BOS deflection estimation methods are unified into three labeled approximations, each with closed-form error formulas validated against nonlinear ray tracing.
Improving Spatial Resolution of Background Oriented Schlieren Based on Directional Rays
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abstract
The background-oriented Schlieren technique has emerged as a promising method for visualizing density gradients and performing quantitative measurements. However, an inherent constraint of BOS is the compromise between spatial resolution and measurement sensitivity, as the BOS camera typically remains focused on the background pattern. To overcome the resolution-sensitivity constraint, a new variant of BOS based on nominally directional rays has been proposed in this paper. Instead of utilizing diffusively reflective background patterns, a spherically concave mirror etched with random dots has been used to create a dotted background that reflects rays directionally. Combined with coaxial LED light illumination, we demonstrate that the current setup can improve the spatial resolution of canonical BOS without compromising measurement sensitivity. Moreover, the proposed setup decouples the requirement of a small lens aperture to achieve a large depth of field, thereby significantly alleviating the need for strong background light illumination in high-speed BOS applications. To demonstrate the effectiveness of the proposed method in improving the BOS spatial resolution, both synthetic BOS image generations and experiments on low- and high-speed jets are conducted. Results show that the proposed variant of BOS can be advantageous for measuring density-varying flows with a limited field of view.
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physics.flu-dyn 1years
2026 1verdicts
CONDITIONAL 1representative citing papers
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Unified Deflection Estimation and Error Analysis for Background-Oriented Schlieren
BOS deflection estimation methods are unified into three labeled approximations, each with closed-form error formulas validated against nonlinear ray tracing.