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Dr Jesse Streicher
Dr

Jesse Streicher

Email: 
Phone: 
+61 7 344 35120

Overview

Background

Jesse's research involves the application of optical diagnostics - emphasizing laser diagnostics - for characterizing extreme environments and reactions, emphasizing physical chemistry, ionization, and radiation phenomena affecting reentry flows. Prior to joining UQ, Jesse was a research scientist at Stanford University from 2022-2026, managing shock-tube laboratory funding, safety, and research activities. He previously graduated from Stanford with his PhD in 2022 as well as a MS in 2018, with his research focusing on the chemical kinetics of high-temperature gases with an emphasis on vibrational and chemical nonequilibrium through experimental studies at both Stanford and the NASA Ames electric arc shock tube (EAST).

Availability

Dr Jesse Streicher is:
Available for supervision

Qualifications

  • Bachelor of Mechanical Engineering, University of Michigan
  • Masters (Coursework) of Mechanical Engineering, Leland Standford Junior University
  • Doctor of Philosophy of Mechanical Engineering, Leland Standford Junior University

Works

Search Professor Jesse Streicher’s works on UQ eSpace

32 works between 2020 and 2026

21 - 32 of 32 works

2024

Conference Publication

Vibrational-state-resolved oxygen and nitric oxide time-history measurements in shock-heated, high-temperature air

Streicher, Jesse W., Barnes, Spencer C., Krish, Ajay and Hanson, Ronald K. (2024). Vibrational-state-resolved oxygen and nitric oxide time-history measurements in shock-heated, high-temperature air. AIAA SciTech Forum, Orlando, FL United States, 8-12 January 2024. Reston, VA United States: American Institute of Aeronautics and Astronautics. doi: 10.2514/6.2024-0227

Vibrational-state-resolved oxygen and nitric oxide time-history measurements in shock-heated, high-temperature air

2024

Conference Publication

Demonstration of UV Rotational, Vibrational Temperature and Speciation Diagnostics for the Cyano-Radical in Methane-Nitrogen Mixtures

Merrell, Devin P., Chang, Efaine, Krish, Ajay, Finch, Peter M., Streicher, Jesse W. and Hanson, Ronald K. (2024). Demonstration of UV Rotational, Vibrational Temperature and Speciation Diagnostics for the Cyano-Radical in Methane-Nitrogen Mixtures. AIAA SciTech Forum, Orlando Fl, Jan 08-12, 2024. RESTON: AMER INST AERONAUTICS & ASTRONAUTICS. doi: 10.2514/6.2024-1484

Demonstration of UV Rotational, Vibrational Temperature and Speciation Diagnostics for the Cyano-Radical in Methane-Nitrogen Mixtures

2023

Journal Article

Spectroscopic modeling and measurements of the CN Violet and Red systems for the development of nonequilibrium temperature and speciation diagnostics

Krish, Ajay, Finch, Peter M., Merrell, Devin P., Streicher, Jesse W. and Hanson, Ronald K. (2023). Spectroscopic modeling and measurements of the CN Violet and Red systems for the development of nonequilibrium temperature and speciation diagnostics. Journal of Quantitative Spectroscopy & Radiative Transfer, 311 108772, 108772. doi: 10.1016/j.jqsrt.2023.108772

Spectroscopic modeling and measurements of the CN Violet and Red systems for the development of nonequilibrium temperature and speciation diagnostics

2023

Journal Article

Laser absorption study of the N<sub>2</sub> + O → NO plus N and NO plus O → O<sub>2</sub> + N Zeldovich reactions in shock-heated N<sub>2</sub>O mixtures

Streicher, Jesse W., Krish, Ajay and Hanson, Ronald K. (2023). Laser absorption study of the N2 + O → NO plus N and NO plus O → O2 + N Zeldovich reactions in shock-heated N2O mixtures. Physics of Fluids, 35 (4) 046119. doi: 10.1063/5.0147764

Laser absorption study of the N<sub>2</sub> + O → NO plus N and NO plus O → O<sub>2</sub> + N Zeldovich reactions in shock-heated N<sub>2</sub>O mixtures

2022

Journal Article

Application of Reflected Shock Wave Configuration to Validate Nonequilibrium Models of Reacting Air

Gimelshein, Sergey F., Streicher, Jesse W., Krish, Ajay, Hanson, Ronald K. and Wysong, Ingrid J. (2022). Application of Reflected Shock Wave Configuration to Validate Nonequilibrium Models of Reacting Air. Journal of Thermophysics and Heat Transfer, 37 (1), 161-181. doi: 10.2514/1.T6630

Application of Reflected Shock Wave Configuration to Validate Nonequilibrium Models of Reacting Air

2022

Journal Article

High-temperature vibrational relaxation and decomposition of shock-heated nitric oxide. I. Argon dilution from 2200 to 8700 K

Streicher, Jesse W., Krish, Ajay and Hanson, Ronald K. (2022). High-temperature vibrational relaxation and decomposition of shock-heated nitric oxide. I. Argon dilution from 2200 to 8700 K. Physics of Fluids, 34 (11) 116122. doi: 10.1063/5.0109109

High-temperature vibrational relaxation and decomposition of shock-heated nitric oxide. I. Argon dilution from 2200 to 8700 K

2022

Journal Article

Spectrally-resolved ultraviolet absorption measurements of shock-heated NO from 2000 K to 6000 K for the development of a two-color rotational temperature diagnostic

Krish, Ajay, Streicher, Jesse W. and Hanson, Ronald K. (2022). Spectrally-resolved ultraviolet absorption measurements of shock-heated NO from 2000 K to 6000 K for the development of a two-color rotational temperature diagnostic. Journal of Quantitative Spectroscopy & Radiative Transfer, 280 108073. doi: 10.1016/j.jqsrt.2022.108073

Spectrally-resolved ultraviolet absorption measurements of shock-heated NO from 2000 K to 6000 K for the development of a two-color rotational temperature diagnostic

2021

Journal Article

Spectrally-resolved absorption cross-section measurements of shock-heated O<sub>2</sub> for the development of a vibrational temperature diagnostic

Krish, Ajay, Streicher, Jesse W. and Hanson, Ronald K. (2021). Spectrally-resolved absorption cross-section measurements of shock-heated O2 for the development of a vibrational temperature diagnostic. Journal of Quantitative Spectroscopy & Radiative Transfer, 270 107704. doi: 10.1016/j.jqsrt.2021.107704

Spectrally-resolved absorption cross-section measurements of shock-heated O<sub>2</sub> for the development of a vibrational temperature diagnostic

2021

Journal Article

Coupled vibration-dissociation time-histories and rate measurements in shock-heated, nondilute O<sub>2</sub> and O<sub>2</sub>-Ar mixtures from 6000 to 14000K

Streicher, Jesse W., Krish, Ajay and Hanson, Ronald K. (2021). Coupled vibration-dissociation time-histories and rate measurements in shock-heated, nondilute O2 and O2-Ar mixtures from 6000 to 14000K. Physics of Fluids, 33 (5) 056107. doi: 10.1063/5.0048059

Coupled vibration-dissociation time-histories and rate measurements in shock-heated, nondilute O<sub>2</sub> and O<sub>2</sub>-Ar mixtures from 6000 to 14000K

2020

Journal Article

Vibrational relaxation time measurements in shock-heated oxygen and air from 2000 K to 9000 K using ultraviolet laser absorption

Streicher, Jesse W., Krish, Ajay and Hanson, Ronald K. (2020). Vibrational relaxation time measurements in shock-heated oxygen and air from 2000 K to 9000 K using ultraviolet laser absorption. Physics of Fluids, 32 (8) 086101. doi: 10.1063/5.0015890

Vibrational relaxation time measurements in shock-heated oxygen and air from 2000 K to 9000 K using ultraviolet laser absorption

2020

Journal Article

Shock-tube measurements of coupled vibration-dissociation time-histories and rate parameters in oxygen and argon mixtures from 5000 K to 10 000 K

Streicher, Jesse W., Krish, Ajay, Hanson, Ronald K., Hanquist, Kyle M., Chaudhry, Ross S. and Boyd, Iain D. (2020). Shock-tube measurements of coupled vibration-dissociation time-histories and rate parameters in oxygen and argon mixtures from 5000 K to 10 000 K. Physics of Fluids, 32 (7) 076103. doi: 10.1063/5.0012426

Shock-tube measurements of coupled vibration-dissociation time-histories and rate parameters in oxygen and argon mixtures from 5000 K to 10 000 K

2020

Journal Article

Ultraviolet absorption cross-section measurements of shock-heated O2 from 2,000-8,400 K using a tunable laser

Krish, Ajay, Streicher, Jesse W. and Hanson, Ronald K. (2020). Ultraviolet absorption cross-section measurements of shock-heated O2 from 2,000-8,400 K using a tunable laser. Journal of Quantitative Spectroscopy and Radiative Transfer, 247 106959. doi: 10.1016/j.jqsrt.2020.106959

Ultraviolet absorption cross-section measurements of shock-heated O2 from 2,000-8,400 K using a tunable laser

Supervision

Availability

Dr Jesse Streicher is:
Available for supervision

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Media

Enquiries

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