Optoacoustic sensing of surfactant crude oil in thermal relaxation and nonlinear regimes

3Citations
Citations of this article
9Readers
Mendeley users who have this article in their library.

Abstract

We propose a laser optoacoustic method for the complex characterization of crude oil pollution of the water surface by the thickness of the layer, the speed of sound, the coefficient of optical absorption, and the temperature dependence of the Grüneisen parameter. Using a 532 nm pulsed laser and a 1–100 MHz ultra‐wideband ultrasonic antenna, we have demonstrated the capa-bility of accurate (>95%) optoacoustic thickness measurements in the 5 to 500‐micron range, cover-ing 88% of slicks observed during 2010 oil spill in the Gulf of Mexico. In the thermal relaxation regime of optoacoustic measurements, the value of optical absorption coefficient (30 mm−1) agreed with the data of independent spectrophotometric measurements, while the sound speed (1430 m/s) agreed with the tabular data. When operating in a nonlinear regime, the effect of local deformation of the surface of the oil film induced by heating laser radiation was revealed. The dose‐time param-eters of laser radiation ensuring the transition from the thermal relaxation regime of optoacoustic generation to nonlinear one were experimentally investigated. The developed OA method has po-tential for quantitative characterization of not only the volume, but also the degree and even the type of oil pollution of the water surface.

Cite

CITATION STYLE

APA

Subochev, P., Kurnikov, A., Sergeeva, E., Kirillin, M., Kapustin, I., Belyaev, R., … Molkov, A. (2021). Optoacoustic sensing of surfactant crude oil in thermal relaxation and nonlinear regimes. Sensors, 21(18). https://doi.org/10.3390/s21186142

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free