Related Experiment Videos
Hydroxyl tagging velocimetry method optimization: signal intensity and spectroscopy
Lubomir A Ribarov1, Shengteng Hu, Joseph A Wehrmeyer
1Department of Mechanical Engineering, Vanderbilt University, Nashville, Tennessee 37235, USA. ribarola@utrc.utc.com
Applied Optics
|November 8, 2005
Summary
Hydroxyl tagging velocimetry (HTV) is a nonintrusive method for measuring molecular velocity in both room temperature conditions and flames. This study explores optimal HTV performance through detailed spectroscopy and signal intensity analysis.
Area of Science:
- Fluid dynamics
- Laser-based diagnostics
- Combustion science
Background:
- Hydroxyl tagging velocimetry (HTV) is a proven nonintrusive technique for molecular velocity measurements.
- Previous demonstrations show HTV's capability in both room temperature and flame environments.
Purpose of the Study:
- To investigate and discuss the spectroscopy and relative signal intensities of different hydroxyl tagging velocimetry (HTV) read techniques.
- To determine implications for optimizing HTV performance in various conditions.
Main Methods:
- Utilized well-characterized jets of air (nonreacting) and hydrogen-air diffusion flames (reacting).
- Generated a 7x7 OH line grid via single-photon photodissociation of H2O using a 193 nm ArF excimer laser.
- Revealed the grid using a read laser sheet and fluorescence from specific OH transitions (A2sigma+(v'=3, 1, or 0) <-- X2pi(i)(v''=0)) at ~248, ~282, or ~308 nm.
Main Results:
- Presented a detailed analysis of the spectroscopy for different OH pumping schemes.
- Quantified and discussed the relative signal intensities associated with each read technique.
- Identified optimal conditions for HTV operation based on spectral and intensity data.
Conclusions:
- The choice of read laser wavelength significantly impacts signal intensity and HTV performance.
- Understanding the underlying spectroscopy is crucial for maximizing the effectiveness of HTV.
- HTV is a versatile tool for nonintrusive velocity measurements in diverse environments.