AEROPORT ANGARLARIDA YONG‘INNI ERTA ANIQLASH UCHUN OPTIK DETEKSIYA USULIGA ASOSLANGAN FAZOVIY HARORAT MONITORING VA ILMIY TAHLILI
Keywords:
optik tola, issiqlikni aniqlash, roman sochilishi, optik kabel, detektor, stokes, anti-stokes, angar.Abstract
Ushbu maqolada optik tolaga asoslangan chiziqli issiqlik aniqlash tizimlarining ishlash prinsipi va ularning aviatsiya infratuzilmasida qo‘llanilishi tahlil qilinadi. Raman sochilishi hodisasiga asoslangan yordamida optik kabel bo‘ylab harorat taqsimotini aniqlash imkoniyati ko‘rib chiqiladi. Aeroport angarlari misolida yong‘in manbasini aniqlash uchun fazoviy harorat modeli taklif etiladi. Tadqiqot natijalari optik deteksiya monitoring tizimlari yong‘inni erta aniqlash va sanoat xavfsizligini oshirishda samarali vosita ekanligini ko‘rsatadi.
References
1. Z. Liu et al., “Multifunctional smart optical fibers: materials, fabrication, and sensing applications,” Photonics, 6 48 https://doi.org/10.3390/photonics6020048 (2019). Google Scholar
2. S. Pissadakis, “Lab-in-a-fiber sensors: a review,” Microelectron. Eng., 217 111105 https://doi.org/10.1016/j.mee.2019.111105 MIENEF 0167-9317 (2019). Google Scholar
3. R. Min et al., “Optical fiber sensing for marine environment and marine structural health monitoring: a review,” Opt. Laser Technol., 140 107082 https://doi.org/10.1016/j.optlastec.2021.107082 OLTCAS 0030-3992 (2021). Google Scholar
4. M. F. Bado and J. R. Casas, “A review of recent distributed optical fiber sensors applications for civil engineering structural health monitoring,” Sensors, 21 (5), 1818 https://doi.org/10.3390/s21051818 SNSRES 0746-9462 (2021). Google Scholar
5. Y.-N. Zhang et al., “Optical fiber sensors for measurement of heavy metal ion concentration: a review,” Measurement, 158 107742 https://doi.org/10.1016/j.measurement.2020.107742 0263-2241 (2020). Google Scholar
6. Y. Zheng et al., “Review of fiber optic sensors in geotechnical health monitoring,” Opt. Fiber Technol., 54 102127 https://doi.org/10.1016/j.yofte.2019.102127 1068-5200 (2020). Google Scholar
7. T. He et al., “Review on optical fiber sensors for hazardous-gas monitoring in mines and tunnels,” IEEE Trans. Instrum. Meas., 72 7003722 https://doi.org/10.1109/TIM.2023.3273691 IEIMAO 0018-9456 (2023). Google Scholar
8. W. Zhu et al., “Enhanced sensitivity of heterocore structure surface plasmon resonance sensors based on local microstructures,” Opt. Eng., 57 (7), 076105 https://doi.org/10.1117/1.OE.57.7.076105 (2018). Google Scholar
9. Z. Shi et al., “Applications of online UV-Vis spectrophotometer for drinking water quality monitoring and process control: a review,” Sensors, 22 (8), 2987 https://doi.org/10.3390/s22082987 SNSRES 0746-9462 (2022). Google Scholar
10. K. B. Beć, J. Grabska and C. W. Huck, “Near-infrared spectroscopy in bio-applications,” Molecules, 25 (12), 2948 https://doi.org/10.3390/molecules25122948 (2020). Google Scholar
11. T. Chen et al., “Rapid identification of soil cadmium pollution risk at regional scale based on visible and near-infrared spectroscopy,” Environ. Pollut., 206 217 –226 https://doi.org/10.1016/j.envpol.2015.07.009 (2015). Google Scholar
12. L. M. Labine and M. J. Simpson, “The use of nuclear magnetic resonance (NMR) and mass spectrometry (MS)-based metabolomics in environmental exposure assessment,” Curr. Opin. Environ. Sci. Health, 15 7 –15 https://doi.org/10.1016/j.coesh.2020.01.008 (2020). Google Scholar