Multi-wavelength IR Method for Monitoring Air Pollution in Cities

被引:0
|
作者
Fanchenko, Sergey [1 ,2 ]
Baranov, Alexander [1 ]
Savkin, Alexey [1 ]
Somov, Andrey [3 ]
Calliari, Lucia [4 ]
机构
[1] Natl Res Univ, Moscow Aviat Inst, Moscow, Russia
[2] NRC Kurchatov Inst, Moscow, Russia
[3] Univ Exeter, Coll Engn Math & Phys Sci, Exeter, Devon, England
[4] FBK, Povo, Trento, Italy
关键词
multicomponent toxic gas analysis; multi-wavelength near infrared spectroscopy; LED arrays; simulation; URBAN AIR;
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this work we address the problem of air pollution in modern cities. We propose a method for detection and analysis of evaporation (H2O), carbon dioxide (CO2), carbon monoxide (CO) and methane (CH4) which are the typical components of exhaust gases produced by the gasoline vehicles. The method is based on infrared multi-wavelengths absorption in the range of 1.3 - 2.3 mu m and can be implemented by using multi waves array of light emitting diodes (LEDs). The proposed approach allows several absorption spectra to be covered by one LED absorption line, thus the number of used LEDs should be not less than the number of considered absorption lines. The simulation was done for a 6-element multi-wavelengths LED array. We demonstrate that the method is highly relevant for the application to open-path detectors where the radiation source and the receiver are located at a distance of tens of meters from each other.
引用
收藏
页码:753 / 758
页数:6
相关论文
共 50 条
  • [21] Signal tracking and performance monitoring in multi-wavelength optical networks
    Heismann, F
    Fatehi, MT
    Korotky, SK
    Veselka, JJ
    22ND EUROPEAN CONFERENCE ON OPTICAL COMMUNICATIONS, PROCEEDINGS, VOLS 1-6: CO-LOCATED WITH: 2ND EUROPEAN EXHIBITION ON OPTICAL COMMUNICATION - EEOC '96, 1996, : C47 - C50
  • [22] Robust autofocusing method for multi-wavelength lensless imaging
    Liu, Jian
    Zhao, Yixuan
    Guo, Cheng
    Zhao, Weisong
    Zhang, Yutian
    Guo, Changliang
    Li, Haoyu
    OPTICS EXPRESS, 2019, 27 (17) : 23814 - 23829
  • [23] Development of multi-wavelength spectral-correction method
    Gao, HW
    CHINESE CHEMICAL LETTERS, 2000, 11 (10) : 893 - 894
  • [24] On-line monitoring of bioprocesses using multi-wavelength fluorescence
    Eliasson, A
    Haack, M
    Olsson, L
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2003, 225 : U182 - U182
  • [25] Method of nanometer measurement using multi-wavelength interferometry
    Cheng, Xiaohui
    Li, Dacheng
    Zhao, Yang
    Guangxue Jishu/Optical Technique, 2000, 26 (04): : 313 - 315
  • [26] New method for the design of multi-wavelength optical head
    Liu, HT
    Pang, L
    Yan, YB
    DIFFRACTIVE AND HOLOGRAPHIC TECHNOLOGIES FOR INTEGRATED PHOTONIC SYSTEMS, 2001, 4291 : 165 - 172
  • [27] Multi-wavelength diffractive neural network with the weighting method
    Feng, Jianan
    Chen, Hang
    Yang, Dahai
    Hao, Junbo
    Lin, Jie
    Jin, Peng
    OPTICS EXPRESS, 2023, 31 (20) : 33113 - 33122
  • [28] Development of Multi-Wavelength Spectral-Correction Method
    Hong Wen GAO (School of Chemistry and Chemical Engineering
    ChineseChemicalLetters, 2000, (10) : 893 - 894
  • [29] A multi-scale, multi-wavelength source extraction method: getsources
    Men'shchikov, A.
    Andre, Ph
    Didelon, P.
    Motte, F.
    Hennemann, M.
    Schneider, N.
    ASTRONOMY & ASTROPHYSICS, 2012, 542
  • [30] Integrated multi-wavelength Mid-IR light source for gas sensing
    Karioja, Pentti
    Alajoki, Teemu
    Cherchi, Matteo
    Ollila, Jyrki
    Harjanne, Mikko
    Heinilehto, Noora
    Suomalainen, Soile
    Zia, Nouman
    Tuorila, Heidi
    Viheriala, Jukka
    Guina, Mircea
    Buczynski, Ryszard
    Kasztelanic, Rafal
    Salo, Tomi
    Virtanen, Sami
    Kluczynski, Pawel
    Borgen, Lars
    Ratajczyk, Marcin
    Kalinowski, Przemyslaw
    NEXT-GENERATION SPECTROSCOPIC TECHNOLOGIES XI, 2018, 2018, 10657