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Method for detecting a small amount of oil contaminants in a liquid using laser fluorescence technology

https://doi.org/10.17586/0021-3454-2023-66-8-696-703

Abstract

A method for multi-cell laser-fluorescence detection of a small amount of oil pollutants in water, as well as for measuring the concentration of such pollutants in water samples is developed. A technique is proposed for adaptively setting the length of the laser beam path through liquids in samples under investigation, which makes it possible to determine both the average total contamination value for the samples and contamination in each sample. A mathematical justification is presented, an algorithm for implementing the method is compiled, and a variant of the cuvette constructing with the implementation of adaptive tuning of the length of the laser beam path through the liquid in the samples is shown. 

About the Authors

N. G. Javadov
National Aerospace Agency of the Azerbaijan Republic
Azerbaijan

Natig Gadji ogly Javadov — Dr. Sci., Professor; Director General

 Baku



H. G. Asadov
National Aerospace Agency of the Azerbaijan Republic
Azerbaijan

 Hikhmet Gamid ogly Asadov — Dr. Sci., Professor; Research Institute of Aerospace Informatics, Department of Information-Measuring Systems Development for Atmospheric Research; Head of the Department

Baku



A. E. Azizova
National Aerospace Agency of the Azerbaijan Republic
Azerbaijan

Aishen Elchin gyzy Azizova — PhD;  Senior Researcher 

Baku



References

1. Cheng P., Zhu Y., Cui C., Pan J. IEEE Access, January 2022, vol.10, рр. 103733–103748, https://doi.org/10.1109/access.2022.3209179.

2. Idris N., Gondal M.A., Lahna K., Ramli M., Sari A.M., AlDakheel R.K., Mitaphonna R., Dastageer M.A., Kurihara K., Kurniawan K.H., Almesserie M.A. Arabian J. Chem., 2022, no. 7(15), art. no. 103847, DOI:10.1016/j.arabje.2022.103847.

3. Saito Y., Ichihara K., Morishita K., Uchiyama K., Kobayashi F., Tomida T. Environ. Pollut., Jan. 2021, vol. 269, art. no. 116150, DOI:10.1016/j.foodcont.2022.109044.

4. Dong G., Li X., Yang R., Yang Y., Liu H., Wu N. Environ. Pollut., Jan. 2021, vol. 269, art. no. 116150, DOI:10.1016/j.envpol.2020.116150.

5. Luo S., Yan C., Chen D. Food Control, Aug. 2022, vol. 138, art. no. 109044, DOI:10.1016/j.foodcont.2022.109044.

6. Morales T.V., Esponda S.M., Rodriguez J.J.S., Aaron S.E., Aaron J.J. Macedonian Journal of Chemistry and Chemical Engineering, 2010, no. 1(29), pp. 1–42.

7. Zacharioudaki D.E., Fitilis I., Kotti M. Molecules, 2022, vol. 27, рр. 4801, https://doi.org/10.3390/molecules27154801.

8. Uebel U., Kubitz J., Anders A. J. Plant Physiol., 1996, vol. 148, pp. 586–592.

9. Du R., Yang D., Jiang G., Song Y., Yin X. Sensors, 2020, Vol. 20, рр. 1330.

10. Bukin O., Proschenko D., Chekhlenok A., Korovetskiy D., Bukin I., Yurchik V., Sokolova I., Nadezhkin A. Photonics, 2020, no. 2(7), pp. 36.

11. Yu J., Zhang X., Hou D., Chen F., Mao T., Huang P., Zhang G. Journal of Spectroscopy, 2017, no. 1, pp. 1–9. DOI:10.1155/2017/1485048.

12. Yu J., Cao Y., Shi F., Shi J., Hou D., Huang P., Zhang G., Zhang H. Water, 2021, vol. 13, рр. 2633, https://doi.org/10.3390/w13192633.

13. Song W. Sensors, 2022, vol. 2022, art. ID 2936960, https://doi.org/10.1155/2022/2936960.

14. Gu Y., Zuo Z., Shi C., Hu X. Appl. Sci., 2020, no. 3(10), pp. 1103, DOI:10.3390/app10031103.

15. Elgolts L.E. Differentsial'nyye uravneniya i variatsionnye ischisleniya (Differential Equations and Calculus of Variations), Moscow, 1974, 432 р. (in Russ.)


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For citations:


Javadov N.G., Asadov H.G., Azizova A.E. Method for detecting a small amount of oil contaminants in a liquid using laser fluorescence technology. Journal of Instrument Engineering. 2023;66(8):696-703. (In Russ.) https://doi.org/10.17586/0021-3454-2023-66-8-696-703

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ISSN 0021-3454 (Print)
ISSN 2500-0381 (Online)