Optics and Lasers in Engineering· 2026Q1
Modeling and quantification of beam steering uncertainties in high-pressure laser absorption spectroscopy of non-uniform physical fields
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- Q1SCImago
- 2026year
Short summary
A physics-based framework quantifies beam steering uncertainties in high-pressure laser absorption spectroscopy, revealing temperature deviations up to 30% in steep gradient regions and intensifying significantly from 1 to 400 atm.
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Key points
- A framework models beam steering effects on path-integrated absorbance and H2O thermometry in non-uniform, high-pressure environments.
- Temperature deviations due to beam steering range from a few percent to over 30% in steep gradient regions.
- Beam steering effects intensify rapidly from 1 to 400 atm, becoming substantial at 400 atm.
- At 400 atm, a sensitive line pair shows mean temperature deviations of 6.2% with ray-wise extremes near 54.6%.
AI-generated from the title and abstract; the full text is not read.
Abstract
Beam steering induced by refractive index gradients poses a significant challenge for laser absorption spectroscopy in high-pressure, non-uniform combustion environments. This work establishes a physics-based framework to model and quantify beam steering effects on path-integrated absorbance and two-line H 2 O thermometry. A three-point perturbation approach reconstructs optimum ray trajectories between fixed source and detector locations, providing a direct quantitative mapping between refractive-index gradients and thermometric bias. Across three representative flames, including a single-peak axisymmetric flame, a flat flame, and a co-flow diffusion flame, the framework reveals that beam-steering-induced temperature and H 2 O mole fraction deviations are governed by the magnitude and spatial distribution of thermochemical gradients. Inferred temperature deviations range from a few percent in weak-gradient regions to more than 30% near steep boundary layers, and remain strictly positive, indicating consistently higher deflected-ray temperatures. A pressure-dependence study demonstrates that beam steering effects intensify rapidly from 1 to 400 atm. Deviations are negligible below 10 atm, increase nonlinearly in the 10–100 atm regime, and become substantial at 400 atm, where n −1 approaches the 10 −1 level and the most sensitive line pair exhibits mean temperature deviations of about 6.2% with ray-wise extremes near 54.6%. The analysis also shows that line-pair selection strongly influences diagnostic robustness, with certain combinations yielding substantially smaller deviations and reduced spatial variability. These findings establish beam steering can be an important source of uncertainty in high-pressure laser absorption spectroscopy and provide guidance for optimized line selection, optical layout, and compensation strategies.
The authors' abstract, as published at the source. Optics and Lasers in Engineering, 2026 · DOI ↗
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Field: Spectroscopy
SpectroscopyChemistry