Calculation of the absorption coefficient of air at different heights using the HITRAN and ACE-FTS databases

被引:1
|
作者
Grigor'ev, I. S. [1 ]
机构
[1] Sci & Prod Assoc State Inst Appl Opt, Kazan, Russia
关键词
D O I
10.1364/JOT.89.000578
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Subject of study. Increasing requirements for the accuracy of modeling the brightness characteristics of the atmos-phere at different heights motivate the development of more detailed methods for the calculation of the absorption coefficient of air. Method. Modern databases of satellite sounding of the atmosphere that contain information on the volume fractions of air components at different heights in combination with a database of the parameters of the spectral lines of gases can be used in this task to calculate the spectral absorption coefficient. The possibility of specifying the geographic position of the height profiles of the air components (by specifying latitude and longi-tude) is an additional advantage of using the databases of satellite sounding. This method enables the differences in air compositions above different regions of the Earth to be considered. These databases usually provide information starting from a certain height; thus, databases of satellite sounding must be combined with the data obtained either from ground-based meteorological stations or using model distributions. The ACE-FTS database was used in this study, and it was combined with the standard atmosphere MODTRAN models at low heights. A filter for the ACE-FTS database was implemented using C++. The HITRAN database was used to calculate absorption coefficients. The ACE-FTS database provides data for 43 components of air, and the HITRAN database contains data for line -by-line calculation for 27 of these components and data on spectral absorption cross-sections for the remaining 16 components. Main results. A program for the calculation of the absorption coefficient of a multicomponent gas mixture was developed using C++. A Voigt profile was used in the line-by-line calculation, the effects of pres-sure and temperature on the line shift were considered, and line broadening owing to the following processes was considered: self-broadening, broadening resulting from interaction with water and carbon dioxide molecules, and broadening owing to interaction with other components of the air. The software explicitly considers the isotopic composition of molecules, thus enabling the calculation of not only the air mixture but also an arbitrary mixture with specified isotopic composition, information on which is in the HITRAN database. Moreover, the data of the high-temperature version HITEMP are considered. Practical significance. The combination of the ACE-FTS and HITRAN databases enables the calculation of a detailed profile of the spectral absorption coefficient of air for the specified month, temperature at the surface of the Earth, and geographic latitude and longitude, thus increasing the information content of the input data for the calculation of the brightness and transmission of the atmosphere at different heights. The data readout rate (parsing) and calculation speed of the developed program and the program HAPI implemented using Python are compared.(c) 2023 Optica Publishing Group
引用
收藏
页码:578 / 585
页数:8
相关论文
共 42 条
  • [21] Calculation of spectral absorption coefficient of high temperature equilibrium or non-equilibrium 11-species air
    Dong, S.-K. (dsk2000@0451.com), 1600, Chinese Journal of Aeronautics (14):
  • [22] Sabine Absorption Coefficient Predictions Using Different Radiation, Impedances of a Finite Absorber
    Jeong, Cheol-Ho
    ACTA ACUSTICA UNITED WITH ACUSTICA, 2015, 101 (04) : 663 - 667
  • [23] Numerical optimization of Mean Absorption Coefficient in Air using Planck Modified Mean Function
    Kabbaj, N.
    Cressault, Y.
    Teulet, P.
    Reichert, F.
    Petchanka, A.
    15TH HIGH-TECH PLASMA PROCESSES CONFERENCE (HTPP15), 2019, 1243
  • [24] Experimental evaluation of absorption coefficient in scattering media using different solutions to the diffusion equation
    Delfino, I
    Lepore, M
    Indovina, PL
    PHYSICA MEDICA, 2002, 18 (04) : 135 - 142
  • [25] Validation of ACE-FTS v2.2 measurements of HCl, HF, CCl3F and CCl2F2 using space-, balloon- and ground-based instrument observations
    Mahieu, E.
    Duchatelet, P.
    Demoulin, P.
    Walker, K. A.
    Dupuy, E.
    Froidevaux, L.
    Randall, C.
    Catoire, V.
    Strong, K.
    Boone, C. D.
    Bernath, P. F.
    Blavier, J. -F.
    Blumenstock, T.
    Coffey, M.
    De Maziere, M.
    Griffith, D.
    Hannigan, J.
    Hase, F.
    Jones, N.
    Jucks, K. W.
    Kagawa, A.
    Kasai, Y.
    Mebarki, Y.
    Mikuteit, S.
    Nassar, R.
    Notholt, J.
    Rinsland, C. P.
    Robert, C.
    Schrems, O.
    Senten, C.
    Smale, D.
    Taylor, J.
    Tetard, C.
    Toon, G. C.
    Warneke, T.
    Wood, S. W.
    Zander, R.
    Servais, C.
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2008, 8 (20) : 6199 - 6221
  • [26] CALCULATION OF LOCAL HEAT TRANSFER COEFFICIENT ON AXISYMMETRIC GEOMETRIES USING DIFFERENT METHODS OF FRINGE ANALYSIS
    Ashjaee, Mehdi
    Goharkhah, Mohammad
    Madanipour, Khosro
    Amiri, Shahin
    2008 SECOND INTERNATIONAL CONFERENCE ON THERMAL ISSUES IN EMERGING TECHNOLOGIES - THEORY AND APPLICATION (THETA), 2008, : 191 - +
  • [27] New approaches and error assessment to snow cover thickness and density using air temperature data at different heights
    Garcia-Maroto, Diego
    Duran, Luis
    Hernandez, Miguel Angel de Pablo
    SCIENCE OF THE TOTAL ENVIRONMENT, 2024, 926
  • [28] Determination of Water pH Using Absorption-Based Optical Sensors: Evaluation of Different Calculation Methods
    Wang, Hongliang
    Liu, Baohua
    Ding, Zhongjun
    Wang, Xiangxin
    INTERNATIONAL CONFERENCE ON OPTICAL AND PHOTONICS ENGINEERING (ICOPEN 2016), 2017, 10250
  • [29] An Experimental Study of Mass Transfer coefficient of CO2 absorption using Different Amines in a Packed Column
    Abd, Zahraa N.
    Rushdi, Salih A.
    EGYPTIAN JOURNAL OF CHEMISTRY, 2020, 63 (12): : 4875 - 4881
  • [30] EFFECT OF ACID AND SOME ELEMENTS ON CALCULATION OF MANGANESE BY ATOMIC-ABSORPTION METHOD USING A ACETALENE-AIR FLAME
    BEGAK, OY
    KUKUSHKI.YN
    NIKOLAEV, GI
    POKROVSK.KA
    ZHURNAL PRIKLADNOI KHIMII, 1972, 45 (10) : 2188 - 2191