational fluid dynamics},\npages = {402-415},\npublisher = {Elsevier Inc.},\ntitle = {Soot and spectral radiation modeling for high-pressure turbulent spray flames},\nurl = {http://linkinghub.elsevier.com/retrieve/pii/S0010218017304832},\nvolume = {190},\nyear = {2018}\n}\n
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\n  \n 2017\n \n \n (11)\n \n \n
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\n \n\n \n \n \n \n \n \n Development of a multiphase photon Monte Carlo method for spray combustion and its application in high-pressure conditions.\n \n \n \n \n\n\n \n Roy, S. P; Cai, J.; and Modest, M. F\n\n\n \n\n\n\n International Journal of Heat and Mass Transfer, 115: 453-466. 2017.\n \n\n\n\n
\n\n\n\n \n \n \"DevelopmentPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n  \n \n 2 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n \n \n \n \n \n \n \n \n \n \n\n\n\n
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@article{RoyIJHMT2017,\nauthor = {Roy, Somesh P and Cai, Jian and Modest, Michael F},\ndoi = {10.1016/j.ijheatmasstransfer.2017.07.046},\nfile = {:home/somesh/Documents/Mendely/Roy, Cai, Modest - 2017 - Development of a multiphase photon Monte Carlo method for spray combustion and its application in high-pressur.pdf:pdf},\nissn = {0017-9310},\njournal = {International Journal of Heat and Mass Transfer},\nkeywords = {diesel spray,high-pressure spray combustion,internal combustion engine,monte carlo radiation solver,multiphase radiation},\npages = {453-466},\npublisher = {Elsevier Ltd},\ntitle = {Development of a multiphase photon Monte Carlo method for spray combustion and its application in high-pressure conditions},\nurl = {http://dx.doi.org/10.1016/j.ijheatmasstransfer.2017.07.046},\nvolume = {115},\nyear = {2017}\n}\n
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\n \n\n \n \n \n \n \n Monte Carlo simulation for radiative transfer in a high-pressure industrial gas turbine combustion chamber.\n \n \n \n\n\n \n Ren, T.; Modest, M. F.; and Roy, S. P.\n\n\n \n\n\n\n In Proceedings of the ASME 2017 Summer Heat Transfer Conferences SHTC2017, 2017. \n \n\n\n\n
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@inproceedings{RenSHTC2017,\nauthor = {Ren, T. and Modest, M. F. and Roy, S. P.},\nbooktitle = {Proceedings of the ASME 2017 Summer Heat Transfer Conferences SHTC2017},\ntitle = {{M}onte {C}arlo simulation for radiative transfer in a high-pressure industrial gas turbine combustion chamber},\nyear = {2017}\n}\n
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\n \n\n \n \n \n \n \n Soot and Spectral Radiation Modeling for a High-Pressure Turbulent Spray Flame.\n \n \n \n\n\n \n Fernandez, S F.; Paul, C; Sircar, A; Imren, A; Haworth, D C; Roy, S; and Modest, M F\n\n\n \n\n\n\n In 10th U. S. National Combustion Meeting, pages 1-6, College Park, MD, 2017. \n \n\n\n\n
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@inproceedings{FernandezNCM2017,\naddress = {College Park, MD},\nauthor = {Fernandez, S Ferreyro and Paul, C and Sircar, A and Imren, A and Haworth, D C and Roy, S and Modest, M F},\nbooktitle = {10th U. S. National Combustion Meeting},\nfile = {:home/somesh/Documents/Mendely/Fernandez et al. - 2017 - Soot and Spectral Radiation Modeling for a High-Pressure Turbulent Spray Flame.pdf:pdf},\nkeywords = {radiation,soot,spray a,transported pdf},\npages = {1-6},\ntitle = {Soot and Spectral Radiation Modeling for a High-Pressure Turbulent Spray Flame},\nyear = {2017}\n}\n
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\n \n\n \n \n \n \n \n Soot and Spectral Radiation Modeling in ECN Spray A and in Engines.\n \n \n \n\n\n \n Haworth, D C; Paul, C; Sircar, A; Imren, A; Roy, S P; Ge, W; and Modest, M F\n\n\n \n\n\n\n In International Multidimensional Engine Modeling User's Group Meeting at the SAE Congress, pages 1-6, Detroit, MI, 2017. \n \n\n\n\n
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@inproceedings{HaworthSAE2017,\naddress = {Detroit, MI},\nauthor = {Haworth, D C and Paul, C and Sircar, A and Imren, A and Roy, S P and Ge, W and Modest, M F},\nbooktitle = {International Multidimensional Engine Modeling User's Group Meeting at the SAE Congress},\nfile = {:home/somesh/Documents/Mendely/Haworth et al. - 2017 - Soot and Spectral Radiation Modeling in ECN Spray A and in Engines.pdf:pdf},\nnumber = {April},\npages = {1-6},\ntitle = {Soot and Spectral Radiation Modeling in ECN Spray A and in Engines},\nyear = {2017}\n}\n
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\n \n\n \n \n \n \n \n Turbulence radiation coupling in boundary layers of heavy-duty diesel engines.\n \n \n \n\n\n \n Sircar, A; Paul, C; Ferreyro-Fernandez, S.; Imren, A.; Haworth, D.; Roy, S; Ge, W; and Modest, M\n\n\n \n\n\n\n In The 16th International Conference on Numerical Combustion, Orlando, FL, USA, 2017. SIAM\n \n\n\n\n
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@inproceedings{SircarNC2017,\naddress = {Orlando, FL, USA},\nauthor = {Sircar, A and Paul, C and Ferreyro-Fernandez, S. and Imren, A. and Haworth, D.C. and Roy, S and Ge, W and Modest, M},\nbooktitle = {The 16th International Conference on Numerical Combustion},\nfile = {:home/somesh/Documents/Mendely/Sircar et al. - 2017 - Turbulence radiation coupling in boundary layers of heavy-duty diesel engines.pdf:pdf},\npublisher = {SIAM},\ntitle = {Turbulence radiation coupling in boundary layers of heavy-duty diesel engines},\nyear = {2017}\n}\n
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\n \n\n \n \n \n \n \n Improvements to photon Monte Carlo radiation solver for combustion simulations.\n \n \n \n\n\n \n Roy, S. P.; Weise, S.; Gupta, A.; Modest, M. F.; Hasse, C.; and Haworth, D.\n\n\n \n\n\n\n In The 16th International Conference on Numerical Combustion, Orlando, FL, USA, 2017. SIAM\n \n\n\n\n
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@inproceedings{RoyNC2017,\naddress = {Orlando, FL, USA},\nauthor = {Roy, S. P. and Weise, S. and Gupta, A. and Modest, M. F. and Hasse, C. and Haworth, D.C.},\nbooktitle = {The 16th International Conference on Numerical Combustion},\nfile = {:home/somesh/Documents/Mendely/Roy et al. - 2017 - Improvements to photon {M}onte {C}arlo radiation solver for combustion simulations.pdf:pdf},\npublisher = {SIAM},\ntitle = {Improvements to photon {M}onte {C}arlo radiation solver for combustion simulations},\nyear = {2017}\n}\n
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\n \n\n \n \n \n \n \n Radiative heat transfer modelling in a heavy-duty Diesel engine.\n \n \n \n\n\n \n Paul, C.; Sircar, A.; Ferreyro-Fernandez, S.; Imren, A.; Haworth, D. C.; Roy, S.; Ge, W.; and Modest, M. F.\n\n\n \n\n\n\n In The 16th International Conference on Numerical Combustion, Orlando, FL, USA, 2017. SIAM\n \n\n\n\n
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@inproceedings{PaulNC2017,\naddress = {Orlando, FL, USA},\nauthor = {Paul, C. and Sircar, A. and Ferreyro-Fernandez, S. and Imren, A. and Haworth, D. C. and Roy, S. and Ge, W. and Modest, M. F.},\nbooktitle = {The 16th International Conference on Numerical Combustion},\nfile = {:home/somesh/Documents/Mendely/Paul et al. - 2017 - Radiative heat transfer modelling in a heavy-duty Diesel engine.pdf:pdf},\npublisher = {SIAM},\ntitle = {Radiative heat transfer modelling in a heavy-duty Diesel engine},\nyear = {2017}\n}\n
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\n \n\n \n \n \n \n \n Modeling Radiative Heat Transfer and Turbulence-Radiation Interactions in Engines.\n \n \n \n\n\n \n Paul, C; Sircar, A; Imren, A; Haworth, D C; and Roy, S\n\n\n \n\n\n\n In 10th U. S. National Combustion Meeting, pages 1-6, College Park, MD, 2017. \n \n\n\n\n
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@inproceedings{PaulNCM2017,\naddress = {College Park, MD},\nauthor = {Paul, C and Sircar, A and Imren, A and Haworth, D C and Roy, S},\nbooktitle = {10th U. S. National Combustion Meeting},\nfile = {:home/somesh/Documents/Mendely/Paul et al. - 2017 - Modeling Radiative Heat Transfer and Turbulence-Radiation Interactions in Engines.pdf:pdf},\nkeywords = {chemistry interactions,compression,function method,ignition engine,radiation modelling,transported probability density,turbulence,turbulence-radiation interactions},\npages = {1-6},\ntitle = {Modeling Radiative Heat Transfer and Turbulence-Radiation Interactions in Engines},\nyear = {2017}\n}\n
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\n \n\n \n \n \n \n \n Application of high-order spherical harmonics methods for radiative transfer in simulation of a turbulent jet flame.\n \n \n \n\n\n \n Ge, W.; Ren, T.; Modest, M. F.; Roy, S; and Haworth, D. C.\n\n\n \n\n\n\n In Proceedings of CHT-17, ICHMT International Symposium on Advances in Computational Heat Transfer, Napoli, Italy, 2017. \n \n\n\n\n
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@inproceedings{GeCHT2017,\naddress = {Napoli, Italy},\nauthor = {Ge, Wenjun and Ren, T. and Modest, Michael F. and Roy, S and Haworth, Daniel C.},\nbooktitle = {Proceedings of CHT-17, ICHMT International Symposium on Advances in Computational Heat Transfer},\nfile = {:home/somesh/Documents/Mendely/Ge et al. - 2017 - Application of high-order spherical harmonics methods for radiative transfer in simulation of a turbulent jet flame.pdf:pdf},\ntitle = {Application of high-order spherical harmonics methods for radiative transfer in simulation of a turbulent jet flame},\nyear = {2017}\n}\n
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\n \n\n \n \n \n \n \n \n Monte Carlo Simulation for Radiative Transfer in a High-Pressure Industrial Gas Turbine Combustion Chamber.\n \n \n \n \n\n\n \n Ren, T.; Modest, M. F.; and Roy, S.\n\n\n \n\n\n\n Journal of Engineering for Gas Turbines and Power, 140(5): 051503. dec 2017.\n \n\n\n\n
\n\n\n\n \n \n \"MontePaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n  \n \n 3 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{Ren2017GTP,\nauthor = {Ren, Tao and Modest, Michael F. and Roy, Somesh},\ndoi = {10.1115/1.4038153},\nfile = {:home/somesh/Documents/Mendely/Ren, Modest, Roy - 2017 - Monte Carlo Simulation for Radiative Transfer in a High-Pressure Industrial Gas Turbine Combustion Chamber.pdf:pdf},\nissn = {0742-4795},\njournal = {Journal of Engineering for Gas Turbines and Power},\nmonth = {dec},\nnumber = {5},\npages = {051503},\ntitle = {Monte Carlo Simulation for Radiative Transfer in a High-Pressure Industrial Gas Turbine Combustion Chamber},\nurl = {http://gasturbinespower.asmedigitalcollection.asme.org/article.aspx?doi=10.1115/1.4038153},\nvolume = {140},\nyear = {2017}\n}\n
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\n \n\n \n \n \n \n \n \n Effect of multiphase radiation on coal combustion in a pulverized coal jet flame.\n \n \n \n \n\n\n \n Wu, B.; Roy, S. P; Zhao, X.; and Modest, M. F\n\n\n \n\n\n\n Journal of Quantitative Spectroscopy and Radiative Transfer, 197: 154-165. aug 2017.\n \n\n\n\n
\n\n\n\n \n \n \"EffectPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n  \n \n 2 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n \n \n \n \n \n \n\n\n\n
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@article{WuJQSRT2017,\nauthor = {Wu, Bifen and Roy, Somesh P and Zhao, Xinyu and Modest, Michael F},\ndoi = {10.1016/j.jqsrt.2017.03.017},\nfile = {:home/somesh/Documents/Mendely/Wu et al. - 2017 - Effect of multiphase radiation on coal combustion in a pulverized coal jet flame(2).pdf:pdf},\nissn = {00224073},\njournal = {Journal of Quantitative Spectroscopy and Radiative Transfer},\nkeywords = {coal radiation,monte carlo,nongray},\nmonth = {aug},\npages = {154-165},\ntitle = {Effect of multiphase radiation on coal combustion in a pulverized coal jet flame},\nurl = {http://linkinghub.elsevier.com/retrieve/pii/S0022407316305957},\nvolume = {197},\nyear = {2017}\n}\n
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\n  \n 2016\n \n \n (7)\n \n \n
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\n \n\n \n \n \n \n \n A computational study of radiative heat transfer in pulverized coal jet flame.\n \n \n \n\n\n \n Wu, B.; Roy, S.; Zhao, X.; and Modest, M.\n\n\n \n\n\n\n In 2016 Spring Technical Meeting of the Eastern States Section of the Combustion Institute, 2016. \n \n\n\n\n
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@inproceedings{WuESCM2016,\nabstract = {{\\textcopyright} 2016, Eastern States Section of the Combustion Institute. All rights reserved. A laboratory-scale pulverized coal flame is simulated using a photon Monte Carlo (PMC) based radiation model with gray and nongray particles and gas phase properties. For the PMC model, a set of particles are used to represent the radiation photon bundles. A Eulerian-Lagrangian framework is employed to track and couple the gas phase with solid phase. Results obtained with and without the PMC radiation model are compared to quantify the effects of gray and nongray radiation emission and absorption. The gas phase and coal particle temperatures, as well as the predicted lift-off heights are compared with experimental measurements. The effect of radiation on the ignition properties of pulverized coal flame is quantified. Parametric studies on the coupling effects of turbulence-chemistry-radiation interactions will also be discussed.},\nauthor = {Wu, B. and Roy, S.P. and Zhao, X. and Modest, M.F.},\nbooktitle = {2016 Spring Technical Meeting of the Eastern States Section of the Combustion Institute},\ntitle = {A computational study of radiative heat transfer in pulverized coal jet flame},\nyear = {2016}\n}\n
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\n © 2016, Eastern States Section of the Combustion Institute. All rights reserved. A laboratory-scale pulverized coal flame is simulated using a photon Monte Carlo (PMC) based radiation model with gray and nongray particles and gas phase properties. For the PMC model, a set of particles are used to represent the radiation photon bundles. A Eulerian-Lagrangian framework is employed to track and couple the gas phase with solid phase. Results obtained with and without the PMC radiation model are compared to quantify the effects of gray and nongray radiation emission and absorption. The gas phase and coal particle temperatures, as well as the predicted lift-off heights are compared with experimental measurements. The effect of radiation on the ignition properties of pulverized coal flame is quantified. Parametric studies on the coupling effects of turbulence-chemistry-radiation interactions will also be discussed.\n
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\n \n\n \n \n \n \n \n Impact of nongray multiphase radiation in pulverized coal combustion.\n \n \n \n\n\n \n Roy, S; Wu, B; Modest, M; and Zhao, X\n\n\n \n\n\n\n In APS Meeting Abstracts, nov 2016. \n \n\n\n\n
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@inproceedings{RoyAPS2016,\nauthor = {Roy, S and Wu, B and Modest, M and Zhao, X},\nbooktitle = {APS Meeting Abstracts},\ndoi = {10.1103/BAPS.2016.DFD.H28.8},\nfile = {:home/somesh/Documents/Mendely/Roy et al. - 2016 - Impact of nongray multiphase radiation in pulverized coal combustion.pdf:pdf},\nmonth = {nov},\ntitle = {Impact of nongray multiphase radiation in pulverized coal combustion},\nyear = {2016}\n}\n
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\n \n\n \n \n \n \n \n Radiative heat transfer and turbulence-radiation interactions in a heavy-duty diesel engine.\n \n \n \n\n\n \n Paul, C.; Sircar, A.; Imren, A.; Ferreyro-Fernandez, S.; Roy, S.; Ge, W.; Haworth, D.; and Modest, M.\n\n\n \n\n\n\n In 2016 Spring Technical Meeting of the Eastern States Section of the Combustion Institute, ESSCI 2016, 2016. \n \n\n\n\n
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@inproceedings{PaulESCM2016,\nabstract = {{\\textcopyright} 2016, Eastern States Section of the Combustion Institute. All rights reserved.Radiation in piston engines has received relatively little attention to date. Recently, it is being revisited in light of current trends towards higher operating pressures and higher levels of exhaust-gas recirculation (EGR), both of which enhance molecular gas radiation. Advanced high-efficiency engines also are expected to function closer to the limits of stable operation, where even small perturbations to the energy balance can have a large influence on system behavior. Here several combinations of spectral radiation property models and radiative transfer equation (RTE) solvers have been implemented in an OpenFOAM-based engine CFD code, and results of preliminary simulations with coupled radiation models are presented for a heavy-duty diesel engine at a part-load no-EGR operating condition. The most important influences on computed emissions and heat losses are found to be those of spectral radiation properties and unresolved turbulent fluctuations in composition and temperature, although overall radiation effects are relatively small for this operating condition. The models are being applied to other operating conditions where radiation effects are expected to be more prominent.},\nauthor = {Paul, C. and Sircar, A. and Imren, A. and Ferreyro-Fernandez, S. and Roy, S.P. and Ge, W. and Haworth, D.C. and Modest, M.F.},\nbooktitle = {2016 Spring Technical Meeting of the Eastern States Section of the Combustion Institute, ESSCI 2016},\nfile = {:home/somesh/Documents/Mendely/Paul et al. - 2016 - Radiative heat transfer and turbulence-radiation interactions in a heavy-duty diesel engine.pdf:pdf},\ntitle = {Radiative heat transfer and turbulence-radiation interactions in a heavy-duty diesel engine},\nyear = {2016}\n}\n
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\n © 2016, Eastern States Section of the Combustion Institute. All rights reserved.Radiation in piston engines has received relatively little attention to date. Recently, it is being revisited in light of current trends towards higher operating pressures and higher levels of exhaust-gas recirculation (EGR), both of which enhance molecular gas radiation. Advanced high-efficiency engines also are expected to function closer to the limits of stable operation, where even small perturbations to the energy balance can have a large influence on system behavior. Here several combinations of spectral radiation property models and radiative transfer equation (RTE) solvers have been implemented in an OpenFOAM-based engine CFD code, and results of preliminary simulations with coupled radiation models are presented for a heavy-duty diesel engine at a part-load no-EGR operating condition. The most important influences on computed emissions and heat losses are found to be those of spectral radiation properties and unresolved turbulent fluctuations in composition and temperature, although overall radiation effects are relatively small for this operating condition. The models are being applied to other operating conditions where radiation effects are expected to be more prominent.\n
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\n \n\n \n \n \n \n \n Monte Carlo modeling of radiative transfer in a pulverized coal jet flame.\n \n \n \n\n\n \n Wu, B.; Roy, S.; Modest, M. F.; and Zhao, X.\n\n\n \n\n\n\n In Proceedings of the 8th International Symposium on Radiative transfer, RAD-16, Capadocia, Turkey, 2016. \n \n\n\n\n
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@inproceedings{WuRAD2016,\naddress = {Capadocia, Turkey},\nauthor = {Wu, Bifen and Roy, Somesh and Modest, Michael F. and Zhao, Xinyu},\nbooktitle = {Proceedings of the 8th International Symposium on Radiative transfer, RAD-16},\nfile = {:home/somesh/Documents/Mendely/Wu, Bifen Roy, Somesh Modest, Michael F. Zhao - 2016 - Monte Carlo modeling of radiative transfer in a pulverized coal jet flame.pdf:pdf},\nisbn = {9780557232123},\ntitle = {Monte Carlo modeling of radiative transfer in a pulverized coal jet flame},\nyear = {2016}\n}\n
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\n \n\n \n \n \n \n \n \n Multiphase Radiation Heat Transfer Calculations in High-Pressure Spray Ccombustion Simulations.\n \n \n \n \n\n\n \n Roy, S P; Ge, W; Cai, J; and Modest, M F\n\n\n \n\n\n\n In Proceedings of the 8th International Symposium on Radiative Transfer, RAD-16, pages 1-8, 2016. \n \n\n\n\n
\n\n\n\n \n \n \"MultiphasePaper\n  \n \n\n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@inproceedings{RoyRAD2016,\nauthor = {Roy, S P and Ge, W and Cai, J and Modest, M F},\nbooktitle = {Proceedings of the 8th International Symposium on Radiative Transfer, RAD-16},\nfile = {:home/somesh/Documents/Mendely/Roy et al. - 2016 - Multiphase Radiation Heat Transfer Calculations in High-Pressure Spray Ccombustion Simulations.pdf:pdf},\npages = {1-8},\ntitle = {Multiphase Radiation Heat Transfer Calculations in High-Pressure Spray Ccombustion Simulations},\nurl = {http://www.dl.begellhouse.com/references/1bb331655c289a0a,42e2abc72bfdad76,08e77ca46f7ae32d.html},\nyear = {2016}\n}\n
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\n \n\n \n \n \n \n \n \n A comparison of specularly reflective boundary conditions and rotationally invariant formulations for Discrete Ordinate Methods in axisymmetric geometries.\n \n \n \n \n\n\n \n Cai, J.; Roy, S.; and Modest, M. F.\n\n\n \n\n\n\n Journal of Quantitative Spectroscopy and Radiative Transfer, 182: 75-86. 2016.\n \n\n\n\n
\n\n\n\n \n \n \"APaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n  \n \n 1 download\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n \n \n \n \n \n \n \n \n\n\n\n
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@article{CaiJQSRT2016,\nauthor = {Cai, Jian and Roy, Somesh and Modest, Michael F.},\ndoi = {10.1016/j.jqsrt.2016.05.005},\nfile = {:home/somesh/Documents/Mendely/Cai, Roy, Modest - 2016 - A comparison of specularly reflective boundary conditions and rotationally invariant formulations for Discrete.pdf:pdf},\nissn = {00224073},\njournal = {Journal of Quantitative Spectroscopy and Radiative Transfer},\nkeywords = {Axisymmetric enclosures,Discrete Ordinate Methods,Nongray radiation,Thermal radiation},\npages = {75-86},\npublisher = {Elsevier},\ntitle = {A comparison of specularly reflective boundary conditions and rotationally invariant formulations for Discrete Ordinate Methods in axisymmetric geometries},\nurl = {http://linkinghub.elsevier.com/retrieve/pii/S0022407316301133},\nvolume = {182},\nyear = {2016}\n}\n
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\n \n\n \n \n \n \n \n A Systematic Comparison of Detailed Soot Models and Gas-phase Chemical Mechanisms in Laminar Premixed Flames.\n \n \n \n\n\n \n Roy, S. P; and Haworth, D. C\n\n\n \n\n\n\n Combustion Science and Technology, 188(7): 1021-1053. 2016.\n \n\n\n\n
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@article{RoyCST2016,\nauthor = {Roy, Somesh P and Haworth, Daniel C},\ndoi = {10.1080/00102202.2016.1145117},\nfile = {:home/somesh/Documents/Mendely/Roy, Haworth - 2016 - A Systematic Comparison of Detailed Soot Models and Gas-phase Chemical Mechanisms in Laminar Premixed Flames.pdf:pdf},\njournal = {Combustion Science and Technology},\nnumber = {7},\npages = {1021-1053},\ntitle = {A Systematic Comparison of Detailed Soot Models and Gas-phase Chemical Mechanisms in Laminar Premixed Flames},\nvolume = {188},\nyear = {2016}\n}\n
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\n  \n 2015\n \n \n (6)\n \n \n
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\n \n\n \n \n \n \n \n Modelling radiative heat transfer in engines.\n \n \n \n\n\n \n Haworth, D.; Roy, S.; Cai, J.; Sircar, A.; Imren, A.; and Modest, M.\n\n\n \n\n\n\n In International Multidimensional Engine Modeling User's Group Meeting at the SAE Congress, volume 2010, pages 1-6, 2015. \n \n\n\n\n
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@inproceedings{HaworthSAE2015,\nauthor = {Haworth, D.C. and Roy, S.P. and Cai, J. and Sircar, A. and Imren, A. and Modest, M.F.},\nbooktitle = {International Multidimensional Engine Modeling User's Group Meeting at the SAE Congress},\nfile = {:home/somesh/Documents/Mendely/Haworth et al. - 2015 - Modelling radiative heat transfer in engines.pdf:pdf},\nnumber = {April},\npages = {1-6},\ntitle = {Modelling radiative heat transfer in engines},\nvolume = {2010},\nyear = {2015}\n}\n
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\n \n\n \n \n \n \n \n Photon Monte Carlo method for radiation calculations in spray combustion.\n \n \n \n\n\n \n Roy, S P; Cai, J; and Modest, M.\n\n\n \n\n\n\n In Proceddings of CHT-15 ICHMT International Symposium on Advances in Computational Heat Transfer, Piscataway, NJ, 2015. \n \n\n\n\n
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@inproceedings{RoyCHT2015b,\naddress = {Piscataway, NJ},\nauthor = {Roy, S P and Cai, J and Modest, M.F.},\nbooktitle = {Proceddings of CHT-15 ICHMT International Symposium on Advances in Computational Heat Transfer},\ntitle = {Photon {M}onte {C}arlo method for radiation calculations in spray combustion},\nyear = {2015}\n}\n
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\n \n\n \n \n \n \n \n Computational cost and accuracy comparison of radiation solvers with emphasis on combustion simulations.\n \n \n \n\n\n \n Roy, S P; Cai, J; Ge, W; and Modest, M.\n\n\n \n\n\n\n In Proceddings of CHT-15 ICHMT International Symposium on Advances in Computational Heat Transfer, Piscataway, NJ, 2015. \n \n\n\n\n
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@inproceedings{RoyCHT2015a,\naddress = {Piscataway, NJ},\nauthor = {Roy, S P and Cai, J and Ge, W and Modest, M.F.},\nbooktitle = {Proceddings of CHT-15 ICHMT International Symposium on Advances in Computational Heat Transfer},\ndoi = {10.1615/ICHMT.2015.IntSympAdvComputHeatTransf.1460},\ntitle = {Computational cost and accuracy comparison of radiation solvers with emphasis on combustion simulations},\nyear = {2015}\n}\n
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\n \n\n \n \n \n \n \n \n Development of high-order PN models for radiative heat transfer in special geometries and boundary conditions.\n \n \n \n \n\n\n \n Ge, W.; Modest, M. F.; and Roy, S. P.\n\n\n \n\n\n\n Journal of Quantitative Spectroscopy and Radiative Transfer, 172: 98-109. 2015.\n \n\n\n\n
\n\n\n\n \n \n \"DevelopmentPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n \n \n \n \n \n \n \n \n \n \n \n \n\n\n\n
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@article{GeJQSRT2015,\nauthor = {Ge, Wenjun and Modest, Michael F. and Roy, Somesh P.},\ndoi = {10.1016/j.jqsrt.2015.09.001},\nfile = {:home/somesh/Documents/Mendely/Ge, Modest, Roy - 2015 - Development of high-order PN models for radiative heat transfer in special geometries and boundary conditions.pdf:pdf},\nissn = {00224073},\njournal = {Journal of Quantitative Spectroscopy and Radiative Transfer},\nkeywords = {High-order spherical harmonics,Partially diffuse and partially specular,RTE solver,Radiative transfer,Specified heat flux at the wall,Specular reflection},\npages = {98-109},\npublisher = {Elsevier},\ntitle = {Development of high-order PN models for radiative heat transfer in special geometries and boundary conditions},\nurl = {http://linkinghub.elsevier.com/retrieve/pii/S0022407315002976},\nvolume = {172},\nyear = {2015}\n}\n
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\n \n\n \n \n \n \n \n \n Dynamics of flow-soot interaction in wrinkled non-premixed ethylene–air flames.\n \n \n \n \n\n\n \n Arias, P. G.; Lecoustre, V. R.; Roy, S.; Luo, Z.; Haworth, D. C.; Lu, T.; Trouvé, A.; and Im, H. G.\n\n\n \n\n\n\n Combustion Theory and Modelling, 19(5): 568-586. sep 2015.\n \n\n\n\n
\n\n\n\n \n \n \"DynamicsPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{AriasCTM2015,\nauthor = {Arias, Paul G. and Lecoustre, Vivien R. and Roy, Somesh and Luo, Zhaoyu and Haworth, Daniel C. and Lu, Tianfeng and Trouv{\\'{e}}, Arnaud and Im, Hong G.},\ndoi = {10.1080/13647830.2015.1067331},\nfile = {:home/somesh/Documents/Mendely/Arias et al. - 2015 - Dynamics of flow–soot interaction in wrinkled non-premixed ethylene–air flames.pdf:pdf},\nissn = {1364-7830},\njournal = {Combustion Theory and Modelling},\nmonth = {sep},\nnumber = {5},\npages = {568-586},\ntitle = {Dynamics of flow-soot interaction in wrinkled non-premixed ethylene–air flames},\nurl = {http://www.tandfonline.com/doi/full/10.1080/13647830.2015.1067331},\nvolume = {19},\nyear = {2015}\n}\n
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\n \n\n \n \n \n \n \n \n Implementation of High-Order Spherical Harmonics Methods for Radiative Heat Transfer on OpenFOAM.\n \n \n \n \n\n\n \n Ge, W.; Marquez, R.; Modest, M. F.; and Roy, S. P.\n\n\n \n\n\n\n Journal of Heat Transfer, 137(5): 052701. 2015.\n \n\n\n\n
\n\n\n\n \n \n \"ImplementationPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n \n \n \n \n \n \n \n \n\n\n\n
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@article{GeJHT2015,\nauthor = {Ge, Wenjun and Marquez, Ricardo and Modest, Michael F. and Roy, Somesh P.},\ndoi = {10.1115/1.4029546},\nfile = {:home/somesh/Documents/Mendely/Ge et al. - 2015 - Implementation of High-Order Spherical Harmonics Methods for Radiative Heat Transfer on openfoam.pdf:pdf},\nissn = {0022-1481},\njournal = {Journal of Heat Transfer},\nkeywords = {computer,radiative heat transfer,rte solvers,spherical harmonics},\nnumber = {5},\npages = {052701},\ntitle = {Implementation of High-Order Spherical Harmonics Methods for Radiative Heat Transfer on {OpenFOAM}},\nurl = {http://heattransfer.asmedigitalcollection.asme.org/article.aspx?doi=10.1115/1.4029546},\nvolume = {137},\nyear = {2015}\n}\n
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\n  \n 2014\n \n \n (4)\n \n \n
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\n \n\n \n \n \n \n \n \n Detailed computational modeling of laminar and turbulent sooting flames.\n \n \n \n \n\n\n \n Dasgupta, A.; Roy, S.; and Haworth, D. C.\n\n\n \n\n\n\n In Proceedings of the 2014 Annual Conference on Extreme Science and Engineering Discovery Environment - XSEDE '14, pages 1-7, 2014. \n \n\n\n\n
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@inproceedings{Dasgupta2014,\nabstract = {This study reports development and validation of two parallel flame solvers with soot models based on the open-source computation uid dynamics (CFD) toolbox code OpenFOAM. First, a laminar ame solver is developed and validated against experimental data. A semi-empirical two-equation soot model and a detailed soot model using a method of moments with interpolative closure (MOMIC) are implemented in the laminar ame solver. An optically thin radiation model including gray soot radiation is also implemented. Preliminary results using these models show good agreement with experimental data for the laminar axisymmetric diffusion ame studied. Second, a turbulent ame solver is developed using Reynolds-Averaged equations and transported probability density function (tPDF) method. The MOMIC soot model is implemented on this turbulent solver. A sophisticated photon Monte-Carlo (PMC) model with line-by-line spectral radiation database for modeling is also implemented on the turbulent solver. The validation of the turbulent solver is under progress. Both the solvers show good scalability for a moderate-sized chemical mechanism, and can be expected to scale even more strongly when larger chemical mechanisms are used. Copyright 2014 ACM.},\nauthor = {Dasgupta, Adhiraj and Roy, Somesh and Haworth, Daniel C.},\nbooktitle = {Proceedings of the 2014 Annual Conference on Extreme Science and Engineering Discovery Environment - XSEDE '14},\ndoi = {10.1145/2616498.2616509},\nfile = {:home/somesh/Documents/Mendely/Dasgupta, Roy, Haworth - 2014 - Detailed computational modeling of laminar and turbulent sooting flames.pdf:pdf},\nisbn = {9781450328937},\nkeywords = {Laminar flames,Scaling,Soot modeling,Turbulent flames},\npages = {1-7},\ntitle = {Detailed computational modeling of laminar and turbulent sooting flames},\nurl = {http://www.scopus.com/inward/record.url?eid=2-s2.0-84905436343&partnerID=tZOtx3y1},\nyear = {2014}\n}\n
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\n This study reports development and validation of two parallel flame solvers with soot models based on the open-source computation uid dynamics (CFD) toolbox code OpenFOAM. First, a laminar ame solver is developed and validated against experimental data. A semi-empirical two-equation soot model and a detailed soot model using a method of moments with interpolative closure (MOMIC) are implemented in the laminar ame solver. An optically thin radiation model including gray soot radiation is also implemented. Preliminary results using these models show good agreement with experimental data for the laminar axisymmetric diffusion ame studied. Second, a turbulent ame solver is developed using Reynolds-Averaged equations and transported probability density function (tPDF) method. The MOMIC soot model is implemented on this turbulent solver. A sophisticated photon Monte-Carlo (PMC) model with line-by-line spectral radiation database for modeling is also implemented on the turbulent solver. The validation of the turbulent solver is under progress. Both the solvers show good scalability for a moderate-sized chemical mechanism, and can be expected to scale even more strongly when larger chemical mechanisms are used. Copyright 2014 ACM.\n
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\n \n\n \n \n \n \n \n Aerosol-dynamics-based soot modeling of flames.\n \n \n \n\n\n \n Roy, S.\n\n\n \n\n\n\n Ph.D. Thesis, The Pennsylvania State Universtiy, 2014.\n \n\n\n\n
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@phdthesis{Roy2014th,\nauthor = {Roy, Somesh},\nfile = {:home/somesh/Documents/Mendely/Roy - 2014 - Aerosol-dynamics-based soot modeling of flames.pdf:pdf},\nkeywords = {myWork,soot},\nmendeley-tags = {myWork,soot},\nnumber = {May},\nschool = {The Pennsylvania State Universtiy},\ntitle = {Aerosol-dynamics-based soot modeling of flames},\nyear = {2014}\n}\n
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\n \n\n \n \n \n \n \n Direct Numerical Simulations of Non-premixed Ethylene-Air Flames: Local Flame Extinction Criterion.\n \n \n \n\n\n \n Lecoustre, V R; Arias, P G; Roy, S P; Luo, Z; Haworth, D C; Im, H G; Lu, T F; and Trouvé, A\n\n\n \n\n\n\n Combustion and Flame, 161: 2933-2950. 2014.\n \n\n\n\n
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@article{LecoustreCF2014,\nauthor = {Lecoustre, V R and Arias, P G and Roy, S P and Luo, Z and Haworth, D C and Im, H G and Lu, T F and Trouv{\\'{e}}, A},\ndoi = {10.1016/j.combustflame.2014.05.016},\nfile = {:home/somesh/Documents/Mendely/Lecoustre et al. - 2014 - Direct Numerical Simulations of Non-premixed Ethylene-Air Flames Local Flame Extinction Criterion.pdf:pdf},\njournal = {Combustion and Flame},\npages = {2933-2950},\ntitle = {Direct Numerical Simulations of Non-premixed Ethylene-Air Flames: Local Flame Extinction Criterion},\nvolume = {161},\nyear = {2014}\n}\n
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\n \n\n \n \n \n \n \n Development of High Fidelity Soot Aerosol Dynamics Models using Method of Moments with Interpolative Closure.\n \n \n \n\n\n \n Roy, S P; Arias, P G; Lecoustre, V; Im, H G; Haworth, D C; and Trouvé, A\n\n\n \n\n\n\n Aerosol Science and Technology, 48: 379-391. 2014.\n \n\n\n\n
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@article{RoyAST2014,\nauthor = {Roy, S P and Arias, P G and Lecoustre, V and Im, H G and Haworth, D C and Trouv{\\'{e}}, A},\ndoi = {10.1080/02786826.2013.878017},\nfile = {:home/somesh/Documents/Mendely/Roy et al. - 2014 - Development of High Fidelity Soot Aerosol Dynamics Models using Method of Moments with Interpolative Closure.pdf:pdf},\njournal = {Aerosol Science and Technology},\npages = {379-391},\ntitle = {Development of High Fidelity Soot Aerosol Dynamics Models using Method of Moments with Interpolative Closure},\nvolume = {48},\nyear = {2014}\n}\n
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\n  \n 2013\n \n \n (4)\n \n \n
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\n \n\n \n \n \n \n \n A Computational Study of Turbulent Nonpremixed Sooting Flames using a High Order Method of Moments.\n \n \n \n\n\n \n Arias, P G; Lecoustre, V R; Roy, S P; Luo, Z; Haworth, D C; Im, H G; Lu, T F; Ma, K L; Sankaran, R; and Trouve, A\n\n\n \n\n\n\n In The 12th International Conference on Numerical Combustion, 2013. \n \n\n\n\n
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@inproceedings{AriasNC2013,\nauthor = {Arias, P G and Lecoustre, V R and Roy, S P and Luo, Z and Haworth, D C and Im, H G and Lu, T F and Ma, K L and Sankaran, R and Trouve, A},\nbooktitle = {The 12th International Conference on Numerical Combustion},\nfile = {:home/somesh/Documents/Mendely/Arias et al. - 2013 - A Computational Study of Turbulent Nonpremixed Sooting Flames using a High Order Method of Moments.pdf:pdf},\ntitle = {A Computational Study of Turbulent Nonpremixed Sooting Flames using a High Order Method of Moments},\nyear = {2013}\n}\n
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\n \n\n \n \n \n \n \n Computational Diagnostics of Wrinkled Nonpremixed Flame Extinction at Different Pressures.\n \n \n \n\n\n \n Lecoustre, V. R; Arias, P. G; Roy, S.; Luo, Z.; Haworth, D. C; Im, H. G; Lu, T.; and Trouvé, A.\n\n\n \n\n\n\n In Proceedings of Seventh International Symposium on Scale Modeling (ISSM-7), pages ISSM7-5-04, 2013. \n \n\n\n\n
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@inproceedings{LecoustreISSM2013a,\nauthor = {Lecoustre, Vivien R and Arias, Paul G and Roy, Somesh and Luo, Zhaoyu and Haworth, Daniel C and Im, Hong G and Lu, Tianfeng and Trouv{\\'{e}}, Arnaud},\nbooktitle = {Proceedings of Seventh International Symposium on Scale Modeling (ISSM-7)},\nfile = {:home/somesh/Documents/Mendely/Lecoustre et al. - 2013 - Computational Diagnostics of Wrinkled Nonpremixed Flame Extinction at Different Pressures.pdf:pdf},\nnumber = {Aug},\npages = {ISSM7-5-04},\ntitle = {Computational Diagnostics of Wrinkled Nonpremixed Flame Extinction at Different Pressures},\nyear = {2013}\n}\n
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\n \n\n \n \n \n \n \n Soot modeling of diffusion flames using method of moments with interpolative closure.\n \n \n \n\n\n \n Arias, P G; Roy, S; Lecoustre, V; Im, H G; Haworth, D; and Trouvé, A\n\n\n \n\n\n\n In European Combustion Meeting, Lund, Sweden, 2013. \n \n\n\n\n
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@inproceedings{AriasECM2013,\naddress = {Lund, Sweden},\nauthor = {Arias, P G and Roy, S and Lecoustre, V and Im, H G and Haworth, D and Trouv{\\'{e}}, A},\nbooktitle = {European Combustion Meeting},\nfile = {:home/somesh/Documents/Mendely/Arias et al. - 2013 - Soot modeling of diffusion flames using method of moments with interpolative closure.pdf:pdf},\ntitle = {Soot modeling of diffusion flames using method of moments with interpolative closure},\nyear = {2013}\n}\n
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\n \n\n \n \n \n \n \n Direct Numerical Simulations of Diffusion Flame Extinction at Different Pressures.\n \n \n \n\n\n \n Lecoustre, V.; Arias, P.; Roy, S.; and Luo, Z\n\n\n \n\n\n\n In US National Combustion Meeting, pages 1-17, 2013. \n \n\n\n\n
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@inproceedings{LecoustreNCM2013,\nauthor = {Lecoustre, VR and Arias, PG and Roy, Somesh and Luo, Z},\nbooktitle = {US National Combustion Meeting},\nfile = {:home/somesh/Documents/Mendely/Lecoustre et al. - 2013 - Direct Numerical Simulations of Diffusion Flame Extinction at Different Pressures.pdf:pdf},\npages = {1-17},\ntitle = {Direct Numerical Simulations of Diffusion Flame Extinction at Different Pressures},\nyear = {2013}\n}\n
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\n \n\n \n \n \n \n \n Direct Numerical Simulation of Soot Formation and Oxidation in Temporally Evolving Turbulent Luminous Non-Premixed Flames.\n \n \n \n\n\n \n Arias, P G; Lecoustre, V R; Roy, S; Wang, W; Luo, Z; Haworth, D C; Im, H G; Lu, T F; Ma, K L; Sankaran, R; and Trouve, A\n\n\n \n\n\n\n In Fall Technical Meeting of the Eastern States Section of the Combustion Institute, 2011. \n \n\n\n\n
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@inproceedings{AriasESCM2011,\nabstract = {Direct numerical simulations of a two-dimensional temporally-evolving ethylene-air non-premixed flame in a decaying turbulent flow are performed using a high-order compressible Navier-Stokes solver called S3D. Different models for fuel oxidation and soot formation/oxidation are presented and compared. The first model comprises a single step ethylene-air chemical mechanism with a semi-empirical soot model. Equidiffusion of species is assumed. The second model comprises a reduced mechanism derived from a detailed ethylene-air chemical kinetic mechanism that includes the reaction pathways for the formation of polycyclic aromatic hydrocarbons. The gas-phase chemistry is coupled with a semi-empirical soot model. The third model comprises the same reduced mechanism coupled with a detailed soot model based on the method of moments with interpolative closure. Differential diffusion of species is modeled. This paper presents a preliminary comparison of the models in the case of temporally evolving turbulent diffusion flames, with a particular focus on soot formation.},\nauthor = {Arias, P G and Lecoustre, V R and Roy, S and Wang, W and Luo, Z and Haworth, D C and Im, H G and Lu, T F and Ma, K L and Sankaran, R and Trouve, A},\nbooktitle = {Fall Technical Meeting of the Eastern States Section of the Combustion Institute},\nfile = {:home/somesh/Documents/Mendely/Arias et al. - 2011 - Direct Numerical Simulation of Soot Formation and Oxidation in Temporally Evolving Turbulent Luminous Non-Premixed.pdf:pdf},\nisbn = {9781622761258},\ntitle = {Direct Numerical Simulation of Soot Formation and Oxidation in Temporally Evolving Turbulent Luminous Non-Premixed Flames},\nyear = {2011}\n}\n
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\n Direct numerical simulations of a two-dimensional temporally-evolving ethylene-air non-premixed flame in a decaying turbulent flow are performed using a high-order compressible Navier-Stokes solver called S3D. Different models for fuel oxidation and soot formation/oxidation are presented and compared. The first model comprises a single step ethylene-air chemical mechanism with a semi-empirical soot model. Equidiffusion of species is assumed. The second model comprises a reduced mechanism derived from a detailed ethylene-air chemical kinetic mechanism that includes the reaction pathways for the formation of polycyclic aromatic hydrocarbons. The gas-phase chemistry is coupled with a semi-empirical soot model. The third model comprises the same reduced mechanism coupled with a detailed soot model based on the method of moments with interpolative closure. Differential diffusion of species is modeled. This paper presents a preliminary comparison of the models in the case of temporally evolving turbulent diffusion flames, with a particular focus on soot formation.\n
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\n \n\n \n \n \n \n \n Direct numerical simulation of temporally evolving turbulent luminous jet flames with detailed fuel and soot chemistry.\n \n \n \n\n\n \n Arias, P G; Lecoustre, V; Roy, S; Wang, W; Luo, Z; Haworth, D; Im, H G; Lu, T F; Ma, K L; Sankaran, R; and Trouvé, A\n\n\n \n\n\n\n In U.S. National Combustion Meeting, Atlanta, USA, 2011. \n \n\n\n\n
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@inproceedings{AriasNCM2011,\naddress = {Atlanta, USA},\nauthor = {Arias, P G and Lecoustre, V and Roy, S and Wang, W and Luo, Z and Haworth, D and Im, H G and Lu, T F and Ma, K L and Sankaran, R and Trouv{\\'{e}}, A},\nbooktitle = {U.S. National Combustion Meeting},\nfile = {:home/somesh/Documents/Mendely/Arias et al. - 2011 - Direct numerical simulation of temporally evolving turbulent luminous jet flames with detailed fuel and soot chemi.pdf:pdf},\ntitle = {Direct numerical simulation of temporally evolving turbulent luminous jet flames with detailed fuel and soot chemistry},\nyear = {2011}\n}\n
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