论文 Publications


同行评议期刊论文

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[55] X. Zhou, X. Wan, Y. Xiang, P. Lv, S. Wang, L. Zhang*, Superhydrophobic Needle-Punched Fabrics with Dynamic Air Recovery and Coalescence for Robust Underwater Gas-Liquid Interface Control Under Review.

[54] Q. Wen, Y. Wang, L. Yang, Y. Morii, T. Zirwes, S. Wang*, Z. Chen, Effects of Soret diffusion on the intrinsic instability of premixed hydrogen/air flames, Under Review. https://doi.org/10.48550/arXiv.2604.08061

[53] X. Nie, S. Zhang, S. Wang*, Pulsation of Burner-Stabilized CH4-O2 Flames Moderated by CO2 Addition, Under Review. https://doi.org/10.48550/arXiv.2507.10905

已接收

[52] Y. Zhao, Y. Su*, S. Wang, X. Deng, Helicity dynamics in turbulent premixed swirl-stabilized combustion, Physics of Fluids, (In Press).

[51] X. Nie, S. Wang*, Cavity-Stabilized Rotating Flames in a Circular Hele-Shaw Burner. Proceedings of the Combustion Institute, (In Press). https://doi.org/10.48550/arXiv.2604.08035

[50] H. Gong, S. Wang*, Effects of Nozzle Roughness on the Streamwise Streaks in Underexpanded Jets- An Experimental Study, Proceedings of the 35th International Symposium on Shock Waves, (In Press). https://doi.org/10.48550/arXiv.2604.08830

已发表

[49] X. Nie, S. Wang*, Edge-Stabilized Rotating Flames in a Circular Hele-Shaw Cell, Physical Review Fluids, 11 (2026) 083201. https://doi.org/10.1103/rs7l-whwf

[48] Q. Wen, Y. Wang, L. Yang, Y. Morii, T. Zirwes, S. Wang*, Z. Chen, Effects of Soret diffusion on the intrinsic instability of premixed hydrogen/air flames. Proceedings of the Combustion Institute, 42 (2026) 106065. https://doi.org/10.1016/j.proci.2026.106065

[47] D. Zhao, Y. Shi, S. Wang*, Quantifying CO2 Distribution at the Air-Water Interface-Spatiotemporally Resolved Measurements Using Tunable Diode Laser Spectroscopy. Physical Review Fluids, 11 (2026) 034903. https://doi.org/10.1103/j1df-csw4

[46] S. Du, Y. Wang, S. Wang*, Z. Chen, Effects of gravity and radiation on the propagation of spherically expanding ammonia/air flames. Microgravity Science and Technology, 38 (2026) 7. https://doi.org/10.1007/s12217-026-10235-6

[45] Z. Yan, X. Nie, S. Zhang, S. Wang*, Quantitative 3D Measurements of Temperature and OH in Cellular H2/O2/N2 Flames on a Porous-Plug BurnerCombustion and Flame, 285 (2026) 114777. https://doi.org/10.1016/j.combustflame.2026.114777

[44] S. Zhang, S. Wang*, Precision thermometry of flat flames using spatially resolved multi-color laser absorption spectroscopy of carbon dioxide. Combustion and Flame, 284 (2026) 114649. https://doi.org/10.1016/j.combustflame.2025.114649

[43] Y. Zhao, Y. Su*, S. Wang, X. Deng, Modeling heat loss correction effects in large eddy simulation of swirl- stabilized flame with simplified reaction mechanisms. Physics of Fluids, 37 (2025) 087191. https://doi.org/10.1063/5.0284954

[42] H. Wang, Z. Yan, Y. Zhao, S. Wang*. On the self-excited instabilities of premixed swirl flames near blow-off limits—An experimental study using simultaneous measurements of thermal boundary conditions and core flow scalar fields. Combustion and Flame, 277 (2025), 114171. https://doi.org/10.1016/j.combustflame.2025.114171

[41] S. Tan*, L. White, S. Wang*, Photon budget of long range FMCW LiDAR: a comprehensive spectral- temporal model with experimental validation. Optics Express, 33 (2025), 23125-23144. https://doi.org/10.1364/OE.554350

[40] J. Sun*, D. Yu, P. Yang, Y. Wang, S. Wang, Z. Chen. Detonation initiation induced by dual hot spots: a computational studyJournal of Fluid Mechanics, 1010 (2025): A60. https://doi.org/10.1017/jfm.2025.351

[39] X. Chen, Y. Xu, M. Wen, Y. Wang, K. Pang, S. Wang, Q. Chu, D. Chen*. EM-HyChem: Bridging molecular simulations and chemical reaction neural network-enabled approach to modelling energetic material chemistry. Combustion and Flame, 275 (2025): 114065. https://doi.org/10.1016/j.combustflame.2025.114065

[38] H. Gong, D. Zhao, S. Wang*, A Hybrid High-Speed Schlieren and Laser Absorption Diagnostic for Underexpanded Supersonic Jets Under Rapid Backpressure Variation. Proceedings of the 34th International Symposium on Shock Waves, 2 (2025), 439-447. https://doi.org/10.1007/978-981-96-4771-2_42

[37] Z. Yan, S. Wang*, StaR-LIF: State-resolved laser-induced fluorescence modeling for diatomic molecules. Journal of Quantitative Spectroscopy and Radiative Transfer, 330 (2025), 109230. https://doi.org/10.1016/j.jqsrt.2024.109230

[36] Y. Xu, Q. Chu, X. Chang, H. Wang, S. Wang, S. Xu, D. Chen*, Thermal decomposition mechanism of 1, 3, 5- trinitroperhydro-1, 3, 5-triazine: Experiments and reaction kinetic modeling. Chemical Engineering Science, 282 (2025), 119234. https://doi.org/10.1016/j.ces.2023.119234

[35] S. Wang*, Y. Ding, J. Miao, R.K. Hanson, Shock tube and multi-species laser absorption measurements of rate constants for methanol pyrolysis, Proceedings of the Combustion Institute, 39 (2023), 755-763. https://doi.org/10.1016/j.proci.2022.08.062

[34] Y Li*, S. Wang, C. L. Strand, R. K. Hanson, Development of a Stark shift measurement technique using excited-state oxygen atoms to determine electron number density in shock heated O2/Ar above 10000 K. Plasma Sources Science and Technology, 30 (2021), 025007. https://doi.org/10.1088/1361-6595/abdd12

[33] Y Li*, S. Wang, C. L. Strand, R.K. Hanson. Two-temperature collisional-radiative modeling of partially ionized O2-Ar mixtures over 8000-10000K behind reflected shock waves.Journal of Physical Chemistry A, 124 (2020), 3687-3697. https://doi.org/10.1021/acs.jpca.0c00466

[32] Y. Ding, S. Wang*, R. K. Hanson, Sensitive and interference-immune formaldehyde diagnostic for high- temperature reacting gases using two-color laser absorption near 5.6 μm. Combustion and Flame, 213 (2020), 194-201. https://doi.org/10.1016/j.combustflame.2019.11.042

[31] N. E. Clayman, M. A. Manumpil, B. D. Matson, S. Wang, A. H. Slavney, R. Sarangi, H. I. Karunadasa, R. M. Waymouth*. Reactivity of NO2 with Porous and Conductive Copper Azobispyridine Metallopolymers. Inorganic Chemistry, 58 (2019), 10856-10860. https://doi.org/10.1021/acs.inorgchem.9b01190

[30] S. Wang*, R. K. Hanson, Quantitative 2-D OH thermometry using spectrally-resolved planar laser-induced fluorescence, Optics Letters, 44 (2019), 578-581. https://doi.org/10.1364/OL.44.000578

[29] S. Wang*, D. F. Davidson, R. K. Hanson, Shock tube measurements of OH time-histories in benzene, toluene, ethylbenzene and xylene oxidation. Proceedings of the Combustion Institute, 37 (2019), 163-170. https://doi.org/10.1016/j.proci.2018.06.116

[28] X. Chao*, G. Shen, K. Sun, Z. Wang, Q. Meng, S. Wang, R. K. Hanson, Cavity-enhanced absorption spectroscopy for shock tubes: design and optimization. Proceedings of the Combustion Institute, 37 (2019), 1345-1353. https://doi.org/10.1016/j.proci.2018.06.230

[27] W. Wei, W.Y. Peng, Y. Wang, R. Choudhary, S. Wang, J. Shao*, R. K. Hanson, Demonstration of non- absorbing interference rejection using wavelength modulation spectroscopy in high-pressure shock tubes. Applied Physics B, 125 (2019), 9. https://doi.org/10.1007/s00340-018-7118-3

[26] M. F. Campbell*, S. Wang, D. F. Davidson, R. K. Hanson, Shock tube study of normal heptane first-stage ignition near 3.5 atm. Combustion and Flame, 198 (2018) 376-392. https://doi.org/10.1016/j.combustflame.2018.08.008

[25] S. Wang*, R. K. Hanson, Ultra-sensitive spectroscopy of OH radical in high-temperature transient reactions. Optics Letters, 43 (2018) 3518-3521. https://doi.org/10.1364/OL.43.003518

[24] J. Shao, Y. Zhu, S. Wang, D.F. Davidson*, R.K. Hanson, A shock tube study of jet fuel pyrolysis and ignition at elevated pressures and temperatures. Fuel, 226 (2018) 338-344. https://doi.org/10.1016/j.fuel.2018.04.028

[23] R. Xu, K. Wang, S. Banerjee, J. Shao, T. Parise, Y. Zhu, S. Wang, A. Movaghar, D. J. Lee, R. Zhao, X. Han, Y. Gao, T. Lu, K. Brezinsky, F. N. Egolfopoulos, D. F. Davidson, R. K. Hanson, C. T. Bowman, H. Wang*, A physics-based approach to modeling real-fuel combustion chemistry - II. reaction kinetic models of jet and rocket fuels,Combustion and Flame, 193 (2018) 520-537. https://doi.org/10.1016/j.combustflame.2018.03.021

[22] S. Wang*, R. K. Hanson, High-sensitivity 308.6-nm laser absorption diagnostic optimized for OH measurement in shock tube combustion studies, Applied Physics B, 124 (2018) 37-43. https://doi.org/10.1007/s00340-018-6902-4

[21] S. Wang*, D. F. Davidson, R. K. Hanson, A shock tube and laser absorption study of CH2O oxidation via simultaneous measurements of OH and CO, Journal of Physical Chemistry A, 121 (2017) 8561–8568. https://doi.org/10.1021/acs.jpca.7b09362

[20] S. Wang*, T. Parise, S. E. Johnson, D. F. Davidson, R. K. Hanson, A new diagnostic for hydrocarbon fuels using 3.41-μm diode laser absorption, Combustion and Flame, 186 (2017), 129-139. https://doi.org/10.1016/j.combustflame.2017.07.026

[19] S. Wang*, D. F. Davidson, J. B. Jeffries, R. K. Hanson, Time-resolved sub-ppm CH3 detection in a shock tube using cavity-enhanced absorption spectroscopy with a ps-pulsed UV laser. Proceedings of the Combustion Institute, 36 (2017) 4549-4556. https://doi.org/10.1016/j.proci.2016.08.012

[18] S. Wang*, D. F. Davidson, R. K. Hanson, Shock tube measurements for the rate constants of long, branched, and unsaturated aldehydes with OH at elevated temperature. Proceedings of the Combustion Institute, 36 (2017) 151-160. https://doi.org/10.1016/j.proci.2016.06.017

[17] M. Nations*, S. Wang, C. S. Goldenstein, D. F. Davidson, R. K. Hanson, Kinetics of Excited Oxygen Formation in Shock-Heated O2 − Ar Mixtures. Journal of Physical Chemistry A, 120 (2016) 8234-8243. https://doi.org/10.1021/acs.jpca.6b07274

[16] S. Wang*, D. F. Davidson, R. K. Hanson, Shock tube measurement for the dissociation rate constant of acetaldehyde using sensitive CO diagnostics. Journal of Physical Chemistry A, 120 (2016) 6895-6901. https://doi.org/10.1021/acs.jpca.6b03647

[15] S. Wang, D. F. Davidson*, R. K. Hanson, Improved shock tube measurement of the CH4 + Ar = CH3 + H + Ar rate constant using UV cavity-enhanced absorption spectroscopy of CH3, Journal of Physical Chemistry A, 120 (2016) 5427-5434. https://doi.org/10.1021/acs.jpca.6b02572

[14] S. Wang*, K. Sun, D. F. Davidson, J. B. Jefferies, R. K. Hanson, Cavity-enhanced absorption spectroscopy with a ps-pulsed UV laser for sensitive, high-speed measurements in a shock tube. Optics Express, 24 (2016) 308-318. https://doi.org/10.1364/OE.24.000308

[13] S. Wang, K. Sun, D. F. Davidson*, J. B. Jeffries, R. K. Hanson, Shock-tube measurement of acetone dissociation using cavity-enhanced absorption spectroscopy of CO. Journal of Physical Chemistry A, 119 (2015) 7257-7262. https://doi.org/10.1021/jp511642a

[12] S. Wang*, D. F. Davidson, R. K. Hanson, High temperature measurements for the rate constants of C1–C4 aldehydes with OH in a shock tube. Proceedings of the Combustion Institute, 35 (2015) 473-480. https://doi.org/10.1016/j.proci.2014.06.112

[11] M. F. Campbell*, S. Wang, C. S. Goldenstein, R. M. Spearrin, A. M. Tulgestke, L. T. Zaczek, D. F. Davidson, R. K. Hanson, Constrained reaction volume shock tube study of n-heptane oxidation: Ignition delay times and time-histories of multiple species and temperature. Proceedings of the Combustion Institute, 35 (2015) 231-239. https://doi.org/10.1016/j.proci.2014.05.001

[10] M. Nations*, S. Wang, C. S. Goldenstein, K. Sun, D. F. Davidson, J. B. Jefferies, R. K. Hanson, Shock-tube measurements of excited oxygen atoms using cavity-enhanced absorption spectroscopy, Applied Optics, 54 (2015) 8766-8775. https://doi.org/10.1364/AO.54.008766

[9] S. Wang, S. Li, D. F. Davidson*, R. K. Hanson, Shock tube measurement of the high-temperature rate constant for OH+ CH3→ products, Journal of Physical Chemistry A, 119 (2015) 8799-8805. https://doi.org/10.1021/acs.jpca.5b05725

[8] R. Sur*, S. Wang, K. Sun, D. F. Davidson, J. B. Jeffries, R. K. Hanson, High-sensitivity interference-free diagno- stic for measurement of methane in shock tubes. Journal of Quantitative Spectroscopy and Radiative Transfer, 156 (2015) 80-87. https://doi.org/10.1016/j.jqsrt.2015.01.023

[7] K. Sun, S. Wang, R. Sur, X. Chao, J. B. Jeffries*, R. K. Hanson, Time-resolved in situ detection of CO in a shock tube using cavity-enhanced absorption spectroscopy with a quantum-cascade laser near 4.6 μm. Optics Express, 22 (2014) 24559-24565. https://doi.org/10.1364/OE.22.024559

[6] K. Sun, S. Wang, R. Sur, X. Chao, J. B. Jeffries*, R. K. Hanson, Sensitive and rapid laser diagnostic for shock tube kinetics studies using cavity-enhanced absorption spectroscopy. Optics Express, 22 (2014) 9291-9300. https://doi.org/10.1364/OE.22.009291

[5] S. Wang, E. E. Dames, D. F. Davidson*, R. K. Hanson, Reaction rate constant of CH2O+ H= HCO+ H2 revisited: A combined study of direct shock tube measurement and transition state theory calculation. Journal of Physical Chemistry A, 118 (2014) 10201-10209. https://doi.org/10.1021/jp5085795

[4] S. Xu, D. Thian, S. Wang, Y. Wang, F. B. Prinz*, Effects of size polydispersity on electron mobility in a two- dimensional quantum-dot superlattice. Physics Review B, 90 (2014) 144202. https://doi.org/10.1103/PhysRevB.90.144202

[3] Z. Hong, K. Y. Lam, R. Sur, S. Wang, D. F. Davidson*, R. K. Hanson, On the rate constants of OH+ HO2 and HO2+ HO2: A comprehensive study of H2O2 thermal decomposition using multi-species laser absorption. Proceedings of the Combustion Institute,, 34 (2013) 565-571. https://doi.org/10.1016/j.proci.2012.06.108

[2] S. Wang, D. F. Davidson*, R. K. Hanson, R. K. High-temperature laser absorption diagnostics for CH2O and CH3CHO and their application to shock tube kinetic studies. Combustion and Flame, 160 (2013) 1930-1938. https://doi.org/10.1016/j.combustflame.2013.05.004

[1] R. K. Hanson, G. A. Pang, S. Chakraborty, W. Ren, S. Wang, D. F. Davidson*, Constrained reaction volume approach for studying chemical kinetics behind reflected shock waves. Combustion and Flame, 160 (2013) 1550-1558. https://doi.org/10.1016/j.combustflame.2013.03.026

图书专著章节

[1] S. Wang*, D. F. Davidson, R. K. Hanson, Shock Tube Techniques for Kinetic Target Data to Improve Reaction Models inMathematical Modeling of Gas-Phase Complex Reaction Systems: Pyrolysis and Combustion, Eds. T. Faravelli, F. Manenti, E. Ranzi. Elsevier, 2019. https://doi.org/10.1016/B978-0-444-64087-1.00003-6

会议论文与报告

[18] S. Zhang, X. Nie, S. Wang*, Synergistic Diagnostics of Spatiotemporally Resolved Laser Absorption and Chemiluminescence Imaging for Studying Pulsating Flame Instabilities. 15th Asia-Pacific Conference on Combustion, 2025.

[17] X. Nie, S. Zhang, S. Wang*, A Parametric Study on the Pulsations of Burner-Stabilized Oxy-Fuel Flames Moderated by CO2 Addition – Frequencies, Modes and Regime Diagrams. 15th Asia-Pacific Conference on Combustion, 2025.

[16] Q.Wen*, Y. Wang, L. Yang, T. Zirwes, S. Wang, Z. Chen, Effects of gravity on the propagation and instability of hydrogen/air flames. 15th Asia-Pacific Conference on Combustion, 2025.

[15] A. J. Susa*, S. Wang, D. F. Davidson, R. K. Hanson, Time-Resolved Speciation of iso-Octane First-Stage Ignition Products at Elevated Effective Pressures in a Shock Tube. US 11th National Combustion Meeting, 2019.

[14] S. Wang*, C. L. Strand, R. K. Hanson, Spectrally-Resolved Absorption and Laser-Induced Fluorescence of High-Temperature Gases. AIAA SciTech Forum, 2019.

[13] J. Streicher*, A. Krish, S. Wang, D. F. Davidson, R. K. Hanson, Measurements of Oxygen Vibrational Relaxation and Dissociation Using Ultraviolet Laser Absorption in Shock Tube Experiments. AIAA SciTech Forum, 2019.

[12] S. Wang*, D. F. Davidson, R. K. Hanson, A shock tube study of CH2O oxidation via simultaneous laser absorption measurements of CO and OH. 10th International Conference on Chemical Kinetics , 2017.

[11] S. Wang*, T. Parise, D. F. Davidson, R. K. Hanson, A new diagnostic for hydrocarbon fuels using 3.41-μm diode laser absorption. US 10th National Combustion Meeting , 2017.

[10] J. Shao, Y. Zhu, S. Wang, D. F. Davidson*, R. K. Hanson, Shock Tube Study of Jet Fuel Pyrolysis and Ignition at Elevated Pressure, US 10th National Combustion Meeting , 2017.

[9] R. Xu*, D. Chen, K. Wang, Y. Tao, J. K. Shao, T. Parise, Y. Zhu, S. Wang, R. Zhao, D. J. Lee, F. N. Egolfopoulos, D. F. Davidson, R. K. Hanson, C. T. Bowman, H. Wang, HyChem Model: Application to Petroleum-Derived Jet Fuels. US 10th National Combustion Meeting , 2017.

[8] D. F. Davidson*, Y. Zhu, S. Wang, T. Parise, R. Sur, R. K. Hanson, Shock Tube Measurements of Jet and Rocket Fuels. 54th AIAA Aerospace Sciences Meeting , 2016.

[7] Y. Zhu, S. Wang, D. F. Davidson*, R. K. Hanson, Shock Tube Measurements of Species Time-Histories during Jet Fuel Pyrolysis and Oxidation. 25th International Colloquium on the Dynamics of Explosions and Reactive Systems, 2015.

[6] Y. Zhu, S. Wang, R. K. Hanson, D. F. Davidson*, Shock Tube/Laser Absorption Measurements of Jet Fuel Pyrolysis and Oxidation. 53rd AIAA Aerospace Sciences Meeting, 2015.

[5] D. F. Davidson*, A. Tulgestke. Y. Zhu, S. Wang, R. K. Hanson, Species Time-History Measurements during Jet Fuel Pyrolysis, 30th International Symposium on Shock Waves, 2015.

[4] S. Wang*, D. F. Davidson, R. K. Hanson, Laser Absorption Diagnostics for Aldehydes in Shock Tube Kinetics Studies 29th International Symposium on Shock Waves, 2013.

[3] R. K. Hanson, S. Chakraborty, G. A. Pang, W. Ren, S. Wang, D. F. Davidson*, Constrained Reaction Volume: A New Approach to Studying Reactive Systems in Shock Tubes, 29th International Symposium on Shock Waves, 2013.

[2] R. K. Hanson, S. Chakraborty, G. A. Pang, W. Ren, S. Wang, D. F. Davidson*, Constrained Reaction Volume: A Strategy for Reflected Shock Wave Kinetics Experiments, 24th International Colloquium on the Dynamics of Explosions and Reactive Systems, 2013.

[1] K. Y. Lam, D. Vinh, S. Wang, Z. Hong, D. F. Davidson*, R. K. Hanson, Shock Tube Ignition Delay Time Measurements of Propane/O2/Ar Mixtures at Near-Constant-Volume Conditions, WSS/CI Fall Meeting, 2009.